NSD2- 介导的 H3K36me2 通过激活骨髓间充质干细胞中的 hoxa2 加剧骨质疏松症。

IF 4.4 2区 生物学 Q2 CELL BIOLOGY Cellular signalling Pub Date : 2024-07-10 DOI:10.1016/j.cellsig.2024.111294
Guanghui He , Yanqin Ke , Jie Yuan , Bingjun Zhang , Liming Dai , Jinlong Liu , Xiaoling Zhang
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引用次数: 0

摘要

背景:骨质疏松症(Osteoporosis,OP)是一种与年龄相关的常见疾病,其主要病理之一是骨髓间充质干细胞(BMSCs)的成骨分化缺陷。本研究旨在阐明核受体结合SET域蛋白2(NSD2)是否转录调控骨质疏松症中骨髓间充质干细胞的成骨分化:方法:采用流式细胞术测定体外人BMSCs(hBMSCs)的鉴定。通过茜素红和碱性磷酸酶染色法检测体外 hBMSCs 的成骨情况。H3K36me1/2/3、NSD2和Hoxa2的蛋白水平通过Western印迹法测定。通过 qPCR 检测了 NSD2、Runx2 和 BSP 的 mRNA 水平。通过 shRNA 沉默 NSD2 或慢病毒转染过表达 NSD2,进一步确定了 NSD2 在 BMSCs 成骨分化中的作用。通过染色质免疫沉淀(ChIP)鉴定了 NSD2、H3K36me2 和 Hoxa2 的相互作用。荧光素酶报告分析证实了NSD2调控Hoxa2的转录活性。对小鼠进行卵巢切除术(OVX)以构建骨质疏松症(OP)模型。随后,通过显微计算机断层扫描(micro-CT)评估骨量:结果:在OP衍生的hBMSCs成骨过程中,NSD2和H3K36me2的水平在成骨诱导14天后显著升高。通过 shRNA 抑制 NSD2 可增加 hBMSCs 的 RUNX2 和 BSP 表达,而过表达 NSD2 则会降低 hBMSCs 的 RUNX2 和 BSP 表达。ChIP 分析表明,NSD2 介导的 H3K36me2 通过调节成骨抑制因子 Hoxa2 降低了 hBMSCs 的成骨分化。因此,在体内通过尾静脉注射LV-shNSD2慢病毒抑制NSD2可大大缓解OVX诱导的小鼠骨质疏松症:我们证明了NSD2通过H3K36me2二甲基化转录下调Hoxa2,从而抑制了hBMSCs的成骨分化。抑制 NSD2 能有效减轻小鼠骨质疏松症的骨量丢失,NSD2 是临床治疗骨质疏松症的一个很有前景的靶点。
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NSD2-mediated H3K36me2 exacerbates osteoporosis via activation of hoxa2 in bone marrow mesenchymal stem cells

Background

Osteoporosis (OP) is a prevalent disease associated with age, and one of the primary pathologies is the defect of osteogenic differentiation of bone marrow mesenchymal stem cells (BMSCs). This study aimed to elucidate whether Nuclear Receptor Binding SET Domain Protein 2 (NSD2) transcriptionally regulates osteogenic differentiation of BMSCs in osteoporosis.

Methods

Identification of human BMSCs (hBMSCs) in vitro was measured by flow cytometry. Osteogenesis of hBMSCs in vitro was measured by Alizarin Red and Alkaline Phosphatase staining. The protein levels of H3K36me1/2/3, NSD2, and Hoxa2 were measured by western blotting. The mRNA levels of NSD2, Runx2, and BSP were measured by qPCR. The role of NSD2 in the osteogenic differentiation of BMSCs was further identified by silencing NSD2 via shRNA or overexpression of NSD2 via lentivirus transfection. The interactions of NSD2, H3K36me2 and Hoxa2 were identified via chromatin immunoprecipitation (ChIP). Luciferase reporting analysis was employed to confirm that NSD2 regulated the transcriptional activity of Hoxa2. Ovariectomized (OVX) was performed on mice to construct osteoporosis (OP) model. Subsequently, the bone mass was assessed by micro computed tomography (micro-CT) scan.

Results

During the osteogenesis of OP-derived hBMSCs, the levels of NSD2 and H3K36me2 significantly increased in 14 days of osteogenic induction. Inhibition of NSD2 via shRNA increased the RUNX2 and BSP expression of hBMSCs, while overexpression of NSD2 decreased RUNX2 and BSP expression of hBMSCs. ChIP analysis indicated NSD2-mediated H3K36me2 reduced the osteogenic differentiation of hBMSCs by regulating the osteogenic inhibitor Hoxa2. Accordingly, inhibition of NSD2 in vivo via tail vein injection of LV-shNSD2 lentivirus greatly alleviated OVX-induced osteoporosis in mice.

Conclusion

We demonstrated that NSD2 inhibited the osteogenic differentiation in hBMSCs by transcriptionally downregulating Hoxa2 via H3K36me2 dimethylation. Inhibition of NSD2 effectively attenuated bone loss in murine osteoporosis and NSD2 is a promising target for clinical treatment of osteoporosis.

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来源期刊
Cellular signalling
Cellular signalling 生物-细胞生物学
CiteScore
8.40
自引率
0.00%
发文量
250
审稿时长
27 days
期刊介绍: Cellular Signalling publishes original research describing fundamental and clinical findings on the mechanisms, actions and structural components of cellular signalling systems in vitro and in vivo. Cellular Signalling aims at full length research papers defining signalling systems ranging from microorganisms to cells, tissues and higher organisms.
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