Department of Cytobiochemistry, Faculty of Biotechnology, University of Wroclaw, F. Joliot-Curie 14a, 50-383, Wroclaw, Poland.
Department of Biotransformation, Faculty of Biotechnology, University of Wroclaw, F. Joliot-Curie 14a, 50-383, Wroclaw, Poland.
Cell Mol Biol Lett. 2023 Oct 25;28(1):86. doi: 10.1186/s11658-023-00497-y.
Membrane rafts play a crucial role in the regulation of many important biological processes. Our previous data suggest that specific interactions of flotillins with MPP1 are responsible for membrane raft domain organization and regulation in erythroid cells. Interaction of the flotillin-based protein network with specific membrane components underlies the mechanism of raft domain formation and regulation, including in cells with low expression of MPP1.
We sought to identify other flotillin partners via the immobilized recombinant flotillin-2-based affinity approach and mass spectrometry technique. The results were further confirmed via immunoblotting and via co-immunoprecipitation. In order to study the effect of the candidate protein on the physicochemical properties of the plasma membrane, the gene was knocked down via siRNA, and fluorescence lifetime imaging microscopy and spot-variation fluorescence correlation spectroscopy was employed.
EFR3A was identified as a candidate protein that interacts with flotillin-2. Moreover, this newly discovered interaction was demonstrated via overlay assay using recombinant EFR3A and flotillin-2. EFR3A is a stable component of the detergent-resistant membrane fraction of HeLa cells, and its presence was sensitive to the removal of cholesterol. While silencing the EFR3A gene, we observed decreased order of the plasma membrane of living cells or giant plasma membrane vesicles derived from knocked down cells and altered mobility of the raft probe, as indicated via fluorescence lifetime imaging microscopy and spot-variation fluorescence correlation spectroscopy. Moreover, silencing of EFR3A expression was found to disturb epidermal growth factor receptor and phospholipase C gamma phosphorylation and affect epidermal growth factor-dependent cytosolic Ca concentration.
Altogether, our results suggest hitherto unreported flotillin-2-EFR3A interaction, which might be responsible for membrane raft organization and regulation. This implies participation of this interaction in the regulation of multiple cellular processes, including those connected with cell signaling which points to the possible role in human health, in particular human cancer biology.
膜筏在调节许多重要的生物过程中起着至关重要的作用。我们之前的数据表明,四氢叶酸结合蛋白与 MPP1 的特定相互作用负责红细胞中膜筏域的组织和调节。基于浮球素的蛋白质网络与特定膜成分的相互作用是筏域形成和调节的机制,包括在 MPP1 表达低的细胞中。
我们试图通过固定化重组浮球素-2 基亲和方法和质谱技术来鉴定其他浮球素伴侣。通过免疫印迹和共免疫沉淀进一步证实了这一结果。为了研究候选蛋白对质膜理化性质的影响,通过 siRNA 敲低基因,并采用荧光寿命成像显微镜和斑点变化荧光相关光谱技术进行研究。
EFR3A 被鉴定为与浮球素-2 相互作用的候选蛋白。此外,通过使用重组 EFR3A 和浮球素-2 进行覆盖测定,证明了这种新发现的相互作用。EFR3A 是 HeLa 细胞去污剂抗性膜部分的稳定成分,其存在对胆固醇的去除敏感。当沉默 EFR3A 基因时,我们观察到活细胞质膜或来自敲低细胞的巨质膜囊泡的有序性降低,并且通过荧光寿命成像显微镜和斑点变化荧光相关光谱技术表明,筏探针的流动性发生改变。此外,发现 EFR3A 表达的沉默会干扰表皮生长因子受体和磷脂酶 Cγ的磷酸化,并影响表皮生长因子依赖性胞质 Ca 浓度。
总之,我们的结果表明了以前未报道的浮球素-2-EFR3A 相互作用,这可能负责膜筏的组织和调节。这意味着这种相互作用参与了多种细胞过程的调节,包括与细胞信号转导有关的过程,这表明它可能在人类健康,特别是人类癌症生物学中发挥作用。