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A defect in molybdenum cofactor binding causes an attenuated form of sulfite oxidase deficiency
Alexander Tobias Kaczmarek1,2, Daniel Bender1,3, Titus Gehling1
1Department of Chemistry, Institute of Biochemistry, University of Cologne, Cologne, Germany.
Abstract:
Isolated sulfite oxidase deficiency (ISOD) is a rare recessive and infantile lethal metabolic disorder, which is caused by functional loss of sulfite oxidase (SO) due to mutations of the SUOX gene. SO is a mitochondrially localized molybdenum cofactor (Moco)- and heme-dependent enzyme, which catalyzes the vital oxidation of toxic sulfite to sulfate. Accumulation of sulfite and sulfite-related metabolites such as S-sulfocysteine (SSC) are drivers of severe neurodegeneration leading to early childhood death in the majority of ISOD patients. Full functionality of SO is dependent on correct insertion of the heme cofactor and Moco, which is controlled by a highly orchestrated maturation process. This maturation involves the translation in the cytosol, import into the intermembrane space (IMS) of mitochondria, cleavage of the mitochondrial targeting sequence, and insertion of both cofactors. Moco insertion has proven as the crucial step in this maturation process, which enables the correct folding of the homodimer and traps SO in the IMS. Here, we report on a novel ISOD patient presented at 17 months of age carrying the homozygous mutation NM_001032386.2 (SUOX):c.1097G > A, which results in the expression of SO variant R366H. Our studies show that histidine substitution of Arg366, which is involved in coordination of the Moco-phosphate, causes a severe reduction in Moco insertion efficacy in vitro and in vivo. Expression of R366H in HEK SUOX-/- cells mimics the phenotype of patient's fibroblasts, representing a loss of SO expression and specific activity. Our studies disclose a general paradigm for a kinetic defect in Moco insertion into SO caused by residues involved in Moco coordination resulting in the case of R366H in an attenuated form of ISOD.
Insights
Isolated sulfite oxidase deficiency (ISOD) is a lethal metabolic disorder. A novel mutation R366H impairs molybdenum cofactor insertion, leading to reduced sulfite oxidase activity and an attenuated ISOD form.
Area of Science:
- Biochemistry
- Genetics
- Metabolic Disorders
Background:
- Isolated sulfite oxidase deficiency (ISOD) is a rare, lethal, recessive infantile metabolic disorder.
- It stems from functional loss of sulfite oxidase (SO) due to SUOX gene mutations, leading to toxic sulfite accumulation and neurodegeneration.
- SO maturation, crucial for its function, involves heme and molybdenum cofactor (Moco) insertion, with Moco insertion being a critical step.
Purpose of the Study:
- To investigate a novel ISOD patient with a homozygous SUOX mutation.
- To elucidate the molecular mechanism underlying the observed phenotype.
- To understand the role of Arg366 in SO maturation and Moco insertion.
Main Methods:
- Genetic analysis of a novel ISOD patient.
- In vitro and in vivo studies of the SO variant R366H.
- Expression of R366H in HEK SUOX-/- cells to mimic patient phenotype.
Main Results:
- A novel homozygous SUOX mutation (c.1097G>A) leading to SO variant R366H was identified.
- The R366H substitution significantly reduced Moco insertion efficacy both in vitro and in vivo.
- Expression of R366H recapitulated the patient's fibroblast phenotype, showing loss of SO activity.
Conclusions:
- The R366H mutation impairs Moco insertion into SO due to its role in Moco-phosphate coordination.
- This defect results in an attenuated form of isolated sulfite oxidase deficiency.
- The study highlights the critical role of Moco insertion in SO maturation and function.
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