Nurses Revision

Arterial Blood Gas (ABG) Interpretation: A Step-by-Step Emergency Guide

Arterial Blood Gas (ABG) Interpretation: A Step-by-Step Emergency Guide

Why this matters: ABGs show how well a patient is oxygenating, ventilating and controlling acid–base balance. They help the emergency team recognise respiratory failure, shock, diabetic ketoacidosis, sepsis, poisoning and ventilator problems. Interpretation is not a number game: always match the gas with the patient, treatment, oxygen delivery and trend.

Scope and safety: Arterial puncture and analyser use require training, PPE and local policy. If a patient is crashing, treat airway, breathing and circulation first. Never delay oxygenation, ventilation, CPR, antidote or sepsis care while waiting for a gas.

Learning outcomes

  • Explain pH, PaCO2, PaO2, HCO3−, base excess, lactate and oxygen saturation.
  • Use a repeatable six-step approach to identify primary respiratory/metabolic disorders and compensation.
  • Calculate anion gap and recognise high-gap, normal-gap and mixed metabolic acidosis.
  • Assess oxygenation, A–a considerations, ventilator response and clinical urgency.
  • Recognise sampling errors and communicate a concise, actionable ABG handover.

1. What an ABG measures

ParameterTypical adult reference (lab dependent)Meaning
pH7.35–7.45Overall acidity/alkalinity. Acidaemia is below 7.35; alkalaemia is above 7.45.
PaCO235–45 mmHg (4.7–6.0 kPa)Respiratory component; rises with hypoventilation and falls with hyperventilation.
HCO3−22–26 mmol/LMetabolic/renal component; calculated on many analysers.
PaO2Usually about 80–100 mmHg on room air at sea levelDissolved oxygen; interpret with FiO2, altitude, age and clinical context.
SaO2About 95–100% in healthy adultsPercentage of haemoglobin carrying oxygen; compare with pulse oximetry.
Base excess (BE)−2 to +2 mmol/LEstimate of metabolic acid/base component; negative suggests metabolic acidosis, positive metabolic alkalosis.
LactateOften <2 mmol/L (lab dependent)Marker of anaerobic metabolism/stress; trend is more useful than one isolated value.

2. Safe sampling and pre-analytical quality

  1. Confirm patient identity, indication, oxygen device/flow or FiO2, ventilator settings and time of sample.
  2. Explain the procedure, check Allen/collateral circulation according to policy and use PPE.
  3. Use a heparinised syringe, avoid excess liquid heparin, remove air bubbles and mix gently.
  4. Apply firm pressure after radial puncture—longer if anticoagulated or bleeding risk is present.
  5. Send promptly at the temperature/time specified by the laboratory; delays alter PaO2, PaCO2 and pH.
  6. Label the sample and record body temperature, oxygen therapy, ventilator settings, position and clinical events.
Common errors: Air bubbles can falsely raise PaO2 or lower PaCO2; venous blood is not interchangeable with arterial blood for oxygenation; excessive liquid heparin dilutes results; prolonged transport allows cells to consume oxygen and produce CO2.

3. The six-step ABG method

  1. Check the patient and sample: identity, oxygen/ventilator settings, temperature and timing.
  2. Look at pH: acid, normal or alkaline? A normal pH can hide a mixed disorder.
  3. Identify the primary process: PaCO2 changes in the opposite direction to pH for respiratory disorders; HCO3− changes in the same direction as pH for metabolic disorders.
  4. Check compensation: is the second value changing as expected, or is a second primary disorder present?
  5. Assess oxygenation and lactate: PaO2/SaO2 relative to FiO2, A–a context and perfusion.
  6. Integrate and act: diagnose the likely cause, treat the patient and repeat the gas after a meaningful intervention.
“pH → CO2/HCO3 → compensation → oxygen → cause → trend.” Repeat this order for every gas until it becomes automatic.

4. Primary acid–base disorders

DisorderpHPrimary changeCommon causes
Respiratory acidosisLowPaCO2 highOpioids/sedatives, COPD exacerbation, severe asthma fatigue, neuromuscular weakness, CNS depression.
Respiratory alkalosisHighPaCO2 lowPain/anxiety, sepsis, pregnancy, hypoxia, pulmonary embolism, excessive ventilation.
Metabolic acidosisLowHCO3− low/BE negativeLactic acidosis, DKA, renal failure, diarrhoea, toxins, sepsis and shock.
Metabolic alkalosisHighHCO3− high/BE positiveVomiting, gastric suction, diuretics, mineralocorticoid excess, hypokalaemia.

5. Compensation: is the response appropriate?

Compensation moves pH toward normal but does not usually return it completely to normal. If the compensation is more or less than expected, suspect a mixed disorder. Use your local calculator/formula and clinical judgement.

