Literature DB >> 22197243

Emergence of patterned activity in the developing zebrafish spinal cord.

Erica Warp1, Gautam Agarwal, Claire Wyart, Drew Friedmann, Claire S Oldfield, Alden Conner, Filippo Del Bene, Aristides B Arrenberg, Herwig Baier, Ehud Y Isacoff.   

Abstract

BACKGROUND: Developing neural networks display spontaneous and correlated rhythmic bursts of action potentials that are essential for circuit refinement. In the spinal cord, it is poorly understood how correlated activity is acquired and how its emergence relates to the formation of the spinal central pattern generator (CPG), the circuit that mediates rhythmic behaviors like walking and swimming. It is also unknown whether early, uncorrelated activity is necessary for the formation of the coordinated CPG.
RESULTS: Time-lapse imaging in the intact zebrafish embryo with the genetically encoded calcium indicator GCaMP3 revealed a rapid transition from slow, sporadic activity to fast, ipsilaterally correlated, and contralaterally anticorrelated activity, characteristic of the spinal CPG. Ipsilateral correlations were acquired through the coalescence of local microcircuits. Brief optical manipulation of activity with the light-driven pump halorhodopsin revealed that the transition to correlated activity was associated with a strengthening of ipsilateral connections, likely mediated by gap junctions. Contralateral antagonism increased in strength at the same time. The transition to coordinated activity was disrupted by long-term optical inhibition of sporadic activity in motoneurons and ventral longitudinal descending interneurons and resulted in more neurons exhibiting uncoordinated activity patterns at later time points.
CONCLUSIONS: These findings show that the CPG in the zebrafish spinal cord emerges directly from a sporadically active network as functional connectivity strengthens between local and then more distal neurons. These results also reveal that early, sporadic activity in a subset of ventral spinal neurons is required for the integration of maturing neurons into the coordinated CPG network.
Copyright © 2012 Elsevier Ltd. All rights reserved.

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Year:  2011        PMID: 22197243      PMCID: PMC3267884          DOI: 10.1016/j.cub.2011.12.002

Source DB:  PubMed          Journal:  Curr Biol        ISSN: 0960-9822            Impact factor:   10.834


  43 in total

1.  Synchronization of an embryonic network of identified spinal interneurons solely by electrical coupling.

Authors:  L Saint-Amant; P Drapeau
Journal:  Neuron       Date:  2001-09-27       Impact factor: 17.173

Review 2.  Encoding and decoding of reticulospinal commands.

Authors:  Tatiana G Deliagina; Pavel V Zelenin; Grigori N Orlovsky
Journal:  Brain Res Brain Res Rev       Date:  2002-10

3.  Basis of changes in left-right coordination of rhythmic motor activity during development in the rat spinal cord.

Authors:  Kiyomi Nakayama; Hiroshi Nishimaru; Norio Kudo
Journal:  J Neurosci       Date:  2002-12-01       Impact factor: 6.167

4.  Development of synchronized activity of cranial motor neurons in the segmented embryonic mouse hindbrain.

Authors:  J Gust; J J Wright; E B Pratt; M M Bosma
Journal:  J Physiol       Date:  2003-05-02       Impact factor: 5.182

5.  Spontaneous activity-independent intracellular calcium signals in the developing spinal cord of the zebrafish embryo.

Authors:  Rachel Ashworth; Stephen R Bolsover
Journal:  Brain Res Dev Brain Res       Date:  2002-12-15

6.  Ontogeny of rhythmic motor patterns generated in the embryonic rat spinal cord.

Authors:  Jun Ren; John J Greer
Journal:  J Neurophysiol       Date:  2003-03       Impact factor: 2.714

7.  Stages of embryonic development of the zebrafish.

Authors:  C B Kimmel; W W Ballard; S R Kimmel; B Ullmann; T F Schilling
Journal:  Dev Dyn       Date:  1995-07       Impact factor: 3.780

8.  Motoneuron activity patterns related to the earliest behavior of the zebrafish embryo.

Authors:  L Saint-Amant; P Drapeau
Journal:  J Neurosci       Date:  2000-06-01       Impact factor: 6.167

9.  Characterization of the circuits that generate spontaneous episodes of activity in the early embryonic mouse spinal cord.

