在小鼠肌肉组织的快速冷冻过程中,振荡磁场抑制冰晶生长。

IF 2.1 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Kana Okuda, Kunitani Kaori, Aiko Kawauchi, Ishii Miyu, Kentaro Yomogida
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引用次数: 0

摘要

再生医学将受益于一种安全有效的冷冻保存方法,以防止细胞和组织中冰晶形成造成的结构破坏。已经进行了各种尝试来克服这个问题,其中之一是使用振荡磁场(OMF)。然而,其根本机制尚不清楚。在这项研究中,为了评估OMF对小鼠腿部肌肉冰晶形成的影响,我们使用了冷冻切片法,冷冻速度比通常的冷冻速度慢,这会导致组织中形成冰晶。我们评估了在有和没有OMF的情况下,肌肉组织切片中细胞内冰孔的平均大小和单位面积的数量。在经受OMF的冷冻组织中,冰晶生长减少。此外,我们通过使用抗肌营养不良蛋白抗体的免疫染色以及NADH-TR和肌球蛋白ATP酶的酶组织化学,评估了接受OMF的冷冻组织中蛋白质的结构和功能。结果表明,OMF抑制冰晶生长的能力可能与其在冷冻过程中对生物分子中结合水的稳定有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An oscillating magnetic field suppresses ice-crystal growth during rapid freezing of muscle tissue of mice.

Regenerative medicine would benefit from a safe and efficient cryopreservation method to prevent the structural disruption caused by ice-crystal formation in cells and tissue. Various attempts have been made to overcome this problem, one of which is the use of an oscillating magnetic field (OMF). However, the underlying mechanism is unclear. In this study, to evaluate the effect of an OMF on ice-crystal formation in the leg muscles of mice, we used to use the frozen-section method with a slower freezing rate than is, usual which resulted in ice crystals forming in the tissue. We assessed the mean size and number per unit area of intracellular ice holes in sections of muscle tissue, with and without OMF. Ice-crystal growth was reduced in frozen tissue subjected to OMF. Furthermore, we evaluated the structure and function of proteins in frozen tissue subjected to OMF by immunostaining using an anti-dystrophin antibody and by enzymatic histochemistry for NADH-TR and myosin ATPase. The results imply that the ability of OMF to suppress ice-crystal growth might be related to their stabilization of bound water in biomolecules during freezing.

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来源期刊
Journal of biochemistry
Journal of biochemistry 生物-生化与分子生物学
CiteScore
4.80
自引率
3.70%
发文量
101
审稿时长
4-8 weeks
期刊介绍: The Journal of Biochemistry founded in 1922 publishes the results of original research in the fields of Biochemistry, Molecular Biology, Cell, and Biotechnology written in English in the form of Regular Papers or Rapid Communications. A Rapid Communication is not a preliminary note, but it is, though brief, a complete and final publication. The materials described in Rapid Communications should not be included in a later paper. The Journal also publishes short reviews (JB Review) and papers solicited by the Editorial Board.
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