PO.MCB05.01 · 分子与细胞生物学
探究RecQL4同源物Hrq1:遗传抑制子筛选揭示关键功能特征
Probing the RecQL4 homolog Hrq1: A genetic suppressor screen identifies critical functional features
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
DNA修复解旋酶RECQL4是一种强效癌基因,其失调是多种癌症和基因组不稳定性疾病的标志。在人类乳腺癌、卵巢癌和肝癌中观察到RECQL4过表达,其表达是预后不良的生物标志物。相反,该蛋白ATPase结构域的种系功能丧失性扰动与Rothmund-Thomson综合征等遗传疾病相关,这类疾病的特点是骨肉瘤和淋巴瘤发生风险高。这种双重角色突显了RECQL4的剂量和活性必须被精确调节。此外,RECQL4在修复DNA链间交联(ICL)损伤剂(如铂类化疗药物)方面具有高度保守的功能,使这一蛋白成为克服化疗耐药的重要研究对象。然而,由于RECQL4的N端含有一个必需的复制起始结构域(相当于酿酒酵母的Sld2),RECQL4的机制研究在体内研究以及过表达和纯化方面都很困难。因此,我们研究RECQL4的酿酒酵母同源物Hrq1。我们利用该模型发现该蛋白功能的更多细节,进而可将其关联回人类系统。Hrq1的ATPase失活突变体(hrq1-K318A)对ICL试剂丁二环氧化物(DEB)表现出深度超敏,其致死性远大于完全缺失菌株(hrq1Δ)。这定义了一种显性负性的"蛋白捕获"或"路障"表型。为鉴定这种毒性蛋白-DNA复合物如何被解除,我们通过将hrq1-K318A菌株接种于DEB上产生自发抑制子菌落。全基因组测序显示,hrq1-K318A菌株中超过90%的筛选菌落在hrq1基因自身内部存在继发突变。关键的是,点稀释试验证实这些基因内抑制子将K318A超敏性挽救回hrq1Δ缺失的水平。这为"路障"假说提供了有力的遗传学证据,表明这些抑制子通过"解除"毒性K318A蛋白发挥作用,将其表型逆转为简单的功能丧失。对这些结果的进一步分析表明,许多突变位于RECQL4及其同源物中高度保守的残基处,提示这些位点具有重要的功能特性。最后,我们将这些遗传抑制子与一个理性设计的DNA结合缺陷突变体(hrq1-R739A)进行了比较。虽然体外试验证实其DNA结合减少,但该突变在体内仅对K318A毒性提供了轻微的挽救。这一发现提示,显性负性"陷阱"是一个复杂的中间体,其稳定不仅仅依赖于DNA结合——很可能还包括关键的蛋白-蛋白相互作用——并为未来靶向RECQL4疗法的设计揭示了重要的机制细微差别。
查看英文原文 English abstract
The DNA repair helicase RECQL4 is a potent oncogene whose dysregulation is a hallmark of multiple cancers and diseases of genomic instability. Overexpression of RECQL4 is observed in human breast, ovarian, and liver cancers, where its expression is a biomarker for poor prognosis. Conversely, germline loss-of-function perturbations in the ATPase domain of the protein are linked to genetic diseases like Rothmund-Thomson syndrome that are characterized by high risk of developing osteosarcoma and lymphoma. This bifurcated role highlights that RECQL4 dosage and activity must be precisely tuned. Additionally, RECQL4 has a highly conserved function in the repair of DNA interstrand crosslink (ICL) damaging agents such as platinum-based chemotherapeutics, making this an important protein to understand for overcoming chemoresistance. However, mechanistic studies of RECQL4 are difficult to study in vivo as well as overexpress and purify because its N terminus contains an essential replication-initiation domain equivalent to Saccharomyces cerevisiae's Sld2. Therefore, we study the S. cerevisiae homologue of RECQL4, Hrq1. We use this model to discover more details about this protein's functions that can then be linked back to the human system. The ATPase-dead mutant of Hrq1 ( hrq1-K318A ) is profoundly hypersensitive to the ICL agent diepoxy butane (DEB), exhibiting a lethality far greater than the complete deletion strain ( hrq1Δ ). This defines a dominant-negative "protein-trapping" or "roadblock" phenotype. To identify how this toxic protein-DNA complex is resolved, we generated spontaneous suppressor colonies by plating hrq1-K318A strains on DEB. Whole-genome sequencing revealed that over 90% of screened colonies in the hrq1-K318A strain had a secondary mutation within the hrq1 gene itself. Crucially, spot dilution assays confirmed that these intragenic suppressors rescue the K318A hypersensitivity back to the level of the hrq1Δ deletion. This provides powerful genetic evidence for the "roadblock" hypothesis, demonstrating the suppressors function by "defusing" the toxic K318A protein, reverting its phenotype to a simple loss-of-function. Further analysis of those results has revealed that many of the mutations are at highly conserved residues amongst RECQL4 and its homologues, suggesting important functional properties at those sites. Finally, we compared these genetic suppressors to a rationally-designed, DNA-binding-deficient mutant ( hrq1-R739A ). While in vitro assays confirmed reduced DNA binding, this mutation in vivo provided only a slight rescue of the K318A toxicity. This finding suggests the dominant-negative "trap" is a complex intermediate stabilized by more than DNA-binding alone-likely including key protein-protein interactions-and reveals critical mechanistic nuances for the design of future RECQL4-targeting therapeutics.
利益披露 Disclosure
R. H. Simmons, None..
M. Bochman, None.