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Gene expression changes in thalamus and inferior colliculus associated with inflammation, cellular stress, metabolism
Raghu Vemuganti1, Haviryaji Kalluri, Jae-Hyuk Yi
1Department of Neurological Surgery, University of Wisconsin, Madison, USA.
Abstract:
Identification of gene expression changes that promote focal neuronal death and neurological dysfunction can further our understanding of the pathophysiology of these disease states and could lead to new pharmacological and molecular therapies. Impairment of oxidative metabolism is a pathogenetic mechanism underlying neuronal death in many chronic neurodegenerative diseases as well as in Wernicke's encephalopathy (WE), a disorder induced by thiamine deficiency (TD). To identify functional pathways that lead to neuronal damage in this disorder, we have examined gene expression changes in the vulnerable thalamus and inferior colliculus of TD rats using Affymetrix Rat Genome GeneChip analysis in combination with gene ontology and functional categorization assessment utilizing the NetAffx GO Mining Tool. Of the 15 927 transcripts analysed, 125 in thalamus and 141 in inferior colliculus were more abundantly expressed in TD rats compared with control animals. In both regions, the major functional categories of transcripts that were increased in abundance after TD were those associated with inflammation (approximately 33%), stress (approximately 20%), cell death and repair ( approximately 26%), and metabolic perturbation (approximately 19%), together constituting approximately 98% of all transcripts up-regulated. These changes occurred against a background of neuronal cell loss and reactive astro- and microgliosis in both structures. Our results indicate that (i) TD produces changes in gene expression that are consistent with the observed dysfunction and pathology, and (ii) similar alterations in expression occur in thalamus and inferior colliculus, brain regions previously considered to differ in pathology. These findings provide important new insight into processes responsible for lesion development in TD, and possibly WE.
Insights
Thiamine deficiency (TD) causes significant gene expression changes in rat brain regions, including inflammation and cell death pathways. These findings offer new insights into the pathology of Wernicke
Area of Science:
- Neuroscience
- Molecular Biology
- Pathophysiology
Background:
- Impaired oxidative metabolism contributes to neuronal death in neurodegenerative diseases and Wernicke's encephalopathy (WE).
- Thiamine deficiency (TD) is a key factor in WE pathogenesis.
- Understanding gene expression changes is crucial for developing new therapies.
Purpose of the Study:
- To identify functional pathways and gene expression changes associated with neuronal damage in thiamine deficiency.
- To investigate these changes in the thalamus and inferior colliculus of thiamine-deficient rats.
Main Methods:
- Utilized Affymetrix Rat Genome GeneChip analysis to examine gene expression in TD rats.
- Employed gene ontology and NetAffx GO Mining Tool for functional categorization.
- Analyzed 15,927 transcripts in vulnerable brain regions.
Main Results:
- Identified 125 upregulated transcripts in the thalamus and 141 in the inferior colliculus of TD rats.
- Major upregulated functional categories included inflammation (33%), stress (20%), cell death/repair (26%), and metabolic perturbation (19%).
- Observed neuronal cell loss and glial activation in both brain regions.
Conclusions:
- Thiamine deficiency induces gene expression changes consistent with observed neuropathology and dysfunction.
- Similar expression alterations in the thalamus and inferior colliculus suggest shared underlying processes.
- Findings provide novel insights into lesion development in TD and potentially WE.
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