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  • Question 1 - A 50-year-old man with a history of rate-controlled atrial fibrillation (AF) presents with...

    Correct

    • A 50-year-old man with a history of rate-controlled atrial fibrillation (AF) presents with chest pain, palpitations, and dizziness. The patient has a past medical history of a transient ischemic episode and is taking warfarin to prevent further ischemic episodes. He also has a history of gout, low back pain, depression, and polymyalgia rheumatica.

      Upon immediate ECG, the patient is found to have an irregularly irregular rhythm consistent with fast AF. You decide to perform electrical cardioversion and prescribe a course of amiodarone to prevent recurrence.

      What drug interaction should you be cautious of in this patient?

      Your Answer: Warfarin and amiodarone

      Explanation:

      The metabolism of warfarin is reduced by amiodarone, which can increase the risk of bleeding. However, there are no known interactions between amiodarone and naproxen, paracetamol, codeine, or allopurinol. It should be noted that the patient in question is not diabetic and therefore should not be taking metformin.

      Amiodarone is a medication used to treat various types of abnormal heart rhythms. It works by blocking potassium channels, which prolongs the action potential and helps to regulate the heartbeat. However, it also has other effects, such as blocking sodium channels. Amiodarone has a very long half-life, which means that loading doses are often necessary. It should ideally be given into central veins to avoid thrombophlebitis. Amiodarone can cause proarrhythmic effects due to lengthening of the QT interval and can interact with other drugs commonly used at the same time. Long-term use of amiodarone can lead to various adverse effects, including thyroid dysfunction, corneal deposits, pulmonary fibrosis/pneumonitis, liver fibrosis/hepatitis, peripheral neuropathy, myopathy, photosensitivity, a ‘slate-grey’ appearance, thrombophlebitis, injection site reactions, and bradycardia. Patients taking amiodarone should be monitored regularly with tests such as TFT, LFT, U&E, and CXR.

    • This question is part of the following fields:

      • Cardiovascular System
      194.3
      Seconds
  • Question 2 - A 75-year-old man is experiencing symptoms of mesenteric ischemia. During his diagnostic evaluation,...

    Incorrect

    • A 75-year-old man is experiencing symptoms of mesenteric ischemia. During his diagnostic evaluation, a radiologist is attempting to cannulate the coeliac axis from the aorta. Typically, at which vertebral level does this artery originate?

      Your Answer: T8

      Correct Answer: T12

      Explanation:

      The coeliac trunk is a major artery that arises from the aorta and gives off three branches on the left-hand side: the left gastric, hepatic, and splenic arteries.

      The Coeliac Axis and its Branches

      The coeliac axis is a major artery that supplies blood to the upper abdominal organs. It has three main branches: the left gastric, hepatic, and splenic arteries. The hepatic artery further branches into the right gastric, gastroduodenal, right gastroepiploic, superior pancreaticoduodenal, and cystic arteries. Meanwhile, the splenic artery gives off the pancreatic, short gastric, and left gastroepiploic arteries. Occasionally, the coeliac axis also gives off one of the inferior phrenic arteries.

      The coeliac axis is located anteriorly to the lesser omentum and is related to the right and left coeliac ganglia, as well as the caudate process of the liver and the gastric cardia. Inferiorly, it is in close proximity to the upper border of the pancreas and the renal vein.

      Understanding the anatomy and branches of the coeliac axis is important in diagnosing and treating conditions that affect the upper abdominal organs, such as pancreatic cancer or gastric ulcers.

    • This question is part of the following fields:

      • Cardiovascular System
      34.8
      Seconds
  • Question 3 - A 65-year-old man visits the clinic for his regular blood work. The GP...

    Incorrect

    • A 65-year-old man visits the clinic for his regular blood work. The GP requests the medical student to perform venepuncture and obtain blood samples. The student seizes this chance to brush up on their knowledge of vascular anatomy. They plan to draw blood from the median cubital vein located in the antecubital fossa. While aware that the median cubital vein is linked to the cephalic vein, they cannot recall the name of the other vein it connects to. Can you identify the other vein?

      Your Answer: Brachial vein

      Correct Answer: Basilic vein

      Explanation:

      The upper limb has both superficial and deep veins. Among the superficial veins are the cephalic, basilic, and median cubital veins. The median cubital vein, which connects the cephalic and basilic veins, is situated in the antecubital fossa and is the preferred site for venepuncture because it is easy to locate and access. However, deep veins like the brachial, ulnar, and radial veins are not suitable for venepuncture as they are located beneath the deep fascia.

