Variant human phosphoribosylpyrophosphate synthetase altered in regulatory and catalytic functions

Insights

A genetic defect causes a superactive enzyme, 5-phosphoribosyl 1-pyrophosphate (PP-ribose-P) synthetase, leading to overproduction of uric acid. This study characterizes the abnormal enzyme and its implications for purine synthesis.

Area of Science:

  • Biochemistry
  • Enzymology
  • Human Genetics

Background:

  • Inherited disorders of purine metabolism can lead to uric acid overproduction.
  • 5-phosphoribosyl 1-pyrophosphate (PP-ribose-P) synthetase is a key enzyme in purine biosynthesis.
  • Mutations in PP-ribose-P synthetase can result in enzyme hyperactivity and disease.

Purpose of the Study:

  • To characterize the structural and functional abnormalities of a superactive PP-ribose-P synthetase.
  • To investigate the impact of the mutant enzyme on purine synthesis and uric acid production.
  • To determine the inheritance pattern of the enzyme defect.

Main Methods:

  • Enzyme kinetics studies on PP-ribose-P synthetase isolated from patient fibroblasts.
  • Analysis of feedback inhibition by purine nucleotides and activation by inorganic phosphate.
  • Measurement of PP-ribose-P levels and purine synthesis rates in patient cells.
  • Assessment of enzyme stability and activity in erythrocytes and hemolysates.

Main Results:

  • The patient's PP-ribose-P synthetase exhibited reduced feedback inhibition by purine nucleotides and enhanced catalytic activity.
  • Fibroblasts showed increased PP-ribose-P concentration, generation, and purine synthesis rates.
  • The mutant enzyme was less stable, with reduced activity at physiological inorganic phosphate concentrations.
  • The patient's mother was identified as a heterozygous carrier of the enzyme defect.

Conclusions:

  • The inherited superactive PP-ribose-P synthetase, with deficient regulation and enhanced catalysis, underlies excessive purine synthesis and uric acid overproduction.
  • The study confirms the crucial role of PP-ribose-P synthetase regulation in controlling purine biosynthesis.
  • The findings highlight the complex interplay between enzyme kinetics, stability, and metabolic consequences in genetic disorders.

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