Chlorin Conjugates in Photodynamic Chemotherapy for Triple-Negative Breast Cancer
Abstract
:1. Introduction
2. Results and Discussion
2.1. Molecular Structures of Photosensitizers and Chemotherapeutic Drugs
2.2. Cell Viability after Combination Treatment in Triple-Negative Breast Cancer Cells
2.2.1. PDT and Taxol
2.2.2. PDT and Doxorubicin
2.2.3. PDT and Cisplatin
2.2.4. PDT and Fluorouracil
2.2.5. PDT and Methotrexate
2.2.6. Cell Viability Summary and Combination Index
2.3. Microscopy Studies
2.3.1. Fluorescence Microscopy
2.3.2. Transmission Electron Microscopy Studies
3. Materials and Methods
3.1. Cell Cytotoxicity Assay
3.2. Dose–Effect and Drug Combination Analysis
3.3. Statistical Analysis
3.4. Fluorescence Microscopy
3.5. Transmission Electron Microscopy
4. Conclusions
Supplementary Materials
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Siegel, R.; Giaquinto, A.N.; Jemal, A. Cancer Statistics 2024. CA Cancer J. Clin. 2024, 74, 12–49. [Google Scholar] [CrossRef] [PubMed]
- Łukasiewicz, S.; Czeczelewski, M.; Forma, A.; Baj, J.; Sitarz, R.; Stanisławek, A. Breast Cancer—Epidemiology, Risk Factors, Classification, Prognostic Markers, and Current Treatment Strategies—An Updated Review. Cancers 2021, 13, 4287. [Google Scholar] [CrossRef] [PubMed]
- Schick, J.; Ritchie, R.P.; Restini, C. Breast Cancer Therapeutics and Biomarkers: Past, Present, and Future Approaches. Breast Cancer Basic Clin. Res. 2021, 15, 1178223421995854. [Google Scholar] [CrossRef]
- Romero Lagunes, M.L.; Pezo, R.C. A narrative of chemotherapy in advanced triple negative breast cancer. Precis. Cancer Med. 2021, 4, 1–19. [Google Scholar] [CrossRef]
- Claessens, A.K.M.; Ibragimova, K.I.E.; Geurts, S.M.E.; Bos, M.E.M.M.; Erdkamp, F.L.G.; Tjan-Heijnen, V.C.G. The role of chemotherapy in treatment of advanced breast cancer: An overview for clinical practice. Crit. Rev. Oncol. Hematol. 2020, 153, 102988. [Google Scholar] [CrossRef]
- Landry, I.; Sumbly, V.; Vest, M. Advancements in the Treatment of Triple-Negative Breast Cancer: A Narrative Review of the Literature. Cureus 2022, 14, e21970. [Google Scholar] [CrossRef]
- Won, K.A.; Won, K.A. Triple-negative breast cancer therapy: Current and future perspectives (Review). Int. J. Oncol. 2020, 57, 1245–1261. [Google Scholar] [CrossRef]
- Adel, N.G. Current Treatment Landscape and Emerging Therapies for Metastatic Triple-Negative Breast Cancer. Am. J. Manag. Care 2021, 27 (Suppl. S5), S87–S96. [Google Scholar] [CrossRef] [PubMed]
- Almansour, N.M. Triple-Negative Breast Cancer: A Brief Review About Epidemiology, Risk Factors, Signaling Pathways, Treatment and Role of Artificial Intelligence. Front. Mol. Biosci. 2022, 9, 836417. [Google Scholar] [CrossRef]
- Bianchini, G.; De Angelis, C.; Licata, L.; Gianni, L. Treatment landscape of triple-negative breast cancer—Expanded options, evolving needs. Nat. Rev. Clin. Oncol. 2022, 19, 91–113. [Google Scholar] [CrossRef]
- Zong, Y.; Pegram, M. Research advances and new challenges in overcoming triple-negative breast cancer. Cancer Drug Resist. 2021, 4, 517–542. [Google Scholar] [CrossRef] [PubMed]