      The Cephalic Vein: Path and Connections

      The cephalic vein is a major blood vessel that runs along the lateral side of the arm. It begins at the dorsal venous arch, which drains blood from the hand and wrist, and travels up the arm, crossing the anatomical snuffbox. At the antecubital fossa, the cephalic vein is connected to the basilic vein by the median cubital vein. This connection is commonly used for blood draws and IV insertions.

      After passing through the antecubital fossa, the cephalic vein continues up the arm and pierces the deep fascia of the deltopectoral groove to join the axillary vein. This junction is located near the shoulder and marks the end of the cephalic vein’s path.

      Overall, the cephalic vein plays an important role in the circulation of blood in the upper limb. Its connections to other major veins in the arm make it a valuable site for medical procedures, while its path through the deltopectoral groove allows it to contribute to the larger network of veins that drain blood from the upper body.

    • This question is part of the following fields:

      • Cardiovascular System
      39.8
      Seconds
  • Question 4 - A 67-year-old man presents to the emergency department with chest pain. He describes...

    Correct

    • A 67-year-old man presents to the emergency department with chest pain. He describes this as crushing central chest pain which is associated with nausea and sweating.

      Blood results are as follows:

      Hb 148 g/L Male: (135-180)
      Female: (115 - 160)
      Platelets 268 * 109/L (150 - 400)
      WBC 14.6 * 109/L (4.0 - 11.0)
      Na+ 136 mmol/L (135 - 145)
      K+ 4.7 mmol/L (3.5 - 5.0)
      Urea 6.2 mmol/L (2.0 - 7.0)
      Creatinine 95 µmol/L (55 - 120)
      Troponin 4058 ng/L (< 14 ng/L)

      An ECG is performed which demonstrates:

      Current ECG Sinus rhythm, QRS 168ms, dominant S wave in V1
      Previous ECG 12 months ago No abnormality

      Which part of the heart's conduction system is likely to be affected?

      Your Answer: Purkinje fibres

      Explanation:

      The Purkinje fibres have the highest conduction velocities in the heart, and a prolonged QRS (>120ms) with a dominant S wave in V1 may indicate left bundle branch block (LBBB). If a patient presents with chest pain, a raised troponin, and a previously normal ECG, LBBB should be considered as a possible cause and managed as an acute STEMI. LBBB is caused by damage to the left bundle branch and its associated Purkinje fibres.

      Understanding the Cardiac Action Potential and Conduction Velocity

      The cardiac action potential is a series of electrical events that occur in the heart during each heartbeat. It is responsible for the contraction of the heart muscle and the pumping of blood throughout the body. The action potential is divided into five phases, each with a specific mechanism. The first phase is rapid depolarization, which is caused by the influx of sodium ions. The second phase is early repolarization, which is caused by the efflux of potassium ions. The third phase is the plateau phase, which is caused by the slow influx of calcium ions. The fourth phase is final repolarization, which is caused by the efflux of potassium ions. The final phase is the restoration of ionic concentrations, which is achieved by the Na+/K+ ATPase pump.

      Conduction velocity is the speed at which the electrical signal travels through the heart. The speed varies depending on the location of the signal. Atrial conduction spreads along ordinary atrial myocardial fibers at a speed of 1 m/sec. AV node conduction is much slower, at 0.05 m/sec. Ventricular conduction is the fastest in the heart, achieved by the large diameter of the Purkinje fibers, which can achieve velocities of 2-4 m/sec. This allows for a rapid and coordinated contraction of the ventricles, which is essential for the proper functioning of the heart. Understanding the cardiac action potential and conduction velocity is crucial for diagnosing and treating heart conditions.

    • This question is part of the following fields:

      • Cardiovascular System
      427.1
      Seconds
  • Question 5 - A 28-year-old, gravida 2 para 1, presents to the emergency department with pelvic...

    Incorrect

    • A 28-year-old, gravida 2 para 1, presents to the emergency department with pelvic pain. She delivered a healthy baby at 37 weeks gestation 13 days ago.

      During the examination, it was found that she has right lower quadrant pain and her temperature is 37.8º C. Further tests revealed a left gonadal (ovarian) vein thrombosis. The patient was informed about the risk of the thrombus lodging in the venous system from the left gonadal vein.

      What is the first structure that the thrombus will go through if lodged from the left gonadal vein?

