Nakajima Shusaku, Nagata Masayasu, Ikehata Akifumi
Graduate School of Agricultural Science, Kobe University, Kobe, Japan.
Food Research Institute, National Agriculture and Food Research Organization, Tsukuba, Japan.
NPJ Microgravity. 2021 Jul 15;7(1):26. doi: 10.1038/s41526-021-00156-6.
To elucidate a mechanism for enhancing mung bean seedlings' growth under microgravity conditions, we measured growth, gene expression, and enzyme activity under clinorotation (20 rpm), and compared data obtained to those grown under normal gravity conditions (control). An increase in fresh weight, water content, and lengths were observed in the clinostat seedlings, compared to those of the control seedlings. Real-time PCR showed that aquaporin expression and the amylase gene were upregulated under clinorotation. Additionally, seedlings under clinorotation exhibited a significantly higher amylase activity. Near-infrared image showed that there was no restriction of water evaporation from the seedlings under clinorotation. Therefore, these results indicate that simulated microgravity could induce water uptake, resulting in enhanced amylase activity and seedling growth. Upregulated aquaporin expression could be the first trigger for enhanced growth under clinorotation. We speculated that the seedlings under clinorotation do not use energy against gravitational force and consumed surplus energy for enhanced growth.
为了阐明在微重力条件下促进绿豆幼苗生长的机制,我们测量了在回转器(20转/分钟)条件下的生长情况、基因表达和酶活性,并将所得数据与在正常重力条件下生长的绿豆幼苗(对照)的数据进行比较。与对照幼苗相比,回转器处理的幼苗鲜重、含水量和长度均有所增加。实时PCR表明,在回转条件下,水通道蛋白表达和淀粉酶基因上调。此外,回转器处理的幼苗淀粉酶活性显著更高。近红外图像显示,回转器处理的幼苗水分蒸发没有受到限制。因此,这些结果表明,模拟微重力可诱导水分吸收,从而增强淀粉酶活性和幼苗生长。水通道蛋白表达上调可能是回转条件下生长增强的首要触发因素。我们推测,回转器处理的幼苗无需消耗能量来对抗重力,而是将多余的能量用于促进生长。