Universidade da Coruña, Grupo EXPRELA, Centro de Investigacións Científicas Avanzadas (CICA), Departamento de Bioloxía Celular e Molecular, Facultade de Ciencias, A Coruña, Spain.
Universidade da Coruña, Grupo EXPRELA, Centro de Investigacións Científicas Avanzadas (CICA), Departamento de Bioloxía Celular e Molecular, Facultade de Ciencias, A Coruña, Spain.
Biochim Biophys Acta Gene Regul Mech. 2017 Feb;1860(2):256-269. doi: 10.1016/j.bbagrm.2016.11.005. Epub 2016 Nov 19.
Ixr1 is a transcriptional factor involved in the response to hypoxia, which is also related to DNA repair. It binds to DNA through its two in-tandem high mobility group box (HMG-box) domains. Each function depends on recognition of different DNA structures, B-form DNA at specific consensus sequences for transcriptional regulation, or distorted DNA, like cisplatin-DNA adducts, for DNA repair. However, the contribution of the HMG-box domains in the Ixr1 protein to the formation of different protein-DNA complexes is poorly understood. We have biophysically and biochemically characterized these interactions with specific DNA sequences from the promoters regulated by Ixr1, or with cisplatin-DNA adducts. Both HMG-boxes are necessary for transcriptional regulation, and they are not functionally interchangeable. The in-tandem arrangement of their HMG-boxes is necessary for functional folding and causes sequential cooperative binding to specific DNA sequences, with HMG-box A showing a higher contribution to DNA binding and bending than the HMG-box B. Binding of Ixr1 HMG boxes to specific DNA sequences is entropy driven, whereas binding to platinated DNA is enthalpy driven for HMG-box A and entropy driven for HMG-box B. This is the first proof that HMG-box binding to different DNA structures is associated with predictable thermodynamic differences. Based on our study, we present a model to explain the dual function of Ixr1 in the regulation of gene expression and recognition of distorted DNA structures caused by cisplatin treatment.
Ixr1 是一种参与缺氧反应的转录因子,也与 DNA 修复有关。它通过其两个串联的高迁移率族盒(HMG-box)结构域与 DNA 结合。每种功能都依赖于对不同 DNA 结构的识别,B 型 DNA 与特定的转录调节共识序列结合,或与 DNA 修复中的扭曲 DNA(如顺铂-DNA 加合物)结合。然而,HMG-box 结构域在 Ixr1 蛋白中形成不同的蛋白质-DNA 复合物的贡献还知之甚少。我们已经通过与 Ixr1 调节的启动子的特定 DNA 序列或与顺铂-DNA 加合物的生物物理和生物化学特性对这些相互作用进行了表征。两个 HMG-box 对于转录调节都是必需的,并且它们不能在功能上互换。它们的 HMG-box 串联排列对于功能性折叠是必需的,并导致对特定 DNA 序列的顺序协同结合,其中 HMG-box A 对 DNA 结合和弯曲的贡献高于 HMG-box B。Ixr1 HMG 盒与特定 DNA 序列的结合是熵驱动的,而 HMG-box A 与顺铂化 DNA 的结合是焓驱动的,HMG-box B 与顺铂化 DNA 的结合是熵驱动的。这是第一个证明 HMG-box 与不同 DNA 结构的结合与可预测的热力学差异相关的证据。基于我们的研究,我们提出了一个模型来解释 Ixr1 在基因表达调节和识别顺铂治疗引起的扭曲 DNA 结构的双重功能。