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Will, B.

Publications and source records attributed to Will, B..

2 recordsLinked to original sources

Activation of targetable inflammatory immune signaling is seen in Myelodysplastic Syndromes with SF3B1 mutations

BackgroundMutations in the SF3B1 splicing factor are commonly seen in Myelodysplastic syndromes (MDS) and Acute Myeloid Leukemia (AML), yet the specific oncogenic pathways activated by missplicing have not been fully elucidated. Inflammatory immune pathways have been shown to play roles in pathogenesis of MDS, though the exact mechanisms of their activation in splicing mutant cases are not well understood. MethodsRNA-seq data from SF3B1 mutant samples was analyzed and functional roles of IRAK4 isoforms were determined. Efficacy of IRAK4 inhibition was evaluated in pre-clinical models of MDS/AML ResultsRNA-seq splicing analysis of innate immune mediators in SF3B1 mutant MDS samples revealed retention of full-length exon 6 of interleukin-1 receptor-associated kinase 4 (IRAK4), a critical downstream mediator that links the Myddosome to inflammatory NF-kB activation. Exon 6 retention leads to a longer isoform, encoding a protein (IRAK4-Long) that contains the entire death domain and kinase domain, leading to maximal activation of NF-kB. Cells with wild-type SF3B1 contain smaller IRAK4 isoforms that are targeted for proteosomal degradation. Expression of IRAK4-Long in SF3B1 mutant cells induces TRAF6 activation leading to K63-linked ubiquitination of CDK2, associated with a block in hematopoietic differentiation. Inhibition of IRAK4 with CA-4948, leads to reduction in NF-kB activation, inflammatory cytokine production, enhanced myeloid differentiation in vitro and reduced leukemic growth in xenograft models. ConclusionsSF3B1 mutation leads to expression of a therapeutically targetable, longer, oncogenic IRAK4 isoform in AML/MDS models.

cancer biology↗

Cytoplasmic labile iron accumulates in aging stem cells perturbing a key rheostat for identity control

Bone marrow resident and rarely dividing haematopoietic stem cells (HSC) harbour an extensive self-renewal capacity to sustain life-long blood formation;1-5 albeit their function declines during ageing.6, 7 Various molecular mechanisms confer stem cell identity, ensure long-term maintenance and are known to be deregulated in aged stem cells.8, 9 How these programs are coordinated, particularly during cell division, and what triggers their ageing-associated dysfunction has been unknown. Here, we demonstrate that HSC, containing the lowest amount of cytoplasmic chelatable iron (labile iron pool)10 among hematopoietic cells, activate a limited iron response during mitosis. Engagement of this iron homeostasis pathway elicits mobilization and {beta}-oxidation of arachidonic acid and enhances stem cell-defining transcriptional programs governed by histone acetyl transferase Tip60/KAT5. We further find an age-associated expansion of the labile iron pool, along with loss of Tip60/KAT5-dependent gene regulation to contribute to the functional decline of ageing HSC, which can be mitigated by iron chelation. Together, our work reveals cytoplasmic redox active iron as a novel rheostat in adult stem cells; it demonstrates a role for the intracellular labile iron pool in coordinating a cascade of molecular events which reinforces HSC identity during cell division and to drive stem cell ageing when perturbed. As loss of iron homeostasis is commonly observed in the elderly, we anticipate these findings to trigger further studies into understanding and therapeutic mitigation of labile iron pool-dependent stem cell dysfunction in a wide range of degenerative and malignant pathologies.

cell biology↗