Shi Quanming, Chien Yuan-Hung, Leckband Deborah
Department of Chemical and Biomolecular Engineering, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, USA.
J Biol Chem. 2008 Oct 17;283(42):28454-63. doi: 10.1074/jbc.M802563200. Epub 2008 Jun 15.
Differential binding between cadherin subtypes is widely believed to mediate cell sorting during embryogenesis. However, a fundamental unanswered question is whether cell sorting is dictated by the biophysical properties of cadherin bonds, or by broader, cadherin-dependent differences in intercellular adhesion or membrane tension. This report describes atomic force microscope measurements of the strengths and dissociation rates of homophilic and heterophilic cadherin (CAD) bonds. Measurements conducted with chicken N-CAD, canine E-CAD, and Xenopus C-CAD demonstrated that all three cadherins cross-react and form multiple, intermolecular bonds. The mechanical and kinetic properties of the heterophilic bonds are similar to the homophilic interactions. The thus quantified bond parameters, together with previously reported adhesion energies were further compared with in vitro cell aggregation and sorting assays, which are thought to mimic in vivo cell sorting. Trends in quantified biophysical properties of the different cadherin bonds do not correlate with sorting outcomes. These results suggest that cell sorting in vivo and in vitro is not governed solely by biophysical differences between cadherin subtypes.
人们普遍认为,钙黏蛋白亚型之间的差异结合在胚胎发育过程中介导细胞分选。然而,一个基本的未解决问题是,细胞分选是由钙黏蛋白键的生物物理特性决定的,还是由更广泛的、依赖钙黏蛋白的细胞间黏附或膜张力差异决定的。本报告描述了原子力显微镜对同嗜性和异嗜性钙黏蛋白(CAD)键的强度和解离速率的测量。对鸡N-CAD、犬E-CAD和非洲爪蟾C-CAD进行的测量表明,所有这三种钙黏蛋白都会发生交叉反应并形成多个分子间键。异嗜性键的力学和动力学特性与同嗜性相互作用相似。将由此量化的键参数与先前报道的黏附能一起,进一步与体外细胞聚集和分选试验进行比较,这些试验被认为可模拟体内细胞分选。不同钙黏蛋白键的量化生物物理特性趋势与分选结果不相关。这些结果表明,体内和体外的细胞分选并非仅由钙黏蛋白亚型之间的生物物理差异所决定。