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Αλέξανδρος Γ. Σφακιανάκης
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Τρίτη 14 Ιανουαρίου 2020

Global Capnography Project (GCAP): implementation of capnography – an international anaesthesia quality improvement project

Original Article 
 
Open Access

Global Capnography Project (GCAP): implementation of capnography in Malawi – an international anaesthesia quality improvement project

First published: 25 September 2018
  
Citations: 7

This article is accompanied by an editorial by Lipnick et al., Anaesthesia 2019; 74: 146‐149.

You can respond to this article at http://www.anaesthesiacorrespondence.com

Summary

The Lancet Commission on Global Surgery emphasised the importance of access to safe anaesthesia care. Capnography is an essential monitor for safe anaesthesia, but is rarely available in low‐income countries. The aim of this study was twofold: to measure the prevalence of capnography in the operating theatres and in intensive care units; and to determine whether its introduction was feasible and could improve the early recognition of critical airway incidents in a low‐income country. This is the first project to do this. Forty capnographs were donated to eight hospitals in Malawi. Thirty‐two anaesthesia providers received a 1‐day capnography training course with pre‐ and post‐course knowledge testing. Providers kept logbooks of capnography use and recorded their responses to abnormal readings. On follow‐up at 6 months, providers completed questionnaires on any significant patient safety incidents identified using capnography. In January 2017, at the commencement of the project, only one operating theatre had a capnograph. Overall, 97% and 100% 'capnography gaps' were identified in the theatres and intensive care units, respectively. The mean (SD) scores of our capnography multiple choice questionnaires improved after training from 15.00 (3.16) to 18.70 (0.99), p = < 0.001. The capnography equipment was appropriately robust and performed well. Six months following implementation, 24 (77%) anaesthesia providers reported recognising 44 oesophageal intubations and 28 (90%) believed that capnography had saved lives. This study has shown it is feasible to introduce capnography in a low‐income country, resulting in early recognition of critical airway incidents and ultimately helping to save lives. Building on the experience of the first trial of pulse oximetry implementation in low‐income countries in 2007, we believe this is one of the most important projects in anaesthesia safety in the last decade.

Introduction

The Lancet Commission on Global Surgery concluded that universal access to safe, affordable surgical and anaesthesia care when needed saves lives 1. The introduction of improved patient monitoring in high‐income countries has brought about major improvements in the safety of anaesthesia care [2–4]. This has not taken place in the middle‐ and low‐income countries, and in 2008 the World Federation of Societies of Anaesthesiologists (WFSA) produced international standards for the safe practice of anaesthesia that included pulse oximetry and capnography 5. Pulse oximetry was also included in the World Health Organization (WHO) surgical safety checklist 6 and its successful introduction along with a training package into low‐income countries began with the Global Oximetry Project 7 and later continued with the Lifebox Foundation 8. Capnography is also seen as an essential monitor in high‐income countries 9, and the 4th National Audit Project (NAP4) 10 on major complications of airway management further confirmed the importance of capnography both in the operating theatre and especially in the intensive care unit (ICU) 11. In low‐income countries, anaesthesia providers routinely work without capnography 12-14 and there is often a 100% gap between the need for capnography and its availability. This 'capnography gap' is defined as the difference between the observed and expected numbers of capnographs in the operating theatre or in the ICU.

Pulse oximetry was the first monitor chosen when considering introducing essential anaesthesia monitoring equipment into low‐income countries, due to ease‐of‐use and applicability to all patients. This led to the successful Global Oximetry Project 15 and the Lifebox Foundation initiative. This latter initiative has led to increased availability of pulse oximeters for patients undergoing general anaesthesia in many low‐ and middle‐income countries. In 2016, the Global Capnography Project (GCAP) was established to investigate the feasibility and sustainability of introducing capnography as a standard of care in low‐income and middle‐income countries. A pilot site was identified in Malawi, where anaesthesia links were already established and pulse oximetry had been satisfactorily introduced 8.

The aims of the project were as follows: to quantify the capnography gap; to identify the training and education needs of the anaesthesia providers; and to distribute 40 capnographs. The follow‐up aimed to assess the performance of the capnograph used; to gather the opinions of the anaesthesia providers on the value of the training and the importance of capnography in their routine practice, and to determine if any significant patient safety incidents were identified by using capnography and the resulting action taken.

