Cardiac Cell Therapy for Heart Repair: Should the Cells Be Left Out?
Abstract
:1. Introduction
2. Cellular Therapy for Heart Regeneration and Repair
2.1. Induced Pluripotent Stem Cells (iPSCs)
2.2. Cardiac Progenitor Cells (CPCs)
2.3. Cardiosphere-Derived Cells (CDCs)
2.4. Mesenchymal Stem Cells (MSCs)
2.5. Other Types of Cells
3. Paracrine Effects
3.1. Promotion of Angiogenesis
3.2. Suppression of Inflammation
3.3. Promotion of Survival and Proliferation
3.4. Other Aspects of Paracrine Effects
4. Acellular Therapy
5. Bioengineering Boosts Acellular Therapy
5.1. Bioengineered Fabrication of Stem Cell Mimics
5.2. Bioengineered Exosomes
5.3. Bioengineered Construction of microRNA Mimics
5.4. Bioengineered Antibodies for Recruitment of Endogenous Stem Cells
5.5. Challenges and Opportunities for Clinical Translation
6. Summary and Outlook
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Roth, G.A.; Johnson, C.; Abajobir, A.; Abd-Allah, F.; Abera, S.F.; Abyu, G.; Ahmed, M.; Aksut, B.; Alam, T.; Alam, K.; et al. Global, regional, and national burden of cardiovascular diseases for 10 causes, 1990 to 2015. J. Am. Coll. Cardiol. 2017, 70, 1–25. [Google Scholar] [CrossRef]
- Virani, S.S.; Alonso, A.; Benjamin, E.J.; Bittencourt, M.S.; Callaway, C.W.; Carson, A.P.; Chamberlain, A.M.; Chang, A.R.; Cheng, S.; Delling, F.N.; et al. Heart disease and stroke statistics-2020 update: A report from the American Heart Association. Circulation 2020, 141, e139–e596. [Google Scholar] [CrossRef] [PubMed]
- Packer, M.; Coats, A.J.; Fowler, M.B.; Katus, H.A.; Krum, H.; Mohacsi, P.; Rouleau, J.L.; Tendera, M.; Castaigne, A.; Roecker, E.B.; et al. Effect of carvedilol on survival in severe chronic heart failure. N. Engl. J. Med. 2001, 344, 1651–1658. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Investigators, S.; Yusuf, S.; Pitt, B.; Davis, C.E.; Hood, W.B.; Cohn, J.N. Effect of enalapril on survival in patients with reduced left ventricular ejection fractions and congestive heart failure. N. Engl. J. Med. 1991, 325, 293–302. [Google Scholar] [CrossRef] [PubMed]
- Pitt, B.; Zannad, F.; Remme, W.J.; Cody, R.; Castaigne, A.; Perez, A.; Palensky, J.; Wittes, J. The effect of spironolactone on morbidity and mortality in patients with severe heart failure. Randomized Aldactone Evaluation Study Investigators. N. Engl. J. Med. 1999, 341, 709–717. [Google Scholar] [CrossRef] [Green Version]
- McMurray, J.J.; Packer, M.; Desai, A.S.; Gong, J.; Lefkowitz, M.P.; Rizkala, A.R.; Rouleau, J.L.; Shi, V.C.; Solomon, S.D.; Swedberg, K.; et al. Angiotensin-Neprilysin inhibition versus enalapril in heart failure. N. Engl. J. Med. 2014, 371, 993–1004. [Google Scholar] [CrossRef] [Green Version]
- Vunjak-Novakovic, G.; Lui, K.O.; Tandon, N.; Chien, K.R. Bioengineering heart muscle: A paradigm for regenerative medicine. Annu. Rev. Biomed. Eng. 2011, 13, 245–267. [Google Scholar] [CrossRef] [Green Version]
- Huang, K.; Hu, S.; Cheng, K. A new era of cardiac cell therapy: Opportunities and challenges. Adv. Healthc. Mater. 2019, 8, e1801011. [Google Scholar] [CrossRef] [PubMed]
- Li, Z.; Hu, S.; Cheng, K. Chemical engineering of cell therapy for heart diseases. Acc. Chem. Res. 2019, 52, 1687–1696. [Google Scholar] [CrossRef]
- Eschenhagen, T.; Bolli, R.; Braun, T.; Field, L.J.; Fleischmann, B.K.; Frisen, J.; Giacca, M.; Hare, J.M.; Houser, S.; Lee, R.T.; et al. Cardiomyocyte regeneration: A consensus statement. Circulation 2017, 136, 680–686. [Google Scholar] [CrossRef]
- Soonpaa, M.H.; Field, L.J. Assessment of cardiomyocyte DNA synthesis in normal and injured adult mouse hearts. Am. J. Physiol. 1997, 272, H220–H226. [Google Scholar] [CrossRef]
- Porrello, E.R.; Mahmoud, A.I.; Simpson, E.; Hill, J.A.; Richardson, J.A.; Olson, E.N.; Sadek, H.A. Transient regenerative potential of the neonatal mouse heart. Science 2011, 331, 1078–1080. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zhu, W.; Zhang, E.; Zhao, M.; Chong, Z.; Fan, C.; Tang, Y.; Hunter, J.D.; Borovjagin, A.V.; Walcott, G.P.; Chen, J.Y.; et al. Regenerative potential of neonatal porcine hearts. Circulation 2018, 138, 2809–2816. [Google Scholar] [CrossRef] [PubMed]
- Takahashi, K.; Yamanaka, S. Induction of pluripotent stem cells from mouse embryonic and adult fibroblast cultures by defined factors. Cell 2006, 126, 663–676. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Lian, X.; Hsiao, C.; Wilson, G.; Zhu, K.; Hazeltine, L.B.; Azarin, S.M.; Raval, K.K.; Zhang, J.; Kamp, T.J.; Palecek, S.P. Robust cardiomyocyte differentiation from human pluripotent stem cells via temporal modulation of canonical Wnt signaling. Proc. Natl. Acad. Sci. USA 2012, 109, E1848–E1857. [Google Scholar] [CrossRef] [Green Version]
- Lian, X.; Zhang, J.; Azarin, S.M.; Zhu, K.; Hazeltine, L.B.; Bao, X.; Hsiao, C.; Kamp, T.J.; Palecek, S.P. Directed cardiomyocyte differentiation from human pluripotent stem cells by modulating Wnt/beta-catenin signaling under fully defined conditions. Nat. Protoc. 2013, 8, 162–175. [Google Scholar] [CrossRef] [Green Version]
- Citro, L.; Naidu, S.; Hassan, F.; Kuppusamy, M.L.; Kuppusamy, P.; Angelos, M.G.; Khan, M. Comparison of human induced pluripotent stem-cell derived cardiomyocytes with human mesenchymal stem cells following acute myocardial infarction. PLoS ONE 2014, 9, e116281. [Google Scholar] [CrossRef] [Green Version]
- Zhao, M.; Fan, C.; Ernst, P.J.; Tang, Y.; Zhu, H.; Mattapally, S.; Oduk, Y.; Borovjagin, A.V.; Zhou, L.; Zhang, J.; et al. Y-27632 preconditioning enhances transplantation of human-induced pluripotent stem cell-derived cardiomyocytes in myocardial infarction mice. Cardiovasc. Res. 2019, 115, 343–356. [Google Scholar] [CrossRef] [PubMed]
- Zhu, W.; Zhao, M.; Mattapally, S.; Chen, S.; Zhang, J. CCND2 overexpression enhances the regenerative potency of human induced pluripotent stem cell-derived cardiomyocytes: Remuscularization of injured ventricle. Cardiovasc. Res. 2018, 122, 88–96. [Google Scholar] [CrossRef]
