Nanomaterial-Based Drug Targeted Therapy for Cardiovascular Diseases: Ischemic Heart Failure and Atherosclerosis
Abstract
:1. Introduction
2. Nanotechnologies and Diagnostic of Ischemic Heart Disease
3. Nanotechnologies and Therapy of Ischemic Heart Disease
4. Nanomaterial-Based Drug Targeted Therapy for Atherosclerosis
4.1. Nanoparticles Designed for Inhibition of the Foam Cells Development
4.2. Nanoparticles Designed for the Inhibition of Macrophage Proliferation and/or Accumulation
4.3. Nanoparticles Designed for the Inhibition of the Pro-Inflammatory Factors
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Kim, B.Y.S.; Rutka, J.T.; Chan, W.C.W. Nanomedicine. N. Engl. J. Med. 2010, 363, 2434–2443. [Google Scholar] [CrossRef] [Green Version]
- Mahmoudi, M.; Hosseinkhani, H.; Hosseinkhani, M.; Boutry, S.; Simchi, A.; Journeay, W.S.; Subramani, K.; Laurent, S. Magnetic resonance imaging tracking of stem cells in vivo using iron oxide nanoparticles as a tool for the advancement of clinical regenerative medicine. Chem. Rev. 2011, 111, 253–280. [Google Scholar] [CrossRef]
- Hajipour, M.J.; Mehrani, M.; Abbasi, S.H.; Amin, A.; Kassaian, S.E.; Garbern, J.C.; Caracciolo, G.; Zanganeh, S.; Chitsazan, M.; Aghaverdi, H.; et al. Nanoscale technologies for prevention and treatment of heart failure: Challenges and opportunities. Chem. Rev. 2019, 119, 11352–11390. [Google Scholar] [CrossRef]
- Tomasoni, D.; Adamo, M.; Lombardi, C.M.; Metra, M. Highlights in heart failure. ESC Heart Fail. 2019, 6, 1105–1127. [Google Scholar] [CrossRef] [Green Version]
- Ponikowski, P.; Voors, A.A.; Anker, S.D.; Bueno, H.; Cleland, J.G.F.; Coats, A.J.S.; Falk, V.; González-Juanatey, J.R.; Harjola, V.-P.; Jankowska, E.A.; et al. ESC Scientific Document Group 2016 ESC Guidelines for the diagnosis and treatment of acute and chronic heart failure: The Task Force for the diagnosis and treatment of acute and chronic heart failure of the European Society of Cardiology (ESC)Developed with the special contribution of the Heart Failure Association (HFA) of the ESC. Eur. Heart J. 2016, 37, 2129–2200. [Google Scholar] [PubMed]
- Maggioni, A.P. Epidemiology of heart failure in europe. Heart Fail Clin 2015, 11, 625–635. [Google Scholar] [CrossRef] [PubMed]
- Snipelisky, D.; Chaudhry, S.-P.; Stewart, G.C. The many faces of heart failure. Card. Electrophysiol. Clin. 2019, 11, 11–20. [Google Scholar] [CrossRef]
- Povsic, T.J. Emerging therapies for congestive heart failure. Clin. Pharmacol. Ther. 2018, 103, 77–87. [Google Scholar] [CrossRef]
- Anwar, M.S.; Iskandar, M.Z.; Parry, H.M.; Doney, A.S.; Palmer, C.N.; Lang, C.C. The future of pharmacogenetics in the treatment of heart failure. Pharmacogenomics 2015, 16, 1817–1827. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Cassani, M.; Fernandes, S.; Vrbsky, J.; Ergir, E.; Cavalieri, F.; Forte, G. Combining nanomaterials and developmental pathways to design new treatments for cardiac regeneration: The pulsing heart of advanced therapies. Front. Bioeng. Biotechnol. 2020, 8, 323. [Google Scholar] [CrossRef] [Green Version]