Methods

Anaesthetists from the Queen Elizabeth Hospital in Blantyre were involved from the earliest planning stage of the project, and relevant local approvals were obtained from the head of anaesthesia. All individual anaesthesia providers gave their consent and some agreed to a video interview of their experiences and opinions on capnography.

Malawi is a small low‐income country in sub‐Saharan Africa with a population of 17.4 million (2017) 16, 17, and life expectancy is 57 years for men and 60 years for women 18, 19. The project was conducted in selected hospitals in the southern region of Malawi. These included the largest hospital in the region, Queen Elizabeth Central Hospital Blantyre (QECH) (WFSA Level 3, referral hospital) 5, Zomba Central Hospital (ZCH), Zomba (WFSA Level 2, district/provincial hospital), and six other government district hospitals (WFSA Level 1, small hospitals) where anaesthesia was undertaken.

A prospective study of anaesthesia mortality in Malawi suggested that the anaesthesia 'avoidable mortality rate' was 1:504 anaesthetics, which is 6–100 times higher than the anaesthesia mortality rate in developed countries 20. There are an estimated 109 anaesthesia providers in Malawi, 104 (95%) of whom are non‐physician anaesthetic clinical officers (ACOs) 21. Most anaesthetics are given by these ACOs who have no medical or nursing background, but receive 18 months of anaesthesia training 22. Many had been involved in the introduction of pulse oximetry into Malawi and were known to the GCAP Group through that project and previous training courses.

We obtained information about the capnography gap at all the sites in Malawi from pre‐course questionnaires. Capnography was expected to be present in every operating theatre and at every ICU bed that was used for treating patients who required mechanical ventilation. The GCAP team visited Malawi twice, launching the project in January 2017 and returning to conduct a follow‐up review in August 2017. Contact was maintained by email and telephone calls in the intervening months.

At the project launch, 32 anaesthesia providers attended a training course that included lectures and small group workshop sessions. This covered capnography theory and clinical use of the Nellcor™ N‐85 hand‐held side‐stream monitor (Medtronic Minimally Invasive Therapies, Dublin, Ireland). This equipment provides a capnography waveform display which is simple to operate and has a rechargeable battery that provides power for from 4–7 hr, depending on usage, with backup mains supply. The course also incorporated clinical scenarios with capnography waveform recognition and explained what action was needed to prevent patient harm. The waveform recognition included use of the 'Hats and Caps' system, which is a novel method of teaching trainee doctors and ICU nurses about interpretation of capnograph traces (Fig. 1) 23. A multiple choice questionnaire (MCQ) was completed immediately before and after the course.

image
'Hats and caps' guide to capnography traces on intensive care; 'posh hats' are good 23. Reproduced with permission.

We donated 40 Nellcor N‐85 capnographs and 2000 sets of single‐use disposable gas monitoring lines to the 31 operating theatres and eight ICU beds in the pilot hospitals.

We constructed a GCAP logbook using a format similar to the one that was used during the introduction of pulse oximetry 8. Anaesthesia providers were asked to use the logbook for every case in which capnography was used and to record the following: ASA physical status; type of surgery; type of anaesthesia; and the capnography values and waveform shapes. Any problems encountered with patients or technical problems with the device were recorded.

We visited the QECH and ZCH sites to see that the capnographs were correctly set up and being used properly in the operating theatres and ICU, and to answer any queries about the project, logbooks or equipment. The ACO who was responsible for anaesthetic equipment in the region was given training in the onsite maintenance of the capnographs.

In August 2017, we conducted follow‐up visits to QECH, ZCH and other district hospitals, checked the capnography arrangements, addressed any queries about the project and collected information through questionnaires and interviews. We also carried out further workshop training, and all the anaesthesia providers who had been using the capnographs completed questionnaires. These asked about their use of capnography (including location and frequency), the incidents recognised or problems diagnosed during use, and their opinions on the technical aspects of the Nellcor N‐85 and its value in their practice. It provided an opportunity to expand on personal clinical cases in which they found capnography had been particularly helpful. Many providers gave video interviews of their experience of the training and their use of capnography. Anaesthesia providers who had also attended the January teaching courses completed an additional questionnaire that assessed the training package they had received 6 months earlier.

