Bettina Nadorp, Audrey Lasry, Sanam Loghavi, Ravi Patel, Hager Mansour, Pier Edoardo Rovatti, Benjamin J. Kelly, Christopher J. Walker, Jill Buss, Isaiah Boateng, Wafa Al-Santli, Zoe Ciantra, Rebecca Austin, Helee Desai, Hasan Abaza, Linda Procell, Tejas Patel, Bejamin Kaffenberger, Saranga Wijeratne, María Guillamot, Maria Velegraki, Luis A. Chiriboga, Z Li, D. Pollyea, Christine M. McMahon, Arwa Shana’ah, John C. Byrd, Manel Esteller, Eirini P. Papapetrou, Aristotelis Tsirigos, Alice S. Mims, Elaine R. Mardis, Iannis Aifantis, Ann-Kathrin Eisfeld
Myeloid sarcoma, an aggressive extramedullary subtype of acute myeloid leukemia (AML), occurs in approximately 20% of patients, and remains strikingly understudied in large-scale genomic and multiomic investigations. The key drivers of its tumor evolution are largely unknown, timely detection in asymptomatic patients poses a clinical challenge, and effective treatment options are limited as patients are often excluded from clinical trials, rendering it a largely neglected disease entity. Here, we demonstrate that myeloid sarcoma evolves from medullary AML but exhibits distinct site-specific clonal evolution. This is supported by unique transcriptional signatures of myeloid sarcoma, reflecting adaptation to the extramedullary microenvironment. We establish a proof of concept that circulating tumor DNA sequencing captures the molecular composition of myeloid sarcoma, offering a potential non-invasive approach for molecular profiling of extramedullary AML. Our findings highlight marked differences between medullary AML and myeloid sarcoma, including universal molecular evolution and RAS pathway activation as disease hallmarks.