- Shen, M.; Pan, H.; Chen, Y.; Xu, Y.H.; Yang, W.; Wu, Z. A review of current progress in triple-negative breast cancer therapy. Open Med. 2020, 15, 1143–1149. [Google Scholar] [CrossRef] [PubMed]
- Robson, M.; Im, S.A.; Senkus, E.; Xu, B.; Domchek, S.M.; Masuda, N.; Delaloge, S.; Li, W.; Tung, N.; Armstrong, A.; et al. Olaparib for Metastatic Breast Cancer in Patients with a Germline BRCA Mutation. N. Engl. J. Med. 2017, 377, 523–533. [Google Scholar] [CrossRef] [PubMed]
- Robson, M.E.; Tung, N.; Conte, P.; Im, S.A.; Senkus, E.; Xu, B.; Masuda, N.; Delaloge, S.; Li, W.; Armstrong, A.; et al. OlympiAD final overall survival and tolerability results: Olaparib versus chemotherapy treatment of physician’s choice in patients with a germline BRCA mutation and HER2-negative metastatic breast cancer. Ann. Oncol. 2019, 30, 558–566. [Google Scholar] [CrossRef] [PubMed]
- Schmid, P.; Adams, S.; Rugo, H.S.; Schneeweiss, A.; Barrios, C.H.; Iwata, H.; Diéras, V.; Hegg, R.; Im, S.A.; Shaw Wright, G.; et al. Atezolizumab and Nab-Paclitaxel in Advanced Triple-Negative Breast Cancer. N. Engl. J. Med. 2018, 379, 2108–2121. [Google Scholar] [CrossRef] [PubMed]
- Algorri, J.F.; Ochoa, M.; Roldán-Varona, P.; Rodríguez-Cobo, L.; López-Higuera, J.M. Photodynamic Therapy: A Compendium of Latest Reviews. Cancers 2021, 13, 4447. [Google Scholar] [CrossRef]
- Niculescu, A.-G.; Grumezescu, A.M. Photodynamic Therapy—An Up-to-Date Review. Appl. Sci. 2021, 11, 3626. [Google Scholar] [CrossRef]
- Correia, J.H.; Rodrigues, J.A.; Pimenta, S.; Dong, T.; Yang, Z. Photodynamic Therapy Review: Principles, Photosensitizers, Applications, and Future Directions. Pharmaceutics 2021, 13, 1332. [Google Scholar] [CrossRef]
- Gunaydin, G.; Gedik, M.E.; Ayan, S. Photodynamic Therapy for the Treatment and Diagnosis of Cancer-A Review of the Current Clinical Status. Front. Chem. 2021, 9, 686303. [Google Scholar] [CrossRef]
- Dos Santos, A.F.; de Almeida, D.R.Q.; Terra, L.F.; Baptista, M.S.; Labriola, L. Photodynamic therapy in cancer treatment—An update review. J. Cancer Metastasis Treat. 2019, 5, 25. [Google Scholar] [CrossRef]
- Triesscheijn, M.; Baas, P.; Schellens, J.H.; Stewart, F.A. Photodynamic therapy in oncology. Oncologist 2006, 11, 1034–1044. [Google Scholar] [CrossRef] [PubMed]
- Isaac-Lam, M.F.; Hammonds, D.M. Synthesis and Photodynamic Activity of Vitamin-Chlorin Conjugates at the Nanomolar Concentrations Against Prostate Cancer Cells. ACS Omega 2019, 4, 21712–21723. [Google Scholar] [CrossRef]
- Isaac-Lam, M.F.; Mee, A.D. Photodynamic Activity of Chlorin-Vitamin Conjugates at the Nanomolar Concentrations Against Triple-Negative Breast Cancer Cells. ACS Omega 2019, 4, 2907–2920. [Google Scholar] [CrossRef]
- Isaac-Lam, M.F.; Hammonds, D.M. Biotinylated Chlorin and Its Zinc and Indium Complexes: Synthesis and In Vitro Biological Evaluation for Photodynamic Therapy. Pharmaceuticals 2017, 10, 41. [Google Scholar] [CrossRef]
- Aniogo, E.C.; Plackal Adimuriyil George, B.; Abrahamse, H. The role of photodynamic therapy on multidrug resistant breast cancer. Cancer Cell Int. 2019, 19, 91. [Google Scholar] [CrossRef] [PubMed]
