通过粘附到具有纳米级形貌的支撑双分子层来控制细胞膜受体凝聚

IF 5.4 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Communications Physics Pub Date : 2024-06-01 DOI:10.1038/s42005-024-01670-1
Long Li, Ruihan Hou, Xinghua Shi, Jing Ji, Bartosz Różycki, Jinglei Hu, Fan Song
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引用次数: 0

摘要

开发物理方法来调控细胞膜上的生物分子团簇和凝聚体,对于了解生理和病理过程以及激发新型治疗策略具有重要意义。在这里,我们提出了一种有效的方法,通过特异性粘附到具有纳米级形貌的支撑脂质双分子层(SLB)上来控制细胞膜上的受体凝聚。这种特异性粘附是由细胞膜上的受体介导的,这些受体与锚定在 SLB 上的配体结合。我们利用蒙特卡罗模拟和均场理论证明,SLB 的纳米级形貌能增强与脂质纳米域相关的受体的凝集。我们的研究结果表明,具有纳米级形貌的 SLB 是调节细胞膜中膜粘附蛋白和脂质凝结的有效物理刺激,可作为控制和引导细胞活动(如干细胞分化)的可行方案,应用于生物医学和治疗领域。开发调控细胞膜上生物分子凝聚物的物理方法,对于了解生理过程和激发新型治疗策略具有重要意义。我们提出了一种通过粘附到具有纳米级形貌的支撑脂质双分子层来控制细胞膜上受体凝聚的有效方法。
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Control of cell membrane receptor condensation by adhesion to supported bilayers with nanoscale topography
Developing physical methods to modulate biomolecular clusters and condensates on cell membranes is of great importance for understanding physiological and pathological processes as well as for stimulating novel therapeutic strategies. Here, we propose an effective means to control receptor condensation on the cell membrane via specific adhesion to a supported lipid bilayer (SLB) with nanoscale topography. The specific adhesion is mediated by receptors in the cell membrane that bind their ligands anchored in the SLB. Using Monte Carlo simulations and mean-field theory, we demonstrate that the nanoscale topography of the SLB can enhance condensation of the receptors associated with lipid nanodomains. Our results indicate that SLBs with nanoscale topography proves an effective physical stimulus for tuning condensation of membrane adhesion proteins and lipids in cell membranes, and can serve as a feasible option to control and direct cellular activities, e.g., stem cell differentiation for biomedical and therapeutic applications. Developing physical methods to modulate biomolecular condensates on cell membranes is of great importance for understanding physiological processes and stimulating novel therapeutic strategies. We propose an effective means to control receptor condensation on cell membranes via adhesion to a supported lipid bilayer with nanoscale topography.
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来源期刊
Communications Physics
Communications Physics Physics and Astronomy-General Physics and Astronomy
CiteScore
8.40
自引率
3.60%
发文量
276
审稿时长
13 weeks
期刊介绍: Communications Physics is an open access journal from Nature Research publishing high-quality research, reviews and commentary in all areas of the physical sciences. Research papers published by the journal represent significant advances bringing new insight to a specialized area of research in physics. We also aim to provide a community forum for issues of importance to all physicists, regardless of sub-discipline. The scope of the journal covers all areas of experimental, applied, fundamental, and interdisciplinary physical sciences. Primary research published in Communications Physics includes novel experimental results, new techniques or computational methods that may influence the work of others in the sub-discipline. We also consider submissions from adjacent research fields where the central advance of the study is of interest to physicists, for example material sciences, physical chemistry and technologies.
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