bioRxiv Science⌕ Search

Biology subjects

Brangers, W.

Publications and source records attributed to Brangers, W..

3 recordsLinked to original sources

Selected clinical strains of Mycobacterium avium unlock in vivo models for NTM drug discovery programs

Mycobacterium avium pulmonary disease is an emerging global health challenge for which drug development remains limited by preclinical models that rely on laboratory strains and invasive endpoint analyses. Here, we compared recent clinical M. avium isolates with the reference strain ATCC 700898 across macrophage, Galleria mellonella, and murine infection models and evaluated longitudinal micro-computed tomography ({micro}CT) as a non-invasive tool to monitor disease progression and treatment response. While extracellular growth rates were comparable, clinical isolates demonstrated enhanced host-associated fitness and induced higher bacterial burdens and more severe pulmonary pathology in mice than the reference strain. These strain-dependent differences were detected by quantitative {micro}CT imaging. Using the hypervirulent isolate MYC_0069, we further show that clarithromycin monotherapy and standard-of-care triple therapy significantly reduced bacterial burden and lung pathology. Together, these findings establish a clinically relevant chronic M. avium model that combines clinical isolates with longitudinal imaging to enable preclinical anti-mycobacterial drug evaluation in vivo.

microbiology↗

Maternal Vitamin C Deficiency and Genetic Risk Factors Contribute to Congenital Defects through Dysregulation of DNA Methylation.

AbstractMaternal dietary insufficiencies can reshape the fetal epigenome during gestation, contributing to birth defects and developmental disorders. Vitamin C (VitC) is a critical co-factor for Ten-Eleven- Translocation (TET) DNA demethylases, but the impact of its deficiency on embryonic development has gone largely unappreciated. Here, we show that maternal VitC deficiency in L-gulonolactone oxidase (Gulo)-deficient mice, which like humans are unable to synthesize VitC, can cause highly penetrant developmental delays and malformations in non-inbred embryos during the vulnerable period of gastrulation. DNA hypermethylation in Gulo-/- embryonic neural tissues of susceptible strains increases with VitC dose reduction and with the severity of embryonic pathologies, coinciding with hallmarks of TET1 dysfunction. A moderate reduction in VitC status is sufficient to induce DNA hypermethylation and cause neural tube defects. Our results suggest that promoting timely VitC supplementation by at-risk pregnant mothers may prevent a range of birth defects and enhance health outcomes of future generations.

developmental biology↗

Epigenetic regulation by TET1 in gene-environmental interactions influencing susceptibility to congenital malformations

The etiology of neural tube defects (NTDs) involves complex gene-environmental interactions. Folic acid (FA) prevents NTDs, but the mechanisms remain poorly understood and at least 30% of human NTDs resist the beneficial effects of FA supplementation. Here, we identify the DNA demethylase TET1 as a nexus of folate-dependent one-carbon metabolism and genetic risk factors post-neural tube closure. We determine that cranial NTDs in Tet1-/- embryos occur at two to three times higher penetrance in genetically heterogeneous than in homogeneous genetic backgrounds, suggesting a strong impact of genetic modifiers on phenotypic expression. Quantitative trait locus mapping identified a strong NTD risk locus in the 129S6 strain, which harbors missense and modifier variants at genes implicated in intracellular endocytic trafficking and developmental signaling. NTDs across Tet1-/- strains are resistant to FA supplementation. However, both excess and depleted maternal FA diets modify the impact of Tet1 loss on offspring DNA methylation primarily at neurodevelopmental loci. FA deficiency reveals susceptibility to NTD and other structural brain defects due to haploinsufficiency of Tet1. In contrast, excess FA in Tet1-/- embryos drives promoter DNA hypermethylation and reduced expression of multiple membrane solute transporters, including a FA transporter, accompanied by loss of phospholipid metabolites. Overall, our study unravels interactions between modified maternal FA status, Tet1 gene dosage and genetic backgrounds that impact neurotransmitter functions, cellular methylation and individual susceptibilities to congenital malformations, further implicating that epigenetic dysregulation may underlie NTDs resistant to FA supplementation.

developmental biology↗