Homocysteine induced a calcium-mediated disruption of mitochondrial function and dynamics in endothelial cells

Li-Ting Chen1, Ting-Ting Xu1, Ya-Qing Qiu1

  • 1Institute of Pharmacology and Toxicology, Zhejiang University, Hangzhou, China.

Insights

Elevated homocysteine (Hcy) causes cardiovascular disease by damaging endothelial cells. This study reveals Hcy disrupts mitochondrial calcium regulation, leading to dysfunction and impaired dynamics, offering new therapeutic targets.

Area of Science:

  • Biochemistry
  • Cell Biology
  • Cardiovascular Research

Background:

  • Elevated plasma homocysteine (Hcy) is an independent risk factor for cardiovascular diseases (CVD).
  • Endothelial dysfunction is a key factor in CVD development, but the mechanisms of Hcy-induced dysfunction remain unclear.

Purpose of the Study:

  • To investigate the molecular mechanisms underlying homocysteine-induced endothelial dysfunction.
  • To explore the role of mitochondrial dysfunction and calcium handling in Hcy-mediated endothelial cell damage.

Main Methods:

  • Endothelial cells were treated with homocysteine.
  • Mitochondrial morphology, membrane potential, ATP levels, and reactive oxygen species were assessed.
  • Expression of proteins involved in mitochondrial dynamics (Drp1, Mfn2) and calcium transport (MCU, IP3R-Grp75-VDAC complex) was analyzed.
  • Mitochondria-associated membranes (MAMs) formation was evaluated.
  • The effect of IP3R inhibitor Xestospongin C (XeC) was examined.

Main Results:

  • Homocysteine treatment led to mitochondrial morphological damage, decreased membrane potential, reduced ATP, and increased reactive oxygen species.
  • Hcy disrupted mitochondrial dynamics by upregulating Drp1 and inhibiting mitofusin 2.
  • Hcy activated mitochondrial calcium uniporter (MCU) and increased the IP3R-Grp75-VDAC complex in MAMs, leading to mitochondrial calcium accumulation.
  • Inhibition of IP3R with XeC attenuated Hcy-induced mitochondrial dysfunction and fission.

Conclusions:

  • Homocysteine induces mitochondrial dysfunction and disrupts mitochondrial dynamics in endothelial cells.
  • Increased mitochondrial calcium uptake, mediated by upregulated MCU and the IP3R-Grp75-VDAC complex in MAMs, is a key mechanism in Hcy-induced endothelial damage.
  • Targeting mitochondrial calcium regulation may offer a therapeutic strategy for Hcy-related cardiovascular diseases.

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