Maximal Uncoupled Respiration

Maximal uncoupled respiration is the highest rate at which mitochondria consume oxygen when electron transport operates independently of ATP production, providing a measure of respiratory capacity. It is typically assessed by adding a protonophore, such as FCCP, which dissipates the mitochondrial proton gradient and drives the electron transport chain to work at its maximal sustainable rate. In developmental biology, this measurement helps compare mitochondrial function across developmental stages, cell types, or experimental conditions. Changes in maximal uncoupled respiration can indicate shifts in metabolic capacity, mitochondrial health, and the energy demands associated with cell growth, differentiation, and tissue development.

Maximal Uncoupled Respiration - Related Videos

Research

JoVE EoE - Assay Techniques

Oxygen Flux Measurements to Evaluate Mitochondrial Respiration in Living and Permeabilized Cells

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2026

Source: Elettra Leo1, Luiza H.D. Cardoso1, Sabine Schmitt1, Erich Gnaiger11Oroboros InstrumentsThis video explains how oxygen flux is used to assess mitochondrial respiration in living and permeabilized mammalian cells. It demonstrates the sequential use of digitonin, metabolic substrates, ADP, an uncoupler, and an inhibitor to characterize different respiratory states. The resulting oxygen flux profile reveals mitochondrial function and energy-coupling efficiency under defined conditions.

Education

JoVE Lab Manual - Biology

Cellular Respiration - Student Protocol

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2019

Quantifying Respiration using Microrespirometers ExpandNOTE: In this experiment, you will measure the rate of cellular respiration for germinating seeds by measuring the rate of exchange for oxygen. As oxygen is consumed to provide energy, germinating seeds release carbon dioxide. This carbon dioxide is absorbed by potassium carbonate and thus the overall gaseous pressure of the respirometer will be reduced. HYPOTHESES: The experimental hypothesis is that germinating seeds will show a greater...

Cellular Respiration - Concepts

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2019

Autotrophs and Heterotrophs Living organisms require a continuous input of energy to maintain cellular and organismal functions such as growth, repair, movement, defense, and reproduction. Cells can only use chemical energy to fuel their functions, therefore they need to harvest energy from chemical bonds of biomolecules, such as sugars and lipids. Autotrophic organisms, namely plants, algae, and photosynthetic and chemosynthetic bacteria, convert inorganic materials into such biomolecules by...

Profit Maximization vs. Wealth Maximization

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2024

Profit maximization aims to achieve immediate financial gains by reducing costs and increasing revenues. This short-term focus involves aggressive cost-cutting and sales strategies. For example, Amazon initially pursued profit maximization by optimizing operations and rapidly expanding its product range. Although this approach increased short-term profits, it often led to criticisms regarding labor conditions and environmental impacts. In contrast, wealth maximization aims to increase the...

Respiration

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2024

Overview of the Respiratory System and Energy Production Energy production in the human body is primarily fueled by oxidation, a process where food molecules are burned by combining with oxygen to produce carbon dioxide and water. This vital metabolic process sustains life, and is supported intricately by the respiratory system. Structure and Function of the Respiratory System: The respiratory system is a complex network of structures that includes the nose, oropharynx, larynx, trachea,...

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