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Updated: May 8, 2026

Cholesterol Efflux Assay
Published on: March 6, 2012
Pro-apoptotic miRNA-128-2 modulates ABCA1, ABCG1 and RXRα expression and cholesterol homeostasis
Y K Adlakha1, S Khanna, R Singh
1Functional Genomics Unit, CSIR-Institute of Genomics and Integrative Biology (IGIB), Council of Scientific and Industrial Research (CSIR), Delhi, India.
Abstract:
Aberrant regulation of cholesterol homeostasis is associated with obesity as well as multiple types of cancer. However, the mechanism behind these is largely missing. Here, we show that microRNA (miRNA)-128-2 is not only a pro-apoptotic microRNA but it also alters the expression of genes involved in cellular cholesterol homeostasis. Cholesterol efflux via ATP-binding cassette transporters (ABCA1 and ABCG1) is a mechanism for cells to eliminate excess cholesterol and prevent cellular cholesterol accumulation. The regulation of these pathways is complex with transcriptional regulation by sterol-regulatory element-binding protein (SREBP) and liver X receptor/retinoid X receptor (RXR) transcription factors but poorly understood at the post-transcriptional levels. MiR-128-2 increases the expression of SREBP2 and decreases the expression of SREBP1 in HepG2, MCF7 and HEK293T cells independent of sirtuin 1 (SIRT1) status. MiR-128-2 inhibits the expression of ABCA1, ABCG1 and RXRα directly through a miR-128-2-binding site within their respective 3'untranslated regions. The administration of miR-128-2 leads to decline in the protein and mRNA levels of ABCA1, ABCG1 and RXRα. Conversely, anti-miRNA treatment leads to increased ABCA1, ABCG1 and RXRα expression. The inverse correlation between miR-128-2 and its targets viz. ABCA1 and ABCG1 was also established during high-fat diet in different mice tissues. Our data show that cholesterol efflux is attenuated by miR-128-2 overexpression and, conversely, stimulated by miR-128-2 silencing. Further, we also observed the induction of ER stress response by miR-128-2. In this study, we provide the first evidence of miR-128-2 to be a new regulator of cholesterol homeostasis. Our study shows dual role of miR-128-2, as a pro-apoptotic molecule as well as a regulator of cholesterol homeostasis.
Insights
MicroRNA-128-2 regulates cholesterol homeostasis by inhibiting cholesterol efflux. This microRNA (miRNA) also impacts apoptosis and endoplasmic reticulum stress, revealing a dual role in cellular processes.
Area of Science:
- Molecular Biology
- Cellular Biology
- Biochemistry
Background:
- Aberrant cholesterol homeostasis is linked to obesity and cancer, yet underlying mechanisms remain unclear.
- Cholesterol efflux via ABCA1 and ABCG1 transporters is crucial for preventing cellular cholesterol accumulation.
- Post-transcriptional regulation of cholesterol homeostasis pathways is poorly understood.
Purpose of the Study:
- To investigate the role of microRNA (miRNA)-128-2 in regulating cellular cholesterol homeostasis.
- To elucidate the molecular mechanisms by which miRNA-128-2 affects genes involved in cholesterol metabolism.
- To explore the potential dual function of miRNA-128-2 as a pro-apoptotic factor and cholesterol regulator.
Main Methods:
- Utilized cell lines (HepG2, MCF7, HEK293T) to study miRNA-128-2 effects on gene expression.
- Analyzed the direct inhibition of ABCA1, ABCG1, and RXRα by miRNA-128-2 via 3'UTR binding sites.
- Investigated miRNA-128-2 and target gene correlations in mice fed a high-fat diet.
Main Results:
- MiRNA-128-2 increased SREBP2 and decreased SREBP1 expression, independent of SIRT1.
- MiRNA-128-2 directly inhibited ABCA1, ABCG1, and RXRα expression, reducing cholesterol efflux.
- Inverse correlation between miRNA-128-2 and ABCA1/ABCG1 levels was observed in vivo during high-fat diet, alongside ER stress induction.
Conclusions:
- MiRNA-128-2 is identified as a novel regulator of cholesterol homeostasis.
- MiRNA-128-2 plays a dual role, acting as a pro-apoptotic molecule and modulating cholesterol metabolism.
- Understanding miRNA-128-2's function offers insights into obesity, cancer, and metabolic disorders.
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