iPSC-MSCs with High Intrinsic MIRO1 and Sensitivity to TNF-α Yield Efficacious Mitochondrial Transfer to Rescue Anthracycline-Induced Cardiomyopathy

Yuelin Zhang(University of Hong Kong), Zhendong Yu(Peking University Shenzhen Hospital), Dan Jiang(University of Hong Kong), Xiaoting Liang(University of Hong Kong), Song-Yan Liao(University of Hong Kong), Zhao Zhang(University of Hong Kong), Wensheng Yue(University of Hong Kong), Xiang Li(University of Hong Kong), Sin-Ming Chiu(University of Hong Kong), Yuet-Hung Chai(University of Hong Kong), Yingmin Liang(University of Hong Kong), Yenyen Chow(University of Hong Kong), Shuo Han(University of Hong Kong), Aimin Xu(University of Hong Kong), Hung‐Fat Tse(Guangzhou Institutes of Biomedicine and Health), Qizhou Lian(City University of Hong Kong, Shenzhen Research Institute)
Stem Cell Reports
September 16, 2016
Cited by 267Open Access
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Abstract

Mesenchymal stem cells (MSCs) can donate mitochondria and rescue anthracycline-induced cardiomyocyte (CM) damage, although the underlying mechanisms remain elusive. We determined that the superior efficiency of mitochondrial transfer by human induced-pluripotent-stem-cell-derived MSCs (iPSC-MSCs) compared with bone marrow-derived MSCs (BM-MSCs) is due to high expression of intrinsic Rho GTPase 1 (MIRO1). Further, due to a higher level of TNFαIP2 expression, iPSC-MSCs are more responsive to tumor necrosis factor alpha (TNF-α)-induced tunneling nanotube (TNT) formation for mitochondrial transfer to CMs, which is regulated via the TNF-α/NF-κB/TNFαIP2 signaling pathway. Inhibition of TNFαIP2 or MIRO1 in iPSC-MSCs reduced the efficiency of mitochondrial transfer and decreased CMs protection. Compared with BM-MSCs, transplantation of iPSC-MSCs into a mouse model of anthracycline-induced cardiomyopathy resulted in more human mitochondrial retention and bioenergetic preservation in heart tissue. Efficacious transfer of mitochondria from iPSC-MSCs to CMs, due to higher MIRO1 expression and responsiveness to TNF-α-induced nanotube formation, effectively attenuates anthracycline-induced CM damage.


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