      Your Answer: Inferior vena cava

      Correct Answer: Left renal vein

      Explanation:

      The left gonadal veins empty into the left renal vein, meaning that any thrombus originating from the left gonadal veins would travel to the left renal vein. However, if the thrombus originated from the right gonadal vein, it would flow into the inferior vena cava (IVC) since the right gonadal vein directly drains into the IVC.

      The portal vein is typically formed by the merging of the superior mesenteric and splenic veins, and it also receives blood from the inferior mesenteric, gastric, and cystic veins.

      The superior vena cava collects venous drainage from the upper half of the body, specifically above the diaphragm.

      Anatomy of the Inferior Vena Cava

      The inferior vena cava (IVC) originates from the fifth lumbar vertebrae and is formed by the merging of the left and right common iliac veins. It passes to the right of the midline and receives drainage from paired segmental lumbar veins throughout its length. The right gonadal vein empties directly into the cava, while the left gonadal vein usually empties into the left renal vein. The renal veins and hepatic veins are the next major veins that drain into the IVC. The IVC pierces the central tendon of the diaphragm at the level of T8 and empties into the right atrium of the heart.

      The IVC is related anteriorly to the small bowel, the first and third parts of the duodenum, the head of the pancreas, the liver and bile duct, the right common iliac artery, and the right gonadal artery. Posteriorly, it is related to the right renal artery, the right psoas muscle, the right sympathetic chain, and the coeliac ganglion.

      The IVC is divided into different levels based on the veins that drain into it. At the level of T8, it receives drainage from the hepatic vein and inferior phrenic vein before piercing the diaphragm. At the level of L1, it receives drainage from the suprarenal veins and renal vein. At the level of L2, it receives drainage from the gonadal vein, and at the level of L1-5, it receives drainage from the lumbar veins. Finally, at the level of L5, the common iliac vein merges to form the IVC.

    • This question is part of the following fields:

      • Cardiovascular System
      900.3
      Seconds
  • Question 6 - A 78-year-old woman has presented with dyspnea. During cardiovascular examination, a faint murmur...

    Incorrect

    • A 78-year-old woman has presented with dyspnea. During cardiovascular examination, a faint murmur is detected in the mitral area. If the diagnosis is mitral stenosis, what is the most probable factor that would increase the loudness and clarity of the murmur during auscultation?

      Your Answer: Listen with the diaphragm of the stethoscope

      Correct Answer: Ask the patient to breathe out

      Explanation:

      To accentuate the sound of a left-sided murmur consistent with mitral stenosis during a cardiovascular examination, the patient should be asked to exhale. Conversely, a right-sided murmur is louder during inspiration. Listening in the left lateral position while the patient is lying down can also emphasize a mitral stenosis. To identify a mitral regurgitation murmur, listening in the axilla is helpful as it radiates. Diastolic murmurs can be heard better with a position change, while systolic murmurs tend to radiate and can be distinguished by listening in different anatomical landmarks. For example, an aortic stenosis may radiate to the carotids, while an aortic regurgitation may be heard better with the patient leaning forward.

      Understanding Mitral Stenosis

      Mitral stenosis is a condition where the mitral valve, which controls blood flow from the left atrium to the left ventricle, becomes obstructed. This leads to an increase in pressure within the left atrium, pulmonary vasculature, and right side of the heart. The most common cause of mitral stenosis is rheumatic fever, but it can also be caused by other rare conditions such as mucopolysaccharidoses, carcinoid, and endocardial fibroelastosis.

      Symptoms of mitral stenosis include dyspnea, hemoptysis, a mid-late diastolic murmur, a loud S1, and a low volume pulse. Severe cases may also present with an increased length of murmur and a closer opening snap to S2. Chest x-rays may show left atrial enlargement, while echocardiography can confirm a cross-sectional area of less than 1 sq cm for a tight mitral stenosis.

      Management of mitral stenosis depends on the severity of the condition. Asymptomatic patients are monitored with regular echocardiograms, while symptomatic patients may undergo percutaneous mitral balloon valvotomy or mitral valve surgery. Patients with associated atrial fibrillation require anticoagulation, with warfarin currently recommended for moderate/severe cases. However, there is an emerging consensus that direct-acting anticoagulants may be suitable for mild cases with atrial fibrillation.

      Overall, understanding mitral stenosis is important for proper diagnosis and management of this condition.

    • This question is part of the following fields:

      • Cardiovascular System
      540.3
      Seconds
  • Question 7 - During ward round, you have been presented with an ECG of a 50-year-old...

