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全身影响塑造间充质基质/干细胞衰老。

Systemic impact molds mesenchymal stromal/stem cell aging.

作者信息

Reitinger Stephan, Schimke Magdalena, Klepsch Sebastian, de Sneeuw Snezana, Yani Stella Lukas, Gaßner Robert, Ertl Peter, Lepperdinger Günter

机构信息

Institute for Biomedical Aging Research, University Innsbruck, Rennweg 10, Innsbruck A-6020, Austria.

University Clinic for Maxillofacial Surgery Innsbruck, Anichstr. 35, Innsbruck A-6020, Austria.

出版信息

Transfus Apher Sci. 2015 Jun;52(3):285-9. doi: 10.1016/j.transci.2015.04.008. Epub 2015 Apr 8.

Abstract

Aging is associated with an accruing emergence of non-functional tissues. Mesenchymal stem cells (MSC) bring forth progenitors with multi-lineage differentiation potential, yet, they also exhibit anti-inflammatory and tissue-protective properties. Due to aging, altered tissue microenvironments constrict controlled stem cell proliferation and progenitor differentiation, thus diminishing the fitness of MSC. Therefore, deepening our understanding of metabolic, molecular and environmental factors impacting on MSC during human aging as well as providing new vistas on their role in promoting healthy aging and preventing age-associated disease is pivot. It is anticipated that integrative quantification of systemic parameters dominantly impacting on MSC will also enable effective personalized prognosis and provision of effective early medical interventions. Working along this line, it can be envisaged that standards in medical therapies can be individually adjusted by accounting not solely for the patient's chronological age or other physical parameters rather than specific physiological parameters which are believed to functionally shape stem cell niches within the bone marrow.

摘要

衰老与无功能组织的不断出现有关。间充质干细胞(MSC)可产生具有多谱系分化潜能的祖细胞,然而,它们也具有抗炎和组织保护特性。由于衰老,组织微环境的改变限制了干细胞的受控增殖和祖细胞分化,从而降低了MSC的适应性。因此,加深我们对人类衰老过程中影响MSC的代谢、分子和环境因素的理解,并为其在促进健康衰老和预防与年龄相关疾病中的作用提供新的视角至关重要。预计对主要影响MSC的系统参数进行综合量化,也将实现有效的个性化预后并提供有效的早期医疗干预。沿着这条思路,可以设想,医疗疗法的标准不仅可以根据患者的实际年龄或其他身体参数进行单独调整,还可以根据特定的生理参数进行调整,这些生理参数被认为在功能上塑造了骨髓内的干细胞微环境。

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