- Frangogiannis, N.G. Pathophysiology of myocardial infarction. Compr. Physiol. 2015, 5, 1841–1875. [Google Scholar] [PubMed]
- Sinclair, H.; Bourantas, C.; Bagnall, A.; Mintz, G.S.; Kunadian, V. OCT for the identification of vulnerable plaque in acute coronary syndrome. JACC Cardiovasc. Imaging 2015, 8, 198–209. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Businaro, R.; Tagliani, A.; Buttari, B.; Profumo, E.; Ippoliti, F.; Di Cristofano, C.; Capoano, R.; Salvati, B.; Riganò, R. Cellular and molecular players in the atherosclerotic plaque progression. Ann. N. Y. Acad. Sci. 2012, 1262, 134–141. [Google Scholar] [CrossRef] [PubMed]
- Nahrendorf, M.; Zhang, H.; Hembrador, S.; Panizzi, P.; Sosnovik, D.E.; Aikawa, E.; Libby, P.; Swirski, F.K.; Weissleder, R. Nanoparticle PET-CT imaging of macrophages in inflammatory atherosclerosis. Circulation 2008, 117, 379–387. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Kelly, K.A.; Allport, J.R.; Tsourkas, A.; Shinde-Patil, V.R.; Josephson, L.; Weissleder, R. Detection of vascular adhesion molecule-1 expression using a novel multimodal nanoparticle. Circ. Res. 2005, 96, 327–336. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Yeager, D.; Chen, Y.-S.; Litovsky, S.; Emelianov, S. Intravascular photoacoustics for image-guidance and temperature monitoring during plasmonic photothermal therapy of atherosclerotic plaques: A feasibility study. Theranostics 2013, 4, 36–46. [Google Scholar] [CrossRef] [Green Version]
- Kang, C.; Gwon, S.; Song, C.; Kang, P.M.; Park, S.-C.; Jeon, J.; Hwang, D.W.; Lee, D. Fibrin-Targeted and H2O2-Responsive Nanoparticles as a Theranostics for Thrombosed Vessels. ACS Nano 2017, 11, 6194–6203. [Google Scholar] [CrossRef]
- McAteer, M.A.; Akhtar, A.M.; von Zur Muhlen, C.; Choudhury, R.P. An approach to molecular imaging of atherosclerosis, thrombosis, and vascular inflammation using microparticles of iron oxide. Atherosclerosis 2010, 209, 18–27. [Google Scholar] [CrossRef] [Green Version]
- Wang, X.-F.; Jin, P.-P.; Zhou, T.; Zhao, Y.-P.; Ding, Q.-L.; Wang, D.-B.; Zhao, G.-M.; Dai, J.; Wang, H.-L.; Ge, H.-L. MR molecular imaging of thrombus: Development and application of a Gd-based novel contrast agent targeting to P-selectin. Clin. Appl. Thromb. Hemost. 2010, 16, 177–183. [Google Scholar] [CrossRef]
- Sosnovik, D.E.; Nahrendorf, M.; Deliolanis, N.; Novikov, M.; Aikawa, E.; Josephson, L.; Rosenzweig, A.; Weissleder, R.; Ntziachristos, V. Fluorescence tomography and magnetic resonance imaging of myocardial macrophage infiltration in infarcted myocardium in vivo. Circulation 2007, 115, 1384–1391. [Google Scholar] [CrossRef] [Green Version]
- Sosnovik, D.E.; Garanger, E.; Aikawa, E.; Nahrendorf, M.; Figuiredo, J.-L.; Dai, G.; Reynolds, F.; Rosenzweig, A.; Weissleder, R.; Josephson, L. Molecular MRI of cardiomyocyte apoptosis with simultaneous delayed-enhancement MRI distinguishes apoptotic and necrotic myocytes in vivo: Potential for midmyocardial salvage in acute ischemia. Circ. Cardiovasc. Imaging 2009, 2, 460–467. [Google Scholar] [CrossRef] [Green Version]
