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DNA力场的C-B-A测试

C-B-A Test of DNA Force Fields.

作者信息

Strelnikov Ivan A, Kovaleva Natalya A, Klinov Artem P, Zubova Elena A

机构信息

N.N. Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences, 4 Kosygin Street, Moscow 119991, Russia.

出版信息

ACS Omega. 2023 Mar 6;8(11):10253-10265. doi: 10.1021/acsomega.2c07781. eCollection 2023 Mar 21.

Abstract

The DNA duplex may be locally strongly bent in complexes with proteins, for example, with polymerases or in a nucleosome. At such bends, the DNA helix is locally in the noncanonical forms A (with a narrow major groove and a large amount of north sugars) or C (with a narrow minor groove and a large share of BII phosphates). To model the formation of such complexes by molecular dynamics methods, the force field is required to reproduce these conformational transitions for a naked DNA. We analyzed the available experimental data on the B-C and B-A transitions under the conditions easily implemented in modeling: in an aqueous NaCl solution. We selected six DNA duplexes which conformations at different salt concentrations are known reliably enough. At low salt concentrations, poly(GC) and poly(A) are in the B-form, classical and slightly shifted to the A-form, respectively. The duplexes ATAT and GGTATACC have a strong and salt concentration dependent bias toward the A-form. The polymers poly(AC) and poly(G) take the C- and A-forms, respectively, at high salt concentrations. The reproduction of the behavior of these oligomers can serve as a test for the balance of interactions between the base stacking and the conformational flexibility of the sugar-phosphate backbone in a DNA force field. We tested the AMBER bsc1 and CHARMM36 force fields and their hybrids, and we failed to reproduce the experiment. In all the force fields, the salt concentration dependence is very weak. The known B-philicity of the AMBER force field proved to result from the B-philicity of its excessively strong base stacking. In the CHARMM force field, the B-form is a result of a fragile balance between the A-philic base stacking (especially for G:C pairs) and the C-philic backbone. Finally, we analyzed some recent simulations of the LacI-, SOX-4-, and Sac7d-DNA complex formation in the framework of the AMBER force field.

摘要

在与蛋白质(例如与聚合酶)形成的复合物中,或者在核小体中,DNA双链可能会局部强烈弯曲。在这种弯曲处,DNA螺旋局部处于非经典形式A(具有狭窄的大沟和大量的北糖)或C(具有狭窄的小沟和大量的BII磷酸盐)。为了通过分子动力学方法模拟此类复合物的形成,需要力场来重现裸DNA的这些构象转变。我们分析了在建模中易于实现的条件下(即在NaCl水溶液中)关于B - C和B - A转变的现有实验数据。我们选择了六个DNA双链,其在不同盐浓度下的构象已足够可靠地得知。在低盐浓度下,聚(GC)和聚(A)分别处于B型,经典的B型并略微向A型转变。双链体ATAT和GGTATACC对A型有强烈的且依赖盐浓度的偏向。聚合物聚(AC)和聚(G)在高盐浓度下分别呈现C型和A型。这些寡聚物行为的重现可作为对DNA力场中碱基堆积与糖 - 磷酸主链构象灵活性之间相互作用平衡的一种测试。我们测试了AMBER bsc1和CHARMM36力场及其混合场,但未能重现实验结果。在所有力场中,盐浓度依赖性都非常弱。已知AMBER力场的亲B性是由其过强的碱基堆积的亲B性导致的。在CHARMM力场中,B型是亲A碱基堆积(特别是对于G:C对)和亲C主链之间脆弱平衡的结果。最后,我们在AMBER力场框架内分析了一些最近关于LacI -、SOX - 4 - 和Sac7d - DNA复合物形成的模拟。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4e01/10034787/78d40aff30fc/ao2c07781_0001.jpg

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