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Updated: May 11, 2026

Functional Reconstitution and Channel Activity Measurements of Purified Wildtype and Mutant CFTR Protein
Published on: March 9, 2015
Replacement of the C6ORF66 assembly factor (NDUFAF4) restores complex I activity in patient cells
Dana Marcus1, Michal Lichtenstein, Ann Saada
1Department of Biochemistry and Molecular Biology, Institute for Medical Research Israel-Canada (IMRIC), Hebrew University-Hadassah Medical School, Jerusalem, Israel.
Insights
Protein replacement therapy using TAT-ORF effectively restored complex I function in patients with oxidative phosphorylation disorders. This approach shows promise for treating mitochondrial diseases by improving cellular energy production and reducing harmful reactive oxygen species.
Area of Science:
- Biochemistry
- Mitochondrial Biology
- Genetic Disorders
Background:
- Oxidative phosphorylation (OXPHOS) disorders often cause severe multisystem disease and early childhood death.
- Isolated complex I deficiency is the most common OXPHOS disorder, accounting for a third of all respiratory chain deficiencies.
- Mutations in C6ORF66 (NDUFAF4) are a key cause of complex I deficiency.
Purpose of the Study:
- To investigate the efficacy of cell- and organelle-directed protein replacement therapy for complex I deficiency.
- To develop a method for delivering functional NDUFAF4 protein into patient cells and mitochondria.
- To assess the impact of this therapy on complex I assembly, OXPHOS function, and cellular health.
Main Methods:
- Constructed a TAT-ORF fusion protein for targeted delivery of wild-type C6ORF66 (NDUFAF4).
- Expressed and purified the TAT-ORF fusion protein using an Escherichia coli system.
- Administered TAT-ORF to patient cells and analyzed its uptake, biological activity, and effects on mitochondrial function.
Main Results:
- TAT-ORF efficiently entered patient cells and mitochondria.
- Restored complex I activity and improved mitochondrial function and cell viability.
- Increased ATP production, reduced mitochondrial content, and decreased reactive oxygen species levels.
Conclusions:
- Cell- and organelle-directed protein replacement therapy with TAT-ORF is a viable strategy for treating complex I deficiency.
- This approach offers a promising therapeutic avenue for mitochondrial disorders.
- Further research into protein replacement therapy could revolutionize treatment for inherited metabolic diseases.
Abstract:
Disorders of the oxidative phosphorylation (OXPHOS) system frequently result in a severe multisystem disease with the consequence of early childhood death. Among these disorders, isolated complex I deficiency is the most frequently diagnosed, accounting for one-third of all cases of respiratory chain deficiency. We chose to focus on complex I deficiency, caused by mutation in the assembly factor chromosome 6, open reading frame 66 (C6ORF66; NADH dehydrogenase [ubiquinone] complex I assembly factor 4 [NDUFAF4]) protein. We used the approach of cell- and organelle-directed protein/enzyme replacement therapy, with the transactivator of transcription (TAT) peptide as the moiety delivery system. This step will enable us to deliver the wild-type assembly factor C6ORF66 into patient cells and their mitochondria, leading to the proper assembly and function of complex I and, as a result, to a functional OXPHOS system. We designed and constructed the TAT-ORF fusion protein by gene fusion techniques, expressed the protein in an Escherichia coli expression system and highly purified it. Our results indicate that TAT-ORF enters patients' cells and their mitochondria rapidly and efficiently. TAT-ORF is biologically active and led to an increase in complex I activity. TAT-ORF also increased the number of patient cells and improved the activity of their mitochondria. Moreover, we observed an increase in ATP production, a decrease in the content of mitochondria and a decrease in the level of reactive oxygen species. Our results suggest that this approach of protein replacement therapy for the treatment of mitochondrial disorders is a promising one.
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