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  • Question 1 - A 32-year-old patient presents to the emergency department with a 6 cm leg...

    Correct

    • A 32-year-old patient presents to the emergency department with a 6 cm leg laceration. After assessing the wound, it is determined that suturing under anesthesia is necessary. You intend to supervise one of the medical students in closing the wound. Before beginning the procedure, you have a discussion about the risks associated with local anesthesia. Methemoglobinemia is primarily associated with which type of anesthetic agent?

      Your Answer: Prilocaine

      Explanation:

      Methaemoglobinaemia is a condition that can occur when prilocaine is used, particularly when administered at doses higher than 16 mg/kg.

      Further Reading:

      Local anaesthetics, such as lidocaine, bupivacaine, and prilocaine, are commonly used in the emergency department for topical or local infiltration to establish a field block. Lidocaine is often the first choice for field block prior to central line insertion. These anaesthetics work by blocking sodium channels, preventing the propagation of action potentials.

      However, local anaesthetics can enter the systemic circulation and cause toxic side effects if administered in high doses. Clinicians must be aware of the signs and symptoms of local anaesthetic systemic toxicity (LAST) and know how to respond. Early signs of LAST include numbness around the mouth or tongue, metallic taste, dizziness, visual and auditory disturbances, disorientation, and drowsiness. If not addressed, LAST can progress to more severe symptoms such as seizures, coma, respiratory depression, and cardiovascular dysfunction.

      The management of LAST is largely supportive. Immediate steps include stopping the administration of local anaesthetic, calling for help, providing 100% oxygen and securing the airway, establishing IV access, and controlling seizures with benzodiazepines or other medications. Cardiovascular status should be continuously assessed, and conventional therapies may be used to treat hypotension or arrhythmias. Intravenous lipid emulsion (intralipid) may also be considered as a treatment option.

      If the patient goes into cardiac arrest, CPR should be initiated following ALS arrest algorithms, but lidocaine should not be used as an anti-arrhythmic therapy. Prolonged resuscitation may be necessary, and intravenous lipid emulsion should be administered. After the acute episode, the patient should be transferred to a clinical area with appropriate equipment and staff for further monitoring and care.

      It is important to report cases of local anaesthetic toxicity to the appropriate authorities, such as the National Patient Safety Agency in the UK or the Irish Medicines Board in the Republic of Ireland. Additionally, regular clinical review should be conducted to exclude pancreatitis, as intravenous lipid emulsion can interfere with amylase or lipase assays.

    • This question is part of the following fields:

      • Basic Anaesthetics
      20.6
      Seconds
  • Question 2 - You are managing a pediatric patient in the emergency department who needs sedation...

    Correct

    • You are managing a pediatric patient in the emergency department who needs sedation for suturing. You are considering using ketamine. What is an absolute contraindication to using ketamine in this case?

      Your Answer: Aged less than 12 months

      Explanation:

      Ketamine should not be used in children under 12 months old due to the increased risk of laryngospasm and airway complications. The Royal College of Emergency Medicine advises against using ketamine in children under 1 year old in the emergency department, and it should only be administered by experienced clinicians in children aged 5 and under. Ketamine may cause a slight increase in blood pressure and heart rate, making it a suitable option for those with low blood pressure. However, it is contraindicated in individuals with malignant hypertension (blood pressure above 180 mmHg). Please refer to the notes below for additional contraindications.

      Further Reading:

      Procedural sedation is commonly used by emergency department (ED) doctors to minimize pain and discomfort during procedures that may be painful or distressing for patients. Effective procedural sedation requires the administration of analgesia, anxiolysis, sedation, and amnesia. This is typically achieved through the use of a combination of short-acting analgesics and sedatives.

      There are different levels of sedation, ranging from minimal sedation (anxiolysis) to general anesthesia. It is important for clinicians to understand the level of sedation being used and to be able to manage any unintended deeper levels of sedation that may occur. Deeper levels of sedation are similar to general anesthesia and require the same level of care and monitoring.

      Various drugs can be used for procedural sedation, including propofol, midazolam, ketamine, and fentanyl. Each of these drugs has its own mechanism of action and side effects. Propofol is commonly used for sedation, amnesia, and induction and maintenance of general anesthesia. Midazolam is a benzodiazepine that enhances the effect of GABA on the GABA A receptors. Ketamine is an NMDA receptor antagonist and is used for dissociative sedation. Fentanyl is a highly potent opioid used for analgesia and sedation.

      The doses of these drugs for procedural sedation in the ED vary depending on the drug and the route of administration. It is important for clinicians to be familiar with the appropriate doses and onset and peak effect times for each drug.

      Safe sedation requires certain requirements, including appropriate staffing levels, competencies of the sedating practitioner, location and facilities, and monitoring. The level of sedation being used determines the specific requirements for safe sedation.

      After the procedure, patients should be monitored until they meet the criteria for safe discharge. This includes returning to their baseline level of consciousness, having vital signs within normal limits, and not experiencing compromised respiratory status. Pain and discomfort should also be addressed before discharge.

    • This question is part of the following fields:

      • Basic Anaesthetics
      10.4
      Seconds
  • Question 3 - A 52 year old male is brought to the emergency department with severe...

    Correct

    • A 52 year old male is brought to the emergency department with severe head and chest injuries. As his Glasgow Coma Scale (GCS) continues to decline, it is determined that intubation is necessary. You begin preparing for rapid sequence induction (RSI). Before administering sodium thiopentone, the patient's blood pressure is measured and found to be 88/58 mmHg. What is the most suitable course of action?

      Your Answer: Use half normal dose

      Explanation:

      In patients with pre-existing hypovolaemia, the amount of sodium thiopentone administered should be reduced by half. This is because sodium thiopentone can cause venodilation and myocardial depression, which can result in significant hypovolaemia. Alternatively, an induction agent that does not cause hypotension, such as Etomidate, can be used instead. It is important to note that both propofol and thiopentone are known to cause hypotension.

