Lu Hui-Meng, Lu Xiao-Li, Zhai Jia-Hui, Zhou Ren-Bin, Liu Yong-Ming, Guo Wei-Hong, Zhang Chen-Yan, Shang Peng, Yin Da-Chuan
Institute for Special Environmental Biophysics, Key Laboratory for Space Bioscience and Biotechnology, School of Life Sciences, Northwestern Polytechnical University, Xi'an, P.R. China.
Bioelectromagnetics. 2018 Sep;39(6):428-440. doi: 10.1002/bem.22135. Epub 2018 Jun 6.
Large gradient high magnetic field (LG-HMF) is a powerful tool to study the effects of altered gravity on organisms. In our study, a platform for the long-term culture of aquatic organisms was designed based on a special superconducting magnet with an LG-HMF, which can provide three apparent gravity levels (µ g, 1 g, and 2 g), along with a control condition on the ground. Planarians, Dugesia japonica, were head-amputated and cultured for 5 days in a platform for head reconstruction. After planarian head regeneration, all samples were taken out from the superconducting magnet for a behavioral test under geomagnetic field and normal gravity conditions. To analyze differences among the four groups, four aspects of the planarians were considered, including head regeneration rate, phototaxis response, locomotor velocity, and righting behavior. Data showed that there was no significant difference in the planarian head regeneration rate under simulated altered gravity. According to statistical analysis of the behavioral test, all of the groups had normal functioning of the phototaxis response, while the planarians that underwent head reconstruction under the microgravity environment had significantly slower locomotor velocity and spent more time in righting behavior. Furthermore, histological staining and immunohistochemistry results helped us reveal that the locomotor system of planarians was affected by the simulated microgravity environment. We further demonstrated that the circular muscle of the planarians was weakened (hematoxylin and eosin staining), and the epithelial cilia of the planarians were reduced (anti-acetylated tubulin staining) under the simulated microgravity environment. Bioelectromagnetics. 2018;39:428-440. © 2018 Wiley Periodicals, Inc.
大梯度高磁场(LG-HMF)是研究重力改变对生物体影响的有力工具。在我们的研究中,基于一个带有LG-HMF的特殊超导磁体设计了一个用于水生生物长期培养的平台,该平台可以提供三个表观重力水平(μg、1g和2g),同时设置地面上的对照条件。将日本三角涡虫断头后在头部重建平台中培养5天。涡虫头部再生后,将所有样本从超导磁体中取出,在地磁场和正常重力条件下进行行为测试。为了分析四组之间的差异,考虑了涡虫的四个方面,包括头部再生率、趋光反应、运动速度和翻正行为。数据显示,在模拟重力改变条件下,涡虫的头部再生率没有显著差异。根据行为测试的统计分析,所有组的趋光反应功能均正常,而在微重力环境下进行头部重建的涡虫运动速度明显较慢,且在翻正行为上花费的时间更多。此外,组织学染色和免疫组织化学结果帮助我们揭示,模拟微重力环境会影响涡虫的运动系统。我们进一步证明,在模拟微重力环境下,涡虫的环肌会变弱(苏木精和伊红染色),上皮纤毛会减少(抗乙酰化微管蛋白染色)。《生物电磁学》。2018年;39卷:428 - 440页。©2018威利期刊公司。