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Malaiwong, P.

Publications and source records attributed to Malaiwong, P..

2 recordsLinked to original sources

FLInt 2.0: Robust and customizable single shot integration in C. elegans

Transgenesis in Caenorhabditis elegans has revolutionized biological research by enabling the precise control of expression of both endogenous and exogenous genes. The FLInt (Fluorescent Landmark Interference) method was developed to accelerate site-specific integration of transgenes, but persistent false-positive events during screening have emerged as a rate-limiting step. Here, we present an alternative FLInt strategy, FLInt 2.0, that reduces false positives by biasing Cas9 cutting of the tdTomato and Cbr unc-119(+) safe-harbor locus, adjacent to the untranslated region (3 UTR). The design preserves fluorescence during non-integrative repair events, such that only true integration of an extrachromosomal array abolishes tdTomato expression. We demonstrate that this targeted approach maintains high integration efficiency while significantly decreasing the proportion false positives observed in F1 progeny. Molecular and transmission analyses confirm that non-fluorescent F2 animals reliably represent stably integrated multi-copy transgenic lines, which can be tailored to desired expression levels using a simple subsequent Cas9 targeting approach. By exploiting coding-frame geometry to discriminate integration events from repair-induced artifacts, this method streamlines the identification of the true integrants, reducing labor-intensive screening and increasing experimental throughput. Our strategy provides a robust, visually guided, and efficient refinement of FLInt, offering a generalizable framework for improving site-specific transgene integration in C. elegans.

genetics↗

Nuclear receptor-neurotransmitter coupling links behavior to metabolic state

Animals must flexibly respond to environmental stimuli to survive, and optimal responses critically depend on the organisms current needs. Many organisms have evolved both cell-intrinsic and intertissue signaling pathways that integrate metabolic status. However, how this information is encoded in molecular signals is currently not well understood. Here we show that the nematode C. elegans employs lipidated neurohormones that combine the neurotransmitter octopamine and fat metabolism-derived building blocks to relay information about lipid metabolic status and drive inhibition of aversive olfactory responses during food removal. Using targeted metabolomics, we show that lipidated neurohormone synthesis requires the carboxylesterase CEST-2.1, which links octopamine-glucosides with endogenous methyl-branched or diet-derived cyclopropane fatty acids that act as agonists of the nuclear receptor and master regulator of fat metabolism, NHR-49/PPAR. Loss of cest-2.1, loss of bacterial cyclopropane fatty acid production, or loss of endogenous biosynthesis of the methyl-branched fatty acid substrates of CEST-2.1 mimics the behavioral responses of animals lacking octopamine, indicating that regulation of neurotransmitter-dependent behavior is linked to the coordination of fat metabolism via NHR-49/PPAR. Biosynthesis and subsequent neuromodulation via lipidated neurohormone relies on an intertissue trafficking pathway in which octopamine is shuttled first into the intestine where it is chemically modified, which is likely followed by neuronal import and intracellular hydrolysis to finally release free octopamine. We propose that esterase-dependent synthesis and subsequent hydrolysis of lipidated neurohormones represents a chemical encoding mechanism by which animals integrate information from neurotransmitter signaling and lipid homeostasis to direct appropriate behaviors.

neuroscience↗