| Literature DB >> 25106452 |
Hao Wang, Hao Chen, Bei Feng, Xiang Wang, Xiaomin He, Renjie Hu, Meng Yin, Wei Wang, Wei Fu1, Zhiwei Xu.
Abstract
<span class="abstract_title">BACKGROUND: <span class="Disease">Myocardial infarction remains the leading cause of mortality in developed countries despite recent advances in its prevention and treatment. Regenerative therapies based on resident cardiac progenitor cells (CPCs) are a promising alternative to conventional treatments. However, CPCs resident in the heart are quite rare. It is unclear how these CPCs can be isolated and cultured efficiently and what the effects of long-term culture in vitro are on their 'stemness' and differentiation potential, but this is critical knowledge for CPCs' clinical application.Entities:
Mesh:
Substances:
Year: 2014 PMID: 25106452 PMCID: PMC4133720 DOI: 10.1186/1472-6750-14-75
Source DB: PubMed Journal: BMC Biotechnol ISSN: 1472-6750 Impact factor: 2.563
Figure 1Isolation and enrichment of Sca-1cells from the mouse heart and in vitro culture. A. Schematic representation of the isolation and enrichment of Sca-1+ cell populations from the mouse heart. B. Efficiency and feasibility of MACS. The proportion of Sca-1+ cells contained in pre-MACS population, Sca-1+-enriched population, and flow-through population analyzed by flow cytometry. The lower two panels show the morphology of cells after MACS under ordinary light microscopy (×100). C. Cells of Sca-1+-enriched populations cultured and passaged in vitro. Morphology of cells under inverted microscopy. Scale bar = 200 μm.
Figure 2Surface marker expression profiles of three subcultures derived from Sca-1-enriched populations analyzed by flow cytometry. All populations were analyzed for the expression of the stem/progenitor cell markers Sca-1 and c-kit, endothelial progenitor cell marker flk-1, endothelial cell specific marker CD31, hematopoietic progenitor marker CD34, and hematopoietic lineage marker CD45. Black line, non-stained cells; red line, corresponding antibody. (n = 3).
Figure 3Analysis of CD31 expression in Sca-1cells by FCM and identification of Sca-1-enriched cells by IF staining. A. Flow cytometry analyzed the expression of surface markers CD31 in Sca-1+ cells. B. All cells were triple-stained for Sca-1 (green), CD31 (red), and DAPI (blue). Bar = 100 μm.
Figure 4Gene expression profiles and proliferation abilities of Sca-1 high-expressing cell populations analyzed by RT-PCR and CCK-8. A. Expression of stem cell-related genes Nanog and TERT, cardiac precursor-related genes ISL-1 and TBX5, early cardiogenic genes GATA4, Nkx2.5, MEF2c, and mature cardiomyocyte specific gene α-MHC was analyzed by RT-PCR. RNA extracted from whole postnatal mouse heart (mH) was used as a positive control. (n = 3). B. Proliferation abilities were tested with CCK-8. Five successive time points were chosen: days 1 (24 hours after seeding), 3, 5, 7, and 9. Proliferation abilities of these cell populations were indirectly measured by the OD value at 450 nm. (n = 3). (*P < 0.01 vs P7, P28; #P < 0.01 vs d1).
Figure 5Differentiation potential of subcultured cells from Sca-1-enriched populations into cardiomyocyte-like cells in vitro. A-B. All cell populations were stained for the cardiomyocyte specific marker cardiac MHC (green), cardiac Troponin T (green) and DAPI (blue) after induction. White arrows indicate representative cells positive for each cardiomyocyte-specific antigen. Scale bar = 50 μm. C. Expression of cardiac-specific transcription factors GATA4 and Nkx2.5, early cardiogenic gene MEF2c, and cardiomyocyte-specific genes α-MHC, β-MHC, MLC-2a, and MLC-2v was analyzed by RT-PCR. RNA extracted from whole postnatal mouse heart (mH) was used as a positive control.
Figure 6Differentiation potential of subcultured cells from Sca-1-enriched population into smooth muscle-like cells in vitro. A-C. All cell populations were stained for the smooth muscle specific marker SMA (green), smooth muscle MHC (green), calponin (green) and DAPI (blue) after induction. Scale bar = 200 μm. D. Expression of smooth muscle specific genes α-SMA and calponin was analyzed by RT-PCR. RNA extracted from whole postnatal mouse heart (mH) was used as a positive control.
Figure 7Differentiation potential of subcultured cells from Sca-1-enriched populations into endothelial-like cells in vitro. A. All cell populations were stained for the endothelial cell marker CD31 (red) and DAPI (blue) after induction. Scale bar = 200 μm. B. Expression of the endothelial progenitor gene flk-1 and the endothelial cell specific genes CD31, vWF, and VE-Cadherin was analyzed by RT-PCR. RNA extracted from whole postnatal mouse heart (mH) was used as a positive control.