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Updated: Jul 13, 2026

Fast and Specific Assessment of the Halogenating Peroxidase Activity in Leukocyte-enriched Blood Samples
Published on: July 28, 2016
Impact of two novel mutations on the structure and function of human myeloperoxidase
Melissa Goedken1, Sally McCormick, Kevin G Leidal
1Inflammation Program, Department of Medicine, University of Iowa and Veterans Affairs Medical Center, Iowa City, Iowa 52241, USA.
Abstract:
The heme protein myeloperoxidase (MPO) contributes critically to O(2)-dependent neutrophil antimicrobial activity. Two Japanese adults were identified with inherited MPO deficiency because of mutations at Arg-499 or Gly-501, conserved residues near the proximal histidine in the heme pocket. Because of the proximity of these residues to a critical histidine in the heme pocket, we examined the biosynthesis, function, and spectral properties of the peroxidase stably expressed in human embryonic kidney cells. Biosynthesis of normal MPO by human embryonic kidney cells faithfully mirrored events previously identified in cells expressing endogenous MPO. Mutant apopro-MPO was 90 kDa and interacted normally with the molecular chaperones ERp57, calreticulin, and calnexin in the endoplasmic reticulum. However, mutant precursors were not proteolytically processed into subunits of MPO, although secretion of the unprocessed precursors occurred normally. Although delta-[(14)C]aminolevulinic acid incorporation demonstrated formation of pro-MPO in both mutants, neither protein was enzymatically active. The Soret band for each mutant was shifted from the normal 430 to approximately 412 nm, confirming that heme was incorporated but suggesting that the number of covalent bonds or other structural aspects of the heme pocket were disrupted by the mutations. These studies demonstrate that despite heme incorporation, mutations in the heme environs compromised the oxidizing potential of MPO.
Insights
Mutations in the heme pocket of myeloperoxidase (MPO) prevent its enzymatic activity, despite normal heme incorporation. This impacts neutrophil antimicrobial function in patients with inherited MPO deficiency.
Area of Science:
- Biochemistry
- Immunology
- Genetics
Background:
- Myeloperoxidase (MPO) is crucial for neutrophil antimicrobial activity.
- Inherited MPO deficiency can result from mutations affecting enzyme function.
Purpose of the Study:
- To investigate the impact of mutations at Arg-499 and Gly-501 on MPO biosynthesis, function, and spectral properties.
- To understand the molecular mechanisms underlying MPO deficiency.
Main Methods:
- Stable expression of wild-type and mutant MPO in human embryonic kidney cells.
- Analysis of protein biosynthesis, processing, and interaction with molecular chaperones.
- Spectroscopic analysis (Soret band) to assess heme incorporation and environment.
- Enzymatic activity assays.
Main Results:
- Mutant MPO precursors were synthesized and secreted but not proteolytically processed into mature subunits.
- Heme incorporation was confirmed by delta-[(14)C]aminolevulinic acid labeling and Soret band shifts.
- Mutant MPO exhibited no enzymatic activity, indicating compromised oxidizing potential.
- Mutant MPO interacted normally with endoplasmic reticulum chaperones.
Conclusions:
- Mutations near the MPO heme pocket disrupt enzymatic function despite successful heme incorporation.
- These structural alterations compromise the oxidizing potential essential for antimicrobial activity.
- The findings elucidate the molecular basis of inherited MPO deficiency caused by specific mutations.
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