- Tu, Y.; Sun, Y.; Fan, Y.; Cheng, Z.; Yu, B. Multimodality molecular imaging of cardiovascular disease based on nanoprobes. Cell Physiol. Biochem. 2018, 48, 1401–1415. [Google Scholar] [CrossRef]
- Pala, R.; Anju, V.T.; Dyavaiah, M.; Busi, S.; Nauli, S.M. Nanoparticle-Mediated Drug Delivery for the Treatment of Cardiovascular Diseases. Int. J. Nanomed. 2020, 15, 3741–3769. [Google Scholar] [CrossRef]
- Danila, D.; Johnson, E.; Kee, P. CT imaging of myocardial scars with collagen-targeting gold nanoparticles. Nanomedicine 2013, 9, 1067–1076. [Google Scholar] [CrossRef] [PubMed]
- Bietenbeck, M.; Florian, A.; Sechtem, U.; Yilmaz, A. The diagnostic value of iron oxide nanoparticles for imaging of myocardial inflammation--quo vadis? J. Cardiovasc. Magn. Reson. 2015, 17, 54. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Sabir, F.; Barani, M.; Mukhtar, M.; Rahdar, A.; Cucchiarini, M.; Zafar, M.N.; Behl, T.; Bungau, S. Nanodiagnosis and nanotreatment of cardiovascular diseases: An overview. Chemosensors 2021, 9, 67. [Google Scholar] [CrossRef]
- Kawata, H.; Uesugi, Y.; Soeda, T.; Takemoto, Y.; Sung, J.-H.; Umaki, K.; Kato, K.; Ogiwara, K.; Nogami, K.; Ishigami, K.; et al. A new drug delivery system for intravenous coronary thrombolysis with thrombus targeting and stealth activity recoverable by ultrasound. J. Am. Coll. Cardiol. 2012, 60, 2550–2557. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Bi, F.; Zhang, J.; Su, Y.; Tang, Y.-C.; Liu, J.-N. Chemical conjugation of urokinase to magnetic nanoparticles for targeted thrombolysis. Biomaterials 2009, 30, 5125–5130. [Google Scholar] [CrossRef] [PubMed]
- McDowell, G.; Slevin, M.; Krupinski, J. Nanotechnology for the treatment of coronary in stent restenosis: A clinical perspective. Vasc. Cell 2011, 3, 8. [Google Scholar] [CrossRef] [Green Version]
- Margolis, J.; McDonald, J.; Heuser, R.; Klinke, P.; Waksman, R.; Virmani, R.; Desai, N.; Hilton, D. Systemic nanoparticle paclitaxel (nab-paclitaxel) for in-stent restenosis I (SNAPIST-I): A first-in-human safety and dose-finding study. Clin Cardiol 2007, 30, 165–170. [Google Scholar] [CrossRef]
- Bassous, N.; Cooke, J.P.; Webster, T.J. Enhancing Stent Effectiveness with Nanofeatures. Methodist Debakey Cardiovasc. J. 2016, 12, 163–168. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Nakano, K.; Egashira, K.; Masuda, S.; Funakoshi, K.; Zhao, G.; Kimura, S.; Matoba, T.; Sueishi, K.; Endo, Y.; Kawashima, Y.; et al. Formulation of Nanoparticle-Eluting Stents by a Cationic Electrodeposition Coating Technology. JACC: Cardiovasc. Interv. 2009, 2, 277–283. [Google Scholar] [CrossRef] [Green Version]
- Kim, K.S.; Song, C.G.; Kang, P.M. Targeting oxidative stress using nanoparticles as a theranostic strategy for cardiovascular diseases. Antioxid. Redox Signal. 2019, 30, 733–746. [Google Scholar] [CrossRef] [PubMed]
