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Updated: Jul 28, 2026

The Power of Simplicity: Sea Urchin Embryos as in Vivo Developmental Models for Studying Complex Cell-to-cell Signaling Network Interactions
Published on: February 16, 2017
Regulation of metamorphosis in ascidians involves NO/cGMP signaling and HSP90
C D Bishop1, W R Bates, B P Brandhorst
1Department of Molecular Biology and Biochemistry, Simon Fraser University, Burnaby, British Columbia V5A 1S6, Canada.
Abstract:
Treatment of larvae of the ascidians Boltenia villosa (Family: Pyuridae) and Cnemidocarpa finmarkiensis (Family: Styelidae) with drugs that inhibit the function of the molecular chaperone HSP90 increased the frequency of tail resorption, the primary morphogenetic event of metamorphosis. If treatment was initiated at hatching, metamorphic events subsequent to tail resorption failed to occur, indicating an ongoing role for HSP90 during morphogenesis. Removal of tails from heads of mature, but not newly hatched larvae, induced metamorphosis of the head. Decapitation experiments indicate that the capacity of tails to shorten in response to inhibition of HSP90 function requires communication with heads. To identify candidate proteins with which HSP90 may interact to regulate metamorphosis, we noted that in mammalian cells, nitric oxide synthase (NOS) interacts with HSP90 and its activity is sensitive to drugs that inhibit HSP90 function. In addition, nitric oxide (NO) signaling in the marine snail Ilyanassa obsoleta is an important regulator of metamorphosis. Inhibition of NOS activity in these ascidian larvae with L-NAME increased the frequency of metamorphosis, consistent with a putative interaction of NOS and HSP90. NOS is present in tail muscle cells, implicating them as targets for the drug treatments, consistent with the decapitation experiments. Inhibition of soluble guanylyl cyclase, the most common effector of NO signaling, also increased the frequency of metamorphosis. In contrast to treatment with anti-HSP90 drugs, metamorphosis induced with L-NAME or ODQ was complete. The results presented suggest that an HSP90-dependent, NO-based regulatory mechanism localized in tails represses ascidian metamorphosis. We discuss these results in relation to the induction of ascidian metamorphosis by several unrelated agents.
Insights
Inhibition of heat shock protein 90 (HSP90) and nitric oxide synthase (NOS) promotes ascidian metamorphosis. This suggests a tail-localized, HSP90-dependent, NO-based mechanism represses ascidian metamorphosis.
Area of Science:
- Developmental Biology
- Molecular Biology
- Marine Biology
Background:
- Metamorphosis is a critical developmental transition.
- The molecular chaperone HSP90 plays a role in various cellular processes.
- Nitric oxide (NO) signaling is implicated in regulating metamorphosis in some species.
Purpose of the Study:
- To investigate the role of HSP90 in ascidian metamorphosis.
- To explore the potential involvement of nitric oxide synthase (NOS) in this process.
- To elucidate the regulatory mechanisms controlling ascidian metamorphosis.
Main Methods:
- Treatment of ascidian larvae (Boltenia villosa and Cnemidocarpa finmarkiensis) with HSP90 inhibitors.
- Decapitation experiments to assess the role of larval tails and heads.
- Inhibition of NOS activity using L-NAME and soluble guanylyl cyclase using ODQ.
Main Results:
- Inhibiting HSP90 function increased tail resorption but often blocked subsequent metamorphic events.
- Decapitation experiments suggested communication between tails and heads is necessary for HSP90 inhibition-induced tail shortening.
- Inhibition of NOS or soluble guanylyl cyclase increased metamorphosis frequency, with complete metamorphosis observed.
- NOS was detected in tail muscle cells, suggesting a potential target for drug treatments.
Conclusions:
- Ascidian metamorphosis appears to be repressed by an HSP90-dependent, NO-based regulatory mechanism located in the tails.
- HSP90 has an ongoing role in ascidian morphogenesis beyond initial tail resorption.
- NO signaling is a key regulator of ascidian metamorphosis, potentially interacting with HSP90.
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