We performed data analysis of the MCQs using Stata 14.2. As the data from the pre‐ and post‐training MCQs were normally distributed, we undertook a two‐sample t‐test. Data from the logbooks and questionnaires were entered using Microsoft Excel software (Microsoft, Redmond, WA, USA).

Results

At the start of the GCAP project in January 2017, there was only one capnograph in the southern region of Malawi at the QECH, which has 13 operating theatres giving a hospital capnography gap of 92% ((13–1)/13). None of the other seven hospitals (total 18 theatres) had any capnographs, a gap of 100% ((18–0)/18). The overall capnography gap in all the operating theatres was 97% ((31–1)/31). Only QECH and ZCH had ICUs, each with four beds but no capnographs, giving a capnography gap in ICU of 100% ((8–0)/8).

We assessed knowledge of capnography by MCQs completed by 32 anaesthesia providers immediately before and after the January training course. All the anaesthesia providers spoke good English and there were no language barriers to this activity. There was an improvement in the MCQ scores after the one‐day training course, with a pre‐ training mean (SD) of 15.00 (3.16) and post‐training mean of 18.70 (0.99) out of 20. The mean difference between pre‐ and post‐training groups was 3.70 (p < 0.001, 95%CI 2.51–4.88). The 95%CIs for each group did not cross – 95%CI (13.85–16.14) pre‐ and (18.34–19.05) post‐course and therefore correlate with the reported p value.

Anaesthesia providers who attended the training in January also completed a course feedback questionnaire in August. All the anaesthesia providers thought that the one‐day course and follow‐up visits had been sufficient for them to use the capnography monitors, understand the end‐tidal carbon dioxide (ETCO2) values and interpret the capnography waveforms. The manual provided was a useful reference. They had all remembered the 'Hats and caps' system and found it useful to recognise capnography waveforms. Suggestions for improvement included online teaching materials and teaching for nurses on ICUs (Table 1).

Table 1. Examples of critical incidents recognised by using capnography and corrective action taken in the operating theatres
Clinical scenarioCapnograph waveform 'Hats and caps' (23)Critical incidentCorrective action taken
Adult, female, ruptured ectopic pregnancy, emergency laparotomy, intubated with tracheal tubeNo hatOesophageal intubationTracheal tube removed, re‐intubated – confirmed with top hat waveform
Child, cleft palate repair, uncuffed tracheal tube, difficulty in intubation, three attemptsNo hatOesophageal intubationTracheal tube removed, re‐intubation – confirmed with top hat waveform on final attempt
Neonate, tracheo‐oesophageal fistula, uncuffed tracheal tube

Top hat to no hat

sudden change in the capnography waveform

Tracheal tube displacementCareful repositioning of tracheal tube – confirmed with top hat waveform
Female, ectopic pregnancy, general anaestheticAscot hatSevere bronchospasm, caused by anaphylaxisAdrenaline intravenous and salbutamol nebulisers
Adult, laminectomy, anticipated 8‐h procedure, intubated, tracheal tube position confirmed

Top hat

rising baseline before start of surgery

Rebreathing of CO2, soda lime exhaustedNo soda lime available, woke patient up, case postponed until soda lime available
Neonate, hydrocephalus, external ventricular drain, uncuffed tracheal tubeTop hat to no hatTracheal tube kinkedTracheal tube unkinked and secured – confirmed with top hat waveform
Child, six years old, thoracotomy, sudden high airway pressuresAscot hat to no hatBlocked tracheal tubeTracheal tube suctioned and repositioned
Obstetric case, spinal converted to general anaesthetic due to massive haemorrhage

Top hat

progressively worsening rise in end‐tidal CO2 noted on waveform

Hypoventilation – ventilator error, machine leakManual ventilation, mechanical ventilator replaced

Logbook data were collected from 699 episodes of monitoring with the capnographs. It demonstrated capnography use across a wide range of procedures; 49% of patients were younger than 16 years and 87% were ASA physical status 1 or 2. These data showed clinical interpretation of the capnography waveforms and provided details of scenarios and critical incidents, summarised in Tables 1 and 2.

