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  • Question 1 - You are managing a 68-year-old patient with suspected sepsis, and your attending physician...

    Correct

    • You are managing a 68-year-old patient with suspected sepsis, and your attending physician requests you to place a central line. During your discussion, you both agree to insert a central line into the right internal jugular vein (IJV). What potential complication can be avoided by selecting the right side?

      Your Answer: Thoracic duct injury

      Explanation:

      Inserting an IJV line on the right side of the neck is preferred because it reduces the risk of damaging the thoracic duct. The thoracic duct is where the largest lymphatic vessel in the body connects to the bloodstream. It is situated where the left subclavian and internal jugular veins meet, as well as the beginning of the brachiocephalic vein. Opting for the right side of the neck helps prevent potential harm to the thoracic duct.

      Further Reading:

      A central venous catheter (CVC) is a type of catheter that is inserted into a large vein in the body, typically in the neck, chest, or groin. It has several important uses, including CVP monitoring, pulmonary artery pressure monitoring, repeated blood sampling, IV access for large volumes of fluids or drugs, TPN administration, dialysis, pacing, and other procedures such as placement of IVC filters or venous stents.

      When inserting a central line, it is ideal to use ultrasound guidance to ensure accurate placement. However, there are certain contraindications to central line insertion, including infection or injury to the planned access site, coagulopathy, thrombosis or stenosis of the intended vein, a combative patient, or raised intracranial pressure for jugular venous lines.

      The most common approaches for central line insertion are the internal jugular, subclavian, femoral, and PICC (peripherally inserted central catheter) veins. The internal jugular vein is often chosen due to its proximity to the carotid artery, but variations in anatomy can occur. Ultrasound can be used to identify the vessels and guide catheter placement, with the IJV typically lying superficial and lateral to the carotid artery. Compression and Valsalva maneuvers can help distinguish between arterial and venous structures, and doppler color flow can highlight the direction of flow.

      In terms of choosing a side for central line insertion, the right side is usually preferred to avoid the risk of injury to the thoracic duct and potential chylothorax. However, the left side can also be used depending on the clinical situation.

      Femoral central lines are another option for central venous access, with the catheter being inserted into the femoral vein in the groin. Local anesthesia is typically used to establish a field block, with lidocaine being the most commonly used agent. Lidocaine works by blocking sodium channels and preventing the propagation of action potentials.

      In summary, central venous catheters have various important uses and should ideally be inserted using ultrasound guidance. There are contraindications to their insertion, and different approaches can be used depending on the clinical situation. Local anesthesia is commonly used for central line insertion, with lidocaine being the preferred agent.

    • This question is part of the following fields:

      • Resus
      6.6
      Seconds
  • Question 2 - You are requested to insert a central venous catheter into the neck using...

    Correct

    • You are requested to insert a central venous catheter into the neck using ultrasound guidance. What characteristic aids in differentiating between a vein and artery when evaluating the neck vessels using ultrasound?

      Your Answer: Veins are obliterated on compression whereas arteries are not

      Explanation:

      Veins and arteries can be differentiated on ultrasound based on their compressibility, response to valsalva, and shape. When compressed, veins are obliterated while arteries remain unaffected. Additionally, when a patient performs a valsalva maneuver, the neck veins expand. In transverse view, arteries appear circular with a muscular wall, whereas veins tend to have an oval shape. It is important to note that the overall size and internal diameter are not reliable indicators for distinguishing between arteries and veins.

      Further Reading:

      A central venous catheter (CVC) is a type of catheter that is inserted into a large vein in the body, typically in the neck, chest, or groin. It has several important uses, including CVP monitoring, pulmonary artery pressure monitoring, repeated blood sampling, IV access for large volumes of fluids or drugs, TPN administration, dialysis, pacing, and other procedures such as placement of IVC filters or venous stents.

      When inserting a central line, it is ideal to use ultrasound guidance to ensure accurate placement. However, there are certain contraindications to central line insertion, including infection or injury to the planned access site, coagulopathy, thrombosis or stenosis of the intended vein, a combative patient, or raised intracranial pressure for jugular venous lines.

