Whole-genome analysis identifies novel drivers and high-risk double-hit events in relapsed/refractory myeloma

泊马度胺 来那度胺 多发性骨髓瘤 杂合子丢失 人口 肿瘤科 生物 内科学 医学 遗传学 基因 环境卫生 等位基因
作者
Naser Ansari-Pour,Mehmet K. Samur,Erin Flynt,Sarah Gooding,Fadi Towfic,Nicholas Stong,Maria Ortiz Estevez,Konstantinos Mavrommatis,Brian A. Walker,Gareth J. Morgan,Nikhil C. Munshi,Hervé Avet Loiseau,Anjan Thakurta
出处
期刊:Blood [American Society of Hematology]
卷期号:141 (6): 620-633 被引量:6
标识
DOI:10.1182/blood.2022017010
摘要

Large-scale analyses of genomic data from patients with newly diagnosed multiple myeloma (ndMM) have been undertaken, however, large-scale analysis of relapsed/refractory MM (rrMM) has not been performed. We hypothesize that somatic variants chronicle the therapeutic exposures and clonal structure of myeloma from ndMM to rrMM stages. We generated whole-genome sequencing (WGS) data from 418 tumors (386 patients) derived from 6 rrMM clinical trials and compared them with WGS from 198 unrelated patients with ndMM in a population-based case-control fashion. We identified significantly enriched events at the rrMM stage, including drivers (DUOX2, EZH2, TP53), biallelic inactivation (TP53), noncoding mutations in bona fide drivers (TP53BP1, BLM), copy number aberrations (CNAs; 1qGain, 17pLOH), and double-hit events (Amp1q-ISS3, 1qGain-17p loss-of-heterozygosity). Mutational signature analysis identified a subclonal defective mismatch repair signature enriched in rrMM and highly active in high mutation burden tumors, a likely feature of therapy-associated expanding subclones. Further analysis focused on the association of genomic aberrations enriched at different stages of resistance to immunomodulatory agent (IMiD)-based therapy. This analysis revealed that TP53, DUOX2, 1qGain, and 17p loss-of-heterozygosity increased in prevalence from ndMM to lenalidomide resistant (LENR) to pomalidomide resistant (POMR) stages, whereas enrichment of MAML3 along with immunoglobulin lambda (IGL) and MYC translocations distinguished POM from the LEN subgroup. Genomic drivers associated with rrMM are those that confer clonal selective advantage under therapeutic pressure. Their role in therapy evasion should be further evaluated in longitudinal patient samples, to confirm these associations with the evolution of clinical resistance and to identify molecular subsets of rrMM for the development of targeted therapies.

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