同源的基本螺旋-环-螺旋转录因子诱导扭转应力DNA的明显变形:一种潜在的转录调节机制。

Q3 Biochemistry, Genetics and Molecular Biology QRB Discovery Pub Date : 2022-01-01 DOI:10.1017/qrd.2022.5
Johanna Hörberg, Kevin Moreau, Anna Reymer
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引用次数: 0

摘要

改变DNA上的扭转约束对转录调控至关重要。由RNA聚合酶引入的扭转应力可以沿着染色质传播,促进拓扑转变并调节转录因子(tf)与DNA的特异性结合。尽管具有重要意义,但扭转应力如何影响TFs-DNA络合的机制细节仍然很少。在此,我们研究了扭转应力对DNA与同源人碱性螺旋-环-螺旋(BHLH)异二聚体和同源二聚体MycMax、MadMax和MaxMax络合的影响。这三种TF二聚体对相同的DNA共识序列(E-box响应元件)表现出特异性,同时调节不同的转录途径。利用微秒级的原子分子动力学模拟和控制DNA总螺旋扭转的扭转约束,我们逐渐将裸DNA和复杂DNA的逆风和逆风提升到最大±5°/bp的步长。我们观察到BHLH二聚体的结合导致DNA扭转刚度的类似增加。然而,在扭转应力下,BHLH二聚体诱导明显的DNA变形,其特征是DNA凹槽几何形状的变化和显著的不对称DNA弯曲。在生物信息学分析的支持下,我们的数据表明,扭转应力可能通过调节同源tf的协同相互作用来促进其差异转录程序的执行。
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Homologous basic helix-loop-helix transcription factors induce distinct deformations of torsionally-stressed DNA: a potential transcription regulation mechanism.

Changing torsional restraints on DNA is essential for the regulation of transcription. Torsional stress, introduced by RNA polymerase, can propagate along chromatin facilitating topological transitions and modulating the specific binding of transcription factors (TFs) to DNA. Despite the importance, the mechanistic details on how torsional stress impacts the TFs-DNA complexation remain scarce. Herein, we address the impact of torsional stress on DNA complexation with homologous human basic helix-loop-helix (BHLH) hetero- and homodimers: MycMax, MadMax and MaxMax. The three TF dimers exhibit specificity towards the same DNA consensus sequence, the E-box response element, while regulating different transcriptional pathways. Using microseconds-long atomistic molecular dynamics simulations together with the torsional restraint that controls DNA total helical twist, we gradually over- and underwind naked and complexed DNA to a maximum of ± 5°/bp step. We observe that the binding of the BHLH dimers results in a similar increase in DNA torsional rigidity. However, under torsional stress the BHLH dimers induce distinct DNA deformations, characterised by changes in DNA grooves geometry and a significant asymmetric DNA bending. Supported by bioinformatics analyses, our data suggest that torsional stress may contribute to the execution of differential transcriptional programs of the homologous TFs by modulating their collaborative interactions.

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来源期刊
QRB Discovery
QRB Discovery Biochemistry, Genetics and Molecular Biology-Biophysics
CiteScore
3.60
自引率
0.00%
发文量
18
审稿时长
12 weeks
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