- Isaac-Lam, M.F. Chlorin-Vitamin Conjugates for Triple-Negative Breast Cancer. U.S. Patent US 11,191,835 B2, 7 December 2021. [Google Scholar]
- Isaac-Lam, M.F. Chlorin-Vitamin Conjugates as Cancer Therapeutics. U.S. Patent US 10,806,788 B2, 20 October 2020. [Google Scholar]
- Weaver, B.A. How Taxol/paclitaxel kills cancer cells. Mol. Biol. Cell 2014, 25, 2677–2681. [Google Scholar] [CrossRef]
- Abu Samaan, T.M.; Samec, M.; Liskova, A.; Kubatka, P.; Büsselberg, D. Paclitaxel’s Mechanistic and Clinical Effects on Breast Cancer. Biomolecules 2019, 9, 789. [Google Scholar] [CrossRef] [PubMed]
- Asghari, F.; Haghnavaz, N.; Shanehbandi, D.; Khaze, V.; Baradaran, B.; Kazemi, T. Differential altered expression of let-7a and miR-205 tumor-suppressor miRNAs in different subtypes of breast cancer under treatment with Taxol. Adv. Clin. Exp. Med. 2018, 27, 941–945. [Google Scholar] [CrossRef]
- Smith, E.R.; Xu, X.-X. Breaking malignant nuclei as a non-mitotic mechanism of taxol/paclitaxel. J. Cancer Biol. 2021, 2, 86–93. [Google Scholar]
- Xu, J.; Zheng, Q.; Cheng, X.; Hu, S.; Zhang, C.; Zhou, X.; Sun, P.; Wang, W.; Su, Z.; Zou, T.; et al. Chemo-photodynamic therapy with light-triggered disassembly of theranostic nanoplatform in combination with checkpoint blockade for immunotherapy of hepatocellular carcinoma. J. Nanobiotechnol. 2021, 19, 355. [Google Scholar] [CrossRef]
- Thapa, P.; Li, M.; Bio, M.; Rajaputra, P.; Nkepang, G.; Sun, Y.; Woo, S.; You, Y. Far-Red Light-Activatable Prodrug of Paclitaxel for the Combined Effects of Photodynamic Therapy and Site-Specific Paclitaxel Chemotherapy. J. Med. Chem. 2016, 59, 3204–3214. [Google Scholar] [CrossRef] [PubMed]
- Baglo, Y.; Sorrin, A.J.; Liang, B.J.; Huang, H.C. Harnessing the Potential Synergistic Interplay Between Photosensitizer Dark Toxicity and Chemotherapy. Photochem. Photobiol. 2020, 96, 636–645. [Google Scholar] [CrossRef] [PubMed]
- Pommier, Y.; Leo, E.; Zhang, H.-L.; Marchand, C. DNA Topoisomerases and Their Poisoning by Anticancer and Antibacterial Drugs. Chem. Biol. 2010, 17, 421–433. [Google Scholar] [CrossRef] [PubMed]
- Kim, S.Y.; Kim, S.J.; Kim, B.J.; Rah, S.Y.; Chung, S.M.; Im, M.J.; Kim, U.H. Doxorubicin-induced reactive oxygen species generation and intracellular Ca2+ increase are reciprocally modulated in rat cardiomyocytes. Exp. Mol. Med. 2006, 38, 535–545. [Google Scholar] [CrossRef] [PubMed]
- Yang, F.; Kemp, C.J.; Henikoff, S. Doxorubicin enhances nucleosome turnover around promoters. Curr. Biol. 2013, 23, 782–787. [Google Scholar] [CrossRef]
- Cacaccio, J.C.; Durrani, F.A.; Missert, J.R.; Pandey, R.K. Photodynamic Therapy in Combination with Doxorubicin Is Superior to Monotherapy for the Treatment of Lung Cancer. Biomedicines 2022, 10, 857. [Google Scholar] [CrossRef]
- Aniogo, E.C.; George, B.P.A.; Abrahamse, H. In vitro combined effect of Doxorubicin and sulfonated zinc Phthalocyanine-mediated photodynamic therapy on MCF-7 breast cancer cells. Tumour Biol. 2017, 39, 1010428317727278. [Google Scholar] [CrossRef] [PubMed]