Table 2. Examples of critical incidents recognised by using capnography and corrective action taken in the ICU
Clinical scenarioCapnograph waveform 'Hats and Caps' (22)Critical incidentCorrective action taken
Adult, male, severe traumatic brain injury (TBI), polytrauma, admitted to ICU from theatre post emergency laparotomy

No hat

on arrival in ICU

Blocked tracheal tube/endo‐bronchial intubationSuctioned tracheal tube and pulled back – correct position confirmed by top hat waveform
Adult, female, ICU admission with septic shock and DIC post normal delivery and General anaesthetic for retained products

No hat

changed to top hat with return of spontaneous circulation

Severe hypotension/cardiac arrestCPR commenced. Observed ROSC with return of waveform
Adults with TBI, intubated and ventilated in ICU

Top hat

rising and/or falling ETCO2 values

Hypo‐ and hyperventilationHelpful to adjust ventilator settings in ICU as no arterial blood gas sampling available
Paediatric ICUTop hat to no hatAccidental extubation and tracheal tube displacementsCapnography alarm immediately alerted staff, patient re‐intubated or tracheal tube repositioned – confirmed with Top Hat waveform
  • TBI, traumatic brain injury; ICU, intensive care unit; CPR, cardiopulmonary resuscitation; DIC, disseminated intravascular coagulopathy; ROSC, return of spontaneous circulation.

Twenty‐eight (90%) anaesthesia providers reported that they believed that the use of capnography had saved lives. This group said that a minimum number of 57 lives had been saved during the 6‐month period of use. Twenty‐nine out of 31 (94%) anaesthesia providers reported capnography to be useful in all the different areas of their practice. Twenty‐seven out of 31 (87%) said it had been extremely useful in ICU.

Out of the 40 capnographs, 38 were fully functional after 6 months. Two capnographs did not switch on and were never used. Several had been dropped, but continued to work satisfactorily.

Discussion

This is, to our knowledge, the first project to study the implementation of capnography and its impact in a low‐income country. The 97% gap in capnography provision in the operating theatres and the 100% gap in capnography provision in intensive care reflects the results of surveys in other low‐income countries 13, 14, 24. The oximetry gap in operating theatres at the start of the Global Oximetry Project in Uganda was 64% 7. These findings confirm our belief that there is a substantial global deficit in monitoring using capnography for patients undergoing anaesthesia, despite waveform capnography being a recommended international standard for anaesthesia monitoring since 2010 5.

This study was a quality improvement project and had a number of limitations. It was run with minimum financial resources and the data collected were mostly descriptive and qualitative.

The area of Malawi was chosen due to existing clinical contacts, the known lack of capnography and the previous successful experience with the implementation of pulse oximetry. The hospitals were sufficiently diverse to provide information about relevant issues and this was one of the study strengths.

The evidence regarding recognition of critical incidents after the capnographs had been used for 6 months is compelling. Seventy‐seven percent of anaesthesia providers reported a total of 44 oesophageal intubations, and 81% reported a total of 81 breathing circuit disconnections (Table 3). Critical incidents are often under‐reported in questionnaires 25, but oesophageal intubation and disconnection are two of the most important incidents that capnography monitoring can detect; both can lead to significant patient harm and mortality if not identified early and corrected quickly 10.

Table 3. Critical incidents identified with capnography from anaesthetic provider questionnaires covering 1418 cases in August 2017. Values are number (proportion)
Critical incident/clinical scenarioAnaesthesia providers reporting incident/scenarioIncidents/scenarios recognised
Oesophageal intubations24/31 (77%)44
Breathing circuit disconnections25/31 (81%)81
Significant leak14/31 (45%)94
Readiness for extubation20/31 (65%)247
Hypoventilation25/31 (81%)174
Hyperventilation24/31 (77%)186
Severe hypotension12/31 (39%)20
Bronchospasm13/31 (42%)27
Kinked tracheal tube or sample line17/31 (55%)55
Secretions21/31 (68%)53

Anaesthesia providers gave more detailed accounts of these oesophageal intubations when interviewed (see Tables 1 and 2). For example, after placing the tracheal tube, and despite breath sounds being perceived as normal, the absence of a capnography trace (no hat) was noted, provoking early re‐intubation and successful placement of the tracheal tube in the trachea. Many reflected that without the recognition and correction of these critical incidents, the adverse outcomes could have been very serious. This corroborates the experience of when routine capnography was first introduced into high‐income countries from 1986, the incidence of undetected oesophageal intubation causing catastrophic injury notably decreased, and was eventually virtually eliminated 26, 27. Capnography became mandatory in the US from 1991 (Fig. 2).

image
Trends in oesophageal intubation over time. The proportion of claims for delayed detection of oesophageal intubation by year of event in the Anesthesia Closed Claims Project Database 27. The years 1970–1975 and 2010–2013 were collapsed due to the small total number of claims in the database for those years. Reproduced with permission.

