METTL3 (Methyltransferase Like 3)-Dependent N6-Methyladenosine Modification on Braf mRNA Promotes Macrophage
1The Key Laboratory of Cardiovascular Remodeling and Function Research, Chinese Ministry of Education, Chinese National Health Commission and Chinese Academy of Medical Sciences, The State and Shandong Province Joint Key Laboratory of Translational Cardiovascular Medicine, Department of Cardiology, Qilu Hospital, Cheeloo College of Medicine, Shandong University, Jinan, Shandong, China (Q.L., L.Y., A.G., R.R., Jianlin Zhang, L.C., X.W., Y.L., W.Q., L.C., W.L., W.W., Jie Zhang, Y.Z., M.Z., C.Z.).
Background:
Atherosclerosis is a chronic inflammatory disease, in which macrophages determine the progression of atherosclerotic plaques. However, no studies have investigated how METTL3 (methyltransferase like 3) in macrophages affects atherosclerotic plaque formation in vivo. Additionally, whether Braf mRNA is modified by METTL3-dependent N6-methyladenosine (m6A) methylation remains unknown.
Methods:
We analyzed single-cell sequencing data of atherosclerotic plaques in mice fed with a high fat diet for different periods. Mettl32 mice and littermate control Mettl3 mice were generated and fed high fat diet for 14 weeks. In vitro, we stimulated peritoneal macrophages with ox-LDL (oxidized low-density lipoprotein) and tested the mRNA and protein expression levels of inflammatory factors and molecules regulating ERK (extracellular signal-regulated kinase) phosphorylation. To find METTL3 targets in macrophages, we performed m6A-methylated RNA immunoprecipitation sequencing and m6A-methylated RNA immunoprecipitation-qPCR. Further, point mutation experiments were used to explore m6A-methylated adenine. Using RNA immunoprecipitation assay, we explored m6A methylation-writing protein bound to Braf mRNA.
Results:
In vivo, METTL3 expression in macrophages increased with the progression of atherosclerosis. Myeloid cell-specific METTL3 deletion negatively regulated atherosclerosis progression and the inflammatory response. In vitro, METTL3 knockdown or knockout in macrophages attenuated ox-LDL-mediated ERK phosphorylation rather than JNK (c-Jun N-terminal kinase) and p38 phosphorylation and reduced the level of inflammatory factors by affecting BRAF protein expression. The negative regulation of inflammation response caused by METTL3 knockout was rescued by overexpression of BRAF. In mechanism, METTL3 targeted adenine (39725126 in chromosome 6) on the Braf mRNA. Then, YTHDF1 could bind to m6A-methylated Braf mRNA and promoted its translation.
Conclusions:
Myeloid cell-specific Mettl3 deficiency suppressed hyperlipidemia-induced atherosclerotic plaque formation and attenuated atherosclerotic inflammation. We identified Braf mRNA as a novel target of METTL3 in the activation of the ox-LDL-induced ERK pathway and inflammatory response in macrophages. METTL3 may represent a potential target for the treatment of atherosclerosis.
Insights
Methyltransferase like 3 (METTL3) in macrophages promotes atherosclerosis by methylating BRAF mRNA, driving inflammation. Deleting METTL3 in myeloid cells suppresses plaque formation and inflammation, suggesting METTL3 as a therapeutic target.
Area of Science:
- Cardiovascular Biology
- Epigenetics
- Immunology
Background:
- Atherosclerosis is a chronic inflammatory disease driven by macrophages.
- The role of METTL3 (methyltransferase like 3) in macrophage-driven atherosclerosis remains uninvestigated.
- The m6A modification of BRAF mRNA by METTL3 is unknown.
Purpose of the Study:
- To investigate the role of METTL3 in macrophage-mediated atherosclerosis.
- To determine if METTL3 regulates BRAF mRNA via m6A methylation.
- To explore METTL3 as a potential therapeutic target for atherosclerosis.
Main Methods:
- Analysis of single-cell sequencing data from mouse atherosclerotic plaques.
- Generation and high-fat diet feeding of myeloid cell-specific Mettl3 knockout mice.
- In vitro stimulation of macrophages with oxidized low-density lipoprotein (ox-LDL).
- Assessment of inflammatory factors and ERK phosphorylation.
- m6A-methylated RNA immunoprecipitation sequencing and qPCR to identify METTL3 targets.
- RNA immunoprecipitation assay to confirm BRAF mRNA binding.
Main Results:
- METTL3 expression in macrophages increased with atherosclerosis progression.
- Myeloid cell-specific METTL3 deletion reduced atherosclerosis and inflammation.
- METTL3 knockdown/knockout in macrophages attenuated ox-LDL-induced ERK phosphorylation and inflammation by affecting BRAF protein expression.
- METTL3 directly targets BRAF mRNA for m6A methylation, promoting its translation via YTHDF1.
Conclusions:
- Myeloid cell-specific METTL3 deficiency suppresses atherosclerosis and inflammation.
- BRAF mRNA is a novel target of METTL3 in regulating the ox-LDL-induced ERK pathway and inflammatory response in macrophages.
- METTL3 inhibition presents a potential therapeutic strategy for atherosclerosis.
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