Thioredoxin-Interacting Protein (TXNIP) with Focus on Brain and Neurodegenerative Diseases
Haruka Tsubaki1, Ikuo Tooyama1, Douglas Gordon Walker1
1Molecular Neuroscience Research Center, Shiga University of Medical Science, Seta-Tsukinowa, Otsu 525-0072, Shiga, Japan.
Abstract:
The development of new therapeutic approaches to diseases relies on the identification of key molecular targets involved in amplifying disease processes. One such molecule is thioredoxin-interacting protein (TXNIP), also designated thioredoxin-binding protein-2 (TBP-2), a member of the α-arrestin family of proteins and a central regulator of glucose and lipid metabolism, involved in diabetes-associated vascular endothelial dysfunction and inflammation. TXNIP sequesters reduced thioredoxin (TRX), inhibiting its function, resulting in increased oxidative stress. Many different cellular stress factors regulate TXNIP expression, including high glucose, endoplasmic reticulum stress, free radicals, hypoxia, nitric oxide, insulin, and adenosine-containing molecules. TXNIP is also directly involved in inflammatory activation through its interaction with the nucleotide-binding domain, leucine-rich-containing family, and pyrin domain-containing-3 (NLRP3) inflammasome complex. Neurodegenerative diseases such as Alzheimer's disease have significant pathologies associated with increased oxidative stress, inflammation, and vascular dysfunctions. In addition, as dysfunctions in glucose and cellular metabolism have been associated with such brain diseases, a role for TXNIP in neurodegeneration has actively been investigated. In this review, we will focus on the current state of the understanding of possible normal and pathological functions of TXNIP in the central nervous system from studies of in vitro neural cells and the brains of humans and experimental animals with reference to other studies. As TXNIP can be expressed by neurons, microglia, astrocytes, and endothelial cells, a complex pattern of regulation and function in the brain is suggested. We will examine data suggesting TXNIP as a therapeutic target for neurodegenerative diseases where further research is needed.
Insights
Thioredoxin-interacting protein (TXNIP) plays a key role in oxidative stress and inflammation, impacting neurodegenerative diseases. Further research into TXNIP as a therapeutic target for brain conditions is needed.
Area of Science:
- Neuroscience
- Molecular Biology
- Metabolic Research
Background:
- Thioredoxin-interacting protein (TXNIP) regulates glucose and lipid metabolism, and is implicated in vascular dysfunction and inflammation.
- TXNIP sequesters thioredoxin (TRX), increasing oxidative stress and activating inflammatory pathways like the NLRP3 inflammasome.
- Neurodegenerative diseases share pathologies with metabolic dysfunction, oxidative stress, and inflammation, suggesting a role for TXNIP in brain health.
Purpose of the Study:
- To review the current understanding of TXNIP's normal and pathological functions in the central nervous system.
- To explore TXNIP's potential as a therapeutic target for neurodegenerative diseases.
Main Methods:
- Review of existing literature on TXNIP in in vitro neural cells.
- Analysis of studies on TXNIP in human and animal brains.
- Examination of TXNIP's expression in various brain cell types (neurons, microglia, astrocytes, endothelial cells).
Main Results:
- TXNIP is expressed in multiple brain cell types, indicating complex regulatory and functional roles.
- Evidence suggests TXNIP's involvement in pathologies relevant to neurodegeneration, including oxidative stress and inflammation.
- TXNIP's regulation by various cellular stress factors highlights its sensitivity and potential impact on neuronal health.
Conclusions:
- TXNIP is a significant regulator of cellular processes implicated in neurodegeneration.
- TXNIP's multifaceted role in the central nervous system warrants further investigation.
- TXNIP presents a promising therapeutic target for neurodegenerative diseases, requiring additional research.
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