Current Pathology Model of Pancreatic Cancer
Abstract
:Simple Summary
Abstract
1. Introduction
2. Contents Summary
3. Precursor Lesions
4. Molecular Subtypes
5. Histopathologic Evaluation
6. Morphological Heterogeneity
7. Immunostaining
8. Cancer–Stroma Interactions
9. Prognosis
Tumor size (incidence) | |
T1-2 (10%) T3 T4 (>50%) |
|
Histologic type | |
IPMC |
|
Colloid |
|
Large duct/Cystic papillary | |
Medullary | |
Adenosquamous (ASPC) |
|
Other features | |
Lymphatic and venous invasion | |
Lymph node status |
|
Perineural involvement |
|
Surgical margin status | |
High-grade PanIN |
10. Immunohistochemical Prognostic Factors
11. Perineural Invasion
12. Lymph Node Metastasis
13. Early Diagnostic Options
14. Molecular Characteristics of Malignant Pancreatic Tissues
15. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Rawla, P.; Sunkara, T.; Gaduputi, V. Epidemiology of Pancreatic Cancer: Global Trends, Etiology and Risk Factors. World J. Oncol. 2019, 10, 10–27. [Google Scholar] [CrossRef] [PubMed]
- Rahib, L.; Smith, B.D.; Aizenberg, R.; Rosenzweig, A.B.; Fleshman, J.M.; Matrisian, L.M. Projecting Cancer Incidence and Deaths to 2030: The Unexpected Burden of Thyroid, Liver, and Pancreas Cancers in the United States. Cancer Res. 2014, 74, 2913–2921. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Sung, H.; Ferlay, J.; Siegel, R.L.; Laversanne, M.; Soerjomataram, I.; Jemal, A.; Bray, F. Global Cancer Statistics 2020: GLOBOCAN Estimates of Incidence and Mortality Worldwide for 36 Cancers in 185 Countries. CA Cancer J. Clin. 2021, 71, 209–249. [Google Scholar] [CrossRef] [PubMed]
- Li, J.; Kang, R.; Tang, D. Cellular and Molecular Mechanisms of Perineural Invasion of Pancreatic Ductal Adenocarcinoma. Cancer Commun. 2021, 41, 642–660. [Google Scholar] [CrossRef] [PubMed]
- Patra, K.C.; Bardeesy, N.; Mizukami, Y. Clinical and Systematic Reviews Diversity of Precursor Lesions For Pancreatic Cancer: The Genetics and Biology of Intraductal Papillary Mucinous Neoplasm. Clin. Transl. Gastroenterol. 2017, 8, 86. [Google Scholar] [CrossRef]
- Nielsen, M.F.B.; Mortensen, M.B.; Detlefsen, S. Key Players in Pancreatic Cancer-Stroma Interaction: Cancer-Associated Fibroblasts, Endothelial and Inflammatory Cells. World J. Gastroenterol. 2016, 22, 2678. [Google Scholar] [CrossRef]
- Sperb, N.; Tsesmelis, M.; Wirth, T. Crosstalk between Tumor and Stromal Cells in Pancreatic Ductal Adenocarcinoma. Int. J. Mol. Sci. 2020, 21, 5486. [Google Scholar] [CrossRef]
- Aykut, B.; Chen, R.; Miller, G. Regulatory T Cells Keep Pancreatic Cancer at Bay. Cancer Discov. 2020, 10, 345–352. [Google Scholar] [CrossRef] [Green Version]
- Geng, X.; Chen, H.; Zhao, L.; Hu, J.; Yang, W.; Li, G.; Cheng, C.; Zhao, Z.; Zhang, T.; Li, L.; et al. Cancer-Associated Fibroblast (CAF) Heterogeneity and Targeting Therapy of CAFs in Pancreatic Cancer. Front. Cell Dev. Biol. 2021, 9, 655152. [Google Scholar] [CrossRef]
- Mas, L.; Lupinacci, R.M.; Cros, J.; Bachet, J.B.; Coulet, F.; Svrcek, M. Intraductal Papillary Mucinous Carcinoma Versus Conventional Pancreatic Ductal Adenocarcinoma: A Comprehensive Review of Clinical-Pathological Features, Out-comes, and Molecular Insights. Int. J. Mol. Sci. 2021, 22, 6756. [Google Scholar] [CrossRef]
- Muraki, T.; Jang, K.T.; Reid, M.D.; Pehlivanoglu, B.; Memis, B.; Basturk, O.; Mittal, P.; Kooby, D.; Maithel, S.K.; Sarmiento, J.M.; et al. Pancreatic Ductal Adenocarcinomas Associated with Intraductal Papillary Mucinous Neoplasms (IPMNs) versus Pseudo-IPMNs: Relative Frequency, Clinicopathologic Characteristics and Differential Diagnosis. Mod. Pathol. 2021, 35, 96–105. [Google Scholar] [CrossRef] [PubMed]
- van Duijneveldt, G.; Griffin, M.D.W.; Putoczki, T.L. Emerging Roles for the IL-6 Family of Cytokines in Pancreatic Cancer. Clin. Sci. 2020, 134, 2091–2115. [Google Scholar] [CrossRef] [PubMed]
- Wrona, E.; Potemski, P.; Sclafani, F.; Borowiec, M. Leukemia Inhibitory Factor: A Potential Biomarker and Therapeutic Target in Pancreatic Cancer. Arch. Immunol. Ther. Exp. 2021, 69, 2. [Google Scholar] [CrossRef] [PubMed]
- van Roey, R.; Brabletz, T.; Stemmler, M.P.; Armstark, I. Deregulation of Transcription Factor Networks Driving Cell Plasticity and Metastasis in Pancreatic Cancer. Front. Cell Dev. Biol. 2021, 9, 753456. [Google Scholar] [CrossRef]
- Martinez-Useros, J.; Martin-Galan, M.; Garcia-Foncillas, J. The Match between Molecular Subtypes, Histology and Microenvironment of Pancreatic Cancer and Its Relevance for Chemoresistance. Cancers 2021, 13, 322. [Google Scholar] [CrossRef]
- Nagtegaal, I.D.; Odze, R.D.; Klimstra, D.; Paradis, V.; Rugge, M.; Schirmacher, P.; Washington, K.M.; Carneiro, F.; Cree, I.A. The 2019 WHO Classification of Tumours of the Digestive System. Histopathology 2020, 76, 182–188. [Google Scholar] [CrossRef] [Green Version]
- Kalimuthu, S.N.; Wilson, G.W.; Grant, R.C.; Seto, M.; O’Kane, G.; Vajpeyi, R.; Notta, F.; Gallinger, S.; Chetty, R. Morphological Classification of Pancreatic Ductal Adenocarcinoma That Predicts Molecular Subtypes and Correlates with Clinical Outcome. Gut 2020, 69, 317–328. [Google Scholar] [CrossRef]
- Sántha, P.; Lenggenhager, D.; Finstadsveen, A.; Dorg, L.; Tøndel, K.; Amrutkar, M.; Gladhaug, I.P.; Verbeke, C. Morphological Heterogeneity in Pancreatic Cancer Reflects Structural and Functional Divergence. Cancers 2021, 13, 895. [Google Scholar] [CrossRef]
- Verbeke, C.; Webster, F.; Brosens, L.; Campbell, F.; del Chiaro, M.; Esposito, I.; Feakins, R.M.; Fukushima, N.; Gill, A.J.; Kakar, S.; et al. Dataset for the Reporting of Carcinoma of the Exocrine Pancreas: Recommendations from the International Collaboration on Cancer Reporting (ICCR). Histopathology 2021, 79, 902–912. [Google Scholar] [CrossRef]
- Pittman, M.E.; Rao, R.; Hruban, R.H. Classification, Morphology, Molecular Pathogenesis, and Outcome of Premalignant Lesions of the Pancreas. Arch. Pathol. Lab. Med. 2017, 141, 1606–1614. [Google Scholar] [CrossRef] [Green Version]
- Imai, K.; Karasaki, H.; Ono, Y.; Sasajima, J.; Chiba, S.; Funakoshi, H.; Muraki, M.; Hanaoka, H.; Furukawa, T.; Furukawa, H.; et al. Metachronous Pancreatic Cancer Originating from Disseminated Founder Pancreatic Intraductal Neoplasias (PanINs). J. Pathol. Clin. Res. 2015, 1, 76–82. [Google Scholar] [CrossRef] [PubMed]
- Basturk, O.; Hong, S.-M.; Wood, L.D.; Adsay, N.V.; Albores-Saavedra, J.; Biankin, A.V.; Brosens, L.A.A.; Fukushima, N.; Goggins, M.; Hruban, R.H.; et al. A Revised Classification System and Recommendations From the Baltimore Consensus Meeting for Neoplastic Precursor Lesions in the Pancreas. Am. J. Surg. Pathol. 2015, 39, 1730–1741. [Google Scholar] [CrossRef] [PubMed]
- Kopp, J.L.; von Figura, G.; Mayes, E.; Liu, F.-F.; Dubois, C.L.; Morris, J.P.; Pan, F.C.; Akiyama, H.; Wright, C.V.E.; Jensen, K.; et al. Identification of Sox9-Dependent Acinar-to-Ductal Reprogramming as the Principal Mechanism for Initiation of Pancreatic Ductal Adenocarcinoma. Cancer Cell 2012, 22, 737–750. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Bardeesy, N.; DePinho, R.A. Pancreatic Cancer Biology and Genetics. Nat. Rev. Cancer 2002, 2, 897–909. [Google Scholar] [CrossRef] [PubMed]
- Kanda, M.; Matthaei, H.; Wu, J.; Hong, S.; Yu, J.; Borges, M.; Hruban, R.H.; Maitra, A.; Kinzler, K.; Vogelstein, B.; et al. Presence of Somatic Mutations in Most Early-Stage Pancreatic Intraepithelial Neoplasia. Gastroenterology 2012, 142, 730–733.e9. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hingorani, S.R.; Petricoin, E.F.; Maitra, A.; Rajapakse, V.; King, C.; Jacobetz, M.A.; Ross, S.; Conrads, T.P.; Veenstra, T.D.; Hitt, B.A.; et al. Preinvasive and Invasive Ductal Pancreatic Cancer and Its Early Detection in the Mouse. Cancer Cell 2003, 4, 437–450. [Google Scholar] [CrossRef] [Green Version]
- Murphy, S.J.; Hart, S.N.; Lima, J.F.; Kipp, B.R.; Klebig, M.; Winters, J.L.; Szabo, C.; Zhang, L.; Eckloff, B.W.; Petersen, G.M.; et al. Genetic Alterations Associated With Progression From Pancreatic Intraepithelial Neoplasia to Invasive Pancreatic Tumor. Gastroenterology 2013, 145, 1098–1109.e1. [Google Scholar] [CrossRef] [Green Version]
- Hingorani, S.R.; Wang, L.; Multani, A.S.; Combs, C.; Deramaudt, T.B.; Hruban, R.H.; Rustgi, A.K.; Chang, S.; Tuveson, D.A. Trp53R172H and KrasG12D Cooperate to Promote Chromosomal Instability and Widely Metastatic Pancreatic Ductal Adenocarcinoma in Mice. Cancer Cell 2005, 7, 469–483. [Google Scholar] [CrossRef] [Green Version]
- Bardeesy, N.; Cheng, K.; Berger, J.H.; Chu, G.C.; Pahler, J.; Olson, P.; Hezel, A.F.; Horner, J.; Lauwers, G.Y.; Hanahan, D.; et al. Smad4 Is Dispensable for Normal Pancreas Development yet Critical in Progression and Tumor Biology of Pancreas Cancer. Genes Dev. 2006, 20, 3130–3146. [Google Scholar] [CrossRef] [Green Version]
- Witkiewicz, A.K.; McMillan, E.A.; Balaji, U.; Baek, G.; Lin, W.-C.; Mansour, J.; Mollaee, M.; Wagner, K.-U.; Koduru, P.; Yopp, A.; et al. Whole-Exome Sequencing of Pancreatic Cancer Defines Genetic Diversity and Therapeutic Targets. Nat. Commun. 2015, 6, 6744. [Google Scholar] [CrossRef]
- Miyamoto, Y.; Maitra, A.; Ghosh, B.; Zechner, U.; Argani, P.; Iacobuzio-Donahue, C.A.; Sriuranpong, V.; Iso, T.; Meszoely, I.M.; Wolfe, M.S.; et al. Notch Mediates TGFα-Induced Changes in Epithelial Differentiation during Pancreatic Tumorigenesis. Cancer Cell 2003, 3, 565–576. [Google Scholar] [CrossRef] [Green Version]
