Dual-specificity phosphatase 1 interacts with prohibitin 2 to improve mitochondrial quality control against type-3

Nanyang Liu1, Yanqiu Ding2, Hao Zhou2

  • 1Xiyuan Hospital, China Academy of Chinese Medical Sciences, Beijing, China.

Insights

Dual-specificity phosphatase 1 (DUSP1) protects the heart during cardiorenal syndrome type 3 (CRS-3). Reduced DUSP1 and disrupted DUSP1/PHB2 binding impair mitochondrial quality control, causing cardiac dysfunction.

Area of Science:

  • Cardiology
  • Nephrology
  • Mitochondrial Biology

Background:

  • Type-3 cardiorenal syndrome (CRS-3) involves acute kidney injury followed by cardiac dysfunction.
  • Mitochondrial injury is implicated in CRS-3-related myocardial impairment.
  • Dual-specificity phosphatase 1 (DUSP1) and prohibitin 2 (PHB2) are key regulators of cardiac mitochondrial quality.

Purpose of the Study:

  • To investigate the role of DUSP1 and PHB2 in CRS-3-induced cardiac depression.
  • To determine if DUSP1 and PHB2 dysregulation contributes to myocardial dysfunction during CRS-3.

Main Methods:

  • Utilized a mouse model of CRS-3.
  • Assessed DUSP1 expression and its impact on cardiac function and structure in wild-type and DUSP1 transgenic mice.
  • Examined the interaction between DUSP1 and PHB2, and the effect of a PHB2 variant on CRS-3 susceptibility.

Main Results:

  • DUSP1 was downregulated in CRS-3 mouse hearts.
  • DUSP1 overexpression protected against CRS-3-induced cardiac damage, inflammation, oxidative stress, and mitochondrial dysfunction.
  • DUSP1 normalized mitochondrial quality control by modulating fission, fusion, mitophagy, and biogenesis.
  • DUSP1 sustained mitochondrial quality via direct binding and phosphorylation of PHB2, an interaction disrupted by CRS-3.
  • A PHB2 variant reduced susceptibility to cardiac depression during CRS-3.

Conclusions:

  • CRS-3-induced myocardial dysfunction is linked to decreased DUSP1 expression.
  • Disruption of the DUSP1/PHB2 interaction impairs cardiac mitochondrial quality control.
  • Targeting DUSP1 and PHB2 may offer therapeutic strategies for CRS-3.

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