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高血压/ O-连接N-乙酰葡糖胺糖基化代谢轴调节骨吸收结果。

HBP/O-GlcNAcylation Metabolic Axis Regulates Bone Resorption Outcome.

作者信息

Taira T M, Ramos-Junior E S, Melo P H, Costa-Silva C C, Alteen M G, Vocadlo D J, Dias W B, Cunha F Q, Alves-Filho J C, Søe K, Fukada S Y

机构信息

Department of BioMolecular Sciences, School of Pharmaceutical Sciences of Ribeirao Preto, University of Sao Paulo, Avenida do Café, sn, 14040-903, Ribeirão Preto, Brazil.

Department of Pediatric, School of Dentistry of Ribeirão Preto, Preventive and Social Dentistry, University of São Paulo, Ribeirão Preto, Brazil.

出版信息

J Dent Res. 2023 Apr;102(4):440-449. doi: 10.1177/00220345221141043. Epub 2023 Feb 7.

Abstract

Osteoclasts play a key role in the regulation of bone mass and are highly active metabolically. Here we show that a metabolic reprogramming toward the hexosamine biosynthetic pathway (HBP) is required not only for osteoclast differentiation but also to determine the bone resorption mode during physiological and pathological bone remodeling. We found that pharmacological inhibition of O-GlcNAc transferase (OGT) significantly reduced protein O-GlcNAcylation and osteoclast differentiation. Accordingly, genetic deletion of OGT also inhibited osteoclast formation and downregulated critical markers related to osteoclasts differentiation and function (NFATc1, αintegrin, cathepsin K). Indeed, cells treated with OSMI-1, an OGT inhibitor, also reduced nuclear translocation of NFATc1. Furthermore, the addition of exogenous N-acetylglucosamine (GlcNAc) strongly increased osteoclast formation and demineralization ability. Strikingly, our data show for the first time that O-GlcNAcylation facilitates an aggressive trench resorption mode in human cells. The incubation of osteoclasts with exogenous GlcNAc increases the percentage of erosion by trench while having no effect on pit resorption mode. Through time-lapse recording, we documented that osteoclasts making trenches moving across the bone surface are sensitive to GlcNAcylation. Finally, osteoclast-specific -deficient mice show increased bone density and reduced inflammation-induced bone loss during apical periodontitis model. We show that osteoclast-specific t-deficient mice are less susceptible to develop bacterial-induced periapical lesion. Consistent with this, -deleted mice showed a decreased number of tartrate-resistant acid phosphatase-positive cells lining the apical periodontitis site. In summary, here we describe a hitherto undiscovered role of the HBP/O-GlcNAcylation axis tuning resorption mode and dictating bone resorption outcome.

摘要

破骨细胞在骨量调节中起关键作用,且代谢高度活跃。在此我们表明,不仅破骨细胞分化需要向己糖胺生物合成途径(HBP)的代谢重编程,而且在生理和病理骨重塑过程中确定骨吸收模式也需要该重编程。我们发现,O-连接N-乙酰葡糖胺转移酶(OGT)的药理学抑制显著降低了蛋白质O-连接N-乙酰葡糖胺化和破骨细胞分化。相应地,OGT的基因缺失也抑制了破骨细胞形成,并下调了与破骨细胞分化和功能相关的关键标志物(活化T细胞核因子c1、α整合素、组织蛋白酶K)。事实上,用OGT抑制剂OSMI-1处理的细胞也减少了活化T细胞核因子c1的核转位。此外,添加外源性N-乙酰葡糖胺(GlcNAc)强烈增加了破骨细胞形成和脱矿能力。引人注目的是,我们的数据首次表明,O-连接N-乙酰葡糖胺化促进了人类细胞中的侵袭性沟状吸收模式。用外源性GlcNAc孵育破骨细胞增加了沟状侵蚀的百分比,而对凹坑吸收模式没有影响。通过延时记录,我们记录到在骨表面形成沟状的破骨细胞对O-连接N-乙酰葡糖胺化敏感。最后,破骨细胞特异性缺失的小鼠在根尖周炎模型中显示骨密度增加,炎症诱导的骨质流失减少。我们表明,破骨细胞特异性缺失的小鼠较不易发生细菌诱导的根尖周病变。与此一致的是,缺失的小鼠在根尖周炎部位衬里的抗酒石酸酸性磷酸酶阳性细胞数量减少。总之,在此我们描述了HBP/O-连接N-乙酰葡糖胺化轴在调节吸收模式和决定骨吸收结果方面迄今未被发现的作用。

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