      The most common approaches for central line insertion are the internal jugular, subclavian, femoral, and PICC (peripherally inserted central catheter) veins. The internal jugular vein is often chosen due to its proximity to the carotid artery, but variations in anatomy can occur. Ultrasound can be used to identify the vessels and guide catheter placement, with the IJV typically lying superficial and lateral to the carotid artery. Compression and Valsalva maneuvers can help distinguish between arterial and venous structures, and doppler color flow can highlight the direction of flow.

      In terms of choosing a side for central line insertion, the right side is usually preferred to avoid the risk of injury to the thoracic duct and potential chylothorax. However, the left side can also be used depending on the clinical situation.

      Femoral central lines are another option for central venous access, with the catheter being inserted into the femoral vein in the groin. Local anesthesia is typically used to establish a field block, with lidocaine being the most commonly used agent. Lidocaine works by blocking sodium channels and preventing the propagation of action potentials.

      In summary, central venous catheters have various important uses and should ideally be inserted using ultrasound guidance. There are contraindications to their insertion, and different approaches can be used depending on the clinical situation. Local anesthesia is commonly used for central line insertion, with lidocaine being the preferred agent.

    • This question is part of the following fields:

      • Resus
      6.8
      Seconds
  • Question 3 - You are managing a 32-year-old woman with septic shock in the resuscitation room....

    Correct

    • You are managing a 32-year-old woman with septic shock in the resuscitation room. The on-call intensive care team evaluates her and decides to insert a central venous catheter.
      Which of the following veins would be the most suitable choice for central venous access?

      Your Answer: Internal jugular vein

      Explanation:

      The internal jugular vein is a significant vein located close to the surface of the body. It is often chosen for the insertion of central venous catheters due to its accessibility. To locate the vein, a needle is inserted into the middle of a triangular area formed by the lower heads of the sternocleidomastoid muscle and the clavicle. It is important to palpate the carotid artery to ensure that the needle is inserted to the side of the artery.

    • This question is part of the following fields:

      • Resus
      7
      Seconds
  • Question 4 - You are summoned to the resuscitation room to provide assistance with a 68-year-old...

    Correct

    • You are summoned to the resuscitation room to provide assistance with a 68-year-old individual who is undergoing treatment for cardiac arrest. After three defibrillation attempts and the administration of adrenaline and amiodarone, the patient experiences a restoration of spontaneous circulation.

      What is the recommended target SpO2 following a cardiac arrest?

      Your Answer: 94-98%

      Explanation:

      The recommended target SpO2, which measures the percentage of oxygen saturation in the blood, following a cardiac arrest is 94-98%. This range ensures that the patient receives adequate oxygenation without the risk of hyperoxia, which is an excess of oxygen in the body.

      Further Reading:

      Cardiopulmonary arrest is a serious event with low survival rates. In non-traumatic cardiac arrest, only about 20% of patients who arrest as an in-patient survive to hospital discharge, while the survival rate for out-of-hospital cardiac arrest is approximately 8%. The Resus Council BLS/AED Algorithm for 2015 recommends chest compressions at a rate of 100-120 per minute with a compression depth of 5-6 cm. The ratio of chest compressions to rescue breaths is 30:2.

      After a cardiac arrest, the goal of patient care is to minimize the impact of post cardiac arrest syndrome, which includes brain injury, myocardial dysfunction, the ischaemic/reperfusion response, and the underlying pathology that caused the arrest. The ABCDE approach is used for clinical assessment and general management. Intubation may be necessary if the airway cannot be maintained by simple measures or if it is immediately threatened. Controlled ventilation is aimed at maintaining oxygen saturation levels between 94-98% and normocarbia. Fluid status may be difficult to judge, but a target mean arterial pressure (MAP) between 65 and 100 mmHg is recommended. Inotropes may be administered to maintain blood pressure. Sedation should be adequate to gain control of ventilation, and short-acting sedating agents like propofol are preferred. Blood glucose levels should be maintained below 8 mmol/l. Pyrexia should be avoided, and there is some evidence for controlled mild hypothermia but no consensus on this.

      Post ROSC investigations may include a chest X-ray, ECG monitoring, serial potassium and lactate measurements, and other imaging modalities like ultrasonography, echocardiography, CTPA, and CT head, depending on availability and skills in the local department. Treatment should be directed towards the underlying cause, and PCI or thrombolysis may be considered for acute coronary syndrome or suspected pulmonary embolism, respectively.