During the 6‐month study period, 44 oesophageal intubations were reported in Southern Malawi, which has a population of 7.5 million 16, giving a rate of 11.7 oesophageal intubations per million population per year. Assuming intubation rates and capnography use in Malawi to be representative of sub‐Saharan Africa, with a population of 1022 million 16, we estimate that over 11,000 oesophageal intubations could occur per year. These pose a very significant patient safety risk that would most effectively be mitigated by the implementation of capnography. Oesophageal intubation, undetected because capnography is not used, is now labelled a 'Never Event' in the NHS 28. Since the introduction of capnography in Malawi, 90% of the anaesthesia providers thought lives have been saved.

The recent African Surgical Outcomes Study commented that globally an average of 1% of patients die after surgery, but this number rises to 2.1% for patients in Africa. Of these, 5.9% died on the day of surgery, and the lack of capnography leading to acute airway deaths may have been a contributing factor 29.

Capnography is also useful outside the operating theatre 30, 31, and the eight capnographs supplied to two ICUs detected problems with secretions and blocked tracheal tubes. Capnography had also been used to monitor resuscitation during six cardiac arrests. The ICU nurse‐to‐patient ratios are always less than 1:1, and blood gas analysis is not available in Malawi. Measuring blood gases involves expensive equipment that requires regular maintenance, costly agents and disposables; capnography can provide completely new information to assist in managing ventilated patients. Hypoventilation had been recognised on 174 occasions and hyperventilation on 186 occasions, again improving the safety and quality of the patient care delivered in theatre and ICU.

At the 6‐month follow‐up, all the capnographs were fully functional, except for the two that had never been switched on. All of the anaesthesia providers said the capnographs were easy to use, and 77% were now using them on every intubated patient. Producing a change in practice of this magnitude within 6 months in this challenging environment is noteworthy. The fact that a high proportion of providers experienced oesophageal intubations and breathing circuit disconnections that were detected early and 'saved' by capnography, may have driven this change.

The capnographs performed well, and were appropriately robust for this environment. Anaesthesia providers gave their opinions (see Tables 4and 5) and many suggested ways of securing the capnographs to prevent them falling to the floor, including clamps, cases and drip stand attachments. Nevertheless, all those that had fallen were still working satisfactorily. The capnographs used required very little maintenance, and a member of staff received appropriate training in January and was given the small amount of equipment necessary for a simple annual service. Two thousand disposable gas sampling line sets had been provided for the project; in the future, replacing these presents an additional supply issue and running cost. The Nellcor N‐85 capnograph also has the facility to provide pulse oximetry; this may be advantageous, and on occasions some providers used it for both indications, for instance during cardiac arrests on the wards. As additional patient monitoring becomes available in low‐income countries it is preferable to combine as many modalities as possible in one unit, as is done in high‐income countries 5.

Table 4. Opinions of anaesthesia providers about capnography. Values are number (proportion)
Opinions of anaesthesia providersProviders agreeing
'Capnography changed their anaesthetic practice'31/31 (100%)
'Capnography helped in preventing complications'31/31 (100%)
'They will continue to use capnography'31/31 (100%)
'They would recommend the use of capnography to colleagues'31/31 (100%)
'They would want capnography used on self or a family member'31/31 (100%)
Table 5. Opinions of 31 anaesthesia providers on capnography and equipment issues. Values are proportion
Anaesthesia providers
Practicalities of use
The device is always easy to find86%
Both waveform and ETCO2 values are useful86%
Used the device on every intubated patient77%
Did not have storage issues76%
Did not have cleaning issues81%
Did not have gas line issues70%
Design issues
Did not have issues with the size of waveform81%
Did not have an issue with the size of the screen71%
Did not have issues with the connection to tracheal tube90%
Did not have issues with the capnography device not working during a case78%
Found the device easy to use97%
Battery life
Battery ran out during use38%
Battery life should be 4 h8%
Battery life should be 8 h25%
Battery life should be 12 h67%
Used capnography connected to mains21%

New technology should only be introduced with an appropriate training package. Those responsible for the delivery of this package found it practical and straightforward to teach. The feedback showed that the manual provided had been a useful ongoing reference, and that anaesthesia providers had all remembered and used the 'Hats and caps' system for distinguishing capnograph waveforms. Suggested improvements included online teaching materials, more locally‐based case scenarios and ICU nurse training. Some ICU nurses were particularly enthusiastic about capnography, and on the two ICUs visited, it is now used to monitor every patient who requires mechanical ventilation.

