View clinical trials related to Cardiac Arrest.
Filter by:Steroid use could be considered for patients with weaker adrenal function among those with post-cardiac arrest (CA) return of spontaneous circulation (ROSC), according to the former study. This finding is consistent with the medical background of this present study. This study will be the first to investigate these additional drugs of injection and associated prognosis in cardiac arrest (CA) patients outside the hospital, providing significant basic data.
The right side of the heart of often overlooked in patients who are acutely unwell, as the main area of focus when performing echocardiography tends to be the left ventricle. The right ventricle can yield important diagnostic clues that can aid the clinician, particularly in cases where one may suspect elevated right sided pressures, such as those due to a pulmonary embolus. Although it is taught that a dilated right ventricle is associated in patients with pulmonary embolus, but in patients with spontaneous circulation. What is unknown is patients who sustain a cardiac arrest, does the same hold true. There is a paucity of literature surrounding the appearance of the right ventricle in the cardiac arrest patient acutely. This study aims to assess right ventricular size and function in the immediate post cardiac arrest phase.
Patients at risk of developing life-threatening heart rhythms may require the implantation of a small device called a cardioverter-defibrillator (ICD), which constantly monitors the heart rhythm and delivers an electrical shock to the heart when indicated, in order to return the heart back to a normal rhythm. Many thousands of these devices have been implanted and are electrically active in patients who collapse and need resuscitation. When a patient with an ICD collapses, the device may discharge without warning while a rescuer is performing external chest compressions (cardiac massage). Conventional ICDs placed below the left collar bone typically deliver 35-50 J energy when they discharge, but newer ICDs placed under the skin (S-ICD) alongside the breastbone deliver a larger energy when discharging; typically 50-80J energy. Rescuers performing external chest compressions on a patient during conventional ICD discharge have reported the sensation of a painful electrical shock and permanent nerve damage. In these situations, rescuers appear to have been exposed to electrical current from the ICD considerably in excess of that which is considered a safe threshold. Studies of surface current resulting from discharge of conventional ICDs have been reported in excess of 100 mA which is far in excess of the safe 1 mA limit, and puts the rescuer at considerable risk of tissue damage and possible dangerous heart rhythms. The newer S-ICDs deliver approximately 50% more energy and have the potential to result in exposure of a rescuer to even higher currents. With increasing numbers of the S-ICDs being implanted, and the inevitability that rescuers will soon find themselves exposed to leakage current from these devices, there is a need to examine the leakage currents arising from these devices and assess any subsequent risk to a rescuer performing external chest compressions.
This is a study to determine if surveillance monitoring of general ward patients can reduce cardio-pulmonary arrest while maintaining an acceptable false alarms rate for nursing workload.
Objective: To assess neurologic prognostication by early Transcranial Doppler Sonography (TCD) in comatose survivors after cardiac arrest. Design: Prospective study between May 2016 and November 2017 in a medical intensive care unit and cardiac intensive care unit in a university hospital. Patients: all comatose patients older than 18 years successfully resuscitated from an out-of-hospital cardiac arrest (OHCA). Patients for whom OHCA is associated with traumatic brain injury, no window for TCD measurements, or dead before neurological prognostication are excluded.
Cardiovascular disease remains the leading cause of death in the United States. Mortality rates of cardiac arrest range from 60-85%, and approximately 80% of survivors are initially comatose. Of those who survive, 50% are left with a permanent neurological disability, and only 10% are able to resume their former lifestyle. Early prognosis of comatose patients after cardiac arrest is critical for management of these patients, yet predicting outcome for these patients remains quite challenging. The primary study objective of MOCHA is to develop an accurate and reliable assessment algorithm for determining neurologic prognosis in patients initially unconscious (no eye opening, GCS-M<6 and not following commands) post-cardiac arrest, using multiple prognostic modalities at standardized time points.
Cardiac arrest is one of the most stressful situations to be managed. Our first study (MAX, accepted for publication BJA) clearly showed that it could not be compared to other urgent and stressful situations (malignant hyperthermia, anaphylactic shock, acute toxicity of local anesthetics, severe and symptomatic hyperkaliemia) whose management was significantly improved with the help of a digital cognitive aid. The present study exclusively deals with the management of cardiac arrest (recovery ward, or in the delivery room.) with the second generation of our digital cognitive aid, and explores new insights on how to better manage cardiac arrest with a digital cognitive aid in the hand of the leader.
Survival from out-of-hospital cardiac arrest is time critical and diminishes rapidly without appropriate intervention. Bystander CPR at least doubles the chances of survival and the additional use of a public access defibrillator (PAD) can again double overall survival rates. PADs are designed to be easy and simple to use, but whether untrained bystanders can use them safely and effectively is unknown. This study will aim to assess the ability of untrained bystanders to deploy a PAD in a simulated cardiac arrest.
Optimal chest compression depth during CPR is 4.56cm which is at variance with the current guidelines of 5.0-6.0cm. A change in guidelines is only worthwhile if healthcare professionals can accurately judge a subtle reduction in chest compression depth during CPR by a relatively small amount.
This study seeks to evaluate, whether patients suffering from cardiac arrest, that can be successfully resuscitated, can be differentiated from those, that cannot be resuscitated, using arterial blood pressure values.