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Sumpena, E.

Publications and source records attributed to Sumpena, E..

2 recordsLinked to original sources

Integrating Single-Cell Biophysical and Transcriptomic Features to Resolve Functional Heterogeneity in Mantle Cell Lymphoma

Intra-tumor heterogeneity impacts disease progression and therapeutic resistance but remains poorly characterized by conventional histologic, immunophenotypic, and molecular approaches. Single-cell biophysical properties distinguish functional phenotypes complementary to these approaches, providing additional insight into cellular diversity. Here we link both buoyant mass and stiffness to gene expression to identify clinically relevant phenotypes within primary mantle cell lymphoma (MCL) cells, employing MCL as a model of biological and clinical diversity in human cancer. Linked measurements reveal that buoyant mass and stiffness characterize B-cell development states from naive to plasma cell and correlate with expression of oncogenic B-cell receptor signaling genes such as BLK and CD79A. Additionally, changes in cell buoyant mass within primary patient specimens ex vivo correlate with sensitivity to Brutons Tyrosine Kinase inhibitors in vivo in MCL and chronic lymphocytic leukemia, another B-cell malignancy. These findings highlight the value of biophysical properties as biomarkers of response in pursuit of future precision therapeutic strategies.

cancer biology↗

Autophosphorylation of the oncogenic protein TEL-ABL confers resistance to the allosteric ABL inhibitor asciminib

Chromosomal translocations that fuse the ABL1 gene to BCR and TEL cause human leukemias. Oligomerization and the loss of an inhibitory myristoylation modification lead to unregulated kinase activity of the BCR-ABL and TEL-ABL fusion proteins. ATP-competitive ABL inhibitors, such as imatinib and ponatinib, are effective against both fusion proteins. We discovered that asciminib, an allosteric inhibitor of BCR-ABL that binds to the myristoyl binding site in the ABL kinase domain, is >2000-fold less potent against TEL-ABL than BCR-ABL in cell-growth assays. This is surprising because the ABL components of the two fusion proteins, including the asciminib binding sites, have identical sequence. We deleted a short helical segment in the ABL kinase domain that closes over asciminib when it is bound. This deletion results in asciminib resistance in BCR-ABL, but has no effect on TEL-ABL, suggesting that the native autoinhibitory mechanism that asciminib engages in BCR-ABL is disrupted in TEL-ABL. We show, using mammalian cell expression and single-molecule microscopy, that BCR-ABL is mainly dimeric while TEL-ABL forms higher-order oligomers. Oligomerization can promote trans-autophosphorylation of ABL, and we find that a regulatory phosphorylation site in the SH3 domain of ABL (Tyr 89) is highly phosphorylated in TEL-ABL. This phosphorylation is expected to disassemble the autoinhibited conformation of ABL, thereby preventing asciminib binding. We show that TEL-ABL is intrinsically susceptible to inhibition by asciminib, but that increased phosphorylation results in resistance. Our results demonstrate that different ABL fusion proteins can have dramatically different responses to allosteric inhibitors due to differential phosphorylation. One Sentence SummaryWhen TEL-ABL is phosphorylated, it is insensitive to asciminib. However, when TEL-ABL is dephosphorylated by a phosphatase, asciminib sensitivity is restored.

biochemistry↗