class='kwd-title'>Keywords: Protein formulations'/> Impact of electroviscous effect on viscosity in developing highly concentrated protein formulations: Lessons from non-protein charged colloids
首页> 美国卫生研究院文献>International Journal of Pharmaceutics: X >Impact of electroviscous effect on viscosity in developing highly concentrated protein formulations: Lessons from non-protein charged colloids
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Impact of electroviscous effect on viscosity in developing highly concentrated protein formulations: Lessons from non-protein charged colloids

机译:电粘性效应对高浓缩蛋白配方开发中粘度的影响:无蛋白胶体的经验教训

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摘要

class="kwd-title">Keywords: Protein formulations, Viscosity, Electroviscous effect, Drug delivery, High concentration, Subcutaneous injection, Electrostatic interaction class="head no_bottom_margin" id="ab010title">AbstractSubcutaneous delivery of highly concentrated protein formulations is paramount for reducing healthcare cost and improving patient compliance, where reducing the solution viscosity of formulations is critical for drug delivery. The objective of this paper is to provide some mechanistic understanding about the contribution of electrostatic repulsion to the viscosity of protein solutions at high concentrations, along with the effect of excipients such as salts on relative viscosity. Proteins are treated as charged colloids in this paper. At high concentrations, the electrical double layer starts to overlap, and secondary electroviscous effect becomes significant in addition to primary electroviscous effect. In other words, the hydrodynamic volume of proteins plays a great role in influencing their solution viscosity because of the excluded volume effect. Currently, it is hypothesized that the high viscosity of concentrated protein solutions is attributed to formation of clusters due to either electrostatic attraction or hydrophobic interactions, especially for monoclonal antibodies, in which anybody molecules in high concentration formulations may form networks. Consequently, viscosity reduction in the presence of inorganic or organic salts in these formulations is due to breaking up of these networks. In this review, authors hope to provide another point of view based on the effect of the electrostatic repulsion on the excluded volume-hydrodynamic volume. Finally, authors hope the proposed theoretical framework can be used to guide excipient selection in the product development of highly concentrated proteins.
机译:<!-fig ft0-> <!-fig @ position =“ anchor” mode =文章f4-> <!-fig mode =“ anchred” f5-> <!-fig / graphic | fig / alternatives / graphic mode =“ anchored” m1-> class =“ kwd-title”>关键字:蛋白质制剂,粘度,电粘性效应,药物输送,高浓度,皮下注射,静电相互作用摘要皮下递送高浓度蛋白质制剂对于降低医疗保健成本和改善患者依从性至关重要,因为降低制剂的溶液粘度对于药物递送至关重要。本文的目的是对静电排斥对高浓度蛋白质溶液粘度的贡献以及赋形剂(如盐)对相对粘度的影响提供一些机械的理解。本文将蛋白质视为带电胶体。在高浓度下,双电层开始重叠,并且除了初级电粘效应外,次级电粘效应也变得显着。换句话说,由于排除了体积效应,蛋白质的流体动力学体积在影响其溶液粘度方面起着重要作用。目前,假设浓缩蛋白溶液的高粘度归因于由于静电吸引或疏水相互作用而形成的簇,尤其是对于单克隆抗体而言,其中高浓度制剂中的任何分子都可以形成网络。因此,在这些配方中存在无机或有机盐时粘度降低是由于这些网络的破裂。在这篇综述中,作者希望基于静电排斥对排除体积-流体动力学体积的影响提供另一种观点。最后,作者希望所提出的理论框架可用于指导高浓缩蛋白产品开发中的赋形剂选择。

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