Louvain Institute of Biomolecular Science and Technology, UCLouvain, 1348 Louvain-la-Neuve, Belgium.
INRAE, LEPSE, Université de Montpellier, 34060 Montpellier, France.
Plant Physiol. 2024 Sep 2;196(1):368-384. doi: 10.1093/plphys/kiae326.
Plant aquaporins are involved in numerous physiological processes, such as cellular homeostasis, tissue hydraulics, transpiration, and nutrient supply, and are key players of the response to environmental cues. While varying expression patterns of aquaporin genes have been described across organs, developmental stages, and stress conditions, the underlying regulation mechanisms remain elusive. Hence, this work aimed to shed light on the expression variability of 4 plasma membrane intrinsic protein (PIP) genes in maize (Zea mays) leaves, and its genetic causes, through expression quantitative trait locus (eQTL) mapping across a 252-hybrid diversity panel. Significant genetic variability in PIP transcript abundance was observed to different extents depending on the isoforms. The genome-wide association study mapped numerous eQTLs, both local and distant, thus emphasizing the existing natural diversity of PIP gene expression across the studied panel and the potential to reveal regulatory actors and mechanisms. One eQTL associated with PIP2;5 expression variation was characterized. Genomic sequence comparison and in vivo reporter assay attributed, at least partly, the local eQTL to a transposon-containing polymorphism in the PIP2;5 promoter. This work paves the way to the molecular understanding of PIP gene regulation and its possible integration into larger networks regulating physiological and stress adaptation processes.
植物水通道蛋白参与众多生理过程,如细胞内稳态、组织水力学、蒸腾作用和养分供应,是对环境信号响应的关键参与者。尽管已经描述了水通道蛋白基因在器官、发育阶段和胁迫条件下的不同表达模式,但潜在的调节机制仍不清楚。因此,本研究旨在通过对 252 个杂种多样性群体进行表达数量性状基因座 (eQTL) 图谱分析,阐明玉米 (Zea mays) 叶片中 4 种质膜内在蛋白 (PIP) 基因表达的变异性及其遗传原因。不同的同工型在 PIP 转录丰度上表现出不同程度的遗传可变性。全基因组关联研究定位了许多局部和远距离的 eQTL,这强调了在所研究的群体中 PIP 基因表达存在着丰富的自然多样性,并有潜力揭示调控因子和机制。与 PIP2;5 表达变化相关的一个 eQTL 被鉴定出来。基因组序列比较和体内报告基因实验表明,至少部分局部 eQTL 与 PIP2;5 启动子中的转座子包含多态性有关。这项工作为理解 PIP 基因调控及其可能整合到调节生理和应激适应过程的更大网络铺平了道路。