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Kurio, M.

Publications and source records attributed to Kurio, M..

3 recordsLinked to original sources

The membrane-tethered cis-ligand Belly roll elicits GPCR signaling thereby enabling adaptive avoidance behaviors

Animals adapt their behavioral responses to sensory stimuli through neuromodulatory circuits. Increasing fluid osmolality drives water-seeking behaviors via neuromodulation. However, the neural circuits and molecular mechanisms linking internal osmotic state to behavioral adaptation remain unclear. Here, we show that desiccation stress increases hemolymph osmolality and enhances avoidance of dry substrates in Drosophila larvae, enabling larvae to seek humid environments. We identify the abdominal leucokinin-producing (ABLK) neurons as a key circuit node that mediates this adaptive response. We further show that the GPI-anchored protein Belly roll (Bero), a member of the lymphocyte antigen-6/urokinase-type plasminogen activator receptor (LU) superfamily, acts as a non-canonical endogenous cis-ligand for the neuropeptide G protein-coupled receptor Allatostatin C receptor 2 (AstC-R2). Genetic, biochemical, and imaging analyses revealed that Bero activates AstC-R2 to induce phospholipase C {beta} (PLC{beta})-dependent signaling, thereby suppressing sensory transmission in ABLK neurons. Desiccation-induced increase in hemolymph osmolality activates VMA-AstC neurons to trigger Allatostatin C (AstC) release, which antagonizes Bero-mediated AstC-R2 signaling and promotes dry substrate avoidance. Together, our findings uncover a neural circuit and a molecular mechanism by which changes in internal physiological state dynamically switch GPCR signaling through the opposing actions of membrane-tethered and secreted ligands, thereby reshaping adaptive behavioral responses.

neuroscience↗

Refinement of a technique for collecting and evaluating the osmolality of haemolymph from Drosophila larvae

ex vivo physiological experiments using small insect models such as Drosophila larvae have become increasingly useful to address fundamental biological questions. To perform such experiments, various artificial saline solutions have been developed, but their osmolality varies significantly from one to the next. Such a variation of osmolality stems, in part, from the difficulty of determining the true value of haemolymph osmolality in Drosophila larvae. Thus, there is a pressing need to refine protocols for collecting and measuring the osmolality of the larval haemolymph. Two major obstacles are thought to impede the accurate analysis of haemolymph collected from small insects: melanin formation and gut-derived contamination. Here, we greatly refined existing haemolymph collecting methods, evaluated the purity of the collected haemolymph under melanin-free conditions, and concluded that the true value of haemolymph osmolality is close to 306.0 mOsm kg-1 in Drosophila larvae.

physiology↗

The GPI-anchored Ly6 protein Belly roll regulates Drosophila melanogaster escape behaviors by modulating the excitability of nociceptive peptidergic interneurons

Appropriate modulation of escape behaviors in response to potentially damaging stimuli is essential for survival. Although nociceptive circuitry has been studied, it is poorly understood how genetic contexts affect the relevant escape responses. Using an unbiased genome-wide association analysis, we identified a Ly6/-neurotoxin family protein, Belly roll (Bero), which negatively regulates Drosophila nociceptive escape behavior. We show that Bero is expressed in abdominal leucokinin-producing neurons (ABLK neurons) and bero knockdown in ABLK neurons resulted in enhanced escape behavior. Furthermore, we demonstrated that ABLK neurons responded to the activation of nociceptors and initiated the behavior. Notably, bero knockdown reduced the persistent neuronal activity and increased the evoked nociceptive responses in ABLK neurons. Our findings reveal that Bero modulates an escape response by regulating distinct neuronal activities in ABLK neurons.

neuroscience↗