Prehospital electrocardiogram shortens ischaemic time in patients with ST-segment elevation myocardial infarction
K S Cheung1, L P Leung2, Y C Siu3
1Department of Accident and Emergency, Queen Mary Hospital, Pokfulam, Hong Kong.
Insights
Prehospital electrocardiograms (ECG) significantly reduce system delays in managing ST-segment elevation myocardial infarction (STEMI). This leads to shorter ischaemic times for patients, improving outcomes.
Area of Science:
- Cardiology
- Emergency Medicine
- Medical Technology
Background:
- Minimizing ischaemic time is critical for ST-segment elevation myocardial infarction (STEMI) patients.
- System delays in STEMI management contribute to prolonged ischaemic times.
Purpose of the Study:
- To evaluate the effectiveness of prehospital 12-lead electrocardiogram (ECG) in reducing system delays for STEMI patients.
- To assess the impact of prehospital ECG transmission on emergency department workflow.
Main Methods:
- A prospective study involving 15 ambulances equipped with ECG monitors in Hong Kong.
- Prehospital ECGs were tele-transmitted to emergency physicians for rapid assessment.
- Data from STEMI patients with prehospital ECG were compared to those without or with self-arranged transport.
Main Results:
- Prehospital ECG significantly reduced the time from ambulance arrival to the first ECG.
- It also shortened emergency department door-to-triage, door-to-ECG, and door-to-physician consultation times.
- The use of prehospital ECG led to a shorter overall length of stay in the emergency department.
Conclusions:
- Prehospital 12-lead ECG is an effective strategy to shorten system delays in STEMI management.
- Implementing prehospital ECG can reduce ischaemic time prior to hospital admission, potentially improving patient outcomes.
Introduction:
Total ischaemic time should be shortened as much as possible in patients with ST-segment elevation myocardial infarction (STEMI). This study evaluated whether prehospital 12-lead electrocardiogram (ECG) could shorten system delay in STEMI management.
Methods:
From November 2015 to November 2017, 15 ambulances equipped with X Series Monitor/ Defibrillator (Zoll Medical Corporation) were used in the catchment area of Queen Mary Hospital, Hong Kong. Prehospital ECG was performed for patients with chest pain; the data were tele-transmitted to attending emergency physicians at the Accident and Emergency Department (AED) for rapid assessment. Data from patients with STEMI who were transported by these 15 ambulances were compared with data from patients with STEMI who were transported by ambulances without prehospital ECG or who used self-arranged transport.
Results:
Data were analysed from 197 patients with STEMI. The median patient delay for activation of the emergency response system was 90 minutes; 12% of patients experienced a delay of >12 hours. There was a significant difference in delay between patients transported by ambulance and those who used self-arranged transport (P<0.001). For system delay, the use of prehospital ECG shortened the median time from ambulance on scene to first ECG (P<0.001). When performed upon ambulance on scene, prehospital ECG was available 5 minutes earlier than if performed in ambulance compartment before departure. Use of prehospital ECG significantly shortened AED door-to-triage time, AED door-to-first AED ECG time, AED door-to-physician consultation time, and length of stay in the AED (P<0.001 for all comparisons).
Conclusion:
Prehospital ECG shortened ischaemic time prior to hospital admission.
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