Laboratory of Biochemistry and Immunology, World Premier International Research Center, Immunology Frontier Research Center, Osaka University, Suita, Osaka, Japan.
Department of Pediatrics, Tohoku University School of Medicine, Sendai, Miyagi, Japan.
J Clin Invest. 2021 Sep 15;131(18). doi: 10.1172/JCI148005.
ATP11A translocates phosphatidylserine (PtdSer), but not phosphatidylcholine (PtdCho), from the outer to the inner leaflet of plasma membranes, thereby maintaining the asymmetric distribution of PtdSer. Here, we detected a de novo heterozygous point mutation of ATP11A in a patient with developmental delays and neurological deterioration. Mice carrying the corresponding mutation died perinatally of neurological disorders. This mutation caused an amino acid substitution (Q84E) in the first transmembrane segment of ATP11A, and mutant ATP11A flipped PtdCho. Molecular dynamics simulations revealed that the mutation allowed PtdCho binding at the substrate entry site. Aberrant PtdCho flipping markedly decreased the concentration of PtdCho in the outer leaflet of plasma membranes, whereas sphingomyelin (SM) concentrations in the outer leaflet increased. This change in the distribution of phospholipids altered cell characteristics, including cell growth, cholesterol homeostasis, and sensitivity to sphingomyelinase. Matrix-assisted laser desorption ionization-imaging mass spectrometry (MALDI-IMS) showed a marked increase of SM levels in the brains of Q84E-knockin mouse embryos. These results provide insights into the physiological importance of the substrate specificity of plasma membrane flippases for the proper distribution of PtdCho and SM.
ATP11A 将磷脂酰丝氨酸(PtdSer)而非磷脂酰胆碱(PtdCho)从质膜的外层翻转到内层,从而维持 PtdSer 的不对称分布。在这里,我们在一名发育迟缓伴神经恶化的患者中检测到 ATP11A 的一个新的杂合点突变。携带该突变的小鼠在围产期因神经障碍而死亡。该突变导致 ATP11A 的第一个跨膜片段中的一个氨基酸取代(Q84E),并且突变型 ATP11A 翻转 PtdCho。分子动力学模拟表明,该突变允许 PtdCho 在底物进入位点结合。异常的 PtdCho 翻转显著降低了质膜外层 PtdCho 的浓度,而鞘磷脂(SM)的浓度在外层增加。这种磷脂分布的变化改变了细胞特征,包括细胞生长、胆固醇稳态和对鞘磷脂酶的敏感性。基质辅助激光解吸电离-成像质谱(MALDI-IMS)显示,Q84E 敲入小鼠胚胎大脑中的 SM 水平显著增加。这些结果为质膜翻转酶对 PtdCho 和 SM 适当分布的底物特异性的生理重要性提供了新的见解。