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Maurice R Elphick

Publications and source records attributed to Maurice R Elphick.

2 recordsLinked to original sources

Signaling mechanisms of vasopressin/oxytocin-type neuropeptide-induced muscle contraction in the sea cucumber Apostichopus japonicus.

The myoregulatory action of vasopressin/oxytocin (VP/OT)-type neuropeptides is evolutionarily conserved across Bilateria. In vertebrates, the signaling cascades involved have been comprehensively characterized in several muscle types, including uterine and gastrointestinal smooth muscles. VP/OT-type neuropeptide-induced muscle contraction or relaxation has been reported in a variety of invertebrates, but the downstream signaling pathways responsible for these effects have yet to be elucidated. Here, using heterologous cell systems and in vitro pharmacological experiments, we investigated the signaling pathways underlying VP/OT-type neuropeptide (holotocin) induced contraction of the longitudinal muscle of the body wall (LMBW) in the sea cucumber Apostichopus japonicus (phylum Echinodermata), a deuterostome invertebrate. Holotocin-induced contraction of the LMBW comprised two distinct phases: an initial rapid phasic contraction followed by a sustained tonic contraction. Pharmacological experiments revealed that upon binding to its receptor AjHOR, holotocin activates a Gαq-dependent pathway, leading to phospholipase C (PLC) activation and subsequent hydrolysis of phosphatidylinositol 4,5-bisphosphate (PIP2) into inositol 1,4,5-trisphosphate (IP3) and diacylglycerol (DAG). IP3 triggers Ca2+ release from intracellular Ca2+ stores via IP₃ receptors (IP3R), but depletion of intracellular Ca2+ does not activate store-operated Ca2+ entry (SOCE). DAG activates protein kinase C (PKC), which may modulate the activity of ion channels in the plasma membrane, resulting in membrane depolarization, opening of voltage-gated Ca2+ channels (VGCCs), and subsequent influx of extracellular Ca2+. Overall, this study reveals similarities and differences in the signaling pathways mediating smooth muscle contraction in invertebrates and vertebrates, providing new insights into the evolution of these mechanisms across the Bilateria.

Ca(2+)

Evolutionary conservation and adaptability of cholecystokinin neuropeptide signaling in the sea cucumber Apostichopus japonicus.

BACKGROUND: Food ingestion is fundamental for animal survival and growth, with the cessation of feeding upon nutrient fulfillment being tightly regulated by a variety of satiety factors. Notably, sulfakinin/cholecystokinin (SK/CCK)-type neuropeptide signaling has been identified as an inhibitory regulator of food intake across the animal kingdom. However, its regulatory mechanism in feeding in deuterostome invertebrates remains unclear. Here, we characterized SK/CCK-type signaling in a deuterostome invertebrate, the sea cucumber Apostichopus japonicus (phylum Echinodermata). RESULTS: A single SK/CCK-type precursor in A. japonicus generates two mature peptides (AjSK/CCK1, AjSK/CCK2) that activate a shared receptor (AjSK/CCKR), triggering Ca2+ mobilization via the Gαq-dependent pathway and extracellular signal regulated kinase 1/2 (ERK1/2) phosphorylation. Both peptides induce dose-dependent contraction of longitudinal muscles, while AjSK/CCK2 additionally elicits sustained contraction of the posterior intestine, an effect absent in other gut regions. Long-term injection of both peptides reduces food intake and significantly downregulates orexin-type neuropeptide genes (AjOrexin1P, AjOrexin2P) in the circumoral nerve ring (CNR) and intestine. CONCLUSIONS: Unlike mammals, where CCK inhibits feeding by contracting the pyloric sphincter to delay gastric emptying, SK/CCK-type peptides in sea cucumbers exert their anorexic effect in part by selectively contracting the posterior intestine, thereby inhibiting intestinal emptying. This divergence in action sites highlights the evolutionary adaptability of SK/CCK-type signaling as a conserved inhibitory regulator of feeding across bilaterian animals. Elucidating these mechanisms in the economically important A. japonicus may inform development of appetite-promoting agents for sustainable aquaculture.

Animals