- Seshadri, G.; Sy, J.C.; Brown, M.; Dikalov, S.; Yang, S.C.; Murthy, N.; Davis, M.E. The delivery of superoxide dismutase encapsulated in polyketal microparticles to rat myocardium and protection from myocardial ischemia-reperfusion injury. Biomaterials 2010, 31, 1372–1379. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zhang, J.; Ma, A.; Shang, L. Conjugating existing clinical drugs with gold nanoparticles for better treatment of heart diseases. Front. Physiol. 2018, 9, 642. [Google Scholar] [CrossRef]
- Çakmak, H.A.; Demir, M. Microrna and cardiovascular diseases. Balkan Med. J. 2020, 37, 60–71. [Google Scholar] [CrossRef]
- Feinberg, M.W.; Moore, K.J. Microrna regulation of atherosclerosis. Circ. Res. 2016, 118, 703–720. [Google Scholar] [CrossRef] [Green Version]
- Jia, C.; Chen, H.; Wei, M.; Chen, X.; Zhang, Y.; Cao, L.; Yuan, P.; Wang, F.; Yang, G.; Ma, J. Gold nanoparticle-based miR155 antagonist macrophage delivery restores the cardiac function in ovariectomized diabetic mouse model. Int. J. Nanomed. 2017, 12, 4963–4979. [Google Scholar] [CrossRef] [Green Version]
- Ravichandran, R.; Sridhar, R.; Venugopal, J.R.; Sundarrajan, S.; Mukherjee, S.; Ramakrishna, S. Gold nanoparticle loaded hybrid nanofibers for cardiogenic differentiation of stem cells for infarcted myocardium regeneration. Macromol. Biosci. 2014, 14, 515–525. [Google Scholar] [CrossRef] [PubMed]
- Dadfar, S.M.; Roemhild, K.; Drude, N.I.; von Stillfried, S.; Knüchel, R.; Kiessling, F.; Lammers, T. Iron oxide nanoparticles: Diagnostic, therapeutic and theranostic applications. Adv. Drug Deliv. Rev. 2019, 138, 302–325. [Google Scholar] [CrossRef] [PubMed]
- Xiong, F.; Wang, H.; Feng, Y.; Li, Y.; Hua, X.; Pang, X.; Zhang, S.; Song, L.; Zhang, Y.; Gu, N. Cardioprotective activity of iron oxide nanoparticles. Sci. Rep. 2015, 5, 8579. [Google Scholar] [CrossRef] [Green Version]
- Miragoli, M.; Ceriotti, P.; Iafisco, M.; Vacchiano, M.; Salvarani, N.; Alogna, A.; Carullo, P.; Ramirez-Rodríguez, G.B.; Patrício, T.; Esposti, L.D.; et al. Inhalation of peptide-loaded nanoparticles improves heart failure. Sci. Transl. Med. 2018, 10. [Google Scholar] [CrossRef] [Green Version]
- Chandarana, M.; Curtis, A.; Hoskins, C. The use of nanotechnology in cardiovascular disease. Appl. Nanosci. 2018, 8, 1607–1619. [Google Scholar] [CrossRef] [Green Version]
- Bartel, D.P. MicroRNAs: Target recognition and regulatory functions. Cell 2009, 136, 215–233. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Yang, H.; Qin, X.; Wang, H.; Zhao, X.; Liu, Y.; Wo, H.-T.; Liu, C.; Nishiga, M.; Chen, H.; Ge, J.; et al. An in Vivo miRNA Delivery System for Restoring Infarcted Myocardium. ACS Nano 2019, 13, 9880–9894. [Google Scholar] [CrossRef] [PubMed]
- Xue, X.; Shi, X.; Dong, H.; You, S.; Cao, H.; Wang, K.; Wen, Y.; Shi, D.; He, B.; Li, Y. Delivery of microRNA-1 inhibitor by dendrimer-based nanovector: An early targeting therapy for myocardial infarction in mice. Nanomedicine 2018, 14, 619–631. [Google Scholar] [CrossRef]
- Bejerano, T.; Etzion, S.; Elyagon, S.; Etzion, Y.; Cohen, S. Nanoparticle Delivery of miRNA-21 Mimic to Cardiac Macrophages Improves Myocardial Remodeling after Myocardial Infarction. Nano Lett. 2018, 18, 5885–5891. [Google Scholar] [CrossRef]