- Gaujoux, S.; Parvanescu, A.; Cesaretti, M.; Silve, C.; Bieche, I.; Rebours, V.; Lévy, P.; Sauvanet, A.; Cros, J. GNAS but Not Extended RAS Mutations Spectrum Are Associated with a Better Prognosis in Intraductal Pancreatic Mucinous Neo-plasms. Ann. Surg. Oncol. 2019, 26, 2640–2650. [Google Scholar] [CrossRef] [PubMed]
- Wu, J.; Matthaei, H.; Maitra, A.; Dal Molin, M.; Wood, L.D.; Eshleman, J.R.; Goggins, M.; Canto, M.I.; Schulick, R.D.; Edil, B.H.; et al. Recurrent GNAS Mutations Define an Unexpected Pathway for Pancreatic Cyst Development. Sci. Transl. Med. 2011, 3, 92ra66. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Furukawa, T.; Kuboki, Y.; Tanji, E.; Yoshida, S.; Hatori, T.; Yamamoto, M.; Shibata, N.; Shimizu, K.; Kamatani, N.; Shiratori, K. Whole-Exome Sequencing Uncovers Frequent GNAS Mutations in Intraductal Papillary Mucinous Neoplasms of the Pancreas. Sci. Rep. 2011, 1, 161. [Google Scholar] [CrossRef] [Green Version]
- Hosoda, W.; Sasaki, E.; Murakami, Y.; Yamao, K.; Shimizu, Y.; Yatabe, Y. GNAS Mutation Is a Frequent Event in Pancreatic Intraductal Papillary Mucinous Neoplasms and Associated Adenocarcinomas. Virchows Arch. 2015, 466, 665–674. [Google Scholar] [CrossRef]
- Kuboki, Y.; Shimizu, K.; Hatori, T.; Yamamoto, M.; Shibata, N.; Shiratori, K.; Furukawa, T. Molecular Biomarkers for Progression of Intraductal Papillary Mucinous Neoplasm of the Pancreas. Pancreas 2015, 44, 227–235. [Google Scholar] [CrossRef]
- Zhang, H.; Kong, Q.; Wang, J.; Jiang, Y.; Hua, H. Complex Roles of CAMP–PKA–CREB Signaling in Cancer. Exp. Hematol. Oncol. 2020, 9, 32. [Google Scholar] [CrossRef]
- Ji, Z.; Mei, F.C.; Johnson, B.H.; Thompson, E.B.; Cheng, X. Protein Kinase A, Not Epac, Suppresses Hedgehog Activity and Regulates Glucocorticoid Sensitivity in Acute Lymphoblastic Leukemia Cells. J. Biol. Chem. 2007, 282, 37370–37377. [Google Scholar] [CrossRef] [Green Version]
- Burdyga, A.; Conant, A.; Haynes, L.; Zhang, J.; Jalink, K.; Sutton, R.; Neoptolemos, J.; Costello, E.; Tepikin, A. CAMP Inhibits Migration, Ruffling and Paxillin Accumulation in Focal Adhesions of Pancreatic Ductal Adenocarcinoma Cells: Effects of PKA and EPAC. Biochim. Biophys. Acta (BBA)-Mol. Cell Res. 2013, 1833, 2664–2672. [Google Scholar] [CrossRef] [Green Version]
- O’Hayre, M.; Degese, M.S.; Gutkind, J.S. Novel Insights into G Protein and G Protein-Coupled Receptor Signaling in Cancer. Curr. Opin. Cell Biol. 2014, 27, 126–135. [Google Scholar] [CrossRef] [Green Version]
- Patra, K.C.; Kato, Y.; Mizukami, Y.; Widholz, S.; Boukhali, M.; Revenco, I.; Grossman, E.A.; Ji, F.; Sadreyev, R.I.; Liss, A.S.; et al. Mutant GNAS Drives Pancreatic Tumourigenesis by Inducing PKA-Mediated SIK Suppression and Reprogramming Lipid Metabolism. Nat. Cell Biol. 2018, 20, 811–822. [Google Scholar] [CrossRef] [PubMed]
- Lee, J.-H.; Kim, Y.; Choi, J.-W.; Kim, Y.-S. KRAS, GNAS, and RNF43 Mutations in Intraductal Papillary Mucinous Neo-plasm of the Pancreas: A Meta-Analysis. Springerplus 2016, 5, 1172. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Tan, M.C.; Basturk, O.; Brannon, A.R.; Bhanot, U.; Scott, S.N.; Bouvier, N.; LaFemina, J.; Jarnagin, W.R.; Berger, M.F.; Klimstra, D.; et al. GNAS and KRAS Mutations Define Separate Progression Pathways in Intraductal Papillary Mucinous Neoplasm-Associated Carcinoma. J. Am. Coll. Surg. 2015, 220, 845–854.e1. [Google Scholar] [CrossRef] [Green Version]
- Fujikura, K.; Hosoda, W.; Felsenstein, M.; Song, Q.; Reiter, J.G.; Zheng, L.; Beleva Guthrie, V.; Rincon, N.; Dal Molin, M.; Dudley, J.; et al. Multiregion Whole-Exome Sequencing of Intraductal Papillary Mucinous Neoplasms Reveals Frequent Somatic KLF4 Mutations Predominantly in Low-Grade Regions. Gut 2021, 70, 928–939. [Google Scholar] [CrossRef] [PubMed]
- Adsay, N.V.; Conlon, K.C.; Zee, S.Y.; Brennan, M.F.; Klimstra, D.S. Intraductal Papillary-Mucinous Neoplasms of the Pancreas. Cancer 2002, 94, 62–77. [Google Scholar] [CrossRef] [PubMed]
- Noë, M.; Brosens, L.A.A. Gastric- and Intestinal-Type IPMN: Two of a Kind? Virchows Arch. 2020, 477, 17–19. [Google Scholar] [CrossRef]
- Omori, Y.; Ono, Y.; Kobayashi, T.; Motoi, F.; Karasaki, H.; Mizukami, Y.; Makino, N.; Ueno, Y.; Unno, M.; Furukawa, T. How Does Intestinal-Type Intraductal Papillary Mucinous Neoplasm Emerge? CDX2 Plays a Critical Role in the Process of Intestinal Differentiation and Progression. Virchows Arch. 2020, 477, 21–31. [Google Scholar] [CrossRef]
- Omori, Y.; Ono, Y.; Tanino, M.; Karasaki, H.; Yamaguchi, H.; Furukawa, T.; Enomoto, K.; Ueda, J.; Sumi, A.; Katayama, J.; et al. Pathways of Progression From Intraductal Papillary Mucinous Neoplasm to Pancreatic Ductal Adenocarcinoma Based on Molecular Features. Gastroenterology 2019, 156, 647–661.e2. [Google Scholar] [CrossRef] [Green Version]
- Mukhopadhyay, S.; vander Heiden, M.G.; McCormick, F. The Metabolic Landscape of RAS-Driven Cancers from Biology to Therapy. Nat. Cancer 2021, 2, 271–283. [Google Scholar] [CrossRef]
- Jonckheere, N.; Vasseur, R.; van Seuningen, I. The Cornerstone K-RAS Mutation in Pancreatic Adenocarcinoma: From Cell Signaling Network, Target Genes, Biological Processes to Therapeutic Targeting. Crit. Rev. Oncol./Hematol. 2017, 111, 7–19. [Google Scholar] [CrossRef]
- Ying, H.; Kimmelman, A.C.; Lyssiotis, C.A.; Hua, S.; Chu, G.C.; Fletcher-Sananikone, E.; Locasale, J.W.; Son, J.; Zhang, H.; Coloff, J.L.; et al. Oncogenic Kras Maintains Pancreatic Tumors through Regulation of Anabolic Glucose Metabolism. Cell 2012, 149, 656–670. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Qian, Y.; Gong, Y.; Fan, Z.; Luo, G.; Huang, Q.; Deng, S.; Cheng, H.; Jin, K.; Ni, Q.; Yu, X.; et al. Molecular Alterations and Targeted Therapy in Pancreatic Ductal Adenocarcinoma. J. Hematol. Oncol. 2020, 13, 130. [Google Scholar] [CrossRef] [PubMed]
- Tao, S.; Wang, S.; Moghaddam, S.J.; Ooi, A.; Chapman, E.; Wong, P.K.; Zhang, D.D. Oncogenic KRAS Confers Chemoresistance by Upregulating NRF2. Cancer Res. 2014, 74, 7430–7441. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- DeNicola, G.M.; Karreth, F.A.; Humpton, T.J.; Gopinathan, A.; Wei, C.; Frese, K.; Mangal, D.; Yu, K.H.; Yeo, C.J.; Calhoun, E.S.; et al. Oncogene-Induced Nrf2 Transcription Promotes ROS Detoxification and Tumorigenesis. Nature 2011, 475, 106–109. [Google Scholar] [CrossRef] [PubMed]
- Mitsuishi, Y.; Taguchi, K.; Kawatani, Y.; Shibata, T.; Nukiwa, T.; Aburatani, H.; Yamamoto, M.; Motohashi, H. Nrf2 Redirects Glucose and Glutamine into Anabolic Pathways in Metabolic Reprogramming. Cancer Cell 2012, 22, 66–79. [Google Scholar] [CrossRef] [Green Version]
- Dodson, M.; de la Vega, M.R.; Cholanians, A.B.; Schmidlin, C.J.; Chapman, E.; Zhang, D.D. Modulating NRF2 in Disease: Timing Is Everything. Annu. Rev. Pharmacol. Toxicol. 2019, 59, 555–575. [Google Scholar] [CrossRef] [PubMed]
- Mukhopadhyay, S.; Goswami, D.; Adiseshaiah, P.P.; Burgan, W.; Yi, M.; Guerin, T.M.; Kozlov, S.V.; Nissley, D.V.; McCormick, F. Undermining Glutaminolysis Bolsters Chemotherapy While NRF2 Promotes Chemoresistance in KRAS-Driven Pancreatic Cancers. Cancer Res. 2020, 80, 1630–1643. [Google Scholar] [CrossRef] [Green Version]
- Collisson, E.A.; Sadanandam, A.; Olson, P.; Gibb, W.J.; Truitt, M.; Gu, S.; Cooc, J.; Weinkle, J.; Kim, G.E.; Jakkula, L.; et al. Subtypes of Pancreatic Ductal Adenocarcinoma and Their Differing Responses to Therapy. Nat. Med. 2011, 17, 500–503. [Google Scholar] [CrossRef]
- Moffitt, R.A.; Marayati, R.; Flate, E.L.; Volmar, K.E.; Loeza, S.G.H.; Hoadley, K.A.; Rashid, N.U.; Williams, L.A.; Eaton, S.C.; Chung, A.H.; et al. Virtual Microdissection Identifies Distinct Tumor- and Stroma-Specific Subtypes of Pancreatic Ductal Adenocarcinoma. Nat. Genet. 2015, 47, 1168–1178. [Google Scholar] [CrossRef]
- Bailey, P.; Chang, D.K.; Nones, K.; Johns, A.L.; Patch, A.-M.; Gingras, M.-C.; Miller, D.K.; Christ, A.N.; Bruxner, T.J.C.; Quinn, M.C.; et al. Genomic Analyses Identify Molecular Subtypes of Pancreatic Cancer. Nature 2016, 531, 47–52. [Google Scholar] [CrossRef]
- Birnbaum, D.J.; Finetti, P.; Birnbaum, D.; Mamessier, E.; Bertucci, F. Validation and Comparison of the Molecular Classifications of Pancreatic Carcinomas. Mol. Cancer 2017, 16, 168. [Google Scholar] [CrossRef] [Green Version]
- Liu, J.; Liu, Q.; Zhang, X.; Cui, M.; Li, T.; Zhang, Y.; Liao, Q. Immune Subtyping for Pancreatic Cancer with Implication in Clinical Outcomes and Improving Immunotherapy. Cancer Cell Int. 2021, 21, 137. [Google Scholar] [CrossRef]
- Adsay, V.; Mino-Kenudson, M.; Furukawa, T.; Basturk, O.; Zamboni, G.; Marchegiani, G.; Bassi, C.; Salvia, R.; Malleo, G.; Paiella, S.; et al. Pathologic Evaluation and Reporting of Intraductal Papillary Mucinous Neoplasms of the Pancreas and Other Tumoral Intraepithelial Neoplasms of Pancreatobiliary Tract. Ann. Surg. 2016, 263, 162–177. [Google Scholar] [CrossRef] [Green Version]
- Menon, K.V.; Gomez, D.; Smith, A.M.; Anthoney, A.; Verbeke, C.S. Impact of Margin Status on Survival Following Pancreatoduodenectomy for Cancer: The Leeds Pathology Protocol (LEEPP). HPB 2009, 11, 18–24. [Google Scholar] [CrossRef] [Green Version]
- Khaled, Y.S.; Mohsin, M.; Yee, A.; Adair, R.; Macutkiewicz, C.; Aldouri, A.; Smith, A. 10-Year Outcome of the Leeds Pathology Protocol (LEEPP) Following Pancreatoduodenectomy for Periampullary Pancreatic Cancer. HPB 2016, 18, e30–e31. [Google Scholar] [CrossRef] [Green Version]
- Esposito, I.; Kleeff, J.; Bergmann, F.; Reiser, C.; Herpel, E.; Friess, H.; Schirmacher, P.; Büchler, M.W. Most Pancreatic Cancer Resections Are R1 Resections. Ann. Surg. Oncol. 2008, 15, 1651–1660. [Google Scholar] [CrossRef]
