A Computational and Chemical Design Strategy for Manipulating Glycan‐Protein Recognition

Author:

Zhu Qiang1ORCID,Geng Didi1,Li Jingchao1,Zhang Jinqiu1,Sun Haofan2,Fan Zhiya2,He Jiahui1,Hao Ninghui3,Tian Yinping4,Wen Liuqing4,Li Tiehai4,Qin Weijie2,Chu Xiakun5,Wang Yong13,Yi Wen16ORCID

Affiliation:

1. Departments of Biochemistry & Biophysics College of Life Sciences Zhejiang University Hangzhou 310012 China

2. National Center for Protein Sciences Beijing State Key Laboratory of Proteomics Beijing Proteome Research Center Beijing Institute of Lifeomics Beijing 100026 China

3. The Provincial International Science and Technology Cooperation Base on Engineering Biology Shanghai Institute for Advanced Study Institute of Quantitative Biology International Campus of Zhejiang University Haining 314499 China

4. Carbohydrate‐Based Drug Research Center Shanghai Institute of Materia Medica Chinese Academy of Sciences Shanghai 201203 China

5. Advanced Materials Thrust Function Hub The Hong Kong University of Science and Technology Guangzhou 511400 China

6. Cancer Centre Zhejiang University Hangzhou 310012 China

Abstract

AbstractGlycans are complex biomolecules that encode rich information and regulate various biological processes, such as fertilization, host‐pathogen binding, and immune recognition, through interactions with glycan‐binding proteins. A key driving force for glycan‐protein recognition is the interaction between the π electron density of aromatic amino acid side chains and polarized C─H groups of the pyranose (termed the CH–π interaction). However, the relatively weak binding affinity between glycans and proteins has hindered the application of glycan detection and imaging. Here, computational modeling and molecular dynamics simulations are employed to design a chemical strategy that enhances the CH–π interaction between glycans and proteins by genetically incorporating electron‐rich tryptophan derivatives into a lectin PhoSL, which specifically recognizes core fucosylated N‐linked glycans. This significantly enhances the binding affinity of PhoSL with the core fucose ligand and enables sensitive detection and imaging of core fucosylated glycans in vitro and in xenograft tumors in mice. Further, the study showed that this strategy is applicable to improve the binding affinity of GafD lectin for N‐acetylglucosamine‐containing glycans. The approach thus provides a general and effective way to manipulate glycan‐protein recognition for glycoscience applications.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

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