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2
Physical Principles of Membrane Shape Regulation by the Glycocalyx.糖萼调控细胞膜形状的物理原理。
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3
Glycocalyx regulates the strength and kinetics of cancer cell adhesion revealed by biophysical models based on high resolution label-free optical data.基于高分辨率无标记光学数据的生物物理模型揭示糖萼调节癌细胞黏附的强度和动力学。
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4
The cancer glycocalyx mechanically primes integrin-mediated growth and survival.癌症糖萼通过机械作用引发整合素介导的生长和存活。
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Glycocalyx bending by an electric field increases cell motility.电场作用下糖萼弯曲可增强细胞运动性。
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本文引用的文献

1
Physical biology of the cancer cell glycocalyx.癌细胞糖萼的物理生物学
Nat Phys. 2018;14(7):658-669. doi: 10.1038/s41567-018-0186-9. Epub 2018 Jul 4.
2
Genetically Encoded Toolbox for Glycocalyx Engineering: Tunable Control of Cell Adhesion, Survival, and Cancer Cell Behaviors.用于糖萼工程的基因编码工具箱:对细胞黏附、存活和癌细胞行为的可调控制
ACS Biomater Sci Eng. 2018 Feb 12;4(2):388-399. doi: 10.1021/acsbiomaterials.7b00037. Epub 2017 Feb 28.
3
A Trickster in Disguise: Hyaluronan's Ambivalent Roles in the Matrix.伪装的骗子:透明质酸在细胞外基质中的矛盾作用
Front Oncol. 2017 Oct 9;7:242. doi: 10.3389/fonc.2017.00242. eCollection 2017.
4
Molecular structure of bottlebrush polymers in melts.梳状聚合物在熔体中的分子结构。
Sci Adv. 2016 Nov 11;2(11):e1601478. doi: 10.1126/sciadv.1601478. eCollection 2016 Nov.
5
Probe for the measurement of cell surface pH in vivo and ex vivo.用于体内和体外测量细胞表面pH值的探针。
Proc Natl Acad Sci U S A. 2016 Jul 19;113(29):8177-81. doi: 10.1073/pnas.1608247113. Epub 2016 Jul 5.
6
Cell Surface Access Is Modulated by Tethered Bottlebrush Proteoglycans.细胞表面通路受束缚型刷状蛋白聚糖调节。
Biophys J. 2016 Jun 21;110(12):2739-2750. doi: 10.1016/j.bpj.2016.05.027.
7
Carcinoma Cell Hyaluronan as a "Portable" Cancerized Prometastatic Microenvironment.癌细胞透明质酸作为一种“可携带”的癌化促转移微环境。
Cancer Res. 2016 May 1;76(9):2507-12. doi: 10.1158/0008-5472.CAN-15-3114. Epub 2016 Apr 20.
8
Nuclear envelope rupture and repair during cancer cell migration.癌细胞迁移过程中的核膜破裂与修复
Science. 2016 Apr 15;352(6283):353-8. doi: 10.1126/science.aad7297. Epub 2016 Mar 24.
9
The impact of physiological crowding on the diffusivity of membrane bound proteins.生理拥挤对膜结合蛋白扩散率的影响。
Soft Matter. 2016 Feb 21;12(7):2127-34. doi: 10.1039/c5sm02572a. Epub 2016 Jan 11.
10
Membrane curvature bends the laws of physics and chemistry.膜曲率改变了物理和化学规律。
Nat Chem Biol. 2015 Nov;11(11):822-5. doi: 10.1038/nchembio.1941.

癌症糖萼的力学和结构的平衡建模。

Equilibrium Modeling of the Mechanics and Structure of the Cancer Glycocalyx.

机构信息

Robert Frederick Smith School of Chemical and Biomolecular Engineering, Cornell University, Ithaca, New York.

Robert Frederick Smith School of Chemical and Biomolecular Engineering, Cornell University, Ithaca, New York.

出版信息

Biophys J. 2019 Feb 19;116(4):694-708. doi: 10.1016/j.bpj.2018.12.023. Epub 2019 Jan 15.

DOI:10.1016/j.bpj.2018.12.023
PMID:30736980
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6382957/
Abstract

The glycocalyx is a thick coat of proteins and carbohydrates on the outer surface of all eukaryotic cells. Overproduction of large, flexible or rod-like biopolymers, including hyaluronic acid and mucins, in the glycocalyx strongly correlates with the aggression of many cancer types. However, theoretical frameworks to predict the effects of these changes on cancer cell adhesion and other biophysical processes remain limited. Here, we propose a detailed modeling framework for the glycocalyx incorporating important physical effects of biopolymer flexibility, excluded volume, counterion mobility, and coupled membrane deformations. Because mucin and hyaluronic biopolymers are proposed to extend and rigidify depending on the extent of their decoration with side chains, we propose and consider two limiting cases for the structural elements of the glycocalyx: stiff beams and flexible chains. Simulations predict the mechanical response of the glycocalyx to compressive loads, which are imposed on cells residing in the highly confined spaces of the solid tumor or invaded tissues. Notably, the shape of the mechanical response transitions from hyperbolic to sigmoidal for more rod-like glycocalyx elements. These mechanical responses, along with the corresponding equilibrium protein organizations and membrane topographies, are summarized to aid in hypothesis generation and the evaluation of future experimental measurements. Overall, the modeling framework developed provides a theoretical basis for understanding the physical biology of the glycocalyx in human health.

摘要

糖萼是所有真核细胞外表面的一层厚厚的蛋白质和碳水化合物。在糖萼中,大量大而灵活或棒状的生物聚合物(包括透明质酸和粘蛋白)的过度产生与许多癌症类型的侵袭性密切相关。然而,预测这些变化对癌细胞黏附和其他生物物理过程影响的理论框架仍然有限。在这里,我们提出了一个详细的糖萼建模框架,该框架纳入了生物聚合物灵活性、排除体积、抗衡离子迁移率和耦合膜变形等重要物理效应。由于粘蛋白和透明质酸生物聚合物据推测会根据其侧链的修饰程度而延伸和僵化,因此我们提出并考虑了糖萼结构元素的两种极限情况:刚性梁和柔性链。模拟预测了糖萼对压缩载荷的力学响应,这些压缩载荷施加在存在于实体瘤或被入侵组织中高度受限空间的细胞上。值得注意的是,对于更棒状的糖萼元素,机械响应的形状从双曲线转变为 sigmoidal。这些机械响应以及相应的平衡蛋白组织和膜形貌被总结出来,以帮助生成假设并评估未来的实验测量。总的来说,所开发的建模框架为理解糖萼在人类健康中的物理生物学提供了理论基础。