PO.CH03.01 · 化学
作为化学探针的靶向多梳抑制复合物 1 的新型小分子抑制剂的评价
Evaluation of novel small molecule inhibitors targeting Polycomb repressive complex 1 as chemical probes
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
背景:多梳抑制复合物 1(PRC1)是一种表观遗传调控复合物,负责组蛋白 H2A 上赖氨酸 119 的单泛素化(H2AK119Ub)。这种泛素化活性由一个经典的异二聚体 E3 连接酶介导,涉及 Ring1B(或其旁系同源物 Ring1A)与 BMI1 结合。H2AK119Ub 的沉积与参与决定细胞命运和身份的基因座处的基因抑制相关。值得注意的是,在白血病模型中,遗传性耗竭 Ring1A 和 Ring1B 会导致 H2AK119Ub 减少、PRC1 靶基因去抑制以及细胞生长停滞。因此,靶向 Ring1A/B 泛素化活性的小分子是研究 PRC1 生物学的有用化学探针。
结果:我们此前开发了 RB-3:首个同类 PRC1 小分子抑制剂。在此,我们报道新一代新型 PRC1 小分子抑制剂。采用基于结构的设计,我们开发了一种强效、细胞可渗透的新一代抑制剂 RB-322。RB-322 是两种阻转异构体的混合物,将其分离得到 RB-322-1 和 RB-322-2。为验证我们的抑制剂与 Ring1A/B 的直接结合,我们使用了 2D HSQC。值得注意的是,RB-322-1 表现出慢交换,而 RB-322-2 表现出快交换,分别表明强结合和弱结合。随后我们使用 AlphaScreen 竞争分析评估 RB-322-1 介导的 PRC1-核小体相互作用体外破坏,其中表现出低纳摩尔活性。随后开发了一种新型放射性泛素化活性分析(RadUb)来定量评估对 PRC1 E3 连接酶活性的抑制。使用该分析,我们发现 RB-322-1 表现出亚微摩尔活性。RB-322-2 在这些分析中的活性弱两个数量级。随后我们研究了 RB-322 在白血病细胞系中的靶向活性。首先,我们开发了一种生物素化 RB-322 探针,并进行基于链霉亲和素的下拉实验,随后进行蛋白质组学分析,揭示了多种 PRC1 蛋白的富集。随后我们评估了 RB-322-1 对细胞 H2AK119Ub 和基因表达的影响。我们发现 RB-322-1 在 6 小时后表现出对 H2AK119Ub 标记的快速、剂量依赖性减少,并在 AML 细胞系中去抑制 PRC1 靶基因。关键的是,弱阻转异构体 RB-322-2 未观察到这些效应。
结论:广泛的药物化学优化产生了一种强效、细胞可渗透的新一代 PRC1 小分子抑制剂:RB-322。RB-322 在体外生化分析中表现出低纳摩尔活性,并表现出对 PRC1 基因的靶向去抑制,提供了新颖的机制见解。RB-322 是研究 PRC1 生物学的有用化学探针,并可作为潜在新型抗癌药物的基础。
查看英文原文 English abstract
Background: Polycomb Repressive Complex 1 (PRC1) is an epigenetic regulatory complex responsible for monoubiquitylation of lysine 119 on histone H2A (H2AK119Ub). This ubiquitylation activity is mediated by a canonical heterodimeric E3 ligase involving Ring1B (or its paralog Ring1A) bound to BMI1. Deposition of H2AK119Ub is associated with gene repression at loci involved in determining cell fate and identity. Notably, genetic depletion of Ring1A and Ring1B results in reduction of H2AK119Ub, derepression of PRC1 target genes, and cell growth arrest in a leukemia model. Therefore, small molecules targeting the ubiquitylation activity of Ring1A/B are useful chemical probes towards studying PRC1 biology.
Results: We have previously developed RB-3: a first in class small molecule inhibitor of PRC1. Here we report the next generation of novel small molecule PRC1 inhibitors. Employing structure-based design, we have developed a potent cell permeable next generation inhibitor RB-322. RB-322 is a mixture of two atropisomers which were separated yielding RB-322-1 and RB-322-2. To validate direct binding of our inhibitors to Ring1A/B we used 2D HSQC. Notably, RB-322-1 demonstrates slow exchange while RB-322-2 demonstrates fast exchange indicating strong and weak binding respectively. We then used an AlphaScreen competition assay to evaluate RB-322-1 mediated disruption of the PRC1-nucleosome interaction in vitro in which it shows low nanomolar activity. A novel radiometric ubiquitylation activity assay (RadUb) was then developed to quantitatively assess inhibition of PRC1 E3 ligase activity. Using this assay we found RB-322-1 demonstrates sub-micromolar activity. RB-322-2 is 2 orders of magnitude weaker in these assays. We then investigated the on-target activity of RB-322 in leukemia cell lines. First, we developed a biotinylated RB-322 probe and performed streptavidin-based pull downs followed by proteomics analysis revealing enrichment of multiple PRC1 proteins. We then evaluated the effects of RB-322-1 on cellular H2AK119Ub and gene expression. We found RB-322-1 demonstrates rapid and dose-dependent reduction of the H2AK119Ub mark after 6-hours and derepresses PRC1 target genes in AML cell lines. Crucially, these effects have not been observed for the weak atropisomer RB-322-2.
Conclusions: Extensive medicinal chemistry optimization has yielded a potent cell permeable next generation small molecule inhibitor of PRC1: RB-322. RB-322 demonstrates low nanomolar activity in biochemical assays in vitro and demonstrates on-target derepression of PRC1 genes providing novel mechanistic insights. RB-322 represents a useful chemical probe for studying PRC1 biology and serves as the foundation for a potential novel anti-cancer agent.
利益披露 Disclosure
G. Hewett, None..
J. Grembecka, None..
T. Cierpicki, None.