    Incorrect

    • During ward round, you have been presented with an ECG of a 50-year-old female who was admitted with blackouts and a heart rate of 43bpm. On the ECG you note that the QRS complex is narrow but is missing after every other P wave. What is this condition called?

      Your Answer: Wenckebach heart block

      Correct Answer: 2:1 heart block

      Explanation:

      The patient has a bradycardia with a narrow QRS complex, ruling out bundle branch blocks. It is not a first-degree heart block or a Wenckebach heart block. The correct diagnosis is a 2:1 heart block with 2 P waves to each QRS complex.

      Understanding Heart Blocks: Types and Features

      Heart blocks are a type of cardiac conduction disorder that can lead to serious complications such as syncope and heart failure. There are three types of heart blocks: first degree, second degree, and third degree (complete) heart block.

      First degree heart block is characterized by a prolonged PR interval of more than 0.2 seconds. Second degree heart block can be further divided into two types: type 1 (Mobitz I, Wenckebach) and type 2 (Mobitz II). Type 1 is characterized by a progressive prolongation of the PR interval until a dropped beat occurs, while type 2 has a constant PR interval but the P wave is often not followed by a QRS complex.

      Third degree (complete) heart block is the most severe type of heart block, where there is no association between the P waves and QRS complexes. This can lead to a regular bradycardia with a heart rate of 30-50 bpm, wide pulse pressure, and cannon waves in the neck JVP. Additionally, variable intensity of S1 can be observed.

      It is important to recognize the features of heart blocks and differentiate between the types in order to provide appropriate management and prevent complications. Regular monitoring and follow-up with a healthcare provider is recommended for individuals with heart blocks.

    • This question is part of the following fields:

      • Cardiovascular System
      46.9
      Seconds
  • Question 8 - An 82-year-old woman visits her doctor with a medical history of myocardial infarction...

    Incorrect

    • An 82-year-old woman visits her doctor with a medical history of myocardial infarction that has resulted in permanent damage to the conduction system of her heart. The damage has affected the part of the conduction system with the highest velocities, causing desynchronisation of the ventricles.

      What is the part of the heart that conducts the fastest?

      Your Answer: Ventricular muscle

      Correct Answer: Purkinje fibres

      Explanation:

      The Purkinje fibres have the highest conduction velocities in the heart’s electrical conduction system. The process starts with the SA node generating spontaneous action potentials, which are then conducted across both atria through cell to cell conduction at a speed of approximately 1 m/s. The only pathway for the action potential to enter the ventricles is through the AV node, which has a slow conduction speed of 0.05ms to allow for complete atrial contraction and ventricular filling. The action potentials are then conducted through the Bundle of His, which splits into the left and right bundle branches, with a conduction speed of approximately 2m/s. Finally, the action potential reaches the Purkinje fibres, which are specialized conducting cells that allow for a faster conduction speed of 2-4m/s. This fast conduction speed is crucial for a synchronized and efficient contraction of the ventricle, generating pressure during systole.

      Understanding the Cardiac Action Potential and Conduction Velocity

      The cardiac action potential is a series of electrical events that occur in the heart during each heartbeat. It is responsible for the contraction of the heart muscle and the pumping of blood throughout the body. The action potential is divided into five phases, each with a specific mechanism. The first phase is rapid depolarization, which is caused by the influx of sodium ions. The second phase is early repolarization, which is caused by the efflux of potassium ions. The third phase is the plateau phase, which is caused by the slow influx of calcium ions. The fourth phase is final repolarization, which is caused by the efflux of potassium ions. The final phase is the restoration of ionic concentrations, which is achieved by the Na+/K+ ATPase pump.

      Conduction velocity is the speed at which the electrical signal travels through the heart. The speed varies depending on the location of the signal. Atrial conduction spreads along ordinary atrial myocardial fibers at a speed of 1 m/sec. AV node conduction is much slower, at 0.05 m/sec. Ventricular conduction is the fastest in the heart, achieved by the large diameter of the Purkinje fibers, which can achieve velocities of 2-4 m/sec. This allows for a rapid and coordinated contraction of the ventricles, which is essential for the proper functioning of the heart. Understanding the cardiac action potential and conduction velocity is crucial for diagnosing and treating heart conditions.

    • This question is part of the following fields:

      • Cardiovascular System
      71.9
      Seconds
  • Question 9 - A 30-year-old man visits his GP with complaints of fever and malaise. Upon...

    Incorrect

    • A 30-year-old man visits his GP with complaints of fever and malaise. Upon further inquiry, the GP discovers that the patient has been using intravenous drugs for several years and suspects infective endocarditis after a thorough examination. Which embryological structure is most likely affected in this patient?