- Jiang, X.; Yang, Z.; Dong, M. Cardiac repair in a murine model of myocardial infarction with human induced pluripotent stem cell-derived cardiomyocytes. Stem Cell Res. Ther. 2020, 11, 297. [Google Scholar] [CrossRef]
- Higuchi, T.; Miyagawa, S.; Pearson, J.T.; Fukushima, S.; Saito, A.; Tsuchimochi, H.; Sonobe, T.; Fujii, Y.; Yagi, N.; Astolfo, A.; et al. Functional and electrical integration of induced pluripotent stem cell-derived cardiomyocytes in a myocardial infarction rat heart. Cell Transplant. 2015, 24, 2479–2489. [Google Scholar] [CrossRef] [Green Version]
- Shiba, Y.; Gomibuchi, T.; Seto, T.; Wada, Y.; Ichimura, H.; Tanaka, Y.; Sonobe, T.; Fujii, Y.; Yagi, N.; Astolfo, A.; et al. Allogeneic transplantation of iPS cell-derived cardiomyocytes regenerates primate hearts. Nature 2016, 538, 388–391. [Google Scholar] [CrossRef]
- Chong, J.J.; Yang, X.; Don, C.W.; Minami, E.; Liu, Y.W.; Weyers, J.J.; Mahoney, W.M.; Van Biber, B.; Cook, S.M.; Palpant, N.J.; et al. Human embryonic-stem-cell-derived cardiomyocytes regenerate non-human primate hearts. Nature 2014, 510, 273–277. [Google Scholar] [CrossRef]
- Ye, L.; Chang, Y.H.; Xiong, Q.; Zhang, P.; Zhang, L.; Somasundaram, P.; Lepley, M.; Swingen, C.; Su, L.; Wendel, J.S.; et al. Cardiac repair in a porcine model of acute myocardial infarction with human induced pluripotent stem cell-derived cardiovascular cells. Cell Stem Cell 2014, 15, 750–761. [Google Scholar] [CrossRef] [Green Version]
- Gao, L.; Gregorich, Z.R.; Zhu, W.; Mattapally, S.; Oduk, Y.; Lou, X.; Kannappan, R.; Borovjagin, A.V.; Walcott, G.P.; Pollard, A.E.; et al. Large cardiac muscle patches engineered from human induced-pluripotent stem cell-derived cardiac cells improve recovery from myocardial infarction in swine. Circulation 2018, 137, 1712–1730. [Google Scholar] [CrossRef]
- Su, T.; Huang, K.; Mathews, K.G.; Scharf, V.F.; Hu, S.; Li, Z.; Frame, B.N.; Cores, J.; Dinh, P.U.; Daniele, M.A.; et al. Cardiac stromal cell patch integrated with engineered microvessels improves recovery from myocardial infarction in rats and pigs. ACS Biomater. Sci. Eng. 2020, 6, 6309–6320. [Google Scholar] [CrossRef]
- Su, T.; Huang, K.; Daniele, M.A.; Hensley, M.T.; Young, A.T.; Tang, J.; Allen, T.A.; Vandergriff, A.C.; Erb, P.D.; Ligler, F.S.; et al. Cardiac stem cell patch integrated with microengineered blood vessels promotes cardiomyocyte proliferation and neovascularization after acute myocardial infarction. ACS Appl. Mater. Interfaces 2018, 10, 33088–33096. [Google Scholar] [CrossRef]
- Serpooshan, V.; Wu, S.M. Patching up broken hearts: Cardiac cell therapy gets a bioengineered boost. Cell Stem Cell 2014, 15, 671–673. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Garbern, J.C.; Lee, R.T. Cardiac stem cell therapy and the promise of heart regeneration. Cell Stem Cell 2013, 12, 689–698. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Laflamme, M.A.; Murry, C.E. Heart regeneration. Nature 2011, 473, 326–335. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Baba, S.; Heike, T.; Yoshimoto, M.; Umeda, K.; Doi, H.; Iwasa, T.; Lin, X.; Matsuoka, S.; Komeda, M.; Nakahata, T. Flk1(+) cardiac stem/progenitor cells derived from embryonic stem cells improve cardiac function in a dilated cardiomyopathy mouse model. Cardiovasc. Res. 2007, 76, 119–131. [Google Scholar] [CrossRef] [Green Version]
- Wu, S.M.; Fujiwara, Y.; Cibulsky, S.M.; Clapham, D.E.; Lien, C.L.; Schultheiss, T.M.; Orkin, S.H. Developmental origin of a bipotential myocardial and smooth muscle cell precursor in the mammalian heart. Cell 2006, 127, 1137–1150. [Google Scholar] [CrossRef] [Green Version]
- Yang, L.; Soonpaa, M.H.; Adler, E.D.; Roepke, T.K.; Kattman, S.J.; Kennedy, M.; Henckaerts, E.; Bonham, K.; Abbott, G.W.; Linden, R.M.; et al. Human cardiovascular progenitor cells develop from a KDR+ embryonic-stem-cell-derived population. Nature 2008, 453, 524–528. [Google Scholar] [CrossRef] [PubMed]
- Moretti, A.; Caron, L.; Nakano, A.; Lam, J.T.; Bernshausen, A.; Chen, Y.; Qyang, Y.; Bu, L.; Sasaki, M.; Martin-Puig, S.; et al. Multipotent embryonic isl1+ progenitor cells lead to cardiac, smooth muscle, and endothelial cell diversification. Cell 2006, 127, 1151–1165. [Google Scholar] [CrossRef] [Green Version]
- Zhang, Y.; Cao, N.; Huang, Y.; Spencer, C.I.; Fu, J.D.; Yu, C.; Liu, K.; Nie, B.; Xu, T.; Li, K.; et al. Expandable Cardiovascular Progenitor Cells Reprogrammed from Fibroblasts. Cell Stem Cell 2016, 18, 368–381. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Lalit, P.A.; Salick, M.R.; Nelson, D.O.; Squirrell, J.M.; Shafer, C.M.; Patel, N.G.; Saeed, I.; Schmuck, E.G.; Markandeya, Y.S.; Wong, R.; et al. Lineage reprogramming of fibroblasts into proliferative induced cardiac progenitor cells by defined factors. Cell Stem Cell 2016, 18, 354–367. [Google Scholar] [CrossRef] [Green Version]
- Li, X.H.; Li, Q.; Jiang, L.; Deng, C.; Liu, Z.; Fu, Y.; Zhang, M.; Tan, H.; Feng, Y.; Shan, Z.; et al. Generation of functional human cardiac progenitor cells by high-efficiency protein transduction. Stem Cells Transl. Med. 2015, 4, 1415–1424. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Beltrami, A.P.; Barlucchi, L.; Torella, D.; Baker, M.; Limana, F.; Chimenti, S.; Kasahara, H.; Rota, M.; Musso, E.; Urbanek, K.; et al. Adult cardiac stem cells are multipotent and support myocardial regeneration. Cell 2003, 114, 763–776. [Google Scholar] [CrossRef] [Green Version]
- Oh, H.; Bradfute, S.B.; Gallardo, T.D.; Nakamura, T.; Gaussin, V.; Mishina, Y.; Pocius, J.; Michael, L.H.; Behringer, R.R.; Garry, D.J.; et al. Cardiac progenitor cells from adult myocardium: Homing, differentiation, and fusion after infarction. Proc. Natl. Acad. Sci. USA 2003, 100, 12313–12318. [Google Scholar] [CrossRef] [Green Version]
