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用于增强蛋白质生物制剂稳定性的工程聚合物赋形剂:聚(N-异丙基丙烯酰胺)-聚(乙二醇)(PNIPAM-PEG)嵌段共聚物。

Engineered polymeric excipients for enhancing the stability of protein biologics: Poly(N-isopropylacrylamide)-poly(ethylene glycol) (PNIPAM-PEG) block copolymers.

机构信息

Davidson School of Chemical Engineering, Purdue University, West Lafayette, IN 47907, USA.

Davidson School of Chemical Engineering, Purdue University, West Lafayette, IN 47907, USA; Purdue University Institute for Cancer Research, West Lafayette, IN 47907, USA.

出版信息

Int J Pharm. 2024 Oct 25;664:124636. doi: 10.1016/j.ijpharm.2024.124636. Epub 2024 Aug 26.

Abstract

Protein therapeutics, particularly antibodies, depend on maintaining their native structures for optimal function. Hydrophobic interfaces, such as the air-water interface, can trigger protein aggregation and denaturation. While completely avoiding such interfacial exposures during manufacturing and storage is impractical, minimizing them is crucial for enhancing protein drug stability and extending shelf life. In the biologics industry, surfactants like polysorbates are commonly used as additives (excipients) to mitigate these undesirable interfacial exposures. However, polysorbates, the most prevalent choice, have recognized limitations in terms of polydispersity, purity, and stability, prompting the exploration of alternative excipients. The present study identifies poly(N-isopropylacrylamide)-poly(ethylene glycol) (PNIPAM-PEG) block copolymers as a promising alternative to polysorbates. Due to its stronger affinity for the air-water interface, PNIPAM-PEG significantly outperforms polysorbates in enhancing protein stability. This claim is supported by results from multiple tests. Accelerated dynamic light scattering (DLS) experiments demonstrate PNIPAM-PEG's exceptional efficacy in preserving IgG stability against surface-induced aggregation, surpassing conventional polysorbate excipients (Tween 80 and Tween 20) under high-temperature conditions. Additionally, circular dichroism (CD) spectroscopy results reveal conformational alterations associated with aggregation, with PNIPAM-PEG consistently demonstrates a greater protective effect by mitigating negative shifts at λ ≅ 220 nm, indicative of changes in secondary structure. Overall, this study positions PNIPAM-PEG as a promising excipient for antibody therapeutics, facilitating the development of more stable and effective biopharmaceuticals.

摘要

蛋白质疗法,特别是抗体,依赖于维持其天然结构以发挥最佳功能。疏水面,如气-水界面,可能引发蛋白质聚集和变性。虽然在制造和储存过程中完全避免这种界面暴露是不切实际的,但最大限度地减少这种暴露对于增强蛋白质药物稳定性和延长保质期至关重要。在生物制药行业,聚山梨醇酯等表面活性剂通常被用作添加剂(赋形剂)来减轻这些不良的界面暴露。然而,聚山梨醇酯作为最常见的选择,在多分散性、纯度和稳定性方面存在公认的局限性,促使人们探索替代赋形剂。本研究确定了聚(N-异丙基丙烯酰胺)-聚(乙二醇)(PNIPAM-PEG)嵌段共聚物是聚山梨醇酯的一种有前途的替代品。由于其对气-水界面更强的亲和力,PNIPAM-PEG 在增强蛋白质稳定性方面明显优于聚山梨醇酯。这一说法得到了多项测试结果的支持。加速动态光散射(DLS)实验表明,PNIPAM-PEG 在防止 IgG 因表面诱导聚集而失稳方面具有卓越的功效,在高温条件下优于传统的聚山梨醇酯赋形剂(吐温 80 和吐温 20)。此外,圆二色性(CD)光谱结果揭示了与聚集相关的构象变化,PNIPAM-PEG 始终通过减轻 λ ≅ 220nm 处的负移来表现出更大的保护作用,这表明二级结构发生了变化。总的来说,这项研究将 PNIPAM-PEG 定位为抗体治疗的一种有前途的赋形剂,为开发更稳定有效的生物制药提供了可能。

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