Computationally guided cross-linking overcomes interfacial mismatch in protein dimerization: Creating a long-acting cocaine esterase
Xingyu Deng, Zhiguo Wang, Yuxin Hou, Nuo Xu, Zhenzhen Li, Qi Hu, Nan Mo, Ziying Ren, Cong Chen, Shurong Hou, Xiabin Chen, Lei Ma
Journal:INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES
IF:8.7
DOI:10.1016/j.ijbiomac.2026.153384
PMID:
Published:2026-07-06
research field:酶疗法生物药剂学计算化学蛋白质工程结构生物学分子药理学
Abstract
MD-guided topology-matching strategy using BMOE stabilizes CocE dimers. • Site-specific cross-linking at C196/C301 yields homogeneous CocE-HD. • CocE-HD shows enhanced stability (Tm +10 °C; 3.6-fold longer half-life). • CocE-HD maintains rapid cocaine clearance >2 h post-administration in rats. • A generalizable strategy for stabilizing therapeutic protein candidates Engineering intermolecular disulfide bonds to stabilize protein dimers is a conventional strategy, yet its efficacy is frequently constrained by the topological mismatch between rigid disulfide linkages (~2.0 Å) and the dynamic fluctuations of protein interfaces. This structural rigidity often leads to incomplete dimerization, conformational strain, and suboptimal in vivo persistence, as exemplified by the engineered cocaine esterase (CocE) mutant E196-301. In response to this challenge, we propose a computationally guided, topologically adaptive cross-linking strategy that harnesses the dynamic conformational ensemble of protein interfaces. Firstly, utilizing molecular dynamics simulation, we mapped the interfacial plasticity of the CocE subunit, identifying a converged C196–C301 distance of ~9.10 Å. Rather than relying on static structural approximations, we rationally matched this spatial requirement with a specific bifunctional cross-linker, bis-maleimidoethane (BMOE, 8.06 Å), achieving a robust interfacial bridge that accommodates natural structural fluctuations was achieved. Next, the off-target surface cysteines (C107S and C551S) were strategically ablated, yielding a precisely controlled, site-specific homodimer of CocE (CocE-HD). CocE-HD exhibited significant improvements in thermal, chemical, and serum stability relative to the monomer. In a rat model, CocE-HD (10 mg/kg) demonstrated a plasma half-life of 103.94 ± 43.62 min, representing a 3.6-fold extension compared to the monomer. Functional assays confirmed that CocE-HD maintains rapid cocaine clearance even 2 h post-administration, compl
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