- Bondue, A.; Lapouge, G.; Paulissen, C.; Semeraro, C.; Iacovino, M.; Kyba, M.; Blanpain, C. Mesp1 acts as a master regulator of multipotent cardiovascular progenitor specification. Cell Stem Cell 2008, 3, 69–84. [Google Scholar] [CrossRef]
- Tang, X.L.; Li, Q.; Rokosh, G.; Sanganalmath, S.K.; Chen, N.; Ou, Q.; Hunt, G.; Bolli, R. Long-Term outcome of administration of c-kit(POS) cardiac progenitor cells after acute myocardial infarction: Transplanted cells do not become cardiomyocytes, but structural and functional improvement and proliferation of endogenous cells persist for at least one year. Cardiovasc. Res. 2016, 118, 1091–1105. [Google Scholar]
- Bolli, R.; Chugh, A.R.; D’Amario, D.; Loughran, J.H.; Stoddard, M.F.; Ikram, S.; Beache, G.M.; Wagner, S.G.; Leri, A.; Hosoda, T.; et al. Cardiac stem cells in patients with ischaemic cardiomyopathy (SCIPIO): Initial results of a randomised phase 1 trial. Lancet 2011, 378, 1847–1857. [Google Scholar] [CrossRef] [Green Version]
- Keith, M.C.; Bolli, R. “String theory” of c-kit(pos) cardiac cells: A new paradigm regarding the nature of these cells that may reconcile apparently discrepant results. Cardiovasc. Res. 2015, 116, 1216–1230. [Google Scholar] [CrossRef] [Green Version]
- van Berlo, J.H.; Kanisicak, O.; Maillet, M.; Vagnozzi, R.J.; Karch, J.; Lin, S.C.; Middleton, R.C.; Marban, E.; Molkentin, J.D. c-kit+ cells minimally contribute cardiomyocytes to the heart. Nature 2014, 509, 337–341. [Google Scholar] [CrossRef] [PubMed]
- Jesty, S.A.; Steffey, M.A.; Lee, F.K.; Breitbach, M.; Hesse, M.; Reining, S.; Lee, J.C.; Doran, R.M.; Nikitin, A.Y.; Fleischmann, B.K.; et al. c-kit+ precursors support postinfarction myogenesis in the neonatal, but not adult, heart. Proc. Natl. Acad. Sci. USA 2012, 109, 13380–13385. [Google Scholar] [CrossRef] [Green Version]
- Zaruba, M.M.; Soonpaa, M.; Reuter, S.; Field, L.J. Cardiomyogenic potential of C-kit(+)-expressing cells derived from neonatal and adult mouse hearts. Circulation 2010, 121, 1992–2000. [Google Scholar] [CrossRef] [Green Version]
- Sanganalmath, S.K.; Bolli, R. Cell therapy for heart failure: A comprehensive overview of experimental and clinical studies, current challenges, and future directions. Cardiovasc. Res. 2013, 113, 810–834. [Google Scholar] [CrossRef] [PubMed]
- Hong, K.U.; Guo, Y.; Li, Q.H.; Cao, P.; Al-Maqtari, T.; Vajravelu, B.N.; Du, J.; Book, M.J.; Zhu, X.; Nong, Y.; et al. c-kit+ Cardiac stem cells alleviate post-myocardial infarction left ventricular dysfunction despite poor engraftment and negligible retention in the recipient heart. PLoS ONE 2014, 9, e96725. [Google Scholar] [CrossRef] [Green Version]
- Bolli, R.; Tang, X.L.; Sanganalmath, S.K.; Rimoldi, O.; Mosna, F.; Abdel-Latif, A.; Jneid, H.; Rota, M.; Leri, A.; Kajstura, J. Intracoronary delivery of autologous cardiac stem cells improves cardiac function in a porcine model of chronic ischemic cardiomyopathy. Circulation 2013, 128, 122–131. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Tang, X.L.; Rokosh, G.; Sanganalmath, S.K.; Yuan, F.; Sato, H.; Mu, J.; Dai, S.; Li, C.; Chen, N.; Peng, Y.; et al. Intracoronary administration of cardiac progenitor cells alleviates left ventricular dysfunction in rats with a 30-day-old infarction. Circulation 2010, 121, 293–305. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Liang, S.X.; Tan, T.Y.; Gaudry, L.; Chong, B. Differentiation and migration of Sca1+/CD31- cardiac side population cells in a murine myocardial ischemic model. Int. J. Cardiol. 2010, 138, 40–49. [Google Scholar] [CrossRef]
- Oh, H.; Chi, X.; Bradfute, S.B.; Mishina, Y.; Pocius, J.; Michael, L.H.; Behringer, R.R.; Schwartz, R.J.; Entman, M.L.; Schneider, M.D. Cardiac muscle plasticity in adult and embryo by heart-derived progenitor cells. Ann. N. Y. Acad. Sci. 2004, 1015, 182–189. [Google Scholar] [CrossRef]
- Wang, X.; Hu, Q.; Nakamura, Y.; Lee, J.; Zhang, G.; From, A.H.; Zhang, J. The role of the sca-1+/CD31- cardiac progenitor cell population in postinfarction left ventricular remodeling. Stem Cells 2006, 24, 1779–1788. [Google Scholar] [CrossRef] [PubMed]
- Noseda, M.; Harada, M.; McSweeney, S.; Leja, T.; Belian, E.; Stuckey, D.J.; Abreu Paiva, M.S.; Habib, J.; Macaulay, I.; de Smith, A.J.; et al. PDGFRalpha demarcates the cardiogenic clonogenic Sca1+ stem/progenitor cell in adult murine myocardium. Nat. Commun. 2015, 6, 6930. [Google Scholar] [CrossRef] [Green Version]
- Vagnozzi, R.J.; Sargent, M.A.; Lin, S.J.; Palpant, N.J.; Murry, C.E.; Molkentin, J.D. Genetic lineage tracing of Sca-1(+) cells reveals endothelial but not myogenic contribution to the murine heart. Circulation 2018, 138, 2931–2939. [Google Scholar] [CrossRef]
- Soonpaa, M.H.; Lafontant, P.J.; Reuter, S.; Scherschel, J.A.; Srour, E.F.; Zaruba, M.M.; Rubart-von der Lohe, M.; Field, L.J. Absence of cardiomyocyte differentiation following transplantation of adult cardiac-resident Sca-1(+) cells into infarcted mouse hearts. Circulation 2018, 138, 2963–2966. [Google Scholar] [CrossRef]
- Zhang, L.; Sultana, N.; Yan, J.; Yang, F.; Chen, F.; Chepurko, E.; Yang, F.C.; Du, Q.; Zangi, L.; Xu, M.; et al. Cardiac Sca-1(+) cells are not intrinsic stem cells for myocardial development, renewal, and repair. Circulation 2018, 138, 2919–2930. [Google Scholar] [CrossRef] [PubMed]
- Konemann, S.; Sartori, L.V.; Gross, S.; Hadlich, S.; Kuhn, J.P.; Samal, R.; Bahls, M.; Felix, S.B.; Wenzel, K. Cardioprotective effect of the secretome of Sca-1+ and Sca-1- cells in heart failure: Not equal, but equally important? Cardiovasc. Res. 2020, 116, 566–575. [Google Scholar] [CrossRef] [PubMed]
- Saga, Y.; Miyagawa-Tomita, S.; Takagi, A.; Kitajima, S.; Miyazaki, J.; Inoue, T. MesP1 is expressed in the heart precursor cells and required for the formation of a single heart tube. Development 1999, 126, 3437–3447. [Google Scholar]
