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高梯度磁场与淀粉代谢:一项空间实验的结果。

High-gradient magnetic fields and starch metabolism: results from a space experiment.

机构信息

Biology Department, University of Louisiana at Lafayette, Lafayette, LA, 70504-43602, USA.

Central Area Crop Breeding Div., National Institute of Crop Science, Suwon, 16429, Gyeonggi-do, Korea.

出版信息

Sci Rep. 2022 Oct 29;12(1):18256. doi: 10.1038/s41598-022-22691-2.

Abstract

Directing plant growth in weightlessness requires understanding the processes that establish plant orientation and how to manipulate them. Both gravi- and phototropism determine directional growth and previous experiments showed that high gradient magnetic fields (HGMF) can induce curvature in roots and shoots. Experiments with Brassica rapa verified that that gravitropism-like induction of curvature is possible in space and that the HGMF-responsive organelles are amyloplasts. We assessed the effect of space and HGMF based on 16 genes and compared their transcription with static growth and clinorotation. Amyloplasts size in root tips increased under weightlessness but decreased under clinorotation but not in response to magnetic fields. Amyloplast size changes were correlated with reduced amylase transcription in space samples and enhanced transcription after clinorotation. Mechanostimulation and weightlessness have opposite effects on the size of amyloplasts. The data show that plants perceive weightlessness, and that their metabolism adjusts to microgravity and mechanostimulation. Thus, clinorotation as surrogate for space research may lead to incorrect interpretations.

摘要

在失重条件下引导植物生长需要了解确定植物方向的过程以及如何操纵这些过程。向光性和向重性都决定了植物的定向生长,先前的实验表明,高梯度磁场(HGMF)可以诱导根和茎的弯曲。对油菜的实验验证了在空间中可以诱导出类似于向重性的弯曲,并且对 HGMF 有反应的细胞器是淀粉体。我们基于 16 个基因评估了空间和 HGMF 的影响,并将其转录与静态生长和倾斜旋转进行了比较。在失重条件下,根尖淀粉体的大小增加,但在倾斜旋转而不是磁场下减少。淀粉体大小的变化与空间样品中淀粉酶转录减少以及倾斜旋转后转录增强相关。机械刺激和失重对淀粉体的大小有相反的影响。这些数据表明,植物能够感知失重,并且它们的新陈代谢会适应微重力和机械刺激。因此,倾斜旋转作为空间研究的替代方法可能会导致错误的解释。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c0e7/9617909/0f48f09a431d/41598_2022_22691_Fig1_HTML.jpg

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