- Maheshwari, R.; Tekade, M.; Sharma, P.A.; Tekade, R.K. Nanocarriers Assisted siRNA Gene Therapy for the Management of Cardiovascular Disorders. Curr. Pharm. Des. 2015, 21, 4427–4440. [Google Scholar] [CrossRef]
- Wu, D.; Liu, Y.; Jiang, X.; Chen, L.; He, C.; Goh, S.H.; Leong, K.W. Evaluation of hyperbranched poly(amino ester)s of amine constitutions similar to polyethylenimine for DNA delivery. Biomacromolecules 2005, 6, 3166–3173. [Google Scholar] [CrossRef]
- Yokoyama, R.; Ii, M.; Masuda, M.; Tabata, Y.; Hoshiga, M.; Ishizaka, N.; Asahi, M. Cardiac Regeneration by Statin-Polymer Nanoparticle-Loaded Adipose-Derived Stem Cell Therapy in Myocardial Infarction. Stem Cells Transl. Med. 2019, 8, 1055–1067. [Google Scholar] [CrossRef] [Green Version]
- Libby, P. Inflammation in atherosclerosis. Arterioscler. Thromb. Vasc. Biol. 2012, 32, 2045–2051. [Google Scholar] [CrossRef] [Green Version]
- Libby, P. The changing landscape of atherosclerosis. Nature 2021, 592, 524–533. [Google Scholar] [CrossRef] [PubMed]
- Galkina, E.; Ley, K. Immune and inflammatory mechanisms of atherosclerosis. Annu. Rev. Immunol. 2009, 27, 165–197. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Peters, L.J.F.; Jans, A.; Bartneck, M.; van der Vorst, E.P.C. Immunomodulatory nanomedicine for the treatment of atherosclerosis. J. Clin. Med. 2021, 10, 3185. [Google Scholar] [CrossRef] [PubMed]
- Importance of Atherosclerotic Disease Risk Factors in Myocardial Infarction Patients—ProQuest. Available online: https://www.proquest.com/docview/2536491247?pq-origsite=gscholar&fromopenview=true (accessed on 29 July 2021).
- Banerjee, C.; Chimowitz, M.I. Stroke caused by atherosclerosis of the major intracranial arteries. Circ. Res. 2017, 120, 502–513. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Gallino, A.; Aboyans, V.; Diehm, C.; Cosentino, F.; Stricker, H.; Falk, E.; Schouten, O.; Lekakis, J.; Amann-Vesti, B.; Siclari, F.; et al. European Society of Cardiology Working Group on Peripheral Circulation Non-coronary atherosclerosis. Eur. Heart J. 2014, 35, 1112–1119. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Deshotels, M.R.; Virani, S.S.; Ballantyne, C.M. Lipid Monitoring After Initiation of Lipid-Lowering Therapies: Return of Performance Measures? Curr. Cardiol. Rep. 2021, 23, 116. [Google Scholar] [CrossRef]
- Lewis, D.R.; Petersen, L.K.; York, A.W.; Zablocki, K.R.; Joseph, L.B.; Kholodovych, V.; Prud’homme, R.K.; Uhrich, K.E.; Moghe, P.V. Sugar-based amphiphilic nanoparticles arrest atherosclerosis in vivo. Proc. Natl. Acad. Sci. USA 2015, 112, 2693–2698. [Google Scholar] [CrossRef] [Green Version]
- Vindigni, G.; Raniolo, S.; Ottaviani, A.; Falconi, M.; Franch, O.; Knudsen, B.R.; Desideri, A.; Biocca, S. Receptor-Mediated Entry of Pristine Octahedral DNA Nanocages in Mammalian Cells. ACS Nano 2016, 10, 5971–5979. [Google Scholar] [CrossRef]
- Raniolo, S.; Vindigni, G.; Unida, V.; Ottaviani, A.; Romano, E.; Desideri, A.; Biocca, S. Entry, fate and degradation of DNA nanocages in mammalian cells: A matter of receptors. Nanoscale 2018, 10, 12078–12086. [Google Scholar] [CrossRef]
