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Whole-Genome and Expression Analyses of Bamboo Aquaporin Genes Reveal Their Functions Involved in Maintaining Diurnal Water Balance in Bamboo Shoots

机译:竹水通道蛋白基因的全基因组和表达分析揭示了它们在维持竹笋日水分平衡中的作用

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摘要

Water supply is essential for maintaining normal physiological function during the rapid growth of bamboo. Aquaporins (AQPs) play crucial roles in water transport for plant growth and development. Although 26 PeAQPs in bamboo have been reported, the aquaporin-led mechanism of maintaining diurnal water balance in bamboo shoots remains unclear. In this study, a total of 63 PeAQPs were identified, based on the updated genome of moso bamboo (Phyllostachys edulis), including 22 PePIPs, 20 PeTIPs, 17 PeNIPs, and 4 PeSIPs. All of the PeAQPs were differently expressed in 26 different tissues of moso bamboo, based on RNA sequencing (RNA-seq) data. The root pressure in shoots showed circadian rhythm changes, with positive values at night and negative values in the daytime. The quantitative real-time PCR (qRT-PCR) result showed that 25 PeAQPs were detected in the base part of the shoots, and most of them demonstrated diurnal rhythm changes. The expression levels of some PeAQPs were significantly correlated with the root pressure. Of the 86 sugar transport genes, 33 had positive co-expression relationships with 27 PeAQPs. Two root pressure-correlated PeAQPs, PeTIP4;1 and PeTIP4;2, were confirmed to be highly expressed in the parenchyma and epidermal cells of bamboo culm, and in the epidermis, pith, and primary xylem of bamboo roots by in situ hybridization. The authors’ findings provide new insights and a possible aquaporin-led mechanism for bamboo fast growth.
机译:在竹子快速生长过程中,供水对于维持正常的生理功能至关重要。水通道蛋白(AQP)在植物生长和发育的水运输中起着至关重要的作用。尽管已经报道了竹子中有26种PeAQP,但是水通道蛋白主导的维持竹笋日水分平衡的机制仍不清楚。在这项研究中,基于更新的毛竹(Phyllostachys edulis)基因组,共鉴定出63种PeAQP,包括22种PePIP,20种PeTIP,17种PeNIP和4种PeSIP。根据RNA测序(RNA-seq)数据,所有PeAQP在毛竹的26个不同组织中均表达不同。芽的根压显示昼夜节律变化,夜间为正值,白天为负值。实时荧光定量PCR(qRT-PCR)结果表明,在枝条的基部检测到25种PeAQP,其中大多数表现出昼夜节律的变化。一些PeAQPs的表达水平与根压显着相关。在86个糖转运基因中,有33个与27个PeAQP具有正共表达关系。通过原位杂交,证实了两种与根压力相关的PeAQP,即PeTIP4; 1和PeTIP4; 2在竹茎的薄壁组织和表皮细胞以及竹根的表皮,髓和初级木质部中高表达。作者的发现为竹子的快速生长提供了新的见解和可能的水通道蛋白主导的机制。

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