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Hspa1b attenuates hypoxia/reoxygenation-induced cardiomyocyte injury through dual suppression of P53-driven apoptotic and ferroptotic pathways.

Created on 14 Sep 2026

Authors

Chang Liu, Wensheng Qi, Yue Li, Tingting Fan, Yun Lan, Lei Pang, Haichun Ma, Yin Cai

Published in

Cell stress & chaperones. Volume 31. Issue 4. Pages 100194. Epub Jun 24, 2026.

Abstract

While the cardioprotective role of heat shock proteins (HSPs) in cardiovascular diseases is well established, the isoform-specific functions of HSP70 members in ischemia-reperfusion (I/R) injury remain unclear. This study investigates the role of Hspa1b, a stress-inducible HSP70 isoform, in cardiac I/R injury and elucidates its underlying mechanisms. In vivo, male C57BL/6 J mice were subjected to myocardial I/R surgery. In vitro, H9C2 cardiomyocytes were transfected with siRNA targeting Hspa1b or p53 and subjected to a hypoxia/reoxygenation (H/R) model. Cellular injury was quantified via lactate dehydrogenase (LDH) release, while viability was assessed using the CCK-8 assay. Apoptotic (Bax, Bcl2, and cleaved Caspase3) and ferroptotic (GPX4, XCT/SLC7A11) markers were analyzed by Western blotting. We found that I/R injury in mouse hearts upregulated Hspa1b and p53 protein levels, accompanied by increased infarct size and elevated plasma CK-MB levels. Similarly, H/R treatment in H9C2 cells increased Hspa1b and p53, which coincided with increased apoptosis and ferroptosis. Knockdown of Hspa1b exacerbated H/R-induced cellular injury, as evidenced by further increases in LDH release and reductions in cell viability, and amplified the changes in apoptotic and ferroptotic markers. Crucially, co-silencing Hspa1b and p53 partially rescued these effects, restoring cell viability and suppressing death pathways. Hspa1b confers cardioprotection against H/R injury by suppressing p53-mediated apoptosis and ferroptosis. These findings identify Hspa1b as a key protective regulator that mitigates I/R injury through dual regulation of cell death pathways.

PMID:
42342026
Bibliographic data and abstract were imported from PubMed on 14 Sep 2026.

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