Adjacent Z-DNA contributes to the formation of homologous DNA triplex
Listed in
This article is not in any list yet, why not save it to one of your lists.Abstract
Whether the homologous parallel triplex (HP-triplex, formed by dsDNA and a homologous ssDNA) acts as an intermediate prior to DNA recombination remains controversy, owing to the intrinsic instability and lake of experimental data. Here, we report a HP-triplex that is stable at least at 35 °C under protein-free conditions. Two complementary circular ssDNAs were first hybridized at a 1:1 ratio to form an LR-chimera containing both Z-DNA and B-DNA. Then the circular homologous ssDNA (T-rich) was found to easily hybridize with this LR-chimera to form the HP-triplex (strand ratio of 2:1), involving both left- and right-handed triplex parts under the topological constraint. The third strand locates in the major groove and forms hydrogen bonds with both bases in each base pair of dsDNA without obvious strand exchange. Our data indicate that the third-strand ssDNA may first bind to the B-DNA region, followed by association with the Z-DNA region to assemble the full triplex structure. Structural simulations and analyses reveal that topological constraint imposed by the circular architecture raises the energy barrier for strand displacement, thereby stabilizing this triplex. In summary, the dynamic HP-triplex can be stabilized via a Z-B junction structure that mimics the in vivo one formed by negative supercoiling. These findings demonstrate that HP-triplex may act as an intermediate for DNA recombination, anti-gene strategy, and other interactions between dsDNA and homologous ssDNA or RNA.