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非平衡态动力学相图用于研究活性粒子的跨膜输运。

Nonequilibrium Dynamic Phase Diagram for Transmembrane Transport of Active Particles.

机构信息

State Key Laboratory of Chemical Engineering, Department of Chemical Engineering, Tsinghua University, Beijing 100084, China.

Key Laboratory of Advanced Materials (MOE), Tsinghua University, Beijing 100084, China.

出版信息

ACS Nano. 2024 Sep 3;18(35):24024-24034. doi: 10.1021/acsnano.4c03565. Epub 2024 Aug 21.

Abstract

In recent years, there has been considerable push toward the biomedical applications with active particles, which have great potential to revolutionize disease diagnostics and therapy. The direct penetration of active particles through the cell membrane leads to more efficient intracellular delivery than previously considered endocytosis processes but may cause membrane disruption. Understanding fundamental behaviors of cell membranes in response to such extreme impacts by active particles is crucial to develop active particle-based biomedical technologies and manage health and safety issues in this emerging field. Unfortunately, the physical principles underlying the nonequilibrium behaviors from endocytosis to direct penetration remain elusive, and experiments are challenging. Here, we present a computed dynamic phase diagram for transmembrane transport of active particles and identify four characteristic dynamic phases in endocytosis and direct penetration according to the particle activity and membrane tension. The boundaries dividing these phases are analytically obtained with theoretical models, elucidating the nonequilibrium physics and criteria for the transition between different phases. Furthermore, we numerically and experimentally show three distinct dynamic regimes related to the interplay between necking and wrapping during the endocytosis process of active particles, which strikingly contrast the regimes for passive particles. Overall, these findings could be useful for sharpening the understanding of basic principles underlying biological issues related to the safe and efficient biomedical applications of such emerging matters.

摘要

近年来,主动粒子在生物医学应用方面取得了相当大的进展,它们具有彻底改变疾病诊断和治疗的巨大潜力。主动粒子直接穿透细胞膜,导致比以前认为的胞吞作用更有效的细胞内递药,但也可能导致膜破裂。了解细胞膜对主动粒子这种极端影响的基本行为,对于开发基于主动粒子的生物医学技术以及管理这一新兴领域的健康和安全问题至关重要。不幸的是,从胞吞作用到直接穿透的非平衡行为的物理原理仍然难以捉摸,实验也极具挑战性。在这里,我们提出了一个用于主动粒子跨膜输运的计算动态相图,并根据粒子活性和膜张力,在胞吞作用和直接穿透中确定了四个特征动态相。这些相的边界通过理论模型进行了分析,阐明了不同相之间的非平衡物理和转变标准。此外,我们通过数值和实验显示了与主动粒子胞吞作用过程中的缩颈和包裹相互作用相关的三个不同的动力学状态,这与被动粒子的状态形成了鲜明对比。总的来说,这些发现有助于深化对与这些新兴物质的安全和有效生物医学应用相关的生物学问题的基本原理的理解。

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