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Functional Role of a Specialized Class of Spinal Commissural Inhibitory Neurons During Fast Escapes in Zebrafish

Overview
Journal J Neurosci
Specialty Neurology
Date 2009 May 29
PMID 19474306
Citations 77
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Abstract

In teleost fish, the Mauthner (M) cell, a large reticulospinal neuron in the brainstem, triggers escape behavior. Spinal commissural inhibitory interneurons that are electrotonically excited by the M-axon have been identified, but the behavioral roles of these neurons have not yet been addressed. Here, we studied these neurons, named CoLo (commissural local), in larval zebrafish using an enhancer-trap line in which the entire population of CoLos was visualized by green fluorescent protein. CoLos were present at one cell per hemi-segment. Electrophysiological recordings showed that an M-spike evoked a spike in CoLos via electrotonic transmission and that CoLos made monosynaptic inhibitory connections onto contralateral primary motoneurons, consistent with the results in adult goldfish. We further showed that CoLos were active only during escapes. We examined the behavioral roles of CoLos by investigating escape behaviors in CoLo-ablated larvae. The results showed that the escape behaviors evoked by sound/vibration stimuli were often impaired with a reduced initial bend of the body, indicating that CoLos play important roles in initiating escapes. We obtained several lines of evidence that strongly suggested that the impaired escapes occurred during bilateral activation of the M-cells: in normal larvae, CoLo-mediated inhibitory circuits enable animals to perform escapes even in these occasions by silencing the output of the slightly delayed firing of the second M-cell. This study illustrates (1) a clear example of the behavioral role of a specialized class of interneurons and (2) the capacity of the spinal circuits to filter descending commands and thereby produce the appropriate behavior.

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References
1.
Kawakami K . Transposon tools and methods in zebrafish. Dev Dyn. 2005; 234(2):244-54. DOI: 10.1002/dvdy.20516. View

2.
Roberts A, Clarke J . The neuroanatomy of an amphibian embryo spinal cord. Philos Trans R Soc Lond B Biol Sci. 1982; 296(1081):195-212. DOI: 10.1098/rstb.1982.0002. View

3.
Hatta K, Korn H . Tonic inhibition alternates in paired neurons that set direction of fish escape reaction. Proc Natl Acad Sci U S A. 1999; 96(21):12090-5. PMC: 18417. DOI: 10.1073/pnas.96.21.12090. View

4.
Takahashi M, Narushima M, Oda Y . In vivo imaging of functional inhibitory networks on the mauthner cell of larval zebrafish. J Neurosci. 2002; 22(10):3929-38. PMC: 6757652. DOI: 20026396. View

5.
Liao J, Fetcho J . Shared versus specialized glycinergic spinal interneurons in axial motor circuits of larval zebrafish. J Neurosci. 2008; 28(48):12982-92. PMC: 2677998. DOI: 10.1523/JNEUROSCI.3330-08.2008. View