- Raniolo, S.; Croce, S.; Thomsen, R.P.; Okholm, A.H.; Unida, V.; Iacovelli, F.; Manetto, A.; Kjems, J.; Desideri, A.; Biocca, S. Cellular uptake of covalent and non-covalent DNA nanostructures with different sizes and geometries. Nanoscale 2019, 11, 10808–10818. [Google Scholar] [CrossRef]
- Feig, J.E.; Pineda-Torra, I.; Sanson, M.; Bradley, M.N.; Vengrenyuk, Y.; Bogunovic, D.; Gautier, E.L.; Rubinstein, D.; Hong, C.; Liu, J.; et al. LXR promotes the maximal egress of monocyte-derived cells from mouse aortic plaques during atherosclerosis regression. J. Clin. Invest. 2010, 120, 4415–4424. [Google Scholar] [CrossRef] [Green Version]
- Joseph, S.B.; McKilligin, E.; Pei, L.; Watson, M.A.; Collins, A.R.; Laffitte, B.A.; Chen, M.; Noh, G.; Goodman, J.; Hagger, G.N.; et al. Synthetic LXR ligand inhibits the development of atherosclerosis in mice. Proc. Natl. Acad. Sci. USA 2002, 99, 7604–7609. [Google Scholar] [CrossRef] [Green Version]
- Zhang, X.-Q.; Even-Or, O.; Xu, X.; van Rosmalen, M.; Lim, L.; Gadde, S.; Farokhzad, O.C.; Fisher, E.A. Nanoparticles containing a liver X receptor agonist inhibit inflammation and atherosclerosis. Adv. Healthc. Mater. 2015, 4, 228–236. [Google Scholar] [CrossRef] [Green Version]
- Yuan, W.; Yu, B.; Yu, M.; Kuai, R.; Morin, E.E.; Wang, H.; Hu, D.; Zhang, J.; Moon, J.J.; Chen, Y.E.; et al. Synthetic high-density lipoproteins delivering liver X receptor agonist prevent atherogenesis by enhancing reverse cholesterol transport. J. Control Release 2021, 329, 361–371. [Google Scholar] [CrossRef]
- Hosin, A.A.; Prasad, A.; Viiri, L.E.; Davies, A.H.; Shalhoub, J. MicroRNAs in atherosclerosis. J. Vasc. Res. 2014, 51, 338–349. [Google Scholar] [CrossRef] [PubMed]
- Fernández-Hernando, C.; Moore, K.J. MicroRNA modulation of cholesterol homeostasis. Arterioscler. Thromb. Vasc. Biol. 2011, 31, 2378–2382. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Li, C.; Dou, Y.; Chen, Y.; Qi, Y.; Li, L.; Han, S.; Jin, T.; Guo, J.; Chen, J.; Zhang, J. Site-Specific MicroRNA-33 Antagonism by pH-Responsive Nanotherapies for Treatment of Atherosclerosis via Regulating Cholesterol Efflux and Adaptive Immunity. Adv. Funct. Mater. 2020, 30, 2002131. [Google Scholar] [CrossRef]
- Tang, J.; Lobatto, M.E.; Hassing, L.; van der Staay, S.; van Rijs, S.M.; Calcagno, C.; Braza, M.S.; Baxter, S.; Fay, F.; Sanchez-Gaytan, B.L.; et al. Inhibiting macrophage proliferation suppresses atherosclerotic plaque inflammation. Sci. Adv. 2015, 1, e1400223. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Nakashiro, S.; Matoba, T.; Umezu, R.; Koga, J.-I.; Tokutome, M.; Katsuki, S.; Nakano, K.; Sunagawa, K.; Egashira, K. Pioglitazone-Incorporated Nanoparticles Prevent Plaque Destabilization and Rupture by Regulating Monocyte/Macrophage Differentiation in ApoE-/- Mice. Arterioscler. Thromb. Vasc. Biol. 2016, 36, 491–500. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Wang, Y.; Zhang, K.; Li, T.; Maruf, A.; Qin, X.; Luo, L.; Zhong, Y.; Qiu, J.; McGinty, S.; Pontrelli, G.; et al. Macrophage membrane functionalized biomimetic nanoparticles for targeted anti-atherosclerosis applications. Theranostics 2021, 11, 164–180. [Google Scholar] [CrossRef]
