Primary hyperoxaluria type I (PH1) is a conformational disease which result in the loss of alanine:glyoxylate aminotransferase (AGT) function. The study of AGT has important implications for protein folding and trafficking because PH1 mutants may cause protein aggregation and mitochondrial mistargeting. We herein describe a multidisciplinary study aimed to understand the molecular basis of protein aggregation and mistargeting in PH1 by studying twelve AGT variants. Expression studies in cell cultures reveal strong protein folding defects in PH1 causing mutants leading to enhanced aggregation, and in two cases, mitochondrial mistargeting. Immunoprecipitation studies in a cell-free system reveal that most mutants enhance the interactions with...
Primary Hyperoxaluria Type I (PH1) is a disorder of glyoxylate metabolism caused by mutations in the...
Protein aggregates formation is the basis of several misfolding diseases, including those displaying...
Primary hyperoxalurias (PHs) are rare inborn errors of glyoxylate metabolism characterized by excess...
14 pags, 8 figs, 3 tabsPrimary hyperoxaluria type I (PH1) is a conformational disease which result i...
<div><p>Primary hyperoxaluria type I (PH1) is a conformational disease which result in the loss of a...
The functional deficit of alanine:glyoxylate aminotransferase (AGT) in human hepatocytes leads to a ...
The rare disease Primary Hyperoxaluria Type I (PH1) results from the deficit of liver peroxisomal al...
16 pags, 5 figsAlanine-glyoxylate aminotransferase catalyzes the transamination between L-alanine an...
The mutations G170R and I244T are the most common disease cause in primary hyperoxaluria type I (PH1...
Primary Hyperoxaluria Type I (PH1) is a severe rare disorder of metabolism due to inherited mutation...
The rare disease Primary Hyperoxaluria Type I (PH1) results from the deficit of liver peroxisomal al...
Protein misfolding is becoming one of the main mechanisms underlying inherited enzymatic deficits. T...
AbstractPrimary Hyperoxaluria Type I (PH1) is a severe rare disorder of metabolism due to inherited ...
G41 is an interfacial residue located within the alpha-helix 34-42 of alanine:glyoxylate aminotransf...
G41 is an interfacial residue located within the alpha-helix 34-42 of alanine:glyoxylate aminotransf...
Primary Hyperoxaluria Type I (PH1) is a disorder of glyoxylate metabolism caused by mutations in the...
Protein aggregates formation is the basis of several misfolding diseases, including those displaying...
Primary hyperoxalurias (PHs) are rare inborn errors of glyoxylate metabolism characterized by excess...
14 pags, 8 figs, 3 tabsPrimary hyperoxaluria type I (PH1) is a conformational disease which result i...
<div><p>Primary hyperoxaluria type I (PH1) is a conformational disease which result in the loss of a...
The functional deficit of alanine:glyoxylate aminotransferase (AGT) in human hepatocytes leads to a ...
The rare disease Primary Hyperoxaluria Type I (PH1) results from the deficit of liver peroxisomal al...
16 pags, 5 figsAlanine-glyoxylate aminotransferase catalyzes the transamination between L-alanine an...
The mutations G170R and I244T are the most common disease cause in primary hyperoxaluria type I (PH1...
Primary Hyperoxaluria Type I (PH1) is a severe rare disorder of metabolism due to inherited mutation...
The rare disease Primary Hyperoxaluria Type I (PH1) results from the deficit of liver peroxisomal al...
Protein misfolding is becoming one of the main mechanisms underlying inherited enzymatic deficits. T...
AbstractPrimary Hyperoxaluria Type I (PH1) is a severe rare disorder of metabolism due to inherited ...
G41 is an interfacial residue located within the alpha-helix 34-42 of alanine:glyoxylate aminotransf...
G41 is an interfacial residue located within the alpha-helix 34-42 of alanine:glyoxylate aminotransf...
Primary Hyperoxaluria Type I (PH1) is a disorder of glyoxylate metabolism caused by mutations in the...
Protein aggregates formation is the basis of several misfolding diseases, including those displaying...
Primary hyperoxalurias (PHs) are rare inborn errors of glyoxylate metabolism characterized by excess...