Nixon-Abell Jonathon, Ruggeri Francesco S, Qamar Seema, Herling Therese W, Czekalska Magdalena A, Shen Yi, Wang Guozhen, King Christopher, Fernandopulle Michael S, Sneideris Tomas, Watson Joseph L, Pillai Visakh V S, Meadows William, Henderson James W, Chambers Joseph E, Wagstaff Jane L, Williams Sioned H, Coyle Helena, Šneiderienė Greta, Lu Yuqian, Zhang Shuyuan, Marciniak Stefan J, Freund Stefan M V, Derivery Emmanuel, Ward Michael E, Vendruscolo Michele, Knowles Tuomas P J, St George-Hyslop Peter
Department of Clinical Neurosciences, Cambridge Institute for Medical Research, Clinical School, University of Cambridge, Cambridge, UK.
Physical Chemistry and Soft matter, Wageningen University & Research, Stippeneng, The Netherlands.
Nat Commun. 2025 Mar 21;16(1):2814. doi: 10.1038/s41467-025-58142-5.
Phase transitions of cellular proteins and lipids play a key role in governing the organisation and coordination of intracellular biology. Recent work has raised the intriguing prospect that phase transitions in proteins and lipids can be co-regulated. Here we investigate this possibility in the ribonucleoprotein (RNP) granule-ANXA11-lysosome ensemble, where ANXA11 tethers RNP granules to lysosomal membranes to enable their co-trafficking. We show that changes to the protein phase state within this system, driven by the low complexity ANXA11 N-terminus, induces a coupled phase state change in the lipids of the underlying membrane. We identify the ANXA11 interacting proteins ALG2 and CALC as potent regulators of ANXA11-based phase coupling and demonstrate their influence on the nanomechanical properties of the ANXA11-lysosome ensemble and its capacity to engage RNP granules. The phenomenon of protein-lipid phase coupling we observe within this system serves as a potential regulatory mechanism in RNA trafficking and offers an important template to understand other examples across the cell whereby biomolecular condensates closely juxtapose organellar membranes.
细胞蛋白质和脂质的相变在控制细胞内生物学的组织和协调中起着关键作用。最近的研究提出了一个有趣的前景,即蛋白质和脂质的相变可以共同调节。在这里,我们在核糖核蛋白(RNP)颗粒-膜联蛋白A11-溶酶体组合中研究这种可能性,其中膜联蛋白A11将RNP颗粒 tether 到溶酶体膜上,以实现它们的共同运输。我们表明,由低复杂性的膜联蛋白A11 N端驱动的该系统内蛋白质相状态的变化,会诱导下层膜脂质的耦合相状态变化。我们确定膜联蛋白A11相互作用蛋白ALG2和CALC是基于膜联蛋白A11的相耦合的有效调节因子,并证明它们对膜联蛋白A11-溶酶体组合的纳米力学性质及其结合RNP颗粒的能力的影响。我们在该系统中观察到的蛋白质-脂质相耦合现象,作为RNA运输中的一种潜在调节机制,并为理解细胞中其他生物分子凝聚物紧密毗邻细胞器膜的例子提供了重要模板。 (注:tether此处没有合适的中文对应,保留英文)