Primary disorderUseful bedside ruleInterpretation
Metabolic acidosisWinter’s formula: expected PaCO2 ≈ 1.5 × HCO3− + 8 ± 2.Higher PaCO2 suggests additional respiratory acidosis; lower suggests additional respiratory alkalosis.
Metabolic alkalosisPaCO2 usually rises about 0.7 mmHg for each 1 mmol/L rise in HCO3− (with limits).Less rise suggests respiratory alkalosis; excessive rise suggests respiratory acidosis.
Respiratory acidosisAcute HCO3− rises about 1 mmol/L per 10 mmHg PaCO2 rise; chronic about 3–4.Small bicarbonate rise = acute; larger rise = renal/chronic compensation.
Respiratory alkalosisAcute HCO3− falls about 2 mmol/L per 10 mmHg PaCO2 fall; chronic about 4–5.More/less change than expected suggests mixed disease.

6. Anion gap and metabolic acidosis

The anion gap estimates unmeasured anions: AG = Na+ − (Cl− + HCO3−). A typical reference is about 8–12 mmol/L without potassium, but use the local laboratory range. Correct for low albumin because hypoalbuminaemia can hide a high-gap acidosis.

PatternCausesEMT/emergency clue
High anion-gap metabolic acidosisLactic acidosis, ketoacidosis, renal failure, methanol, ethylene glycol, salicylates and other toxins.Search for shock/sepsis, diabetes, renal disease, alcohol/starvation and poisoning.
Normal anion-gap (hyperchloraemic) acidosisDiarrhoea, renal tubular acidosis, large chloride-fluid load, urinary diversions.History of GI loss/fluids and potassium disturbance helps.
High-gap + high HCO3− gapPossible additional metabolic alkalosis (e.g., vomiting) or chronic respiratory acidosis.Do not treat a “normal” pH without identifying the mixed process.

Delta ratio: compare the rise in anion gap with the fall in bicarbonate when evaluating a high-gap acidosis. A much larger or smaller change suggests an additional metabolic disorder; use this as a prompt for expert review, not a standalone diagnosis.

7. Oxygenation interpretation

  • Read PaO2 together with FiO2, oxygen device, altitude, haemoglobin, SpO2 and work of breathing.
  • A PaO2 that seems “normal” on a high FiO2 may represent severe gas-exchange failure.
  • PaO2 may be falsely high after air contamination; carbon monoxide can give a misleadingly normal PaO2 and pulse oximeter.
  • Use the P/F ratio (PaO2 ÷ FiO2) in critical care discussions, but let the ICU team apply ARDS definitions and ventilator changes.
  • Low PaO2 with normal/high PaCO2 and fatigue is an emergency: support oxygenation and ventilation while treating the cause.

8. Worked emergency patterns

ABG patternLikely interpretationClinical action
pH 7.22, PaCO2 60, HCO3− 24Acute respiratory acidosis.Assess airway/ventilation, opioids or sedatives, fatigue and COPD/asthma; support ventilation and repeat after intervention.
pH 7.28, PaCO2 25, HCO3− 12Metabolic acidosis with respiratory compensation; check Winter’s expected PaCO2.Search for lactate, DKA, renal failure, diarrhoea and toxins; treat shock and the cause.
pH 7.50, PaCO2 28, HCO3− 22Acute respiratory alkalosis.Look for hypoxia, pulmonary embolism, sepsis, pain, pregnancy or excessive ventilator rate.
pH 7.52, PaCO2 48, HCO3− 38Metabolic alkalosis with respiratory compensation.Ask about vomiting, gastric suction, diuretics, chloride depletion and hypokalaemia.
pH 7.36, PaCO2 60, HCO3− 33Compensated/chronic respiratory acidosis, or mixed process if clinically acute.Compare baseline, assess COPD/neuromuscular disease and do not “normalise” chronic CO2 without expert guidance.
pH 7.40, PaCO2 20, HCO3− 12Mixed respiratory alkalosis and metabolic acidosis can create a deceptively normal pH.Consider sepsis, salicylates, liver failure or pregnancy; escalate urgently.

9. Clinical causes linked to ABG patterns

EmergencyExpected cluesPriority
Opioid/sedative overdoseRespiratory acidosis, low respiratory rate, reduced consciousness, small pupils.Airway/ventilation, glucose, naloxone when indicated and observation for recurrence.
DKAHigh-gap metabolic acidosis, low HCO3−, Kussmaul breathing, hyperglycaemia/ketones.Fluids, potassium/insulin protocol and search for infection; do not stop compensatory breathing unnecessarily.
Sepsis/shockLactic acidosis, rising lactate, low pH, hypotension or abnormal perfusion.Oxygenation, fluids/vasopressor pathway, antibiotics/source control and serial lactate.
COPD exacerbationHigh PaCO2, variable pH, chronic bicarbonate elevation; hypoxaemia.Titrate oxygen, bronchodilator/NIV protocol, assess fatigue and avoid harmful over-ventilation.
Salicylate poisoningRespiratory alkalosis plus high-gap metabolic acidosis, tinnitus, vomiting, altered state.Poison-centre advice, avoid respiratory suppression and arrange urgent toxicology care.
Pulmonary embolismLow PaCO2, respiratory alkalosis, hypoxaemia or normal PaO2 early.Do not dismiss as panic; urgent assessment and haemodynamic support.
Severe asthmaEarly low PaCO2, later normal/rising PaCO2 with exhaustion—a dangerous sign.Escalate immediately; prepare ventilation and treat bronchospasm.

