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Biology subjects

Kerton, E.

Publications and source records attributed to Kerton, E..

2 recordsLinked to original sources

Drosophila beanbag (beba) encodes a novel insect receptor tyrosine kinase associated with reproductive niche organisation

Receptor tyrosine kinases (RTKs) are cell surface proteins that govern many critical cell fate decisions and their dysregulation is a major cause of diseases such as cancer. Much of what we know about how these proteins work in cells and tissues comes from model organisms such as the fruit fly Drosophila. Here, we identify and characterise a previously unstudied Drosophila receptor tyrosine kinase encoded by CG3277, which we name beanbag (beba). Ectopic beba expression activated Akt and ERK phosphorylation and produced gain-of-function phenotypes resembling those caused by other Drosophila RTKs. Using a MiMIC-derived T2A-GAL4 allele, we show that Drosophila beba is expressed in digestive, nervous and reproductive systems, in locations suggestive of potential roles in endoreplication and/or stem cell niche support. Animals transheterozygous for beba loss-of-function alleles were viable, developed at a normal rate, and showed no detectable change in enterocyte DNA content under standard conditions. However, beba loss-of-function females had fewer ovarioles, consistent with a role in the ovarian terminal filament, and males had increased testis hub cell number and hub volume, suggesting beba may regulate somatic niche architecture in the Drosophila gonad. Phylogenetic analysis places Beba within a Ret/Tor-related RTK radiation and supports the existence of a distinct Beba family in insects. Together, our data define Beba as a lineage-restricted Drosophila RTK with specialised roles in reproductive niche organisation.

genetics↗

A flexible diet platform for the nutrigenomic screening of Drosophila disease models

Nutrient-gene interactions shape metabolic disease phenotypes, but systematic testing is limited by the effort required to produce defined diets. We developed a flexible protocol that assembles precisely defined synthetic diets for Drosophila melanogaster from individual stock solutions. Using this approach, we generated a rational array of 51 single-nutrient-varied diets and demonstrated that flexible and standard preparation methods produce comparable developmental timing, survival, adult body weight, and starvation resistance in wildtype flies. Applying the dietary array to a Drosophila model of isolated sulfite oxidase deficiency, a severe condition caused by impaired sulfur amino acid catabolism, revealed nutrient-specific effects on pupal survival and pupariation timing, including rescue by cysteine depletion and other amino acid modified diets. This platform provides a scalable in vivo framework for mapping genotype-specific nutritional responses across Drosophila disease models. Key pointsO_LIDeveloped a flexible platform for assembling precisely defined synthetic diets in Drosophila. C_LIO_LIGenerated a rational 51-diet array, enabling scalable nutrigenomic screening. C_LIO_LIFlexible and standard diet preparations yielded matching developmental and adult fitness outcomes. C_LIO_LIDietary array screening in a sulfite oxidase deficiency model recapitulated cysteine sensitivity and identified novel nutrient modifiers. C_LI

genetics↗