Related Experiment Video
Updated: Aug 5, 2026

Measurement and Analysis of Extracellular Acid Production to Determine Glycolytic Rate
Published on: December 12, 2015
Implementation of rules for the estimation of compensatory responses in acid-base analysis: A review and proposal for
Pedro Villafruela-Rodríguez1, Laura Sahuquillo-Frías1, Ángeles Férez-Martí1
1Laboratory Department, Consorci Hospital General Universitari de València, Av. de les Tres Creus, 2, L'Olivereta, 46014 València, Spain.
Abstract:
Acid-base homeostasis is essential for cellular and systemic function. Its maintenance requires tightly regulated compensatory mechanisms capable of correcting disturbances that threaten physiological balance, as dysregulation can be life-threatening. When a primary metabolic disturbance occurs and alters bicarbonate concentration (HCO₃), the main compensatory mechanism is a respiratory response that adjusts the partial pressure of carbon dioxide (PCO₂). Conversely, a primary respiratory disturbance, whether acute or chronic, leads to changes in PCO₂, and compensatory response occurs through a metabolic response that modifies HCO₃- levels. Mixed disturbances are also common and may represent a diagnostic challenge in clinical practice. To assess acid-base status, clinical laboratories use blood gas analyzers, which provide information to identify metabolic, respiratory, or mixed disorders. Several formulas are available to estimate the compensatory response according to the primary disturbance. These formulas take into account parameters such as PCO₂, actual bicarbonate (HCO₃-c), and standard base excess, all of which are reported in blood gas analysis. The implementation of expert rules within Laboratory Information Systems or Clinical Decision Support tools, which automatically apply these formulas, could facilitate the evaluation of whether compensatory response is appropriate or if a mixed disorder is present, potentially improving the diagnostic accuracy of blood gas analysis and adding value to laboratory reports. This review summarizes the main approaches described in the literature and proposes a standardized procedure to incorporate the study of compensatory mechanisms into the interpretation of acid-base disorders, with the aim of improving diagnostic accuracy and supporting clinicians in patient management.
Related Concept Videos
Compensation Mechanisms
Respiratory Compensation
This mechanism addresses metabolic-induced pH imbalances by adjusting breathing rates. Respiratory compensation begins within minutes of detecting a pH...
Respiratory Regulation of Acid-Base Balance
When carbon dioxide levels increase in the blood, more H+ and HCO3⁻ are produced, leading to a...
Diagnosing Acidosis and Alkalosis
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...
Acid-Base Balance
When the pH of arterial blood rises above 7.45, it results in a condition called alkalosis. Conversely, a drop below 7.35 leads to...
Titration of a Weak Acid with a Strong Base
Renal Regulation of Acid-Base Balance
In the kidneys, cells within the proximal convoluted tubules (PCT) and the collecting ducts secrete hydrogen ions (H+) into the tubular fluid. Specifically, in the PCT, Na+/H+ antiporters secrete H+ while reabsorbing Na+.
However, the intercalated cells in...

