Enhancing Cold Adaptation of Bidomain Amylases by High‐Throughput Computational Engineering

N Ning Ding (Key Laboratory of Quantum Materials and Devices of Ministry of Education, School of Physics) Y Yaoyukun Jiang (Department of Chemistry Vanderbilt University Nashville Tennessee 37235 United States) R Robbie Ge (Department of Chemistry Vanderbilt University Nashville Tennessee 37235 United States) Q Qianzhen Shao (State Key Laboratory of Fluorine and Nitrogen Chemistry and Advanced Materials and Shanghai-Hong Kong Joint Laboratory in Chemical Synthesis, Shanghai Institute of Organic Chemistry, University of Chinese Academy of Sciences, Chinese Academy of Sciences, 345 Lingling Road, Shanghai 200032, China) W Wook Shin (Department of Chemistry Vanderbilt University Nashville Tennessee 37235 United States) X Xinchun Ran Z Zhongyue J. Yang (Department of Chemistry, Vanderbilt University)

Abstract

Abstract Cold‐adapted bidomain enzymes have the potential to foster industrial sustainability by reducing energy consumption and greenhouse gas emissions. Despite their allure, these benefits are unattainable, as the molecular basis of cold adaptation remains elusive, and there are no strategies to guide the acquisition of this behavior. To uncover principles of cold adaptation, we selected the cold‐adapted Saccharophagus degradans amylase (sdA) and mesophilic Pseudomonas saccharophila amylase (psA) as model systems. Through molecular dynamics (MD) simulations and biochemical assays, we found that sdA exhibits significantly greater interdomain separation between its catalytic domain (CD) and carbohydrate‐binding module (CBM) at low temperatures. Therefore, we introduce the domain separation index metric to guide the in silico screening of 120 psA variants using high‐throughput enzyme modeling. The highest‐ranked variant, psA121, shows a 3‐fold increase in relative activity over the wild type at 0 °C. MD simulations suggest that psA121 achieves cold adaptation via helical linkers, which induce interdomain separation and enhance flexibility of the active site and binding loops via dynamic allostery, promoting substrate recruitment, binding, and catalysis at lower temperatures. This study highlights how domain separation contributes to cold adaptation in bidomain amylases and offers strategies for introducing such cold adaptation to other systems.

Article Details

Volume / Issue Vol. 64, Issue 29
Published July 14, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

N

Ning Ding

Key Laboratory of Quantum Materials and Devices of Ministry of Education, School of Physics

Y

Yaoyukun Jiang

Department of Chemistry Vanderbilt University Nashville Tennessee 37235 United States

R

Robbie Ge

Department of Chemistry Vanderbilt University Nashville Tennessee 37235 United States

Q

Qianzhen Shao

State Key Laboratory of Fluorine and Nitrogen Chemistry and Advanced Materials and Shanghai-Hong Kong Joint Laboratory in Chemical Synthesis, Shanghai Institute of Organic Chemistry, University of Chinese Academy of Sciences, Chinese Academy of Sciences, 345 Lingling Road, Shanghai 200032, China

W

Wook Shin

Department of Chemistry Vanderbilt University Nashville Tennessee 37235 United States

X

Xinchun Ran

Z

Zhongyue J. Yang

Department of Chemistry, Vanderbilt University