Biological energy conversion in mitochondria is carried out by the membrane protein complexes of the respiratory chain and the mitochondrial ATP synthase in the inner membrane cristae. Recent advances in electron cryomicroscopy have made possible new insights into the structural and functional arrangement of these complexes in the membrane, and how they change with age. This review places these advances in the context of what is already known, and discusses the fundamental questions that remain open but can now be approached
To truly understand bioenergetic processes such as ATP synthesis, membrane-bound substrate transport...
none2The enzymatic complexes of the mitochondrial respiratory chain have been extensively investigat...
In the present chapter, the structures and mechanisms of the major components of mammalian mitochond...
Mitochondria are eukaryotic organelles with a multitude of functions including biosynthesis of molec...
The mitochondrial oxidative phosphorylation system is central to cellular metabolism. It comprises f...
AbstractMany essential functions of mitochondrial metabolism have been studied in the past three dec...
Mitochondria, popularly known as powerhouse of the cell, contain specialised mitoribosomes that synt...
We used electron cryotomography to study the molecular arrangement of large respiratory chain comple...
The intricate, heavily folded inner membrane of mitochondria houses the respiratory chain complexes....
Respiratory complex I is an intricate multi-subunit membrane protein with a central function in aero...
Oxidative phosphorylation (OXPHOS) is the main source of energy in eukaryotic cells. This process is...
AbstractMitochondrial ATP synthase is mostly isolated in monomeric form, but in the inner mitochondr...
The main objective of this work is to determine the atomic structure of mammalian respiratory comple...
AbstractMitochondria are essential eukaryotic organelles that are surrounded by two membranes. Both ...
Respiration is one of the most vital and basic features of living organisms. In mammals, respiration...
To truly understand bioenergetic processes such as ATP synthesis, membrane-bound substrate transport...
none2The enzymatic complexes of the mitochondrial respiratory chain have been extensively investigat...
In the present chapter, the structures and mechanisms of the major components of mammalian mitochond...
Mitochondria are eukaryotic organelles with a multitude of functions including biosynthesis of molec...
The mitochondrial oxidative phosphorylation system is central to cellular metabolism. It comprises f...
AbstractMany essential functions of mitochondrial metabolism have been studied in the past three dec...
Mitochondria, popularly known as powerhouse of the cell, contain specialised mitoribosomes that synt...
We used electron cryotomography to study the molecular arrangement of large respiratory chain comple...
The intricate, heavily folded inner membrane of mitochondria houses the respiratory chain complexes....
Respiratory complex I is an intricate multi-subunit membrane protein with a central function in aero...
Oxidative phosphorylation (OXPHOS) is the main source of energy in eukaryotic cells. This process is...
AbstractMitochondrial ATP synthase is mostly isolated in monomeric form, but in the inner mitochondr...
The main objective of this work is to determine the atomic structure of mammalian respiratory comple...
AbstractMitochondria are essential eukaryotic organelles that are surrounded by two membranes. Both ...
Respiration is one of the most vital and basic features of living organisms. In mammals, respiration...
To truly understand bioenergetic processes such as ATP synthesis, membrane-bound substrate transport...
none2The enzymatic complexes of the mitochondrial respiratory chain have been extensively investigat...
In the present chapter, the structures and mechanisms of the major components of mammalian mitochond...