- Lanks, K.W.; Gao, J.P.; Sharma, T. Photodynamic enhancement of doxorubicin cytotoxicity. Cancer Chemother. Pharmacol. 1994, 35, 17–20. [Google Scholar] [CrossRef]
- Egger, S.J.; Chan, M.M.; Luo, Q.; Wilcken, N. Platinum-containing regimens for triple-negative metastatic breast cancer. Cochrane Database Syst. Rev. 2020, 2020, CD013750. [Google Scholar] [CrossRef]
- Dasari, S.; Tchounwou, P.B. Cisplatin in cancer therapy: Molecular mechanisms of action. Eur. J. Pharmacol. 2014, 740, 364–378. [Google Scholar] [CrossRef]
- Tchounwou, P.B.; Dasari, S.; Noubissi, F.K.; Ray, P.; Kumar, S. Advances in Our Understanding of the Molecular Mechanisms of Action of Cisplatin in Cancer Therapy. J. Exp. Pharmacol. 2021, 13, 303–328. [Google Scholar] [CrossRef] [PubMed]
- Aldossary, S.A. Review on Pharmacology of Cisplatin: Clinical Use, Toxicity and Mechanism of Resistance of Cisplatin. Biomed. Pharmacol. J. 2019, 12, 7–15. [Google Scholar] [CrossRef]
- Cheng, Y.S.; Peng, Y.B.; Yao, M.; Teng, J.P.; Ni, D.; Zhu, Z.J.; Zhuang, B.F.; Yang, Z.Y. Cisplatin and photodynamic therapy exert synergistic inhibitory effects on small-cell lung cancer cell viability and xenograft tumor growth. Biochem. Biophys. Res. Commun. 2017, 487, 567–572. [Google Scholar] [CrossRef] [PubMed]
- Javani Jouni, F.; Abdollahi, V.; Zadehmodarres, S.; Abbasinia, H.; Asnaashari, M.; Zafari, J. Combination of cisplatin treatment and photodynamic therapy attenuates cisplatin-induced cell toxicity in A2780 and A2780-CP cervical cancer cell lines. Lasers Med. Sci. 2022, 37, 1175–1180. [Google Scholar] [CrossRef]
- Ahn, T.G.; Jung, J.M.; Lee, E.J.; Choi, J.H. Effects of cisplatin on photosensitizer-mediated photodynamic therapy in breast tumor-bearing nude mice. Obstet. Gynecol. Sci. 2019, 62, 112–119. [Google Scholar] [CrossRef]
- Rizvi, I.; Celli, J.P.; Evans, C.L.; Abu-Yousif, A.O.; Muzikansky, A.; Pogue, B.W.; Finkelstein, D.; Hasan, T. Synergistic enhancement of carboplatin efficacy with photodynamic therapy in a three-dimensional model for micrometastatic ovarian cancer. Cancer Res. 2010, 70, 9319–9328. [Google Scholar] [CrossRef]
- Robertson, J.; Barr, R.; Shulman, L.N.; Forte, G.B.; Magrini, N. Essential medicines for cancer: WHO recommendations and national priorities. Bull. World Health Organ. 2016, 94, 735–742. [Google Scholar] [CrossRef] [PubMed]
- Rutman, R.J.; Cantarow, A.; Paschkis, K.E. Studies in 2-acetylaminofluorene carcinogenesis. III. The utilization of uracil-2-C14 by preneoplastic rat liver and rat hepatoma. Cancer Res. 1954, 14, 119–123. [Google Scholar] [PubMed]
- Sommer, H.; Santi, D.V. Purification and amino acid analysis of an active site peptide from thymidylate synthetase containing covalently bound 5-fluoro-2’-deoxyuridylate and methylenetetrahydrofolate. Biochem. Biophys. Res. Commun. 1974, 57, 689–695. [Google Scholar] [CrossRef]
- Haritha, N.H.; Nawab, A.; Vijayakurup, V.; Anto, N.P.; Liju, V.B.; Alex, V.V.; Amrutha, A.N.; Aiswarya, S.U.; Swetha, M.; Vinod, B.S.; et al. Targeting Thymidylate Synthase Enhances the Chemosensitivity of Triple-Negative Breast Cancer Towards 5-FU-Based Combinatorial Therapy. Front. Oncol. 2021, 11, 656804. [Google Scholar] [CrossRef]
