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Updated: Jul 15, 2026

Isolation of Mitochondria for Mitochondrial Supercomplex Analysis from Small Tissue and Cell Culture Samples
Published on: May 3, 2024
Impaired complex III assembly associated with BCS1L gene mutations in isolated mitochondrial encephalopathy
Erika Fernandez-Vizarra1, Marianna Bugiani, Paola Goffrini
1Department of Molecular Neurogenetics, , Foundation IRCCS Neurological Institute C. Besta, Milano, Italy.
Insights
Novel mutations in the BCS1L gene cause mitochondrial complex III deficiency, leading to severe neurodevelopmental disorders in children. This research clarifies BCS1L
Area of Science:
- Biochemistry
- Genetics
- Mitochondrial Biology
Background:
- Mitochondrial complex III (MC3) is crucial for cellular respiration.
- Defects in MC3 activity are associated with severe neurological disorders.
- The BCS1L gene encodes a mitochondrial protein implicated in MC3 assembly and iron homeostasis.
Observation:
- Two unrelated children presented with progressive encephalopathy, developmental delay, spasticity, seizures, and MRI abnormalities.
- Both patients had compound heterozygous, novel mutations in the BCS1L gene.
- Functional studies in yeast confirmed the pathogenicity of these BCS1L mutations.
Findings:
- BCS1L is essential for the maturation of mitochondrial complex III in mammalian systems.
- BCS1L specifically facilitates the incorporation of the Rieske iron-sulfur protein into MC3.
- Defective BCS1L results in an unstable, catalytically inactive MC3 and is part of a distinct high-molecular-weight complex.
Implications:
- This study elucidates a critical role for BCS1L in MC3 assembly and function.
- Understanding BCS1L's function provides insights into the molecular basis of mitochondrial diseases.
- Identifies BCS1L as a potential target for therapeutic strategies in related neurodegenerative disorders.
Abstract:
We investigated two unrelated children with an isolated defect of mitochondrial complex III activity. The clinical picture was characterized by a progressive encephalopathy featuring early-onset developmental delay, spasticity, seizures, lactic acidosis, brain atrophy and MRI signal changes in the basal ganglia. Both children were compound heterozygotes for novel mutations in the human bc1 synthesis like (BCS1L) gene, which encodes an AAA mitochondrial protein putatively involved in both iron homeostasis and complex III assembly. The pathogenic role of the mutations was confirmed by complementation assays, using a DeltaBcs1 strain of Saccharomyces cerevisiae. By investigating complex III assembly and the structural features of the BCS1L gene product in skeletal muscle, cultured fibroblasts and lymphoblastoid cell lines from our patients, we have demonstrated, for the first time in a mammalian system, that a major function of BCS1L is to promote the maturation of complex III and, more specifically, the incorporation of the Rieske iron-sulfur protein into the nascent complex. Defective BCS1L leads to the formation of a catalytically inactive, structurally unstable complex III. We have also shown that BCS1L is contained within a high-molecular-weight supramolecular complex which is clearly distinct from complex III intermediates.
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