Only one operating theatre had a capnograph at the start of this project, effectively demonstrating an absolute 'gap' in capnograph provision in this low‐income country, despite international standards recommending it. This study has shown that it is feasible to produce an appropriate training package for anaesthesia providers to help them successfully introduce capnography to monitor almost every patient who required tracheal intubation and mechanical ventilation in theatre and ICU over a period of 6 months. Increased recognition of airway incidents was judged to have saved lives.

Considering the large capnography gap in Malawi, and the likelihood that those operating theatres that do not have pulse oximetry worldwide will certainly not have capnography, it is reasonable to assume that there must be at least 70,000 operating theatres in the world without capnography 32, 33, a safety issue that represents both risk and opportunity. This GCAP study has shown the capnograph used to be appropriately robust and demonstrated that, following a short course on capnography, a very significant change in practice could be achieved, increasing patient safety. We contend that if comparable equipment were available in other low‐income countries, similar improvements could be reproduced there.

For these reasons, we believe that this is one of the most important projects in anaesthesia safety in the last decade. The results support the development of an international project to help make global capnography provision a reality, so that like pulse oximetry, it can be included in the WHO surgical safety checklist and improve patient safety worldwide. All relevant organisations should consider taking this forward.

Acknowledgements

All the medical anaesthetists, ACOs and ITU nurses in Malawi who took part in the project, and Dr T Schnittger and Dr A Tobin who took part in the first visit to Malawi. The authors are grateful for funding received from Medtronic for travel and associated costs, and in particular for donating and delivering all the capnographs and disposables used in the project. Medtronic had no involvement in study design; in the collection, analysis and interpretation of data; in the writing of the report or in the decision to submit the paper for publication. RJ and FR contributed equally to the project. RJ, FR, EO and DW all received travel expenses incurred for this project from Medtronic. DW has received lecture fees from Aguettant Ltd and Medtronic, all donated to Lifebox. All other authors declare no competing interests.

Capnography: No Trace = Wrong Place


Aairway management

NAP4 Report and findings of the 4th National Audit Project of The Royal College of Anaesthetists ■ ■ ■ ■ ■
Executive Summary
While it is generally accepted that airway management may
sometimes be problematic and that complications occur, it
was not known how frequently these occur or the nature of
the events. NAP4 sets out to address this.
The 4th National Audit Project of the Royal College of
Anaesthetists and the Difficult Airway Society (NAP4) was
designed to answer the questions;

