Literature DB >> 32191786

Entropic effect and residue specific entropic contribution to the cooperativity in streptavidin-biotin binding.

Yalong Cong1, Kaifang Huang, Yuchen Li, Susu Zhong, John Z H Zhang, Lili Duan.   

Abstract

Molecular dynamics (MD) simulations were performed employing the polarized protein-specific charge (PPC) to explore the origin of the cooperativity in streptavidin-biotin systems (wild type, two single mutations and one double-mutation). The results of the experiment found that the existence of cooperativity is mainly the result of the entropic effect. In this study, the entropic contribution to the binding free energy was calculated using the recently developed interaction entropy (IE) method, and computational results are in excellent agreement with the experimental observations and are further verified by the calculation of the thermodynamic integration. Comparison of different force fields in terms of predicted binding strength ordering, cooperativity of energy and the stability of hydrogen bonding suggests that the PPC force field combined IE method is a suitable choice. In addition, the IE method enables us to obtain the residue-specific entropic contributions to the streptavidin-biotin binding affinity and identify ten hot-spot residues providing the dominant contribution to the cooperative binding. Importantly, the overall cooperativity obtained from the ten residues also comes mainly from the entropic effect in our study. The calculation of the potential of mean force shows that the unbinding of streptavidin-biotin is a multi-step process, and each step corresponds to the formation and rupture of the hydrogen bond network. And S45A mutation may increase the rigidity of the linker region, making the flap region relatively difficult to open. The present study provides significant molecular insight into the binding cooperativity of the streptavidin-biotin complex.

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Year:  2020        PMID: 32191786     DOI: 10.1039/c9nr08380d

Source DB:  PubMed          Journal:  Nanoscale        ISSN: 2040-3364            Impact factor:   7.790


  3 in total

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3.  Cooperative allostery and structural dynamics of streptavidin at cryogenic- and ambient-temperature.

Authors:  Esra Ayan; Busra Yuksel; Ebru Destan; Fatma Betul Ertem; Gunseli Yildirim; Meryem Eren; Oleksandr M Yefanov; Anton Barty; Alexandra Tolstikova; Gihan K Ketawala; Sabine Botha; E Han Dao; Brandon Hayes; Mengning Liang; Matthew H Seaberg; Mark S Hunter; Alexander Batyuk; Valerio Mariani; Zhen Su; Frederic Poitevin; Chun Hong Yoon; Christopher Kupitz; Aina Cohen; Tzanko Doukov; Raymond G Sierra; Çağdaş Dağ; Hasan DeMirci
Journal:  Commun Biol       Date:  2022-01-20
  3 in total

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