- Liu, Y.; Chen, L.; Diaz, A.D.; Benham, A.; Xu, X.; Wijaya, C.S.; Fa’ak, F.; Luo, W.; Soibam, B.; Azares, A.; et al. Mesp1 marked cardiac progenitor cells repair infarcted mouse hearts. Sci. Rep. 2016, 6, 31457. [Google Scholar] [CrossRef] [Green Version]
- Ema, M.; Takahashi, S.; Rossant, J. Deletion of the selection cassette, but not cis-acting elements, in targeted Flk1-lacZ allele reveals Flk1 expression in multipotent mesodermal progenitors. Blood 2006, 107, 111–117. [Google Scholar] [CrossRef] [PubMed]
- David, R.; Brenner, C.; Stieber, J.; Schwarz, F.; Brunner, S.; Vollmer, M.; Mentele, E.; Muller-Hocker, J.; Kitajima, S.; Lickert, H.; et al. MesP1 drives vertebrate cardiovascular differentiation through Dkk-1-mediated blockade of Wnt-signaling. Nat. Cell Biol. 2008, 10, 338–345. [Google Scholar] [CrossRef]
- Lindsley, R.C.; Gill, J.G.; Murphy, T.L.; Langer, E.M.; Cai, M.; Mashayekhi, M.; Wang, W.; Niwa, N.; Nerbonne, J.M.; Kyba, M.; et al. Mesp1 coordinately regulates cardiovascular fate restriction and epithelial-mesenchymal transition in differentiating ESCs. Cell Stem Cell 2008, 3, 55–68. [Google Scholar] [CrossRef] [Green Version]
- Lee, A.S.; Tang, C.; Rao, M.S.; Weissman, I.L.; Wu, J.C. Tumorigenicity as a clinical hurdle for pluripotent stem cell therapies. Nat. Med. 2013, 19, 998–1004. [Google Scholar] [CrossRef] [Green Version]
- Chen, I.Y.; Wu, J.C. Finding expandable induced cardiovascular progenitor cells. Cardiovasc. Res. 2016, 119, 16–20. [Google Scholar] [CrossRef] [Green Version]
- Dinh, P.C.; Cores, J.; Hensley, M.T.; Vandergriff, A.C.; Tang, J.; Allen, T.A.; Caranasos, T.G.; Adler, K.B.; Lobo, L.J.; Cheng, K. Derivation of therapeutic lung spheroid cells from minimally invasive transbronchial pulmonary biopsies. Respir. Res. 2017, 18, 132. [Google Scholar] [CrossRef] [Green Version]
- Messina, E.; De Angelis, L.; Frati, G.; Morrone, S.; Chimenti, S.; Fiordaliso, F.; Salio, M.; Battaglia, M.; Latronico, M.V.; Coletta, M.; et al. Isolation and expansion of adult cardiac stem cells from human and murine heart. Cardiovasc. Res. 2004, 95, 911–921. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hensley, M.T.; Tang, J.; Woodruff, K.; Defrancesco, T.; Tou, S.; Williams, C.M.; Breen, M.; Meurs, K.; Keene, B.; Cheng, K. Intracoronary allogeneic cardiosphere-derived stem cells are safe for use in dogs with dilated cardiomyopathy. J. Cell. Mol. Med. 2017, 21, 1503–1512. [Google Scholar] [CrossRef] [PubMed]
- Smith, R.R.; Barile, L.; Cho, H.C.; Leppo, M.K.; Hare, J.M.; Messina, E.; Giacomello, A.; Abraham, M.R.; Marban, E. Regenerative potential of cardiosphere-derived cells expanded from percutaneous endomyocardial biopsy specimens. Circulation 2007, 115, 896–908. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Cheng, K.; Li, T.S.; Malliaras, K.; Davis, D.R.; Zhang, Y.; Marban, E. Magnetic targeting enhances engraftment and functional benefit of iron-labeled cardiosphere-derived cells in myocardial infarction. Cardiovasc. Res. 2010, 106, 1570–1581. [Google Scholar] [CrossRef] [Green Version]
- Cheng, K.; Blusztajn, A.; Shen, D.; Li, T.S.; Sun, B.; Galang, G.; Zarembinski, T.I.; Prestwich, G.D.; Marban, E.; Smith, R.R.; et al. Functional performance of human cardiosphere-derived cells delivered in an in situ polymerizable hyaluronan-gelatin hydrogel. Biomaterials 2012, 33, 5317–5324. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Cheng, K.; Ibrahim, A.; Hensley, M.T.; Shen, D.; Sun, B.; Middleton, R.; Liu, W.; Smith, R.R.; Marban, E. Relative roles of CD90 and c-kit to the regenerative efficacy of cardiosphere-derived cells in humans and in a mouse model of myocardial infarction. J. Am. Heart Assoc. 2014, 3, e001260. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Cheng, K.; Shen, D.; Smith, J.; Galang, G.; Sun, B.; Zhang, J.; Marban, E. Transplantation of platelet gel spiked with cardiosphere-derived cells boosts structural and functional benefits relative to gel transplantation alone in rats with myocardial infarction. Biomaterials 2012, 33, 2872–2879. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Li, T.S.; Cheng, K.; Malliaras, K.; Smith, R.R.; Zhang, Y.; Sun, B.; Matsushita, N.; Blusztajn, A.; Terrovitis, J.; Kusuoka, H.; et al. Direct comparison of different stem cell types and subpopulations reveals superior paracrine potency and myocardial repair efficacy with cardiosphere-derived cells. J. Am. Coll. Cardiol. 2012, 59, 942–953. [Google Scholar] [CrossRef] [Green Version]
- Shen, D.; Cheng, K.; Marban, E. Dose-Dependent functional benefit of human cardiosphere transplantation in mice with acute myocardial infarction. J. Cell. Mol. Med. 2012, 16, 2112–2116. [Google Scholar] [CrossRef] [PubMed]
- Makkar, R.R.; Smith, R.R.; Cheng, K.; Malliaras, K.; Thomson, L.E.; Berman, D.; Czer, L.S.; Marban, L.; Mendizabal, A.; Johnston, P.V.; et al. Intracoronary cardiosphere-derived cells for heart regeneration after myocardial infarction (CADUCEUS): A prospective, randomised phase 1 trial. Lancet 2012, 379, 895–904. [Google Scholar] [CrossRef] [Green Version]
- Malliaras, K.; Makkar, R.R.; Smith, R.R.; Cheng, K.; Wu, E.; Bonow, R.O.; Marban, L.; Mendizabal, A.; Cingolani, E.; Johnston, P.V.; et al. Intracoronary cardiosphere-derived cells after myocardial infarction: Evidence of therapeutic regeneration in the final 1-year results of the CADUCEUS trial (CArdiosphere-Derived aUtologous stem CElls to reverse ventricUlar dySfunction). J. Am. Coll. Cardiol. 2014, 63, 110–122. [Google Scholar] [CrossRef] [Green Version]
- Chimenti, I.; Smith, R.R.; Li, T.S.; Gerstenblith, G.; Messina, E.; Giacomello, A.; Marban, E. Relative roles of direct regeneration versus paracrine effects of human cardiosphere-derived cells transplanted into infarcted mice. Cardiovasc. Res. 2010, 106, 971–980. [Google Scholar] [CrossRef]