      Your Answer: Right horn of the sinus venosus

      Correct Answer: Endocardial cushion

      Explanation:

      The AV and semilunar valves originate from the endocardial cushion during embryonic development. When a patient is positive for IVDU, infective endocarditis typically affects the tricuspid valve. It is important to note that all valves in the heart are derived from the endocardial cushion.

      During cardiovascular embryology, the heart undergoes significant development and differentiation. At around 14 days gestation, the heart consists of primitive structures such as the truncus arteriosus, bulbus cordis, primitive atria, and primitive ventricle. These structures give rise to various parts of the heart, including the ascending aorta and pulmonary trunk, right ventricle, left and right atria, and majority of the left ventricle. The division of the truncus arteriosus is triggered by neural crest cell migration from the pharyngeal arches, and any issues with this migration can lead to congenital heart defects such as transposition of the great arteries or tetralogy of Fallot. Other structures derived from the primitive heart include the coronary sinus, superior vena cava, fossa ovalis, and various ligaments such as the ligamentum arteriosum and ligamentum venosum. The allantois gives rise to the urachus, while the umbilical artery becomes the medial umbilical ligaments and the umbilical vein becomes the ligamentum teres hepatis inside the falciform ligament. Overall, cardiovascular embryology is a complex process that involves the differentiation and development of various structures that ultimately form the mature heart.

    • This question is part of the following fields:

      • Cardiovascular System
      119
      Seconds
  • Question 10 - A 63-year-old male presents with right sided hemiplegia. An MRI confirms a diagnosis...

    Correct

    • A 63-year-old male presents with right sided hemiplegia. An MRI confirms a diagnosis of a left sided partial anterior circulating stroke. He is treated with high dose aspirin for 14 days. He is then started on clopidogrel which he was unfortunately intolerant of. You therefore start him on dual aspirin and dipyridamole.

      What is the mechanism of action of dipyridamole?

      Your Answer: Increases the effects of adenosine

      Explanation:

      Dipyridamole is a medication that inhibits phosphodiesterase enzymes and reduces the uptake of adenosine by cells. This leads to an increase in adenosine levels and a decrease in the breakdown of cAMP. Patients taking dipyridamole should not receive exogenous adenosine treatment, such as for supraventricular tachycardia, due to this interaction.

      Clopidogrel is a medication that blocks ADP receptors.

      Aspirin is a medication that inhibits cyclo-oxygenase.

      Dabigatran and bivalirudin are medications that directly inhibit thrombin.

      Tirofiban and abciximab are medications that inhibit glycoprotein IIb/IIIa.

      Warfarin inhibits the production of factors II, VII, IX, and X.

      Understanding the Mechanism of Action of Dipyridamole

      Dipyridamole is a medication that is commonly used in combination with aspirin to prevent the formation of blood clots after a stroke or transient ischemic attack. The drug works by inhibiting phosphodiesterase, which leads to an increase in the levels of cyclic adenosine monophosphate (cAMP) in platelets. This, in turn, reduces the levels of intracellular calcium, which is necessary for platelet activation and aggregation.

      Apart from its antiplatelet effects, dipyridamole also reduces the cellular uptake of adenosine, a molecule that plays a crucial role in regulating blood flow and oxygen delivery to tissues. By inhibiting the uptake of adenosine, dipyridamole can increase its levels in the bloodstream, leading to vasodilation and improved blood flow.

      Another mechanism of action of dipyridamole is the inhibition of thromboxane synthase, an enzyme that is involved in the production of thromboxane A2, a potent platelet activator. By blocking this enzyme, dipyridamole can further reduce platelet activation and aggregation, thereby preventing the formation of blood clots.

      In summary, dipyridamole exerts its antiplatelet effects through multiple mechanisms, including the inhibition of phosphodiesterase, the reduction of intracellular calcium levels, the inhibition of thromboxane synthase, and the modulation of adenosine uptake. These actions make it a valuable medication for preventing thrombotic events in patients with a history of stroke or transient ischemic attack.

    • This question is part of the following fields:

      • Cardiovascular System
      75
      Seconds
  • Question 11 - A 55-year-old man with several cardiac risk factors arrives at the hospital with...

    Incorrect

    • A 55-year-old man with several cardiac risk factors arrives at the hospital with sudden onset chest pain in the center. The pain extends to his left arm and is accompanied by sweating and nausea.

