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Microtopographical Guidance of Macropinocytic Signaling Patches

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Specialty Science
Date 2021 Dec 8
PMID 34876521
Citations 10
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Abstract

In fast-moving cells such as amoeba and immune cells, dendritic actin filaments are spatiotemporally regulated to shape large-scale plasma membrane protrusions. Despite their importance in migration, as well as in particle and liquid ingestion, how their dynamics are affected by micrometer-scale features of the contact surface is still poorly understood. Here, through quantitative image analysis of on microfabricated surfaces, we show that there is a distinct mode of topographical guidance directed by the macropinocytic membrane cup. Unlike other topographical guidance known to date that depends on nanometer-scale curvature sensing protein or stress fibers, the macropinocytic membrane cup is driven by the Ras/PI3K/F-actin signaling patch and its dependency on the micrometer-scale topographical features, namely PI3K/F-actin-independent accumulation of Ras-GTP at the convex curved surface, PI3K-dependent patch propagation along the convex edge, and its actomyosin-dependent constriction at the concave edge. Mathematical model simulations demonstrate that the topographically dependent initiation, in combination with the mutually defining patch patterning and the membrane deformation, gives rise to the topographical guidance. Our results suggest that the macropinocytic cup is a self-enclosing structure that can support liquid ingestion by default; however, in the presence of structured surfaces, it is directed to faithfully trace bent and bifurcating ridges for particle ingestion and cell guidance.

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References
1.
Sun X, Driscoll M, Guven C, Das S, Parent C, Fourkas J . Asymmetric nanotopography biases cytoskeletal dynamics and promotes unidirectional cell guidance. Proc Natl Acad Sci U S A. 2015; 112(41):12557-62. PMC: 4611618. DOI: 10.1073/pnas.1502970112. View

2.
Kim D, Han K, Gupta K, Kwon K, Suh K, Levchenko A . Mechanosensitivity of fibroblast cell shape and movement to anisotropic substratum topography gradients. Biomaterials. 2009; 30(29):5433-44. PMC: 2728798. DOI: 10.1016/j.biomaterials.2009.06.042. View

3.
Champion J, Mitragotri S . Role of target geometry in phagocytosis. Proc Natl Acad Sci U S A. 2006; 103(13):4930-4. PMC: 1458772. DOI: 10.1073/pnas.0600997103. View

4.
Helenius J, Ecke M, Muller D, Gerisch G . Oscillatory Switches of Dorso-Ventral Polarity in Cells Confined between Two Surfaces. Biophys J. 2018; 115(1):150-162. PMC: 6035296. DOI: 10.1016/j.bpj.2018.05.025. View

5.
Wilkinson P, Shields J, Haston W . Contact guidance of human neutrophil leukocytes. Exp Cell Res. 1982; 140(1):55-62. DOI: 10.1016/0014-4827(82)90155-0. View