- Kim, H.; Kumar, S.; Kang, D.-W.; Jo, H.; Park, J.-H. Affinity-Driven Design of Cargo-Switching Nanoparticles to Leverage a Cholesterol-Rich Microenvironment for Atherosclerosis Therapy. ACS Nano 2020, 14, 6519–6531. [Google Scholar] [CrossRef]
- Libby, P. Inflammation in Atherosclerosis-No Longer a Theory. Clin. Chem. 2021, 67, 131–142. [Google Scholar] [CrossRef]
- Chen, P.-Y.; Schwartz, M.A.; Simons, M. Endothelial-to-Mesenchymal Transition, Vascular Inflammation, and Atherosclerosis. Front. Cardiovasc. Med. 2020, 7, 53. [Google Scholar] [CrossRef]
- Tousoulis, D.; Oikonomou, E.; Economou, E.K.; Crea, F.; Kaski, J.C. Inflammatory cytokines in atherosclerosis: Current therapeutic approaches. Eur. Heart J. 2016, 37, 1723–1732. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Han, X.; Boisvert, W.A. Interleukin-10 protects against atherosclerosis by modulating multiple atherogenic macrophage function. Thromb. Haemost. 2015, 113, 505–512. [Google Scholar] [CrossRef]
- Kim, M.; Sahu, A.; Hwang, Y.; Kim, G.B.; Nam, G.H.; Kim, I.-S.; Chan Kwon, I.; Tae, G. Targeted delivery of anti-inflammatory cytokine by nanocarrier reduces atherosclerosis in Apo E-/- mice. Biomaterials 2020, 226, 119550. [Google Scholar] [CrossRef] [PubMed]
- Pham, L.M.; Kim, E.-C.; Ou, W.; Phung, C.D.; Nguyen, T.T.; Pham, T.T.; Poudel, K.; Gautam, M.; Nguyen, H.T.; Jeong, J.-H.; et al. Targeting and clearance of senescent foamy macrophages and senescent endothelial cells by antibody-functionalized mesoporous silica nanoparticles for alleviating aorta atherosclerosis. Biomaterials 2021, 269, 120677. [Google Scholar] [CrossRef] [PubMed]
- Malleswara Reddy, A.; Banda, N.; Govind Dagdu, S.; Venugopala Rao, D.; Kocherlakota, C.S.; Krishnamurthy, V. Evaluation of the pharmaceutical quality of docetaxel injection using new stability indicating chromatographic methods for assay and impurities. Sci. Pharm. 2010, 78, 215–231. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Rodrigues, D.G.; Maria, D.A.; Fernandes, D.C.; Valduga, C.J.; Couto, R.D.; Ibañez, O.C.M.; Maranhão, R.C. Improvement of paclitaxel therapeutic index by derivatization and association to a cholesterol-rich microemulsion: In vitro and in vivo studies. Cancer Chemother. Pharmacol. 2005, 55, 565–576. [Google Scholar] [CrossRef]
- Meneghini, B.C.; Tavares, E.R.; Guido, M.C.; Tavoni, T.M.; Stefani, H.A.; Kalil-Filho, R.; Maranhão, R.C. Lipid core nanoparticles as vehicle for docetaxel reduces atherosclerotic lesion, inflammation, cell death and proliferation in an atherosclerosis rabbit model. Vascul. Pharmacol. 2019, 115, 46–54. [Google Scholar] [CrossRef] [PubMed]
- Bartneck, M.; Peters, F.M.; Warzecha, K.T.; Bienert, M.; van Bloois, L.; Trautwein, C.; Lammers, T.; Tacke, F. Liposomal encapsulation of dexamethasone modulates cytotoxicity, inflammatory cytokine response, and migratory properties of primary human macrophages. Nanomedicine 2014, 10, 1209–1220. [Google Scholar] [CrossRef] [PubMed]