      Patients who are comatose after ROSC without significant pre-arrest comorbidities should be transferred to the ICU for supportive care. Neurological outcome at 72 hours is the best prognostic indicator of outcome.

    • This question is part of the following fields:

      • Resus
      6.9
      Seconds
  • Question 5 - A 16 year old male is brought into the emergency department as he...

    Correct

    • A 16 year old male is brought into the emergency department as he has become disoriented and lethargic over the past day. Initial tests suggest a diagnosis of diabetic ketoacidosis. A blue 20g cannula has been inserted to administer intravenous fluids. What is the estimated maximum rate of flow through a 20g cannula?

      Your Answer: 60 ml/minute

      Explanation:

      The size of the cannula used for IV fluid infusion determines the maximum flow rate. For a 20g cannula, the maximum flow rate is around 60 ml per minute. As a result, the fastest infusion time through a 20g cannula is approximately 15 minutes for a maximum volume of 1000 ml.

      Further Reading:

      Peripheral venous cannulation is a procedure that should be performed following established guidelines to minimize the risk of infection, injury, extravasation, and early failure of the cannula. It is important to maintain good hand hygiene, use personal protective equipment, ensure sharps safety, and employ an aseptic non-touch technique during the procedure.

      According to the National Institute for Health and Care Excellence (NICE), the skin should be disinfected with a solution of 2% chlorhexidine gluconate and 70% alcohol before inserting the catheter. It is crucial to allow the disinfectant to completely dry before inserting the cannula.

      The flow rates of IV cannulas can vary depending on factors such as the gauge, color, type of fluid used, presence of a bio-connector, length of the cannula, and whether the fluid is drained under gravity or pumped under pressure. However, the following are typical flow rates for different gauge sizes: 14 gauge (orange) has a flow rate of 270 ml/minute, 16 gauge (grey) has a flow rate of 180 ml/minute, 18 gauge (green) has a flow rate of 90 ml/minute, 20 gauge (pink) has a flow rate of 60 ml/minute, and 22 gauge (blue) has a flow rate of 36 ml/minute. These flow rates are based on infusing 1000 ml of normal saline under ideal circumstances, but they may vary in practice.

    • This question is part of the following fields:

      • Resus
      15.6
      Seconds
  • Question 6 - You are summoned to the resuscitation room to assist with a 68-year-old patient...

    Correct

    • You are summoned to the resuscitation room to assist with a 68-year-old patient who has experienced cardiac arrest. The team has initiated the initial round of chest compressions and has connected the monitoring equipment. You propose a brief pause in chest compressions to assess if the rhythm is suitable for defibrillation. The patient's rhythm is indeed defibrillated. However, despite administering three successive shocks, there is no spontaneous return of circulation. What are the two appropriate medications to administer now, and what are their respective doses?

      Your Answer: Adrenaline 1 mg IV & amiodarone 300 mg IV

      Explanation:

      After the third shock is administered to patients with a shockable rhythm, it is recommended to administer two drugs: adrenaline and amiodarone. Adrenaline should be given at a dose of 1 mg intravenously (or intraosseously) for adult patients in cardiac arrest with a shockable rhythm. For adult patients in cardiac arrest who are in ventricular fibrillation or pulseless ventricular tachycardia, amiodarone should be given at a dose of 300 mg intravenously (or intraosseously) after three shocks have been administered. In cases where amiodarone is unavailable, lidocaine may be used as an alternative.

      Further Reading:

      Cardiopulmonary arrest is a serious event with low survival rates. In non-traumatic cardiac arrest, only about 20% of patients who arrest as an in-patient survive to hospital discharge, while the survival rate for out-of-hospital cardiac arrest is approximately 8%. The Resus Council BLS/AED Algorithm for 2015 recommends chest compressions at a rate of 100-120 per minute with a compression depth of 5-6 cm. The ratio of chest compressions to rescue breaths is 30:2.

