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费氏弧菌LuxR变体对信号敏感性和特异性的建模分析

Modeling Analysis of Signal Sensitivity and Specificity by Vibrio fischeri LuxR Variants.

作者信息

Colton Deanna M, Stabb Eric V, Hagen Stephen J

机构信息

Department of Microbiology, University of Georgia, Athens, GA, United States of America.

Physics Department, University of Florida, Gainesville, FL, United States of America.

出版信息

PLoS One. 2015 May 11;10(5):e0126474. doi: 10.1371/journal.pone.0126474. eCollection 2015.

Abstract

The LuxR protein of the bacterium Vibrio fischeri belongs to a family of transcriptional activators that underlie pheromone-mediated signaling by responding to acyl-homoserine lactones (-HSLs) or related molecules. V. fischeri produces two acyl-HSLs, N-3-oxo-hexanoyl-HSL (3OC6-HSL) and N-octanoyl-HSL (C8-HSL), each of which interact with LuxR to facilitate its binding to a "lux box" DNA sequence, thereby enabling LuxR to activate transcription of the lux operon responsible for bioluminescence. We have investigated the HSL sensitivity of four different variants of V. fischeri LuxR: two derived from wild-type strains ES114 and MJ1, and two derivatives of LuxRMJ1 generated by directed evolution. For each LuxR variant, we measured the bioluminescence induced by combinations of C8-HSL and 3OC6-HSL. We fit these data to a model in which the two HSLs compete with each other to form multimeric LuxR complexes that directly interact with lux to activate bioluminescence. The model reproduces the observed effects of HSL combinations on the bioluminescence responses directed by LuxR variants, including competition and non-monotonic responses to C8-HSL and 3OC6-HSL. The analysis yields robust estimates for the underlying dissociation constants and cooperativities (Hill coefficients) of the LuxR-HSL complexes and their affinities for the lux box. It also reveals significant differences in the affinities of LuxRMJ1 and LuxRES114 for 3OC6-HSL. Further, LuxRMJ1 and LuxRES114 differed sharply from LuxRs retrieved by directed evolution in the cooperativity of LuxR-HSL complex formation and the affinity of these complexes for lux. These results show how computational modeling of in vivo experimental data can provide insight into the mechanistic consequences of directed evolution.

摘要

费氏弧菌的LuxR蛋白属于转录激活因子家族,该家族通过对酰基高丝氨酸内酯(AHLs)或相关分子作出反应,构成信息素介导的信号传导基础。费氏弧菌产生两种AHLs,N-3-氧代己酰高丝氨酸内酯(3OC6-HSL)和N-辛酰高丝氨酸内酯(C8-HSL),它们各自与LuxR相互作用,促进LuxR与“lux框”DNA序列的结合,从而使LuxR能够激活负责生物发光的lux操纵子的转录。我们研究了费氏弧菌LuxR的四种不同变体对AHL的敏感性:两种源自野生型菌株ES114和MJ1,另外两种是通过定向进化产生的LuxRMJ1衍生物。对于每种LuxR变体,我们测量了C8-HSL和3OC6-HSL组合诱导的生物发光。我们将这些数据拟合到一个模型中,在该模型中,两种AHL相互竞争形成多聚体LuxR复合物,该复合物直接与lux相互作用以激活生物发光。该模型再现了观察到的AHL组合对LuxR变体介导的生物发光反应的影响,包括对C8-HSL和3OC6-HSL的竞争和非单调反应。该分析得出了LuxR-AHL复合物的潜在解离常数和协同性(希尔系数)及其对lux框的亲和力的可靠估计值。它还揭示了LuxRMJ1和LuxRES114对3OC6-HSL的亲和力存在显著差异。此外,LuxRMJ1和LuxRES114在LuxR-AHL复合物形成的协同性以及这些复合物对lux的亲和力方面与通过定向进化获得的LuxR有很大不同。这些结果表明,体内实验数据的计算建模如何能够深入了解定向进化的机制后果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4908/4427320/1546f0b4fe25/pone.0126474.g001.jpg

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