Howard P Isermann Department of Chemical and Biological Engineering, Center for Biotechnology and Interdisciplinary Studies, Rensselaer Polytechnic Institute, Troy, New York.
Department of Chemistry, State University of New York, Albany, New York.
Biotechnol Bioeng. 2019 Apr;116(4):709-721. doi: 10.1002/bit.26875. Epub 2019 Jan 8.
We have engineered an intein which spontaneously and reversibly forms a thiazoline ring at the native N-terminal Lys-Cys splice junction. We identified conditions to stablize the thiazoline ring and provided the first crystallographic evidence, at 1.54 Å resolution, for its existence at an intein active site. The finding bolsters evidence for a tetrahedral oxythiazolidine splicing intermediate. In addition, the pivotal mutation maps to a highly conserved B-block threonine, which is now seen to play a causative role not only in ground-state destabilization of the scissile N-terminal peptide bond, but also in steering the tetrahedral intermediate toward thioester formation, giving new insight into the splicing mechanism. We demonstrated the stability of the thiazoline ring at neutral pH as well as sensitivity to hydrolytic ring opening under acidic conditions. A pH cycling strategy to control N-terminal cleavage is proposed, which may be of interest for biotechnological applications requiring a splicing activity switch, such as for protein recovery in bioprocessing.
我们设计了一种内含肽,它在天然的 N 端 Lys-Cys 剪接连接处自发且可逆地形成噻唑啉环。我们确定了稳定噻唑啉环的条件,并提供了其在内含肽活性部位存在的首个晶体学证据(分辨率为 1.54Å)。这一发现为四面体氧噻唑啉类剪接中间体提供了有力的证据。此外,关键突变映射到高度保守的 B 块苏氨酸,现在不仅被认为在裂解 N 端肽键的基态失稳中起因果作用,而且还在引导四面体中间体向硫酯形成方向发展,为剪接机制提供了新的见解。我们证明了在中性 pH 下噻唑啉环的稳定性以及在酸性条件下对水解开环的敏感性。提出了一种 pH 循环策略来控制 N 端切割,这可能对需要剪接活性开关的生物技术应用(例如生物加工中的蛋白质回收)感兴趣。