- Campbell, F.; Smith, R.A.; Whelan, P.; Sutton, R.; Raraty, M.; Neoptolemos, J.P.; Ghaneh, P. Classification of R1 Re-sections for Pancreatic Cancer: The Prognostic Relevance of Tumour Involvement within 1 mm of a Resection Margin. Histopathology 2009, 55, 277–283. [Google Scholar] [CrossRef]
- Verbeke, C.S.; Leitch, D.; Menon, K.V.; McMahon, M.J.; Guillou, P.J.; Anthoney, A. Redefining the R1 Resection in Pancreatic Cancer. Br. J. Surg. 2006, 93, 1232–1237. [Google Scholar] [CrossRef]
- Sperti, C.; Pasquali, C.; Piccoli, A.; Pedrazzoli, S. Recurrence after Resection for Ductal Adenocarcinoma of the Pancreas. World J. Surg. 1997, 21, 195–200. [Google Scholar] [CrossRef]
- Richter, A.; Niedergethmann, M.; Sturm, J.W.; Lorenz, D.; Post, S.; Trede, M. Long-Term Results of Partial Pancreaticoduodenectomy for Ductal Adenocarcinoma of the Pancreatic Head: 25-Year Experience. World J. Surg. 2003, 27, 324–329. [Google Scholar] [CrossRef]
- Kurlinkus, B.; Ahola, R.; Zwart, E.; Halimi, A.; Yilmaz, B.S.; Ceyhan, G.O.; Laukkarinen, J. In the Era of the Leeds Protocol: A Systematic Review and A Meta-Analysis on the Effect of Resection Margins on Survival Among Pancreatic Ductal Adenocarcinoma Patients. Scand. J. Surg. 2020, 109, 11–17. [Google Scholar] [CrossRef]
- Nappo, G.; Borzomati, D.; Zerbi, A.; Spaggiari, P.; Boggi, U.; Campani, D.; Mrowiec, S.; Liszka, Ł.; Coppola, A.; Amato, M.; et al. The Role of Pathological Method and Clearance Definition for the Evaluation of Margin Status after Pancreatoduodenectomy for Periampullary Cancer. Results of a Multicenter Prospective Randomized Trial. Cancers 2021, 13, 2097. [Google Scholar] [CrossRef]
- Matthaei, H.; Hong, S.-M.; Mayo, S.C.; dal Molin, M.; Olino, K.; Venkat, R.; Goggins, M.; Herman, J.M.; Edil, B.H.; Wolfgang, C.L.; et al. Presence of Pancreatic Intraepithelial Neoplasia in the Pancreatic Transection Margin Does Not Influence Outcome in Patients with R0 Resected Pancreatic Cancer. Ann. Surg. Oncol. 2011, 18, 3493–3499. [Google Scholar] [CrossRef]
- Sato, H.; Liss, A.S.; Mizukami, Y. Large-Duct Pattern Invasive Adenocarcinoma of the Pancreas–a Variant Mimicking Pancreatic Cystic Neoplasms: A Minireview. World J. Gastroenterol. 2021, 27, 3262–3278. [Google Scholar] [CrossRef]
- Verbeke, C. Morphological Heterogeneity in Ductal Adenocarcinoma of the Pancreas–Does It Matter? Pancreatology 2016, 16, 295–301. [Google Scholar] [CrossRef]
- Furukawa, T.; Klöppel, G.; Volkan Adsay, N.; Albores-Saavedra, J.; Fukushima, N.; Horii, A.; Hruban, R.H.; Kato, Y.; Klimstra, D.S.; Longnecker, D.S.; et al. Classification of Types of Intraductal Papillary-Mucinous Neoplasm of the Pancreas: A Consensus Study. Virchows Arch. 2005, 447, 794–799. [Google Scholar] [CrossRef]
- Shi, C.; Hruban, R.H. Intraductal Papillary Mucinous Neoplasm. Hum. Pathol. 2012, 43, 1–16. [Google Scholar] [CrossRef]
- Pelaez-Luna, M.; Chari, S.T.; Smyrk, T.C.; Takahashi, N.; Clain, J.E.; Levy, M.J.; Pearson, R.K.; Petersen, B.T.; Topazian, M.D.; Vege, S.S.; et al. Do Consensus Indications for Resection in Branch Duct Intraductal Papillary Mucinous Neoplasm Predict Malignancy? A Study of 147 Patients. Am. J. Gastroenterol. 2007, 102, 1759–1764. [Google Scholar] [CrossRef]
- Samad, A.; Conway, A.B.; Attam, R.; Jessurun, J.; Pambuccian, S.E. Cytologic Features of Pancreatic Adenocarcinoma with “Vacuolated Cell Pattern.” Report of a Case Diagnosed by Endoscopic Ultrasound-Guided Fine-Needle Aspiration. Diagn. Cytopathol. 2014, 42, 302–307. [Google Scholar] [CrossRef]
- Yamaguchi, K.; Kanemitsu, S.; Hatori, T.; Maguchi, H.; Shimizu, Y.; Tada, M.; Nakagohri, T.; Hanada, K.; Osanai, M.; Noda, Y.; et al. Pancreatic Ductal Adenocarcinoma Derived From IPMN and Pancreatic Ductal Adenocarcinoma Concomitant With IPMN. Pancreas 2011, 40, 571–580. [Google Scholar] [CrossRef]
- Tanaka, M.; Fernández-del Castillo, C.; Kamisawa, T.; Jang, J.Y.; Levy, P.; Ohtsuka, T.; Salvia, R.; Shimizu, Y.; Tada, M.; Wolfgang, C.L. Revisions of International Consensus Fukuoka Guidelines for the Management of IPMN of the Pancreas. Pancreatology 2017, 17, 738–753. [Google Scholar] [CrossRef]
- Luchini, C.; Brosens, L.A.A.; Wood, L.D.; Chatterjee, D.; Shin, J.I.; Sciammarella, C.; Fiadone, G.; Malleo, G.; Salvia, R.; Kryklyva, V.; et al. Comprehensive Characterisation of Pancreatic Ductal Adenocarcinoma with Microsatellite Instability: Histology, Molecular Pathology and Clinical Implications. Gut 2021, 70, 148–156. [Google Scholar] [CrossRef]
- Tannous, T.; Perez Rodriguez, A.L.; Mak, A.W.; Tannous, K.; Keating, M. Primary Clear Cell Carcinoma of the Pancreas: A Systematic Review. Cureus 2021, 13, e15668. [Google Scholar] [CrossRef]
- Sasaki, A.; Ishio, T.; Bandoh, T.; Shibata, K.; Matsumoto, T.; Aramaki, M.; Kawano, K.; Kitano, S.; Kashima, K.; Yokoyama, S. Clear Cell Carcinoma of the Pancreas: An Adenocarcinoma with Unusual Phenotype of Duct Cell Origin. J. Hepato-Biliary-Pancreat. Surg. 2004, 11, 140–144. [Google Scholar] [CrossRef]
- Kim, L.; Liao, J.; Zhang, M.; Talamonti, M.; Bentrem, D.; Rao, S. Clear Cell Carcinoma of the Pancreas: Histopathologic Features and a Unique Biomarker: Hepatocyte Nuclear Factor-1β. Mod. Pathol. 2008, 21, 1075–1083. [Google Scholar] [CrossRef] [Green Version]
- Singh, R.; Basturk, O.; Klimstra, D.S.; Zamboni, G.; Chetty, R.; Hussain, S.; la Rosa, S.; Yilmaz, A.; Capelli, P.; Capella, C.; et al. Lipid-Rich Variant of Pancreatic Endocrine Neoplasms. Am. J. Surg. Pathol. 2006, 30, 194–200. [Google Scholar] [CrossRef]
- Hoang, M.P.; Hruban, R.H.; Albores–Saavedra, J. Clear Cell Endocrine Pancreatic Tumor Mimicking Renal Cell Carcinoma. Am. J. Surg. Pathol. 2001, 25, 602–609. [Google Scholar] [CrossRef]
- Adsay, V.; Logani, S.; Sarkar, F.; Crissman, J.; Vaitkevicius, V. Foamy Gland Pattern of Pancreatic Ductal Adenocarcinoma. Am. J. Surg. Pathol. 2000, 24, 493–504. [Google Scholar] [CrossRef]
- Bellevicine, C.; Malapelle, U.; Iaccarino, A.; Schettino, P.; Napolitano, V.; Zeppa, P.; Troncone, G. Foamy Gland Pancreatic Ductal Adenocarcinoma Diagnosed on EUS-FNA: A Histochemical, Immunohistochemical, and Molecular Report. Diagn. Cytopathol. 2013, 41, 77–80. [Google Scholar] [CrossRef]
- Bagci, P.; Andea, A.A.; Basturk, O.; Jang, K.-T.; Erbarut, I.; Adsay, V. Large Duct Type Invasive Adenocarcinoma of the Pancreas with Microcystic and Papillary Patterns: A Potential Microscopic Mimic of Non-Invasive Ductal Neoplasia. Mod. Pathol. 2012, 25, 439–448. [Google Scholar] [CrossRef] [Green Version]
- Kosmahl, M.; Pauser, U.; Anlauf, M.; Klöppel, G. Pancreatic Ductal Adenocarcinomas with Cystic Features: Neither Rare nor Uniform. Mod. Pathol. 2005, 18, 1157–1164. [Google Scholar] [CrossRef] [Green Version]
- Kelly, P.J.; Shinagare, S.; Sainani, N.; Hong, X.; Ferrone, C.; Yilmaz, O.; Fernández-del Castillo, C.; Lauwers, G.Y.; Deshpande, V. Cystic Papillary Pattern in Pancreatic Ductal Adenocarcinoma. Am. J. Surg. Pathol. 2012, 36, 696–701. [Google Scholar] [CrossRef]
- Kurahara, H.; Maemura, K.; Mataki, Y.; Sakoda, M.; Shinchi, H.; Natsugoe, S. Impact of P53 and PDGFR-β Expression on Metastasis and Prognosis of Patients with Pancreatic Cancer. World J. Surg. 2016, 40, 1977–1984. [Google Scholar] [CrossRef]
- Shin, S.H.; Kim, S.C.; Hong, S.-M.; Kim, Y.H.; Song, K.-B.; Park, K.-M.; Lee, Y.-J. Genetic Alterations of K-Ras, P53, c-ErbB-2, and DPC4 in Pancreatic Ductal Adenocarcinoma and Their Correlation With Patient Survival. Pancreas 2013, 42, 216–222. [Google Scholar] [CrossRef]
- Oshima, M.; Okano, K.; Muraki, S.; Haba, R.; Maeba, T.; Suzuki, Y.; Yachida, S. Immunohistochemically Detected Expression of 3 Major Genes (CDKN2A/P16, TP53, and SMAD4/DPC4) Strongly Predicts Survival in Patients With Resectable Pancreatic Cancer. Ann. Surg. 2013, 258, 336–346. [Google Scholar] [CrossRef]
- Wang, B.-J.; Wang, L.; Yang, S.-Y.; Liu, Z.-J. Expression and Clinical Significance of IMP3 in Microdissected Premalignant and Malignant Pancreatic Lesions. Clin. Transl. Oncol. 2015, 17, 215–222. [Google Scholar] [CrossRef]
- Yantiss, R.K.; Woda, B.A.; Fanger, G.R.; Kalos, M.; Whalen, G.F.; Tada, H.; Andersen, D.K.; Rock, K.L.; Dresser, K. KOC (K Homology Domain Containing Protein Overexpressed in Cancer). Am. J. Surg. Pathol. 2005, 29, 188–195. [Google Scholar] [CrossRef]
- Schaeffer, D.F.; Owen, D.R.; Lim, H.J.; Buczkowski, A.K.; Chung, S.W.; Scudamore, C.H.; Huntsman, D.G.; Ng, S.S.; Owen, D.A. Insulin-like Growth Factor 2 MRNA Binding Protein 3 (IGF2BP3) Overexpression in Pancreatic Ductal Adenocarcinoma Correlates with Poor Survival. BMC Cancer 2010, 10, 59. [Google Scholar] [CrossRef] [Green Version]
- Wachter, D.L.; Schlabrakowski, A.; Hoegel, J.; Kristiansen, G.; Hartmann, A.; Riener, M.-O. Diagnostic Value of Immunohistochemical IMP3 Expression in Core Needle Biopsies of Pancreatic Ductal Adenocarcinoma. Am. J. Surg. Pathol. 2011, 35, 873–877. [Google Scholar] [CrossRef]
- Burdelski, C.; Jakani-Karimi, N.; Jacobsen, F.; M�ller-Koop, C.; Minner, S.; Simon, R.; Sauter, G.; Steurer, S.; Clauditz, T.; Wilczak, W. IMP3 Overexpression Occurs in Various Important Cancer Types and Is Linked to Aggressive Tumor Features: A Tissue Microarray Study on 8877 Human Cancers and Normal Tissues. Oncol. Rep. 2017, 39, 3–12. [Google Scholar] [CrossRef] [Green Version]
- Lu, D.; Vohra, P.; Chu, P.G.; Woda, B.; Rock, K.L.; Jiang, Z. An Oncofetal Protein IMP3. Am. J. Surg. Pathol. 2009, 33, 521–525. [Google Scholar] [CrossRef]