Authors:  M Gartz Hanson; Lynn T Landmesser
Journal:  J Neurosci       Date:  2003-01-15       Impact factor: 6.167

Review 10.  Mechanisms underlying spontaneous patterned activity in developing neural circuits.

Authors:  Aaron G Blankenship; Marla B Feller
Journal:  Nat Rev Neurosci       Date:  2009-12-02       Impact factor: 34.870

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  55 in total

1.  High-resolution optical control of spatiotemporal neuronal activity patterns in zebrafish using a digital micromirror device.

Authors:  Peixin Zhu; Otto Fajardo; Jennifer Shum; Yan-Ping Zhang Schärer; Rainer W Friedrich
Journal:  Nat Protoc       Date:  2012-06-28       Impact factor: 13.491

Review 2.  Imaging spinal cord activity in behaving animals.

Authors:  Nicholas A Nelson; Xiang Wang; Daniela Cook; Erin M Carey; Axel Nimmerjahn
Journal:  Exp Neurol       Date:  2019-06-06       Impact factor: 5.330

3.  Differential activation of lumbar and sacral motor pools during walking at different speeds and slopes.

Authors:  A H Dewolf; Y P Ivanenko; K E Zelik; F Lacquaniti; P A Willems
Journal:  J Neurophysiol       Date:  2019-07-10       Impact factor: 2.714

4.  All-optical imaging and manipulation of whole-brain neuronal activities in behaving larval zebrafish.

Authors:  Zhen-Fei Jiao; Chun-Feng Shang; Yu-Fan Wang; Zhe Yang; Chen Yang; Fu-Ning Li; Jin-Ze Xie; Jing-Wei Pan; Ling Fu; Jiu-Lin Du
Journal:  Biomed Opt Express       Date:  2018-11-12       Impact factor: 3.732

Review 5.  Genetically encoded optical indicators for the analysis of neuronal circuits.

Authors:  Thomas Knöpfel
Journal:  Nat Rev Neurosci       Date:  2012-08-30       Impact factor: 34.870

6.  Activity-dependent competition regulates motor neuron axon pathfinding via PlexinA3.

Authors:  Paola V Plazas; Xavier Nicol; Nicholas C Spitzer
Journal:  Proc Natl Acad Sci U S A       Date:  2013-01-09       Impact factor: 11.205

7.  Efficient and accurate extraction of in vivo calcium signals from microendoscopic video data.

Authors:  Shanna L Resendez; Jose Rodriguez-Romaguera; Jessica C Jimenez; Shay Q Neufeld; Pengcheng Zhou; Andrea Giovannucci; Johannes Friedrich; Eftychios A Pnevmatikakis; Garret D Stuber; Rene Hen; Mazen A Kheirbek; Bernardo L Sabatini; Robert E Kass; Liam Paninski
Journal:  Elife       Date:  2018-02-22       Impact factor: 8.140

Review 8.  Spontaneous Network Activity and Synaptic Development.

Authors:  Daniel Kerschensteiner
Journal:  Neuroscientist       Date:  2013-11-25       Impact factor: 7.519

Review 9.  Spatiotemporal integration of developmental cues in neural development.

Authors:  Laura N Borodinsky; Yesser H Belgacem; Immani Swapna; Olesya Visina; Olga A Balashova; Eduardo B Sequerra; Michelle K Tu; Jacqueline B Levin; Kira A Spencer; Patricio A Castro; Andrew M Hamilton; Sangwoo Shim
Journal:  Dev Neurobiol       Date:  2014-12-10       Impact factor: 3.964

10.  A spinal opsin controls early neural activity and drives a behavioral light response.

Authors:  Drew Friedmann; Adam Hoagland; Shai Berlin; Ehud Y Isacoff
Journal:  Curr Biol       Date:  2014-12-04       Impact factor: 10.834

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