Culyba Matthew J, Hwang Young, Minkah Nana, Bushman Frederic D
Department of Microbiology, University of Pennsylvania School of Medicine, Philadelphia, Pennsylvania 19104, USA.
J Biol Chem. 2009 Jan 9;284(2):1190-201. doi: 10.1074/jbc.M807864200. Epub 2008 Nov 12.
The first steps of poxvirus DNA synthesis yield concatemeric arrays of covalently linked genomes. The virus-encoded Holliday junction resolvase is required to process concatemers into unit-length genomes for packaging. Previous studies of the vaccinia virus resolvase have been problematic due to poor protein solubility. We found that fowlpox virus resolvase was much more tractable. Fowlpox resolvase formed complexes with a variety of branched DNA substrates, but not linear DNA, and had the highest affinity for a Holliday junction substrate, illustrating a previously unappreciated affinity for Holliday junctions over other substrates. The cleavage activity was monitored in fixed time assays, showing that, as with vaccinia resolvase, the fowlpox enzyme could cleave a wide array of branched DNA substrates. Single turnover kinetic analysis revealed the Holliday junction substrate was cleaved 90-fold faster than a splayed duplex substrate containing a single to double strand transition. Multiple turnover kinetic analysis, however, showed that the cleavage step was not limiting for the full reaction cycle. Cleavage by resolvase was also tightly coupled at symmetrical positions across the junction, and coupling required the complete Holliday junction structure. Last, we found that cleavage of an extruded cruciform yielded a product, which after treatment with ligase, had the properties expected for covalently closed DNA hairpin ends, as is seen for poxvirus genome monomers. These findings provide a tractable poxvirus resolvase usable for the development of small molecule inhibitors.
痘病毒DNA合成的最初步骤会产生共价连接基因组的串联阵列。病毒编码的Holliday连接体解离酶是将串联体加工成单位长度基因组以进行包装所必需的。由于蛋白质溶解性差,以前对痘苗病毒解离酶的研究存在问题。我们发现禽痘病毒解离酶更易于处理。禽痘病毒解离酶与多种分支DNA底物形成复合物,但不与线性DNA形成复合物,并且对Holliday连接体底物具有最高亲和力,这表明其对Holliday连接体的亲和力高于其他底物,这一点此前未被重视。在固定时间测定中监测切割活性,结果表明,与痘苗病毒解离酶一样,禽痘病毒酶可以切割多种分支DNA底物。单周转动力学分析表明,Holliday连接体底物的切割速度比含有单链到双链转变的展开双链底物快90倍。然而,多周转动力学分析表明,切割步骤对整个反应周期没有限制。解离酶的切割在连接体的对称位置也紧密偶联,并且偶联需要完整的Holliday连接体结构。最后,我们发现挤压十字形的切割产生了一种产物,用连接酶处理后,该产物具有共价闭合DNA发夹末端预期的特性,正如痘病毒基因组单体所见。这些发现提供了一种易于处理的痘病毒解离酶,可用于开发小分子抑制剂。