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AtACS7 和 PpACL1 之间的结构域交换导致具有 ACS 或 C-S 裂合酶单一酶活性的嵌合 ACS 样蛋白。

Domain Swapping between AtACS7 and PpACL1 Results in Chimeric ACS-like Proteins with ACS or C-S Lyase Single Enzymatic Activity.

机构信息

College of Life Sciences, College of Agricultural Sciences, Tianjin Key Laboratory of Protein Sciences, Nankai University, Tianjin 300071, China.

State Key Laboratory of Medicinal Chemical Biology, Frontiers Science Center for Cell Responses, College of Life Sciences, Nankai University, Tianjin 300071, China.

出版信息

Int J Mol Sci. 2023 Feb 3;24(3):2956. doi: 10.3390/ijms24032956.

Abstract

The gaseous hormone ethylene plays a pivotal role in plant growth and development. In seed plants, the key rate-limiting enzyme that controls ethylene biosynthesis is ACC synthase (ACS). ACS has, for a long time, been believed to be a single-activity enzyme until we recently discovered that it also possesses C-S lyase (CSL) activity. This discovery raises fundamental questions regarding the biological significance of the dual enzymatic activities of ACS. To address these issues, it is highly necessary to obtain ACS mutants with either ACS or CSL single activity. Here, domain swapping between Arabidopsis AtACS7 and moss CSL PpACL1 were performed. Enzymatic activity assays of the constructed chimeras revealed that, R10, which was produced by replacing AtACS7 box 6 with that of PpACL1, lost ACS but retained CSL activity, whereas R12 generated by box 4 substitution lost CSL and only had ACS activity. The activities of both chimeric proteins were compared with previously obtained single-activity mutants including R6, AtACS7, and AtACS7. All the results provided new insights into the key residues required for ACS and CSL activities of AtACS7 and laid an important foundation for further in-depth study of the biological functions of its dual enzymatic activities.

摘要

气态激素乙烯在植物生长和发育中起着关键作用。在种子植物中,控制乙烯生物合成的关键限速酶是 ACC 合酶(ACS)。长期以来,人们一直认为 ACS 是一种单一活性酶,直到最近我们才发现它还具有 C-S 裂解酶(CSL)活性。这一发现提出了关于 ACS 双重酶活性的生物学意义的基本问题。为了解决这些问题,获得具有 ACS 或 CSL 单一活性的 ACS 突变体是非常必要的。在这里,我们对拟南芥 AtACS7 和苔藓 CSL PpACL1 之间进行了结构域交换。构建嵌合体的酶活性测定表明,通过用 PpACL1 替换 AtACS7 框 6 产生的 R10 失去了 ACS 活性,但保留了 CSL 活性,而通过框 4 替换产生的 R12 失去了 CSL 活性,只具有 ACS 活性。比较了这两种嵌合蛋白与之前获得的包括 R6、AtACS7 和 AtACS7 在内的单一活性突变体的活性。所有结果为 ACS 和 CSL 活性所需的关键残基提供了新的见解,并为进一步深入研究其双重酶活性的生物学功能奠定了重要基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9d11/9917878/6e2062493c52/ijms-24-02956-g001.jpg

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