Mutation and cell state compatibility is required and targetable in Ph+ acute lymphoblastic leukemia minimal residual disease
Winter, P. S.; Ramseier, M. L.; Navia, A. W.; Saksena, S.; Strouf, H.; Senhaji, N.; DenAdel, A.; Mirza, M.; An, H. H.; Bilal, L.; Dennis, P.; Leahy, C. S.; Shigemori, K.; Galvez-Reyes, J.; Zhang, Y.; Powers, F.; Mulugeta, N.; Gupta, A. J.; Calistri, N.; Van Scoyk, A.; Jones, K.; Liu, H.; Stevenson, K. E.; Ren, S.; Luskin, M. R.; Couturier, C. P.; Amini, A. P.; Raghavan, S.; Kimmerling, R. J.; Stevens, M. M.; Crawford, L.; Weinstock, D. M.; Manalis, S. R.; Shalek, A. K.; Murakami, M. A.
Show abstract
Efforts to cure BCR::ABL1 B cell acute lymphoblastic leukemia (Ph+ ALL) solely through inhibition of ABL1 kinase activity have thus far been insufficient despite the availability of tyrosine kinase inhibitors (TKIs) with broad activity against resistance mutants. The mechanisms that drive persistence within minimal residual disease (MRD) remain poorly understood and therefore untargeted. Utilizing 13 patient-derived xenograft (PDX) models and clinical trial specimens of Ph+ ALL, we examined how genetic and transcriptional features co-evolve to drive progression during prolonged TKI response. Our work reveals a landscape of cooperative mutational and transcriptional escape mechanisms that differ from those causing resistance to first generation TKIs. By analyzing MRD during remission, we show that the same resistance mutation can either increase or decrease cellular fitness depending on transcriptional state. We further demonstrate that directly targeting transcriptional state-associated vulnerabilities at MRD can overcome BCR::ABL1 independence, suggesting a new paradigm for rationally eradicating MRD prior to relapse. Finally, we illustrate how cell mass measurements of leukemia cells can be used to rapidly monitor dominant transcriptional features of Ph+ ALL to help rationally guide therapeutic selection from low-input samples. HIGHLIGHTSO_LIRelapse after remission on TKI can harbor mutations in ABL1, RAS, or neither C_LIO_LIMutations and development-like cell state dictate fitness in residual disease C_LIO_LICo-targeting cell state and ABL1 markedly reduces MRD C_LIO_LIBiophysical measurements provide an integrative, rapid measurement of cell state C_LI
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