ArticleFrontiers in cellular neuroscience2020
Altered Motoneuron Properties Contribute to Motor Deficits in a Rabbit Hypoxia-Ischemia Model of Cerebral Palsy.
Article in Frontiers in cellular neuroscience, 2020. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 11 papers.
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11 citing papers in PubMed, 22 citations in OpenAlex.
- Modeling cerebral palsy in animals.Developmental medicine and child neurology · 2026Review
- Neurochemical atlas of the rabbit spinal cord.Brain structure & function · 2024Article
- Spinal motoneurons respond aberrantly to serotonin in a rabbit model of cerebral palsy.The Journal of physiology · 2023Article
- Neuronal branching is increasingly asymmetric near synapses, potentially enabling plasticity while minimizing energy dissipation and conduction time.Journal of the Royal Society, Interface · 2023Article
- Spinal motoneurons respond aberrantly to serotonin in a rabbit model of cerebral palsy.bioRxiv : the preprint server for biology · 2023Article
- How axon and dendrite branching are guided by time, energy, and spatial constraints.Scientific reports · 2022Article
- Enhanced nociceptive behavior and expansion of associated primary afferents in a rabbit model of cerebral palsy.Journal of neuroscience research · 2022Article
- Trans-Spinal Direct Current Stimulation Targets CaFrontiers in neuroscience · 2022Article
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- Altered Motoneuron Properties Contribute to Motor Deficits in a Rabbit Hypoxia-Ischemia Model of Cerebral Palsy.Frontiers in cellular neuroscience · 2020Article
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Authors and funding
8 authors at 3 institutions in 2 countries.
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Abstract
Cerebral palsy (CP) is caused by a variety of factors attributed to early brain damage, resulting in permanently impaired motor control, marked by weakness and muscle stiffness. To find out if altered physiology of spinal motoneurons (MNs) could contribute to movement deficits, we performed whole-cell patch-clamp in neonatal rabbit spinal cord slices after developmental injury at 79% gestation. After preterm hypoxia-ischemia (HI), rabbits are born with motor deficits consistent with a spastic phenotype including hypertonia and hyperreflexia. There is a range in severity, thus kits are classified as severely affected, mildly affected, or unaffected based on modified Ashworth scores and other behavioral tests. At postnatal day (P)0-5, we recorded electrophysiological parameters of 40 MNs in transverse spinal cord slices using whole-cell patch-clamp. We found significant differences between groups (severe, mild, unaffected and sham control MNs). Severe HI MNs showed more sustained firing patterns, depolarized resting membrane potential, and fired action potentials at a higher frequency. These properties could contribute to muscle stiffness, a hallmark of spastic CP. Interestingly altered persistent inward currents (PICs) and morphology in severe HI MNs would dampen excitability (depolarized PIC onset and increased dendritic length). In summary, changes we observed in spinal MN physiology likely contribute to the severity of the phenotype, and therapeutic strategies for CP could target the excitability of spinal MNs.
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