Literature DB >> 24094038

The branched-chain aminotransferase proteins: novel redox chaperones for protein disulfide isomerase--implications in Alzheimer's disease.

Maya El Hindy1, Mohammed Hezwani, David Corry, Jonathon Hull, Farah El Amraoui, Matthew Harris, Christopher Lee, Thomas Forshaw, Andrew Wilson, Abbe Mansbridge, Martin Hassler, Vinood B Patel, Patrick Gavin Kehoe, Seth Love, Myra Elizabeth Conway.   

Abstract

AIMS: The human branched-chain aminotransferase proteins (hBCATm and hBCATc) are regulated through oxidation and S-nitrosation. However, it remains unknown whether they share common redox characteristics to enzymes such as protein disulfide isomerase (PDI) in terms of regulating cellular repair and protein misfolding.
RESULTS: Here, similar to PDI, the hBCAT proteins showed dithiol-disulfide isomerase activity that was mediated through an S-glutathionylated mechanism. Site-directed mutagenesis of the active thiols of the CXXC motif demonstrates that they are fundamental to optimal protein folding. Far Western analysis indicated that both hBCAT proteins can associate with PDI. Co-immunoprecipitation studies demonstrated that hBCATm directly binds to PDI in IMR-32 cells and the human brain. Electron and confocal microscopy validated the expression of PDI in mitochondria (using Mia40 as a mitochondrial control), where both PDI and Mia40 were found to be co-localized with hBCATm. Under conditions of oxidative stress, this interaction is decreased, suggesting that the proposed chaperone role for hBCATm may be perturbed. Moreover, immunohistochemistry studies show that PDI and hBCAT are expressed in the same neuronal and endothelial cells of the vasculature of the human brain, supporting a physiological role for this binding. INNOVATION: This study identifies a novel redox role for hBCAT and confirms that hBCATm differentially binds to PDI under cellular stress.
CONCLUSION: These studies indicate that hBCAT may play a role in the stress response of the cell as a novel redox chaperone, which, if compromised, may result in protein misfolding, creating aggregates as a key feature in neurodegenerative conditions such as Alzheimer's disease.

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Year:  2013        PMID: 24094038      PMCID: PMC4026213          DOI: 10.1089/ars.2012.4869

Source DB:  PubMed          Journal:  Antioxid Redox Signal        ISSN: 1523-0864            Impact factor:   8.401


  74 in total

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2.  Identification of mitochondrial branched chain aminotransferase and its isoforms in rat tissues.

Authors:  S M Hutson; R Wallin; T R Hall
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Authors:  N J Darby; E Penka; R Vincentelli
Journal:  J Mol Biol       Date:  1998-02-13       Impact factor: 5.469

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9.  Expression of mitochondrial branched-chain aminotransferase and α-keto-acid dehydrogenase in rat brain: implications for neurotransmitter metabolism.

Authors:  Jeffrey T Cole; Andrew J Sweatt; Susan M Hutson
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10.  A technique for ultracryotomy of cell suspensions and tissues.

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Review 5.  S-nitrosylation of the thioredoxin-like domains of protein disulfide isomerase and its role in neurodegenerative conditions.

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Review 6.  Methods of measuring protein disulfide isomerase activity: a critical overview.

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10.  Regulation of branched-chain amino acid metabolism by hypoxia-inducible factor in glioblastoma.

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