PO.TB07.02 · 肿瘤生物学

对AML PDX模型的整合转录组分析和流式细胞术分析鉴定出LSCs与原始细胞共有的嘌呤-嘧啶代谢依赖性

Integrative transcriptomic profiling and flow cytometry analysis of AML PDX models identify purine-pyrimidine metabolic dependency shared in LSCs and blasts

编号 2188 展板 7 时间 4/20 09:00–12:00 区域 Section 30 主讲 Kangsan Kim
分会场 Metabolic and Transcriptional Control of Cancer Stem Cell Plasticity
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作者与单位 Authors & Affiliations

Kangsan Kim1, Haiming Xu1, Geoff Nelson2, Tim Nieuwenhuis2, Huiyun Liu1, Justine Roderick-Richardson1, Jessie Hao-ru Hsu1, Brandon Willis1, Lisa Drew1, Omid Tavana1

1Hematology R&D, AstraZeneca, Waltham, MA,2Oncology Data Science & AI, AstraZeneca, Waltham, MA

摘要 Abstract

中文摘要
急性髓系白血病(AML)由异质性群体组成,其中白血病干细胞(LSCs)可驱动起始、持续存在和复发。虽然当前标准治疗能有效降低疾病负荷,但30-80%的复发率强调了将LSC作为复发潜在驱动因素进行研究的必要性。为更好地理解LSC的生物学,我们在具有明确定义的LSC、祖细胞和原始细胞区室的AML患者来源异种移植(PDX)模型中进行了RNA-seq和流式细胞术分析。针对AML PDX优化了离体培养条件,通过补充细胞因子在体外保留亚群异质性。对于RNA-seq,基于CD34/CD38标志物的分选分离出LSCs、祖细胞和原始细胞;差异表达分析鉴定出LSC特异性基因和共有脆弱性,可实现对LSCs和原始细胞的双重靶向。对于免疫表型分析,我们开发了一个整合LSC、分化及经典AML表面标志物的20色流式细胞术组合,以量化各区室间的表达模式。对分选的LSCs和原始细胞的RNA-seq表明LSCs与原始细胞之间存在差异表达,LSC17评分明显上调,这与既往结果一致并证实了我们数据的纯度/质量。流式细胞术组合也显示LSCs与原始细胞间的表面标志物差异表达。首先聚焦于LSC富集的生物学,我们在2个独立的AML PDX模型中鉴定出约160个在LSCs中一致上调的基因。这些LSC升高的靶点在DepMap(其含有代表原始细胞的AML细胞系)中表现出有限的依赖性,提示这些基因可能仅在LSC中发挥功能效应,而在原始细胞中不发挥作用。为鉴定在所有亚群中均显示依赖性的靶点,我们实施了一个以原始细胞为中心的筛选。我们首先从DepMap中选取AML依赖性基因,然后将该集合与在LSCs和原始细胞中均高表达的基因取交集。此方法产生了16个具有双重相关性的候选基因。功能注释表明这些基因中有一半映射到嘌呤/嘧啶生物合成通路,指向一种代谢脆弱性,并支持一种可同时影响LSC和原始细胞群体的潜在双重靶向策略。整合转录组分析和流式细胞术分析展示了LSC限定的程序,同时揭示了LSCs与原始细胞间共有的代谢依赖性。通过将表达数据与AML依赖性数据相结合,我们优先选出16个双区室候选基因,其中约一半符合嘌呤/嘧啶生物合成,提名核苷酸代谢作为双重靶向的潜在轴心。结合证实数据集质量的升高的LSC17评分,这些发现为靶点选择、患者分层以及旨在实现AML持久缓解和减少复发的合理联合方案提供了路线图。
查看英文原文 English abstract
Acute myeloid leukemia (AML) comprises a heterogeneous population in which leukemic stem cells (LSCs) can drive initiation, persistence, and relapse. While current standard of care effectively reduces disease burden, 30-80% relapse rates emphasize the need of investigating LSC as a potential driver of relapse. To better understand biology of LSC, we performed RNA-seq and flow cytometry analysis in AML patient‑derived xenograft (PDX) models with defined LSC, progenitor, and blast compartments. Ex vivo culture conditions were optimized for AML PDXs to preserve subpopulation heterogeneity in vitro by supplementing cytokines. For RNA-seq, CD34/CD38 markers-based sorting isolated LSCs, progenitors, and blasts; differential expression analyses identified LSC‑specific genes and shared vulnerabilities that could enable dual targeting of LSCs and blasts. For immunophenotyping, we developed a 20‑color flow cytometry panel incorporating LSC, differentiation, and classic AML surface markers to quantify expression patterns across compartments. RNA-seq of sorted LSCs and blasts demonstrated differential expression between LSCs and blasts with a clear upregulation in the LSC17 score, consistent with previous results and confirming our data purity/quality. Flow cytometry panel also displayed differential surface marker expression across LSCs and blasts. Focusing on LSC-enriched biology first, we identified around 160 genes consistently upregulated in LSCs across 2 independent AML PDX models. These LSC-elevated targets showed limited dependency in DepMap (which have AML cell lines that represent blast), suggesting these genes may exert functional effects only in LSC, and not in blasts. To identify targets showing a dependency in all subsets, we implemented a blast-centric filter. We first selected AML dependency genes from DepMap and then intersected this set with genes highly expressed in both LSCs and blasts. This approach yielded 16 candidate genes with dual relevance. Functional annotation indicated that half of these genes map to purine/pyrimidine biosynthetic pathways, pointing to a metabolic vulnerability and supporting a potential dual-targeting strategy to impact both the LSC and blast population. Integrated transcriptomic profiling and flow cytometry analysis exhibit LSC-restricted programs while uncovering shared metabolic dependencies across LSCs and blasts. By combining expression with AML dependency data, we prioritized 16 dual-compartment candidates, where about half align to purine/pyrimidine biosynthesis nominating nucleotide metabolism as a potential axis for dual targeting. Together elevated LSC17 scores that confirm dataset quality, these findings provide a roadmap for target selection, patient stratification, and rational combinations aimed at durable remission and reduced relapse in AML.
利益披露 Disclosure
K. Kim, AstraZeneca Employment, Stock. H. Xu, AstraZeneca Employment, Stock. G. Nelson, AstraZeneca Employment, Stock. T. Nieuwenhuis, AstraZeneca Employment, Stock. H. Liu, AstraZeneca Employment, Stock. J. Roderick-Richardson, AstraZeneca Employment, Stock. J. H. Hsu, AstraZeneca Employment, Stock. B. Willis, AstraZeneca Employment, Stock. L. Drew, AstraZeneca Employment, Stock. O. Tavana, AstraZeneca Employment, Stock.

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