- Pittenger, M.F.; Mackay, A.M.; Beck, S.C.; Jaiswal, R.K.; Douglas, R.; Mosca, J.D.; Moorman, M.A.; Simonetti, D.W.; Craig, S.; Marshak, D.R. Multilineage potential of adult human mesenchymal stem cells. Science 1999, 284, 143–147. [Google Scholar] [CrossRef] [Green Version]
- Feng, G.; Zhang, J.; Li, Y.; Nie, Y.; Zhu, D.; Wang, R.; Liu, J.; Gao, J.; Liu, N.; He, N.; et al. IGF-1 C domain-modified hydrogel enhances cell therapy for AKI. J. Am. Soc. Nephrol. JASN 2016, 27, 2357–2369. [Google Scholar] [CrossRef] [Green Version]
- Kobolak, J.; Dinnyes, A.; Memic, A.; Khademhosseini, A.; Mobasheri, A. Mesenchymal stem cells: Identification, phenotypic characterization, biological properties and potential for regenerative medicine through biomaterial micro-engineering of their niche. Methods 2016, 99, 62–68. [Google Scholar] [CrossRef]
- Han, Y.; Li, X.; Zhang, Y.; Han, Y.; Chang, F.; Ding, J. Mesenchymal stem cells for regenerative medicine. Cells 2019, 8, 886. [Google Scholar] [CrossRef] [Green Version]
- Ozturk, S.; Elcin, A.E.; Elcin, Y.M. Functions of mesenchymal stem cells in cardiac repair. In Advances in Experimental Medicine and Biology; Springer: New York, NY, USA, 2020. [Google Scholar]
- Planat-Benard, V.; Menard, C.; Andre, M.; Puceat, M.; Perez, A.; Garcia-Verdugo, J.M.; Penicaud, L.; Casteilla, L. Spontaneous cardiomyocyte differentiation from adipose tissue stroma cells. Cardiovasc. Res. 2004, 94, 223–229. [Google Scholar] [CrossRef] [Green Version]
- Choe, G.; Park, J.; Jo, H.; Kim, Y.S.; Ahn, Y.; Lee, J.Y. Studies on the effects of microencapsulated human mesenchymal stem cells in RGD-modified alginate on cardiomyocytes under oxidative stress conditions using in vitro biomimetic co-culture system. Int. J. Biol. Macromol. 2019, 123, 512–520. [Google Scholar] [CrossRef]
- Amado, L.C.; Saliaris, A.P.; Schuleri, K.H.; St John, M.; Xie, J.S.; Cattaneo, S.; Durand, D.J.; Fitton, T.; Kuang, J.Q.; Stewart, G.; et al. Cardiac repair with intramyocardial injection of allogeneic mesenchymal stem cells after myocardial infarction. Proc. Natl. Acad. Sci. USA 2005, 102, 11474–11479. [Google Scholar] [CrossRef] [Green Version]
- Miyahara, Y.; Nagaya, N.; Kataoka, M.; Yanagawa, B.; Tanaka, K.; Hao, H.; Ishino, K.; Ishida, H.; Shimizu, T.; Kangawa, K.; et al. Monolayered mesenchymal stem cells repair scarred myocardium after myocardial infarction. Nat. Med. 2006, 12, 459–465. [Google Scholar] [CrossRef] [Green Version]
- Wen, Z.; Zheng, S.; Zhou, C.; Wang, J.; Wang, T. Repair mechanisms of bone marrow mesenchymal stem cells in myocardial infarction. J. Cell. Mol. Med. 2011, 15, 1032–1043. [Google Scholar] [CrossRef] [Green Version]
- Kraitchman, D.L.; Heldman, A.W.; Atalar, E.; Amado, L.C.; Martin, B.J.; Pittenger, M.F.; Hare, J.M.; Bulte, J.W. In vivo magnetic resonance imaging of mesenchymal stem cells in myocardial infarction. Circulation 2003, 107, 2290–2293. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Yao, X.; Liu, Y.; Gao, J.; Yang, L.; Mao, D.; Stefanitsch, C.; Li, Y.; Zhang, J.; Ou, L.; Kong, D.; et al. Nitric oxide releasing hydrogel enhances the therapeutic efficacy of mesenchymal stem cells for myocardial infarction. Biomaterials 2015, 60, 130–140. [Google Scholar] [CrossRef]
- Hare, J.M.; Traverse, J.H.; Henry, T.D.; Dib, N.; Strumpf, R.K.; Schulman, S.P.; Gerstenblith, G.; DeMaria, A.N.; Denktas, A.E.; Gammon, R.S.; et al. A randomized, double-blind, placebo-controlled, dose-escalation study of intravenous adult human mesenchymal stem cells (prochymal) after acute myocardial infarction. J. Am. Coll. Cardiol. 2009, 54, 2277–2286. [Google Scholar] [CrossRef] [Green Version]
- Gao, L.R.; Chen, Y.; Zhang, N.K.; Yang, X.L.; Liu, H.L.; Wang, Z.G.; Yan, X.Y.; Wang, Y.; Zhu, Z.M.; Li, T.C.; et al. Intracoronary infusion of Wharton’s jelly-derived mesenchymal stem cells in acute myocardial infarction: Double-blind, randomized controlled trial. BMC Med. 2015, 13, 162. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Can, A.; Ulus, A.T.; Cinar, O.; Topal Celikkan, F.; Simsek, E.; Akyol, M.; Canpolat, U.; Erturk, M.; Kara, F.; Ilhan, O. Human umbilical cord mesenchymal stromal cell transplantation in myocardial ischemia (HUC-HEART Trial). A study protocol of a phase 1/2, controlled and randomized trial in combination with coronary artery bypass grafting. Stem Cell Rev. Rep. 2015, 11, 752–760. [Google Scholar] [CrossRef] [PubMed]
- Bartolucci, J.; Verdugo, F.J.; Gonzalez, P.L.; Larrea, R.E.; Abarzua, E.; Goset, C.; Rojo, P.; Palma, I.; Lamich, R.; Pedreros, P.A.; et al. Safety and efficacy of the intravenous infusion of umbilical cord mesenchymal stem cells in patients with heart failure: A phase 1/2 randomized controlled trial (rimecard trial [Randomized clinical trial of intravenous infusion umbilical cord mesenchymal stem cells on cardiopathy]). Cardiovasc. Res. 2017, 121, 1192–1204. [Google Scholar]
- Guo, Y.; Yu, Y.; Hu, S.; Chen, Y.; Shen, Z. The therapeutic potential of mesenchymal stem cells for cardiovascular diseases. Cell Death Dis. 2020, 11, 349. [Google Scholar] [CrossRef]
- Shafei, A.E.; Ali, M.A.; Ghanem, H.G.; Shehata, A.I.; Abdelgawad, A.A.; Handal, H.R.; ElSayed, A.S.; Ashaal, A.E.; Ali, M.M.; El-Shal, A.S. Mechanistic effects of mesenchymal and hematopoietic stem cells: New therapeutic targets in myocardial infarction. J. Cell. Biochem. 2018, 119, 5274–5286. [Google Scholar] [CrossRef]
- Schachinger, V.; Assmus, B.; Erbs, S.; Elsasser, A.; Haberbosch, W.; Hambrecht, R.; Yu, J.; Corti, R.; Mathey, D.G.; Hamm, C.W.; et al. Intracoronary infusion of bone marrow-derived mononuclear cells abrogates adverse left ventricular remodelling post-acute myocardial infarction: Insights from the reinfusion of enriched progenitor cells and infarct remodelling in acute myocardial infarction (REPAIR-AMI) trial. Eur. J. Heart Fail. 2009, 11, 973–979. [Google Scholar]