- Riener, M.-O.; Fritzsche, F.R.; Clavien, P.-A.; Pestalozzi, B.C.; Probst-Hensch, N.; Jochum, W.; Kristiansen, G. IMP3 Expression in Lesions of the Biliary Tract: A Marker for High-Grade Dysplasia and an Independent Prognostic Factor in Bile Duct Carcinomas. Hum. Pathol. 2009, 40, 1377–1383. [Google Scholar] [CrossRef]
- Shi, J.; Liu, H.; Wang, H.L.; Prichard, J.W.; Lin, F. Diagnostic Utility of von Hippel-Lindau Gene Product, Maspin, IMP3, and S100P in Adenocarcinoma of the Gallbladder. Hum. Pathol. 2013, 44, 503–511. [Google Scholar] [CrossRef]
- Liu, H.; Shi, J.; Anandan, V.; Wang, H.L.; Diehl, D.; Blansfield, J.; Gerhard, G.; Lin, F. Reevaluation and Identification of the Best Immunohistochemical Panel (PVHL, Maspin, S100P, IMP-3) for Ductal Adenocarcinoma of the Pancreas. Arch. Pathol. Lab. Med. 2012, 136, 601–609. [Google Scholar] [CrossRef]
- Hedegaard Jensen, G.; Mortensen, M.B.; Klöppel, G.; Nielsen, M.F.B.; Nielsen, O.; Detlefsen, S. Utility of PVHL, Maspin, IMP3, S100P and Ki67 in the Distinction of Autoimmune Pancreatitis from Pancreatic Ductal Adenocarcinoma. Pathol.-Res. Pract. 2020, 216, 152925. [Google Scholar] [CrossRef]
- Senoo, J.; Mikata, R.; Kishimoto, T.; Hayashi, M.; Kusakabe, Y.; Yasui, S.; Yamato, M.; Ohyama, H.; Sugiyama, H.; Tsuyuguchi, T.; et al. Immunohistochemical Analysis of IMP3 and P53 Expression in Endoscopic Ultrasound-Guided Fine Needle Aspiration and Resected Specimens of Pancreatic Diseases. Pancreatology 2018, 18, 176–183. [Google Scholar] [CrossRef]
- Mikata, R.; Yasui, S.; Kishimoto, T.; Kouchi, Y.; Shingyoji, A.; Senoo, J.; Takahashi, K.; Nagashima, H.; Kusakabe, Y.; Ohyama, H.; et al. Diagnostic Value of IMP3 and P53 Immunohistochemical Staining in EUS-Guided Fine-Needle Aspiration for Solid Pancreatic Tumors. Sci. Rep. 2021, 11, 17257. [Google Scholar] [CrossRef]
- Xiao, W.; Hong, H.; Awadallah, A.; Zhou, L.; Xin, W. Utilization of CDX2 Expression in Diagnosing Pancreatic Ductal Adenocarcinoma and Predicting Prognosis. PLoS ONE 2014, 9, e86853. [Google Scholar] [CrossRef] [Green Version]
- Kaiser, J.; Hinz, U.; Mayer, P.; Hank, T.; Niesen, W.; Hackert, T.; Gaida, M.M.; Büchler, M.W.; Strobel, O. Clinical Presentation and Prognosis of Adenosquamous Carcinoma of the Pancreas–Matched-Pair Analysis with Pancreatic Ductal Adenocarcinoma. Eur. J. Surg. Oncol. 2021, 47, 1734–1741. [Google Scholar] [CrossRef]
- Haugk, B.; Horton, D.; Oppong, K.; Leeds, J.; Darne, A.; Sloan, P.; Ness, T.; Jones, C.; Bassett, P.; Nayar, M. Morphological and P40 Immunohistochemical Analysis of Squamous Differentiation in Endoscopic Ultrasound Guided Fine Needle Biopsies of Pancreatic Ductal Adenocarcinoma. Sci. Rep. 2021, 11, 21290. [Google Scholar] [CrossRef]
- Shi, Y.; Gao, W.; Lytle, N.K.; Huang, P.; Yuan, X.; Dann, A.M.; Ridinger-Saison, M.; DelGiorno, K.E.; Antal, C.E.; Liang, G.; et al. Targeting LIF-Mediated Paracrine Interaction for Pancreatic Cancer Therapy and Monitoring. Nature 2019, 569, 131–135. [Google Scholar] [CrossRef] [PubMed]
- Bressy, C.; Lac, S.; Nigri, J.; Leca, J.; Roques, J.; Lavaut, M.-N.; Secq, V.; Guillaumond, F.; Bui, T.-T.; Pietrasz, D.; et al. LIF Drives Neural Remodeling in Pancreatic Cancer and Offers a New Candidate Biomarker. Cancer Res. 2018, 78, 909–921. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Wang, M.-T.; Fer, N.; Galeas, J.; Collisson, E.A.; Kim, S.E.; Sharib, J.; McCormick, F. Blockade of Leukemia Inhibitory Factor as a Therapeutic Approach to KRAS Driven Pancreatic Cancer. Nat. Commun. 2019, 10, 3055. [Google Scholar] [CrossRef] [PubMed]
- Erkan, M.; Michalski, C.W.; Rieder, S.; Reiser–Erkan, C.; Abiatari, I.; Kolb, A.; Giese, N.A.; Esposito, I.; Friess, H.; Kleeff, J. The Activated Stroma Index Is a Novel and Independent Prognostic Marker in Pancreatic Ductal Adenocarcinoma. Clin. Gastroenterol. Hepatol. 2008, 6, 1155–1161. [Google Scholar] [CrossRef]
- Mahajan, U.M.; Langhoff, E.; Goni, E.; Costello, E.; Greenhalf, W.; Halloran, C.; Ormanns, S.; Kruger, S.; Boeck, S.; Ribback, S.; et al. Immune Cell and Stromal Signature Associated With Progression-Free Survival of Patients With Resected Pancreatic Ductal Adenocarcinoma. Gastroenterology 2018, 155, 1625–1639.e2. [Google Scholar] [CrossRef] [Green Version]
- Ikenaga, N.; Ohuchida, K.; Mizumoto, K.; Cui, L.; Kayashima, T.; Morimatsu, K.; Moriyama, T.; Nakata, K.; Fujita, H.; Tanaka, M. CD10+ Pancreatic Stellate Cells Enhance the Progression of Pancreatic Cancer. Gastroenterology 2010, 139, 1041–1051.e8. [Google Scholar] [CrossRef]
- Mizutani, Y.; Kobayashi, H.; Iida, T.; Asai, N.; Masamune, A.; Hara, A.; Esaki, N.; Ushida, K.; Mii, S.; Shiraki, Y.; et al. Meflin-Positive Cancer-Associated Fibroblasts Inhibit Pancreatic Carcinogenesis. Cancer Res. 2019, 79, 5367–5381. [Google Scholar] [CrossRef] [Green Version]
- Shindo, K.; Aishima, S.; Ohuchida, K.; Fujiwara, K.; Fujino, M.; Mizuuchi, Y.; Hattori, M.; Mizumoto, K.; Tanaka, M.; Oda, Y. Podoplanin Expression in Cancer-Associated Fibroblasts Enhances Tumor Progression of Invasive Ductal Carcinoma of the Pancreas. Mol. Cancer 2013, 12, 168. [Google Scholar] [CrossRef] [Green Version]
- Hirayama, K.; Kono, H.; Nakata, Y.; Akazawa, Y.; Wakana, H.; Fukushima, H.; Fujii, H. Expression of Podoplanin in Stromal Fibroblasts Plays a Pivotal Role in the Prognosis of Patients with Pancreatic Cancer. Surg. Today 2018, 48, 110–118. [Google Scholar] [CrossRef] [Green Version]
- Hu, G.; Wang, S.; Xu, F.; Ding, Q.; Chen, W.; Zhong, K.; Huang, L.; Xu, Q. Tumor-Infiltrating Podoplanin+ Fibroblasts Predict Worse Outcome in Solid Tumors. Cell. Physiol. Biochem. 2018, 51, 1041–1050. [Google Scholar] [CrossRef]
- Song, Y.; Tang, M.-Y.; Chen, W.; Wang, Z.; Wang, S.-L. High JAK2 Protein Expression Predicts a Poor Prognosis in Patients with Resectable Pancreatic Ductal Adenocarcinoma. Dis. Markers 2020, 2020, 1–8. [Google Scholar] [CrossRef] [PubMed]
- Singh, P.; Srinivasan, R.; Wig, J.D. SMAD4 Genetic Alterations Predict a Worse Prognosis in Patients With Pancreatic Ductal Adenocarcinoma. Pancreas 2012, 41, 541–546. [Google Scholar] [CrossRef]
- Boone, B.A.; Sabbaghian, S.; Zenati, M.; Marsh, J.W.; Moser, A.J.; Zureikat, A.H.; Singhi, A.D.; Zeh, H.J.; Krasinskas, A.M. Loss of SMAD4 Staining in Pre-Operative Cell Blocks Is Associated with Distant Metastases Following Pancreaticoduodenectomy with Venous Resection for Pancreatic Cancer. J. Surg. Oncol. 2014, 110, 171–175. [Google Scholar] [CrossRef] [PubMed]
- Winter, J.M.; Tang, L.H.; Klimstra, D.S.; Liu, W.; Linkov, I.; Brennan, M.F.; D’Angelica, M.I.; DeMatteo, R.P.; Fong, Y.; Jarnagin, W.R.; et al. Failure Patterns in Resected Pancreas Adenocarcinoma: Lack of Predicted Benefit to SMAD4 Ex-pression. Ann. Surg. 2013, 258, 331–335. [Google Scholar] [CrossRef] [PubMed]
- Biankin, A.V.; Morey, A.L.; Lee, C.-S.; Kench, J.G.; Biankin, S.A.; Hook, H.C.; Head, D.R.; Hugh, T.B.; Sutherland, R.L.; Henshall, S.M. DPC4/Smad4 Expression and Outcome in Pancreatic Ductal Adenocarcinoma. J. Clin. Oncol. 2002, 20, 4531–4542. [Google Scholar] [CrossRef] [PubMed]
- Yachida, S.; White, C.M.; Naito, Y.; Zhong, Y.; Brosnan, J.A.; Macgregor-Das, A.M.; Morgan, R.A.; Saunders, T.; Laheru, D.A.; Herman, J.M.; et al. Clinical Significance of the Genetic Landscape of Pancreatic Cancer and Implications for Identification of Potential Long-Term Survivors. Clin. Cancer Res. 2012, 18, 6339–6347. [Google Scholar] [CrossRef] [Green Version]
- Schlitter, A.M.; Segler, A.; Steiger, K.; Michalski, C.W.; Jäger, C.; Konukiewitz, B.; Pfarr, N.; Endris, V.; Bettstetter, M.; Kong, B.; et al. Molecular, Morphological and Survival Analysis of 177 Resected Pancreatic Ductal Adenocarcinomas (PDACs): Identification of Prognostic Subtypes. Sci. Rep. 2017, 7, 41064. [Google Scholar] [CrossRef] [Green Version]
- Jeong, J.; Park, Y.N.; Park, J.S.; Yoon, D.-S.; Chi, H.S.; Kim, B.R. Clinical Significance of P16 Protein Expression Loss and Aberrant P53 Protein Expression in Pancreatic Cancer. Yonsei Med. J. 2005, 46, 519. [Google Scholar] [CrossRef] [Green Version]
- Simone, C.G.; Zuluaga Toro, T.; Chan, E.; Feely, M.M.; Trevino, J.G.; George, T.J. Characteristics and Outcomes of Adenosquamous Carcinoma of the Pancreas. Gastrointest. Cancer Res. 2013, 6, 75–79. [Google Scholar] [CrossRef] [Green Version]
- Matsuo, Y.; Ochi, N.; Sawai, H.; Yasuda, A.; Takahashi, H.; Funahashi, H.; Takeyama, H.; Tong, Z.; Guha, S. CXCL8/IL-8 and CXCL12/SDF-1α Co-Operatively Promote Invasiveness and Angiogenesis in Pancreatic Cancer. Int. J. Cancer 2009, 124, 853–861. [Google Scholar] [CrossRef] [Green Version]
- Gao, Z.; Wang, X.; Wu, K.; Zhao, Y.; Hu, G. Pancreatic Stellate Cells Increase the Invasion of Human Pancreatic Cancer Cells through the Stromal Cell-Derived Factor-1/CXCR4 Axis. Pancreatology 2010, 10, 186–193. [Google Scholar] [CrossRef] [PubMed]
- Xu, Z.; Vonlaufen, A.; Phillips, P.A.; Fiala-Beer, E.; Zhang, X.; Yang, L.; Biankin, A.V.; Goldstein, D.; Pirola, R.C.; Wilson, J.S.; et al. Role of Pancreatic Stellate Cells in Pancreatic Cancer Metastasis. Am. J. Pathol. 2010, 177, 2585–2596. [Google Scholar] [CrossRef] [PubMed]
- Olivares, O.; Mayers, J.R.; Gouirand, V.; Torrence, M.E.; Gicquel, T.; Borge, L.; Lac, S.; Roques, J.; Lavaut, M.-N.; Berthezène, P.; et al. Collagen-Derived Proline Promotes Pancreatic Ductal Adenocarcinoma Cell Survival under Nu-trient Limited Conditions. Nat. Commun. 2017, 8, 16031. [Google Scholar] [CrossRef] [PubMed]