■ What types of airway device are used during anaesthesia
and how often?
■ How often do major complications, leading to serious
harm, occur in association with airway management
in anaesthesia, in the intensive care units and in the
emergency departments of the UK?
■ What is the nature of these events and what can we
learn from them, in order to reduce their frequency and
consequences?
Phase one of the project established that approximately
three million patients are anaesthetised in the UK each
year in the NHS and delineated the airway devices used to
manage these.
Phase two sought to identify all cases of major
complications of airway management in the same
population as in phase one, but also in ICUs and emergency
departments. Each reported case was reviewed by an
expert panel to ensure the correct cases were included and
to maximise the amount that could be learnt. In total 186
cases met inclusion criteria and were reviewed in detail.
We acknowledge that it is very likely that not all relevant
cases were reported to the project and this is discussed in
detail in Chapter 5. We estimate that the project might
have detected as few as one in four relevant cases.
Major findings
This report is an in-depth analysis of the reviewed cases.
Each chapter includes a final section enumerating learning
points and recommendations. The recommendations
are extensive in number and breadth, reflecting the
unique opportunity this project offers to examine airway
management in the UK.
This summary does not reproduce or cover all findings in
the report but highlights the major themes running through
the report. Those with a responsibility for organising airway
management policy and for carrying out airway management
are encouraged to read the relevant parts of the report in full,
including detailed recommendations. The recommendations
are reproduced in a single document in Appendix 5.
■ Approximately 2.9 million general anaesthetics are
administered in the United Kingdom National Health
Service each year. In approximately 56% of these cases
the airway management is with a supraglottic airway
device (SAD), 38% with a tracheal tube and 5% with a
face mask.
Clinical themes
■ Poor airway assessment contributed to poor airway
outcomes. This was due to omission, incomplete
assessment or a failure to alter the airway management
technique in response to findings at assessment.
Assessment to predict both potential airway difficulty
and aspiration risk were equally important.
■ Poor planning contributed to poor airway outcomes.
When potential difficulty with airway management
is identified a strategy is required. An airway plan
suggests a single approach to management of the
airway. A strategy is a co-ordinated, logical sequence
of plans, which aim to achieve good gas exchange and
prevention of aspiration. Anaesthetists should approach
airway management with strategies rather than plans.
■ Failure to plan for failure. In some circumstances when
airway management was unexpectedly difficult the
response was unstructured. In these cases outcome
was generally poor. All anaesthetic departments should
have an explicit policy for management of difficult or
failed intubation and for impossible mask ventilation
(e.g. formal adoption of the Difficult Airway Society
guidelines as departmental policy) and for other airway
emergencies. Individual anaesthetists should use such
strategies in their daily practice.
■ The project identified numerous cases where awake
fibreoptic intubation (AFOI) was indicated but was
not used. The project methods did not enable us to
determine why AFOI was not used but there were
cases suggesting, lack of skills, lack of confidence, poor
judgement and in some cases lack of suitable equipment
being immediately available. This latter problem was
prevalent on ICU. Awake intubation should be used
whenever it is indicated. This requires that anaesthetic
departments and individual anaesthetists ensure such a
service is readily available.
■ Problems arose when difficult intubation was managed
by multiple repeat attempts at intubation. The airway
problem regularly deteriorated to a 'can't intubate can't
ventilate' situation (CICV). It is well recognised a change
of approach is required rather than repeated use of a
technique that has already failed.
■ There was a high failure rate of emergency cannula
cricothyroidotomy, approximately 60%. There were
numerous mechanisms of failure and the root cause
was not determined; equipment, training, insertion
technique and ventilation technique all led to failure.
In contrast a surgical technique for emergency surgical
airway was almost universally successful. The technique
of cannula cricothyroidotomy needs to be taught
and performed to the highest standards to maximise
the chances of success, but the possibility that it is
intrinsically inferior to a surgical technique should
also be considered. Anaesthetists should be trained to
perform a surgical airway.
■ Aspiration was the single commonest cause of death
in anaesthesia events. Poor judgement was the likely
root cause in many cases which included elements
of poor assessment of risk (patient and operation)
and failure to use airway devices or techniques that
would offer increased protection against aspiration.
Several major events occurred when there were clear
indications for a rapid sequence induction but this was
not performed.
■ Failure to correctly interpret a capnograph trace led to
several oesophageal intubations going unrecognised
in anaesthesia. A flat capnograph trace indicates lack of
ventilation of the lungs: the tube is either not in the trachea
or the airway is completely obstructed. Active efforts
should be taken to positively exclude these diagnoses.
This applies equally in cardiac arrest as CPR leads to an
attenuated but visible expired carbon dioxide trace.
■ One third of events occurred during emergence or
recovery and obstruction was the common cause in
these events. Post-obstructive pulmonary oedema
was described in one in ten reports. This phase of
anaesthesia, particularly when the airway was difficult
at intubation or there is blood in the airway, needs to be