      Further Reading:

      There are four commonly used induction agents in the UK: propofol, ketamine, thiopentone, and etomidate.

      Propofol is a 1% solution that produces significant venodilation and myocardial depression. It can also reduce cerebral perfusion pressure. The typical dose for propofol is 1.5-2.5 mg/kg. However, it can cause side effects such as hypotension, respiratory depression, and pain at the site of injection.

      Ketamine is another induction agent that produces a dissociative state. It does not display a dose-response continuum, meaning that the effects do not necessarily increase with higher doses. Ketamine can cause bronchodilation, which is useful in patients with asthma. The initial dose for ketamine is 0.5-2 mg/kg, with a typical IV dose of 1.5 mg/kg. Side effects of ketamine include tachycardia, hypertension, laryngospasm, unpleasant hallucinations, nausea and vomiting, hypersalivation, increased intracranial and intraocular pressure, nystagmus and diplopia, abnormal movements, and skin reactions.

      Thiopentone is an ultra-short acting barbiturate that acts on the GABA receptor complex. It decreases cerebral metabolic oxygen and reduces cerebral blood flow and intracranial pressure. The adult dose for thiopentone is 3-5 mg/kg, while the child dose is 5-8 mg/kg. However, these doses should be halved in patients with hypovolemia. Side effects of thiopentone include venodilation, myocardial depression, and hypotension. It is contraindicated in patients with acute porphyrias and myotonic dystrophy.

      Etomidate is the most haemodynamically stable induction agent and is useful in patients with hypovolemia, anaphylaxis, and asthma. It has similar cerebral effects to thiopentone. The dose for etomidate is 0.15-0.3 mg/kg. Side effects of etomidate include injection site pain, movement disorders, adrenal insufficiency, and apnoea. It is contraindicated in patients with sepsis due to adrenal suppression.

    • This question is part of the following fields:

      • Basic Anaesthetics
      41.2
      Seconds
  • Question 4 - A 68-year-old individual reports feeling unwell after having their dislocated shoulder reduced while...

    Correct

    • A 68-year-old individual reports feeling unwell after having their dislocated shoulder reduced while under sedation. You decide to prescribe ondansetron. What is the mechanism of action of ondansetron?

      Your Answer: 5-HT3 receptor antagonist

      Explanation:

      Ondansetron is a medication that works by blocking serotonin receptors in the body. It is commonly used as a first-line treatment for postoperative nausea and vomiting (PONV), which can occur after procedures done under sedation or anesthesia.

      Further Reading:

      postoperative nausea and vomiting (PONV) is a common occurrence following procedures performed under sedation or anesthesia. It can be highly distressing for patients. Several risk factors have been identified for PONV, including female gender, a history of PONV or motion sickness, non-smoking status, patient age, use of volatile anesthetics, longer duration of anesthesia, perioperative opioid use, use of nitrous oxide, and certain types of surgery such as abdominal and gynecological procedures.

      To manage PONV, antiemetics are commonly used. These medications work by targeting different receptors in the body. Cyclizine and promethazine are histamine H1-receptor antagonists, which block the action of histamine and help reduce nausea and vomiting. Ondansetron is a serotonin 5-HT3 receptor antagonist, which blocks the action of serotonin and is effective in preventing and treating PONV. Prochlorperazine is a dopamine D2 receptor antagonist, which blocks the action of dopamine and helps alleviate symptoms of nausea and vomiting. Metoclopramide is also a dopamine D2 receptor antagonist and a 5-HT3 receptor antagonist, providing dual action against PONV. It is also a 5-HT4 receptor agonist, which helps improve gastric emptying and reduces the risk of PONV.

      Assessment and management of PONV involves a comprehensive approach. Healthcare professionals need to assess the patient’s risk factors for PONV and take appropriate measures to prevent its occurrence. This may include selecting the appropriate anesthesia technique, using antiemetics prophylactically, and providing adequate pain control. In cases where PONV does occur, prompt treatment with antiemetics should be initiated to alleviate symptoms and provide relief to the patient. Close monitoring of the patient’s condition and response to treatment is essential to ensure effective management of PONV.

    • This question is part of the following fields:

      • Basic Anaesthetics
      15.3
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  • Question 5 - A 32-year-old man who has been in a car crash experiences symptoms of...

    Incorrect

    • A 32-year-old man who has been in a car crash experiences symptoms of sudden airway blockage. You conclude that he needs to be intubated using a rapid sequence induction. You intend to use thiopental sodium as your induction medication.
      What is the mechanism of action of thiopental sodium?

      Your Answer: Dopamine receptor agonism

      Correct Answer: Depressing postsynaptic sensitivity to neurotransmitters

      Explanation:

      Thiopental sodium is a barbiturate with a very short duration of action. It is primarily used to induce anesthesia. Barbiturates are believed to primarily affect synapses by reducing the sensitivity of postsynaptic receptors to neurotransmitters and by interfering with the release of neurotransmitters from presynaptic neurons.

      Thiopental sodium specifically binds to a unique site associated with a chloride ionophore at the GABAA receptor, which is responsible for the opening of chloride ion channels. This binding increases the length of time that the chloride ionophore remains open. As a result, the inhibitory effect of GABA on postsynaptic neurons in the thalamus is prolonged.

      In summary, thiopental sodium acts as a short-acting barbiturate that is commonly used to induce anesthesia. It affects synapses by reducing postsynaptic receptor sensitivity and interfering with neurotransmitter release. By binding to a specific site at the GABAA receptor, thiopental sodium prolongs the inhibitory effect of GABA in the thalamus.

    • This question is part of the following fields:

      • Basic Anaesthetics
      33.6
      Seconds
  • Question 6 - A 32 year old has undergone reduction of fracture-dislocation to the right shoulder...

    Correct

    • A 32 year old has undergone reduction of fracture-dislocation to the right shoulder under procedural sedation. Following the reduction, the patient reports feeling nauseated and subsequently vomits. What is the most significant risk factor for postoperative nausea and vomiting?