- Kumar, V.; Donthireddy, L.; Marvel, D.; Condamine, T.; Wang, F.; Lavilla-Alonso, S.; Hashimoto, A.; Vonteddu, P.; Behera, R.; Goins, M.A.; et al. Cancer-Associated Fibroblasts Neutralize the Anti-Tumor Effect of CSF1 Receptor Blockade by Inducing PMN-MDSC Infiltration of Tumors. Cancer Cell 2017, 32, 654–668.e5. [Google Scholar] [CrossRef] [Green Version]
- Biffi, G.; Oni, T.E.; Spielman, B.; Hao, Y.; Elyada, E.; Park, Y.; Preall, J.; Tuveson, D.A. IL1-Induced JAK/STAT Signaling Is Antagonized by TGFβ to Shape CAF Heterogeneity in Pancreatic Ductal Adenocarcinoma. Cancer Discov. 2019, 9, 282–301. [Google Scholar] [CrossRef] [Green Version]
- Scherz-Shouval, R.; Santagata, S.; Mendillo, M.L.; Sholl, L.M.; Ben-Aharon, I.; Beck, A.H.; Dias-Santagata, D.; Koeva, M.; Stemmer, S.M.; Whitesell, L.; et al. The Reprogramming of Tumor Stroma by HSF1 Is a Potent Enabler of Malignancy. Cell 2014, 158, 564–578. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Feig, C.; Gopinathan, A.; Neesse, A.; Chan, D.S.; Cook, N.; Tuveson, D.A. The Pancreas Cancer Microenvironment. Clin. Cancer Res. 2012, 18, 4266–4276. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Jacobetz, M.A.; Chan, D.S.; Neesse, A.; Bapiro, T.E.; Cook, N.; Frese, K.K.; Feig, C.; Nakagawa, T.; Caldwell, M.E.; Zecchini, H.I.; et al. Hyaluronan Impairs Vascular Function and Drug Delivery in a Mouse Model of Pancreatic Cancer. Gut 2013, 62, 112–120. [Google Scholar] [CrossRef]
- Amrutkar, M.; Aasrum, M.; Verbeke, C.S.; Gladhaug, I.P. Secretion of Fibronectin by Human Pancreatic Stellate Cells Promotes Chemoresistance to Gemcitabine in Pancreatic Cancer Cells. BMC Cancer 2019, 19, 596. [Google Scholar] [CrossRef] [Green Version]
- Adamek, D.; Stoj, A. Cancer as a “Mafia” within the Body: A Proposition of Conceptual Approach That Seems Congruent to the Complex Biology of the Disease. Integr. Cancer Sci. Ther. 2014, 1, 51–52. [Google Scholar] [CrossRef]
- van Cutsem, E.; Tempero, M.A.; Sigal, D.; Oh, D.-Y.; Fazio, N.; Macarulla, T.; Hitre, E.; Hammel, P.; Hendifar, A.E.; Bates, S.E.; et al. Randomized Phase III Trial of Pegvorhyaluronidase Alfa With Nab-Paclitaxel Plus Gemcitabine for Patients With Hyaluronan-High Metastatic Pancreatic Adenocarcinoma. J. Clin. Oncol. 2020, 38, 3185–3194. [Google Scholar] [CrossRef] [PubMed]
- Hingorani, S.R.; Zheng, L.; Bullock, A.J.; Seery, T.E.; Harris, W.P.; Sigal, D.S.; Braiteh, F.; Ritch, P.S.; Zalupski, M.M.; Bahary, N.; et al. HALO 202: Randomized Phase II Study of PEGPH20 Plus Nab-Paclitaxel/Gemcitabine Versus Nab-Paclitaxel/Gemcitabine in Patients With Untreated, Metastatic Pancreatic Ductal Adenocarcinoma. J. Clin. Oncol. 2018, 36, 359–366. [Google Scholar] [CrossRef] [PubMed]
- North, B.; Kocher, H.M.; Sasieni, P. A New Pragmatic Design for Dose Escalation in Phase 1 Clinical Trials Using an Adaptive Continual Reassessment Method. BMC Cancer 2019, 19, 632. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Olive, K.P.; Jacobetz, M.A.; Davidson, C.J.; Gopinathan, A.; McIntyre, D.; Honess, D.; Madhu, B.; Goldgraben, M.A.; Caldwell, M.E.; Allard, D.; et al. Inhibition of Hedgehog Signaling Enhances Delivery of Chemotherapy in a Mouse Model of Pancreatic Cancer. Science 2009, 324, 1457–1461. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Rhim, A.D.; Oberstein, P.E.; Thomas, D.H.; Mirek, E.T.; Palermo, C.F.; Sastra, S.A.; Dekleva, E.N.; Saunders, T.; Becerra, C.P.; Tattersall, I.W.; et al. Stromal Elements Act to Restrain, Rather Than Support, Pancreatic Ductal Adenocarcinoma. Cancer Cell 2014, 25, 735–747. [Google Scholar] [CrossRef] [Green Version]
- Özdemir, B.C.; Pentcheva-Hoang, T.; Carstens, J.L.; Zheng, X.; Wu, C.-C.; Simpson, T.R.; Laklai, H.; Sugimoto, H.; Kahlert, C.; Novitskiy, S.V.; et al. Depletion of Carcinoma-Associated Fibroblasts and Fibrosis Induces Immunosuppression and Accelerates Pancreas Cancer with Reduced Survival. Cancer Cell 2014, 25, 719–734. [Google Scholar] [CrossRef] [Green Version]
- Sahai, E.; Astsaturov, I.; Cukierman, E.; DeNardo, D.G.; Egeblad, M.; Evans, R.M.; Fearon, D.; Greten, F.R.; Hingorani, S.R.; Hunter, T.; et al. A Framework for Advancing Our Understanding of Cancer-Associated Fibroblasts. Nat. Rev. Cancer 2020, 20, 174–186. [Google Scholar] [CrossRef] [Green Version]
- Rockey, D.C.; Weymouth, N.; Shi, Z. Smooth Muscle α Actin (Acta2) and Myofibroblast Function during Hepatic Wound Healing. PLoS ONE 2013, 8, e77166. [Google Scholar] [CrossRef] [Green Version]
- Wehr, A.Y.; Furth, E.E.; Sangar, V.; Blair, I.A.; Yu, K.H. Analysis of the Human Pancreatic Stellate Cell Secreted Proteome. Pancreas 2011, 40, 557–566. [Google Scholar] [CrossRef] [Green Version]
- Öhlund, D.; Handly-Santana, A.; Biffi, G.; Elyada, E.; Almeida, A.S.; Ponz-Sarvise, M.; Corbo, V.; Oni, T.E.; Hearn, S.A.; Lee, E.J.; et al. Distinct Populations of Inflammatory Fibroblasts and Myofibroblasts in Pancreatic Cancer. J. Exp. Med. 2017, 214, 579–596. [Google Scholar] [CrossRef]
- Arina, A.; Idel, C.; Hyjek, E.M.; Alegre, M.-L.; Wang, Y.; Bindokas, V.P.; Weichselbaum, R.R.; Schreiber, H. Tumor-Associated Fibroblasts Predominantly Come from Local and Not Circulating Precursors. Proc. Natl. Acad. Sci. USA 2016, 113, 7551–7556. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Scarlett, C.J. Contribution of Bone Marrow Derived Cells to the Pancreatic Tumor Microenvironment. Front. Physiol. 2013, 4, 56. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Lin, W.-R.; Inatomi, O.; Lee, C.Y.; Kallis, Y.N.; Otto, W.R.; Jeffery, R.; Poulsom, R.; Alison, M.R. Bone Marrow-Derived Cells Contribute to Cerulein-Induced Pancreatic Fibrosis in the Mouse. Int. J. Exp. Pathol. 2012, 93, 130–138. [Google Scholar] [CrossRef] [PubMed]
- Scarlett, C.J.; Colvin, E.K.; Pinese, M.; Chang, D.K.; Morey, A.L.; Musgrove, E.A.; Pajic, M.; Apte, M.; Henshall, S.M.; Sutherland, R.L.; et al. Recruitment and Activation of Pancreatic Stellate Cells from the Bone Marrow in Pancreatic Cancer: A Model of Tumor-Host Interaction. PLoS ONE 2011, 6, e26088. [Google Scholar] [CrossRef] [PubMed]
- Karnoub, A.E.; Dash, A.B.; Vo, A.P.; Sullivan, A.; Brooks, M.W.; Bell, G.W.; Richardson, A.L.; Polyak, K.; Tubo, R.; Weinberg, R.A. Mesenchymal Stem Cells within Tumour Stroma Promote Breast Cancer Metastasis. Nature 2007, 449, 557–563. [Google Scholar] [CrossRef] [PubMed]
- Raz, Y.; Cohen, N.; Shani, O.; Bell, R.E.; Novitskiy, S.V.; Abramovitz, L.; Levy, C.; Milyavsky, M.; Leider-Trejo, L.; Moses, H.L.; et al. Bone Marrow–Derived Fibroblasts Are a Functionally Distinct Stromal Cell Population in Breast Cancer. J. Exp. Med. 2018, 215, 3075–3093. [Google Scholar] [CrossRef] [Green Version]
- Mishra, P.J.; Mishra, P.J.; Humeniuk, R.; Medina, D.J.; Alexe, G.; Mesirov, J.P.; Ganesan, S.; Glod, J.W.; Banerjee, D. Carcinoma-Associated Fibroblast–Like Differentiation of Human Mesenchymal Stem Cells. Cancer Res. 2008, 68, 4331–4339. [Google Scholar] [CrossRef] [Green Version]
- Zhang, Y.; Daquinag, A.C.; Amaya-Manzanares, F.; Sirin, O.; Tseng, C.; Kolonin, M.G. Stromal Progenitor Cells from Endogenous Adipose Tissue Contribute to Pericytes and Adipocytes That Populate the Tumor Microenvironment. Cancer Res. 2012, 72, 5198–5208. [Google Scholar] [CrossRef] [Green Version]
- Bochet, L.; Lehuédé, C.; Dauvillier, S.; Wang, Y.Y.; Dirat, B.; Laurent, V.; Dray, C.; Guiet, R.; Maridonneau-Parini, I.; le Gonidec, S.; et al. Adipocyte-Derived Fibroblasts Promote Tumor Progression and Contribute to the Desmoplastic Reaction in Breast Cancer. Cancer Res. 2013, 73, 5657–5668. [Google Scholar] [CrossRef] [Green Version]
- Dirat, B.; Bochet, L.; Dabek, M.; Daviaud, D.; Dauvillier, S.; Majed, B.; Wang, Y.Y.; Meulle, A.; Salles, B.; le Gonidec, S.; et al. Cancer-Associated Adipocytes Exhibit an Activated Phenotype and Contribute to Breast Cancer Invasion. Cancer Res. 2011, 71, 2455–2465. [Google Scholar] [CrossRef] [Green Version]
- Zhang, Y.; Daquinag, A.; Traktuev, D.O.; Amaya-Manzanares, F.; Simmons, P.J.; March, K.L.; Pasqualini, R.; Arap, W.; Kolonin, M.G. White Adipose Tissue Cells Are Recruited by Experimental Tumors and Promote Cancer Progression in Mouse Models. Cancer Research 2009, 69, 5259–5266. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Quintás-Cardama, A.; Verstovsek, S. Molecular Pathways: JAK/STAT Pathway: Mutations, Inhibitors, and Resistance. Clin. Cancer Res. 2013, 19, 1933–1940. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Fukuda, A.; Wang, S.C.; Morris, J.P.; Folias, A.E.; Liou, A.; Kim, G.E.; Akira, S.; Boucher, K.M.; Firpo, M.A.; Mulvihill, S.J.; et al. Stat3 and MMP7 Contribute to Pancreatic Ductal Adenocarcinoma Initiation and Progression. Cancer Cell 2011, 19, 441–455. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Wörmann, S.M.; Song, L.; Ai, J.; Diakopoulos, K.N.; Kurkowski, M.U.; Görgülü, K.; Ruess, D.; Campbell, A.; Doglioni, C.; Jodrell, D.; et al. Loss of P53 Function Activates JAK2–STAT3 Signaling to Promote Pancreatic Tumor Growth, Stroma Modification, and Gemcitabine Resistance in Mice and Is Associated With Patient Survival. Gastroenterology 2016, 151, 180–193.e12. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Tape, C.J.; Ling, S.; Dimitriadi, M.; McMahon, K.M.; Worboys, J.D.; Leong, H.S.; Norrie, I.C.; Miller, C.J.; Poulogiannis, G.; Lauffenburger, D.A.; et al. Oncogenic KRAS Regulates Tumor Cell Signaling via Stromal Reciprocation. Cell 2016, 165, 910–920. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Bruzzese, F.; Hägglöf, C.; Leone, A.; Sjöberg, E.; Roca, M.S.; Kiflemariam, S.; Sjöblom, T.; Hammarsten, P.; Egevad, L.; Bergh, A.; et al. Local and Systemic Protumorigenic Effects of Cancer-Associated Fibroblast-Derived GDF15. Cancer Res. 2014, 74, 3408–3417. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- O’Connell, J.T.; Sugimoto, H.; Cooke, V.G.; MacDonald, B.A.; Mehta, A.I.; LeBleu, V.S.; Dewar, R.; Rocha, R.M.; Brentani, R.R.; Resnick, M.B.; et al. VEGF-A and Tenascin-C Produced by S100A4+ Stromal Cells Are Important for Metastatic Colonization. Proc. Natl. Acad. Sci. USA 2011, 108, 16002–16007. [Google Scholar] [CrossRef] [Green Version]
