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红细胞膜的弹性面积压缩模量。

Elastic area compressibility modulus of red cell membrane.

作者信息

Evans E A, Waugh R, Melnik L

出版信息

Biophys J. 1976 Jun;16(6):585-95. doi: 10.1016/S0006-3495(76)85713-X.

DOI:10.1016/S0006-3495(76)85713-X
PMID:1276386
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1334882/
Abstract

Micropipette measurements of isotropic tension vs. area expansion in pre-swollen single human red cells gave a value of 288 +/- 50 SD dyn/cm for the elastic, area compressibility modulus of the total membrane at 25 degrees C. This elastic constant, characterizing the resistance to area expansion or compression, is about 4 X 10(4) times greater than the elastic modulus for shear rigidity; therefore, in situations where deformation of the membrane does not require large isotropic tensions (e.g., in passage through normal capillaries), the membrane can be treated by a simple constitutive relation for a two-dimensionally, incompressible material (i.e. fixed area). The tension was found to be linear and reversible for the range of area changes observed (within the experimental system resolution of 10%). The maximum fractional area expansion required to produce lysis was uniformly distributed between 2 and 4% with 3% average and 0.7% SD. By heating the cells to 50 degrees C, it appears that the structural matrix (responsible for the shear rigidity and most of the strength in isotropic tension) is disrupted and primarily the lipid bilayer resists lysis. Therefore, the relative contributions of the structural matrix and lipid bilayer to the elastic, area compressibility could be estimated. The maximum isotropic tension at 25 degrees C is 10-12 dyn/cm and at 50 degrees C is between 3 and 4 dyn/cm. From this data, the respective compressibilities are estimated at 193 dyn/cm and 95 dyn/cm for structural network and bilayer. The latter value correlates well with data on in vitro, monolayer surface pressure versus area curves at oil-water interfaces.

摘要

用微量移液器对预先肿胀的单个人类红细胞的各向同性张力与面积扩张进行测量,得出在25℃时整个膜的弹性面积压缩模量为288±50标准差达因/厘米。这个弹性常数表征了对面积扩张或压缩的阻力,比剪切刚性的弹性模量大约大4×10⁴倍;因此,在膜变形不需要大的各向同性张力的情况下(例如在通过正常毛细血管时),膜可以用二维不可压缩材料(即固定面积)的简单本构关系来处理。在所观察到的面积变化范围内(在实验系统分辨率10%以内),发现张力是线性且可逆的。产生细胞溶解所需的最大面积分数扩张均匀分布在2%至4%之间,平均为3%,标准差为0.7%。通过将细胞加热到50℃,似乎结构基质(负责剪切刚性和各向同性张力中的大部分强度)被破坏,主要是脂质双层抵抗细胞溶解。因此,可以估计结构基质和脂质双层对弹性面积压缩性的相对贡献。25℃时的最大各向同性张力为10 - 12达因/厘米,50℃时为3至4达因/厘米。根据这些数据,结构网络和双层的各自压缩性估计分别为193达因/厘米和95达因/厘米。后一个值与油水界面上单分子层表面压力与面积曲线的体外数据很好地相关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9d6b/1334882/eba2cfd5f177/biophysj00303-0040-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9d6b/1334882/eba2cfd5f177/biophysj00303-0040-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9d6b/1334882/eba2cfd5f177/biophysj00303-0040-a.jpg

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1
Empirical correlation between hydrophobic free energy and aqueous cavity surface area.疏水自由能与水相腔表面积之间的经验相关性。
Proc Natl Acad Sci U S A. 1974 Aug;71(8):2925-7. doi: 10.1073/pnas.71.8.2925.
2
MECHANICAL PROPERTIES OF THE RED CELL MEMBRANE. II. VISCOELASTIC BREAKDOWN OF THE MEMBRANE.红细胞膜的力学性质。II. 膜的粘弹性破坏
Biophys J. 1964 Jul;4(4):303-16. doi: 10.1016/s0006-3495(64)86784-9.
3
Area and volume changes in hemolysis of single erythrocytes.单个红细胞溶血过程中的面积和体积变化
膜细胞骨架力学性质调控红细胞的口形红细胞-盘状红细胞-棘形红细胞转变
Biophys J. 2025 Jan 21;124(2):267-283. doi: 10.1016/j.bpj.2024.12.001. Epub 2024 Dec 5.
4
Red blood cell passage through deformable interendothelial slits in the spleen: Insights into splenic filtration and hemodynamics.红细胞穿过脾脏可变形的内皮细胞裂孔:对脾脏滤过和血液动力学的深入了解。
Comput Biol Med. 2024 Nov;182:109198. doi: 10.1016/j.compbiomed.2024.109198. Epub 2024 Sep 27.
5
Giant organelle vesicles to uncover intracellular membrane mechanics and plasticity.巨细胞器囊泡揭示细胞内膜力学和可塑性。
Nat Commun. 2024 May 4;15(1):3767. doi: 10.1038/s41467-024-48086-7.
6
Two-component macrophage model for active phagocytosis with pseudopod formation.具有伪足形成的主动吞噬作用的两成分巨噬细胞模型。
Biophys J. 2024 May 7;123(9):1069-1084. doi: 10.1016/j.bpj.2024.03.026. Epub 2024 Mar 25.
7
Encapsulation and release of calcein from herceptin-conjugated eLiposomes.钙黄绿素从赫赛汀偶联的e脂质体中的包封与释放。
Heliyon. 2024 Mar 13;10(6):e27882. doi: 10.1016/j.heliyon.2024.e27882. eCollection 2024 Mar 30.
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9
A cell-and-plasma numerical model reveals hemodynamic stress and flow adaptation in zebrafish microvessels after morphological alteration.细胞-血浆数值模型揭示了形态改变后斑马鱼微血管中的血液动力应激和血流适应。
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10
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Proc Natl Acad Sci U S A. 2023 Jul 25;120(30):e2221958120. doi: 10.1073/pnas.2221958120. Epub 2023 Jul 17.
J Cell Comp Physiol. 1963 Jun;61:245-53. doi: 10.1002/jcp.1030610306.
4
Physical and chemical properties of a protein isolated from red cell membranes.从红细胞膜分离出的一种蛋白质的物理和化学性质。
Biochemistry. 1970 Jan 6;9(1):50-7. doi: 10.1021/bi00803a007.
5
Geometric properties of individual red blood cell discocyte-spherocyte transformations.单个红细胞盘状细胞-球形细胞转变的几何特性。
Biorheology. 1973 Sep;10(3):393-404. doi: 10.3233/bir-1973-10313.
6
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10
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