通过快速变化的反应条件对蛋白质重新折叠的时空空间控制
Yuichi Nakahara1,2, Tomoko Kawaguchi2, Yutaka Matsuda3
1Ajinomoto Co., Inc., 1-1 Suzuki-cho, Kawasaki-Ku, Kawasaki 210-8681, Kanagawa, Japan.
Langmuir : the ACS journal of surfaces and colloids
|April 15, 2024
概括
流式微反应器 (FMR) 能够精确控制蛋白质重新折叠的条件,克服聚合问题. 这种新的应用实现了高纯度和克制量生产,推进了生物制药制造.
科学领域:
- 生物技术是生物技术.
- 化学工程是化学工程的重要组成部分.
- 生物制药制造业 生物制药制造业
背景情况:
- 重组蛋白质生产对于生物制药至关重要,通常使用大肠杆菌.
- 传统的蛋白质再折叠方法面临着扩大规模和精确控制的挑战.
- 流式微反应器 (FMR) 技术传统上用于小分子合成.
研究的目的:
- 展示流量微反应器 (FMR) 的新型应用,以控制蛋白质构造变化.
- 为了实现高效的蛋白质重新折叠过程,精确控制反应条件.
- 扩大FMR技术的应用范围,超越小分子合成到蛋白质重新折叠.
主要方法:
- 使用流量微反应器 (FMR) 在蛋白质重新折叠过程中精确控制缓冲器pH和溶剂含量.
- 应用FMR技术来控制毫秒时间尺度上的蛋白质构造变化.
- 作为重新折叠实验的模型蛋白质,采用了介质蛋白-6 .
主要成果:
- 实现了令人印象深刻的96%纯度的重新折叠的互白素-6.
- 使用FMR系统证明了克尺度生产能力.
- 通过反应条件的快速变化,成功绕过重新折叠期间的蛋白质聚合.
结论:
- 流式微反应器 (FMR) 为蛋白质重新折叠提供了一种新,高效和可扩展的方法.
- 该FMR系统提供高通量选功能,以简化扩展.
- 这项技术代表了实验室和工业规模蛋白质生产的重大进步.
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