Mechanical Signals As a Non-Invasive Means to Influence Mesenchymal Stem Cell Fate, Promoting Bone and Suppressing the Fat Phenotype.

Yen K Luu, Jeffrey E Pessin, Stefan Judex, Janet Rubin, Clinton T Rubin
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引用次数: 42

Abstract

Pluripotent mesenchymal stem cells (MSCs) are considered ideal therapeutic targets in regenerative medicine, as they hold the capacity to differentiate into higher order connective tissues. The potential to harness MSCs for disease treatment and acceleration of repair will ultimately depend on an improved understanding of how physical and/or chemical signals regulate their activity, and the ability of exogenous stimuli to enhance MSC proliferation and define MSC fate. Recent appreciation that bone marrow osteoprogenitors are inversely proportional to adipocyte precursors suggests that their shared progenitor, the MSC, will commit to one lineage at the cost of the other. This interrelationship may contribute to the phenotype of sedentary subjects who have more fat and less bone, while conversely, to the outcome of exercise being less fat and more bone. Mechanical biasing of MSC lineage selection suggests that physical signals may influence the quantity of both fat and bone through developmental, as well as metabolic or adaptive pathways. Considered with the recent finding that low magnitude mechanical signals (LMMS) suppress the development of subcutaneous and visceral fat without elevating energy expenditure, this indicates that MSCs are ideally positioned as mechanosensitive elements central to musculoskeletal adaptation, but that the signals needn't be large to be influential. The biasing of MSC differentiation by mechanical signals represents a unique means by which adiposity can be inhibited while simultaneously promoting a better skeleton, and may provide the basis for a safe, non-invasive, non-pharmacologic strategy to prevent both obesity and osteoporosis, yet uniquely - without targeting the resident fat or bone cell.

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机械信号作为影响间充质干细胞命运,促进骨和抑制脂肪表型的非侵入性手段。
多能间充质干细胞(MSCs)被认为是再生医学中理想的治疗靶点,因为它们具有向高级结缔组织分化的能力。利用间充质干细胞进行疾病治疗和加速修复的潜力最终将取决于对物理和/或化学信号如何调节其活性的更好理解,以及外源刺激增强间充质干细胞增殖和确定间充质干细胞命运的能力。最近对骨髓骨祖细胞与脂肪细胞前体成反比的认识表明,它们共同的祖细胞MSC将以牺牲另一个谱系为代价献身于一个谱系。这种相互关系可能会导致久坐不动的人脂肪多、骨骼少,而相反,运动的结果是脂肪少、骨骼多。MSC谱系选择的机械偏倚表明,物理信号可能通过发育、代谢或适应途径影响脂肪和骨骼的数量。考虑到最近的发现,低强度机械信号(LMMS)抑制皮下和内脏脂肪的发展而不增加能量消耗,这表明MSCs被理想地定位为肌肉骨骼适应的核心机械敏感元件,但信号不需要很大就能产生影响。机械信号对间充质干细胞分化的偏倚代表了一种独特的方法,通过这种方法可以抑制肥胖,同时促进更好的骨骼,并可能为一种安全、无创、非药物的策略提供基础,以预防肥胖和骨质疏松症,但独特的是,不针对常驻脂肪或骨细胞。
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Adaptive and Injury Response of Bone to Mechanical Loading. Anti-Glucosaminidase Monoclonal Antibodies as a Passive Immunization for Methicillin-Resistant Staphylococcus aureus (MRSA) Orthopaedic Infections. Mechanical Signals As a Non-Invasive Means to Influence Mesenchymal Stem Cell Fate, Promoting Bone and Suppressing the Fat Phenotype. Mechanosensation and Transduction in Osteocytes.
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