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Retief, C.

Publications and source records attributed to Retief, C..

2 recordsLinked to original sources

Biomanufacturing of a functional microbial phytase in an insect host.

BackgroundInsects, such as Black Soldier Flies (Hermetia illucens), are increasingly used as sustainable animal feed ingredients that can be reared on plentiful organic substrates such as agricultural residues and pre-consumer food waste. Genetically engineering insects to heterologously express feed additive enzymes has the potential to generate more value from organic waste, while improving livestock health and productivity. Phytases are widely used feed additive enzymes that hydrolyse the phosphate groups from the myo-inositol backbone of phytic acid, a phosphate rich antinutrient compound that monogastric animals cannot efficiently digest. Dietary phytase supplementation improves absorption of phosphorous, proteins, and cationic nutrients, while mitigating the negative environmental effects of phytic acid rich excreta. ResultsWe evaluated the potential of using insects to biomanufacture microbial feed additive enzymes by engineering the model insect, Drosophila melanogaster, to express phytases. One histidine acid phytase, three beta propellor phytases, three purple acid phosphatases, and one PTP-like phytase were selected for screening in D. melanogaster. Transgenic flies expressing the AppA histidine acid phytase from E. coli had 27.82 FTU/g of phytase activity, which exceeds the 0.5-1.0 FTU/g required in animal feed. Maximum activity from AppA phytase expressed by D. melanogaster was observed at pH 5 and 55 {degrees}C, however, more than 50% of phytase activity was present at 25 {degrees}C and pH 2. Here we demonstrate that insects may be suitable hosts for the heterologous expression of a microbial phytase enzyme with applications for improving animal feed nutrition and organic waste valorisation.

synthetic biology↗

Rapid generation and screening of transgenic black soldier fly (Hermetia illucens)

BackgroundThe black soldier fly (BSF), Hermetia illucens is a widely used, and mass-produced insect that fulfils an important role in both the management of organic waste and as a component of animal feed formulations. They also have significant potential as a platform for converting organic waste into high-value proteins, and lipids for the production of biofuels. Applying synthetic biology to BSF provides even more potential for improvement through the generation of transgenic BSF to enhance animal feed, produce and fine tune high-value industrial biomolecules, and to expand their waste conversion capabilities. ResultsTo enable the rapid generation and screening of transgenic BSF, we utilised microinjections of piggyBac mRNA with donor plasmids. We have found preliminary screening of G0 BSF to identify mosaics for outcrossing can be completed less than 2 weeks after microinjection. Stable transgenic lines were reliably generated with effective transformation rates of 30-33%, and transmission of the transgene could be confirmed 3 days after outcrossing the G0 adults. We also present a protocol for identifying the location of integrated transgenes. ConclusionsThe methods presented here expedite the screening process for BSF transgenesis and further expand the toolkit for BSF synthetic biology.

synthetic biology↗