      The patient's ECG reveals widespread T-wave inversion, which is a new finding compared to his previous ECGs. The level of troponin I in his serum is measured and confirmed to be elevated. The patient is initiated on treatment for acute coronary syndrome and transferred to a cardiac center.

      What is the target of this measured cardiac biomarker?

      Your Answer:

      Correct Answer: Actin

      Explanation:

      Troponin I is a cardiac biomarker that binds to actin, which holds the troponin-tropomyosin complex in place and regulates muscle contraction. It is the standard biomarker used in conjunction with ECGs and clinical findings to diagnose non-ST elevation myocardial infarction (NSTEMI). Troponin I is highly sensitive and specific for myocardial damage compared to other cardiac biomarkers. Troponin C, another subunit of troponin, plays a role in Ca2+-dependent regulation of muscle contraction and can also be used in the diagnosis of myocardial infarction, but it is less specific as it is found in both cardiac and skeletal muscle. Copeptin, an amino acid peptide, is released earlier than troponin during acute myocardial infarction but is not widely used in clinical practice and has no interaction with troponin. Myoglobin, an iron- and oxygen-binding protein found in both cardiac and skeletal muscle, has poor specificity for cardiac injury and is not involved in the troponin-tropomyosin complex.

      Understanding Troponin: The Proteins Involved in Muscle Contraction

      Troponin is a group of three proteins that play a crucial role in the contraction of skeletal and cardiac muscles. These proteins work together to regulate the interaction between actin and myosin, which is essential for muscle contraction. The three subunits of troponin are troponin C, troponin T, and troponin I.

      Troponin C is responsible for binding to calcium ions, which triggers the contraction of muscle fibers. Troponin T binds to tropomyosin, forming a complex that helps regulate the interaction between actin and myosin. Finally, troponin I binds to actin, holding the troponin-tropomyosin complex in place and preventing muscle contraction when it is not needed.

      Understanding the role of troponin is essential for understanding how muscles work and how they can be affected by various diseases and conditions. By regulating the interaction between actin and myosin, troponin plays a critical role in muscle contraction and is a key target for drugs used to treat conditions such as heart failure and skeletal muscle disorders.

    • This question is part of the following fields:

      • Cardiovascular System
      0
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  • Question 12 - A 79-year-old man arrives at the emergency department with severe, crushing chest pain....

    Incorrect

    • A 79-year-old man arrives at the emergency department with severe, crushing chest pain. His ECG reveals ST-segment elevation in leads V1-4. What electrical state of the heart is likely to be impacted based on his ECG findings?

      Your Answer:

      Correct Answer: The period when the entire ventricle is depolarised

      Explanation:

      The ST segment on an ECG represents the time when the ventricles are fully depolarized, occurring between the QRS complex and the T wave. The P wave represents atrial depolarization, while the PR interval represents the time between atrial and ventricular depolarization. The QRS complex represents ventricular depolarization, and the T wave represents repolarization. Overall, the ECG reflects the various electrical states of the heart.

      Understanding the Normal ECG

      The electrocardiogram (ECG) is a diagnostic tool used to assess the electrical activity of the heart. The normal ECG consists of several waves and intervals that represent different phases of the cardiac cycle. The P wave represents atrial depolarization, while the QRS complex represents ventricular depolarization. The ST segment represents the plateau phase of the ventricular action potential, and the T wave represents ventricular repolarization. The Q-T interval represents the time for both ventricular depolarization and repolarization to occur.

      The P-R interval represents the time between the onset of atrial depolarization and the onset of ventricular depolarization. The duration of the QRS complex is normally 0.06 to 0.1 seconds, while the duration of the P wave is 0.08 to 0.1 seconds. The Q-T interval ranges from 0.2 to 0.4 seconds depending upon heart rate. At high heart rates, the Q-T interval is expressed as a ‘corrected Q-T (QTc)’ by taking the Q-T interval and dividing it by the square root of the R-R interval.

      Understanding the normal ECG is important for healthcare professionals to accurately interpret ECG results and diagnose cardiac conditions. By analyzing the different waves and intervals, healthcare professionals can identify abnormalities in the electrical activity of the heart and provide appropriate treatment.

    • This question is part of the following fields:

      • Cardiovascular System
      0
      Seconds
  • Question 13 - A 57-year-old woman comes to see her GP to discuss the findings of...

    Incorrect

    • A 57-year-old woman comes to see her GP to discuss the findings of her ABPM, which revealed a blood pressure reading of 145/90 mmHg, leading to a diagnosis of stage 1 hypertension. What is the most common symptom experienced by patients with this condition?

