Bohidar H B
School of Physical Sciences, Jawaharlal Nehru University, New Delhi, India.
Biopolymers. 1998;45(1):1-8. doi: 10.1002/(SICI)1097-0282(199801)45:1<1::AID-BIP1>3.0.CO;2-X.
Aggregation behavior and hydrodynamic parameters of insulin have been determined from static and dynamic light scattering experiments and intrinsic viscosity measurements carried out at pH 4.0, 7.5, and 9.0 in the temperature range 20-40 degrees C in aqueous solutions. The protein aggregated extensively at elevated temperatures in the acidic solutions. Intermolecular interactions were found to be attractive and to increase with temperature. The measured intrinsic viscosity [eta], diffusion coefficient D0, molecular weight M, and radius of gyration Rg exhibited the universal behavior: M[eta] = (2.4 +/- 02) x 10(-27) (Re, eta/Re, D)3(D0 eta 0/T)-3 and (D0 square root of n)-1 approximately equal to (square root of pi eta 0 xi beta/kBT) [1 + 0.201)(v/beta 3) square root of n], where n is the number of segments in the polypeptide. The effective hydrodynamic radii deduced from [eta], (Re, eta) and the same deduced from D0, (Re, D) showed a constant ratio, (Re, eta/Re, D = 1.1 +/- 0.1). Re, D/Rg = xi was found to be (0.76 +/- 0.07). From the known solvent viscosity eta 0, the segment length beta was deduced to be (10 +/- 1) A. The excluded volume was deduced to be (5 A)3 regardless of pH. The Flory-Huggins interaction parameter was found to be chi = 0.45 +/- 0.04, independent of pH and temperature.
通过在20 - 40摄氏度温度范围内、pH值为4.0、7.5和9.0的水溶液中进行静态和动态光散射实验以及特性粘度测量,已确定胰岛素的聚集行为和流体动力学参数。在酸性溶液中,蛋白质在高温下大量聚集。发现分子间相互作用具有吸引力且随温度升高而增强。所测得的特性粘度[η]、扩散系数D0、分子量M和回转半径Rg呈现出普遍规律:M[η] = (2.4 ± 0.2)×10⁻²⁷ (Re, η/Re, D)³(D0 η0/T)⁻³ 以及 (D0√n)⁻¹ ≈ (√πη0ξβ/kBT)[1 + 0.201)(v/β³)√n],其中n是多肽中的链段数。由[η]推导得出的有效流体动力学半径(Re, η)以及由D0推导得出的相同半径(Re, D)呈现出恒定比例,(Re, η/Re, D = 1.1 ± 0.1)。发现Re, D/Rg = ξ为(0.76 ± 0.07)。根据已知的溶剂粘度η0,推导出链段长度β为(10 ± 1) Å。无论pH值如何,排除体积均推导为(5 Å)³。发现弗洛里 - 哈金斯相互作用参数χ = 0.45 ± 0.04,与pH值和温度无关。