De novo activating mutations drive clonal evolution and enhance clonal fitness in KMT2A-rearranged leukemia.

Hyrenius-Wittsten, Axel; Pilheden, Mattias; Sturesson, Helena; Hansson, Jenny; Walsh, Michael P; Song, Guangchun; Kazi, Julhash U; Liu, Jian et al. · Nat Commun · 2018

basic_science · Level V

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Abstract

Activating signaling mutations are common in acute leukemia with KMT2A (previously MLL) rearrangements (KMT2A-R). These mutations are often subclonal and their biological impact remains unclear. Using a retroviral acute myeloid mouse leukemia model, we demonstrate that FLT3 <sup>ITD</sup> , FLT3 <sup>N676K</sup> , and NRAS <sup>G12D</sup> accelerate KMT2A-MLLT3 leukemia onset. Further, also subclonal FLT3 <sup>N676K</sup> mutations accelerate disease, possibly by providing stimulatory factors. Herein, we show that one such factor, MIF, promotes survival of mouse KMT2A-MLLT3 leukemia initiating cells. We identify acquired de novo mutations in Braf, Cbl, Kras, and Ptpn11 in KMT2A-MLLT3 leukemia cells that favored clonal expansion. During clonal evolution, we observe serial genetic changes at the Kras <sup>G12D</sup> locus, consistent with a strong selective advantage of additional Kras <sup>G12D</sup> . KMT2A-MLLT3 leukemias with signaling mutations enforce Myc and Myb transcriptional modules. Our results provide new insight into the biology of KMT2A-R leukemia with subclonal signaling mutations and highlight the importance of activated signaling as a contributing driver.

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