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Analyzing the α-Actinin Network in Human iPSC-Derived Cardiomyocytes Using Single Molecule Localization Microscopy
Published on: November 3, 2020
Mature human induced pluripotent stem cell-derived cardiomyocytes promote angiogenesis through alpha-B crystallin
Yuki Tanaka1,2, Shin Kadota3,4, Jian Zhao1
1Department of Regenerative Science and Medicine, Shinshu University School of Medicine, 3-1-1 Asahi, Matsumoto, 390-8621, Japan.
Insights
Long-term cultured human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) improve engraftment and maturation in injured rat hearts. Mature hiPSC-CMs promote angiogenesis via alpha-B crystallin, enhancing therapeutic potential for heart disease.
Area of Science:
- Cardiovascular Biology
- Regenerative Medicine
- Stem Cell Biology
Background:
- Human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) show promise for treating heart disease.
- Optimal maturity of hiPSC-CMs for effective cardiac regeneration is not well-defined.
Purpose of the Study:
- To investigate the therapeutic benefits of long-term cultured mature hiPSC-CMs in a rat myocardial infarction model.
- To elucidate the mechanisms underlying enhanced cell retention, engraftment, and angiogenesis.
Main Methods:
- hiPSC-CMs were cultured for 28 (D28-CMs) or 56 days (D56-CMs) and transplanted into rat hearts post-myocardial infarction.
- Cell retention, engraftment, maturation, and angiogenesis were assessed using in vivo imaging and histology.
- Transcriptomic sequencing and Western blot analyses identified key molecular factors.
Main Results:
- D56-CMs exhibited upregulated mature sarcomere genes and superior engraftment and maturation compared to D28-CMs at 12 weeks post-transplantation.
- Long-term cultured hiPSC-CMs consistently promoted microvessel formation and angiogenesis.
- Alpha-B crystallin (CRYAB), highly expressed in D56-CMs, was identified as a key angiogenic factor promoting endothelial cell migration and angiogenesis.
Conclusions:
- Long-term culture enhances the maturity and therapeutic efficacy of hiPSC-CMs for cardiac repair.
- Mature hiPSC-CMs promote graft maturation, angiogenesis, and improve cardiac function post-transplantation.
- CRYAB is a crucial angiogenic factor secreted by mature hiPSC-CMs, highlighting its therapeutic potential.
Background:
Human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) can be used to treat heart diseases; however, the optimal maturity of hiPSC-CMs for effective regenerative medicine remains unclear. We aimed to investigate the benefits of long-term cultured mature hiPSC-CMs in injured rat hearts.
Methods:
Cardiomyocytes were differentiated from hiPSCs via monolayer culturing, and the cells were harvested on day 28 or 56 (D28-CMs or D56-CMs, respectively) after differentiation. We transplanted D28-CMs or D56-CMs into the hearts of rat myocardial infarction models and examined cell retention and engraftment via in vivo bioluminescence imaging and histological analysis. We performed transcriptomic sequencing analysis to elucidate the genetic profiles before and after hiPSC-CM transplantation.
Results:
Upregulated expression of mature sarcomere genes in vitro was observed in D56-CMs compared with D28-CMs. In vivo bioluminescence imaging studies revealed increased bioluminescence intensity of D56-CMs at 8 and 12 weeks post-transplantation. Histological and immunohistochemical analyses showed that D56-CMs promoted engraftment and maturation in the graft area at 12 weeks post-transplantation. Notably, D56-CMs consistently promoted microvessel formation in the graft area from 1 to 12 weeks post-transplantation. Transcriptomic sequencing analysis revealed that compared with the engrafted D28-CMs, the engrafted D56-CMs enriched genes related to blood vessel regulation at 12 weeks post-transplantation. As shown by transcriptomic and western blot analyses, the expression of a small heat shock protein, alpha-B crystallin (CRYAB), was significantly upregulated in D56-CMs compared with D28-CMs. Endothelial cell migration was inhibited by small interfering RNA-mediated knockdown of CRYAB when co-cultured with D56-CMs in vitro. Furthermore, CRYAB overexpression enhanced angiogenesis in the D28-CM grafts at 4 weeks post-transplantation.
Conclusions:
Long-term cultured mature hiPSC-CMs promoted engraftment, maturation and angiogenesis post-transplantation in infarcted rat hearts. CRYAB, which was highly expressed in D56-CMs, was identified as an angiogenic factor from mature hiPSC-CMs. This study revealed the benefits of long-term culture, which may enhance the therapeutic potential of hiPSC-CMs.
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