基于冷冻处理的分离和长期扩增纯卫星细胞的新方法。

IF 5.3 2区 医学 Q2 CELL BIOLOGY
Anna Benedetti, Gianluca Cera, Daniele De Meo, Ciro Villani, Marina Bouche, Biliana Lozanoska-Ochser
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引用次数: 5

摘要

卫星细胞(SCs)是一种能够再生受伤肌肉的肌肉干细胞。对其功能潜力的研究取决于体外连续传代后保留成肌特性的纯SCs的分离和扩增方法的可用性。在这里,我们描述了冷冻处理(ICT)方法,这是一种简单、经济、高效的方法,用于分离和体外扩增高纯度的小鼠和人SCs。它包括在冰(0°C)的培养皿中短暂(15-30分钟)孵育,培养皿中含有粘附的肌肉单个核细胞的异质混合物,这导致仅分离SCs,并且与其他常用的分离方法相比,产生更高纯度的培养物。ICT方法同时也是一种温和的传代技术,允许SC在不影响其增殖和分化潜力的情况下长时间扩展。此外,使用ICT方法分离和扩增的SCs能够在体内再生损伤的肌肉。ICT方法涉及最少的细胞操作,不需要任何专业知识或昂贵的试剂,它快速,高可重复性,并且大大减少了为获得足够数量的SCs而需要的动物或人类活检的数量。这种方法的成本效益、可及性和技术简单性,以及其显著的效率,无疑将加速SC基础和转化研究,使其治疗应用更接近临床。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A novel approach for the isolation and long-term expansion of pure satellite cells based on ice-cold treatment.

A novel approach for the isolation and long-term expansion of pure satellite cells based on ice-cold treatment.

A novel approach for the isolation and long-term expansion of pure satellite cells based on ice-cold treatment.

A novel approach for the isolation and long-term expansion of pure satellite cells based on ice-cold treatment.

Satellite cells (SCs) are muscle stem cells capable of regenerating injured muscle. The study of their functional potential depends on the availability of methods for the isolation and expansion of pure SCs with preserved myogenic properties after serial passages in vitro. Here, we describe the ice-cold treatment (ICT) method, which is a simple, economical, and efficient method for the isolation and in vitro expansion of highly pure mouse and human SCs. It involves a brief (15-30 min) incubation on ice (0 °C) of a dish containing a heterogeneous mix of adherent muscle mononuclear cells, which leads to the detachment of only the SCs, and gives rise to cultures of superior purity compared to other commonly used isolation methods. The ICT method doubles up as a gentle passaging technique, allowing SC expansion over extended periods of time without compromising their proliferation and differentiation potential. Moreover, SCs isolated and expanded using the ICT method are capable of regenerating injured muscle in vivo. The ICT method involves minimal cell manipulation, does not require any expertise or expensive reagents, it is fast, and highly reproducible, and greatly reduces the number of animals or human biopsies required in order to obtain sufficient number of SCs. The cost-effectiveness, accessibility, and technical simplicity of this method, as well as its remarkable efficiency, will no doubt accelerate SC basic and translational research bringing their therapeutic use closer to the clinic.

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来源期刊
Skeletal Muscle
Skeletal Muscle CELL BIOLOGY-
CiteScore
9.10
自引率
0.00%
发文量
25
审稿时长
12 weeks
期刊介绍: The only open access journal in its field, Skeletal Muscle publishes novel, cutting-edge research and technological advancements that investigate the molecular mechanisms underlying the biology of skeletal muscle. Reflecting the breadth of research in this area, the journal welcomes manuscripts about the development, metabolism, the regulation of mass and function, aging, degeneration, dystrophy and regeneration of skeletal muscle, with an emphasis on understanding adult skeletal muscle, its maintenance, and its interactions with non-muscle cell types and regulatory modulators. Main areas of interest include: -differentiation of skeletal muscle- atrophy and hypertrophy of skeletal muscle- aging of skeletal muscle- regeneration and degeneration of skeletal muscle- biology of satellite and satellite-like cells- dystrophic degeneration of skeletal muscle- energy and glucose homeostasis in skeletal muscle- non-dystrophic genetic diseases of skeletal muscle, such as Spinal Muscular Atrophy and myopathies- maintenance of neuromuscular junctions- roles of ryanodine receptors and calcium signaling in skeletal muscle- roles of nuclear receptors in skeletal muscle- roles of GPCRs and GPCR signaling in skeletal muscle- other relevant aspects of skeletal muscle biology. In addition, articles on translational clinical studies that address molecular and cellular mechanisms of skeletal muscle will be published. Case reports are also encouraged for submission. Skeletal Muscle reflects the breadth of research on skeletal muscle and bridges gaps between diverse areas of science for example cardiac cell biology and neurobiology, which share common features with respect to cell differentiation, excitatory membranes, cell-cell communication, and maintenance. Suitable articles are model and mechanism-driven, and apply statistical principles where appropriate; purely descriptive studies are of lesser interest.
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