      Your Answer: Female gender

      Explanation:

      The most significant factor in predicting postoperative nausea and vomiting (PONV) is being female. Females are three times more likely than males to experience PONV. Additionally, not smoking increases the risk of PONV by about two times. Having a history of motion sickness, PONV, or both also approximately doubles the risk of PONV. Age is another factor, with older adults being less likely to suffer from PONV. In children, those below 3 years of age have a lower risk of PONV compared to those older than 3.

      Further Reading:

      postoperative nausea and vomiting (PONV) is a common occurrence following procedures performed under sedation or anesthesia. It can be highly distressing for patients. Several risk factors have been identified for PONV, including female gender, a history of PONV or motion sickness, non-smoking status, patient age, use of volatile anesthetics, longer duration of anesthesia, perioperative opioid use, use of nitrous oxide, and certain types of surgery such as abdominal and gynecological procedures.

      To manage PONV, antiemetics are commonly used. These medications work by targeting different receptors in the body. Cyclizine and promethazine are histamine H1-receptor antagonists, which block the action of histamine and help reduce nausea and vomiting. Ondansetron is a serotonin 5-HT3 receptor antagonist, which blocks the action of serotonin and is effective in preventing and treating PONV. Prochlorperazine is a dopamine D2 receptor antagonist, which blocks the action of dopamine and helps alleviate symptoms of nausea and vomiting. Metoclopramide is also a dopamine D2 receptor antagonist and a 5-HT3 receptor antagonist, providing dual action against PONV. It is also a 5-HT4 receptor agonist, which helps improve gastric emptying and reduces the risk of PONV.

      Assessment and management of PONV involves a comprehensive approach. Healthcare professionals need to assess the patient’s risk factors for PONV and take appropriate measures to prevent its occurrence. This may include selecting the appropriate anesthesia technique, using antiemetics prophylactically, and providing adequate pain control. In cases where PONV does occur, prompt treatment with antiemetics should be initiated to alleviate symptoms and provide relief to the patient. Close monitoring of the patient’s condition and response to treatment is essential to ensure effective management of PONV.

    • This question is part of the following fields:

      • Basic Anaesthetics
      12.3
      Seconds
  • Question 7 - You are a member of the team assisting with the intubation of a...

    Correct

    • You are a member of the team assisting with the intubation of a pediatric patient. The initial intubation attempt is unsuccessful. Your attending physician instructs you to apply pressure on the larynx during the second attempt. With the patient positioned in a semi-recumbent position, which direction should pressure be applied to aid in intubation?

      Your Answer: Backwards, upwards and rightwards

      Explanation:

      The BURP maneuver is a technique used to assist with intubation. It involves applying pressure in a specific direction on the larynx. The acronym BURP stands for backwards (B), upwards (U), rightwards (R), and pressure (P). To perform the maneuver correctly, the thyroid cartilage is moved backwards, 2 cm upwards, and 0.5cm – 2 cm to the right in relation to the anatomical position.

      Further Reading:

      A difficult airway refers to a situation where factors have been identified that make airway management more challenging. These factors can include body habitus, head and neck anatomy, mouth characteristics, jaw abnormalities, and neck mobility. The LEMON criteria can be used to predict difficult intubation by assessing these factors. The criteria include looking externally at these factors, evaluating the 3-3-2 rule which assesses the space in the mouth and neck, assessing the Mallampati score which measures the distance between the tongue base and roof of the mouth, and considering any upper airway obstructions or reduced neck mobility.

      Direct laryngoscopy is a method used to visualize the larynx and assess the size of the tracheal opening. The Cormack-Lehane grading system can be used to classify the tracheal opening, with higher grades indicating more difficult access. In cases of a failed airway, where intubation attempts are unsuccessful and oxygenation cannot be maintained, the immediate priority is to oxygenate the patient and prevent hypoxic brain injury. This can be done through various measures such as using a bag-valve-mask ventilation, high flow oxygen, suctioning, and optimizing head positioning.

      If oxygenation cannot be maintained, it is important to call for help from senior medical professionals and obtain a difficult airway trolley if not already available. If basic airway management techniques do not improve oxygenation, further intubation attempts may be considered using different equipment or techniques. If oxygen saturations remain below 90%, a surgical airway such as a cricothyroidotomy may be necessary.

      Post-intubation hypoxia can occur for various reasons, and the mnemonic DOPES can be used to identify and address potential problems. DOPES stands for displacement of the endotracheal tube, obstruction, pneumothorax, equipment failure, and stacked breaths. If intubation attempts fail, a maximum of three attempts should be made before moving to an alternative plan, such as using a laryngeal mask airway or considering a cricothyroidotomy.

    • This question is part of the following fields:

      • Basic Anaesthetics
      12.6
      Seconds
  • Question 8 - A 32-year-old man that has been involved in a car crash develops symptoms...

    Correct

    • A 32-year-old man that has been involved in a car crash develops symptoms of acute airway blockage. You determine that he needs intubation through a rapid sequence induction. You intend to use etomidate as your induction medication.
      Etomidate functions by acting on what type of receptor?

      Your Answer: Gamma-aminobutyric acid (GABA)

      Explanation:

      Etomidate is a derivative of imidazole that is commonly used to induce anesthesia due to its short-acting nature. Its main mechanism of action is believed to involve the modulation of fast inhibitory synaptic transmission within the central nervous system by acting on GABA type A receptors.

    • This question is part of the following fields:

      • Basic Anaesthetics
      8
      Seconds
  • Question 9 - You are part of the resus team treating a 42-year-old female patient with...

    Correct

    • You are part of the resus team treating a 42-year-old female patient with a severe head injury after falling from a ladder. As the patient's GCS continues to decline, your consultant instructs you to prepare for rapid sequence induction. You gather the necessary supplies and prepare etomidate as the induction agent. Upon reviewing the patient's details, you observe that she weighs 65kg. What would be the appropriate dose of etomidate for this patient during RSI?