Nanoparticle | Molecular Mechanism | Imaging Technique |
---|---|---|
Dextrinated and DTPA modified magnetofluorescent [14] |
|
|
CLIO-Cy5.5 fluorescent magnetic nanoparticles conjugated with VHSPNKK polypeptide [15] |
|
|
CLIO-Cy5.5 conjugated with annexin V [21] |
|
|
Paramagnetic or iron oxide nanoparticles |
|
|
AuNPs coated with collagen binding adhesion protein 35 [24] |
|
|
Ferumoxytol—paramagnetic iron oxide nanoparticle [25] |
|
|
Silica-coated gold nanorods (SiO2AuNR) [16] |
|
|
Nanoparticle Type | Targeted Mechanism | Results |
---|---|---|
AuNPs coupled with microRNA 155 [38] |
|
|
Albumin- polyvinyl alcohol-AuNPs nanofibrous scaffolds [39] |
|
|
Poly(9,9-dioctylfluorene-alt-benzothiadiazole) (PBFT) and 1,2-distearoylphosphatidyl-ethanolamine-PEG-amino encapsulating microRNA-199a [45] |
|
|
Poly-L-lysine (PEG-DGL) dendrimer coupled with an antisense oligonucleotide [46] |
|
|
Simvastatin conjugated PLGA loaded in vitro on adipose stem cells [50] |
|
|
Nanoparticle Type | Anti-Atherosclerotic Targeted Mechanism | Results |
---|---|---|
Sugar-based amphiphilic core-shell layered nanoparticles [59] |
|
|
Poly-lactide-co glycolide-b polyethylene glycol (PLGA-b-PEG) containing a synthetic liver X receptor (LXR) agonist [64,65] |
|
|
Synthetic high density lipoprotein (sHDL) nanoparticles loaded with LXR [64] |
|
|
Nanoparticles-based delivery of simvastatin [70] |
|
|
PLGA nanoparticles containing pioglitazone [71] |
|
|
Biomimetic nanoparticles using macrophage membrane (MM) coating on rapamycin-loaded PLGA polymers [72] |
|
|
Nanoparticle Type | Anti-Atherosclerotic Targeted Mechanism | Results |
---|---|---|
cRGD peptide conjugated nanocarriers containing IL-10 and iron oxide nanoparticles [78] |
|
|
CD9 antibody-functionalized mesoporous silica nanoparticles [79] |
|
|
Low density emulsion nanoparticles containing docetaxel [82] |
|
|
Liposome based nanocarriers containing dexamethasone [83] |
|
|
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Haba, M.Ș.C.; Șerban, D.N.; Șerban, L.; Tudorancea, I.M.; Haba, R.M.; Mitu, O.; Iliescu, R.; Tudorancea, I. Nanomaterial-Based Drug Targeted Therapy for Cardiovascular Diseases: Ischemic Heart Failure and Atherosclerosis. Crystals 2021, 11, 1172. https://doi.org/10.3390/cryst11101172
Haba MȘC, Șerban DN, Șerban L, Tudorancea IM, Haba RM, Mitu O, Iliescu R, Tudorancea I. Nanomaterial-Based Drug Targeted Therapy for Cardiovascular Diseases: Ischemic Heart Failure and Atherosclerosis. Crystals. 2021; 11(10):1172. https://doi.org/10.3390/cryst11101172
Chicago/Turabian StyleHaba, Mihai Ștefan Cristian, Dragomir N. Șerban, Lăcrămioara Șerban, Ivona Maria Tudorancea, Raluca Maria Haba, Ovidiu Mitu, Radu Iliescu, and Ionuț Tudorancea. 2021. "Nanomaterial-Based Drug Targeted Therapy for Cardiovascular Diseases: Ischemic Heart Failure and Atherosclerosis" Crystals 11, no. 10: 1172. https://doi.org/10.3390/cryst11101172