- Fukumura, D.; Xavier, R.; Sugiura, T.; Chen, Y.; Park, E.-C.; Lu, N.; Selig, M.; Nielsen, G.; Taksir, T.; Jain, R.K.; et al. Tumor Induction of VEGF Promoter Activity in Stromal Cells. Cell 1998, 94, 715–725. [Google Scholar] [CrossRef] [Green Version]
- Monteran, L.; Erez, N. The Dark Side of Fibroblasts: Cancer-Associated Fibroblasts as Mediators of Immunosuppression in the Tumor Microenvironment. Front. Immunol. 2019, 10, 1835. [Google Scholar] [CrossRef] [Green Version]
- Fearon, D.T. The Carcinoma-Associated Fibroblast Expressing Fibroblast Activation Protein and Escape from Immune Surveillance. Cancer Immunol. Res. 2014, 2, 187–193. [Google Scholar] [CrossRef] [Green Version]
- Zhang, Y.; Lazarus, J.; Steele, N.G.; Yan, W.; Lee, H.-J.; Nwosu, Z.C.; Halbrook, C.J.; Menjivar, R.E.; Kemp, S.B.; Sirihorachai, V.R.; et al. Regulatory T-Cell Depletion Alters the Tumor Microenvironment and Accelerates Pancreatic Carcinogenesis. Cancer Discov. 2020, 10, 422–439. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Martinez-Outschoorn, U.E.; Lisanti, M.P.; Sotgia, F. Catabolic Cancer-Associated Fibroblasts Transfer Energy and Biomass to Anabolic Cancer Cells, Fueling Tumor Growth. Semin. Cancer Biol. 2014, 25, 47–60. [Google Scholar] [CrossRef] [PubMed]
- Valencia, T.; Kim, J.Y.; Abu-Baker, S.; Moscat-Pardos, J.; Ahn, C.S.; Reina-Campos, M.; Duran, A.; Castilla, E.A.; Metallo, C.M.; Diaz-Meco, M.T.; et al. Metabolic Reprogramming of Stromal Fibroblasts through P62-MTORC1 Signaling Promotes Inflammation and Tumorigenesis. Cancer Cell 2014, 26, 121–135. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Bertero, T.; Oldham, W.M.; Grasset, E.M.; Bourget, I.; Boulter, E.; Pisano, S.; Hofman, P.; Bellvert, F.; Meneguzzi, G.; Bulavin, D.V.; et al. Tumor-Stroma Mechanics Coordinate Amino Acid Availability to Sustain Tumor Growth and Malignancy. Cell Metab. 2019, 29, 124–140.e10. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Sanford-Crane, H.; Abrego, J.; Sherman, M.H. Fibroblasts as Modulators of Local and Systemic Cancer Metabolism. Cancers 2019, 11, 619. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Martinez-Outschoorn, U.E.; Lin, Z.; Trimmer, C.; Flomenberg, N.; Wang, C.; Pavlides, S.; Pestell, R.G.; Howell, A.; Sotgia, F.; Lisanti, M.P. Cancer Cells Metabolically “Fertilize” the Tumor Microenvironment with Hydrogen Peroxide, Driving the Warburg Effect. Cell Cycle 2011, 10, 2504–2520. [Google Scholar] [CrossRef] [Green Version]
- Yan, W.; Wu, X.; Zhou, W.; Fong, M.Y.; Cao, M.; Liu, J.; Liu, X.; Chen, C.-H.; Fadare, O.; Pizzo, D.P.; et al. Cancer-Cell-Secreted Exosomal MiR-105 Promotes Tumour Growth through the MYC-Dependent Metabolic Reprogram-ming of Stromal Cells. Nat. Cell Biol. 2018, 20, 597–609. [Google Scholar] [CrossRef] [Green Version]
- Pavlides, S.; Whitaker-Menezes, D.; Castello-Cros, R.; Flomenberg, N.; Witkiewicz, A.K.; Frank, P.G.; Casimiro, M.C.; Wang, C.; Fortina, P.; Addya, S.; et al. The Reverse Warburg Effect: Aerobic Glycolysis in Cancer Associated Fibroblasts and the Tumor Stroma. Cell Cycle 2009, 8, 3984–4001. [Google Scholar] [CrossRef] [Green Version]
- Sousa, C.M.; Biancur, D.E.; Wang, X.; Halbrook, C.J.; Sherman, M.H.; Zhang, L.; Kremer, D.; Hwang, R.F.; Witkiewicz, A.K.; Ying, H.; et al. Pancreatic Stellate Cells Support Tumour Metabolism through Autophagic Alanine Secretion. Nature 2016, 536, 479–483. [Google Scholar] [CrossRef] [Green Version]
- Elyada, E.; Bolisetty, M.; Laise, P.; Flynn, W.F.; Courtois, E.T.; Burkhart, R.A.; Teinor, J.A.; Belleau, P.; Biffi, G.; Lucito, M.S.; et al. Cross-Species Single-Cell Analysis of Pancreatic Ductal Adenocarcinoma Reveals Antigen-Presenting Cancer-Associated Fibroblasts. Cancer Discov. 2019, 9, 1102–1123. [Google Scholar] [CrossRef] [Green Version]
- Dominguez, C.X.; Müller, S.; Keerthivasan, S.; Koeppen, H.; Hung, J.; Gierke, S.; Breart, B.; Foreman, O.; Bainbridge, T.W.; Castiglioni, A.; et al. Single-Cell RNA Sequencing Reveals Stromal Evolution into LRRC15 + Myofibroblasts as a Determinant of Patient Response to Cancer Immunotherapy. Cancer Discov. 2020, 10, 232–253. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hosein, A.N.; Huang, H.; Wang, Z.; Parmar, K.; Du, W.; Huang, J.; Maitra, A.; Olson, E.; Verma, U.; Brekken, R.A. Cellular Heterogeneity during Mouse Pancreatic Ductal Adenocarcinoma Progression at Single-Cell Resolution. JCI Insight 2019, 4, e129212. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Bernard, V.; Semaan, A.; Huang, J.; San Lucas, F.A.; Mulu, F.C.; Stephens, B.M.; Guerrero, P.A.; Huang, Y.; Zhao, J.; Kamyabi, N.; et al. Single-Cell Transcriptomics of Pancreatic Cancer Precursors Demonstrates Epithelial and Micro-environmental Heterogeneity as an Early Event in Neoplastic Progression. Clin. Cancer Res. 2019, 25, 2194–2205. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Djurec, M.; Graña, O.; Lee, A.; Troulé, K.; Espinet, E.; Cabras, L.; Navas, C.; Blasco, M.T.; Martín-Díaz, L.; Burdiel, M.; et al. Saa3 Is a Key Mediator of the Protumorigenic Properties of Cancer-Associated Fibroblasts in Pancreatic Tumors. Proc. Natl. Acad. Sci. USA 2018, 115, E1147–E1156. [Google Scholar] [CrossRef] [Green Version]
- Chen, Y.; LeBleu, V.S.; Carstens, J.L.; Sugimoto, H.; Zheng, X.; Malasi, S.; Saur, D.; Kalluri, R. Dual Reporter Genetic Mouse Models of Pancreatic Cancer Identify an Epithelial-to-mesenchymal Transition-independent Metastasis Program. EMBO Mol. Med. 2018, 10, e9085. [Google Scholar] [CrossRef] [PubMed]
- Li, C.; Heidt, D.G.; Dalerba, P.; Burant, C.F.; Zhang, L.; Adsay, V.; Wicha, M.; Clarke, M.F.; Simeone, D.M. Identification of Pancreatic Cancer Stem Cells. Cancer Res. 2007, 67, 1030–1037. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Lee, C.J.; Dosch, J.; Simeone, D.M. Pancreatic Cancer Stem Cells. J. Clin. Oncol. 2008, 26, 2806–2812. [Google Scholar] [CrossRef]
- Hermann, P.C.; Huber, S.L.; Herrler, T.; Aicher, A.; Ellwart, J.W.; Guba, M.; Bruns, C.J.; Heeschen, C. Distinct Populations of Cancer Stem Cells Determine Tumor Growth and Metastatic Activity in Human Pancreatic Cancer. Cell Stem Cell 2007, 1, 313–323. [Google Scholar] [CrossRef] [Green Version]
- Durko, L.; Wlodarski, W.; Stasikowska-Kanicka, O.; Wagrowska-Danilewicz, M.; Danilewicz, M.; Hogendorf, P.; Strzelczyk, J.; Malecka-Panas, E. Expression and Clinical Significance of Cancer Stem Cell Markers CD24, CD44, and CD133 in Pancreatic Ductal Adenocarcinoma and Chronic Pancreatitis. Dis. Markers 2017, 2017, 3276806. [Google Scholar] [CrossRef] [PubMed]
- Lee, S.H.; Kim, H.; Hwang, J.-H.; Shin, E.; Lee, H.S.; Hwang, D.W.; Cho, J.Y.; Yoon, Y.-S.; Han, H.-S.; Cha, B.H. CD24 and S100A4 Expression in Resectable Pancreatic Cancers With Earlier Disease Recurrence and Poor Survival. Pancreas 2014, 43, 380–388. [Google Scholar] [CrossRef]
- Ding, Q.; Miyazaki, Y.; Tsukasa, K.; Matsubara, S.; Yoshimitsu, M.; Takao, S. CD133 Facilitates Epithelial-Mesenchymal Transition through Interaction with the ERK Pathway in Pancreatic Cancer Metastasis. Mol. Cancer 2014, 13, 15. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zhang, Y.; Wei, J.; Wang, H.; Xue, X.; An, Y.; Tang, D.; Yuan, Z.; Wang, F.; Wu, J.; Zhang, J.; et al. Epithelial Mesenchymal Transition Correlates with CD24+CD44+ and CD133+ Cells in Pancreatic Cancer. Oncol. Rep. 2012, 27, 1599–1605. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Rasheed, Z.A.; Yang, J.; Wang, Q.; Kowalski, J.; Freed, I.; Murter, C.; Hong, S.-M.; Koorstra, J.-B.; Rajeshkumar, N.V.; He, X.; et al. Prognostic Significance of Tumorigenic Cells With Mesenchymal Features in Pancreatic Adenocarcinoma. JNCI J. Natl. Cancer Inst. 2010, 102, 340–351. [Google Scholar] [CrossRef] [PubMed]
- Lonardo, E.; Frias-Aldeguer, J.; Hermann, P.C.; Heeschen, C. Pancreatic Stellate Cells Form a Niche for Cancer Stem Cells and Promote Their Self-Renewal and Invasiveness. Cell Cycle 2012, 11, 1282–1290. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Lonardo, E.; Hermann, P.C.; Mueller, M.-T.; Huber, S.; Balic, A.; Miranda-Lorenzo, I.; Zagorac, S.; Alcala, S.; Rodriguez-Arabaolaza, I.; Ramirez, J.C.; et al. Nodal/Activin Signaling Drives Self-Renewal and Tumorigenicity of Pancreatic Cancer Stem Cells and Provides a Target for Combined Drug Therapy. Cell Stem Cell 2011, 9, 433–446. [Google Scholar] [CrossRef] [Green Version]
- Jordan, C.T. Cancer Stem Cells: Controversial or Just Misunderstood? Cell Stem Cell 2009, 4, 203–205. [Google Scholar] [CrossRef] [Green Version]
- Aronsson, L.; Bengtsson, A.; Torén, W.; Andersson, R.; Ansari, D. Intraductal Papillary Mucinous Carcinoma versus Pancreatic Ductal Adenocarcinoma: A Systematic Review and Meta-Analysis. Int. J. Surg. 2019, 71, 91–99. [Google Scholar] [CrossRef]
