二价金属离子通过调节神经系统和代谢途径促进骨再生

IF 18 1区 医学 Q1 ENGINEERING, BIOMEDICAL Bioactive Materials Pub Date : 2025-05-01 Epub Date: 2025-02-12 DOI:10.1016/j.bioactmat.2025.01.034
Ying Luo , Baoyi Liu , Yashi Qiu , Lichen Li , Fan Yang , Chao Zhang , Jiali Wang
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引用次数: 0

摘要

二价金属阳离子通过调节感觉和交感神经系统(SNS)活动促进新骨形成。此外,乙酰胆碱(Ach)作为副交感神经系统(PNS)释放的主要神经递质也影响骨重塑,因此二价阳离子是否影响PNS活性值得研究。值得注意的是,这些阳离子是调节葡萄糖代谢的关键辅酶。有氧糖酵解比氧化磷酸化更有利于间充质干细胞(MSCs)的成骨,因此研究这些阳离子对葡萄糖代谢途径的影响是有意义的。在生物学功能评估之前,对二价金属阳离子(Mg2+, Zn2+和Ca2+)及其组合的耐受极限进行了分析。在直接作用方面,这些二价阳离子可能通过上调Tgf-β1和Integrin-β1水平来增强MSCs的迁移和粘附能力。有趣的是,单独的二价阳离子不影响未分化MSCs的成骨和有氧糖酵解。然而,一旦神经递质或成骨分化培养基启动MSCs的成骨分化,二价阳离子可显著促进MSCs的成骨,并伴有有氧糖酵解的改善。间接作用方面,二价阳离子显著上调大鼠感觉神经源性CGRP、PNS产生的胆碱乙酰转移酶和H型血管的水平,同时显著下调大鼠缺损区的交感神经活动,从而相对于对照组显著增加骨形成。总之,二价阳离子通过调节感觉自主神经系统和促进神经递质成骨后MSCs的有氧糖酵解驱动成骨来促进骨再生。
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Divalent metal ions enhance bone regeneration through modulation of nervous systems and metabolic pathways
The divalent metal cations promote new bone formation through modulation of sensory and sympathetic nervous systems (SNS) activities. In addition, acetylcholine (Ach), as a chief neurotransmitter released by the parasympathetic nervous system (PNS), also affects bone remodeling, so it is of worth to investigate if the divalent cations influence PNS activity. Of note, these cations are key co-enzymes modulating glucose metabolism. Aerobic glycolysis rather than oxidative phosphorylation favors osteogenesis of mesenchymal stem cells (MSCs), so it is of interest to study the effects of these cations on glucose metabolic pathway. Prior to biological function assessment, the tolerance limits of the divalent metal cations (Mg2+, Zn2+, and Ca2+) and their combinations were profiled. In terms of direct effects, these divalent cations potentially enhanced migration and adhesion capability of MSCs through upregulating Tgf-β1 and Integrin-β1 levels. Interestingly, the divalent cations alone did not influence osteogenesis and aerobic glycolysis of undifferentiated MSCs. However, once the osteogenic differentiation of MSCs was initiated by neurotransmitters or osteogenic differentiation medium, the osteogenesis of MSCs could be significantly promoted by the divalent cations, which was accompanied by the improved aerobic glycolysis. In terms of indirect effects, the divalent cations significantly upregulated levels of sensory nerve derived CGRP, PNS produced choline acetyltransferase and type H vessels, while significantly tuned down sympathetic activity in the defect zone in rats, thereby contributing to significantly increased bone formation relative to the control group. Together, the divalent cations favor bone regeneration via modulation of sensory-autonomic nervous systems and promotion of aerobic glycolysis-driven osteogenesis of MSCs after osteogenic initiation by neurotransmitters.
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来源期刊
Bioactive Materials
Bioactive Materials Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
28.00
自引率
6.30%
发文量
436
审稿时长
20 days
期刊介绍: Bioactive Materials is a peer-reviewed research publication that focuses on advancements in bioactive materials. The journal accepts research papers, reviews, and rapid communications in the field of next-generation biomaterials that interact with cells, tissues, and organs in various living organisms. The primary goal of Bioactive Materials is to promote the science and engineering of biomaterials that exhibit adaptiveness to the biological environment. These materials are specifically designed to stimulate or direct appropriate cell and tissue responses or regulate interactions with microorganisms. The journal covers a wide range of bioactive materials, including those that are engineered or designed in terms of their physical form (e.g. particulate, fiber), topology (e.g. porosity, surface roughness), or dimensions (ranging from macro to nano-scales). Contributions are sought from the following categories of bioactive materials: Bioactive metals and alloys Bioactive inorganics: ceramics, glasses, and carbon-based materials Bioactive polymers and gels Bioactive materials derived from natural sources Bioactive composites These materials find applications in human and veterinary medicine, such as implants, tissue engineering scaffolds, cell/drug/gene carriers, as well as imaging and sensing devices.
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