      Your Answer:

      Correct Answer: None

      Explanation:

      Symptoms are not typically caused by hypertension.

      Hypertension is a common medical condition that refers to chronically raised blood pressure. It is a significant risk factor for cardiovascular disease such as stroke and ischaemic heart disease. Normal blood pressure can vary widely according to age, gender, and individual physiology, but hypertension is defined as a clinic reading persistently above 140/90 mmHg or a 24-hour blood pressure average reading above 135/85 mmHg.

      Around 90-95% of patients with hypertension have primary or essential hypertension, which is caused by complex physiological changes that occur as we age. Secondary hypertension may be caused by a variety of endocrine, renal, and other conditions. Hypertension typically does not cause symptoms unless it is very high, but patients may experience headaches, visual disturbance, or seizures.

      Diagnosis of hypertension involves 24-hour blood pressure monitoring or home readings using an automated sphygmomanometer. Patients with hypertension typically have tests to check for renal disease, diabetes mellitus, hyperlipidaemia, and end-organ damage. Management of hypertension involves drug therapy using antihypertensives, modification of other risk factors, and monitoring for complications. Common drugs used to treat hypertension include angiotensin-converting enzyme inhibitors, calcium channel blockers, thiazide type diuretics, and angiotensin II receptor blockers. Drug therapy is decided by well-established NICE guidelines, which advocate a step-wise approach.

    • This question is part of the following fields:

      • Cardiovascular System
      0
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  • Question 14 - Which ions are responsible for the plateau phase of the cardiac action potential...

    Incorrect

    • Which ions are responsible for the plateau phase of the cardiac action potential in stage 2?

      Your Answer:

      Correct Answer: Calcium in, potassium out

      Explanation:

      The Phases of Cardiac Action Potential

      The cardiac action potential is a complex process that involves four distinct phases. The first phase, known as phase 0 or the depolarisation phase, is initiated by the opening of fast Na channels, which allows an influx of Na ions into the cell. This influx of positively charged ions creates a positive current that rapidly depolarises the cell membrane.

      In the second phase, known as phase 1 or initial repolarisation, the fast Na channels close, causing a brief period of repolarisation. This is followed by phase 2 or the plateau phase, which is characterised by the opening of K and Ca channels. The influx of calcium ions into the cell is balanced by the efflux of potassium ions, resulting in a net neutral current.

      The final phase, phase 3 or repolarisation, is initiated by the closure of Ca channels, which causes a net negative current as K+ ions continue to leave the cell. It is important to note that the inward movement of sodium alone would not result in a plateau, as it represents a positive current. The normal action of the sodium-potassium pump involves the inward movement of potassium combined with the outward movement of sodium.

    • This question is part of the following fields:

      • Cardiovascular System
      0
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  • Question 15 - A 75-year-old diabetic man comes in with a heart attack and undergoes a...

    Incorrect

    • A 75-year-old diabetic man comes in with a heart attack and undergoes a coronary angiogram. What coronary artery/arteries provide blood supply to the anterior septum of the heart?

      Your Answer:

      Correct Answer: Left Anterior Descending

      Explanation:

      The heart receives blood supply from the coronary arteries, which originate from the left side of the heart at the root of the aorta as it exits the left ventricle.

      The left coronary artery (LCA) provides blood to the left atrium and ventricle, as well as the interventricular septum. The circumflex artery, a branch of the LCA, supplies the lateral aspect of the left heart by following the coronary sulcus to the left. The left anterior descending artery (LAD), another major branch of the LCA, supplies the anteroseptal part of the heart by following the anterior interventricular sulcus around the pulmonary trunk.

      The right coronary artery (RCA) follows the coronary sulcus and supplies blood to the right atrium, portions of both ventricles, and the inferior aspect of the heart. The marginal arteries, which arise from the RCA, provide blood to the superficial portions of the right ventricle. The posterior descending artery, which branches off the RCA on the posterior surface of the heart, runs along the posterior portion of the interventricular sulcus toward the apex of the heart and supplies the interventricular septum and portions of both ventricles.