- Chalabi-Dchar, M.; Fenouil, T.; Machon, C.; Vincent, A.; Catez, F.; Marcel, V.; Mertani, H.C.; Saurin, J.-C.; Bouvet, P.; Guitton, J.; et al. A novel view on an old drug, 5-fluorouracil: An unexpected RNA modifier with intriguing impact on cancer cell fate. NAR Cancer 2021, 3, zcab032. [Google Scholar] [CrossRef]
- Su, P.; Ahmad, B.; Zou, K.; Zou, L. β-Elemene Enhances the Chemotherapeutic Effect of 5-Fluorouracil in Triple-Negative Breast Cancer via PI3K/AKT, RAF-MEK-ErK, and NF-κB Signaling Pathways. OncoTargets Ther. 2020, 13, 5207–5222. [Google Scholar] [CrossRef] [PubMed]
- Ponce-Cusi, R.; Calaf, G.M. Apoptotic activity of 5-fluorouracil in breast cancer cells transformed by low doses of ionizing α-particle radiation. Int. J. Oncol. 2016, 48, 774–782. [Google Scholar] [CrossRef]
- Maytin, E.V.; Anand, S.; Riha, M.; Lohser, S.; Tellez, A.; Ishak, R.; Karpinski, L.; Sot, J.; Hu, B.; Denisyuk, A.; et al. 5-Fluorouracil Enhances Protoporphyrin IX Accumulation and Lesion Clearance during Photodynamic Therapy of Actinic Keratoses: A Mechanism-Based Clinical Trial. Clin. Cancer Res. 2018, 24, 3026–3035. [Google Scholar] [CrossRef] [PubMed]
- Zhao, B.; Li, L.; Lei, Q.; Guan, K.L. The Hippo-YAP pathway in organ size control and tumorigenesis: An updated version. Genes Dev. 2010, 24, 862–874. [Google Scholar] [CrossRef] [PubMed]
- Zhou, Y.; Wang, Y.; Zhou, W.; Chen, T.; Wu, Q.; Chutturghoon, V.K.; Lin, B.; Geng, L.; Yang, Z.; Zhou, L.; et al. YAP promotes multi-drug resistance and inhibits autophagy-related cell death in hepatocellular carcinoma via the RAC1-ROS-mTOR pathway. Cancer Cell Int. 2019, 19, 179. [Google Scholar] [CrossRef]
- Chan, E.S.; Cronstein, B.N. Mechanisms of action of methotrexate. Bull. Hosp. Jt. Dis. 2013, 71 (Suppl. S1), S5–S8. [Google Scholar]
- Allegra, C.J.; Chabner, B.A.; Drake, J.C.; Lutz, R.; Rodbard, D.; Jolivet, J. Enhanced inhibition of thymidylate synthase by methotrexate polyglutamates. J. Biol. Chem. 1985, 260, 9720–9726. [Google Scholar] [CrossRef] [PubMed]
- Baggott, J.E.; Vaughn, W.H.; Hudson, B.B. Inhibition of 5-aminoimidazole-4-carboxamide ribotide transformylase, adenosine deaminase and 5’-adenylate deaminase by polyglutamates of methotrexate and oxidized folates and by 5-aminoimidazole-4-carboxamide riboside and ribotide. Biochem. J. 1986, 236, 193–200. [Google Scholar] [CrossRef]
- Fairbanks, L.D.; Rückermann, K.; Qiu, Y.; Hawrylowicz, C.M.; Richards, D.F.; Swaminathan, R.; Kirschbaum, B.; Simmonds, H.A. Methotrexate Inhibits the First Committed Step of Purine Biosynthesis in Mitogen-Stimulated Human T-lymphocytes: A Metabolic Basis for Efficacy in Rheumatoid Arthritis? Biochem. J. 1999, 341, 143–152. [Google Scholar] [CrossRef]
- Nogueira, E.; Sarria, M.P.; Azoia, N.G.; Antunes, E.; Loureiro, A.; Guimaraes, D.; Noro, J.; Rollett, A.; Guebitz, G.; Cavaco-Paulo, A. Internalization of Methotrexate Conjugates by Folate Receptor-α. Biochemistry 2018, 57, 6780–6786. [Google Scholar] [CrossRef] [PubMed]