      After a cardiac arrest, the goal of patient care is to minimize the impact of post cardiac arrest syndrome, which includes brain injury, myocardial dysfunction, the ischaemic/reperfusion response, and the underlying pathology that caused the arrest. The ABCDE approach is used for clinical assessment and general management. Intubation may be necessary if the airway cannot be maintained by simple measures or if it is immediately threatened. Controlled ventilation is aimed at maintaining oxygen saturation levels between 94-98% and normocarbia. Fluid status may be difficult to judge, but a target mean arterial pressure (MAP) between 65 and 100 mmHg is recommended. Inotropes may be administered to maintain blood pressure. Sedation should be adequate to gain control of ventilation, and short-acting sedating agents like propofol are preferred. Blood glucose levels should be maintained below 8 mmol/l. Pyrexia should be avoided, and there is some evidence for controlled mild hypothermia but no consensus on this.

      Post ROSC investigations may include a chest X-ray, ECG monitoring, serial potassium and lactate measurements, and other imaging modalities like ultrasonography, echocardiography, CTPA, and CT head, depending on availability and skills in the local department. Treatment should be directed towards the underlying cause, and PCI or thrombolysis may be considered for acute coronary syndrome or suspected pulmonary embolism, respectively.

      Patients who are comatose after ROSC without significant pre-arrest comorbidities should be transferred to the ICU for supportive care. Neurological outcome at 72 hours is the best prognostic indicator of outcome.

    • This question is part of the following fields:

      • Resus
      27.5
      Seconds
  • Question 7 - A 42 year old male is brought into the ED resuscitation room. The...

    Correct

    • A 42 year old male is brought into the ED resuscitation room. The paramedics report the patient was discovered outdoors and unconscious. CPR was initiated in the ambulance. You observe that the patient is hypothermic with a temperature of 30.4ºC. What modifications would you make to the management of cardio-respiratory arrest based on this finding?

      Your Answer: Pulse check for up to 1 minute

      Explanation:

      In patients with hypothermia, the pulse check during CPR should be extended to 1 minute. Additionally, several adjustments need to be made to the CPR protocol. Firstly, mechanical ventilation should be used due to the stiffness of the chest wall. Secondly, the dosing or omission of cardiac arrest drugs should be adjusted based on the patient’s temperature. The defibrillation pattern should also be modified, with 3 shocks attempted before re-attempting defibrillation only when the body temperature is above 30ºC. Certain electrolyte disturbances, such as mild hypokalemia, should not be treated as potassium levels typically rise with Rewarming. It is important to plan for prolonged resuscitation in these cases. Lastly, uncorrected ABG results should be used, without adjusting for temperature.

      Further Reading:

      Hypothermic cardiac arrest is a rare situation that requires a tailored approach. Resuscitation is typically prolonged, but the prognosis for young, previously healthy individuals can be good. Hypothermic cardiac arrest may be associated with drowning. Hypothermia is defined as a core temperature below 35ºC and can be graded as mild, moderate, severe, or profound based on the core temperature. When the core temperature drops, basal metabolic rate falls and cell signaling between neurons decreases, leading to reduced tissue perfusion. Signs and symptoms of hypothermia progress as the core temperature drops, initially presenting as compensatory increases in heart rate and shivering, but eventually ceasing as the temperature drops into moderate hypothermia territory.

      ECG changes associated with hypothermia include bradyarrhythmias, Osborn waves, prolonged PR, QRS, and QT intervals, shivering artifact, ventricular ectopics, and cardiac arrest. When managing hypothermic cardiac arrest, ALS should be initiated as per the standard ALS algorithm, but with modifications. It is important to check for signs of life, re-warm the patient, consider mechanical ventilation due to chest wall stiffness, adjust dosing or withhold drugs due to slowed drug metabolism, and correct electrolyte disturbances. The resuscitation of hypothermic patients is often prolonged and may continue for a number of hours.

      Pulse checks during CPR may be difficult due to low blood pressure, and the pulse check is prolonged to 1 minute for this reason. Drug metabolism is slowed in hypothermic patients, leading to a build-up of potentially toxic plasma concentrations of administered drugs. Current guidance advises withholding drugs if the core temperature is below 30ºC and doubling the drug interval at core temperatures between 30 and 35ºC. Electrolyte disturbances are common in hypothermic patients, and it is important to interpret results keeping the setting in mind. Hypoglycemia should be treated, hypokalemia will often correct as the patient re-warms, ABG analyzers may not reflect the reality of the hypothermic patient, and severe hyperkalemia is a poor prognostic indicator.

