Literature DB >> 28855288

Diversity of molecularly defined spinal interneurons engaged in mammalian locomotor pattern generation.

Lea Ziskind-Conhaim1, Shawn Hochman2.   

Abstract

Mapping the expression of transcription factors in the mouse spinal cord has identified ten progenitor domains, four of which are cardinal classes of molecularly defined, ventrally located interneurons that are integrated in the locomotor circuitry. This review focuses on the properties of these interneuronal populations and their contribution to hindlimb locomotor central pattern generation. Interneuronal populations are categorized based on their excitatory or inhibitory functions and their axonal projections as predictors of their role in locomotor rhythm generation and coordination. The synaptic connectivity and functions of these interneurons in the locomotor central pattern generators (CPGs) have been assessed by correlating their activity patterns with motor output responses to rhythmogenic neurochemicals and sensory and descending fibers stimulations as well as analyzing kinematic gait patterns in adult mice. The observed complex organization of interneurons in the locomotor CPG circuitry, some with seemingly similar physiological functions, reflects the intricate repertoire associated with mammalian motor control and is consistent with high transcriptional heterogeneity arising from cardinal interneuronal classes. This review discusses insights derived from recent studies to describe innovative approaches and limitations in experimental model systems and to identify missing links in current investigational enterprise.
Copyright © 2017 the American Physiological Society.

Entities:  

Keywords:  locomotor circuitry; molecularly defined spinal interneurons; mouse spinal cord; rhythm coordination; rhythm generation

Mesh:

Year:  2017        PMID: 28855288      PMCID: PMC5712661          DOI: 10.1152/jn.00322.2017

Source DB:  PubMed          Journal:  J Neurophysiol        ISSN: 0022-3077            Impact factor:   2.714


  224 in total

1.  Networks of inhibitory and excitatory commissural interneurons mediating crossed reticulospinal actions.

Authors:  B Anne Bannatyne; Stephen A Edgley; Ingela Hammar; Elzbieta Jankowska; David J Maxwell
Journal:  Eur J Neurosci       Date:  2003-10       Impact factor: 3.386

2.  Modular organization of turtle spinal interneurons during normal and deletion fictive rostral scratching.

Authors:  Paul S G Stein; Susan Daniels-McQueen
Journal:  J Neurosci       Date:  2002-08-01       Impact factor: 6.167

3.  Synaptic patterning of left-right alternation in a computational model of the rodent hindlimb central pattern generator.

Authors:  William Erik Sherwood; Ronald Harris-Warrick; John Guckenheimer
Journal:  J Comput Neurosci       Date:  2010-07-20       Impact factor: 1.621

Review 4.  Biological pattern generation: the cellular and computational logic of networks in motion.

Authors:  Sten Grillner
Journal:  Neuron       Date:  2006-12-07       Impact factor: 17.173

Review 5.  Initiation of locomotion in lampreys.

Authors:  Réjean Dubuc; Frédéric Brocard; Myriam Antri; Karine Fénelon; Jean-François Gariépy; Roy Smetana; Ariane Ménard; Didier Le Ray; Gonzalo Viana Di Prisco; Edouard Pearlstein; Mikhail G Sirota; Dominique Derjean; Melissa St-Pierre; Barbara Zielinski; François Auclair; Danielle Veilleux
Journal:  Brain Res Rev       Date:  2007-08-22

6.  Netrin-1-dependent spinal interneuron subtypes are required for the formation of left-right alternating locomotor circuitry.

Authors:  Nadine Rabe; Henrik Gezelius; Anna Vallstedt; Fatima Memic; Klas Kullander
Journal:  J Neurosci       Date:  2009-12-16       Impact factor: 6.167

Review 7.  The intrinsic operation of the networks that make us locomote.

