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两种具有高生物技术应用潜力的过氧化物酶的比较——辣根过氧化物酶APEX2

Comparison of two peroxidases with high potential for biotechnology applications - HRP APEX2.

作者信息

Škulj Sanja, Kožić Matej, Barišić Antun, Vega Aitor, Biarnés Xevi, Piantanida Ivo, Barisic Ivan, Bertoša Branimir

机构信息

Department of Chemistry, Faculty of Science, University of Zagreb, Horvatovac 102a, Zagreb HR-10000, Croatia.

Institute of Physiology, Pathophysiology and Biophysics, Department of Biomedical Sciences, University of Veterinary Medicine Vienna, 1210 Vienna, Austria.

出版信息

Comput Struct Biotechnol J. 2024 Jan 12;23:742-751. doi: 10.1016/j.csbj.2024.01.001. eCollection 2024 Dec.

Abstract

Peroxidases are essential elements in many biotechnological applications. An especially interesting concept involves split enzymes, where the enzyme is separated into two smaller and inactive proteins that can dimerize into a fully active enzyme. Such split forms were developed for the horseradish peroxidase (HRP) and ascorbate peroxidase (APX) already. Both peroxidases have a high potential for biotechnology applications. In the present study, we performed biophysical comparisons of these two peroxidases and their split analogues. The active site availability is similar for all four structures. The split enzymes are comparable in stability with their native analogues, meaning that they can be used for further biotechnology applications. Also, the tertiary structures of the two peroxidases are similar. However, differences that might help in choosing one system over another for biotechnology applications were noticed. The main difference between the two systems is glycosylation which is not present in the case of APX/sAPEX2, while it has a high impact on the HRP/sHRP stability. Further differences are calcium ions and cysteine bridges that are present only in the case of HRP/sHRP. Finally, computational results identified sAPEX2 as the systems with the smallest structural variations during molecular dynamics simulations showing its dominant stability comparing to other simulated proteins. Taken all together, the sAPEX2 system has a high potential for biotechnological applications due to the lack of glycans and cysteines, as well as due to high stability.

摘要

过氧化物酶是许多生物技术应用中的关键要素。一个特别有趣的概念涉及分裂酶,即酶被分离成两个较小的无活性蛋白质,它们可以二聚化形成一个完全有活性的酶。这种分裂形式已经在辣根过氧化物酶(HRP)和抗坏血酸过氧化物酶(APX)中得到开发。这两种过氧化物酶在生物技术应用方面都具有很高的潜力。在本研究中,我们对这两种过氧化物酶及其分裂类似物进行了生物物理比较。所有四种结构的活性位点可用性相似。分裂酶与其天然类似物在稳定性方面相当,这意味着它们可用于进一步的生物技术应用。此外,这两种过氧化物酶的三级结构相似。然而,我们注意到了一些可能有助于在生物技术应用中选择一种系统而非另一种系统的差异。这两个系统的主要区别在于糖基化,在APX/sAPEX2的情况下不存在糖基化,而它对HRP/sHRP的稳定性有很大影响。进一步的差异是钙离子和半胱氨酸桥,它们仅在HRP/sHRP的情况下存在。最后,计算结果确定sAPEX2是在分子动力学模拟中结构变化最小的系统,与其他模拟蛋白质相比显示出其显著的稳定性。综上所述,由于缺乏聚糖和半胱氨酸以及具有高稳定性,sAPEX2系统在生物技术应用方面具有很高的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2cc9/10828542/a375d1de98ba/ga1.jpg

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