- Koh, Y.-X.; Chok, A.-Y.; Zheng, H.-L.; Tan, C.-S.; Goh, B.K.P. Systematic Review and Meta-Analysis Comparing the Surgical Outcomes of Invasive Intraductal Papillary Mucinous Neoplasms and Conventional Pancreatic Ductal Adenocarcinoma. Ann. Surg. Oncol. 2014, 21, 2782–2800. [Google Scholar] [CrossRef]
- Yopp, A.C.; Katabi, N.; Janakos, M.; Klimstra, D.S.; D’Angelica, M.I.; DeMatteo, R.P.; Fong, Y.; Brennan, M.F.; Jarnagin, W.R.; Allen, P.J. Invasive Carcinoma Arising in Intraductal Papillary Mucinous Neoplasms of the Pancreas. Ann. Surg. 2011, 253, 968–974. [Google Scholar] [CrossRef]
- Sohn, T.A.; Yeo, C.J.; Cameron, J.L.; Iacobuzio-Donahue, C.A.; Hruban, R.H.; Lillemoe, K.D. Intraductal Papillary Mucinous Neoplasms of the Pancreas: An Increasingly Recognized Clinicopathologic Entity. Ann. Surg. 2001, 234, 313–322. [Google Scholar] [CrossRef]
- Maire, F.; Hammel, P.; Terris, B.; Paye, F.; Scoazec, J.-Y.; Cellier, C.; Barthet, M.; O’Toole, D.; Rufat, P.; Partensky, C.; et al. Prognosis of Malignant Intraductal Papillary Mucinous Tumours of the Pancreas after Surgical Resection. Comparison with pancreatic ductal adenocarcinoma. Gut 2002, 51, 717–722. [Google Scholar] [CrossRef] [PubMed]
- Poultsides, G.A.; Reddy, S.; Cameron, J.L.; Hruban, R.H.; Pawlik, T.M.; Ahuja, N.; Jain, A.; Edil, B.H.; Iacobuzio-Donahue, C.A.; Schulick, R.D.; et al. Histopathologic Basis for the Favorable Survival after Resection of Intraductal Papillary Mucinous Neoplasm-Associated Invasive Adenocarcinoma of the Pancreas. Ann. Surg. 2010, 251, 470–476. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- OKABAYASHI, T.; SHIMA, Y.; KOSAKI, T.; SUMIYOSHI, T.; KOZUKI, A.; IIYAMA, T.; TAKEZAKI, Y.; KOBAYASHI, M.; NISHIMORI, I.; OGAWA, Y.; et al. Invasive Carcinoma Derived from Branch Duct-Type IPMN May Be a More Aggressive Neoplasm than That Derived from Main Duct-Type IPMN. Oncol. Lett. 2013, 5, 1819–1825. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Rodrigues, C.; Hank, T.; Qadan, M.; Ciprani, D.; Mino-Kenudson, M.; Weekes, C.D.; Ryan, D.P.; Clark, J.W.; Allen, J.N.; Hong, T.S.; et al. Impact of Adjuvant Therapy in Patients with Invasive Intraductal Papillary Mucinous Neoplasms of the Pancreas. Pancreatology 2020, 20, 722–728. [Google Scholar] [CrossRef] [PubMed]
- D’Angelica, M.; Brennan, M.F.; Suriawinata, A.A.; Klimstra, D.; Conlon, K.C. Intraductal Papillary Mucinous Neoplasms of the Pancreas. Ann. Surg. 2004, 239, 400–408. [Google Scholar] [CrossRef] [PubMed]
- Mino-Kenudson, M.; Fernandez-del Castillo, C.; Baba, Y.; Valsangkar, N.P.; Liss, A.S.; Hsu, M.; Correa-Gallego, C.; Ingkakul, T.; Perez Johnston, R.; Turner, B.G.; et al. Prognosis of Invasive Intraductal Papillary Mucinous Neoplasm Depends on Histological and Precursor Epithelial Subtypes. Gut 2011, 60, 1712–1720. [Google Scholar] [CrossRef] [Green Version]
- Luchini, C.; Bibeau, F.; Ligtenberg, M.J.L.; Singh, N.; Nottegar, A.; Bosse, T.; Miller, R.; Riaz, N.; Douillard, J.-Y.; Andre, F.; et al. ESMO Recommendations on Microsatellite Instability Testing for Immunotherapy in Cancer, and Its Relationship with PD-1/PD-L1 Expression and Tumour Mutational Burden: A Systematic Review-Based Approach. Ann. Oncol. 2019, 30, 1232–1243. [Google Scholar] [CrossRef] [Green Version]
- Marabelle, A.; Le, D.T.; Ascierto, P.A.; di Giacomo, A.M.; de Jesus-Acosta, A.; Delord, J.-P.; Geva, R.; Gottfried, M.; Penel, N.; Hansen, A.R.; et al. Efficacy of Pembrolizumab in Patients With Noncolorectal High Microsatellite Instability/Mismatch Repair–Deficient Cancer: Results From the Phase II KEYNOTE-158 Study. J. Clin. Oncol. 2020, 38, 1–10. [Google Scholar] [CrossRef]
- Somerville, T.D.; Biffi, G.; Daßler-Plenker, J.; Hur, S.K.; He, X.-Y.; Vance, K.E.; Miyabayashi, K.; Xu, Y.; Maia-Silva, D.; Klingbeil, O.; et al. Squamous Trans-Differentiation of Pancreatic Cancer Cells Promotes Stromal Inflammation. Elife 2020, 9, e53381. [Google Scholar] [CrossRef] [Green Version]
- Boyd, C.A.; Benarroch-Gampel, J.; Sheffield, K.M.; Cooksley, C.D.; Riall, T.S. 415 Patients with Adenosquamous Carcinoma of the Pancreas: A Population-Based Analysis of Prognosis and Survival. J. Surg. Res. 2012, 174, 12–19. [Google Scholar] [CrossRef] [Green Version]
- Byun, Y.; Lee, K.; Jang, J.; Han, Y.; Choi, Y.J.; Kang, J.S.; Kim, H.; Kwon, W. Peritumoral Lymph Nodes in Pancreatic Cancer Revisited; Is It Truly Equivalent to Lymph Node Metastasis? J. Hepato-Biliary-Pancreat. Sci. 2021, 28, 893–901. [Google Scholar] [CrossRef] [PubMed]
- Speichinger, F.; Dragomir, M.P.; Schallenberg, S.; Loch, F.N.; Degro, C.E.; Baukloh, A.-K.; Hartmann, L.; Pozios, I.; Schineis, C.; Margonis, G.A.; et al. Rethinking the TNM Classification Regarding Direct Lymph Node Invasion in Pancreatic Ductal Adenocarcinoma. Cancers 2021, 14, 201. [Google Scholar] [CrossRef] [PubMed]
- Hoshikawa, M.; Ogata, S.; Nishikawa, M.; Kimura, A.; Einama, T.; Noro, T.; Aosasa, S.; Hase, K.; Tsujimoto, H.; Ueno, H.; et al. Pathomorphological Features of Metastatic Lymph Nodes as Predictors of Postoperative Prognosis in Pancreatic Cancer. Medicine 2019, 98, e14369. [Google Scholar] [CrossRef] [PubMed]
- Williams, J.L.; Nguyen, A.H.; Rochefort, M.; Muthusamy, V.R.; Wainberg, Z.A.; Dawson, D.W.; Tomlinson, J.S.; Hines, O.J.; Reber, H.A.; Donahue, T.R. Pancreatic Cancer Patients with Lymph Node Involvement by Direct Tumor Extension Have Similar Survival to Those with Node-Negative Disease. J. Surg. Oncol. 2015, 112, 396–402. [Google Scholar] [CrossRef] [PubMed]
- Iwasaki, T.; Hiraoka, N.; Ino, Y.; Nakajima, K.; Kishi, Y.; Nara, S.; Esaki, M.; Shimada, K.; Katai, H. Reduction of Intra-pancreatic Neural Density in Cancer Tissue Predicts Poorer Outcome in Pancreatic Ductal Carcinoma. Cancer Sci. 2019, 110, 1491–1502. [Google Scholar] [CrossRef] [PubMed]
- Fouquet, T.; Germain, A.; Brunaud, L.; Bresler, L.; Ayav, A. Is Perineural Invasion More Accurate Than Other Factors to Predict Early Recurrence after Pancreatoduodenectomy for Pancreatic Head Adenocarcinoma? World J. Surg. 2014, 38, 2132–2137. [Google Scholar] [CrossRef] [PubMed]
- Chen, J.W.C.; Bhandari, M.; Astill, D.S.; Wilson, T.G.; Kow, L.; Brooke-Smith, M.; Toouli, J.; Padbury, R.T.A. Predicting Patient Survival after Pancreaticoduodenectomy for Malignancy: Histopathological Criteria Based on Perineural In-filtration and Lymphovascular Invasion. HPB 2010, 12, 101–108. [Google Scholar] [CrossRef] [Green Version]
- Chatterjee, D.; Katz, M.H.; Rashid, A.; Wang, H.; Iuga, A.C.; Varadhachary, G.R.; Wolff, R.A.; Lee, J.E.; Pisters, P.W.; Crane, C.H.; et al. Perineural and Intraneural Invasion in Posttherapy Pancreaticoduodenectomy Specimens Predicts Poor Prognosis in Patients With Pancreatic Ductal Adenocarcinoma. Am. J. Surg. Pathol. 2012, 36, 409–417. [Google Scholar] [CrossRef] [Green Version]
- Lesina, M.; Kurkowski, M.U.; Ludes, K.; Rose-John, S.; Treiber, M.; Klöppel, G.; Yoshimura, A.; Reindl, W.; Sipos, B.; Akira, S.; et al. Stat3/Socs3 Activation by IL-6 Transsignaling Promotes Progression of Pancreatic Intraepithelial Neo-plasia and Development of Pancreatic Cancer. Cancer Cell 2011, 19, 456–469. [Google Scholar] [CrossRef] [Green Version]
- Bonetto, A.; Aydogdu, T.; Jin, X.; Zhang, Z.; Zhan, R.; Puzis, L.; Koniaris, L.G.; Zimmers, T.A. JAK/STAT3 Pathway Inhibition Blocks Skeletal Muscle Wasting Downstream of IL-6 and in Experimental Cancer Cachexia. Am. J. Physiol.-Endocrinol. Metab. 2012, 303, E410–E421. [Google Scholar] [CrossRef] [Green Version]
- Hurwitz, H.; van Cutsem, E.; Bendell, J.; Hidalgo, M.; Li, C.-P.; Salvo, M.G.; Macarulla, T.; Sahai, V.; Sama, A.; Greeno, E.; et al. Ruxolitinib + Capecitabine in Advanced/Metastatic Pancreatic Cancer after Disease Progression/Intolerance to First-Line Therapy: JANUS 1 and 2 Randomized Phase III Studies. Investig. New Drugs 2018, 36, 683–695. [Google Scholar] [CrossRef] [PubMed]
- Hurwitz, H.I.; Uppal, N.; Wagner, S.A.; Bendell, J.C.; Beck, J.T.; Wade, S.M.; Nemunaitis, J.J.; Stella, P.J.; Pipas, J.M.; Wainberg, Z.A.; et al. Randomized, Double-Blind, Phase II Study of Ruxolitinib or Placebo in Combination With Capecitabine in Patients With Metastatic Pancreatic Cancer for Whom Therapy With Gemcitabine Has Failed. J. Clin. Oncol. 2015, 33, 4039–4047. [Google Scholar] [CrossRef] [PubMed]
- Jurcak, N.R.; Rucki, A.A.; Muth, S.; Thompson, E.; Sharma, R.; Ding, D.; Zhu, Q.; Eshleman, J.R.; Anders, R.A.; Jaffee, E.M.; et al. Axon Guidance Molecules Promote Perineural Invasion and Metastasis of Orthotopic Pancreatic Tumors in Mice. Gastroenterology 2019, 157, 838–850.e6. [Google Scholar] [CrossRef] [PubMed]
- He, S.; Chen, C.-H.; Chernichenko, N.; He, S.; Bakst, R.L.; Barajas, F.; Deborde, S.; Allen, P.J.; Vakiani, E.; Yu, Z.; et al. GFR 1 Released by Nerves Enhances Cancer Cell Perineural Invasion through GDNF-RET Signaling. Proc. Natl. Acad. Sci. USA 2014, 111, E2008–E2017. [Google Scholar] [CrossRef] [Green Version]
- Demir, I.E.; Kujundzic, K.; Pfitzinger, P.L.; Saricaoglu, Ö.C.; Teller, S.; Kehl, T.; Reyes, C.M.; Ertl, L.S.; Miao, Z.; Schall, T.J.; et al. Early Pancreatic Cancer Lesions Suppress Pain through CXCL12-Mediated Chemoattraction of Schwann Cells. Proc. Natl. Acad. Sci. USA 2017, 114, E85–E94. [Google Scholar] [CrossRef] [Green Version]
- Demir, I.E.; Boldis, A.; Pfitzinger, P.L.; Teller, S.; Brunner, E.; Klose, N.; Kehl, T.; Maak, M.; Lesina, M.; Laschinger, M.; et al. Investigation of Schwann Cells at Neoplastic Cell Sites Before the Onset of Cancer Invasion. JNCI J. Natl. Cancer Inst. 2014, 106, dju184. [Google Scholar] [CrossRef] [Green Version]
