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A combination of mutational and computational scanning guides the design of an artificial ligand-binding controlled lipase

机译:突变和计算扫描的结合指导了人工配体结合控制脂肪酶的设计

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摘要

Allostery, i.e. the control of enzyme activity by a small molecule at a location distant from the enzyme’s active site, represents a mechanism essential for sustaining life. The rational design of allostery is a non-trivial task but can be achieved by fusion of a sensory domain, which responds to environmental stimuli with a change in its structure. Hereby, the site of domain fusion is difficult to predict. We here explore the possibility to rationally engineer allostery into the naturally not allosterically regulated Bacillus subtilis lipase A, by fusion of the citrate-binding sensor-domain of the CitA sensory-kinase of Klebsiella pneumoniae. The site of domain fusion was rationally determined based on whole-protein site-saturation mutagenesis data, complemented by computational evolutionary-coupling analyses. Functional assays, combined with biochemical and biophysical studies suggest a mechanism for control, similar but distinct to the one of the parent CitA protein, with citrate acting as an indirect modulator of Triton-X100 inhibition of the fusion protein. Our study demonstrates that the introduction of ligand-dependent regulatory control by domain fusion is surprisingly facile, suggesting that the catalytic mechanism of some enzymes may be evolutionary optimized in a way that it can easily be perturbed by small conformational changes.
机译:变构,即小分子在远离酶活性部位的位置控制酶活性,代表维持生命所必需的机制。变构的合理设计是一项艰巨的任务,但可以通过融合感觉域来实现,该感觉域通过改变其结构来响应环境刺激。因此,域融合的位点难以预测。我们在这里探索通过融合肺炎克雷伯氏菌CitA感觉激酶的柠檬酸盐结合传感器结构域,合理地将变构物合理地工程化为自然的非变构调节的枯草芽孢杆菌脂肪酶A的可能性。根据全蛋白位点饱和诱变数据,合理地确定域融合位点,并辅以计算进化耦合分析。功能测定与生化和生物物理研究相结合,提出了一种控制机制,与母体CitA蛋白类似但不同,柠檬酸盐充当Triton-X100抑制融合蛋白的间接调节剂。我们的研究表明,通过结构域融合引入配体依赖性调节控制非常容易,这表明某些酶的催化机制可能经过进化优化,以使其容易受到微小构象变化的干扰。

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