Literature DB >> 28972274

Motor system plasticity after unilateral injury in the developing brain.

Preston T J A Williams1, Yu-Qiu Jiang1, John H Martin1,2.   

Abstract

In maturity, motor skills depend on the corticospinal tract (CST) and brainstem pathways that together synapse on interneurons and motoneurons in the spinal cord. Descending signals to spinal neurons that mediate voluntary control can be distinguished from peripheral sensory signals, primarily for feedback control. These motor system circuits depend initially on developmental genetic mechanisms to establish their connections and neural activity- and use-dependent synaptic refinement during the early postnatal period to enable motor skills to develop. In this review we consider four key activity-dependent developmental mechanisms that provide insights into how the motor systems establish the proper connections for skilled movement control and how the same mechanisms also inform the mechanisms of motor impairments and developmental plasticity after corticospinal system injury: (1) synaptic competition between the CSTs from each hemisphere; (2) interactions between the CST and spinal cord neurons; (3) synaptic competition between the CST and proprioceptive sensory fibres; and (4) interactions between the developing corticospinal motor system and the rubrospinal tract. Our findings suggest that the corticospinal motor system effectively 'oversees' development of its subcortical targets through synaptic competition and trophic-like interactions and this has important implications for motor impairments after perinatal cortical stroke. WHAT THIS PAPER ADDS: Neural activity-dependent processes inform the brain and spinal cord response to injury. The corticospinal motor system may 'oversee' development of its downstream subcortical targets through activity, trophic-like interactions, and synaptic competition.
© 2017 Mac Keith Press.

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Year:  2017        PMID: 28972274      PMCID: PMC5773112          DOI: 10.1111/dmcn.13581

Source DB:  PubMed          Journal:  Dev Med Child Neurol        ISSN: 0012-1622            Impact factor:   5.449


  27 in total

1.  Evidence of activity-dependent withdrawal of corticospinal projections during human development.

Authors:  J A Eyre; J P Taylor; F Villagra; M Smith; S Miller
Journal:  Neurology       Date:  2001-11-13       Impact factor: 9.910

2.  Motor Cortex Activity Organizes the Developing Rubrospinal System.

Authors:  Preston T J A Williams; John H Martin
Journal:  J Neurosci       Date:  2015-09-30       Impact factor: 6.167

3.  Differential activity-dependent development of corticospinal control of movement and final limb position during visually guided locomotion.

Authors:  K M Friel; T Drew; J H Martin
Journal:  J Neurophysiol       Date:  2007-03-21       Impact factor: 2.714

4.  Activity-dependent plasticity improves M1 motor representation and corticospinal tract connectivity.

Authors:  S Chakrabarty; K M Friel; J H Martin
Journal:  J Neurophysiol       Date:  2008-12-17       Impact factor: 2.714

5.  Activity-dependent codevelopment of the corticospinal system and target interneurons in the cervical spinal cord.

Authors:  Samit Chakrabarty; Brandon Shulman; John H Martin
Journal:  J Neurosci       Date:  2009-07-08       Impact factor: 6.167

6.  Co-development of proprioceptive afferents and the corticospinal tract within the cervical spinal cord.

Authors:  Samit Chakrabarty; John H Martin
Journal:  Eur J Neurosci       Date:  2011-08-22       Impact factor: 3.386

7.  Control of species-dependent cortico-motoneuronal connections underlying manual dexterity.

Authors:  Zirong Gu; John Kalambogias; Shin Yoshioka; Wenqi Han; Zhuo Li; Yuka Imamura Kawasawa; Sirisha Pochareddy; Zhen Li; Fuchen Liu; Xuming Xu; H. R. Sagara Wijeratne; Masaki Ueno; Emily Blatz; Joseph Salomone; Atsushi Kumanogoh; Mladen-Roko Rasin; Brian Gebelein; Matthew T Weirauch; Nenad Sestan; John H Martin; Yutaka Yoshida
Journal:  Science       Date:  2017-07-28       Impact factor: 47.728

8.  Skilled Movements Require Non-apoptotic Bax/Bak Pathway-Mediated Corticospinal Circuit Reorganization.

Authors:  Zirong Gu; Najet Serradj; Masaki Ueno; Mishi Liang; Jie Li; Mark L Baccei; John H Martin; Yutaka Yoshida
Journal:  Neuron       Date:  2017-05-03       Impact factor: 17.173

9.  Using motor behavior during an early critical period to restore skilled limb movement after damage to the corticospinal system during development.

