microRNAs Regulate Cellular Magnesium by Tuning Expression of the Plasma Membrane Protein CNNM4

Tomas S Lazarou1, Helia Dehghan Harati2, Lara K Mahal2

  • 1Department of Chemistry, New York University, New York, New York 10003, United States.

ACS Chemical Biology
|August 27, 2025
PubMed

Insights

MicroRNAs regulate Cyclin M4 (CNNM4), a magnesium transporter, impacting cellular magnesium levels. This discovery suggests microRNAs

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Genetics

Background:

  • Cyclin M4 (CNNM4) is a plasma membrane Mg2+ transporter crucial for cellular and organismal Mg2+ homeostasis.
  • CNNM4 overexpression is observed in liver diseases like non-alcoholic steatohepatitis and acetaminophen-induced liver injury, leading to aberrant Mg2+ levels.
  • The regulatory mechanisms behind CNNM4 overexpression are currently unknown.

Purpose of the Study:

  • To investigate the role of microRNAs in regulating CNNM4 expression and cellular magnesium levels.
  • To identify specific microRNAs that bind to the 3'UTR of CNNM4.
  • To elucidate the impact of microRNA-mediated CNNM4 regulation on magnesium homeostasis in hepatocytes.

Main Methods:

  • High-throughput assay to determine the miRNA binding profile of the CNNM4 3'UTR.
  • Direct measurement of CNNM4 expression and cellular magnesium concentrations in hepatocytes.
  • Validation of direct miRNA binding to the CNNM4 3'UTR.

Main Results:

  • Identified a complete miRNA binding profile for the CNNM4 3'UTR.
  • Demonstrated both upregulation and downregulation of CNNM4 by specific microRNAs through direct binding.
  • Provided direct evidence that these microRNA interactions alter cellular magnesium concentrations in hepatocytes.

Conclusions:

  • MicroRNAs play a significant role in regulating CNNM4 expression and consequently, cellular magnesium homeostasis in the liver.
  • Aberrant magnesium levels, potentially mediated by CNNM4 and microRNAs, may have broader implications in diseases such as breast cancer.
  • This study reveals a novel regulatory pathway for magnesium transport and opens avenues for understanding its role in various pathologies.

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