Active Cells, Biochemistry & Physiology Genetics & Molecular Biology

Mitochondrial complex I: An intricate energy-converting machine, a cornerstone of mitochondrial metabolism, and a locus of mitochondrial dysfunction and disease

In plain English

AI plain-English summary

Every cell in the human body relies on a tiny molecular machine called complex I to generate energy, and when it breaks, it causes devastating mitochondrial diseases that doctors currently cannot treat. Despite recent advances in imaging that have revealed the machine’s overall shape, researchers still do not understand the basic mechanics of how it works, how the cell maintains and repairs it, or why specific genetic mutations lead to symptoms ranging from muscle weakness to organ failure. This programme aims to fill those fundamental gaps by mapping complex I’s structure, function, and regulation at the molecular level, using cryo-electron microscopy and other techniques. The work is primarily fundamental science—it will not produce a drug or a diagnostic test tomorrow. However, without this basic understanding, efforts to develop therapies for mitochondrial diseases are essentially guessing in the dark. Past breakthroughs in fundamental biology, such as the discovery of how cells recycle proteins, have unexpectedly opened entire new fields of medicine. A clear molecular picture of complex I could similarly lay the groundwork for rational drug design and better clinical diagnoses for the thousands of patients affected by these disorders.

View original technical description
Dysfunctions of mitochondrial complex I, the first of four energy-converting complexes that power the cell to produce ATP by oxidative phosphorylation, cause many mitochondrial diseases. Following the ‘resolution revolution’ in cryo-electron microscopy (cryoEM) the structure of mammalian complex I has been solved, but many key aspects of how the enzyme works remain unknown. It is further unclear how it is regulated, repaired or replaced; how its structure, function or assembly are affected by clinically-identified mutations; or how reactive oxygen species, drugs or toxins affect its catalysis and function in the cell. Even when a mutation in a well-characterised complex I gene is established as the direct cause of a mitochondrial disease, the pathological mechanisms that define the pathways from the molecular defect to the clinical symptoms are poorly understood. The aims of the Mitochondrial Complex I programme are to define and understand the molecular structure, function and dysfunction of mammalian complex I, and to exploit and apply this basic knowledge to understand complex I in vivo, elucidate disease mechanisms, support clinical diagnoses, and contribute to the development of therapeutic strategies against both primary diseases and complex multifactorial disorders involving complex I.

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Researchers

Judy Hirst (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

The energy-converting mechanism of a modular biomachine: Uniting structure and function to establish the engineering principles of respiratory complex I
Investigating the relationship between respiratory chain organisation and mitochondrial morphology by electron cryo-tomography
Cytochrome c oxidase: structure, function and malfunction
Regulation of active/deactive transition of mitochondrial complex I in health and pathology
Molecular mechanism of proton pumping by complex I: A single enzyme study

Original classification

Intramural

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