Authors:  Kathleen Friel; Samit Chakrabarty; Hsing-Ching Kuo; John Martin
Journal:  J Neurosci       Date:  2012-07-04       Impact factor: 6.167

10.  Spinal cord plasticity in response to unilateral inhibition of the rat motor cortex during development: changes to gene expression, muscle afferents and the ipsilateral corticospinal projection.

Authors:  G J Clowry; B M Davies; N S Upile; C L Gibson; P M Bradley
Journal:  Eur J Neurosci       Date:  2004-11       Impact factor: 3.386

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  9 in total

1.  Neuronal activity and microglial activation support corticospinal tract and proprioceptive afferent sprouting in spinal circuits after a corticospinal system lesion.

Authors:  Yu-Qiu Jiang; Kristine Armada; John H Martin
Journal:  Exp Neurol       Date:  2019-07-18       Impact factor: 5.330

2.  Animal models of developmental motor disorders: parallels to human motor dysfunction in cerebral palsy.

Authors:  Clarissa F Cavarsan; Monica A Gorassini; Katharina A Quinlan
Journal:  J Neurophysiol       Date:  2019-08-14       Impact factor: 2.714

3.  Left-Right Locomotor Coordination in Human Neonates.

Authors:  Arthur H Dewolf; Valentina La Scaleia; Adele Fabiano; Francesca Sylos-Labini; Vito Mondi; Simonetta Picone; Ambrogio Di Paolo; Piermichele Paolillo; Yuri Ivanenko; Francesco Lacquaniti
Journal:  J Neurosci       Date:  2022-07-13       Impact factor: 6.709

4.  Autologous cellular therapy for cerebral palsy: a randomized, crossover trial.

Authors:  Charles S Cox; Jenifer Juranek; Steven Kosmach; Claudia Pedroza; Nivedita Thakur; Allison Dempsey; Kimberly Rennie; Michael C Scott; Margaret Jackson; Akshita Kumar; Benjamin Aertker; Henry Caplan; Fabio Triolo; Sean I Savitz
Journal:  Brain Commun       Date:  2022-05-20

5.  Parent-Reported PEDI-CAT Mobility and Gross Motor Function in Infants With Cerebral Palsy.

Authors:  Kimberley Scott; Jessica Lewis; Xueliang Pan; Jill Heathcock
Journal:  Pediatr Phys Ther       Date:  2021-07-01       Impact factor: 1.452

Review 6.  Rodent Models of Developmental Ischemic Stroke for Translational Research: Strengths and Weaknesses.

Authors:  Mariangela Gennaro; Alessandro Mattiello; Tommaso Pizzorusso
Journal:  Neural Plast       Date:  2019-04-04       Impact factor: 3.599

7.  Frequency distribution in intraoperative stimulation-evoked EMG responses during selective dorsal rhizotomy in children with cerebral palsy-part 1: clinical setting and neurophysiological procedure.

Authors:  Simone Wolter; Claudia Spies; John H Martin; Matthias Schulz; Akosua Sarpong-Bengelsdorf; Joachim Unger; Ulrich-W Thomale; Theodor Michael; James F Murphy; Hannes Haberl
Journal:  Childs Nerv Syst       Date:  2020-06-23       Impact factor: 1.475

8.  Reduced wrist flexor H-reflex excitability is linked with increased wrist proprioceptive error in adults with cerebral palsy.

Authors:  S Shekar Dukkipati; Sarah J Walker; Michael P Trevarrow; Morgan Busboom; Sarah E Baker; Max J Kurz
Journal:  Front Neurol       Date:  2022-08-09       Impact factor: 4.086

9.  COpenhagen Neuroplastic TRaining Against Contractures in Toddlers (CONTRACT): protocol of an open-label randomised clinical trial with blinded assessment for prevention of contractures in infants with high risk of cerebral palsy.

Authors:  Maria Willerslev-Olsen; Jakob Lorentzen; Katrine Røhder; Anina Ritterband-Rosenbaum; Mikkel Justiniano; Andrea Guzzetta; Ane Vibeke Lando; Anne-Mette Bæk Jensen; Gorm Greisen; Sofie Ejlersen; Line Zacho Pedersen; Britta Andersen; Patricia Lipthay Behrend; Jens Bo Nielsen
Journal:  BMJ Open       Date:  2021-07-06       Impact factor: 2.692

  9 in total

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