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Integrative Omics Uncovers Low Tumorous Magnesium Content as A Driver Factor of Colorectal Cancer. | LitMetric

Integrative Omics Uncovers Low Tumorous Magnesium Content as A Driver Factor of Colorectal Cancer.

Genomics Proteomics Bioinformatics

National Clinical Research Center for Geriatrics and General Practice Ward/International Medical Center Ward, General Practice Medical Center, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University, Chengdu 610041, China.

Published: October 2024

AI Article Synopsis

  • Magnesium (Mg) deficiency is linked to a higher risk of colorectal cancer (CRC), with research identifying 160 genes that show more mutations in tumors with low Mg levels, including important cancer-related genes like KMT2C and ERBB3.
  • Interestingly, tumors with high Mg levels also showed more mutations in key CRC initiation genes, such as TP53 and APC.
  • These findings suggest that low Mg may activate processes that help cancer cells migrate and invade, but Mg supplementation could potentially help prevent or treat CRC by reducing this harmful activity.

Article Abstract

Magnesium (Mg) deficiency is associated with increased risk and malignancy in colorectal cancer (CRC), yet the underlying mechanisms remain elusive. Here, we used genomic, proteomic, and phosphoproteomic data to elucidate the impact of Mg deficiency on CRC. Genomic analysis identified 160 genes with higher mutation frequencies in Low-Mg tumors, including key driver genes such as KMT2C and ERBB3. Unexpectedly, initiation driver genes of CRC, such as TP53 and APC, displayed higher mutation frequencies in High-Mg tumors. Additionally, proteomic and phosphoproteomic data indicated that low Mg content in tumors may activate epithelial-mesenchymal transition (EMT) by modulating inflammation or remodeling the phosphoproteome of cancer cells. Notably, we observed a negative correlation between the phosphorylation of DBN1 at S142 (DBN1S142p) and Mg content. A mutation in S142 to D (DBN1S142D) mimicking DBN1S142p up-regulated MMP2 and enhanced cell migration, while treatment with MgCl2 reduced DBN1S142p, thereby reversing this phenotype. Mechanistically, Mg2+ attenuated the DBN1-ACTN4 interaction by decreasing DBN1S142p, which in turn enhanced the binding of ACTN4 to F-actin and promoted F-actin polymerization, ultimately reducing MMP2 expression. These findings shed new light on the crucial role of Mg deficiency in CRC progression and suggest that Mg supplementation may be a promising preventive and therapeutic strategy for CRC.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11514849PMC
http://dx.doi.org/10.1093/gpbjnl/qzae053DOI Listing

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