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Biology subjects

Purton, L.

Publications and source records attributed to Purton, L..

3 recordsLinked to original sources

ADAR1p150 RNA binding, independent of A-to-I RNA editing, buffers immunogenicity from the tonic type I IFN induced transcriptome in vivo.

ADAR1 edits adenosine to inosine (A-to-I) in double-stranded RNA to prevent MDA5 sensing of cellular transcripts, its key physiological role. However, editing-independent functions of ADAR1 remain poorly understood. Using a series of Adar1 mutant mice rescued by loss of MDA5 and PKR, we investigated isoform-specific, editing-independent roles of ADAR1 in vivo. We found that the cytoplasmic ADAR1p150 isoform is essential for maintaining peripheral T cell numbers and differentiation of hematopoietic stem and progenitor cells (HSPCs). In bone marrow transplants, ADAR1p150 protein, but not its editing activity, was crucial for T cell regeneration and HSPC repopulation, demonstrating a cell-intrinsic function in hematopoiesis. Experiments with IFN{beta}-treatment of purified HSPCs in vitro and in vivo IFNAR1 neutralization revealed hypersensitivity to tonic type I interferon (IFN) in the absence of ADAR1p150. Using cell lines, we demonstrate that type I IFN activates the OAS-RNaseL pathway, leading to cell death. This study shows that tonic type I IFN induces immunogenic cellular RNAs in sterile conditions. ADAR1p150 suppresses immune sensing of self-dsRNAs through both editing-dependent (MDA5) and editing-independent (PKR, OAS-RNaseL) mechanisms. Thus, ADAR1p150 protein levels and activity combine to set the threshold for tolerance to self-derived dsRNAs.

immunology↗

Dynamic Tracking of Native Polyclonal Hematopoiesis in Adult Mice

Hematopoietic dysfunction has been associated with a reduction in the number of active precursors. However, precursor quantification at homeostasis and under diseased conditions is constrained by the scarcity of available methods. To address this issue, we optimized a method for quantifying a wide range of hematopoietic precursors. Assuming the random induction of a stable label in precursors following a binomial distribution, estimates depend on the inverse correlation between precursor numbers and the variance of precursor labeling among independent samples. Experimentally validated to cover the full dynamic range of hematopoietic precursors in mice (1 to 105), we utilized this approach to demonstrate that thousands of precursors, which emerge after modest expansion during fetal-to-adult transition, contribute to native and perturbed hematopoiesis. We further estimated the number of precursors in a mouse model of Fanconi Anemia, showcasing how repopulation deficits can be classified as autologous (cell proliferation) and non-autologous (lack of precursor). Our results support an accessible and reliable approach for precursor quantification, emphasizing the contemporary perspective that native hematopoiesis is highly polyclonal.

cell biology↗

Dysregulated expression of Hoxa1 isoforms in hematopoietic stem and progenitor cells causes myelodysplastic syndromes.

The homeobox gene, Hoxa1, has two different isoforms generated by alternative splicing: a full-length homeodomain-containing Hoxa1 (Hoxa1-FL), and a truncated Hoxa1 (Hoxa1-T), that lacks the homeodomain. The effects of the distinct Hoxa1 isoforms in hematopoiesis have not been investigated. Oncoretroviral studies revealed that Hoxa1-T acts in a dominant negative manner, regulating transcriptionally active Hoxa1. Oncoretroviral overexpression of wildtype Hoxa1 (WT-Hoxa1), which generates both Hoxa1 isoforms, in murine hematopoietic stem and progenitor cells (HSPCs) perturbed hematopoiesis, resulting in transplantable myelodysplastic syndromes (MDS) in mice. Overexpression of a mutated Hoxa1 cDNA (MUT-Hoxa1) that generates Hoxa1-FL, but not Hoxa1-T, led to a more severe MDS that transformed to secondary acute myeloid leukemia (sAML). DNA damage repair pathways were downregulated in Hoxa1-overexpressing hematopoietic progenitor cells, accompanied by increased {gamma}H2AX foci. In silico analyses revealed that CD34+ cells from approximately 50% of patients with MDS had elevated HOXA1-FL expression. Conditional knock-in WT-Hoxa1 and MUT-Hoxa1 mice were generated and had features of pre-MDS, developing altered hematopoiesis within 4 months of Hoxa1 isoform overexpression in HSPCs. HSPCs were significantly reduced in all knock-in mice, accompanied by significantly increased apoptosis in WT-Hoxa1 HSPCs. Healthy wildtype recipients transplanted with bone marrow cells from Hoxa1 knock-in mice developed trilineage MDS, with Hoxa1 isoform and gene dosage dependent phenotypes. Collectively our data identify a role for HOXA1 in the pathogenesis of MDS. Our Hoxa1 mouse models capture different stages of progression of disease from pre-MDS to MDS to sAML and provide novel, clinically relevant tools to study MDS. Key pointsHOXA1 is upregulated in approximately 50% of MDS patient CD34+ BM cells, highlighting a potential role for HOXA1 in the pathogenesis of MDS. Dysregulated expression of Hoxa1 isoforms in murine hematopoietic stem and progenitor cells predisposes mice to pre-MDS and MDS.

cancer biology↗