- Menasche, P.; Alfieri, O.; Janssens, S.; McKenna, W.; Reichenspurner, H.; Trinquart, L.; Vilquin, J.T.; Marolleau, J.P.; Seymour, B.; Larghero, J.; et al. The myoblast autologous grafting in ischemic cardiomyopathy (MAGIC) trial: First randomized placebo-controlled study of myoblast transplantation. Circulation 2008, 117, 1189–1200. [Google Scholar] [CrossRef] [Green Version]
- Abdel-Latif, A.; Bolli, R.; Tleyjeh, I.M.; Montori, V.M.; Perin, E.C.; Hornung, C.A.; Zuba-Surma, E.K.; Al-Mallah, M.; Dawn, B. Adult bone marrow-derived cells for cardiac repair: A systematic review and meta-analysis. Arch. Intern. Med. 2007, 167, 989–997. [Google Scholar] [CrossRef] [PubMed]
- Narmoneva, D.A.; Vukmirovic, R.; Davis, M.E.; Kamm, R.D.; Lee, R.T. Endothelial cells promote cardiac myocyte survival and spatial reorganization: Implications for cardiac regeneration. Circulation 2004, 110, 962–968. [Google Scholar] [CrossRef] [Green Version]
- Tang, J.N.; Cores, J.; Huang, K.; Cui, X.L.; Luo, L.; Zhang, J.Y.; Li, T.S.; Qian, L.; Cheng, K. Concise review: Is cardiac cell therapy dead? Embarrassing trial outcomes and new directions for the future. Stem Cells Transl. Med. 2018, 7, 354–359. [Google Scholar] [CrossRef]
- Ucuzian, A.A.; Gassman, A.A.; East, A.T.; Greisler, H.P. Molecular mediators of angiogenesis. J. Burn Care Res. Off. Publ. Am. Burn Assoc. 2010, 31, 158–175. [Google Scholar] [CrossRef]
- Gonzalez-King, H.; Garcia, N.A.; Ontoria-Oviedo, I.; Ciria, M.; Montero, J.A.; Sepulveda, P. Hypoxia inducible factor-1alpha potentiates jagged 1-mediated angiogenesis by mesenchymal stem cell-derived exosomes. Stem Cells 2017, 35, 1747–1759. [Google Scholar] [CrossRef] [Green Version]
- Hou, L.; Kim, J.J.; Woo, Y.J.; Huang, N.F. Stem cell-based therapies to promote angiogenesis in ischemic cardiovascular disease. Am. J. Physiol. Heart Circ. Physiol. 2016, 310, H455–H465. [Google Scholar] [CrossRef]
- Ahmadi, M.; Rahbarghazi, R.; Aslani, M.R.; Shahbazfar, A.A.; Kazemi, M.; Keyhanmanesh, R. Bone marrow mesenchymal stem cells and their conditioned media could potentially ameliorate ovalbumin-induced asthmatic changes. Biomed. Pharmacother. 2017, 85, 28–40. [Google Scholar] [CrossRef] [PubMed]
- Pankajakshan, D.; Agrawal, D.K. Mesenchymal stem cell paracrine factors in vascular repair and regeneration. J. Biomed. Technol. Res. 2014, 1. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Bussche, L.; Van de Walle, G.R. Peripheral blood-derived mesenchymal stromal cells promote angiogenesis via paracrine stimulation of vascular endothelial growth factor secretion in the equine model. Stem Cells Transl. Med. 2014, 3, 1514–1525. [Google Scholar] [CrossRef] [PubMed]
- Kalluri, R.; LeBleu, V.S. The biology, function, and biomedical applications of exosomes. Science 2020, 367, eaau6977. [Google Scholar] [CrossRef] [PubMed]
- Sun, L.L.; Li, W.D.; Lei, F.R.; Li, X.Q. The regulatory role of microRNAs in angiogenesis-related diseases. J. Cell. Mol. Med. 2018, 22, 4568–4587. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Ferguson, S.W.; Wang, J.; Lee, C.J.; Liu, M.; Neelamegham, S.; Canty, J.M.; Nguyen, J. The microRNA regulatory landscape of MSC-derived exosomes: A systems view. Sci. Rep. 2018, 8, 1419. [Google Scholar] [CrossRef] [PubMed]
- Guduric-Fuchs, J.; O’Connor, A.; Cullen, A.; Harwood, L.; Medina, R.J.; O’Neill, C.L.; Stitt, A.W.; Curtis, T.M.; Simpson, D.A. Deep sequencing reveals predominant expression of miR-21 amongst the small non-coding RNAs in retinal microvascular endothelial cells. J. Cell. Biochem. 2012, 113, 2098–2111. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Fish, J.E.; Santoro, M.M.; Morton, S.U.; Yu, S.; Yeh, R.F.; Wythe, J.D.; Ivey, K.N.; Bruneau, B.G.; Stainier, D.Y.; Srivastava, D. miR-126 regulates angiogenic signaling and vascular integrity. Dev. Cell 2008, 15, 272–284. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Otsuka, M.; Zheng, M.; Hayashi, M.; Lee, J.D.; Yoshino, O.; Lin, S.; Han, J. Impaired microRNA processing causes corpus luteum insufficiency and infertility in mice. J. Clin. Investig. 2008, 118, 1944–1954. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Ren, G.; Zhang, L.; Zhao, X.; Xu, G.; Zhang, Y.; Roberts, A.I.; Zhao, R.C.; Shi, Y. Mesenchymal stem cell-mediated immunosuppression occurs via concerted action of chemokines and nitric oxide. Cell Stem Cell 2008, 2, 141–150. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Akiyama, K.; Chen, C.; Wang, D.; Xu, X.; Qu, C.; Yamaza, T.; Cai, T.; Chen, W.; Sun, L.; Shi, S. Mesenchymal-stem-cell-induced immunoregulation involves FAS-ligand-/FAS-mediated T cell apoptosis. Cell Stem Cell 2012, 10, 544–555. [Google Scholar] [CrossRef] [Green Version]
- Nemeth, K.; Leelahavanichkul, A.; Yuen, P.S.; Mayer, B.; Parmelee, A.; Doi, K.; Robey, P.G.; Leelahavanichkul, K.; Koller, B.H.; Brown, J.M.; et al. Bone marrow stromal cells attenuate sepsis via prostaglandin E(2)-dependent reprogramming of host macrophages to increase their interleukin-10 production. Nat. Med. 2009, 15, 42–49. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zhang, S.; Liu, Y.; Zhang, X.; Zhu, D.; Qi, X.; Cao, X.; Fang, Y.; Che, Y.; Han, Z.C.; He, Z.X.; et al. Prostaglandin E2 hydrogel improves cutaneous wound healing via M2 macrophages polarization. Theranostics 2018, 8, 5348–5361. [Google Scholar] [CrossRef]
- Dhingra, S.; Li, P.; Huang, X.P.; Guo, J.; Wu, J.; Mihic, A.; Li, S.H.; Zang, W.F.; Shen, D.; Weisel, R.D.; et al. Preserving prostaglandin E2 level prevents rejection of implanted allogeneic mesenchymal stem cells and restores postinfarction ventricular function. Circulation 2013, 128, S69–S78. [Google Scholar] [CrossRef] [Green Version]
- Wisniewski, H.G.; Vilcek, J. Cytokine-induced gene expression at the crossroads of innate immunity, inflammation and fertility: TSG-6 and PTX3/TSG-14. Cytokine Growth Factor Rev. 2004, 15, 129–146. [Google Scholar] [CrossRef]
