Universidad de Buenos Aires, CONICET, Facultad de Farmacia y Bioquímica, Instituto de Química y Fisicoquímica Biológica (IQUIFIB), Argentina.
Universidad de Buenos Aires, Facultad de Farmacia y Bioquímica, Departamento de Fisicomatemática, Argentina.
FEBS J. 2019 Mar;286(5):991-1002. doi: 10.1111/febs.14701. Epub 2018 Dec 3.
One of the most intriguing properties of plasma membrane intrinsic protein (PIP) aquaporins (AQPs) is their ability to modulate water transport by sensing different levels of intracellular pH through the assembly of homo- and heterotetrameric molecular species in the plasma membrane. In this work, using a phenomenological modeling approach, we demonstrate that cooperativity in PIP biological response cannot be directly attributed to a cooperative proton binding, as it is usually considered, since it could also be the consequence of a cooperative conformation transition between open and closed states of the channel. Moreover, our results show that, when mixed populations of homo- and heterotetrameric PIP channels are coexpressed in the plasma membrane of the same cell, the observed decrease in the degree of positive cooperativity would result from the simultaneous presence of molecular species with different levels of proton sensing. Indeed, the random mixing between different PIP paralogues as subunits in a single tetramer, plus the possibility of mixed populations of homo- and heterotetrameric PIP channels widen the spectrum of cooperative responses of a cell membrane. Our approach offers a deep understanding of cooperative transport of AQP channels, as members of a multiprotein family where the relevant proton binding sites of each member have not been clearly elucidated yet.
质膜内在蛋白 (PIP) 水通道蛋白的最有趣特性之一是它们能够通过在质膜中组装同型和异型四聚体分子物种来感知不同水平的细胞内 pH 值,从而调节水的运输。在这项工作中,我们使用一种唯象建模方法表明,PIP 生物学反应的协同性不能直接归因于通常认为的协同质子结合,因为它也可能是通道开放和关闭状态之间协同构象转变的结果。此外,我们的结果表明,当同型和异型 PIP 通道的混合群体在同一细胞的质膜中共表达时,观察到的正协同性降低程度将来自于同时存在具有不同质子感应水平的分子物种。事实上,不同 PIP 旁系同源物作为单个四聚体中的亚基的随机混合,加上同型和异型 PIP 通道的混合群体的可能性,拓宽了细胞膜协同反应的范围。我们的方法提供了对 AQP 通道协同转运的深入了解,因为它们是多蛋白家族的成员,每个成员的相关质子结合位点尚未得到明确阐明。