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IgG Charge: Practical and Biological Implications

机译:IgG电荷:实际和生物学意义

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摘要

Practically, IgG charge can contribute significantly to thermodynamic nonideality, and hence to solubility and viscosity. Biologically, IgG charge isomers exhibit differences in clearance and potency. It has been known since the 1930s that all immunoglobulins carry a weak negative charge in physiological solvents. However, there has been no systematic exploration of this fundamental property. Accurate charge measurements have been made using membrane confined electrophoresis in two solvents (pH 5.0 and pH 7.4) on a panel of twelve mAb IgGs, as well as their F(ab’)2 and Fc fragments. The following observations were made at pH 5.0: (1) the measured charge differs from the calculated charge by ~40 for the intact IgGs, and by ~20 for the Fcs; (2) the intact IgG charge depends on both Fv and Fc sequences, but does not equal the sum of the F(ab)’2 and Fc charge; (3) the Fc charge is consistent within a class. In phosphate buffered saline, pH 7.4: (1) the intact IgG charges ranged from 0 to −13; (2) the F(ab’)2 fragments are nearly neutral for IgG1s and IgG2s, and about −5 for some of the IgG4s; (3) all Fc fragments are weakly anionic, with IgG1 < IgG2 < IgG4; (4) the charge on the intact IgGs does not equal the sum of the F(ab’)2 and Fc charge. In no case is the calculated charge, based solely on H+ binding, remotely close to the measured charge. Some mAbs carried a charge in physiological salt that was outside the range observed for serum-purified human poly IgG. To best match physiological properties, a therapeutic mAb should have a measured charge that falls within the range observed for serum-derived human IgGs. A thermodynamically rigorous, concentration-dependent protein–protein interaction parameter is introduced. Based on readily measured properties, interaction curves may be generated to aid in the selection of proteins and solvent conditions. Example curves are provided.
机译:实际上,IgG电荷可显着促进热力学非理想性,进而促进溶解性和粘度。从生物学上讲,IgG电荷异构体在清除率和效力上表现出差异。自1930年代以来,已知所有免疫球蛋白在生理溶剂中均带有微弱的负电荷。但是,尚未对该基本属性进行系统的探索。在十二种mAb IgG及其F(ab')2和Fc片段的面板上的两种溶剂(pH 5.0和pH 7.4)中使用膜限制电泳进行了准确的电荷测量。在pH 5.0时进行了以下观察:(1)对于完整的IgG,测得的电荷与计算出的电荷相差约40,对于Fcs,测得的电荷相差约20。 (2)完整的IgG电荷取决于Fv和Fc序列,但不等于F(ab)’2和Fc电荷的总和; (3)Fc电荷在一个类别内是一致的。在pH 7.4的磷酸盐缓冲盐水中:(1)完整的IgG电荷范围为0到-13; (2)F(ab′)2片段对IgG1和IgG2几乎是中性的,而对某些IgG4则约为-5; (3)所有Fc片段均为弱阴离子,其中IgG1 <IgG2 <IgG4。 (4)完整IgG上的电荷不等于F(ab')2和Fc电荷的总和。在任何情况下,仅基于H + 绑定计算得出的电荷都不会接近所测电荷。一些mAb携带的生理盐电荷超出了血清纯化的人多IgG观察到的范围。为了最好地匹配生理特性,治疗性单克隆抗体的测得电荷应在血清来源的人IgG观察到的范围内。引入了热力学严格的,浓度依赖性的蛋白质-蛋白质相互作用参数。基于容易测量的特性,可以生成相互作用曲线以帮助选择蛋白质和溶剂条件。提供了示例曲线。

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