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首页> 外文期刊>The FEBS journal >A bacterial acyl aminoacyl peptidase couples flexibility and stability as a result of cold adaptation
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A bacterial acyl aminoacyl peptidase couples flexibility and stability as a result of cold adaptation

机译:由于冷适应,细菌的酰基氨酰基肽酶具有柔韧性和稳定性

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Life in cold environments requires an overall increase in the flexibility of macromolecular and supramolecular structures to allow biological processes to take place at low temperature. Conformational flexibility supports high catalytic rates of enzymes in the cold but in several cases is also a cause of instability. The three-dimensional structure of the psychrophilic acyl aminoacyl peptidase from Sporosarcina psychrophila (SpAAP) reported in this paper highlights adaptive molecular changes resulting in a fine-tuned trade-off between flexibility and stability. In its functional form SpAAP is a dimer, and an increase in flexibility is achieved through loosening of intersubunit hydrophobic interactions. The release of subunits from the quaternary structure is hindered by an 'arm exchange' mechanism, in which a tiny structural element at the N terminus of one subunit inserts into the other subunit. Mutants lacking the 'arm' are monomeric, inactive and highly prone to aggregation. Another feature of SpAAP cold adaptation is the enlargement of the tunnel connecting the exterior of the protein with the active site. Such a wide channel might compensate for the reduced molecular motions occurring in the cold and allow easy and direct access of substratesto the catalytic site, rendering transient movements between domains unnecessary. Thus, cold-adapted SpAAP has developed a molecular strategy unique within this group of proteins: it is able to enhance the flexibility of each functional unit while stillpreserving sufficient stability.
机译:在寒冷环境中的生活要求整体增加大分子和超分子结构的柔韧性,以允许生物过程在低温下发生。构象柔韧性在寒冷时支持酶的高催化速率,但在某些情况下也是不稳定的原因。这篇论文报道的嗜酸性孢子虫嗜酸性酰基氨酰基肽酶的三维结构强调了适应性分子的变化,从而在柔韧性和稳定性之间进行了微调。 SpAAP的功能形式是二聚体,并且通过松散亚基间疏水相互作用实现了灵活性的提高。亚基从四元结构中的释放受到“臂交换”机制的阻碍,在该机制中,一个亚基的N末端的微小结构元素插入了另一个亚基。缺少“臂”的突变体是单体的,无活性的并且极易聚集。 SpAAP冷适应的另一个特征是扩大了连接蛋白质外部与活性位点的通道。如此宽的通道可以补偿在寒冷中发生的分子运动的降低,并允许底物轻松直接地进入催化部位,从而无需在域之间进行瞬时运动。因此,冷适应的SpAAP已经开发出了在这组蛋白质中独特的分子策略:它能够增强每个功能单元的灵活性,同时仍然保持足够的稳定性。

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