Apnoeic Oxygenation
Definition
Apnoeic oxygenation is the continuous delivery of oxygen to the airway during apnoea, allowing ongoing alveolar oxygen uptake without spontaneous breathing or positive-pressure ventilation.
It delays desaturation and prolongs safe apnoea time during airway management.
Important: It maintains oxygenation but does not provide adequate ventilation.
Mechanism
O₂ continues to diffuse from alveoli into blood
(O₂ consumption ≈ 250 mL/min)
↓
Only 10–20 mL/min of CO₂ enters the alveoli
(most CO₂ remains buffered in blood and tissues)
↓
Alveolar gas volume decreases, producing subatmospheric alveolar pressure
↓
Oxygen is drawn from the pharynx towards the alveoli by aventilatory mass flow
↓
Oxygenation continues during apnoea → desaturation is delayed
However, CO₂ continues to accumulate:
- First minute: PaCO₂ rises by approximately 6–8 mmHg
- Thereafter: approximately 3–4 mmHg/min
Prolonged apnoea can therefore cause:
- Hypercapnia and respiratory acidosis
- Sympathetic stimulation
- Arrhythmias
- Raised intracranial pressure
- Physiological deterioration despite preserved SpO₂
Uses
Useful during:
- Direct or video laryngoscopy
- Rapid-sequence induction
- Anticipated difficult or prolonged intubation
- Emergency airway management
- Patients with reduced oxygen reserve:
- Obesity
- Obstructive sleep apnoea
- Pregnancy
- Paediatric patients
Common Techniques
- THRIVE
- NODESAT
Table of Contents
ToggleTHRIVE – Transnasal Humidified Rapid-Insufflation Ventilatory Exchange
Delivery of high-flow, warmed and humidified oxygen through a nasal cannula during preoxygenation, induction and apnoea.
|
Parameter |
Details |
|
Device |
High-flow nasal cannula |
|
Gas |
Warmed and humidified oxygen |
|
Flow |
Start at 30–40 L/min and increase up to 70 L/min |
|
FiO₂ |
Approaches 1.0 |
|
Duration |
Continued throughout induction, apnoea and laryngoscopy |
Technique
Apply HFNO → preoxygenate → induce anaesthesia → maintain airway patency → continue HFNO during apnoea → intubate
After induction, airway patency may require:
- Jaw thrust
- Oropharyngeal airway
- Nasopharyngeal airway
Additional benefits
Apart from apnoeic oxygenation, THRIVE provides:
- Upper-airway dead-space washout
- Continuous pharyngeal oxygen reservoir
- Mild, variable positive airway pressure
- Better comfort and mucosal protection due to humidification
Positive airway pressure is greater with the mouth closed.
Limitations
- Progressive CO₂ accumulation and respiratory acidosis
- Does not overcome complete upper-airway obstruction
- Less effective with severe shunt or significant lung disease
- May cause nasal discomfort or epistaxis
- Requires specialised equipment
NODESAT– Nasal Oxygen During Efforts at Securing A Tube
A simple technique in which oxygen is delivered through a standard nasal cannula and continued during induction, apnoea, laryngoscopy and intubation.
Technique
- Place the nasal cannula before induction
- Preoxygenate using a tight-fitting face mask
- After induction, increase nasal oxygen flow to approximately 5–15 L/min
- Continue oxygen throughout intubation attempts
- Maintain upper-airway patency
Higher flows may be uncomfortable while the patient is awake; therefore, flow is usually increased after induction.
Advantages
- Simple, inexpensive and widely available
- Hands-free and does not interfere with laryngoscopy
- No specialised high-flow equipment required
- Useful in emergency and resource-limited settings
Limitations
- Lower and variable FiO₂ compared with THRIVE
- Oxygen is not warmed or adequately humidified
- Nasal dryness and discomfort at high flows
- Minimal dead-space washout and positive airway pressure
- Does not provide reliable ventilation
THRIVE vs NODESAT
|
THRIVE |
NODESAT |
|
High-flow nasal cannula |
Standard nasal cannula |
|
Warmed and humidified oxygen |
Non-humidified oxygen |
|
Flow up to 70 L/min |
Flow approximately 5–15 L/min |
|
FiO₂ approaches 1.0 |
FiO₂ is variable |
|
Good dead-space washout |
Minimal dead-space washout |
|
Produces mild positive airway pressure |
Negligible positive pressure |
|
Better tolerated at high flows |
Dryness and discomfort at high flows |
|
Requires specialised equipment |
Simple, inexpensive and widely available |
|
More suitable for prolonged or difficult airway procedures |
Useful when HFNO equipment is unavailable |
Both techniques delay desaturation, but neither is a substitute for ventilation.
References
- Patel A, Nouraei SAR. Anaesthesia. 2015;70(3):323–329.
- Weingart SD, Levitan RM. Ann Emerg Med. 2012;59(3):165–175.e1.
- Fayed M, et al. Cureus. 2023.
- Jagannathan N, Burjek N. Br J Anaesth. 2017;118(2):127–132.
- Gustafsson IM, et al. Br J Anaesth. 2017;118(4):610–617.
