Prakinee Kridsadakorn, Phaisan Suppalak, Kongjaroon Sirus, Chaiyen Pimchai
School of Biomolecular Science and Engineering, Vidyasirimedhi Institute of Science and Technology (VISTEC), Wangchan Valley, Rayong 21210, Thailand.
JACS Au. 2024 Oct 25;4(12):4571-4591. doi: 10.1021/jacsau.4c00653. eCollection 2024 Dec 23.
Biocatalysis has emerged as a green approach for efficient and sustainable production in various industries. In recent decades, numerous advancements in computational and predictive approaches, including ancestral sequence reconstruction (ASR) have sparked a new wave for protein engineers to improve and expand biocatalyst capabilities. ASR is an evolution-based strategy that uses phylogenetic relationships among homologous extant sequences to probabilistically infer the most likely ancestral sequences. It has proven to be a powerful tool with applications ranging from creating highly stable enzymes for direct applications to preparing moderately active robust protein scaffolds for further enzyme engineering. Intriguingly, it can also provide insights into fundamental aspects that are challenging to study with extant (current) enzymes. This Perspective discusses a practical strategy for guiding enzyme engineers on how to embrace ASR as a practical or associated protocol for protein engineering and highlights recent examples of using ASR in various applications, including increasing thermostability, expanding promiscuity, fine-tuning selectivity and function, and investigating mechanistic and evolution aspects. We believe that the use of the ASR approach will continue to contribute to the ongoing development of the biocatalysis field. We have been in a "golden era" for biocatalysis in which numerous useful enzymes have been developed through many waves of enzyme engineering via advancements in computational methodologies.
生物催化已成为各行业高效、可持续生产的绿色方法。近几十年来,包括祖先序列重建(ASR)在内的计算和预测方法取得了众多进展,引发了蛋白质工程师提高和扩展生物催化剂能力的新一波热潮。ASR是一种基于进化的策略,它利用同源现存序列之间的系统发育关系来概率性地推断最可能的祖先序列。事实证明,它是一种强大的工具,其应用范围从创建可直接应用的高度稳定的酶到制备用于进一步酶工程的中等活性的稳健蛋白质支架。有趣的是,它还可以为用现存(当前)酶难以研究的基本方面提供见解。本观点讨论了一种实用策略,指导酶工程师如何将ASR作为蛋白质工程的实用或相关方案,并重点介绍了ASR在各种应用中的最新实例,包括提高热稳定性、扩大混杂性、微调选择性和功能,以及研究机制和进化方面。我们相信,ASR方法的使用将继续推动生物催化领域的持续发展。我们正处于生物催化的“黄金时代”,通过计算方法的进步,经过多轮酶工程开发出了众多有用的酶。