10. ABG and mechanical ventilation

  • Rising PaCO2 with falling pH may indicate inadequate minute ventilation, increased dead space, fatigue, obstruction or circuit/ventilator failure.
  • Falling PaO2 despite increasing FiO2 suggests shunt, alveolar collapse, pneumonia, oedema, pneumothorax, tube displacement or inadequate PEEP.
  • A sudden ETCO2 change often precedes or accompanies ABG change; correlate both rather than chasing isolated numbers.
  • After a ventilator change, allow an appropriate time for equilibration and repeat gas based on urgency; never make multiple undocumented changes.

11. Clinical scenarios

Scenario 1 — DKA with fatigue: A young patient has pH 7.18, HCO3− 10 and PaCO2 24 with deep breathing. The low PaCO2 is compensation. Do not sedate or suppress breathing; treat DKA/shock urgently and watch for fatigue and cerebral deterioration.
Scenario 2 — Opioid overdose: A patient is drowsy with RR 6, pH 7.20, PaCO2 70 and HCO3− 27. This is acute respiratory acidosis. Open/assist the airway, ventilate, give naloxone if indicated and repeat assessment rather than relying on oxygen alone.
Scenario 3 — Sepsis: pH 7.30, HCO3− 15, PaCO2 30 and lactate 6 indicate metabolic acidosis with respiratory compensation. Look for infection, poor perfusion and rising work of breathing; begin sepsis care and serial reassessment.
Scenario 4 — Salicylate exposure: pH 7.45, PaCO2 20 and HCO3− 14 may look “normal” overall but represent mixed respiratory alkalosis and metabolic acidosis. Ask about aspirin, tinnitus and vomiting and call toxicology urgently.
Scenario 5 — Ventilator deterioration: A ventilated patient’s PaCO2 rises from 42 to 70 with falling pH and high airway pressure. Assess the patient and DOPE: tube displacement, obstruction/secretions, pneumothorax or equipment failure before changing settings.

12. ABG interpretation and handover template

  1. State patient, indication, oxygen device/FiO2, ventilator mode/settings and time of sample.
  2. Report pH, PaCO2, HCO3−, BE, PaO2/SaO2, lactate and key electrolytes.
  3. Give the primary disorder, compensation status and any mixed disorder.
  4. Describe clinical correlation: respiratory rate/effort, perfusion, mental state, glucose, temperature and trend.
  5. State intervention already given, response and the specific concern/request to the receiving clinician.

13. When an ABG is urgent

  • Severe respiratory distress, altered consciousness, shock, cardiac arrest or suspected ventilatory failure.
  • Rapidly changing oxygen requirement, unexpected ventilator alarm or ETCO2 change.
  • Suspected DKA, sepsis/lactic acidosis, severe asthma/COPD, poisoning or metabolic crisis.
  • Persistent hypoxaemia despite oxygen, cyanosis, exhaustion or impending intubation.
  • Any gas that does not fit the patient—repeat/verify sample and escalate.

14. Revision questions

  1. Which ABG values represent the respiratory and metabolic components?
  2. How do you identify the primary process when the pH is abnormal?
  3. What is Winter’s formula used for?
  4. List five causes of high anion-gap metabolic acidosis.
  5. Why can a normal pH hide a dangerous mixed disorder?
  6. What does rising PaCO2 in a tired asthmatic patient signify?
  7. How does FiO2 change interpretation of PaO2?
  8. What sampling errors can produce misleading results?
  9. Why should oxygenation and ventilation be treated before the final ABG diagnosis?
  10. What information must accompany an ABG handover?

15. Key take-home points

  • Interpret pH first, then CO2/HCO3, compensation, oxygenation and the clinical cause.
  • Compensation should be appropriate; a normal pH does not exclude a mixed emergency.
  • Always interpret PaO2 with FiO2/oxygen device and trend, not as an isolated number.
  • High-gap metabolic acidosis demands a search for lactate, ketones, renal failure and toxins.
  • ABG supports decisions but never replaces ABCDE, examination and continuous reassessment.

Selected authoritative resources

For EMT practice: A gas is a snapshot of physiology. Read it in context, act on the life threat, repeat it after intervention and communicate the pattern—not just the numbers.

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