recognised as a period of increased risk and planned for.
■ The commonest cause of the events reported to NAP4,
as identified by both reporters and reviewers, appeared
to be poor judgement. While this assessment is made
with hindsight it was a consistent finding. The next most
common contributory factor was education and training.
Choosing the safest technique for airway management
may not necessarily be the anaesthetist's most familiar.
It may be necessary to seek the assistance of colleagues
with specific skills, for example in regional anaesthesia
or airway management.
■ Events were reported where supraglottic airway
devices were used inappropriately. Patients who were
markedly obese, often managed by junior trainees,
were prominent in the group of patients who sustained
non-aspiration events. Numerous cases of aspiration
occurred during use of a first generation SAD in patients
who had multiple risk factors for aspiration and in
several in whom the aspiration risk was so high that
rapid sequence induction, should have been used.
■ SADs were used to avoid tracheal intubation in some
patients with a recognised difficult intubation. There
was often no evidence of a back-up plan. Under these
circumstances if the airway is lost (e.g. due to oedema or
mechanical displacement) this becomes an anaesthetic
emergency. Awake fibreoptic intubation or fibreoptic
intubation through a SAD before surgery may offer
a lower risk alternative to SAD use in cases of known
difficulty with tracheal intubation.
■ Anaesthesia for head and neck surgery featured
frequently in cases reported to NAP4. These cases
require careful assessment and co-ordinated planning by
skilled anaesthetists and surgeons. Excellent teamwork
is required as when any part of this process fails the risk
of adverse outcomes is high.
■ Management of the obstructed airway requires
particular skill and co-operation between anaesthetist
and surgeon. This is best performed in a fully equipped
environment with full surgical, anaesthetic and nursing
support. An operating theatre is the ideal location.
Tracheostomy under local anaesthesia may offer a
safer alternative to tracheal intubation after induction
of anaesthesia, and it should be actively considered.
When surgical airway performed by a surgeon is the
back-up plan, preparation should be made so this is
instantly available.
■ The proportion of obese patients in case reports
submitted to NAP4 was twice that in the general
population, this finding was even more evident in the
morbidly obese. Too often obesity was not identified
as a risk factor for airway difficulty and the anaesthetic
technique was not modified. Particular complications
in obese patient included an increased frequency of
aspiration and other complications during the use
of SADs, difficulty at tracheal intubation and airway
obstruction during emergence or recovery. When rescue
techniques were necessary in obese patient they failed
more often than in the non-obese. Obesity needs to be
recognised as a risk factor for airway difficulty and plans
modified accordingly.
Many of the events and deaths reported to NAP4 were
likely to have been avoidable. Despite this finding,
the incidence of serious complications associated with
anaesthesia is low. This is also true for airway management
in ICU and the emergency department, though it is
likely that a disproportionate number of airway events
occur in these locations. The aim of this report is that
detailed attention to its contents and compliance with the
recommendations will make airway management safer.
Many of the findings of NAP4 are neither surprising nor
new, but the breadth of the project, covering the whole
of the UK for a full year, will hopefully provide impetus
to changes that can further improve the safety of airway
management in the UK in anaesthesia, intensive care and
the emergency department. Our goal should be to reduce
serious complications of airway management to zero.
Dr Tim Cook, Dr NickWoodall, Dr Chris Frerk
■ In more than a third of events from all sources; during
anaesthesia, in ICU and the emergency department,
airway management was judged to be poor. More
often there were elements of both good and poor
management. In approximately one fifth of cases
airway management was judged to be exclusively good.
ICU and the emergency department
■ At least one in four major airway events reported to
NAP4 was from ICU or the emergency department.
The outcome of these events was more likely to lead to
permanent harm or death than events in anaesthesia.
Analysis of the cases identified gaps in care that
included: poor identification of at-risk patients, poor
or incomplete planning, inadequate provision of
skilled staff and equipment to manage these events
successfully, delayed recognition of events and failed
rescue due to lack of or failure of interpretation of
capnography. The project findings suggest avoidable
deaths due to airway complications occur in ICU and the
emergency department.
■ Failure to use capnography in ventilated patients
likely contributed to more than 70% of ICU related
deaths. Increasing use of capnography on ICU is the
single change with the greatest potential to prevent
deaths such as those reported to NAP4.
■ Displaced tracheostomy, and to a lesser extent
displaced tracheal tubes, were the greatest cause of
major morbidity and mortality in ICU. Obese patients
were at particular risk of such events and adverse
outcome from them. All patients on ICU should have an
emergency re-intubation plan.
■ Most events in the emergency department were
complications of rapid sequence induction. This was
also an area of concern in ICU. RSI outside the operating
theatre requires the same level of equipment and
support as is needed during anaesthesia. This includes
capnography and access for equipment needed to
manage routine and difficult airway problems.
Airway management is a fundamental anaesthetic
responsibility and skill; anaesthetic departments should
provide leadership in developing strategies to deal with
difficult airways throughout the entire organisation.

Major Complications of Airway Management