- Ketterer, K.; Rao, S.; Friess, H.; Weiss, J.; Büchler, M.W.; Korc, M. Reverse Transcription-PCR Analysis of Laser-Captured Cells Points to Potential Paracrine and Autocrine Actions of Neurotrophins in Pancreatic Cancer. Clin. Cancer Res. 2003, 9, 5127–5136. [Google Scholar]
- Bapat, A.A.; Munoz, R.M.; von Hoff, D.D.; Han, H. Blocking Nerve Growth Factor Signaling Reduces the Neural Invasion Potential of Pancreatic Cancer Cells. PLoS ONE 2016, 11, e0165586. [Google Scholar] [CrossRef] [Green Version]
- Xin, B.; He, X.; Wang, J.; Cai, J.; Wei, W.; Zhang, T.; Shen, X. Nerve Growth Factor Regulates CD133 Function to Promote Tumor Cell Migration and Invasion via Activating ERK1/2 Signaling in Pancreatic Cancer. Pancreatology 2016, 16, 1005–1014. [Google Scholar] [CrossRef]
- Wang, J.; Chen, Y.; Li, X.; Zou, X. Perineural Invasion and Associated Pain Transmission in Pancreatic Cancer. Cancers 2021, 13, 4594. [Google Scholar] [CrossRef]
- Takaori, K.; Bassi, C.; Biankin, A.; Brunner, T.B.; Cataldo, I.; Campbell, F.; Cunningham, D.; Falconi, M.; Frampton, A.E.; Furuse, J.; et al. International Association of Pancreatology (IAP)/European Pancreatic Club (EPC) Consensus Review of Guidelines for the Treatment of Pancreatic Cancer. Pancreatology 2016, 16, 14–27. [Google Scholar] [CrossRef] [PubMed]
- Gui, J.-C.; Yan, W.-L.; Liu, X.-D. CA19-9 and CA242 as Tumor Markers for the Diagnosis of Pancreatic Cancer: A Me-ta-Analysis. Clin. Exp. Med. 2014, 14, 225–233. [Google Scholar] [CrossRef] [PubMed]
- Błogowski, W.; Deskur, A.; Budkowska, M.; Sałata, D.; Madej-Michniewicz, A.; Dąbkowski, K.; Dołęgowska, B.; Starzyńska, T. Selected Cytokines in Patients with Pancreatic Cancer: A Preliminary Report. PLoS ONE 2014, 9, e97613. [Google Scholar] [CrossRef] [Green Version]
- Talar-Wojnarowska, R.; Gasiorowska, A.; Smolarz, B.; Romanowicz-Makowska, H.; Kulig, A.; Malecka-Panas, E. Clinical Significance of Interleukin-6 (Il-6) Gene Polymorphism and Il-6 Serum Level in Pancreatic Adenocarcinoma and Chronic Pancreatitis. Dig. Dis. Sci. 2009, 54, 683–689. [Google Scholar] [CrossRef] [PubMed]
- Mroczko, B.; Groblewska, M.; Gryko, M.; Kędra, B.; Szmitkowski, M. Diagnostic Usefulness of Serum Interleukin 6 (IL-6) and C-Reactive Protein (CRP) in the Differentiation between Pancreatic Cancer and Chronic Pancreatitis. J. Clin. Lab. Anal. 2010, 24, 256–261. [Google Scholar] [CrossRef] [PubMed]
- Jiang, W.; Bai, W.; Li, J.; Liu, J.; Zhao, K.; Ren, L. Leukemia Inhibitory Factor Is a Novel Biomarker to Predict Lymph Node and Distant Metastasis in Pancreatic Cancer. Int. J. Cancer 2021, 148, 1006–1013. [Google Scholar] [CrossRef] [PubMed]
- Vaddepally, R.K.; Kharel, P.; Pandey, R.; Garje, R.; Chandra, A.B. Review of Indications of FDA-Approved Immune Checkpoint Inhibitors per NCCN Guidelines with the Level of Evidence. Cancers 2020, 12, 738. [Google Scholar] [CrossRef] [Green Version]
- Loriot, Y.; Marabelle, A.; Guégan, J.P.; Danlos, F.X.; Besse, B.; Chaput, N.; Massard, C.; Planchard, D.; Robert, C.; Even, C.; et al. Plasma Proteomics Identifies Leukemia Inhibitory Factor (LIF) as a Novel Predictive Biomarker of Immune-Checkpoint Blockade Resistance. Ann. Oncol. 2021, 32, 1381–1390. [Google Scholar] [CrossRef]
- Kong, K.; Kendall, C.; Stone, N.; Notingher, I. Raman Spectroscopy for Medical Diagnostics—From in-Vitro Biofluid Assays to in-Vivo Cancer Detection. Adv. Drug Deliv. Rev. 2015, 89, 121–134. [Google Scholar] [CrossRef] [Green Version]
- Bonifacio, A.; Cervo, S.; Sergo, V. Label-Free Surface-Enhanced Raman Spectroscopy of Biofluids: Fundamental Aspects and Diagnostic Applications. Anal. Bioanal. Chem. 2015, 407, 8265–8277. [Google Scholar] [CrossRef]
- Banaei, N.; Foley, A.; Houghton, J.M.; Sun, Y.; Kim, B. Multiplex Detection of Pancreatic Cancer Biomarkers Using a SERS-Based Immunoassay. Nanotechnology 2017, 28, 455101. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Wang, G.; Lipert, R.J.; Jain, M.; Kaur, S.; Chakraboty, S.; Torres, M.P.; Batra, S.K.; Brand, R.E.; Porter, M.D. Detection of the Potential Pancreatic Cancer Marker MUC4 in Serum Using Surface-Enhanced Raman Scattering. Anal. Chem. 2011, 83, 2554–2561. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Luo, X.; Xing, Y.; Galvan, D.D.; Zheng, E.; Wu, P.; Cai, C.; Yu, Q. Plasmonic Gold Nanohole Array for Surface-Enhanced Raman Scattering Detection of DNA Methylation. ACS Sens. 2019, 4, 1534–1542. [Google Scholar] [CrossRef] [PubMed]
- Shinjo, K.; Hara, K.; Nagae, G.; Umeda, T.; Katsushima, K.; Suzuki, M.; Murofushi, Y.; Umezu, Y.; Takeuchi, I.; Takahashi, S.; et al. A Novel Sensitive Detection Method for DNA Methylation in Circulating Free DNA of Pancreatic Cancer. PLoS ONE 2020, 15, e0233782. [Google Scholar] [CrossRef] [PubMed]
- Gall, T.M.H.; Belete, S.; Khanderia, E.; Frampton, A.E.; Jiao, L.R. Circulating Tumor Cells and Cell-Free DNA in Pancreatic Ductal Adenocarcinoma. Am. J. Pathol. 2019, 189, 71–81. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Krafft, C.; Popp, J. Micro-Raman Spectroscopy in Medicine. Phys. Sci. Rev. 2019, 4. [Google Scholar] [CrossRef]
- Krafft, C.; Sergo, V. Biomedical Applications of Raman and Infrared Spectroscopy to Diagnose Tissues. Spectroscopy 2006, 20, 195–218. [Google Scholar] [CrossRef]
- Diem, M.; Miljković, M.; Bird, B.; Chernenko, T.; Schubert, J.; Marcsisin, E.; Mazur, A.; Kingston, E.; Zuser, E.; Papa-markakis, K.; et al. Applications of Infrared and Raman Microspectroscopy of Cells and Tissue in Medical Diagnostics: Present Status and Future Promises. Spectroscopy 2012, 27, 463–496. [Google Scholar] [CrossRef]
- Grzelak, M.M.; Wróbel, P.M.; Lankosz, M.; Stęgowski, Z.; Chmura, Ł.; Adamek, D.; Hesse, B.; Castillo-Michel, H. Diagnosis of Ovarian Tumour Tissues by SR-FTIR Spectroscopy: A Pilot Study. Spectrochim. Acta Part A Mol. Biomol. Spectrosc. 2018, 203, 48–55. [Google Scholar] [CrossRef]
- Paraskevaidi, M.; Matthew, B.J.; Holly, B.J.; Hugh, B.J.; Thulya, C.P.V.; Loren, C.; StJohn, C.; Peter, G.; Callum, G.; Sergei, K.G.; et al. Clinical Applications of Infrared and Raman Spectroscopy in the Fields of Cancer and Infectious Diseases. Appl. Spectrosc. Rev. 2021, 56, 804–868. [Google Scholar] [CrossRef]
- Szymoński, K.; Lipiec, E.; Sofińska, K.; Skirlińska-Nosek, K.; Milian-Ciesielska, K.; Szpor, J.; Czaja, M.; Seweryn, S.; Wilkosz, N.; Birarda, G.; et al. Spectroscopic Screening of Pancreatic Cancer. Clin. Spectrosc. 2021, 3, 100016. [Google Scholar] [CrossRef]
- Notarstefano, V.; Sabbatini, S.; Conti, C.; Pisani, M.; Astolfi, P.; Pro, C.; Rubini, C.; Vaccari, L.; Giorgini, E. Investigation of Human Pancreatic Cancer Tissues by Fourier Transform Infrared Hyperspectral Imaging. J. Biophotonics 2020, 13, e201960071. [Google Scholar] [CrossRef] [PubMed]
- Gassner, C.; Adegoke, J.A.; Patel, S.K.; Sharma, V.J.; Kochan, K.; Burrell, L.M.; Raman, J.; Wood, B.R. Improved Tissue Preparation for Multimodal Vibrational Imaging of Biological Tissues. Clin. Spectrosc. 2022, 4, 100021. [Google Scholar] [CrossRef]
- Meksiarun, P.; Ishigaki, M.; Huck-Pezzei, V.A.C.; Huck, C.W.; Wongravee, K.; Sato, H.; Ozaki, Y. Comparison of Multivariate Analysis Methods for Extracting the Paraffin Component from the Paraffin-Embedded Cancer Tissue Spectra for Raman Imaging. Sci. Rep. 2017, 7, 1–10. [Google Scholar] [CrossRef] [Green Version]
- Ali, S.M.; Bonnier, F.; Tfayli, A.; Lambkin, H.; Flynn, K.; McDonagh, V.; Healy, C.; Clive Lee, T.; Lyng, F.M.; Byrne, H.J. Raman Spectroscopic Analysis of Human Skin Tissue Sections Ex-Vivo: Evaluation of the Effects of Tissue Processing and Dewaxing. J. Biomed. Opt. 2013, 18, 061202. [Google Scholar] [CrossRef] [Green Version]
Pseudo-IPMN | Differential Pathology Findings |
---|---|
General |
|
Retention cysts (secondary duct ectasia) |
|
Simple mucinous cysts |
|
Congenital cysts |
|
Paraduodenal wall cyst |
|
Large-duct and cystic papillary pattern of PDAC |
|
PDAC concomitant to IPMN |
|
Markers of malignancy | |
pVHL [105] |
|
Maspin [105] |
|
IMP3 [105] |
|
S100P [105] |
|
p53 [106,107] |
|
LIF [13,111,112,113] |
|
Markers with prognostic relevance | |
CD44, CD133, ALDH1 [18] |
|
HNF1B [85] |
|
Activated Stroma Index (ASI) [114,115] |
|
CD10 [116] |
|
Meflin [117] |
|
Podoplanin [118,119,120] |
|
JAK2 [121] |
|
SMAD4 [95,122,123,124,125,126,127] |
|
p16 [95,128] |
|
p63, p40 [129] |
|
NRF2 [57] |
|
Pancreatic Malignancy Serum Biomarkers | |
---|---|
Ca19-9 | |
IL-6 | |
LIF | |
cfDNA methylation |
Topic | Aims |
---|---|
Foamy gland vs. clear cell patterns |
|
Prognostic influence of PANR |
|
Large AVAC vs. PDAC tumors |
|
Prognostic relevance in PDAC with squamous differentiation |
|
Large duct carcinoma dedifferentiation |
|
Comprehensive morphologic and IHC profile of PDAC |
|
NRF2 expression in PDAC |
|
CDX2 expression in colloid carcinoma |
|
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Szymoński, K.; Milian-Ciesielska, K.; Lipiec, E.; Adamek, D. Current Pathology Model of Pancreatic Cancer. Cancers 2022, 14, 2321. https://doi.org/10.3390/cancers14092321
Szymoński K, Milian-Ciesielska K, Lipiec E, Adamek D. Current Pathology Model of Pancreatic Cancer. Cancers. 2022; 14(9):2321. https://doi.org/10.3390/cancers14092321
Chicago/Turabian StyleSzymoński, Krzysztof, Katarzyna Milian-Ciesielska, Ewelina Lipiec, and Dariusz Adamek. 2022. "Current Pathology Model of Pancreatic Cancer" Cancers 14, no. 9: 2321. https://doi.org/10.3390/cancers14092321