circROCK1 Promotes septic myocardial injury through regulating miR-96-5p/OXSR1 axis

ZhiYu He1, Lingling Xu1, Xiaojun Zeng1

  • 1Department of cardiovascular, The First Affiliated Hospital of Guangzhou Medical University, Guangzhou City, Guangdong Province, 510120, China.

Acta Biochimica Polonica
|September 18, 2023
PubMed

Insights

Circular RNA Rho-associated kinase 1 (circROCK1) exacerbates sepsis-induced myocardial injury by regulating the miR-96-5p/OXSR1 pathway. This finding identifies circROCK1 as a potential therapeutic target for septic myocardial dysfunction.

Area of Science:

  • Molecular Biology
  • Cardiovascular Biology
  • Sepsis Research

Background:

  • Sepsis can lead to myocardial injury, but the underlying molecular mechanisms are not fully understood.
  • Circular RNA Rho-associated kinase 1 (circROCK1) is upregulated in sepsis.
  • The role of circROCK1 in sepsis-induced myocardial injury requires investigation.

Purpose of the Study:

  • To investigate the biological function of circROCK1 in sepsis-induced myocardial injury.
  • To elucidate the downstream molecular mechanism of circROCK1 in this context.
  • To explore circROCK1 as a potential therapeutic target.

Main Methods:

  • Detection of circROCK1 and miR-96-5p expression in septic patients and a mouse model.
  • In vivo manipulation of circROCK1 and miR-96-5p levels.
  • Assessment of cardiac function and myocardial injury markers.
  • Analysis of inflammatory factors, NF-κB, and OXSR1 expression.
  • Dual luciferase reporter assays to confirm molecular interactions.

Main Results:

  • circROCK1 and OXSR1 were upregulated, while miR-96-5p was downregulated in sepsis.
  • circROCK1 levels correlated with sepsis severity markers.
  • Silencing circROCK1 improved cardiac function and reduced myocardial damage and inflammation.
  • circROCK1 and OXSR1 target miR-96-5p, forming a regulatory axis.

Conclusions:

  • circROCK1 promotes myocardial injury in sepsis by modulating the miR-96-5p/OXSR1 axis.
  • circROCK1 represents a promising therapeutic target for septic myocardial dysfunction.
Abstract

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