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PMID: 42309610 已发表 · ppublish 英语

Computational and Structure-Guided engineering of colicin E1 and E2 for EMT -driven cadherin selectivity in cancer.

Journal, genetic engineering & biotechnology ·第 24 卷 ·第 2 期 ·2026-06-00

Vimala PB, Vajravelu LK, Panneerselvam VP, Nair DM, Lathakumari RH, Thulukanam J

摘要

Epithelial-mesenchymal transition (EMT) is a fundamental driver of cancer invasion, metastasis, and therapeutic resistance, mediated by dynamic switching between E-cadherin (CDH1) and N-cadherin (CDH2). Although cadherins are central regulators of EMT, current therapeutic strategies rarely exploit EMT-state-specific cadherin dependencies. In this study, we present a structure-driven, EMT-aware computational framework to repurpose and engineer colicins as cadherin-selective anti-metastatic biologics. Pan-cancer transcriptomic profiling across thirty-three tumor types revealed distinct CDH1- and CDH2-dominant EMT landscapes, providing a rational basis for receptor-informed targeting. stereo chemically validated structures of Colicin E1 and Colicin E2 were subjected to stability-guided mutagenesis using FoldX, followed by protein-protein docking and atomistic molecular dynamics simulations with E- and N-cadherin. Docking analyses demonstrated intrinsic cadherin preferences, with Colicin E2 exhibiting stronger affinity for CDH1 and Colicin E1 favouring CDH2, mirroring EMT-associated cadherin switching. Molecular dynamics simulations further confirmed these trends, revealing stable complex formation, reduced backbone deviation, sustained interfacial contacts, and distinct residue-level flexibility profiles in preferred colicin-cadherin pairs. Structure-guided mutations significantly enhanced binding stability and specificity, identifying Colicin E2 mutant A579E as the most optimized variant, characterized by improved docking scores, reduced conformational fluctuations, and persistent E-cadherin engagement throughout simulations. Compared with prior EMT-targeting approaches, this work uniquely integrates transcriptomic context with structure-guided protein engineering to achieve cadherin-state selectivity rather than broad inhibition. Collectively, this study establishes a novel computational paradigm for EMT-state-guided biologic design and provides a predictive foundation for future experimental validation, cadherin-resolved cancer stratification, and translational development of precision anti-metastatic protein therapeutics in diverse solid tumor contexts clinically.

关键词
Cadherin Switching (CDH1/CDH2) Cadherin-Targeted Cancer Therapy Engineered Colicins (E1 and E2) Epithelial–Mesenchymal Transition (EMT) Molecular Docking Molecular Dynamic Simulation Structure-Guided Protein Engineering
文献信息
期刊
Journal, genetic engineering & biotechnology
期刊简称
J Genet Eng Biotechnol
ISSN
2090-5920
发表日期
2026-06-00
语言
英语
国家/地区
Netherlands
NLM ID
101317150
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