Literature DB >> 26639513

Review: Human guanidinoacetate n-methyl transferase (GAMT) deficiency: A treatable inborn error of metabolism.

Furhan Iqbal1.   

Abstract

The creatine biosynthetic pathway is essential for cellular phosphate associated energy production and storage, particularly in tissues having higher metabolic demands. Guanidinoacetate N-Methyl transferase (GAMT) is an important enzyme in creatine endogenous biosynthetic pathway, with highest expression in liver and kidney. GAMT deficiency is an inherited autosomal recessive trait that was the first among creatine deficiency syndrome to be reported in 1994 having characteristic features of no comprehensible speech development, severe mental retardation, muscular hypotonia, involuntary movements and seizures that partly cannot be treated with anti-epileptic drugs. Due to problematic endogenous creatine biosynthesis, systemic depletion of creatine/phosphocreatine and accumulation of guanidinoacetate takes place that are the diagnostic features of this disease. Dietary creatine supplementation alone or along with arginine restriction has been reported to be beneficial for all treated patients, although to various extent. However, none of the GAMT deficient patient has been reported to return to complete normal developmental level.

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Year:  2015        PMID: 26639513

Source DB:  PubMed          Journal:  Pak J Pharm Sci        ISSN: 1011-601X            Impact factor:   0.684


  2 in total

1.  Biochemical and behavioral phenotype of AGAT and GAMT deficient mice following long-term Creatine monohydrate supplementation.

Authors:  Furhan Iqbal; Herald Hoeger; Gurt Lubec; Olaf Bodamer
Journal:  Metab Brain Dis       Date:  2017-08-14       Impact factor: 3.584

2.  Engineering new metabolic pathways in isolated cells for the degradation of guanidinoacetic acid and simultaneous production of creatine.

Authors:  Marzia Bianchi; Luigia Rossi; Francesca Pierigè; Pietro De Angeli; Mattia Paolo Aliano; Claudia Carducci; Emanuele Di Carlo; Tiziana Pascucci; Francesca Nardecchia; Vincenzo Leuzzi; Mauro Magnani
Journal:  Mol Ther Methods Clin Dev       Date:  2022-02-22       Impact factor: 6.698

  2 in total

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