Kimball A, Guo Q, Lu M, Cunningham R P, Kallenbach N R, Seeman N C, Tullius T D
Department of Chemistry, Johns Hopkins University, Baltimore, Maryland 21218.
J Biol Chem. 1990 Apr 25;265(12):6544-7.
The Holliday junction is a four-stranded DNA intermediate that arises during recombination reactions. We have designed and constructed a set of Holliday junction analogs that model each of the ideal conformations available to a 2-fold symmetric four-arm junction. The strategy used is to connect two arms of a junction molecule with a short tether of thymidines. These DNA molecules share a common core sequence but have different arms that are connected so that each molecule is constrained in either an antiparallel or a parallel structure. For tethered antiparallel molecules the identity of the crossover strands is determined by which arms are connected. Different arm connections gave molecules representing each of the two antiparallel crossover isomers. Two parallel molecules that differ in the length and position of the tether exhibit opposite biases in their choice of crossover strands. Thus, a physical constraint applied at a distance from the branch point can determine the conformation of a junction.
霍利迪连接体是一种在重组反应过程中出现的四链DNA中间体。我们设计并构建了一组霍利迪连接体类似物,它们模拟了一个2倍对称四臂连接体可能具有的每种理想构象。所采用的策略是用一段短的胸腺嘧啶连接体连接连接体分子的两条臂。这些DNA分子共享一个共同的核心序列,但具有不同的连接臂,使得每个分子被限制为反平行或平行结构。对于连接的反平行分子,交叉链的身份由连接的臂决定。不同的臂连接产生了代表两种反平行交叉异构体中每一种的分子。两种连接体长度和位置不同的平行分子在交叉链的选择上表现出相反的偏向性。因此,在距分支点一定距离处施加的物理限制可以决定连接体的构象。