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METTL3 通过 IGF2BP1/m6A/RUNX2 促进骨髓间充质干细胞的成骨分化。

METTL3 potentiates osteogenic differentiation of bone marrow mesenchymal stem cells via IGF2BP1/m6A/RUNX2.

机构信息

Department of Stomatology, Xin Qiao Hospital, Chongqing, China.

出版信息

Oral Dis. 2024 Apr;30(3):1313-1321. doi: 10.1111/odi.14526. Epub 2023 Mar 13.


DOI:10.1111/odi.14526
PMID:36705430
Abstract

OBJECTIVE: Maxillofacial bone defect is a critical obstacle for maxillofacial tumors and periodontal diseases. The osteogenic differentiation of bone marrow mesenchymal stem cells BMSCs is critical for maxillofacial osteogenesis and functional reconstruction. Here, our study focused on the functions and mechanism of N-methyladenosine during BMSCs osteogenic differentiation BMSCs. SUBJECT AND METHODS: Biofunctions of BMSCs were detected using ALP activity and alizarin red S staining assays. The molecular interaction within RNA/protein was identified by RNA immunoprecipitation and/or methylation immunoprecipitation. RESULTS: Results indicated that mA 'writer' METTL3 upregulated during the osteogenic differentiation of BMSCs upon osteogenic induction. Functionally, assays' results revealed that METTL3 overexpression promoted the osteogenic differentiation of BMSC, while METTL3 knockdown repressed the osteogenic differentiation. Mechanistically, results revealed that RUNX2 mRNA was a mA-methylated target by METTL3 at its 3'-UTR. Moreover, mA reader IGF2BP1 recognized the mA site on RUNX2 mRNA to enhance its stability. CONCLUSION: In conclusion, our findings revealed the novel roles of METTL3 in BMSCs osteogenic differentiation via the IGF2BP1/mA/RUNX2 signaling axis of mA-dependent manner, providing a potential therapeutic target for maxillofacial bone defects treatment.

摘要

目的:颌面骨缺损是颌面肿瘤和牙周病的关键障碍。骨髓间充质干细胞(BMSCs)的成骨分化对于颌面骨生成和功能重建至关重要。本研究聚焦于 N6-甲基腺苷(m6A)在 BMSCs 成骨分化中的作用和机制。

对象和方法:通过碱性磷酸酶(ALP)活性和茜素红 S 染色实验检测 BMSCs 的生物功能。通过 RNA 免疫沉淀和/或甲基化免疫沉淀鉴定 RNA/蛋白内的分子相互作用。

结果:结果表明,在成骨诱导下,BMSCs 的成骨分化过程中,mA“书写器”METTL3 上调。功能上,实验结果表明 METTL3 的过表达促进了 BMSC 的成骨分化,而 METTL3 的敲低则抑制了成骨分化。机制上,结果表明,RUNX2 mRNA 是 METTL3 在其 3'-UTR 上 mA 甲基化的靶标。此外,mA 阅读器 IGF2BP1 识别 RUNX2 mRNA 上的 mA 位点以增强其稳定性。

结论:总之,我们的研究结果揭示了 METTL3 通过 IGF2BP1/mA/RUNX2 信号轴以 mA 依赖性方式在 BMSCs 成骨分化中的新作用,为治疗颌面骨缺损提供了一个潜在的治疗靶点。

相似文献

[1]
METTL3 potentiates osteogenic differentiation of bone marrow mesenchymal stem cells via IGF2BP1/m6A/RUNX2.

Oral Dis. 2024-4

[2]
METTL3 Promotes Osteogenic Differentiation of Human Periodontal Ligament Stem Cells through IGF2BP1-Mediated Regulation of Runx2 Stability.

Int J Med Sci. 2024-2-4

[3]
Study on the Mechanism of Xianling Gubao Capsule Regulating Runt-Related Transcription Factor 2 (RUNX2) and Promoting Osteoblast Differentiation by N6-Methyladenosine (m6A) Methyltransferase-Like 3 (METTL3).

Altern Ther Health Med. 2024-6-28

[4]
piRNA-36741 regulates BMP2-mediated osteoblast differentiation via METTL3 controlled m6A modification.

Aging (Albany NY). 2021-10-13

[5]
METTL3-mediated long non-coding RNA MIR99AHG methylation targets miR-4660 to promote bone marrow mesenchymal stem cell osteogenic differentiation.

Cell Cycle. 2023-2

[6]
Mettl3 Regulates Osteogenic Differentiation and Alternative Splicing of Vegfa in Bone Marrow Mesenchymal Stem Cells.

Int J Mol Sci. 2019-1-28

[7]
YTHDF2-Mediated m6A methylation inhibition by miR27a as a protective mechanism against hormonal osteonecrosis in BMSCs.

BMC Musculoskelet Disord. 2024-5-6

[8]
Circular RNA-FK501 binding protein 51 boosts bone marrow mesenchymal stem cell proliferation and osteogenic differentiation via modulating microRNA-205-5p/Runt-associated transcription factor 2 axis.

J Orthop Surg Res. 2023-10-18

[9]
METTL3-mediated LINC00657 promotes osteogenic differentiation of mesenchymal stem cells via miR-144-3p/BMPR1B axis.

Cell Tissue Res. 2022-5

[10]
[Mechanism of ring finger protein 11 regulating Akt signaling pathway to promote osteogenic differentiation of bone marrow mesenchymal stem cells].

Zhongguo Xiu Fu Chong Jian Wai Ke Za Zhi. 2022-1-15

引用本文的文献

[1]
N6-Methyladenosine Modification of the Three Components "Writers", "Erasers", and "Readers" in Relation to Osteogenesis.

Int J Mol Sci. 2025-6-12

[2]
Unraveling the Role of N6-Methylation Modification: From Bone Biology to Osteoporosis.

Int J Med Sci. 2025-5-8

[3]
From bone marrow mesenchymal stem cells to diseases: the crucial role of mA methylation in orthopedics.

Stem Cell Res Ther. 2025-5-6

[4]
METTL3 obstructs vascular smooth muscle cells osteogenic reprogramming by methylating Runx2 in chronic kidney disease.

Commun Biol. 2025-4-8

[5]
Epigenetic Mechanisms in Osteoporosis: Exploring the Power of mA RNA Modification.

J Cell Mol Med. 2025-1

[6]
METTL3 promotes the osteogenic differentiation of periosteum-derived MSCs via regulation of the HOXD8/ITGA5 axis in congenital pseudarthrosis.

Regen Ther. 2024-5-21

[7]
N6-Methyladenosine in Cell-Fate Determination of BMSCs: From Mechanism to Applications.

Research (Wash D C). 2024-4-25

[8]
METTL3 Promotes Osteogenic Differentiation of Human Periodontal Ligament Stem Cells through IGF2BP1-Mediated Regulation of Runx2 Stability.

Int J Med Sci. 2024-2-4

[9]
METTL3 enhances dentinogenesis differentiation of dental pulp stem cells via increasing GDF6 and STC1 mRNA stability.

BMC Oral Health. 2023-4-11

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