pleurobranchaea californica
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2021 ◽  
Vol 12 ◽  
Author(s):  
Colin A. Lee ◽  
Elena V. Romanova ◽  
Bruce R. Southey ◽  
Rhanor Gillette ◽  
Jonathan V. Sweedler

Despite substantial research on neuronal circuits in nudipleuran gastropods, few peptides have been implicated in nudipleuran behavior. In this study, we expanded the understanding of peptides in this clade, using three species with well-studied nervous systems, Hermissenda crassicornis, Melibe leonina, and Pleurobranchaea californica. For each species, we performed sequence homology analysis of de novo transcriptome predictions to identify homologs to 34 of 36 prohormones previously characterized in the gastropods Aplysia californica and Lymnaea stagnalis. We then used single-cell mass spectrometry to characterize peptide profiles in homologous feeding interneurons: the multifunctional ventral white cell (VWC) in P. californica and the small cardioactive peptide B large buccal (SLB) cells in H. crassicornis and M. leonina. The neurons produced overlapping, but not identical, peptide profiles. The H. crassicornis SLB cells expressed peptides from homologs to the FMRFamide (FMRFa), small cardioactive peptide (SCP), LFRFamide (LFRFa), and feeding circuit activating peptides prohormones. The M. leonina SLB cells expressed peptides from homologs to the FMRFa, SCP, LFRFa, and MIP-related peptides prohormones. The VWC, previously shown to express peptides from the FMRFa and QNFLa (a homolog of A. californica pedal peptide 4) prohormones, was shown to also contain SCP peptides. Thus, each neuron expressed peptides from the FMRFa and SCP families, the H. crassicornis and M. leonina SLB cells expressed peptides from the LFRFa family, and each neuron contained peptides from a prohormone not found in the others. These data suggest each neuron performs complex co-transmission, which potentially facilitates a multifunctional role in feeding. Additionally, the unique feeding characteristics of each species may relate, in part, to differences in the peptide profiles of these neurons. These data add chemical insight to enhance our understanding of the neuronal basis of behavior in nudipleurans and other gastropods.


2018 ◽  
Vol 285 (1885) ◽  
pp. 20180791 ◽  
Author(s):  
A. N. Tamvacakis ◽  
A. Senatore ◽  
P. S. Katz

The marine mollusc, Pleurobranchaea californica varies daily in whether it swims and this correlates with whether serotonin (5-HT) enhances the strength of synapses made by the swim central pattern generator neuron, A1/C2. Another species, Tritonia diomedea , reliably swims and does not vary in serotonergic neuromodulation. A third species, Hermissenda crassicornis , never produces this behaviour and lacks the neuromodulation. We found that expression of particular 5-HT receptor subtype (5-HTR) genes in single neurons correlates with swimming. Orthologues to seven 5-HTR genes were identified from whole-brain transcriptomes. We isolated individual A1/C2 neurons and sequenced their RNA or measured 5-HTR gene expression using absolute quantitative PCR. A1/C2 neurons isolated from Pleurobranchaea that produced a swim motor pattern just prior to isolation expressed 5-HT2a and 5-HT7 receptor genes, as did all Tritonia samples. These subtypes were absent from A1/C2 isolated from Pleurobranchaea that did not s wim on that day and from Hermissenda A1/C2 neurons. Expression of other receptors was not correlated with swimming. This suggests that these 5-HTRs may mediate the modulation of A1/C2 synaptic strength and play an important role in swimming. Furthermore, it suggests that regulation of receptor expression could underlie daily changes in behaviour as well as evolution of behaviour.


2018 ◽  
Vol 9 (8) ◽  
pp. 1986-1993
Author(s):  
Daniel J. Green ◽  
Rong-Chi Huang ◽  
Leland Sudlow ◽  
Nathan Hatcher ◽  
Kurt Potgieter ◽  
...  

