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Updated: Mar 20, 2026

On-Chip Endothelial Inflammatory Phenotyping
Published on: July 21, 2012
YTHDF proteins differentially regulate a subset of m6A-modified transcripts to restrain endothelial inflammation
Ramakrishnan Shyam Kumar1, Srinjoy Chakraborty1, Hariharan Jayakumar1
1Department of Biological Sciences, Birla Institute of Technology and Science (BITS) Pilani, Pilani, Rajasthan, India.
Background:
N6-methyladenosine (m6A) modification of mRNAs through METTL3 maintains homeostasis in many cell types. The mechanism by which METTL3 complexes together with reader proteins, especially the YTH domain-containing protein, governs endothelial homeostasis is not yet fully understood.
Methods And Results:
Primary endothelial cells (HUVECs), EA.hy926 cells, and rat aortas were used to modulate METTL3 activity and assess gene expression changes by molecular and biochemical assays. m6A RNA immunoprecipitation and RNA-protein interaction analyses were performed to determine transcript-specific m6A modification and YTHDF-mediated regulation. Interplaying with METTL3 caused abrupt yet selective loss of eNOS gene expression while increasing inflammatory adhesion molecule gene expression in cultured endothelial cells (EC) and rat aorta. Interestingly, many other genes associated with endothelial function/inflammation/senescence including CD31, CD144, KLF2, p65, and p53 remained unaltered upon METTL3 inhbition. MeRIP analysis revealed significant m6A modifications of several gene transcript including eNOS, and inflammatory adhesion molecules. m6A modification of gene transcripts selectively stabilized eNOS while causing degradation of inflammatory adhesion molecules without affecting the stability of other genes such as p65. Interestingly, RIP analysis showed that YTHDF1 was preferentially bound to m6A-modified eNOS while YTHDF2 was selectively associated with inflammatory adhesion molecules, causing differential regulation. Moreover, we failed to detect association of YTHDF1 or YTHDF2 to m6A modified p65 and KLF2 transcript.
Conclusion:
Taken together, the current study describes the essential role of the METTL3 complex in maintaining endothelial homeostasis through differential association of m6A modified gene transcripts with the reader proteins.
Insights
The METTL3 complex is crucial for endothelial homeostasis, selectively stabilizing eNOS and degrading inflammatory molecules via reader proteins YTHDF1 and YTHDF2. This study elucidates a key mechanism in endothelial cell function and inflammation.
Area of Science:
- Molecular Biology
- Epigenetics
- Cell Biology
Background:
- N6-methyladenosine (m6A) modification by METTL3 is vital for cellular homeostasis.
- The precise role of METTL3 complexes and reader proteins in endothelial homeostasis remains unclear.
Purpose of the Study:
- To investigate the mechanism by which METTL3 complexes, particularly with YTH domain-containing proteins, regulate endothelial homeostasis.
- To elucidate the role of m6A modification in gene expression and stability within endothelial cells.
Main Methods:
- Modulation of METTL3 activity in primary endothelial cells (HUVECs), EA.hy926 cells, and rat aortas.
- Gene expression analysis using molecular and biochemical assays.
- m6A RNA immunoprecipitation (MeRIP) and RNA-protein interaction (RIP) analyses to determine m6A modification and YTHDF-mediated regulation.
Main Results:
- METTL3 inhibition selectively decreased eNOS expression and increased inflammatory adhesion molecules.
- m6A modification selectively stabilized eNOS transcripts while promoting degradation of inflammatory adhesion molecule transcripts.
- YTHDF1 preferentially bound to m6A-modified eNOS, while YTHDF2 associated with inflammatory adhesion molecules, demonstrating differential regulation.
Conclusions:
- The METTL3 complex plays an essential role in maintaining endothelial homeostasis.
- Differential association of m6A-modified transcripts with reader proteins (YTHDF1, YTHDF2) governs endothelial gene expression and function.
- This mechanism highlights a novel pathway regulating endothelial cell response to inflammation and maintaining vascular health.
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