Hydrophobic residues in S1 modulate enzymatic function and voltage sensing in voltage-sensing phosphatase

Author:

Rayaprolu Vamseedhar1ORCID,Miettinen Heini M.1ORCID,Baker William D.1ORCID,Young Victoria C.2ORCID,Fisher Matthew1ORCID,Mueller Gwendolyn1ORCID,Rankin William O.1ORCID,Kelley John T.1ORCID,Ratzan William J.1ORCID,Leong Lee Min3ORCID,Davisson Joshua A.1ORCID,Baker Bradley J.3ORCID,Kohout Susy C.2ORCID

Affiliation:

1. Montana State University 1 Department of Cell Biology and Neuroscience, Department of Microbiology and Cell Biology, , Bozeman, MT, USA

2. Cooper Medical School of Rowan University 2 Department of Biomedical Sciences, , Camden, NJ, USA

3. KIST School, Brain Science Institute, Korea Institute of Science and Technology (KIST), Korea University of Science and Technology (UST) 3 Division of Bio-Medical Science and Technology, , Seoul, South Korea

Abstract

The voltage-sensing domain (VSD) is a four-helix modular protein domain that converts electrical signals into conformational changes, leading to open pores and active enzymes. In most voltage-sensing proteins, the VSDs do not interact with one another, and the S1–S3 helices are considered mainly scaffolding, except in the voltage-sensing phosphatase (VSP) and the proton channel (Hv). To investigate its contribution to VSP function, we mutated four hydrophobic amino acids in S1 to alanine (F127, I131, I134, and L137), individually or in combination. Most of these mutations shifted the voltage dependence of activity to higher voltages; however, not all substrate reactions were the same. The kinetics of enzymatic activity were also altered, with some mutations significantly slowing down dephosphorylation. The voltage dependence of VSD motions was consistently shifted to lower voltages and indicated a second voltage-dependent motion. Additionally, none of the mutations broke the VSP dimer, indicating that the S1 impact could stem from intra- and/or intersubunit interactions. Lastly, when the same mutations were introduced into a genetically encoded voltage indicator, they dramatically altered the optical readings, making some of the kinetics faster and shifting the voltage dependence. These results indicate that the S1 helix in VSP plays a critical role in tuning the enzyme’s conformational response to membrane potential transients and influencing the function of the VSD.

Funder

National Institute of General Medical Science

National Institutes of Health

National Science Foundation

Korea Institute of Science and Technology

Publisher

Rockefeller University Press

Cited by 1 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. The S1 helix is a VIP in VSP;Journal of General Physiology;2024-06-11

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