Substitution of a Surface-Exposed Residue Involved in an Allosteric Network Enhances Tryptophan Synthase Function in Cells

Author:

D’Amico Rebecca N.,Bosken Yuliana K.,O’Rourke Kathleen F.,Murray Alec M.,Admasu Woudasie,Chang Chia-en A.,Boehr David D.

Abstract

Networks of noncovalent amino acid interactions propagate allosteric signals throughout proteins. Tryptophan synthase (TS) is an allosterically controlled bienzyme in which the indole product of the alpha subunit (αTS) is transferred through a 25 Å hydrophobic tunnel to the active site of the beta subunit (βTS). Previous nuclear magnetic resonance and molecular dynamics simulations identified allosteric networks in αTS important for its function. We show here that substitution of a distant, surface-exposed network residue in αTS enhances tryptophan production, not by activating αTS function, but through dynamically controlling the opening of the indole channel and stimulating βTS activity. While stimulation is modest, the substitution also enhances cell growth in a tryptophan-auxotrophic strain of Escherichia coli compared to complementation with wild-type αTS, emphasizing the biological importance of the network. Surface-exposed networks provide new opportunities in allosteric drug design and protein engineering, and hint at potential information conduits through which the functions of a metabolon or even larger proteome might be coordinated and regulated.

Funder

Division of Molecular and Cellular Biosciences

Publisher

Frontiers Media SA

Subject

Biochemistry, Genetics and Molecular Biology (miscellaneous),Molecular Biology,Biochemistry

Cited by 7 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Rational Engineering of Enzymes for Enhanced Cold Activity;ACS Catalysis;2024-08-06

2. Integrative Structural Biology of Enzyme Active Sites;Integrated Structural Biology;2023-12-08

3. Allostery, engineering and inhibition of tryptophan synthase;Current Opinion in Structural Biology;2023-10

4. Machine learning and protein allostery;Trends in Biochemical Sciences;2023-04

5. Allosteric regulation of substrate channeling: Salmonella typhimurium tryptophan synthase;Frontiers in Molecular Biosciences;2022-09-12

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