      Your Answer: 21mg

      Explanation:

      The recommended dose of etomidate for rapid sequence intubation (RSI) is typically 0.3mg per kilogram of body weight. For example, a patient weighing 70 kilograms would receive a dose of 21mg (70 x 0.3 = 21mg). This dosage falls within the accepted range of 0.15-0.3 mg/kg as suggested by the British National Formulary (BNF). Therefore, the only option within this range is the fourth option.

      Further Reading:

      There are four commonly used induction agents in the UK: propofol, ketamine, thiopentone, and etomidate.

      Propofol is a 1% solution that produces significant venodilation and myocardial depression. It can also reduce cerebral perfusion pressure. The typical dose for propofol is 1.5-2.5 mg/kg. However, it can cause side effects such as hypotension, respiratory depression, and pain at the site of injection.

      Ketamine is another induction agent that produces a dissociative state. It does not display a dose-response continuum, meaning that the effects do not necessarily increase with higher doses. Ketamine can cause bronchodilation, which is useful in patients with asthma. The initial dose for ketamine is 0.5-2 mg/kg, with a typical IV dose of 1.5 mg/kg. Side effects of ketamine include tachycardia, hypertension, laryngospasm, unpleasant hallucinations, nausea and vomiting, hypersalivation, increased intracranial and intraocular pressure, nystagmus and diplopia, abnormal movements, and skin reactions.

      Thiopentone is an ultra-short acting barbiturate that acts on the GABA receptor complex. It decreases cerebral metabolic oxygen and reduces cerebral blood flow and intracranial pressure. The adult dose for thiopentone is 3-5 mg/kg, while the child dose is 5-8 mg/kg. However, these doses should be halved in patients with hypovolemia. Side effects of thiopentone include venodilation, myocardial depression, and hypotension. It is contraindicated in patients with acute porphyrias and myotonic dystrophy.

      Etomidate is the most haemodynamically stable induction agent and is useful in patients with hypovolemia, anaphylaxis, and asthma. It has similar cerebral effects to thiopentone. The dose for etomidate is 0.15-0.3 mg/kg. Side effects of etomidate include injection site pain, movement disorders, adrenal insufficiency, and apnoea. It is contraindicated in patients with sepsis due to adrenal suppression.

    • This question is part of the following fields:

      • Basic Anaesthetics
      33.6
      Seconds
  • Question 10 - A 10 year old girl is brought to the emergency department by her...

    Correct

    • A 10 year old girl is brought to the emergency department by her parents after a fall while playing outside. The patient has a significant wound that needs to be cleaned and closed. You decide to examine and clean the wound under ketamine sedation as the patient is very upset. What type of sedation is typical of Ketamine?

      Your Answer: Dissociative sedation

      Explanation:

      Ketamine induces a distinct type of sedation known as dissociative sedation. This sedation state is unlike any other and is characterized by a trance-like, cataleptic condition. It provides deep pain relief and memory loss while still maintaining important protective reflexes for the airway, spontaneous breathing, and overall stability of the heart and lungs. Dissociative sedation with ketamine does not fit into the conventional categories of sedation.

      Further Reading:

      Procedural sedation is commonly used by emergency department (ED) doctors to minimize pain and discomfort during procedures that may be painful or distressing for patients. Effective procedural sedation requires the administration of analgesia, anxiolysis, sedation, and amnesia. This is typically achieved through the use of a combination of short-acting analgesics and sedatives.

      There are different levels of sedation, ranging from minimal sedation (anxiolysis) to general anesthesia. It is important for clinicians to understand the level of sedation being used and to be able to manage any unintended deeper levels of sedation that may occur. Deeper levels of sedation are similar to general anesthesia and require the same level of care and monitoring.

      Various drugs can be used for procedural sedation, including propofol, midazolam, ketamine, and fentanyl. Each of these drugs has its own mechanism of action and side effects. Propofol is commonly used for sedation, amnesia, and induction and maintenance of general anesthesia. Midazolam is a benzodiazepine that enhances the effect of GABA on the GABA A receptors. Ketamine is an NMDA receptor antagonist and is used for dissociative sedation. Fentanyl is a highly potent opioid used for analgesia and sedation.

      The doses of these drugs for procedural sedation in the ED vary depending on the drug and the route of administration. It is important for clinicians to be familiar with the appropriate doses and onset and peak effect times for each drug.

      Safe sedation requires certain requirements, including appropriate staffing levels, competencies of the sedating practitioner, location and facilities, and monitoring. The level of sedation being used determines the specific requirements for safe sedation.

      After the procedure, patients should be monitored until they meet the criteria for safe discharge. This includes returning to their baseline level of consciousness, having vital signs within normal limits, and not experiencing compromised respiratory status. Pain and discomfort should also be addressed before discharge.

    • This question is part of the following fields:

      • Basic Anaesthetics
      4.9
      Seconds
  • Question 11 - A 25-year-old individual who was attacked with a baseball bat returns from the...

    Correct

    • A 25-year-old individual who was attacked with a baseball bat returns from the radiology department after undergoing a CT head scan. The CT images show the presence of intracranial bleeding, and after consulting with the on-call neurosurgical registrar, it is decided that the patient will be transferred to the nearby neurosurgical unit after intubation. How can you determine the amount of oxygen that will be required during the transfer?

      Your Answer: 2 x Minute Volume (MV) x FiO2 x transfer time in minutes

      Explanation:

      To determine the amount of oxygen needed for a transfer, you can use the formula: 2 x Minute Volume (MV) x FiO2 x transfer time in minutes. This formula calculates the volume of oxygen that should be taken on the transfer. The Minute Volume (MV) represents the expected oxygen consumption. It is recommended to double the expected consumption to account for any unforeseen delays or increased oxygen demand during the transfer. Therefore, the second equation is used to calculate the volume of oxygen that will be taken on the transfer.

      Further Reading:

      Transfer of critically ill patients in the emergency department is a common occurrence and can involve intra-hospital transfers or transfers to another hospital. However, there are several risks associated with these transfers that doctors need to be aware of and manage effectively.

