Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Vulnerability of Human Cerebellar Neurons to Degeneration in Ataxia-Causing Channelopathies

View through CrossRef
Mutations in ion channel genes underlie a number of human neurological diseases. Historically, human mutations in ion channel genes, the so-called channelopathies, have been identified to cause episodic disorders. In the last decade, however, mutations in ion channel genes have been demonstrated to result in progressive neurodegenerative and neurodevelopmental disorders in humans, particularly with ion channels that are enriched in the cerebellum. This was unexpected given prior rodent ion channel knock-out models that almost never display neurodegeneration. Human ataxia-causing channelopathies that result in even haploinsufficiency can result in cerebellar atrophy and cerebellar Purkinje neuron loss. Rodent neurons with ion channel loss-of-function appear to, therefore, be significantly more resistant to neurodegeneration compared to human neurons. Fundamental differences in susceptibility of human and rodent cerebellar neurons in ataxia-causing channelopathies must therefore be present. In this review, we explore the properties of human neurons that may contribute to their vulnerability to cerebellar degeneration secondary to ion channel loss-of-function mutations. We present a model taking into account the known allometric scaling of neuronal ion channel density in humans and other mammals that may explain the preferential vulnerability of human cerebellar neurons to degeneration in ataxia-causing channelopathies. We also speculate on the vulnerability of cerebellar neurons to degeneration in mouse models of spinocerebellar ataxia (SCA) where ion channel transcript dysregulation has recently been implicated in disease pathogenesis.
Title: Vulnerability of Human Cerebellar Neurons to Degeneration in Ataxia-Causing Channelopathies
Description:
Mutations in ion channel genes underlie a number of human neurological diseases.
Historically, human mutations in ion channel genes, the so-called channelopathies, have been identified to cause episodic disorders.
In the last decade, however, mutations in ion channel genes have been demonstrated to result in progressive neurodegenerative and neurodevelopmental disorders in humans, particularly with ion channels that are enriched in the cerebellum.
This was unexpected given prior rodent ion channel knock-out models that almost never display neurodegeneration.
Human ataxia-causing channelopathies that result in even haploinsufficiency can result in cerebellar atrophy and cerebellar Purkinje neuron loss.
Rodent neurons with ion channel loss-of-function appear to, therefore, be significantly more resistant to neurodegeneration compared to human neurons.
Fundamental differences in susceptibility of human and rodent cerebellar neurons in ataxia-causing channelopathies must therefore be present.
In this review, we explore the properties of human neurons that may contribute to their vulnerability to cerebellar degeneration secondary to ion channel loss-of-function mutations.
We present a model taking into account the known allometric scaling of neuronal ion channel density in humans and other mammals that may explain the preferential vulnerability of human cerebellar neurons to degeneration in ataxia-causing channelopathies.
We also speculate on the vulnerability of cerebellar neurons to degeneration in mouse models of spinocerebellar ataxia (SCA) where ion channel transcript dysregulation has recently been implicated in disease pathogenesis.

Related Results

Preserved cerebellar functions despite structural degeneration in older adults
Preserved cerebellar functions despite structural degeneration in older adults
Aging is frequently perceived negatively due to its association with the decline of various brain and bodily functions. While it is evident that motor abilities deteriorate with ag...
Preserved cerebellar functions despite structural degeneration in older adults
Preserved cerebellar functions despite structural degeneration in older adults
Aging is frequently perceived negatively due to its association with the decline of various brain and bodily functions. While it is evident that motor abilities deteriorate with ag...
“The red flags” in clinical approach to acute ataxia – the experience in cohort of 76 children
“The red flags” in clinical approach to acute ataxia – the experience in cohort of 76 children
Abstract Objectives: The aim of our study is to define the most frequent etiology, clinical presentation, and predictive factors of outcome in children with acute ataxia (A...
Peripheral Inflammation Profile of Cerebellar Ataxia
Peripheral Inflammation Profile of Cerebellar Ataxia
Objectives: The objective of this study is to determine the characteristics of peripheral inflammatory profiles and their correlations with the clinical features in patients with c...
Frequency, Aetiology, and Outcome of Small Cerebellar Infarction
Frequency, Aetiology, and Outcome of Small Cerebellar Infarction
<b><i>Background and Purpose:</i></b> Strokes due to small (&#x3c;2 cm) cerebellar infarction are under-recognised, and their profile and aetiology have...
Careful, Women! Is Orgasm Worth the Cost of Your Cerebellum? Flibanserin-Induced Cerebellar Dysfunction
Careful, Women! Is Orgasm Worth the Cost of Your Cerebellum? Flibanserin-Induced Cerebellar Dysfunction
AbstractIntroductionFlibanserin, a serotonin antagonist currently indicated for treatment of female sexual dysfunction disorder, has not heretofore been described to worsen cerebel...
Autoantibodies in Childhood Post-Varicella Acute Cerebellar Ataxia
Autoantibodies in Childhood Post-Varicella Acute Cerebellar Ataxia
Background:Anti-Purkinje cell antibodies have been reported in cerebellar ataxia following Epstein-Barr virus (EBV) infection. We investigated autoantibody responses, including ant...

Back to Top