光学镊子
幽灵蛋白
生物物理学
红细胞
脂质双层
膜
机械转化
全息术
机械生物学
化学
生物
光学
细胞生物学
物理
细胞
生物化学
细胞骨架
作者
Niccolò Caselli,Mario García-Verdugo,Macarena Calero,Natalia Hernando-Ospina,José A. Santiago,Diego Herráez-Aguilar,Francisco Monroy
出处
期刊:iScience
[Elsevier]
日期:2024-05-08
卷期号:27 (6): 109915-109915
标识
DOI:10.1016/j.isci.2024.109915
摘要
Red blood cells possess a singular mechanobiology, enabling efficient navigation through capillaries smaller than their own size. Their plasma membrane exhibits non-equilibrium shape fluctuation, often reported as enhanced flickering activity. Such active membrane motion is propelled by motor proteins that mediate interactions between the spectrin skeleton and the lipid bilayer. However, modulating the flickering in living red blood cells without permanently altering their mechanical properties represents a significant challenge. In this study, we developed holographic optical tweezers to generate a force field distributed along the equatorial membrane contour of individual red blood cells. In free-standing red blood cells, we observed heterogeneous flickering activity, attributed to localized membrane kickers. By employing holographic optical forces, these active kickers can be selectively halted under minimal invasion. Our findings shed light on the dynamics of membrane flickering and established a manipulation tool that could open new avenues for investigating mechanotransduction processes in living cells.
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