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Cooray, A.

Publications and source records attributed to Cooray, A..

2 recordsLinked to original sources

Transcriptomic alterations including p53 pathway dysregulation prime DNMT3A mutant cells for transformation

DNMT3A mutations are prevalent in haematologic malignancies. Our mouse model introduced the murine homologue (R878H) of the human hotspot R882H mutation into the mouse Dnmt3a locus, resulting in globally reduced DNA methylation in all tissues. Mice with heterozygous R878H mutations developed {gamma}-radiation induced thymic lymphoma more rapidly than control mice, suggesting a vulnerability to stress stimuli in Dnmt3aR878H/+ cells. In competitive transplantations, Dnmt3aR878H/+ Lin-Sca-1+Kit+ (LSK) cells had a competitive advantage over wt cells, indicating a self-renewal phenotype at the expense of differentiation. RNA-sequencing of Dnmt3aR878H/+ LSKs exposed to low dose {gamma}-radiation showed downregulation of the p53 pathway. Accordingly, reduced PUMA expression was observed by flow cytometry in the bone marrow of {gamma}-irradiated Dnmt3aR878H/+ mice due to altered p53 signalling. These findings provide new insights as to how DNMT3A mutations cause subtle changes in the transcriptome of LSK cells which contribute to their increased self-renewal and propensity for malignant transformation. SIGNIFICANCEHotspot DNMT3A R882H mutations are overrepresented in leukaemia suggesting that they confer a susceptibility to disease if further mutations are acquired. To advance therapies for DNMT3A mutant disease, it is essential to understand the mechanisms by which this mutation primes cells for malignant transformation.

cancer biology↗

5' transgenes drive leaky expression of 3' transgenes in inducible bicistronic vectors

Molecular cloning techniques enabling contemporaneous expression of two or more protein-coding sequences in a cell type of interest provide an invaluable tool for understanding the molecular regulation of cellular functions. DNA recombination employing the Cre-lox system is commonly used as a molecular switch for inducing the expression of recombinant proteins encoded within a bicistronic cassette. In such an approach, the two protein-coding sequences are separated by a 2A peptide or internal ribosome entry site (IRES), and expression is designed to be strictly Cre-dependent by using a lox-STOP-lox cassette or flip-excision (FLEX) switch. However, low-level or leaky expression of recombinant proteins is often observed in the absence of Cre activity, potentially compromising the utility of this approach. To investigate the mechanism of leaky gene expression, we generated pCAG-lox-GFP-STOP-lox-Transgene A-2A-Transgene B vectors, which are designed to express nuclear-targeted GFP in the absence of Cre, and express both transgenes A and B after Cre-mediated recombination. We found that cells transfected with these bicistronic vectors exhibited low-level Cre-independent expression specifically of the transgene positioned 3' of the 2A peptide. We observed similar results in vivo by viral transduction of the adult mouse cerebral cortex with AAV-mutagenesis of putative transcription factor binding sites that the 5' transgene confers promoter-like activity that drives expression of the 3' transgene. Finally, we demonstrate that inclusion of an additional lox-STOP-lox cassette between the 2A sequence and 3' transgene dramatically reduces the extent of Cre-independent leaky gene expression. Our findings highlight that caution should be applied to the use of Cre-dependent bicistronic constructs when tight regulation of transgene expression is desired and provide a guide to preventing leaky gene expression when the expression of more than one protein is required.

molecular biology↗