      Technical risks include equipment failure or inadequate equipment, unreliable power or oxygen supply, incompatible equipment, restricted positioning, and restricted monitoring equipment. These technical issues can hinder the ability to detect and treat problems with ventilation, blood pressure control, and arrhythmias during the transfer.

      Non-technical risks involve limited personal and medical team during the transfer, isolation and lack of resources in the receiving hospital, and problems with communication and liaison between the origin and destination sites.

      Organizational risks can be mitigated by having a dedicated consultant lead for transfers who is responsible for producing guidelines, training staff, standardizing protocols, equipment, and documentation, as well as capturing data and conducting audits.

      To optimize the patient’s clinical condition before transfer, several key steps should be taken. These include ensuring a low threshold for intubation and anticipating airway and ventilation problems, securing the endotracheal tube (ETT) and verifying its position, calculating oxygen requirements and ensuring an adequate supply, monitoring for circulatory issues and inserting at least two IV accesses, providing ongoing analgesia and sedation, controlling seizures, and addressing any fractures or temperature changes.

      It is also important to have the necessary equipment and personnel for the transfer. Standard monitoring equipment should include ECG, oxygen saturation, blood pressure, temperature, and capnographic monitoring for ventilated patients. Additional monitoring may be required depending on the level of care needed by the patient.

      In terms of oxygen supply, it is standard practice to calculate the expected oxygen consumption during transfer and multiply it by two to ensure an additional supply in case of delays. The suggested oxygen supply for transfer can be calculated using the minute volume, fraction of inspired oxygen, and estimated transfer time.

      Overall, managing the risks associated with patient transfers requires careful planning, communication, and coordination to ensure the safety and well-being of critically ill patients.

    • This question is part of the following fields:

      • Basic Anaesthetics
      39.8
      Seconds
  • Question 12 - A 32-year-old man that has been involved in a car crash develops symptoms...

    Correct

    • A 32-year-old man that has been involved in a car crash develops symptoms of acute airway blockage. You conclude that he needs to be intubated using a rapid sequence induction. You intend to use thiopental sodium as your induction medication.
      What type of receptor does thiopental sodium act on to produce its effects?

      Your Answer: Gamma-aminobutyric acid (GABA)

      Explanation:

      Thiopental sodium is a barbiturate with a very short duration of action. It is primarily used to induce anesthesia. Barbiturates are believed to primarily affect synapses by reducing the sensitivity of postsynaptic receptors to neurotransmitters and by interfering with the release of neurotransmitters from presynaptic neurons.

      Thiopental sodium specifically binds to a unique site associated with a chloride ionophore at the GABAA receptor, which is responsible for the opening of chloride ion channels. This binding increases the length of time that the chloride ionophore remains open. As a result, the inhibitory effect of GABA on postsynaptic neurons in the thalamus is prolonged.

      In summary, thiopental sodium acts as a short-acting barbiturate that is commonly used to induce anesthesia. It affects synapses by reducing postsynaptic receptor sensitivity and interfering with neurotransmitter release. By binding to a specific site at the GABAA receptor, thiopental sodium prolongs the inhibitory effect of GABA in the thalamus.

    • This question is part of the following fields:

      • Basic Anaesthetics
      13.9
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  • Question 13 - A 25 year old college student is brought into the ER after being...

    Correct

    • A 25 year old college student is brought into the ER after being discovered in a collapsed state with decreased consciousness in the early morning hours. You have concerns about the patient's airway and opt to insert an oropharyngeal airway. How would you determine the appropriate size for an oropharyngeal airway?

      Your Answer: Distance between the patient's incisors and the angle of their mandible

      Explanation:

      The size of an oropharyngeal airway (OPA or Guedel) can be determined by measuring the distance between the patient’s incisors and the angle of their mandible. To ensure proper fit, the OPA should be approximately the same length as this measurement. Please refer to the image in the notes for visual guidance.

      Further Reading:

      Techniques to keep the airway open:

      1. Suction: Used to remove obstructing material such as blood, vomit, secretions, and food debris from the oral cavity.

      2. Chin lift manoeuvres: Involves lifting the head off the floor and lifting the chin to extend the head in relation to the neck. Improves alignment of the pharyngeal, laryngeal, and oral axes.

      3. Jaw thrust: Used in trauma patients with cervical spine injury concerns. Fingers are placed under the mandible and gently pushed upward.

      Airway adjuncts:

      1. Oropharyngeal airway (OPA): Prevents the tongue from occluding the airway. Sized according to the patient by measuring from the incisor teeth to the angle of the mandible. Inserted with the tip facing backwards and rotated 180 degrees once it touches the back of the palate or oropharynx.

      2. Nasopharyngeal airway (NPA): Useful when it is difficult to open the mouth or in semi-conscious patients. Sized by length (distance between nostril and tragus of the ear) and diameter (roughly that of the patient’s little finger). Contraindicated in basal skull and midface fractures.

      Laryngeal mask airway (LMA):

      – Supraglottic airway device used as a first line or rescue airway.
      – Easy to insert, sized according to patient’s bodyweight.
      – Advantages: Easy insertion, effective ventilation, some protection from aspiration.
      – Disadvantages: Risk of hypoventilation, greater gastric inflation than endotracheal tube (ETT), risk of aspiration and laryngospasm.

      Note: Proper training and assessment of the patient’s condition are essential for airway management.

    • This question is part of the following fields:

      • Basic Anaesthetics
      19
      Seconds
  • Question 14 - You are managing a 62-year-old woman who has suffered a displaced fracture of...

    Correct

    • You are managing a 62-year-old woman who has suffered a displaced fracture of the distal radius. Your plan is to perform a reduction of the fracture using intravenous regional anesthesia (Bier's block). You opt to administer prilocaine 0.5% for the regional block. What would be the appropriate dosage for this patient?

