LncRNA AC100865.1 regulates macrophage adhesion and ox-LDL intake through miR-7/GDF5 pathway

Yong Ren1, Jiarong Liang2, Baofeng Chen2

  • 1Central Medical Laboratory, Zhengzhou Yihe Hospital, Zhengzhou, PR China.

Cellular Signalling
|March 17, 2025
PubMed

Insights

This study reveals that lncRNA AC100865.1, downregulated in cardiovascular disease (CVD), enhances macrophage adhesion and oxidized LDL uptake. This suggests its potential as a diagnostic marker and therapeutic target for atherosclerosis.

Area of Science:

  • Molecular Biology
  • Cardiovascular Research
  • Biomarker Discovery

Background:

  • Cardiovascular disease (CVD) is a leading cause of mortality, with atherosclerosis (AS) and thrombosis as primary drivers.
  • LncRNA AC100865.1 is a novel long non-coding RNA with potential diagnostic value for AS.
  • This research investigates the therapeutic implications of lncRNA AC100865.1 in AS.

Purpose of the Study:

  • To evaluate the therapeutic potential of lncRNA AC100865.1 in atherosclerosis.
  • To understand the molecular mechanisms underlying lncRNA AC100865.1's function in AS.
  • To explore lncRNA AC100865.1 as a potential therapeutic target for CVD.

Main Methods:

  • Real-time PCR to quantify lncRNA AC100865.1 expression in patient samples.
  • Overexpression of lncRNA AC100865.1 in RAW264.7 cells to assess effects on cell adhesion and oxidized LDL uptake.
  • Flow cytometry, luciferase assays, and knockout rescue experiments to elucidate signaling pathways.

Main Results:

  • lncRNA AC100865.1 expression is significantly downregulated in CVD patients.
  • Overexpression of lncRNA AC100865.1 enhances RAW264.7 cell adhesion via the miR-7/GDF5/p38/LFA-1 pathway.
  • lncRNA AC100865.1 increases macrophage oxidized LDL uptake by upregulating CD36 expression.

Conclusions:

  • lncRNA AC100865.1 plays a crucial role in enhancing cell adhesion and oxidized LDL uptake in AS.
  • Circulating lncRNA AC100865.1 shows promise as an early diagnostic biomarker for CVD.
  • lncRNA AC100865.1 represents a potential novel therapeutic target for treating atherosclerosis and CVD.
Abstract