- Koźmiński, P.; Halik, P.K.; Chesori, R.; Gniazdowska, E. Overview of Dual-Acting Drug Methotrexate in Different Neurological Diseases, Autoimmune Pathologies and Cancers. Int. J. Mol. Sci. 2020, 21, 3483. [Google Scholar] [CrossRef] [PubMed]
- Ali, S.; Muhammad, S.; Khurshid, A.; Ikram, M.; Maqsood, M.; Fisher, C.; Cathcart, J.; Lilge, L. Effective phthalocyanines mediated photodynamic therapy with doxorubicin or methotrexate combination therapy at sub-micromolar concentrations in vitro. Photodiagn. Photodyn. Ther. 2018, 22, 51–64. [Google Scholar] [CrossRef] [PubMed]
- Anand, S.; Honari, G.; Hasan, T.; Elson, P.; Maytin, E.V. Low-dose methotrexate enhances aminolevulinate-based photodynamic therapy in skin carcinoma cells in vitro and in vivo. Clin. Cancer Res. 2009, 15, 3333–3343. [Google Scholar] [CrossRef] [PubMed]
- Emran, T.B.; Shahriar, A.; Mahmud, A.R.; Rahman, T.; Abir, M.H.; Siddiquee, M.F.; Ahmed, H.; Rahman, N.; Nainu, F.; Wahyudin, E.; et al. Multidrug Resistance in Cancer: Understanding Molecular Mechanisms, Immunoprevention and Therapeutic Approaches. Front. Oncol. 2022, 12, 891652. [Google Scholar] [CrossRef] [PubMed]
- Chou, T.-C. Drug Combination Studies and Their Synergy Quantification Using the Chou-Talalay Method. Cancer Res. 2010, 70, 440–446. [Google Scholar] [CrossRef] [PubMed]
- Elwakeel, A.; Soudan, H.; Eldoksh, A.; Shalaby, M.; Eldemellawy, M.; Ghareeb, D.; Abouseif, M.; Fayad, A.; Hassan, M.; Saeed, H. Implementation of the Chou-Talalay method for studying the in vitro pharmacodynamic interactions of binary and ternary drug combinations on MDA-MB-231 triple negative breast cancer cells. Synergy 2019, 8, 100047. [Google Scholar] [CrossRef]
- Available online: https://www.combosyn.com/ (accessed on 22 April 2023).
- Carneiro, B.A.; El-Deiry, W.S. Targeting apoptosis in cancer therapy. Nat. Rev. Clin. Oncol. 2020, 17, 395–417. [Google Scholar] [CrossRef]
- Pfeffer, C.M.; Singh, A.T.K. Apoptosis: A Target for Anticancer Therapy. Int. J. Mol. Sci. 2018, 19, 448. [Google Scholar] [CrossRef]
- Aman, Y.; Schmauck-Medina, T.; Hansen MMorimoto, R.I.; Simon, A.K.; Bjedov, I.; Palikaras, K.; Simonsen, A.; Johansen, T.; Tavernarakis, N.; Rubinsztein, D.C.; et al. Autophagy in healthy aging and disease. Nat. Aging 2021, 1, 634–650. [Google Scholar] [CrossRef]
- Ichimiya, T.; Yamakawa, T.; Hirano, T.; Yokoyama, Y.; Hayashi, Y.; Hirayama, D.; Wagatsuma, K.; Itoi, T.; Nakase, H. Autophagy and Autophagy-Related Diseases: A Review. Int. J. Mol. Sci. 2020, 21, 8974. [Google Scholar] [CrossRef] [PubMed]
- Levine, B.; Klionsky, D.J. Development by self-digestion: Molecular mechanisms and biological functions of autophagy. Dev. Cell 2004, 6, 463–477. [Google Scholar] [CrossRef] [PubMed]
- Escobar, M.L.; Echeverría, O.M.; Vázquez-Nin, G.H. Necrosis as Programmed Cell Death. In Cell Death—Autophagy, Apoptosis and Necrosis; IntechOpen: London, UK, 2015. [Google Scholar] [CrossRef]
- Liu, Z.G.; Jiao, D. Necroptosis, tumor necrosis and tumorigenesis. Cell Stress 2019, 4, 1–8. [Google Scholar] [CrossRef] [PubMed]
