Group of Aquaporins, Department of Plant Nutrition, Centro de Edafología y Biología Aplicada del Segura (CEBAS-CSIC), Campus de Espinardo, E-30100 Murcia, Spain.
Department of Agronomy Engineering Universidad Politécnica de Cartagena, Paseo Alfonso XIII, 48, 30203 Cartagena (Murcia), Spain.
Int J Mol Sci. 2020 Oct 17;21(20):7694. doi: 10.3390/ijms21207694.
Detergent-resistant membranes (DRMs) microdomains, or "raft lipids", are key components of the plasma membrane (PM), being involved in membrane trafficking, signal transduction, cell wall metabolism or endocytosis. Proteins imbibed in these domains play important roles in these cellular functions, but there are few studies concerning DRMs under abiotic stress. In this work, we determine DRMs from the PM of broccoli roots, the lipid and protein content, the vesicles structure, their water osmotic permeability and a proteomic characterization focused mainly in aquaporin isoforms under salinity (80 mM NaCl). Based on biochemical lipid composition, higher fatty acid saturation and enriched sterol content under stress resulted in membranes, which decreased osmotic water permeability with regard to other PM vesicles, but this permeability was maintained under control and saline conditions; this maintenance may be related to a lower amount of total PIP1 and PIP2. Selective aquaporin isoforms related to the stress response such as PIP1;2 and PIP2;7 were found in DRMs and this protein partitioning may act as a mechanism to regulate aquaporins involved in the response to salt stress. Other proteins related to protein synthesis, metabolism and energy were identified in DRMs independently of the treatment, indicating their preference to organize in DMRs.
去污剂抗性膜 (DRM) 微区或“脂筏脂质”是质膜 (PM) 的关键组成部分,参与膜运输、信号转导、细胞壁代谢或内吞作用。这些区域中嵌入的蛋白质在这些细胞功能中发挥着重要作用,但关于非生物胁迫下的 DRM 研究较少。在这项工作中,我们从西兰花根的质膜中确定 DRM,脂质和蛋白质含量,囊泡结构,它们的水渗透渗透性和主要针对盐度(80mM NaCl)的水通道蛋白同工型的蛋白质组学特征。基于生化脂质组成,胁迫下更高的脂肪酸饱和度和富含甾醇含量导致质膜的水渗透渗透性降低,与其他 PM 囊泡相比,但在对照和盐条件下仍能维持这种渗透性;这种维持可能与总 PIP1 和 PIP2 的数量减少有关。在 DRM 中发现了与胁迫反应相关的选择性水通道蛋白同工型,如 PIP1;2 和 PIP2;7,这种蛋白质分区可能作为一种调节参与盐胁迫反应的水通道蛋白的机制。在处理条件下,鉴定了与蛋白质合成、代谢和能量相关的其他蛋白质,表明它们优先在 DRM 中组织。