A single nucleotide change in the prolidase gene in fibroblasts from two patients with polypeptide positive prolidase deficiency. Expression of the mutant enzyme in NIH 3T3 cells.
Open Access
- 1 July 1990
- journal article
- research article
- Published by American Society for Clinical Investigation in Journal of Clinical Investigation
- Vol. 86 (1) , 351-355
- https://doi.org/10.1172/jci114708
Abstract
Prolidase deficiency is an autosomal recessive disorder characterized by mental retardation and various skin lesions. Cultured skin fibroblasts were obtained from two independent patients with abnormal prolidase. Using the polymerase chain reaction, we amplified the entire coding region of human prolidase mRNA derived from patients' fibroblasts. Nucleotide sequence analysis of amplified cDNA products revealed a G to A substitution at position 826 in exon 12, where aspartic acid was replaced by asparagine at the amino acid residue 276, in cells from both patients. An analysis of the DNA showed that the substitution was homozygous. An expression plasmid clone containing a normal human prolidase cDNA (pEPD-W) or mutant prolidase cDNA (pEPD-M) was prepared, transfected, and tested for expression in NIH 3T3 cells. Incorporation of pEPD-W and pEPD-M resulted in the synthesis of an immunological polypeptide that corresponded to human prolidase. Active human enzyme was detected in cells transfected with pEPD-W, but not in those transfected with pEPD-M. These results were compatible with our observation of fibroblasts and confirmed that the substitution was responsible for the enzyme deficiency. As active prolidase was recovered in prolidase-deficient fibroblasts transfected with pEPD-W, this restoration of prolidase activity after transfection means that gene replacement therapy for individuals with this human disorder can be given due consideration.This publication has 18 references indexed in Scilit:
- A rapid method for determining sequences in DNA by primed synthesis with DNA polymerasePublished by Elsevier ,2004
- Biochemical basis of prolidase deficiency. Polypeptide and RNA phenotypes and the relation to clinical phenotypes.Journal of Clinical Investigation, 1989
- Expression vector system based on the chicken β-actin promoter directs efficient production of interleukin-5Gene, 1989
- Enzymatic amplification of platelet-specific messenger RNA using the polymerase chain reaction.Journal of Clinical Investigation, 1988
- Primer-Directed Enzymatic Amplification of DNA with a Thermostable DNA PolymeraseScience, 1988
- Immunochemical Studies of Human Prolidase with Monoclonal and Polyclonal Antibodies:Absence of the Subunit of Prolidase in Erythrocytes from a Patient with Prolidase DeficiencyPediatric Research, 1987
- Immunochemical analysis of prolidase deficiency and molecular cloning of cDNA for prolidase of human liverJournal of Inherited Metabolic Disease, 1987
- Enzymatic Amplification of β-Globin Genomic Sequences and Restriction Site Analysis for Diagnosis of Sickle Cell AnemiaScience, 1985
- Two distinct enhancers with different cell specificities coexist in the regulatory region of polyomaCell, 1984
- Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4Nature, 1970