- Godwin, W.C.; Hoffmann, G.F.; Gray, T.J.; Hughes, R.M. Imaging of morphological and biochemical hallmarks of apoptosis with optimized optogenetic tools. J. Biol. Chem. 2019, 294, 16918–16929. [Google Scholar] [CrossRef] [PubMed]
- Rembiałkowska, N.; Dubińska-Magiera, M.; Sikora, A.; Szlasa, W.; Szewczyk, A.; Czapor-Irzabek, H.; Daczewska, M.; Saczko, J.; Kulbacka, J. Doxorubicin Assisted by Microsecond Electroporation Promotes Irreparable Morphological Alternations in Sensitive and Resistant Human Breast Adenocarcinoma Cells. Appl. Sci. 2020, 10, 2765. [Google Scholar] [CrossRef]
- Ostańska, E.; Barnaś, E.; Bartusik-Aebisher, D.; Dynarowicz, K.; Szpunar, M.; Skręt-Magierło, J.; Aebisher, D. Histopathological Analysis of the Effect of Photodynamic Action on Post-Chemotherapy Excised Breast Cancer Tissue. Medicina 2022, 58, 700. [Google Scholar] [CrossRef]
- Hart, M.; Adams, S.D.; Draviam, V.M. Multinucleation associated DNA damage blocks proliferation in p53-compromised cells. Commun. Biol. 2021, 4, 451. [Google Scholar] [CrossRef] [PubMed]
- Sugita, S.; Munechika, R.; Nakamura, M. Multinucleation of Incubated Cells and Their Morphological Differences Compared to Mononuclear Cells. Micromachines 2019, 10, 156. [Google Scholar] [CrossRef] [PubMed]
- Khing, T.M.; Choi, W.S.; Kim, D.M.; Po, W.W.; Thein, W.; Shin, C.Y.; Sohn, U.D. The effect of paclitaxel on apoptosis, autophagy and mitotic catastrophe in AGS cells. Sci. Rep. 2021, 11, 23490. [Google Scholar] [CrossRef]
- Imreh, G.; Helin Norberg, H.V.; Imreh, S.; Zhivotovsky, B. Chromosomal breaks during mitotic catastrophe trigger γH2AX–ATM–p53-mediated apoptosis. J. Cell Sci. 2011, 124, 2951–2963. [Google Scholar] [CrossRef]
Photosensitizers | Taxol | Doxorubicin | Cisplatin | Fluorouracil | Methotrexate |
---|---|---|---|---|---|
MePheo | 55 | 36 | 39 | 34 | 40 |
CBTN | 65 | 64 | 53 | 64 | 42 |
CBX | 48 | 30 | 0 | 6 | 42 |
CPA | 63 | 73 | 87 | 43 | 33 |
CLA | 45 | 33 | 65 | 35 | 43 |
InCBTN | 45 | 25 | 0 | 13 | 33 |
InCBX | 45 | 41 | 16 | 9 | 42 |
InCPA | 51 | 27 | 0 | 25 | 30 |
InCLA | 91 | 91 | 90 | 92 | 61 |
PSs 50 nM | Taxol 50 nM | Doxorubicin 500 nM | Cisplatin 25 μM | Fluorouracil 25 μM | Methotrexate 500 nM |
---|---|---|---|---|---|
MePheo | 13.27 (VSA) | 6.37 (SA) | 6.10 (SA) | 17.96 (VSA) | 7.79 (SA) |
CBTN | 0.74 (MS) | 2.44 (A) | 0.99 (NA) | 0.48 (S) | 1.57 (A) |
CPA | 0.41 (S) | 1.52 (A) | 1.30 (MA) | 0.45 (S) | 0.50 (S) |
InCLA | 0.25 (SS) | 1.91 (MA) | 1.09 (NA) | 0.94 (NA) | 1.21 (MA) |
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Isaac-Lam, M.F. Chlorin Conjugates in Photodynamic Chemotherapy for Triple-Negative Breast Cancer. Pharmaceuticals 2024, 17, 576. https://doi.org/10.3390/ph17050576
Isaac-Lam MF. Chlorin Conjugates in Photodynamic Chemotherapy for Triple-Negative Breast Cancer. Pharmaceuticals. 2024; 17(5):576. https://doi.org/10.3390/ph17050576
Chicago/Turabian StyleIsaac-Lam, Meden F. 2024. "Chlorin Conjugates in Photodynamic Chemotherapy for Triple-Negative Breast Cancer" Pharmaceuticals 17, no. 5: 576. https://doi.org/10.3390/ph17050576