PO.MCB08.02 · 分子与细胞生物学

沿时间与治疗轴解析免疫系统与癌症的基因组共进化

Interrogating the genomic co-evolution of the immune system and cancer along the time and treatment continuum

海报缩略图:沿时间与治疗轴解析免疫系统与癌症的基因组共进化
编号 2004 展板 30 时间 4/20 09:00–12:00 区域 Section 23 主讲 John Lozada, BS
分会场 Genomic Drivers of Cancer Pathogenesis
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作者与单位 Authors & Affiliations

John Roy Lozada1, Christine Luo1, Devin Schmeck1, Jeffrey S. Miller1, Akash Patnaik2, Emmanuel S. Antonarakis1, Frank Cichocki3, Justin Hwang1

1University of Minnesota, Minneapolis, MN,2University of Chicago, Chicago, IL,3Medicine, University of Minnesota, Minneapolis, MN

摘要 Abstract

中文摘要
克隆性造血(CH)以突变型造血干细胞和祖细胞的扩增为典型表现,这可能导致免疫谱系的改变。CH主要由年龄和慢性炎症驱动,历来与髓系恶性肿瘤相关。尽管新出现的证据提示CH在实体瘤中具有一定程度的流行率,但这些天然发生的改变对抗肿瘤免疫和治疗反应的影响仍不甚明确。 在此,我们运用体细胞突变检出算法,在肿瘤的上皮和免疫双重区室中检测单核苷酸变异(SNVs)。我们对涵盖11例患者的32例原发、未经治疗的前列腺肿瘤进行单细胞RNA测序(scRNA-seq)的初步分析,鉴定出代表CH和前列腺癌的突变。在肿瘤上皮区室内,我们在27%(3/11)的患者中鉴定出复发性FOXA1 1C类突变,同时在18%(2/11)的患者中检出NCOR1突变、9%(1/11)中检出IDH1、9%(1/11)中检出SPOP。值得注意的是,这些SNVs在同一患者的多个样本中均可检出。有趣的是,我们还在2例患者的上皮细胞中以高克隆性(>75%)检出了与前列腺癌风险升高相关的种系HOXB13 G84E变异。基于在髓系细胞中检出外显子非同义SNVs,我们在27%(3/11)的患者中鉴定出CH改变。具体而言,这些变异影响SF3B2(变异等位基因频率;VAF = 0.30)、UBE2A(VAF = 0.30)和KMT2C(VAF = 0.43),在多个分类器算法中均预测为有害。可检出CH改变的患者呈现出免疫学上更“热”的肿瘤微环境,CH+患者的肿瘤浸润单核细胞比例显著更高(16.22% 对 7.13%,Fisher精确检验 p < 0.0001)、巨噬细胞(6.49% 对 2.88%,p < 0.0001)、CD8+ T细胞(10.35% 对 3.33%,p < 0.0001)、CD4+ T细胞(2.81% 对 0.74%,p < 0.0001)和B细胞(1.81% 对 0.59%,p < 0.0001),而上皮成分比例更低(50.94% 对 69.81%,p < 0.0001)。 总之,我们利用从头突变算法在单细胞分辨率下检测前列腺癌中的CH改变。后续工作将整合我们的突变特征与转录组学,以阐明癌症内在和免疫内在改变对抗肿瘤免疫的影响。此外,我们将在多种实体瘤类型的匹配外周血、原发和转移肿瘤样本上纳入基于线粒体DNA的谱系示踪算法,以解构癌症进展过程中天然发生的CH改变的时空调控。我们预期我们的发现将揭示实体瘤内免疫功能和调控的新型驱动因素,这些因素可能被用于未来的免疫调节治疗。
查看英文原文 English abstract
Clonal hematopoiesis (CH) is exemplified by the expansion of mutant hematopoietic stem and progenitor cells that may give rise to altered immune repertoires. Driven largely by age and chronic inflammation, CH is historically linked to myeloid malignancies. Although emerging evidence points to a modest prevalence of CH within solid tumors, the impact of these naturally occurring alterations on anti-tumor immunity and therapeutic responses remain less defined. Here, we employed somatic mutation calling algorithms to detect single nucleotide variants (SNVs) in both epithelial and immune compartments of tumors. Our preliminary analyses of single-cell RNA-sequencing (scRNA-seq) of 32 primary, therapy-naïve prostate tumors encompassing 11 patients identified mutations representative of both CH and prostate cancer. Within the tumor-epithelial compartment, we identified recurrent FOXA1 class 1C mutations in 27% (3/11), alongside NCOR1 mutations in 18% (2/11), IDH1 in 9% (1/11), and SPOP in 9% (1/11) of patients. Of note, these SNVs were detected across multiple samples for the same patient. Interestingly, we also detected germline HOXB13 G84E variants, associated with increased risk for prostate cancer, in 2 cases at a high clonality within epithelial cells (>75%). CH alterations were identified in 27% (3/11) of patients based on the detection of exonic, nonsynonymous SNVs in myeloid cells. Specifically, these variants affected SF3B2 (variant allele frequency; VAF = 0.30), UBE2A (VAF = 0.30), and KMT2C (VAF = 0.43) that are predicted deleterious across multiple classifier algorithms. Patients with detectable CH alterations displayed immunologically hotter tumor microenvironments, with CH+ patients having significantly higher proportions of tumor-infiltrating monocytes (16.22% vs 7.13%, Fisher's exact test p <0.0001), macrophages (6.49% vs 2.88%, p <0.0001), CD8 + T cells (10.35% vs 3.33%, p <0.0001), CD4 + T cells (2.81% vs 0.74%, p <0.0001), and B cells (1.81% vs 0.59%, p <0.0001), and lower epithelial fractions (50.94% vs 69.81%, p <0.0001). In summary, we leveraged de novo mutational algorithms to detect CH alterations in prostate cancer at the single-cell resolution. Further work will integrate our mutational signatures with transcriptomics to elucidate the impact of both cancer- and immune-intrinsic alterations on anti-tumor immunity. Additionally, we will incorporate mitochondrial DNA-based lineage tracing algorithms on matched peripheral blood, primary, and metastatic tumor samples across diverse solid tumor types to deconvolute the spatiotemporal regulation of naturally occurring CH alterations across cancer progression. We envision our findings will illuminate novel drivers of immune function and regulation within solid tumors that may be exploited for future immunomodulatory therapies.
利益披露 Disclosure
J. R. Lozada, None.. C. Luo, None.. D. Schmeck, None. A. Patnaik, Gilead Sciences Stock. Infinity Pharmaceuticals Stock. Merck Stock. Bristol-Myers Squibb Travel. Exelixis Travel. Prime Oncology Travel. E. S. Antonarakis, Qiagen Patent, Co-inventor of a biomarker technology that has been licensed to Qiagen. Astellas Pharma ). Bayer ). Bristol-Myers Squibb ). Macrogenics ). Merck ). Orion Health ). J. Hwang, Astrin Biosciences ).

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