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IRX4 同源结构域蛋白-DNA 复合物的动力学和识别。

Dynamics and recognition of homeodomain containing protein-DNA complex of IRX4.

机构信息

School of Biomedical Sciences, Faculty of Health, Queensland University of Technology, Brisbane, Queensland, Australia.

Translational Research Institute, Woolloongabba, Queensland, Australia.

出版信息

Proteins. 2024 Feb;92(2):282-301. doi: 10.1002/prot.26604. Epub 2023 Oct 20.

Abstract

Iroquois Homeobox 4 (IRX4) belongs to a family of homeobox TFs having roles in embryogenesis, cell specification, and organ development. Recently, large scale genome-wide association studies and epigenetic studies have highlighted the role of IRX4 and its associated variants in prostate cancer. No studies have investigated and characterized the structural aspect of the IRX4 homeodomain and its potential to bind to DNA. The current study uses sequence analysis, homology modeling, and molecular dynamics simulations to explore IRX4 homeodomain-DNA recognition mechanisms and the role of somatic mutations affecting these interactions. Using publicly available databases, gene expression of IRX4 was found in different tissues, including prostate, heart, skin, vagina, and the protein expression was found in cancer cell lines (HCT166, HEK293), B cells, ascitic fluid, and brain. Sequence conservation of the homeodomain shed light on the importance of N- and C-terminal residues involved in DNA binding. The specificity of IRX4 homodimer bound to consensus human DNA sequence was confirmed by molecular dynamics simulations, representing the role of conserved amino acids including R145, A194, N195, S190, R198, and R199 in binding to DNA. Additional N-terminal residues like T144 and G143 were also found to have specific interactions highlighting the importance of N-terminus of the homeodomain in DNA recognition. Additionally, the effects of somatic mutations, including the conserved Arginine (R145, R198, and R199) residues on DNA binding elucidated the importance of these residues in stabilizing the protein-DNA complex. Secondary structure and hydrogen bonding analysis showed the roles of specific residues (R145, T191, A194, N195, R198, and R199) in maintaining the homogeneity of the structure and its interaction with DNA. The differences in relative binding free energies of all the mutants shed light on the structural modularity of this protein and the dynamics behind protein-DNA interaction. We also have predicted that the C-terminal sequence of the IRX4 homeodomain could act as a potential cell-penetrating peptide, emphasizing the role these small peptides could play in targeting homeobox TFs.

摘要

伊洛奎斯同源盒 4(IRX4)属于同源盒 TF 家族,在胚胎发生、细胞特化和器官发育中发挥作用。最近,大规模全基因组关联研究和表观遗传研究强调了 IRX4 及其相关变体在前列腺癌中的作用。目前还没有研究探讨和描述 IRX4 同源盒结构及其与 DNA 结合的潜力。本研究使用序列分析、同源建模和分子动力学模拟来探索 IRX4 同源盒-DNA 识别机制以及影响这些相互作用的体细胞突变的作用。利用公开可用的数据库,发现 IRX4 在不同组织(包括前列腺、心脏、皮肤、阴道)中的基因表达,并在癌细胞系(HCT166、HEK293)、B 细胞、腹水和大脑中发现其蛋白表达。同源盒的序列保守性揭示了参与 DNA 结合的 N 端和 C 端残基的重要性。分子动力学模拟证实了 IRX4 同源二聚体与人类共识 DNA 序列的特异性结合,代表了包括 R145、A194、N195、S190、R198 和 R199 在内的保守氨基酸在与 DNA 结合中的作用。还发现额外的 N 端残基(如 T144 和 G143)具有特定的相互作用,突出了同源盒 N 端在 DNA 识别中的重要性。此外,对体细胞突变(包括保守精氨酸(R145、R198 和 R199)残基)对 DNA 结合的影响的研究,阐明了这些残基在稳定蛋白质-DNA 复合物中的重要性。二级结构和氢键分析表明,特定残基(R145、T191、A194、N195、R198 和 R199)在维持结构的同质性及其与 DNA 的相互作用中发挥作用。所有突变体的相对结合自由能差异揭示了该蛋白质的结构模块化及其与 DNA 相互作用的动力学。我们还预测了 IRX4 同源盒的 C 端序列可以作为一种潜在的细胞穿透肽,强调了这些小肽在靶向同源盒 TF 中的作用。

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