      Your Answer: 3 mg/kg

      Explanation:

      The suggested amount of Prilocaine for Bier’s block is 3mg per kilogram of body weight. It is important to note that there is no available formulation of prilocaine combined with adrenaline, unlike other local anesthetics.

      Further Reading:

      Bier’s block is a regional intravenous anesthesia technique commonly used for minor surgical procedures of the forearm or for reducing distal radius fractures in the emergency department (ED). It is recommended by NICE as the preferred anesthesia block for adults requiring manipulation of distal forearm fractures in the ED.

      Before performing the procedure, a pre-procedure checklist should be completed, including obtaining consent, recording the patient’s weight, ensuring the resuscitative equipment is available, and monitoring the patient’s vital signs throughout the procedure. The air cylinder should be checked if not using an electronic machine, and the cuff should be checked for leaks.

      During the procedure, a double cuff tourniquet is placed on the upper arm, and the arm is elevated to exsanguinate the limb. The proximal cuff is inflated to a pressure 100 mmHg above the systolic blood pressure, up to a maximum of 300 mmHg. The time of inflation and pressure should be recorded, and the absence of the radial pulse should be confirmed. 0.5% plain prilocaine is then injected slowly, and the time of injection is recorded. The patient should be warned about the potential cold/hot sensation and mottled appearance of the arm. After injection, the cannula is removed and pressure is applied to the venipuncture site to prevent bleeding. After approximately 10 minutes, the patient should have anesthesia and should not feel pain during manipulation. If anesthesia is successful, the manipulation can be performed, and a plaster can be applied by a second staff member. A check x-ray should be obtained with the arm lowered onto a pillow. The tourniquet should be monitored at all times, and the cuff should be inflated for a minimum of 20 minutes and a maximum of 45 minutes. If rotation of the cuff is required, it should be done after the manipulation and plaster application. After the post-reduction x-ray is satisfactory, the cuff can be deflated while observing the patient and monitors. Limb circulation should be checked prior to discharge, and appropriate follow-up and analgesia should be arranged.

      There are several contraindications to performing Bier’s block, including allergy to local anesthetic, hypertension over 200 mm Hg, infection in the limb, lymphedema, methemoglobinemia, morbid obesity, peripheral vascular disease, procedures needed in both arms, Raynaud’s phenomenon, scleroderma, severe hypertension and sickle cell disease.

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      • Basic Anaesthetics
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  • Question 15 - You are part of the resus team treating a 42-year-old female patient. Due...

    Correct

    • You are part of the resus team treating a 42-year-old female patient. Due to deteriorating GCS, your consultant advises you to prepare for rapid sequence induction. You contemplate which induction agent is most appropriate for this patient. What side effect of etomidate prevents its use in septic patients?

      Your Answer: Adrenal suppression

      Explanation:

      Etomidate is not recommended for use in septic patients because it can suppress adrenal cortisol production, leading to increased morbidity and mortality in sepsis cases. However, it is a suitable choice for haemodynamically unstable patients who are not experiencing sepsis, as it does not cause significant hypotension like other induction agents. Additionally, etomidate can be beneficial for patients with head injuries and elevated intracranial pressure, as it reduces cerebral blood flow and intracranial pressure.

      Further Reading:

      There are four commonly used induction agents in the UK: propofol, ketamine, thiopentone, and etomidate.

      Propofol is a 1% solution that produces significant venodilation and myocardial depression. It can also reduce cerebral perfusion pressure. The typical dose for propofol is 1.5-2.5 mg/kg. However, it can cause side effects such as hypotension, respiratory depression, and pain at the site of injection.

      Ketamine is another induction agent that produces a dissociative state. It does not display a dose-response continuum, meaning that the effects do not necessarily increase with higher doses. Ketamine can cause bronchodilation, which is useful in patients with asthma. The initial dose for ketamine is 0.5-2 mg/kg, with a typical IV dose of 1.5 mg/kg. Side effects of ketamine include tachycardia, hypertension, laryngospasm, unpleasant hallucinations, nausea and vomiting, hypersalivation, increased intracranial and intraocular pressure, nystagmus and diplopia, abnormal movements, and skin reactions.

      Thiopentone is an ultra-short acting barbiturate that acts on the GABA receptor complex. It decreases cerebral metabolic oxygen and reduces cerebral blood flow and intracranial pressure. The adult dose for thiopentone is 3-5 mg/kg, while the child dose is 5-8 mg/kg. However, these doses should be halved in patients with hypovolemia. Side effects of thiopentone include venodilation, myocardial depression, and hypotension. It is contraindicated in patients with acute porphyrias and myotonic dystrophy.

      Etomidate is the most haemodynamically stable induction agent and is useful in patients with hypovolemia, anaphylaxis, and asthma. It has similar cerebral effects to thiopentone. The dose for etomidate is 0.15-0.3 mg/kg. Side effects of etomidate include injection site pain, movement disorders, adrenal insufficiency, and apnoea. It is contraindicated in patients with sepsis due to adrenal suppression.

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      • Basic Anaesthetics
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  • Question 16 - You are part of the team working on a child with severe burns....

    Correct

    • You are part of the team working on a child with severe burns. The child has a suspected inhalation injury and needs to be intubated before being transferred to the local burns unit. During direct laryngoscopy, which classification system is used to evaluate the glottic opening?

      Your Answer: Cormack and Lehane classification

      Explanation:

      The tracheal opening can be classified using the Cormack-Lehane grading system. This system categorizes the views obtained through direct laryngoscopy based on the structures that are visible. More information about this classification system can be found in the notes provided below.

      Further Reading:

      A difficult airway refers to a situation where factors have been identified that make airway management more challenging. These factors can include body habitus, head and neck anatomy, mouth characteristics, jaw abnormalities, and neck mobility. The LEMON criteria can be used to predict difficult intubation by assessing these factors. The criteria include looking externally at these factors, evaluating the 3-3-2 rule which assesses the space in the mouth and neck, assessing the Mallampati score which measures the distance between the tongue base and roof of the mouth, and considering any upper airway obstructions or reduced neck mobility.

