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Gas Exchange and Transport01:20

Gas Exchange and Transport

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Gas exchange, the intake of molecular oxygen (O2) from the environment and the outflow of carbon dioxide (CO2) into the environment, is necessary for cellular function. Gas exchange during respiration occurs largely via the movement of gas molecules along pressure gradients. Gas travels from areas of higher partial pressure to areas of lower partial pressure. In mammals, gas exchange occurs in the alveoli of the lungs, which are adjacent to capillaries and share a membrane with them.
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Peroxisomes and mitochondria are two important oxygen-utilizing organelles in eukaryotic cells. Mitochondria carry out cellular respiration—the process that converts energy from food into ATP. Peroxisomes carry out a variety of functions, primarily breaking down different substances, such as fatty acids.
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External respiration occurs in the lungs, and it is the first step in the journey of oxygen inside the body. When we inhale, oxygen enters our lungs and diffuses across the thin alveolar membrane. The alveoli are tiny, air-filled sacs that provide a vast surface area for gas exchange. Oxygen in the alveoli has a higher partial pressure (105 mmHg) than in the adjacent pulmonary capillaries (40 mmHg), establishing a pressure gradient. As a result, oxygen molecules move from the alveoli into the...
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Diffusion is a type of passive transport. In passive transport, a substance tends to move from an area of high concentration to an area of low concentration until the concentration is equal across the space. For example, take the diffusion of substances through the air. When someone opens a perfume bottle in a room filled with people, the perfume is at its highest concentration in the bottle and is at its lowest at the edges of the room. The perfume vapor will diffuse, or spread away, from the...
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Diffusion is the passive movement of substances down their concentration gradients—requiring no expenditure of cellular energy. Substances, such as molecules or ions, diffuse from an area of high concentration to an area of low concentration in the cytosol or across membranes. Eventually, the concentration will even out, with the substance moving randomly but causing no net change in concentration. Such a state is called dynamic equilibrium, which is essential for maintaining overall...
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Metabolism, measurement and modelling: understanding and exploiting tissue oxygenation.

The Journal of physiology·2021
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High-Resolution Respirometry to Assess Bioenergetics in Cells and Tissues Using Chamber- and Plate-Based Respirometers
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How does oxygen diffuse from capillaries to tissue mitochondria? Barriers and pathways.

Sally C Pias1

  • 1Department of Chemistry, New Mexico Institute of Mining and Technology (New Mexico Tech), Socorro, NM, USA.

The Journal of Physiology
|November 20, 2020
PubMed
Summary

Oxygen transport to mitochondria is vital. Cellular lipids may accelerate oxygen diffusion through tissues, impacting tumor radiotherapy and tissue engineering.

Keywords:
hypoxiamolecular dynamics simulationpermeabilityradiotherapytissue engineering

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Area of Science:

  • Biophysics
  • Cellular Physiology
  • Biochemistry

Background:

  • Efficient oxygen (O2) delivery to mitochondria is critical for cellular function.
  • Existing knowledge on oxygen diffusion pathways from capillaries to mitochondria is limited.
  • Cellular and extracellular structures influence subcellular oxygen availability.

Purpose of the Study:

  • To review the physiological and pathophysiological significance of oxygen availability.
  • To highlight computer modeling studies of oxygen transport at the cell membrane.
  • To explore alternative oxygen diffusion pathways within tissues.

Main Methods:

  • Review of existing experimental and computer modeling studies.
  • Analysis of oxygen transport mechanisms at the cellular level.
  • Investigation of lipid bilayer properties and their effect on oxygen solubility and diffusion.

Main Results:

  • Computer modeling suggests oxygen diffusion is accelerated in cellular lipids compared to aqueous fluids.
  • Enhanced oxygen solubility in lipid bilayers facilitates 'channelling'.
  • Anisotropic diffusion along lipid midplanes and lipid structure junctions promote rapid oxygen movement.

Conclusions:

  • Cellular lipids may play a significant role in accelerating oxygen transport within tissues.
  • Understanding these biophysical mechanisms is crucial for advancing tumor radiotherapy.
  • Knowledge of oxygen transport pathways can inform strategies in tissue engineering.