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Separate and Combined Biochemical Activities of the Subunits of a Naturally Split Reverse Gyrase

机译:自然分裂的反向旋回酶亚基的单独和组合的生化活性。

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摘要

Reverse gyrase reanneals denatured DNA and induces positive supercoils in DNA, an activity that is critical for life at very high temperatures. Positive supercoiling occurs by a poorly understood mechanism involving the coordination of a topoisomerase domain and a helicase-like domain. In the parasitic archaeon Nanoarchaeum equitans, these domains occur as separate subunits. We express the subunits, and characterize them both in isolation and as a heterodimer. Each subunit tightly associates and interacts with the other. The topoisomerase subunit enhances the catalytic specificity of the DNA-dependent ATPase activity of the helicase-like subunit, and the helicase-like subunit inhibits the relaxation activity of the topoisomerase subunit while promoting positive supercoiling. DNA binding preference for both single- and double-stranded DNA is partitioned between the subunits. Based on a sensitive topological shift assay, the binding preference of helicase-like subunit for underwound DNA is modulated by its binding with ATP cofactor. These results provide new insight into the mechanism of positive supercoil induction by reverse gyrase.
机译:反向旋转酶使变性的DNA重新退火,并在DNA中诱导阳性超螺旋,这种活性对于在高温下的生命至关重要。通过对拓扑异构酶结构域和解旋酶样结构域的协调了解甚少的机制来产生正超螺旋。在寄生古细菌Nanoarchaeum equitans中,这些域以独立的亚基形式出现。我们表达这些亚基,并以孤立和异二聚体的形式对其进行表征。每个亚基紧密结合并彼此相互作用。拓扑异构酶亚基增强了解旋酶样亚基的DNA依赖性ATP酶活性的催化特异性,而解旋酶样亚基抑制了拓扑异构酶亚基的松弛活性,同时促进了正超螺旋。单链和双链DNA的DNA结合偏好在亚基之间分配。基于敏感的拓扑位移分析,解旋酶样亚基对未包绕DNA的结合偏好是通过其与ATP辅因子的结合来调节的。这些结果提供了新的洞察力,通过反向回旋酶诱导超螺旋的积极机制。

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