      Direct laryngoscopy is a method used to visualize the larynx and assess the size of the tracheal opening. The Cormack-Lehane grading system can be used to classify the tracheal opening, with higher grades indicating more difficult access. In cases of a failed airway, where intubation attempts are unsuccessful and oxygenation cannot be maintained, the immediate priority is to oxygenate the patient and prevent hypoxic brain injury. This can be done through various measures such as using a bag-valve-mask ventilation, high flow oxygen, suctioning, and optimizing head positioning.

      If oxygenation cannot be maintained, it is important to call for help from senior medical professionals and obtain a difficult airway trolley if not already available. If basic airway management techniques do not improve oxygenation, further intubation attempts may be considered using different equipment or techniques. If oxygen saturations remain below 90%, a surgical airway such as a cricothyroidotomy may be necessary.

      Post-intubation hypoxia can occur for various reasons, and the mnemonic DOPES can be used to identify and address potential problems. DOPES stands for displacement of the endotracheal tube, obstruction, pneumothorax, equipment failure, and stacked breaths. If intubation attempts fail, a maximum of three attempts should be made before moving to an alternative plan, such as using a laryngeal mask airway or considering a cricothyroidotomy.

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      • Basic Anaesthetics
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  • Question 17 - A 28 year old female presents at the emergency department with a circular...

    Correct

    • A 28 year old female presents at the emergency department with a circular saw laceration. You opt to examine the wound using local anesthesia. What is the maximum dosage of Prilocaine that can be administered?

      Your Answer: 6 mg/Kg

      Explanation:

      The highest amount of Prilocaine that can be administered without adrenaline is 6 mg per kilogram of body weight. However, if Prilocaine is used in combination with adrenaline, the maximum dose increases to 8mg per kilogram.

      Further Reading:

      Local anaesthetics, such as lidocaine, bupivacaine, and prilocaine, are commonly used in the emergency department for topical or local infiltration to establish a field block. Lidocaine is often the first choice for field block prior to central line insertion. These anaesthetics work by blocking sodium channels, preventing the propagation of action potentials.

      However, local anaesthetics can enter the systemic circulation and cause toxic side effects if administered in high doses. Clinicians must be aware of the signs and symptoms of local anaesthetic systemic toxicity (LAST) and know how to respond. Early signs of LAST include numbness around the mouth or tongue, metallic taste, dizziness, visual and auditory disturbances, disorientation, and drowsiness. If not addressed, LAST can progress to more severe symptoms such as seizures, coma, respiratory depression, and cardiovascular dysfunction.

      The management of LAST is largely supportive. Immediate steps include stopping the administration of local anaesthetic, calling for help, providing 100% oxygen and securing the airway, establishing IV access, and controlling seizures with benzodiazepines or other medications. Cardiovascular status should be continuously assessed, and conventional therapies may be used to treat hypotension or arrhythmias. Intravenous lipid emulsion (intralipid) may also be considered as a treatment option.

      If the patient goes into cardiac arrest, CPR should be initiated following ALS arrest algorithms, but lidocaine should not be used as an anti-arrhythmic therapy. Prolonged resuscitation may be necessary, and intravenous lipid emulsion should be administered. After the acute episode, the patient should be transferred to a clinical area with appropriate equipment and staff for further monitoring and care.

      It is important to report cases of local anaesthetic toxicity to the appropriate authorities, such as the National Patient Safety Agency in the UK or the Irish Medicines Board in the Republic of Ireland. Additionally, regular clinical review should be conducted to exclude pancreatitis, as intravenous lipid emulsion can interfere with amylase or lipase assays.

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      • Basic Anaesthetics
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  • Question 18 - A 45 year old male patient is brought into the emergency department with...

    Correct

    • A 45 year old male patient is brought into the emergency department with a suspected severe pulmonary embolism. It is decided to intubate him pending transfer to the intensive care unit. Your consultant requests you prepare the patient for rapid sequence intubation. You start pre-oxygenating the patient. What is the recommended minimum duration for sufficient pre-oxygenation?

      Your Answer: 3 minutes

      Explanation:

      Inspired oxygen primarily works by removing nitrogen from the lungs, which would otherwise take up a significant portion of the lung capacity. This nitrogen is replaced with oxygen, leading to improved oxygenation of the tissues and an increased oxygen reserve. As a result, the patient can safely hold their breath for a longer period of time. It is recommended to preoxygenate the patient for at least 3 minutes.

      Further Reading:

      Rapid sequence induction (RSI) is a method used to place an endotracheal tube (ETT) in the trachea while minimizing the risk of aspiration. It involves inducing loss of consciousness while applying cricoid pressure, followed by intubation without face mask ventilation. The steps of RSI can be remembered using the 7 P’s: preparation, pre-oxygenation, pre-treatment, paralysis and induction, protection and positioning, placement with proof, and post-intubation management.

      Preparation involves preparing the patient, equipment, team, and anticipating any difficulties that may arise during the procedure. Pre-oxygenation is important to ensure the patient has an adequate oxygen reserve and prolongs the time before desaturation. This is typically done by breathing 100% oxygen for 3 minutes. Pre-treatment involves administering drugs to counter expected side effects of the procedure and anesthesia agents used.

      Paralysis and induction involve administering a rapid-acting induction agent followed by a neuromuscular blocking agent. Commonly used induction agents include propofol, ketamine, thiopentone, and etomidate. The neuromuscular blocking agents can be depolarizing (such as suxamethonium) or non-depolarizing (such as rocuronium). Depolarizing agents bind to acetylcholine receptors and generate an action potential, while non-depolarizing agents act as competitive antagonists.

      Protection and positioning involve applying cricoid pressure to prevent regurgitation of gastric contents and positioning the patient’s neck appropriately. Tube placement is confirmed by visualizing the tube passing between the vocal cords, auscultation of the chest and stomach, end-tidal CO2 measurement, and visualizing misting of the tube. Post-intubation management includes standard care such as monitoring ECG, SpO2, NIBP, capnography, and maintaining sedation and neuromuscular blockade.

