Forties Robert A, Bundschuh Ralf, Poirier Michael G
Department of Physics, The Ohio State University, 191 West Woodruff Avenue, Columbus, OH 43210-1117, USA.
Nucleic Acids Res. 2009 Aug;37(14):4580-6. doi: 10.1093/nar/gkp442. Epub 2009 May 31.
Protein-bound duplex DNA is often bent or kinked. Yet, quantification of intrinsic DNA bending that might lead to such protein interactions remains enigmatic. DNA cyclization experiments have indicated that DNA may form sharp bends more easily than predicted by the established worm-like chain (WLC) model. One proposed explanation suggests that local melting of a few base pairs introduces flexible hinges. We have expanded this model to incorporate sequence and temperature dependence of the local melting, and tested it for three sequences at temperatures from 23 degrees C to 42 degrees C. We find that small melted bubbles are significantly more flexible than double-stranded DNA and can alter DNA flexibility at physiological temperatures. However, these bubbles are not flexible enough to explain the recently observed very sharp bends in DNA.
与蛋白质结合的双链DNA常常会发生弯曲或扭结。然而,对于可能导致此类蛋白质相互作用的内在DNA弯曲的量化仍不明确。DNA环化实验表明,DNA可能比既定的蠕虫状链(WLC)模型预测的更容易形成急剧弯曲。一种提出的解释认为,少数碱基对的局部解链会引入柔性铰链。我们扩展了这个模型,以纳入局部解链的序列和温度依赖性,并在23摄氏度至42摄氏度的温度范围内对三个序列进行了测试。我们发现,小的解链泡比双链DNA的柔韧性显著更高,并且可以在生理温度下改变DNA的柔韧性。然而,这些泡的柔韧性还不足以解释最近在DNA中观察到的非常急剧的弯曲。