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PMID: 25650239 已发表 · epublish 英语

Characterization of monobody scaffold interactions with ligand via force spectroscopy and steered molecular dynamics.

Scientific reports ·第 5 卷 ·2015-11-25

Cheung Luthur Siu-Lun, Shea Daniel J, Nicholes Nathan, Date Amol, Ostermeier Marc, Konstantopoulos Konstantinos

摘要

Monobodies are antibody alternatives derived from fibronectin that are thermodynamically stable, small in size, and can be produced in bacterial systems. Monobodies have been engineered to bind a wide variety of target proteins with high affinity and specificity. Using alanine-scanning mutagenesis simulations, we identified two scaffold residues that are critical to the binding interaction between the monobody YS1 and its ligand, maltose-binding protein (MBP). Steered molecular dynamics (SMD) simulations predicted that the E47A and R33A mutations in the YS1 scaffold substantially destabilize the YS1-MBP interface by reducing the bond rupture force and the lifetime of single hydrogen bonds. SMD simulations further indicated that the R33A mutation weakens the hydrogen binding between all scaffold residues and MBP and not just between R33 and MBP. We validated the simulation data and characterized the effects of mutations on YS1-MBP binding by using single-molecule force spectroscopy and surface plasmon resonance. We propose that interfacial stability resulting from R33 of YS1 stacking with R344 of MBP synergistically stabilizes both its own bond and the interacting scaffold residues of YS1. Our integrated approach improves our understanding of the monobody scaffold interactions with a target, thus providing guidance for the improved engineering of monobodies.

文献信息
期刊
Scientific reports
期刊简称
Sci Rep
发表日期
2015-11-25
收录日期
2015-02-04
更新日期
2015-02-12
语言
英语
国家/地区
England
NLM ID
101563288
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