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A cardiac fibroblast-enriched micropeptide regulates inflammation in ischemia/reperfusion injury
Youchen Yan, Tingting Zhang, Xin He, Tailai Du, Gang Dai, Xingfeng Xu, Zhuohui Chen, Jialing Wu, Huimin Zhou, Yazhi Peng, Yan Li, Chen Liu, Xinxue Liao, Yugang Dong, Jing-song Ou, Zhan-Peng Huang
Youchen Yan, Tingting Zhang, Xin He, Tailai Du, Gang Dai, Xingfeng Xu, Zhuohui Chen, Jialing Wu, Huimin Zhou, Yazhi Peng, Yan Li, Chen Liu, Xinxue Liao, Yugang Dong, Jing-song Ou, Zhan-Peng Huang
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Research Article Cardiology Cell biology

A cardiac fibroblast-enriched micropeptide regulates inflammation in ischemia/reperfusion injury

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Abstract

Inflammation is a critical pathological process in myocardial infarction. Although immunosuppressive therapies can mitigate inflammatory responses and improve outcomes in myocardial infarction, they also increase the risk of infections. Identifying novel regulators of local cardiac inflammation could provide safer therapeutic targets for myocardial ischemia/reperfusion injury. In this study, we identified a previously uncharacterized micropeptide, which we named Inflammation Associated MicroPeptide (IAMP). IAMP is predominantly expressed in cardiac fibroblasts, and its expression is closely associated with cardiac inflammation. Downregulation of IAMP promotes, whereas its overexpression prevents, the transformation of cardiac fibroblasts into a more inflammatory phenotype under stressed/stimulated conditions, as evidenced by changes in the expression and secretion of proinflammatory cytokines. Consequently, loss of IAMP function leads to uncontrolled inflammation and worsens cardiac injury following ischemia/reperfusion surgery. Mechanistically, IAMP promotes the degradation of HIF-1α by interacting with its stabilizing partner HSP90 and, thus, suppresses the transcription of proinflammatory genes downstream of HIF-1α. This study underscores the significance of fibroblast-mediated inflammation in cardiac ischemia/reperfusion injury and highlights the therapeutic potential of targeting micropeptides for myocardial infarction.

Authors

Youchen Yan, Tingting Zhang, Xin He, Tailai Du, Gang Dai, Xingfeng Xu, Zhuohui Chen, Jialing Wu, Huimin Zhou, Yazhi Peng, Yan Li, Chen Liu, Xinxue Liao, Yugang Dong, Jing-song Ou, Zhan-Peng Huang

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Figure 4

Loss of IAMP exacerbates ischemia/reperfusion injury in the heart.

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Loss of IAMP exacerbates ischemia/reperfusion injury in the heart.
(A) S...
(A) Schedule for the in vivo study. (B) Evans blue and triphenyltetrazolium chloride (TTC) double staining and quantification of area at risk (AAR) and infarct size (IF) in hearts from Ctrl and IAMP-KO mice 24 hours after I/R surgery. n = 5 for each group. Scale bar: 1 mm. (C) TUNEL staining and quantification of apoptotic cells in cross sections of hearts from Ctrl and IAMP-KO mice 24 hours after I/R or surgery. n = 7 for each group. Scale bar: 100 μm. (D) Fractional shortening (FS), left ventricular posterior wall thickness at end-diastole (LVPW;d), and left ventricular internal dimension at end-diastole (LVID;d) accessed by echocardiography 2 weeks after I/R or sham surgery. n = 7–10 for each group. (E) Sirius red staining and quantifications of fibrotic area in cross sections of hearts from Ctrl and IAMP-KO mice 2 weeks after I/R or sham surgery. Scale bar: 1 mm. (F) qPCR analysis of mRNA levels of fibrosis marker genes. n = 7–8 for each group. (G) Flow cytometry and quantification of percentages of CD45+ cells in the ischemic area of hearts from Ctrl and IAMP-KO mice 24 hours after I/R or sham surgery. n = 7–8 for each group. (H and I) mRNA levels of Il6, Il1b, Cxcl1, and S100a8 (H) and protein levels of IL-6 (I) in the ischemic area of hearts from Ctrl and IAMP-KO mice 24 hours after I/R or sham surgery. n = 4–8 for each group. *P < 0.05; **P < 0.01; ***P < 0.001; ****P < 0.0001, by 2-tailed Student’s t test (B and C) or ANOVA with Tukey’s correction (D–I).

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