Authors:  Sten Grillner; Abdeljabbar El Manira
Journal:  Curr Opin Neurobiol       Date:  2015-01-17       Impact factor: 6.627

8.  Lhx1 and Lhx5 maintain the inhibitory-neurotransmitter status of interneurons in the dorsal spinal cord.

Authors:  Andrea Pillai; Ahmed Mansouri; Richard Behringer; Heiner Westphal; Martyn Goulding
Journal:  Development       Date:  2006-12-13       Impact factor: 6.868

9.  EphrinB3/EphA4-mediated guidance of ascending and descending spinal tracts.

Authors:  Sónia Paixão; Aarathi Balijepalli; Najet Serradj; Jingwen Niu; Wenqin Luo; John H Martin; Rüdiger Klein
Journal:  Neuron       Date:  2013-12-18       Impact factor: 17.173

10.  Combinatorial actions of patterning and HLH transcription factors in the spatiotemporal control of neurogenesis and gliogenesis in the developing spinal cord.

Authors:  Michiya Sugimori; Motoshi Nagao; Nicolas Bertrand; Carlos M Parras; François Guillemot; Masato Nakafuku
Journal:  Development       Date:  2007-03-07       Impact factor: 6.868

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  15 in total

1.  Somatosensory corticospinal tract axons sprout within the cervical cord following a dorsal root/dorsal column spinal injury in the rat.

Authors:  Margaret M McCann; Karen M Fisher; Jamie Ahloy-Dallaire; Corinna Darian-Smith
Journal:  J Comp Neurol       Date:  2019-12-09       Impact factor: 3.215

Review 2.  Central pattern generators in the turtle spinal cord: selection among the forms of motor behaviors.

Authors:  Paul S G Stein
Journal:  J Neurophysiol       Date:  2017-10-25       Impact factor: 2.714

3.  Neurotransmitters and Motoneuron Contacts of Multifunctional and Behaviorally Specialized Turtle Spinal Cord Interneurons.

Authors:  B Anne Bannatyne; Zhao-Zhe Hao; Georgia M C Dyer; Masahiko Watanabe; David J Maxwell; Ari Berkowitz
Journal:  J Neurosci       Date:  2020-02-17       Impact factor: 6.167

4.  Crossed activation of thoracic trunk motoneurons by medullary reticulospinal neurons.

Authors:  Brandon K LaPallo; Andrea Giorgi; Marie-Claude Perreault
Journal:  J Neurophysiol       Date:  2019-10-30       Impact factor: 2.714

Review 5.  Derivation of Specific Neural Populations From Pluripotent Cells for Understanding and Treatment of Spinal Cord Injury.

Authors:  Nicholas White; Shelly E Sakiyama-Elbert
Journal:  Dev Dyn       Date:  2018-11-26       Impact factor: 3.780

6.  The role of V3 neurons in speed-dependent interlimb coordination during locomotion in mice.

Authors:  Han Zhang; Natalia A Shevtsova; Simon M Danner; Ying Zhang; Ilya A Rybak; Dylan Deska-Gauthier; Colin Mackay; Kimberly J Dougherty
Journal:  Elife       Date:  2022-04-27       Impact factor: 8.713

7.  Control of mammalian locomotion by ventral spinocerebellar tract neurons.

Authors:  Joshua I Chalif; María de Lourdes Martínez-Silva; John G Pagiazitis; Andrew J Murray; George Z Mentis
Journal:  Cell       Date:  2022-01-20       Impact factor: 41.582

8.  V2a interneuron diversity tailors spinal circuit organization to control the vigor of locomotor movements.

Authors:  Jianren Song; Elin Dahlberg; Abdeljabbar El Manira
Journal:  Nat Commun       Date:  2018-08-22       Impact factor: 14.919

9.  Mapping Connectivity Amongst Interneuronal Components of the Locomotor CPG.

Authors:  Farhia Haque; Simon Gosgnach
Journal:  Front Cell Neurosci       Date:  2019-10-04       Impact factor: 5.505

Review 10.  Principles Governing Locomotion in Vertebrates: Lessons From Zebrafish.

Authors:  Eva M Berg; E Rebecka Björnfors; Irene Pallucchi; Laurence D Picton; Abdeljabbar El Manira
Journal:  Front Neural Circuits       Date:  2018-09-13       Impact factor: 3.492

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