Interdisciplinary Research Institute (IRIBHM), Université Libre de Bruxelles, 1070 Brussels, Belgium.
Interdisciplinary Research Institute (IRIBHM), Université Libre de Bruxelles, 1070 Brussels, Belgium
J Lipid Res. 2019 Feb;60(2):276-286. doi: 10.1194/jlr.R087908. Epub 2018 Sep 7.
Phosphoinositides (PIs) are recognized as major signaling molecules in many different functions of eukaryotic cells. PIs can be dephosphorylated by multiple phosphatase activities at the 5-, 4-, and 3- positions. Human PI 5-phosphatases belong to a family of 10 members. Except for inositol polyphosphate 5-phosphatase A, they all catalyze the dephosphorylation of PI(4,5)P and/or PI(3,4,5)P at the 5- position. PI 5-phosphatases thus directly control the levels of PI(3,4,5)P and participate in the fine-tuning regulatory mechanisms of PI(3,4)P and PI(4,5)P Second messenger functions have been demonstrated for PI(3,4)P in invadopodium maturation and lamellipodia formation. PI 5-phosphatases can use several substrates on isolated enzymes, and it has been challenging to establish their real substrate in vivo. PI(4,5)P has multiple functions in signaling, including interacting with scaffold proteins, ion channels, and cytoskeleton proteins. PI 5-phosphatase isoenzymes have been individually implicated in human diseases, such as the oculocerebrorenal syndrome of Lowe, through mechanisms that include lipid control. Oncogenic and tumor-suppressive functions of PI 5-phosphatases have also been reported in different cell contexts. The mechanisms responsible for genetic diseases and for oncogenic or tumor-suppressive functions are not fully understood. The regulation of PI 5-phosphatases is thus crucial in understanding cell functions.
磷脂酰肌醇(PI)被认为是真核细胞多种不同功能的主要信号分子。PI 可以通过多种磷酸酶活性在 5-、4-和 3-位去磷酸化。人类 PI 5-磷酸酶属于 10 个成员的家族。除了肌醇多磷酸 5-磷酸酶 A 外,它们都催化 PI(4,5)P 和/或 PI(3,4,5)P 在 5-位的去磷酸化。PI 5-磷酸酶因此直接控制 PI(3,4,5)P 的水平,并参与 PI(3,4)P 和 PI(4,5)P 的精细调节机制。PI(3,4)P 已被证明在入侵足成熟和片状伪足形成中具有第二信使功能。PI 5-磷酸酶可以在分离的酶上使用几种底物,并且很难在体内建立其真实的底物。PI(4,5)P 在信号转导中具有多种功能,包括与支架蛋白、离子通道和细胞骨架蛋白相互作用。PI 5-磷酸酶同工酶已分别通过包括脂质控制在内的机制被牵连到人类疾病中,例如 Lowe 眼脑肾综合征。PI 5-磷酸酶在不同细胞环境中的致癌和抑癌功能也有报道。导致遗传疾病以及致癌或抑癌功能的机制尚未完全阐明。因此,PI 5-磷酸酶的调节对于理解细胞功能至关重要。