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Protein solubilization: A novel approach

机译:蛋白质溶解:一种新方法

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摘要

Formulation development presents significant challenges with respect to protein therapeutics. One component of these challenges is to attain high protein solubility (>50 mg/ml for immunoglobulins) with minimal aggregation. Protein–protein interactions contribute to aggregation and the integral sum of these interactions can be quantified by a thermodynamic parameter known as the osmotic second virial coefficient (B-value). The method presented here utilizes high-throughput measurement of B-values to identify the influence of additives on protein–protein interactions. The experiment design uses three tiers of screens to arrive at final solution conditions that improve protein solubility. The first screen identifies individual additives that reduce protein interactions. A second set of B-values are then measured for different combinations of these additives via an incomplete factorial screen. Results from the incomplete factorial screen are used to train an artificial neural network (ANN). The “trained” ANN enables predictions of B-values for more than 4000 formulations that include additive combinations not previously experimentally measured. Validation steps are incorporated throughout the screening process to ensure that (1) the protein’s thermal and aggregation stability characteristics are not reduced and (2) the artificial neural network predictive model is accurate. The ability of this approach to reduce aggregation and increase solubility is demonstrated using an IgG protein supplied by Minerva Biotechnologies, Inc.
机译:制剂开发对蛋白质治疗提出了重大挑战。这些挑战的一个组成部分是获得高蛋白溶解度(对于免疫球蛋白而言> 50 mg / ml)且聚集最少。蛋白质间的相互作用有助于聚集,这些相互作用的总和可通过称为渗透第二维里系数(B值)的热力学参数来量化。这里介绍的方法利用B值的高通量测量来确定添加剂对蛋白质相互作用的影响。实验设计使用三层筛网来达到最终的溶液条件,从而提高蛋白质的溶解度。第一个屏幕可识别减少蛋白质相互作用的各种添加剂。然后,通过不完整的阶乘筛查这些添加剂的不同组合的第二组B值。来自不完整阶乘屏幕的结果用于训练人工神经网络(ANN)。 “经过训练的”人工神经网络能够预测4000多种配方的B值,其中包括以前未通过实验测量的添加剂组合。在整个筛选过程中都纳入了验证步骤,以确保(1)不降低蛋白质的热稳定性和聚集稳定性,以及(2)人工神经网络预测模型是准确的。使用Minerva Biotechnologies,Inc.提供的IgG蛋白证明了这种方法减少聚集和增加溶解度的能力。

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