      Different warming measures can be used to increase the core body temperature, including external passive measures such as removal of wet clothes and insulation with blankets, external active measures such as forced heated air or hot-water immersion, and internal active measures such as inhalation of warm air, warmed intravenous fluids, gastric, bladder, peritoneal and/or pleural lavage and high volume renal haemofilter.

    • This question is part of the following fields:

      • Resus
      8.9
      Seconds
  • Question 8 - You are called into the emergency room to assist with multiple trauma patients...

    Correct

    • You are called into the emergency room to assist with multiple trauma patients after a car accident. The patient you are assigned to has significant bruising on their chest, muffled heart sounds, and low blood pressure despite receiving fluids. During an ultrasound scan, a large buildup of fluid around the heart is observed. Due to the high number of injured individuals, the cardiac surgery team is unable to immediately take the patient to the operating room. You are given the task of performing a pericardiocentesis. Which of the following changes in the patient's electrocardiogram (ECG) would indicate that the needle has been successfully inserted into the ventricle?

      Your Answer: ST elevation

      Explanation:

      ST elevation and ventricular ectopics indicate that the needle has made contact with the ventricle. In such cases, it is recommended to retract the needle until the ECG pattern returns to its normal baseline.

      Further Reading:

      Cardiac tamponade, also known as pericardial tamponade, occurs when fluid accumulates in the pericardial sac and compresses the heart, leading to compromised blood flow. Classic clinical signs of cardiac tamponade include distended neck veins, hypotension, muffled heart sounds, and pulseless electrical activity (PEA). Diagnosis is typically done through a FAST scan or an echocardiogram.

      Management of cardiac tamponade involves assessing for other injuries, administering IV fluids to reduce preload, performing pericardiocentesis (inserting a needle into the pericardial cavity to drain fluid), and potentially performing a thoracotomy. It is important to note that untreated expanding cardiac tamponade can progress to PEA cardiac arrest.

      Pericardiocentesis can be done using the subxiphoid approach or by inserting a needle between the 5th and 6th intercostal spaces at the left sternal border. Echo guidance is the gold standard for pericardiocentesis, but it may not be available in a resuscitation situation. Complications of pericardiocentesis include ST elevation or ventricular ectopics, myocardial perforation, bleeding, pneumothorax, arrhythmia, acute pulmonary edema, and acute ventricular dilatation.

      It is important to note that pericardiocentesis is typically used as a temporary measure until a thoracotomy can be performed. Recent articles published on the RCEM learning platform suggest that pericardiocentesis has a low success rate and may delay thoracotomy, so it is advised against unless there are no other options available.

    • This question is part of the following fields:

      • Resus
      4.7
      Seconds
  • Question 9 - A 72 year old female is brought into the emergency department due to...

    Incorrect

    • A 72 year old female is brought into the emergency department due to near-fainting. Whilst in the department, the patient loses consciousness and upon examination, no pulse is detected. You begin cardiopulmonary resuscitation (CPR). Which two medications (aside from oxygen) are administered as part of the advanced life support resuscitation protocol?

      Your Answer: Adrenaline and atropine

      Correct Answer: Adrenaline and amiodarone

      Explanation:

      According to the ALS algorithm, the main drugs used during CPR are oxygen, adrenaline, and amiodarone. Adrenaline is administered every 3-5 minutes as per the 2021 UK ALS algorithm. Amiodarone is given after 3 shocks.

      Further Reading:

      In the event of an adult experiencing cardiorespiratory arrest, it is crucial for doctors to be familiar with the Advanced Life Support (ALS) algorithm. They should also be knowledgeable about the proper technique for chest compressions, the appropriate rhythms for defibrillation, the reversible causes of arrest, and the drugs used in advanced life support.

      During chest compressions, the rate should be between 100-120 compressions per minute, with a depth of compression of 5-6 cm. The ratio of chest compressions to rescue breaths should be 30:2. It is important to change the person giving compressions regularly to prevent fatigue.