      Overall, RSI is a technique used to quickly and safely secure the airway in patients who may be at risk of aspiration. It involves a series of steps to ensure proper preparation, oxygenation, drug administration, and tube placement. Monitoring and post-intubation care are also important aspects of RSI.

    • This question is part of the following fields:

      • Basic Anaesthetics
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  • Question 19 - A 65 year old female patient has been brought into the department after...

    Correct

    • A 65 year old female patient has been brought into the department after being hit by a car in a vehicle-pedestrian accident. The patient needs CT imaging to evaluate the complete scope of her injuries. What are the minimum monitoring requirements for transferring a critically ill patient?

      Your Answer: ECG, oxygen saturations, blood pressure and temperature monitoring

      Explanation:

      It is crucial to continuously monitor the oxygen saturation, blood pressure, ECG, and temperature of critically ill patients during transfers. If the patient is intubated, monitoring of end-tidal CO2 is also necessary. The minimum standard monitoring requirements for any critically ill patient during transfers include ECG, oxygen saturation, blood pressure, and temperature. Additionally, if the patient is intubated, monitoring of end-tidal CO2 is mandatory. It is important to note that the guidance from ICS/FICM suggests that monitoring protocols for intra-hospital transfers should be similar to those for interhospital transfers.

      Further Reading:

      Transfer of critically ill patients in the emergency department is a common occurrence and can involve intra-hospital transfers or transfers to another hospital. However, there are several risks associated with these transfers that doctors need to be aware of and manage effectively.

      Technical risks include equipment failure or inadequate equipment, unreliable power or oxygen supply, incompatible equipment, restricted positioning, and restricted monitoring equipment. These technical issues can hinder the ability to detect and treat problems with ventilation, blood pressure control, and arrhythmias during the transfer.

      Non-technical risks involve limited personal and medical team during the transfer, isolation and lack of resources in the receiving hospital, and problems with communication and liaison between the origin and destination sites.

      Organizational risks can be mitigated by having a dedicated consultant lead for transfers who is responsible for producing guidelines, training staff, standardizing protocols, equipment, and documentation, as well as capturing data and conducting audits.

      To optimize the patient’s clinical condition before transfer, several key steps should be taken. These include ensuring a low threshold for intubation and anticipating airway and ventilation problems, securing the endotracheal tube (ETT) and verifying its position, calculating oxygen requirements and ensuring an adequate supply, monitoring for circulatory issues and inserting at least two IV accesses, providing ongoing analgesia and sedation, controlling seizures, and addressing any fractures or temperature changes.

      It is also important to have the necessary equipment and personnel for the transfer. Standard monitoring equipment should include ECG, oxygen saturation, blood pressure, temperature, and capnographic monitoring for ventilated patients. Additional monitoring may be required depending on the level of care needed by the patient.

      In terms of oxygen supply, it is standard practice to calculate the expected oxygen consumption during transfer and multiply it by two to ensure an additional supply in case of delays. The suggested oxygen supply for transfer can be calculated using the minute volume, fraction of inspired oxygen, and estimated transfer time.

      Overall, managing the risks associated with patient transfers requires careful planning, communication, and coordination to ensure the safety and well-being of critically ill patients.

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      • Basic Anaesthetics
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  • Question 20 - You are summoned to the resuscitation bay to provide assistance with a patient...

    Correct

    • You are summoned to the resuscitation bay to provide assistance with a patient who has experienced cardiac arrest. The team is getting ready to administer amiodarone. What is the mechanism of action of amiodarone in the context of cardiac arrest?

      Your Answer: Blockade of potassium channels

      Explanation:

      Amiodarone functions by inhibiting voltage-gated potassium channels, leading to an extended repolarization period and decreased excitability of the heart muscle.

      Further Reading:

      In the management of respiratory and cardiac arrest, several drugs are commonly used to help restore normal function and improve outcomes. Adrenaline is a non-selective agonist of adrenergic receptors and is administered intravenously at a dose of 1 mg every 3-5 minutes. It works by causing vasoconstriction, increasing systemic vascular resistance (SVR), and improving cardiac output by increasing the force of heart contraction. Adrenaline also has bronchodilatory effects.

      Amiodarone is another drug used in cardiac arrest situations. It blocks voltage-gated potassium channels, which prolongs repolarization and reduces myocardial excitability. The initial dose of amiodarone is 300 mg intravenously after 3 shocks, followed by a dose of 150 mg after 5 shocks.

      Lidocaine is an alternative to amiodarone in cardiac arrest situations. It works by blocking sodium channels and decreasing heart rate. The recommended dose is 1 mg/kg by slow intravenous injection, with a repeat half of the initial dose after 5 minutes. The maximum total dose of lidocaine is 3 mg/kg.

      Magnesium sulfate is used to reverse myocardial hyperexcitability associated with hypomagnesemia. It is administered intravenously at a dose of 2 g over 10-15 minutes. An additional dose may be given if necessary, but the maximum total dose should not exceed 3 g.

      Atropine is an antagonist of muscarinic acetylcholine receptors and is used to counteract the slowing of heart rate caused by the parasympathetic nervous system. It is administered intravenously at a dose of 500 mcg every 3-5 minutes, with a maximum dose of 3 mg.

      Naloxone is a competitive antagonist for opioid receptors and is used in cases of respiratory arrest caused by opioid overdose. It has a short duration of action, so careful monitoring is necessary. The initial dose of naloxone is 400 micrograms, followed by 800 mcg after 1 minute. The dose can be gradually escalated up to 2 mg per dose if there is no response to the preceding dose.

      It is important for healthcare professionals to have knowledge of the pharmacology and dosing schedules of these drugs in order to effectively manage respiratory and cardiac arrest situations.

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      • Basic Anaesthetics
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SESSION STATS - PERFORMANCE PER SPECIALTY

Basic Anaesthetics (19/20) 95%
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