- Blundell, C.D.; Mahoney, D.J.; Almond, A.; DeAngelis, P.L.; Kahmann, J.D.; Teriete, P.; Pickford, A.R.; Campbell, I.D.; Day, A.J. The link module from ovulation- and inflammation-associated protein TSG-6 changes conformation on hyaluronan binding. J. Biol. Chem. 2003, 278, 49261–49270. [Google Scholar] [CrossRef] [Green Version]
- Peet, C.; Ivetic, A.; Bromage, D.I.; Shah, A.M. Cardiac monocytes and macrophages after myocardial infarction. Cardiovasc. Res. 2020, 116, 1101–1112. [Google Scholar] [CrossRef] [Green Version]
- Vagnozzi, R.J.; Maillet, M.; Sargent, M.A.; Khalil, H.; Johansen, A.K.Z.; Schwanekamp, J.A.; York, A.J.; Huang, V.; Nahrendorf, M.; Sadayappan, S.; et al. An acute immune response underlies the benefit of cardiac stem cell therapy. Nature 2020, 577, 405–409. [Google Scholar] [CrossRef]
- Yagi, H.; Soto-Gutierrez, A.; Kitagawa, Y.; Tilles, A.W.; Tompkins, R.G.; Yarmush, M.L. Bone marrow mesenchymal stromal cells attenuate organ injury induced by LPS and burn. Cell Transplant. 2010, 19, 823–830. [Google Scholar] [CrossRef] [Green Version]
- Ip, W.K.E.; Hoshi, N.; Shouval, D.S.; Snapper, S.; Medzhitov, R. Anti-inflammatory effect of IL-10 mediated by metabolic reprogramming of macrophages. Science 2017, 356, 513–519. [Google Scholar] [CrossRef] [PubMed]
- Jung, M.; Ma, Y.; Iyer, R.P.; DeLeon-Pennell, K.Y.; Yabluchanskiy, A.; Garrett, M.R.; Lindsey, M.L. IL-10 improves cardiac remodeling after myocardial infarction by stimulating M2 macrophage polarization and fibroblast activation. Basic Res. Cardiol. 2017, 112, 33. [Google Scholar] [CrossRef] [PubMed]
- Bi, B.; Schmitt, R.; Israilova, M.; Nishio, H.; Cantley, L.G. Stromal cells protect against acute tubular injury via an endocrine effect. J. Am. Soc. Nephrol. JASN 2007, 18, 2486–2496. [Google Scholar] [CrossRef] [Green Version]
- Eliopoulos, N.; Zhao, J.; Bouchentouf, M.; Forner, K.; Birman, E.; Yuan, S.; Boivin, M.N.; Martineau, D. Human marrow-derived mesenchymal stromal cells decrease cisplatin renotoxicity in vitro and in vivo and enhance survival of mice post-intraperitoneal injection. Am. J. Physiol. Ren. Physiol. 2010, 299, F1288–F1298. [Google Scholar] [CrossRef] [Green Version]
- Li, W.; Ma, N.; Ong, L.L.; Nesselmann, C.; Klopsch, C.; Ladilov, Y.; Furlani, D.; Piechaczek, C.; Moebius, J.M.; Lutzow, K.; et al. Bcl-2 engineered MSCs inhibited apoptosis and improved heart function. Stem Cells 2007, 25, 2118–2127. [Google Scholar] [CrossRef] [Green Version]
- Noiseux, N.; Gnecchi, M.; Lopez-Ilasaca, M.; Zhang, L.; Solomon, S.D.; Deb, A.; Dzau, V.J.; Pratt, R.E. Mesenchymal stem cells overexpressing Akt dramatically repair infarcted myocardium and improve cardiac function despite infrequent cellular fusion or differentiation. Mol. Ther. J. Am. Soc. Gene Ther. 2006, 14, 840–850. [Google Scholar] [CrossRef]
- Wang, X.; Zhao, T.; Huang, W.; Wang, T.; Qian, J.; Xu, M.; Kranias, E.G.; Wang, Y.; Fan, G.C. Hsp20-engineered mesenchymal stem cells are resistant to oxidative stress via enhanced activation of Akt and increased secretion of growth factors. Stem Cells 2009, 27, 3021–3031. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hu, X.; Dai, S.; Wu, W.J.; Tan, W.; Zhu, X.; Mu, J.; Guo, Y.; Bolli, R.; Rokosh, G. Stromal cell derived factor-1 alpha confers protection against myocardial ischemia/reperfusion injury: Role of the cardiac stromal cell derived factor-1 alpha CXCR4 axis. Circulation 2007, 116, 654–663. [Google Scholar] [CrossRef] [Green Version]
- Morigi, M.; Rota, C.; Montemurro, T.; Montelatici, E.; Lo Cicero, V.; Imberti, B.; Abbate, M.; Zoja, C.; Cassis, P.; Longaretti, L.; et al. Life-Sparing effect of human cord blood-mesenchymal stem cells in experimental acute kidney injury. Stem Cells 2010, 28, 513–522. [Google Scholar] [CrossRef]
- Yuan, L.; Sakamoto, N.; Song, G.; Sato, M. Low-Level shear stress induces human mesenchymal stem cell migration through the SDF-1/CXCR4 axis via MAPK signaling pathways. Stem Cells Dev. 2013, 22, 2384–2393. [Google Scholar] [CrossRef] [PubMed]
- Kitaori, T.; Ito, H.; Schwarz, E.M.; Tsutsumi, R.; Yoshitomi, H.; Oishi, S.; Nakano, M.; Fujii, N.; Nagasawa, T.; Nakamura, T. Stromal cell-derived factor 1/CXCR4 signaling is critical for the recruitment of mesenchymal stem cells to the fracture site during skeletal repair in a mouse model. Arthritis Rheum. 2009, 60, 813–823. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Penn, M.S. Importance of the SDF-1:CXCR4 axis in myocardial repair. Cardiovasc. Res. 2009, 104, 1133–1135. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Liu, F.; Hu, S.; Yang, H.; Li, Z.; Huang, K.; Su, T.; Wang, S.; Cheng, K. Hyaluronic acid hydrogel integrated with mesenchymal stem cell-secretome to treat endometrial injury in a rat model of asherman’s syndrome. Adv. Healthc. Mater. 2019, 8, e1900411. [Google Scholar] [CrossRef]
- Dinh, P.C.; Paudel, D.; Brochu, H.; Popowski, K.D.; Gracieux, M.C.; Cores, J.; Huang, K.; Hensley, M.T.; Harrell, E.; Vandergriff, A.C.; et al. Inhalation of lung spheroid cell secretome and exosomes promotes lung repair in pulmonary fibrosis. Nat. Commun. 2020, 11, 1064. [Google Scholar] [CrossRef]
- Sharma, P.; Mesci, P.; Carromeu, C.; McClatchy, D.R.; Schiapparelli, L.; Yates, J.R., 3rd; Muotri, A.R.; Cline, H.T. Exosomes regulate neurogenesis and circuit assembly. Proc. Natl. Acad. Sci. USA 2019, 116, 16086–16094. [Google Scholar] [CrossRef] [Green Version]
- Thongboonkerd, V. Roles for Exosome in Various Kidney Diseases and Disorders. Front. Pharmacol. 2019, 10, 1655. [Google Scholar] [CrossRef] [Green Version]
- Popowski, K.; Lutz, H.; Hu, S.; George, A.; Dinh, P.U.; Cheng, K. Exosome therapeutics for lung regenerative medicine. J. Extracell. Vesicles 2020, 9, 1785161. [Google Scholar] [CrossRef] [PubMed]
