Acute respiratory distress syndrome (ARDS) occurs when the permeability of alveolar capillaries increases, leading to fluid (hyaline) accumulation in the alveoli. This type of fluid accumulation is known as non-cardiogenic pulmonary oedema.
It peaks between 60 and 70 years of age and has a mortality of ~ 50 – 75%.
Definition (diagnostic criteria) of ARDS
- Onset: < 7 days from time of insult
- Imaging: Bilateral alveolar infiltrates on chest radiography or CT scan
- Origin: No evidence of cardiac disease (PCWP ≤ 18 mmHg); If there is cardiac disease the infiltrates are beyond the degree of heart failure
- Hypoxia: Severe hypoxaemia – PaO2/FiO2 ≤ 200
+/- Total thoracic compliance < 30 mL/cmH20
Causes of ARDS
| Category | Causes |
|---|---|
| Direct causes | Pneumonia (viral, bacterial, or fungal), aspiration pneumonitis, fat or amniotic fluid embolism, pulmonary contusion or thoracic trauma, atelectasis, toxic gas or smoke inhalation, near-drowning, and primary pulmonary vasculitis. |
| Indirect causes | Sepsis (most common cause – GN septicaemia), pancreatitis, major burns, major non-thoracic trauma, DIC, shock, TRALI, anaphylaxis, opioid and salicylate overdose, malaria, eclampsia, and cardiopulmonary bypass. |
- Risk factors
- Advanced age
- Cigarette smoking
- Genetic polymorphisms related to inflammation, coagulation, and endothelial dysfunction
- Obesity
- Diabetes
- Chronic liver disease
- Mechanical ventilation strategies which can exacerbate lung injury
- High tidal volumes
- High airway pressures
- Fluid management
- Excessive fluid administration
- Oxygen toxicity
- Prolonged exposure to high FiO2
- Pathophysiology (stages)
- Inflammation
- The insult causes release of inflammatory mediators → increased alveolar capillary permeability and endothelial dysfunction
- Exudation
- Endothelial/epithelial injury → alveolar oedema → hyaline deposition → severe hypoxaemia
- Proliferation
- Type II pneumocytes proliferate → repair begins
- Recovery vs fibrosis
- The lungs may recover or undergo fibrosis
- Inflammation
- Signs and symptoms
- Acute onset
- Severe shortness of breath
- Cyanosis
- Tachypnoea
- Tachycardia
- Peripheral vasodilation
- Bilateral fine inspiratory crackles
- Differentials
- Cardiogenic pulmonary oedema
- Bilateral pneumonia
- Acute interstitial pneumonia
- Interstitial lung disease exacerbation
- Diffuse alveolar haemorrhage
- Pulmonary vasculitis
- Acute eosinophilic pneumonia
- Organising pneumonia
- Disseminated malignancy
- Investigations
- Complete blood count
- UEC
- LFTs
- Amylase
- Coagulation profile
- CRP
- Blood cultures, sputum cultures, and respiratory tract samples
- Bronchoalveolar lavage if standard cultures are negative
- Arterial blood gas to assess hypoxaemia and calculate PaO2/FiO2 ratio
- B-lines (interstitial oedema) on lung POCUS
- Chest X-ray
- Bilateral lung infiltrates (alveolar opacities)
- The history, normal heart size and lack of pleural effusion suggests ARDS
- CT chest if the diagnosis is uncertain
- Echocardiography to exclude cardiogenic pulmonary oedema
- Pulmonary artery catheter to measure pulmonary capillary wedge pressure (PCWP)
- Treatment
- ICU admission
- Treat the underlying cause
- Respiratory support
- Continuous positive airway pressure (CPAP) or mechanical ventilation. Most patients require mechanical ventilation.
- Increased PEEP of 8 – 12 cmH20. Note that a higher PEEP may cause overdistension, barotrauma, hypotension, and increased dead space.
- Tidal volume of 4 – 6 ml/kg to keep Pplat < 30 cmH20. A tidal volume lower than this can cause atelectotrauma while a tidal volume higher than this can cause volutrauma.
- Adjust RR up to 35/min to maintain acceptable pH
- Avoid hyperoxygenation. Titrate FiO2 to < 60% as soon as possible while maintaining an SpO2 of 90 – 94%
- Increase inspiratory time using an inverse I:E ratio of 1:1 or 2:1. More time is needed to inspire since the lungs have reduced compliance
- Proning improves V/Q mismatch by perfusing the posterior lung – it has a larger volume – and reducing regional overdistension. Proning is done 8 – 16 hours a day but carries the risk of aspiration, tube dislodgement, difficult nursing, and difficult turning during CPR
- Intermittent high pressures, i.e., raising the PIP and PEEP intermittently. PIP of 30 cmH20 for 30 seconds.
- Neuromuscular blockade or sedation to prevent patient ventilator asynchrony.
- Circulatory support
- Keep assessing fluid status and avoid a positive fluid balance. A positive fluid balance exacerbates pulmonary oedema.
- Invasive hemodynamic monitoring (arterial line or Swan-Ganz catheter) to monitor PCWP and cardiac output
- Conservative fluid management
- Inotropes, vasodilators, and blood transfusion to maintain cardiac output and oxygen delivery
- Nitric oxide may be considered for pulmonary hypertension
- Haemofiltration may be needed in renal failure to achieve negative fluid balance
- Supportive treatment
- Nutritional support: enteral feeding is preferred
- DVT prophylaxis
- Stress ulcer prophylaxis when indicated
- Glycaemic control
- Pressure-area care
- Steroids for patients with fat embolization and pneumocystosis