PO.MCB07.02 · 分子与细胞生物学
LDB1依赖的增强子连接性约束了T细胞急性淋巴细胞白血病中的一种代谢合成致死性
LDB1-dependent enhancer connectivity constrains a metabolic synthetic lethality in T-cell acute lymphoblastic leukemia
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
LDB1和LMO2是在T细胞急性淋巴细胞白血病(T-ALL)中经常过表达的两种蛋白,二者形成一个染色质结构复合物,促进增强子和/或启动子之间的染色质环化。在此,我们界定了T-ALL中LDB1驱动的致癌性增强子连接性,并考察了其对治疗易感性的影响。
为鉴定T-ALL中LDB1的近端靶标,我们构建了同基因型T-ALL细胞系(LOUCY[ETP-ALL]和KOPT K1[非ETP-ALL]),在内源性LDB1基因座上带有dTAG降解决定子。用dTAG-V1配体处理4小时使LDB1蛋白水平和染色质占据率降低超过90%。急性LDB1缺失破坏了LOUCY(如HHEX、MYB、MYCN)和KOPT K1(如DUSP6、STAT4)两者中关键白血病致癌基因处的空间增强子连接性,导致这些基因下调,并随后减少细胞生长。在LDB1耗竭的细胞中,通过CRISPRa介导恢复选定的LDB1依赖性致癌基因(如MYB)可挽救细胞扩增。
新生转录本谱分析进一步揭示,急性LDB1缺失在LOUCY和KOPT K1中影响了不同的基因集,这与它们各自不同的身份一致。然而值得注意的是,若干胆固醇生物合成基因(HMGCS1、MVD、MVK)在两种细胞类型中均上调。这些变化并非由SREBP2(这些基因的经典转录调控因子)表达或亚细胞定位的改变所驱动,而是由LDB1缺失情况下增强子-启动子连接性的改变所致。具体而言,LDB1缺失破坏了附近增强子对不同基因的连接性,从而使它们得以与HMGCS1、MVK和MVD基因启动子形成从头接触并将其激活。因此,通过聚集调控元件,LDB1不仅使基因得以表达,还约束增强子避免进行不当接触。重要的是,基于已发表的H3K27ac HiChIP数据,在T-ALL患者的原代样本中检测到了这些天然的LDB1依赖性环。
在功能上,我们发现随着LDB1耗竭时间延长,胆固醇通量以及SREBP2等上游调控因子的表达增加,提示T-ALL中存在关于胆固醇稳态的前馈调控机制。使用LDB1降解子模型和敲除模型,我们观察到LDB1缺失使白血病细胞对瑞舒伐他汀和匹伐他汀的敏感性提高2至5倍。在具有不同分子驱动因素的若干T-ALL细胞系中敲除LDB1后,这一现象得到重现。此外,加入甲羟戊酸或香叶基香叶基焦磷酸可挽救他汀类药物敏感性,证实该表型由胆固醇代谢改变所驱动。
总之,我们的研究阐明了一种范式:LDB1缺失使增强子与胆固醇生物合成基因启动子形成非法的空间连接。这进而在白血病细胞中产生一种新的代谢成瘾性,可能通过他汀类药物加以靶向。
查看英文原文 English abstract
LDB1 and LMO2, two proteins frequently overexpressed in T-cell acute lymphoblastic leukemia (T-ALL), form a chromatin architectural complex that promotes chromatin looping between enhancers and/or promoters. Here, we defined LDB1-driven oncogenic enhancer connectivity in T-ALL and examined its impact on therapeutic vulnerabilities.
To identify proximal LDB1 targets in T-ALL, we engineered isogenic T-ALL cell lines (LOUCY [ETP-ALL] and KOPT K1 [non-ETP-ALL]) with dTAG degrons at the endogenous LDB1 loci. Treatment with dTAG-V1 ligand for 4 hours reduced LDB1 protein levels and chromatin occupancy by >90%. Acute LDB1 loss disrupted spatial enhancer connectivity at critical leukemic oncogenes in both LOUCY (e.g. HHEX, MYB, MYCN ) and KOPT K1 (e.g. DUSP6, STAT4 ), resulting in their downregulation and subsequent reduction in cell growth. CRISPRa-mediated restoration of select LDB1-dependent oncogenes, such as MYB , in LDB1-depleted cells rescued cell expansion.
Nascent transcript profiling further revealed that acute LDB1 loss affected distinct gene sets in LOUCY and KOPT K1, consistent with their distinct identities. Notably, however, several cholesterol biosynthetic genes ( HMGCS1 , MVD , MVK ) were upregulated in both cell types. These changes were not driven by altered expression or subcellular localization of SREBP2-the canonical transcriptional regulator of these genes. Instead, they were caused by altered enhancer-promoter connectivity in the absence of LDB1. Specifically, LDB1 loss disrupted connectivity of nearby enhancers for different genes, thereby liberating them to form de novo contacts with HMGCS1, MVK, and MVD gene promoters to activate them. Hence, by clustering regulatory elements, LDB1 not only enables the expression of genes but also constrains enhancers from making inappropriate contacts. Importantly, the native LDB1-dependent loops are detected in primary samples from patients with T-ALL based on published H3K27ac HiChIP data.
Functionally, we found that cholesterol flux and expression of upstream regulators, like SREBP2 , increased with prolonged LDB1 depletion, suggesting a feed-forward regulatory mechanism on cholesterol homeostasis in T-ALL. Using both LDB1 degron and knockout models, we observed that LDB1 loss sensitizes leukemic cells to rosuvastatin and pitavastatin by 2-5-fold. This was recapitulated in several T-ALL cell lines with distinct molecular drivers upon LDB1 knockout. Furthermore, statin sensitization was rescued by spike-in of mevalonate or geranylgeranyl pyrophosphate, confirming that this phenotype is driven by altered cholesterol metabolism.
Together, our study illustrates a paradigm by which LDB1 loss enables illegitimate spatial connections of enhancers with cholesterol biosynthetic gene promoters. This, in turn, creates a new metabolic addiction in leukemic cells, which may be targeted with statins.
利益披露 Disclosure
R. S. Bhansali,
Alva10 Independent Contractor.
J. S. Long, None..
S. Wang, None..
A. Tausif, None..
S. Zhang, None..
P. Pölönen, None..
S. Skuli, None..
N. Aboreden, None..
Z. Geng, None..
B. M. Giardine, None..
C. A. Keller, None..
R. C. Hardison, None..
G. A. Blobel, None.