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首页> 外文期刊>Biochimica et biophysica acta: BBA: International journal of biochemistry, biophysics and molecular biololgy. Proteins and Proteomics >The conserved N-terminal helix of acylpeptide hydrolase from archaeon Aeropyrum pernix K1 is important for its hyperthermophilic activity.
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The conserved N-terminal helix of acylpeptide hydrolase from archaeon Aeropyrum pernix K1 is important for its hyperthermophilic activity.

机译:来自古细菌Aeropyrum pernix K1的酰基肽水解酶的保守N末端螺旋对其超嗜热活性很重要。

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摘要

The acylpeptide hydrolases from hyperthermophilic archaeon Aeropyrum pernix K1 has a short conserved N-terminal helix in its family. The role of this N-terminal helix in the function of the hyperthermophilic enzyme, however, is unknown. Here, we investigated this question by protein engineering and biophysical methods. We found that a mutant (DeltaN21) with the N-terminal helix deleted is no longer functional at the optimum temperature for WT enzyme (95 degrees C), required for the survival of Aeropyrum pernix K1. Instead, DeltaN21 has the optimum activity at approximately 77 degrees C, with higher activities than the WT enzyme below this temperature. DeltaN21 is less stable than the WT enzyme and started unfolding at approximately 77 degrees C, indicating that the loss of the enzymatic activity of DeltaN21 at higher temperature is due to its low thermodynamic stability. In addition, we found that the salt bridges formed between the N-terminal helix and the catalytic domain of the enzyme play only a minor role in stabilizing the enzyme, suggesting that hydrophobic interactions mainly contribute to the stabilization. Since the N-terminal helix is conserved in this family of enzymes, our results suggest that the N-terminal helix is likely to play an important role for stabilizing all other enzymes in this family.
机译:来自嗜热古细菌Aeropyrum pernix K1的酰肽水解酶在其家族中具有短的保守的N-末端螺旋。然而,尚不清楚该N末端螺旋在超嗜热酶功能中的作用。在这里,我们通过蛋白质工程和生物物理方法研究了这个问题。我们发现删除了N末端螺旋的突变体(DeltaN21)在WT酶的最佳温度(95摄氏度)下不再起作用,这对于Aeropyrum pernix K1的生存是必需的。相反,DeltaN21在约77摄氏度时具有最佳活性,在此温度下,其活性高于野生型WT酶。 DeltaN21不如WT酶稳定,并且在大约77摄氏度开始展开,这表明DeltaN21在较高温度下的酶活性丧失是由于其低的热力学稳定性。此外,我们发现在N末端螺旋和酶的催化结构域之间形成的盐桥在稳定酶方面仅起次要作用,这表明疏水性相互作用主要有助于稳定作用。由于N末端螺旋在该酶家族中是保守的,因此我们的结果表明N末端螺旋可能在稳定该家族的所有其他酶中起重要作用。

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