- Hu, S.; Li, Z.; Cores, J.; Huang, K.; Su, T.; Dinh, P.U.; Cheng, K. Needle-Free injection of exosomes derived from human dermal fibroblast spheroids ameliorates skin photoaging. ACS Nano 2019, 13, 11273–11282. [Google Scholar] [CrossRef]
- Hu, S.; Li, Z.; Lutz, H.; Huang, K.; Su, T.; Cores, J.; Dinh, P.C.; Cheng, K. Dermal exosomes containing miR-218-5p promote hair regeneration by regulating beta-catenin signaling. Sci. Adv. 2020, 6, eaba1685. [Google Scholar] [CrossRef]
- Lai, R.C.; Arslan, F.; Lee, M.M.; Sze, N.S.; Choo, A.; Chen, T.S.; Salto-Tellez, M.; Timmers, L.; Lee, C.N.; El Oakley, R.M.; et al. Exosome secreted by MSC reduces myocardial ischemia/reperfusion injury. Stem Cell Research 2010, 4, 214–222. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Huang, P.; Wang, L.; Li, Q.; Tian, X.; Xu, J.; Xu, J.; Xiong, Y.; Chen, G.; Qian, H.; Jin, C.; et al. Atorvastatin enhances the therapeutic efficacy of mesenchymal stem cells-derived exosomes in acute myocardial infarction via up-regulating long non-coding RNA H19. Cardiovasc. Res. 2020, 116, 353–367. [Google Scholar] [CrossRef]
- Qiao, L.; Hu, S.; Liu, S.; Zhang, H.; Ma, H.; Huang, K.; Li, Z.; Su, T.; Vandergriff, A.; Tang, J.; et al. microRNA-21-5p dysregulation in exosomes derived from heart failure patients impairs regenerative potential. J. Clin. Investig. 2019, 129, 2237–2250. [Google Scholar] [CrossRef] [PubMed]
- Vandergriff, A.; Huang, K.; Shen, D.; Hu, S.; Hensley, M.T.; Caranasos, T.G.; Qian, L.; Cheng, K. Targeting regenerative exosomes to myocardial infarction using cardiac homing peptide. Theranostics 2018, 8, 1869–1878. [Google Scholar] [CrossRef]
- Luo, L.; Tang, J.; Nishi, K.; Yan, C.; Dinh, P.U.; Cores, J.; Kudo, T.; Zhang, J.; Li, T.S.; Cheng, K. Fabrication of synthetic mesenchymal stem cells for the treatment of acute myocardial infarction in mice. Cardiovasc. Res. 2017, 120, 1768–1775. [Google Scholar] [CrossRef] [Green Version]
- Tang, J.; Shen, D.; Caranasos, T.G.; Wang, Z.; Vandergriff, A.C.; Allen, T.A.; Hensley, M.T.; Dinh, P.U.; Cores, J.; Li, T.S.; et al. Therapeutic microparticles functionalized with biomimetic cardiac stem cell membranes and secretome. Nat. Commun. 2017, 8, 13724. [Google Scholar] [CrossRef]
- Huang, K.; Ozpinar, E.W.; Su, T.; Tang, J.; Shen, D.; Qiao, L.; Hu, S.; Li, Z.; Liang, H.; Mathews, K.; et al. An off-the-shelf artificial cardiac patch improves cardiac repair after myocardial infarction in rats and pigs. Sci. Transl. Med. 2020, 12, eaat9683. [Google Scholar] [CrossRef] [PubMed]
- Rupaimoole, R.; Slack, F.J. MicroRNA therapeutics: Towards a new era for the management of cancer and other diseases. Nat. Rev. Drug Discov. 2017, 16, 203–222. [Google Scholar] [CrossRef]
- Nikan, M.; Osborn, M.F.; Coles, A.H.; Godinho, B.M.; Hall, L.M.; Haraszti, R.A.; Hassler, M.R.; Echeverria, D.; Aronin, N.; Khvorova, A. Docosahexaenoic Acid Conjugation Enhances Distribution and Safety of siRNA upon Local Administration in Mouse Brain. Mol. Ther. Nucleic Acids 2016, 5, e344. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Wang, L.L.; Liu, Y.; Chung, J.J.; Wang, T.; Gaffey, A.C.; Lu, M.; Cavanaugh, C.A.; Zhou, S.; Kanade, R.; Atluri, P.; et al. Local and sustained miRNA delivery from an injectable hydrogel promotes cardiomyocyte proliferation and functional regeneration after ischemic injury. Nat. Biomed. Eng. 2017, 1, 983–992. [Google Scholar] [CrossRef] [Green Version]
- Cheng, K.; Shen, D.; Hensley, M.T.; Middleton, R.; Sun, B.; Liu, W.; De Couto, G.; Marban, E. Magnetic antibody-linked nanomatchmakers for therapeutic cell targeting. Nat. Commun. 2014, 5, 4880. [Google Scholar] [CrossRef]
- Su, T.; Huang, K.; Ma, H.; Liang, H.; Dinh, P.U.; Chen, J.; Shen, D.; Allen, T.A.; Qiao, L.; Li, Z.; et al. Platelet-Inspired nanocells for targeted heart repair after ischemia/reperfusion injury. Adv. Funct. Mater. 2019, 29, 1803567. [Google Scholar] [CrossRef]
- Huang, K.; Li, Z.; Su, T.; Shen, D.; Hu, S.; Cheng, K. Bispecific antibody therapy for effective cardiac repair through redirection of endogenous stem cells. Adv. Ther. 2019, 2, 1900009. [Google Scholar] [CrossRef]
- Liu, M.; Lutz, H.; Zhu, D.; Huang, K.; Li, Z.; Dinh, P.-U.C.; Gao, J.; Zhang, Y.; Cheng, K. Bispecific antibody inhalation therapy for redirecting stem cells from the lungs to repair heart injury. Adv. Sci. 2021, 8, 2002127. [Google Scholar] [CrossRef]
- Zhu, D.; Li, Z.; Huang, K.; Caranasos, T.G.; Rossi, J.S.; Cheng, K. Minimally invasive delivery of therapeutic agents by hydrogel injection into the pericardial cavity for cardiac repair. Nat. Commun. 2021, 12, 1412. [Google Scholar] [CrossRef]
- Li, Z.; Zhu, D.; Hui, Q.; Bi, J.; Yu, B.; Huang, Z.; Hu, S.; Wang, Z.; Caranasos, T.; Rossi, J.; et al. Injection of ROS-responsive hydrogel loaded with basic fibroblast growth factor into the pericardial cavity for heart repair. Adv. Funct. Mater. 2021, 2004377. [Google Scholar] [CrossRef]
- Li, Z.; Hu, S.; Huang, K.; Su, T.; Cores, J.; Cheng, K. Targeted anti-IL-1beta platelet microparticles for cardiac detoxing and repair. Sci. Adv. 2020, 6, eaay0589. [Google Scholar] [CrossRef] [PubMed] [Green Version]
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Zhu, D.; Cheng, K. Cardiac Cell Therapy for Heart Repair: Should the Cells Be Left Out? Cells 2021, 10, 641. https://doi.org/10.3390/cells10030641
Zhu D, Cheng K. Cardiac Cell Therapy for Heart Repair: Should the Cells Be Left Out? Cells. 2021; 10(3):641. https://doi.org/10.3390/cells10030641
Chicago/Turabian StyleZhu, Dashuai, and Ke Cheng. 2021. "Cardiac Cell Therapy for Heart Repair: Should the Cells Be Left Out?" Cells 10, no. 3: 641. https://doi.org/10.3390/cells10030641
APA StyleZhu, D., & Cheng, K. (2021). Cardiac Cell Therapy for Heart Repair: Should the Cells Be Left Out? Cells, 10(3), 641. https://doi.org/10.3390/cells10030641