2017 ◽  
Author(s):  
A.N. Tamvacakis ◽  
A. Senatore ◽  
P.S. Katz

AbstractThe marine mollusc, Pleurobranchaea californica varies daily in whether it swims and this correlates with whether serotonin (5-HT) enhances the strength of synapses made by the swim central pattern generator neuron, C2. Another species, Tritonia diomedea, reliably swims and does not vary in serotonergic neuromodulation. A third species, Hermissenda crassicornis, never produces this behavior and lacks the neuromodulation. We found that expression of particular 5-HT receptor genes in C2 correlates with swimming. Seven 5-HT receptor subtype genes were identified from whole-brain transcriptomes. We isolated individual C2 neurons and sequenced their RNA or measured 5-HT receptor gene expression using quantitative PCR. C2 neurons isolated from Pleurobranchaea individuals that produced a swim motor pattern just prior to isolation expressed the 5-HT2a and 5-HT7 receptor genes, as did the Tritonia samples. These subtypes were absent from C2 neurons isolated from Pleurobranchaea individuals that did not swim that day and from Hermissenda C2 neurons. Expression of other receptors did not correlate with swimming. This suggests that 5-HT2a and 5-HT7 receptors mediate the modulation of C2 synaptic strength and play an important role in swimming. Furthermore, the results suggest that regulation of receptor expression might underlie daily changes in behavior as well as behavioral evolution.


Author(s):  
Paul S. Katz ◽  
Akira Sakurai

This article compares the neural basis for swimming in sea slugs belonging to the Nudipleura clade of molluscs. There are two primary forms of swimming. One, dorsal/ventral (DV) body flexions, is typified by Tritonia diomedea and Pleurobranchaea californica. Although Tritonia and Pleurobranchaea evolved DV swimming independently, there are at least two homologous neurons in the central pattern generators (CPGs) underlying DV swimming in these species. Furthermore, both species have serotonergic neuromodulation of synaptic strength intrinsic to their CPGs. The other form of swimming is with alternating left/right (LR) body flexions. Melibe and Dendronotus belong to a clade of species that all swim with LR body flexions. Although the swimming behavior is homologous, their swim CPGs differ in both cellular composition and in the details of the neural mechanisms. Thus, similar behaviors have independently evolved through parallel use of homologous neurons, and homologous behaviors can be produced by different neural mechanisms.


2011 ◽  
Vol 105 (6) ◽  
pp. 2885-2890 ◽  
Author(s):  
Liudmila S. Yafremava ◽  
Rhanor Gillette

Computing targeted responses is a general problem in goal-directed behaviors. We sought the sensory template for directional turning in the predatory sea slug Pleurobranchaea californica, which calculates precise turn angles by averaging multiple stimulus sites on its chemotactile oral veil (Yafremava LS, Anthony CW, Lane L, Campbell JK, Gillette R. J Exp Biol 210: 561–569, 2007). Spiking responses to appetitive chemotactile stimulation were recorded in the two bilateral pairs of oral veil nerves, the large oral veil nerve (LOVN) and the tentacle nerve (TN). The integrative abilities of the peripheral nervous system were significant. Nerve spiking responses to punctate, one-site stimulation of the oral veil followed sigmoid relations as stimuli moved between lateral tentacle and the midline. Receptive fields of LOVN and TN were unilateral, overlapping, and oppositely weighted for responsiveness across the length of oral veil. Simultaneous two-site stimulation caused responses of amplitudes markedly smaller than the sum of corresponding one-site responses. Plots of two-site nerve responses against the summed approximate distances from midline of each site were markedly linear. Thus the sensory paths in the peripheral nervous system show reciprocal occlusion similar to lateral inhibition. This outcome suggests a novel neural function for lateral inhibitory mechanisms, distinct from simple contrast enhancement, in computation of both sensory maps and targeted motor actions.


2007 ◽  
Vol 210 (4) ◽  
pp. 561-569 ◽  
Author(s):  
L. S. Yafremava ◽  
C. W. Anthony ◽  
L. Lane ◽  
J. K. Campbell ◽  
R. Gillette

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