Войдите в систему

The mitochondrial cristae membrane is the primary site for the oxidative phosphorylation (OXPHOS) process of energy conversion mediated through respiratory complexes I to V. These complexes have been widely studied for decades, and it has been proven that they form supramolecular structures called respiratory supercomplexes (SC). These higher-order complexes may be crucial in maintaining the biochemical structure and improving the physiological activity of the individual complexes while boosting the electron transfer efficiency.

Types of respiratory chain supercomplexes

Respiratory supercomplexes may co-exist in the cristae membrane with single OXPHOS complexes. Among the many different types of supercomplexes, ones containing complex I monomer, complex III dimer, and one or more units of complex IV form the most abundant supercomplex- SC I+III2+IV1-2. This supercomplex is also known as 'respirasomes' because it can autonomously carry out respiration in the presence of ubiquinone and cytochrome c.

In addition, there may exist supercomplexes of various other compositions and stoichiometries whose abundance and composition may vary among organisms and tissues depending on the metabolic and physiological conditions. For instance, complex I has an unstable structure and may dissociate into individual protein subunits. The stability of complex I depends on its association with other complexes such as complex III dimer in SC I+III2. Genetic mutations that lead to the loss of complex III are correlated to the loss of complex I and associated supercomplexes.

Complex III also forms a stable association with one or multiple units of complex IV in supercomplex(III2+IV1-2). Such simpler supercomplexes are abundant in organisms like Saccharomyces cerevisiae that do not express complex-I. Such organisms mainly comprise SC III2+IV1 and III2+IV2 in addition to complex II that serves as the only entry point for electrons into the electron transport chain.

The respiratory supercomplexes may be organized into even larger complexes called megacomplexes or respiratory strings. Human respiratory SCI+III2+IV could form a circular MCI2+III2+IV2. The function of these high-order complexes remains an area of research.

Теги
Mitochondrial Cristae MembraneOxidative PhosphorylationRespiratory ComplexesSupercomplexesRespiratory SupercomplexesElectron Transfer EfficiencyTypes Of SupercomplexesSC I III2 IV1 2RespirasomesComposition And Stoichiometry Of SupercomplexesMetabolic And Physiological ConditionsStability Of Complex I

Из главы 19:

article

Now Playing

19.10 : The Supercomplexes in the Crista Membrane

Mitochondria and Energy Production

2.4K Просмотры

article

19.1 : Митохондрии

Mitochondria and Energy Production

8.8K Просмотры

article

19.2 : Митохондриальные мембраны

Mitochondria and Energy Production

6.5K Просмотры

article

19.3 : Внутренняя митохондриальная мембрана

Mitochondria and Energy Production

3.1K Просмотры

article

19.4 : Цикл лимонной кислоты: обзор

Mitochondria and Energy Production

15.5K Просмотры

article

19.5 : Цикл лимонной кислоты: выход

Mitochondria and Energy Production

7.1K Просмотры

article

19.6 : Цепь переноса электронов: комплекс I и II

Mitochondria and Energy Production

9.4K Просмотры

article

19.7 : Цепь переноса электронов: комплекс III и IV

Mitochondria and Energy Production

6.5K Просмотры

article

19.8 : АТФ-синтаза: механизм

Mitochondria and Energy Production

13.3K Просмотры

article

19.9 : Цепь переноса электронов

Mitochondria and Energy Production

15.5K Просмотры

article

19.11 : АТФ-синтаза: структура

Mitochondria and Energy Production

11.6K Просмотры

article

19.12 : Белок-переносчик АДФ/АТФ

Mitochondria and Energy Production

3.0K Просмотры

JoVE Logo

Исследования

Образование

О JoVE

Авторские права © 2025 MyJoVE Corporation. Все права защищены