      There are two shockable ECG rhythms that doctors should be aware of: ventricular fibrillation (VF) and pulseless ventricular tachycardia (pVT). These rhythms require defibrillation.

      There are four reversible causes of cardiorespiratory arrest, known as the 4 H’s and 4 T’s. The 4 H’s include hypoxia, hypovolemia, hypo or hyperkalemia or metabolic abnormalities, and hypothermia. The 4 T’s include thrombosis (coronary or pulmonary), tension pneumothorax, tamponade, and toxins. Identifying and treating these reversible causes is crucial for successful resuscitation.

      When it comes to resus drugs, they are considered of secondary importance during CPR due to the lack of high-quality evidence for their efficacy. However, adrenaline (epinephrine) and amiodarone are the two drugs included in the ALS algorithm. Doctors should be familiar with the dosing, route, and timing of administration for both drugs.

      Adrenaline should be administered intravenously at a concentration of 1 in 10,000 (100 micrograms/mL). It should be repeated every 3-5 minutes. Amiodarone is initially given at a dose of 300 mg, either from a pre-filled syringe or diluted in 20 mL of Glucose 5%. If required, an additional dose of 150 mg can be given by intravenous injection. This is followed by an intravenous infusion of 900 mg over 24 hours. The first dose of amiodarone is given after 3 shocks.

    • This question is part of the following fields:

      • Resus
      9.3
      Seconds
  • Question 10 - A 25 year old male with severe thoracic trauma is brought into the...

    Incorrect

    • A 25 year old male with severe thoracic trauma is brought into the emergency department. A FAST scan is conducted and cardiac tamponade is identified. The attending physician requests you to carry out a pericardiocentesis. Which of the following accurately describes the anatomical landmark utilized for inserting the needle during this procedure?

      Your Answer:

      Correct Answer: Skin punctured 1-2 cm below and just to the left of the xiphisternum

      Explanation:

      During pericardiocentesis, a needle is inserted approximately 1-2 cm below and to the left of the xiphisternum. The procedure involves the following steps:
      1. Prepare the skin and administer local anesthesia, if time permits.
      2. Ensure ECG monitoring is in place.
      3. Puncture the skin using a long 16-18g catheter, 1-2 cm below and to the left of the xiphisternum.
      4. Advance the catheter towards the tip of the left scapula at a 45-degree angle to the skin.
      5. Aspirate fluid from the pericardium while monitoring the ECG for any signs of injury.
      6. Once blood from the pericardium is aspirated, leave the catheter in place with a 3-way tap until a formal thoracotomy can be performed.
      It is important to note that knowledge of pericardiocentesis is included in the CEM syllabus, although the RCEM may recommend direct thoracotomy as the preferred approach.

      Further Reading:

      Cardiac tamponade, also known as pericardial tamponade, occurs when fluid accumulates in the pericardial sac and compresses the heart, leading to compromised blood flow. Classic clinical signs of cardiac tamponade include distended neck veins, hypotension, muffled heart sounds, and pulseless electrical activity (PEA). Diagnosis is typically done through a FAST scan or an echocardiogram.

      Management of cardiac tamponade involves assessing for other injuries, administering IV fluids to reduce preload, performing pericardiocentesis (inserting a needle into the pericardial cavity to drain fluid), and potentially performing a thoracotomy. It is important to note that untreated expanding cardiac tamponade can progress to PEA cardiac arrest.

      Pericardiocentesis can be done using the subxiphoid approach or by inserting a needle between the 5th and 6th intercostal spaces at the left sternal border. Echo guidance is the gold standard for pericardiocentesis, but it may not be available in a resuscitation situation. Complications of pericardiocentesis include ST elevation or ventricular ectopics, myocardial perforation, bleeding, pneumothorax, arrhythmia, acute pulmonary edema, and acute ventricular dilatation.

      It is important to note that pericardiocentesis is typically used as a temporary measure until a thoracotomy can be performed. Recent articles published on the RCEM learning platform suggest that pericardiocentesis has a low success rate and may delay thoracotomy, so it is advised against unless there are no other options available.

    • This question is part of the following fields:

      • Resus
      0
      Seconds

SESSION STATS - PERFORMANCE PER SPECIALTY

Resus (8/9) 89%
Passmed