bioRxiv Science⌕ Search

Biology subjects

Ivy, J.

Publications and source records attributed to Ivy, J..

2 recordsLinked to original sources

Carbonyl Reductase 1: a novel regulator of blood pressure in Down Syndrome

BackgroundApproximately one in every 800 children is born with the severe aneuploid condition of Down Syndrome (DS), a trisomy of chromosome 21. Low blood pressure (hypotension) is a common condition associated with DS and can have a significant impact on exercise tolerance and quality of life. Little is known about the factors driving this hypotensive phenotype and therefore therapeutic interventions are limited. Carbonyl reductase 1 (CBR1) is an enzyme contributing to the metabolism of prostaglandins, glucocorticoids, reactive oxygen species and neurotransmitters, encoded by a gene (CBR1) positioned on chromosome 21 with potential to impact blood pressure. MethodsUtilising genetically modified mice and telemetric blood pressure measurement, we tested the hypothesis that CBR1 influences blood pressure and that its overexpression contributes to hypotension in DS. ResultsIn a mouse model of DS (Ts65Dn), which exhibit hypotension, CBR1 activity was increased and pharmacological inhibition of CBR1 increased blood pressure. Mice heterozygous null for Cbr1 had reduced CBR1 enzyme activity and elevated blood pressure. Further experiments indicate that the underlying mechanisms include alterations in sympathetic tone and prostaglandin metabolism. ConclusionsWe conclude that CBR1 activity contributes to blood pressure homeostasis and inhibition of CBR1 may present a novel therapeutic opportunity to correct symptomatic hypotension in DS.

physiology↗

Genetic diversity in global populations of the Critically Endangered addax (Addax nasomaculatus) and its implications for conservation

Threatened species are frequently patchily distributed across small wild populations, ex situ populations managed with varying levels of intensity, and reintroduced populations. Best practice advocates for integrated management across in situ and ex situ populations. Wild addax (Addax nasomaculatus) now number fewer than 100 individuals, yet thousands of addax remain in ex situ populations, which can provide addax for reintroductions, as has been the case in Tunisia in the mid-1980s. However, integrated management requires genetic data to ascertain the relationships between wild and ex situ populations that have incomplete knowledge of founder origins, management histories and pedigrees. We undertook a global assessment of genetic diversity across wild, ex situ, and reintroduced populations in Tunisia to assist conservation planning for this Critically Endangered species. We show that the remnant wild populations retain more mitochondrial haplotypes which are more evolutionarily diverse than the entirety of the ex situ populations across Europe, North America and the United Arab Emirates, and the reintroduced Tunisian population. Additionally, 1704 SNPs revealed that whilst population structure within the ex situ population is minimal, each population carries unique diversity. Finally, we show that careful selection of founders and subsequent genetic management is vital to ensure genetic diversity is provided to, and minimise drift and inbreeding within, reintroductions. Our results highlight a vital need to conserve the last remaining wild addax population, and we provide a genetic foundation for determining integrated conservation strategies to prevent extinction and optimise future reintroductions.

genetics↗