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Modeling Enzyme Temperature Stability from Sequence Segment Perspective

delete2025-10-01
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PRE
AI
Z
Ziqi Zhang
R
Runze Yang
Z
Zhisheng Wei
W
Wei Zhang
L
Lei Wang
刘展志 cover
刘展志 (Zhanzhi Liu)
F
Fengshan Zhang
吴菁 (Jing Wu)
X
Xiaoyong Pan
H
Hong‐Bin Shen
L
Longbing Cao
Z
Zhaohong Deng *
DOI:10.1021/acs.jcim.5c01674delete
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Abstract

Abstract

En 中文
Developing enzymes with desired thermal properties is crucial for a wide range of industrial and research applications, and determining temperature stability is an essential step in this process. Experimental determination of thermal parameters is labor-intensive, time-consuming, and costly. Moreover, existing computational approaches are often hindered by limited data availability and imbalanced distributions. To address these challenges, we introduce a curated temperature stability data set designed for model development and benchmarking in enzyme thermal modeling. Leveraging this data set, we present the Segment Transformer, a novel deep learning framework that enables efficient and accurate prediction of enzyme temperature stability. The model achieves state-of-the-art performance with RMSE of 23.29, MAE of 17.37, Pearson correlation of 0.35, and Spearman correlation of 0.34, respectively. These results highlight the effectiveness of incorporating segment-level representations, grounded in the biological observation that different regions of a protein sequence contribute unequally to thermal behavior. As a proof of concept, we applied the Segment Transformer to guide the engineering of a cutinase enzyme. Experimental validation demonstrated a 1.64-fold improvement in relative activity following heat treatment, achieved through only 17 mutations and without compromising catalytic function.

Journal

Journal of Chemical Information and Modeling cover
Journal of Chemical Information and Modeling
IF:
5.3
Papers:
9.1K
Citations:
4.0W

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shanghai jiao tong university
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Citations: 159
J
Jiangnan University
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M
macquarie universityy
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1
Papers: 1
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Nantong University
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Papers: 1.1W
Citations: 2.0W
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