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Biology subjects

Malaney, P.

Publications and source records attributed to Malaney, P..

2 recordsLinked to original sources

Adar1 deletion causes degeneration of exocrine pancreas via Mavs-dependent interferon signaling

Adenosine deaminase acting on RNA 1 (ADAR1) is an RNA-binding protein that deaminates adenosine(A) to inosine(I). A-to-I editing alters post-transcriptional RNA processing making ADAR1 a critical regulator of gene expression. Consequently, Adar1 has been implicated in organogenesis. To determine the role of Adar1 in pancreatic development and homeostasis, we specifically deleted Adar1 from the murine pancreas (Ptf1aCre/+; Adar1Fl/Fl). The resulting mice had stunted growth likely due to malabsorption associated with exocrine pancreas insufficiency. Analyses of pancreases revealed ductal expansion, heightened interferon-stimulated gene expression and an increased influx of immune cells. In addition, we observed an increased prevalence of CD4+ T and natural killer cells in their splenic tissue. These results indicate an association between loss of pancreatic Adar1 with dysregulation of systemic immunity. Concurrent deletion of Adar1 and Mavs, a signaling protein implicated in the innate immune pathway rescued the degenerative phenotype and resulted in normal pancreatic development. Taken together, our work suggests that the primary function of Adar1 in the pancreas is to prevent aberrant activation of the Mavs-mediated innate immune pathway, thereby maintaining pancreatic homeostasis. Summary statementThis work defines the role of Adar1 in pancreatic development and homeostasis.

developmental biology↗

Heterogeneous nuclear ribonucleoprotein K is overexpressed in acute myeloid leukemia and causes myeloproliferative disease in mice via altered Runx1 splicing

Acute myeloid leukemia (AML) is driven by numerous molecular events that contribute to disease progression. Herein, we identified hnRNP K overexpression as a recurrent abnormality in AML that is associated with inferior patient outcomes. In murine hematopoietic stem and progenitor cells, hnRNP K overexpression altered self-renewal and differentiation potential. Furthermore, murine transplantation models revealed that hnRNP K overexpression resulted in fatal myeloproliferative phenotypes. Using unbiased approaches, we discovered a direct relationship between hnRNP K and RUNX1--a master transcriptional regulator of hematopoiesis often dysregulated in leukemia. Molecular analyses revealed hnRNP K-dependent alternative splicing of RUNX1, resulting in the generation of a functionally distinct isoform. Taken together, we have established hnRNP K as an oncogene in myeloid leukemia that binds RUNX1 RNA, altering its splicing and subsequent transcriptional activity. These findings shed new light on a mechanism of myeloid leukemogenesis, paving the way for new drug discovery efforts. HighlightsO_LIhnRNP K, an RNA binding protein, is overexpressed in AML and correlates with poor clinical outcomes C_LIO_LIhnRNP K overexpression in murine HSPCs drives fatal myeloproliferative phenotypes in mice C_LIO_LIhnRNP Ks oncogenicity can be attributed, at least in part, to its ability to bind and influence the splicing of the RUNX1 transcript C_LI

cancer biology↗