Coordinated cellular behavior regulated by epinephrine neurotransmitters in the nerveless placozoa
Координированное клеточное поведение, регулируемое нейромедиатором адреналином, у лишённых нервной системы плакозоев
2024-10-04
SCID: 54.1/jvtfqves
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G protein-coupled receptorsTrichoplax adhaerenscalcium signalingciliary redox signalsepinephrine signaling
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Abstract (AI)
Understanding how cells communicated before the evolution of nervous systems in early metazoans is key to unraveling the origins of multicellular life. We focused on Trichoplax adhaerens, one of the earliest multicellular animals, to explore this question. Through screening a small compound library targeting G protein-coupled receptors (GPCRs), we found that Trichoplax exhibits distinctive rotational movements when exposed to epinephrine. Further studies suggested that, akin to those in humans, this basal organism also utilizes adrenergic signals to regulate its negative taxis behavior, with the downstream signaling pathway being more straightforward and efficient. Mechanistically, the binding of ligands activates downstream calcium signaling, subsequently modulating ciliary redox signals. This process ultimately regulates the beating direction of cilia, governing the coordinated movement of the organism. Our findings not only highlight the enduring presence of adrenergic signaling in stress responses during evolution but also underscore the importance of early metazoan expansion of GPCR families. This amplification empowers us with the ability to sense external cues and modulate cellular communication effectively. Basal multicellular animals are capable of coordinated movement despite the absence of an organize nervous system, though it remains unclear how cells communicate in these organisms. Here they use the placozoa Trichoplax to screen for active signaling molecules, and find that epinephrine can induce coordinated movement in these animals.
Key Findings
1
Adrenergic ligand binding activates calcium signaling, which modulates ciliary redox signals and determines ciliary beating direction.
2
Ciliary regulation through adrenergic signaling enables coordinated organismal movement without an organized nervous system.
3
Epinephrine induces distinctive rotational movements in the nerveless placozoan Trichoplax adhaerens.
4
The findings support the evolutionary persistence of adrenergic stress signaling and suggest that early GPCR diversification enhanced environmental sensing and cellular communication.
5
Trichoplax uses adrenergic signaling to regulate negative taxis, through a simpler downstream pathway than in humans.
Research Object
Trichoplax adhaerens placozoans
Research Subject
Epinephrine-mediated adrenergic signaling and downstream calcium–ciliary redox regulation of ciliary beating direction and coordinated negative-taxis movement
Publication Details
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2024-10-04
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