Literature DB >> 27601654

Mutations in mitochondrial enzyme GPT2 cause metabolic dysfunction and neurological disease with developmental and progressive features.

Qing Ouyang1, Tojo Nakayama2, Ozan Baytas3, Shawn M Davidson4, Chendong Yang5, Michael Schmidt1, Sofia B Lizarraga6, Sasmita Mishra3, Malak Ei-Quessny7, Saima Niaz8, Mirrat Gul Butt9, Syed Imran Murtaza10, Afzal Javed10, Haroon Rashid Chaudhry9, Dylan J Vaughan7, R Sean Hill7, Jennifer N Partlow11, Seung-Yun Yoo11, Anh-Thu N Lam11, Ramzi Nasir12, Muna Al-Saffar13, A James Barkovich14, Matthew Schwede3, Shailender Nagpal1, Anna Rajab15, Ralph J DeBerardinis5, David E Housman16, Ganeshwaran H Mochida17, Eric M Morrow18.   

Abstract

Mutations that cause neurological phenotypes are highly informative with regard to mechanisms governing human brain function and disease. We report autosomal recessive mutations in the enzyme glutamate pyruvate transaminase 2 (GPT2) in large kindreds initially ascertained for intellectual and developmental disability (IDD). GPT2 [also known as alanine transaminase 2 (ALT2)] is one of two related transaminases that catalyze the reversible addition of an amino group from glutamate to pyruvate, yielding alanine and α-ketoglutarate. In addition to IDD, all affected individuals show postnatal microcephaly and ∼80% of those followed over time show progressive motor symptoms, a spastic paraplegia. Homozygous nonsense p.Arg404* and missense p.Pro272Leu mutations are shown biochemically to be loss of function. The GPT2 gene demonstrates increasing expression in brain in the early postnatal period, and GPT2 protein localizes to mitochondria. Akin to the human phenotype, Gpt2-null mice exhibit reduced brain growth. Through metabolomics and direct isotope tracing experiments, we find a number of metabolic abnormalities associated with loss of Gpt2. These include defects in amino acid metabolism such as low alanine levels and elevated essential amino acids. Also, we find defects in anaplerosis, the metabolic process involved in replenishing TCA cycle intermediates. Finally, mutant brains demonstrate misregulated metabolites in pathways implicated in neuroprotective mechanisms previously associated with neurodegenerative disorders. Overall, our data reveal an important role for the GPT2 enzyme in mitochondrial metabolism with relevance to developmental as well as potentially to neurodegenerative mechanisms.

Entities:  

Keywords:  GPT2; intellectual and developmental disability; metabolomics; mitochondria; spastic paraplegia

Mesh:

Substances:

Year:  2016        PMID: 27601654      PMCID: PMC5035873          DOI: 10.1073/pnas.1609221113

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


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