Oka Mariko, Kamada Motoshi, Inoue Riko, Miyamoto Kensuke, Uheda Eiji, Yamazaki Chiaki, Shimazu Toru, Sano Hiromi, Kasahara Haruo, Suzuki Tomomi, Higashibata Akira, Ueda Junichi
Faculty of Agriculture, Tottori University, 4-101 Koyamacho-minami, Tottori 680-8553, Japan; and Corresponding authors. Email:
Future Development Division, Advanced Engineering Services Co., Ltd, 1-6-1 Takezono, Tsukuba, Ibaraki 305-0032, Japan.
Funct Plant Biol. 2020 Nov;47(12):1062-1072. doi: 10.1071/FP20133.
In the International Space Station experiment 'Auxin Transport', polar auxin transport (PAT) in shoots of etiolated maize (Zea mays L. cv. Golden Cross Bantam) grown under microgravity in space was substantially enhanced compared with those grown on Earth. To clarify the mechanism, the effects of microgravity on expression of ZmPIN1a encoding essential auxin efflux carrier and cellular localisation of its products were investigated. The amounts of ZmPIN1a mRNA in the coleoptiles and the mesocotyls in space-grown seedlings were almost the same as those in 1 g-grown seedlings, but its products were not. Immunohistochemical analysis with anti-ZmPIN1a antibody revealed a majority of ZmPIN1a localised in the basal side of plasma membranes of endodermal cells in the coleoptiles and the mesocotyls, and in the basal and lateral sides of plasma membranes in coleoptile parenchymatous cells, in which it directed towards the radial direction, but not towards the vascular bundle direction. Microgravity dramatically altered ZmPIN1a localisation in plasma membranes in coleoptile parenchymatous cells, shifting mainly towards the vascular bundle direction. These results suggest that mechanism of microgravity-enhanced PAT in maize shoots is more likely to be due to the enhanced ZmPIN1a accumulation and the altered ZmPIN1a localisation in parenchymatous cells of the coleoptiles.
在国际空间站的实验“生长素运输”中,与在地球上生长的黄化玉米(Zea mays L. cv. Golden Cross Bantam)幼苗相比,在太空微重力条件下生长的黄化玉米幼苗茎中的极性生长素运输(PAT)显著增强。为阐明其机制,研究了微重力对编码生长素外流载体的ZmPIN1a基因表达及其产物细胞定位的影响。太空生长幼苗的胚芽鞘和中胚轴中ZmPIN1a mRNA的量与1g重力下生长的幼苗几乎相同,但其产物的量不同。用抗ZmPIN1a抗体进行的免疫组织化学分析表明,大多数ZmPIN1a定位于胚芽鞘和中胚轴内皮层细胞质膜的基部,以及胚芽鞘薄壁细胞质膜的基部和侧面,其指向径向方向,而非维管束方向。微重力显著改变了胚芽鞘薄壁细胞质膜中ZmPIN1a的定位,主要转向维管束方向。这些结果表明,玉米幼苗中微重力增强PAT的机制更可能是由于ZmPIN1a在胚芽鞘薄壁细胞中的积累增加以及定位改变。