Acidosis

Acidosis is a physiological condition in which body fluids become excessively acidic, disrupting cellular and organ function. It develops when hydrogen ions accumulate or when bicarbonate is lost, commonly through increased carbon dioxide retention from impaired ventilation or through metabolic disturbances; chemical buffers, the lungs, and kidneys normally work together to stabilize pH. In biology, studying acidosis clarifies how acid–base balance supports enzyme activity, membrane transport, and energy metabolism. Its mechanisms and consequences are important for understanding respiratory and metabolic disease, interpreting physiological measurements, and evaluating how cells adapt to changing environmental and internal conditions.

Acidosis - Related Videos

Education

JoVE Core - Anatomy and Physiology

Diagnosing Acidosis and Alkalosis

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2024

Diagnosing acid-base imbalances involves systematically analyzing arterial blood samples, focusing on three key measurements: pH, bicarbonate (HCO3−) concentration, and carbon dioxide partial pressure (PCO2). This analysis follows a four-step process that helps identify the imbalance's underlying cause and nature. First, the pH level is assessed to determine whether the blood pH is normal (7.35–7.45), low (acidosis), or high (alkalosis). Next, the PCO2 and HCO3− values are examined to...

Research

JoVE Journal - Neuroscience

Modeling Mitochondrial Disease Using Brain Organoids: A Focus on Mitochondrial Encephalomyopathy, Lactic Acidosis, and Stroke-like Episodes

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Cited by 1 •

2025

Brain organoids serve as a valuable model for Mitochondrial Encephalomyopathy, Lactic Acidosis, and Stroke-like episodes (MELAS) studies, offering insights into their underlying pathophysiology and providing a platform for drug screening. Organoids derived from cell lines with varying levels of heteroplasmy of disease-causing genes exhibit significant phenotypic differences.

Experimental Models to Study the Neuroprotection of Acidic Postconditioning Against Cerebral Ischemia

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Cited by 3 •

2017

Acidic postconditioning protects against cerebral ischemia. Here we present two models to execute APC. They are achieved respectively by transferring corticostriatal slices to acidic buffer after oxygen-glucose deprivation in vitro and by inhaling 20% CO2 after middle cerebral artery occlusion in vivo.

Assessing the Neuroprotective Effects of Acidic Postconditioning in a Mouse Model of Cerebral Ischemia

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2025

Source: Zheng, Y., et al. Experimental Models to Study the Neuroprotection of Acidic Postconditioning Against Cerebral Ischemia. J. Vis. Exp. (2017)This video demonstrates the application of acidic postconditioning (APC) to evaluate its neuroprotective effects against ischemic injury in a mouse model of middle cerebral artery occlusion (MCAO). It outlines the steps involved in reperfusion in the MCAO model and the application of APC during reperfusion to mitigate excitotoxicity, oxidative...

Steps for the Autologous Ex vivo Perfused Porcine Liver-kidney Experiment

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Cited by 2 •

2013

Study of the animal organ physiology can be achieved by performing an experimental ex vivo perfusion system. The addition of a porcine kidney, as a homeostatic organ to our previously developed ex vivo liver perfusion model can be a principal step to achieve a better physiological environment.

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