Approach to acid-base disorders: Clinical sciences
Introduction0:00–0:47
An acid-base disorder is any process that causes the arterial pH to move outside its normal range of 7.35 to 7.45. When the arterial pH decreases below this range, the process is called acidosis.
Respiratory acid-base disorders are due to an increase or decrease in the removal of carbon dioxide from the body through the lungs.
On the other hand, metabolic acid-base disorders result from the loss or accumulation of acids or bicarbonate. Now, if a patient presents with a chief concern suggesting an acid-base disorder, you should first perform an ABCDE assessment to determine if your patient is unstable or stable.
Unstable patient0:47–1:22
If your patient is unstable, stabilize their airway, breathing, and circulation, which may require endotracheal intubation with mechanical ventilation.
Next, obtain IV access and put your patient on continuous vital sign monitoring, including blood pressure, heart rate, and pulse oximetry.
Finally, if needed, don’t forget to provide supplemental oxygen! Now, let’s go back to the ABCDE assessment and discuss stable patients.
Stable patient1:22–2:11
In this case, first, obtain a focused history and physical examination, and order labs, including a comprehensive metabolic panel or CMP, and an arterial blood gas or ABG.
The history will vary greatly depending on the type of acid-base disorder and the underlying cause. Your patient might report fatigue, nausea, and vomiting, or recent medication changes, including diuretics or salicylates.
The physical exam might reveal an abnormal respiratory rate, whereas the CMP might show electrolyte abnormalities depending on the type of the disorder, mainly involving bicarbonate, potassium, and chloride.Next, assess the arterial pH from the ABG results.
Arterial blood pH/Acidosis2:11–2:39
If the pH is under 7.35, you can diagnose acidosis. Your next step is to determine whether the acidosis is either respiratory or metabolic, which involves assessing both the pCO2 from the ABG and serum bicarbonate level from the CMP.
Respiratory Acidosis 2:39–3:34
If the pCO2 is increased above its normal range, which is 35 to 45 millimeters of mercury, then that's respiratory acidosis.
This means there’s a process causing reduced carbon dioxide elimination through the lungs, such as a decreased rate or depth of breathing, or an impaired alveolar gas exchange.
Here’s a clinical pearl! Once you’ve diagnosed respiratory acidosis, evaluate for metabolic compensation by checking the serum bicarbonate level.
Uncompensated respiratory acidosis will have a low pH and elevated pCO2, but with a normal bicarbonate level. On the other hand, if there is metabolic compensation, the bicarbonate level will be elevated, because the kidneys are retaining it to restore normal pH.Now that we’re done with respiratory acidosis, let’s go back and take a look at bicarbonate!
Metabolic acidosis 3:34–5:04
Normally, serum bicarbonate levels are between 22 and 27 milliequivalents per liter. If the bicarbonate level is decreased in addition to having a low pH, diagnose metabolic acidosis.
Okay, here are some clinical pearls to keep in mind! After diagnosing metabolic acidosis, check the pCO2 to see if there is respiratory compensation.
If the pCO2 is normal, in the setting of a low pH and low bicarbonate levels, your patient is experiencing uncompensated metabolic acidosis.
If there’s respiratory compensation, more CO2 will be expelled through the lungs by an increased respiratory rate or depth, so the pCO2 will be low.
However, if you notice a high pCO2 in the setting of a low pH and low bicarbonate level, your patient is experiencing mixed respiratory and metabolic acidosis.
For example, this might occur in a patient with diabetic ketoacidosis, a type of metabolic acidosis, which can be associated with cerebral edema and subsequent central respiratory depression, hypoventilation, and respiratory acidosis.
As you might expect, when two or more processes causing acidosis occur simultaneously, the pH is lower than you would expect from a single metabolic disturbance.Now, let’s take a look at individuals with a pH between 7.35 and 7.45.
Normal arterial blood pH5:04–6:23
In this case, your patient has a normal arterial blood pH. This could mean there’s no acid-base disorder, or it could mean there’s a mixed acid-base disorder, where two or more acid-base disorders coexist and offset each other.
These patients may present with normal or only slightly abnormal pH in the direction of the predominant, or more severe acid-base disorder.In this case, you should also check the pCO2 and bicarbonate levels.
One well-known example of a mixed disorder is salicylate toxicity, which initially stimulates the respiratory center in the brain, leading to hyperventilation and subsequent respiratory alkalosis, while at the same time disrupting aerobic metabolic processes, leading to the production of lactic acid, which ultimately leads to the development of metabolic acidosis.Alright, now that we’ve covered cases in which the pH is acidic and normal, let’s go back to our ABG results.
Alkalosis6:23–6:37
Respiratory alkalosis6:37–7:24
To do so, assess pCO2 and serum bicarbonate levels. If the pCO2 is decreased, you can diagnose respiratory alkalosis.
Here’s a clinical pearl! After diagnosing respiratory alkalosis, check for metabolic compensation by assessing the serum bicarbonate level.
An increased pH and low pCO2, along with a normal bicarbonate level, indicate that respiratory alkalosis is uncompensated.
However, if bicarbonate is decreased, it means that there’s metabolic compensation, so the kidneys are eliminating bicarbonate in an effort to lower the pH back to normal.
Metabolic alkalosis 7:24–8:39
Okay, let’s go back and take a look at serum bicarbonate levels. Increased pH along with increased serum bicarbonate levels is suggestive of metabolic alkalosis.
Here are some final clinical pearls to keep in mind! After diagnosing metabolic alkalosis, check the pCO2 to see if there’s respiratory compensation.
If the pCO2 is normal, in the setting of an increased pH and elevated bicarbonate level, your patient is experiencing uncompensated metabolic alkalosis!
However, if there’s respiratory compensation, less CO2 will be expelled through the lungs by a decreased respiratory rate or depth, so the pCO2 will be high.
Occasionally, you might see low pCO2 in the setting of an increased pH and increased bicarbonate level. In this case, there’s respiratory and metabolic alkalosis happening together.
For example, someone may have hyperthyroidism, which leads to chronic hyperventilation and subsequent respiratory alkalosis, along with acute metabolic alkalosis from recent vomiting.
This pushes the pH higher than it would be from either type of alkalosis alone.Alright, as a quick recap… When evaluating a patient with suspected acid-base disorder, first you need to determine the type of disorder by assessing arterial pH.
Review8:39–9:28
Arterial pH less than 7.35 indicates acidosis, so your next step is to assess pCO2 and bicarbonate levels to determine if it’s respiratory or metabolic.
On the other hand, arterial pH from 7.35 to 7.45 is considered normal, so again, use pCO2 and bicarbonate levels to distinguish a normal condition from a mixed alkalosis and acidosis.
Finally, arterial pH above 7.45 is considered alkalosis, so again, use pCO2 and bicarbonate to determine if
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