The structural influence of the oncogenic driver mutation N642H in the STAT5B SH2 domain.

IF 4.5 3区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Protein Science Pub Date : 2025-01-01 DOI:10.1002/pro.70022
Liam Haas-Neill, Deniz Meneksedag-Erol, Ayesha Chaudhry, Masha Novoselova, Qirat F Ashraf, Elvin D de Araujo, Derek J Wilson, Sarah Rauscher
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Abstract

The point mutation N642H of the signal transducer and activator of transcription 5B (STAT5B) protein is associated with aggressive and drug-resistant forms of leukemia. This mutation is thought to promote cancer due to hyperactivation of STAT5B caused by increased stability of the active, parallel dimer state. However, the molecular mechanism leading to this stabilization is not well understood as there is currently no structure of the parallel dimer. To investigate the mutation's mechanism of action, we conducted extensive all-atom molecular dynamics simulations of multiple oligomeric forms of both STAT5B and STAT5BN642H, including a model for the parallel dimer. The N642H mutation directly affects the hydrogen bonding network within the phosphotyrosine (pY)-binding pocket of the parallel dimer, enhancing the pY-binding interaction. The simulations indicate that apo STAT5B is highly flexible, exploring a diverse conformational space. In contrast, apo STAT5BN642H accesses two distinct conformational states, one of which resembles the conformation of the parallel dimer. The simulation predictions of the effects of the mutation on structure and dynamics are supported by the results of hydrogen-deuterium exchange (HDX) mass spectrometry measurements carried out on STAT5B and STAT5BN642H in which a phosphopeptide was used to mimic the effects of parallel dimerization on the SH2 domain. The molecular-level information uncovered in this work contributes to our understanding of STAT5B hyperactivation by the N642H mutation and could help pave the way for novel therapeutic strategies targeting this mutation.

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STAT5B SH2结构域中致癌驱动突变N642H的结构影响。
信号传导和转录激活因子5B (STAT5B)蛋白的点突变N642H与侵袭性和耐药型白血病有关。这种突变被认为是由于激活的平行二聚体状态的稳定性增加导致STAT5B的过度激活而促进癌症。然而,由于目前还没有平行二聚体的结构,导致这种稳定化的分子机制尚未得到很好的理解。为了研究突变的作用机制,我们对STAT5B和STAT5BN642H的多种低聚形式进行了广泛的全原子分子动力学模拟,包括一个平行二聚体模型。N642H突变直接影响了平行二聚体磷酸酪氨酸(pY)结合袋内的氢键网络,增强了pY结合相互作用。模拟表明,载脂蛋白STAT5B具有高度的灵活性,可以探索多种构象空间。相反,载子STAT5BN642H具有两种不同的构象状态,其中一种类似于平行二聚体的构象。对STAT5B和STAT5BN642H进行的氢-氘交换(HDX)质谱测量结果支持了突变对结构和动力学影响的模拟预测,其中使用一个磷酸肽来模拟平行二聚化对SH2结构域的影响。这项工作中发现的分子水平信息有助于我们理解N642H突变引起的STAT5B过度激活,并有助于为针对该突变的新治疗策略铺平道路。
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来源期刊
Protein Science
Protein Science 生物-生化与分子生物学
CiteScore
12.40
自引率
1.20%
发文量
246
审稿时长
1 months
期刊介绍: Protein Science, the flagship journal of The Protein Society, is a publication that focuses on advancing fundamental knowledge in the field of protein molecules. The journal welcomes original reports and review articles that contribute to our understanding of protein function, structure, folding, design, and evolution. Additionally, Protein Science encourages papers that explore the applications of protein science in various areas such as therapeutics, protein-based biomaterials, bionanotechnology, synthetic biology, and bioelectronics. The journal accepts manuscript submissions in any suitable format for review, with the requirement of converting the manuscript to journal-style format only upon acceptance for publication. Protein Science is indexed and abstracted in numerous databases, including the Agricultural & Environmental Science Database (ProQuest), Biological Science Database (ProQuest), CAS: Chemical Abstracts Service (ACS), Embase (Elsevier), Health & Medical Collection (ProQuest), Health Research Premium Collection (ProQuest), Materials Science & Engineering Database (ProQuest), MEDLINE/PubMed (NLM), Natural Science Collection (ProQuest), and SciTech Premium Collection (ProQuest).
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