      The following table displays the relationship between ECG changes and the affected coronary artery territories. Anteroseptal changes in V1-V4 indicate involvement of the left anterior descending artery, while inferior changes in II, III, and aVF suggest the right coronary artery is affected. Anterolateral changes in V4-6, I, and aVL may indicate involvement of either the left anterior descending or left circumflex artery, while lateral changes in I, aVL, and possibly V5-6 suggest the left circumflex artery is affected. Posterior changes in V1-3 may indicate a posterior infarction, which is typically caused by the left circumflex artery but can also be caused by the right coronary artery. Reciprocal changes of STEMI are often seen as horizontal ST depression, tall R waves, upright T waves, and a dominant R wave in V2. Posterior infarction is confirmed by ST elevation and Q waves in posterior leads (V7-9), usually caused by the left circumflex artery but also possibly the right coronary artery. It is important to note that a new LBBB may indicate acute coronary syndrome.

      Diagram showing the correlation between ECG changes and coronary territories in acute coronary syndrome.

    • This question is part of the following fields:

      • Cardiovascular System
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  • Question 16 - A 35-year-old man comes to the clinic complaining of occasional palpitations and feeling...

    Incorrect

    • A 35-year-old man comes to the clinic complaining of occasional palpitations and feeling lightheaded. He reports no chest pain, shortness of breath, or swelling in his legs. Upon examination, no abnormalities are found. An ECG reveals a shortened PR interval and the presence of delta waves. What is the underlying pathophysiology of the most likely diagnosis?

      Your Answer:

      Correct Answer: Accessory pathway

      Explanation:

      The presence of intermittent palpitations and lightheadedness can be indicative of various conditions, but the detection of a shortened PR interval and delta wave on an ECG suggests the possibility of Wolff-Parkinson-White syndrome. This syndrome arises from an additional pathway connecting the atrium and ventricle.

      Understanding Wolff-Parkinson White Syndrome

      Wolff-Parkinson White (WPW) syndrome is a condition that occurs due to a congenital accessory conducting pathway between the atria and ventricles, leading to atrioventricular re-entry tachycardia (AVRT). This condition can cause AF to degenerate rapidly into VF as the accessory pathway does not slow conduction. The ECG features of WPW include a short PR interval, wide QRS complexes with a slurred upstroke known as a delta wave, and left or right axis deviation depending on the location of the accessory pathway. WPW is associated with various conditions such as HOCM, mitral valve prolapse, Ebstein’s anomaly, thyrotoxicosis, and secundum ASD.

      The definitive treatment for WPW is radiofrequency ablation of the accessory pathway. Medical therapy options include sotalol, amiodarone, and flecainide. However, sotalol should be avoided if there is coexistent atrial fibrillation as it may increase the ventricular rate and potentially deteriorate into ventricular fibrillation. WPW can be differentiated into type A and type B based on the presence or absence of a dominant R wave in V1. It is important to understand WPW and its associations to provide appropriate management and prevent potential complications.

    • This question is part of the following fields:

      • Cardiovascular System
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  • Question 17 - A 55-year-old woman with hypertension comes in for a routine check-up with her...

    Incorrect

    • A 55-year-old woman with hypertension comes in for a routine check-up with her GP. She mentions feeling fatigued for the past few days and has been taking antihypertensive medication for almost a year, but cannot recall the name. Her ECG appears normal.

      Hb 142 g/L Male: (135-180)
      Female: (115 - 160)
      Platelets 180 * 109/L (150 - 400)
      WBC 7.5 * 109/L (4.0 - 11.0)

      Na+ 133 mmol/L (135 - 145)
      K+ 3.8 mmol/L (3.5 - 5.0)
      Urea 5.5 mmol/L (2.0 - 7.0)
      Creatinine 98 µmol/L (55 - 120)

      What medication might she be taking?

      Your Answer:

      Correct Answer: Hydrochlorothiazide

      Explanation:

      Thiazide diuretics have been known to cause hyponatremia, as seen in the clinical scenario and blood tests. The question aims to test knowledge of antihypertensive medications that may lead to hyponatremia.

      The correct answer is Hydrochlorothiazide, as ACE inhibitors, angiotensin receptor blockers, and calcium channel blockers may also cause hyponatremia. Beta-blockers, such as Atenolol, typically do not cause hyponatremia. Similarly, central agonists like Clonidine and alpha-blockers like Doxazosin are not known to cause hyponatremia.

      Thiazide diuretics are medications that work by blocking the thiazide-sensitive Na+-Cl− symporter, which inhibits sodium reabsorption at the beginning of the distal convoluted tubule (DCT). This results in the loss of potassium as more sodium reaches the collecting ducts. While thiazide diuretics are useful in treating mild heart failure, loop diuretics are more effective in reducing overload. Bendroflumethiazide was previously used to manage hypertension, but recent NICE guidelines recommend other thiazide-like diuretics such as indapamide and chlorthalidone.

      Common side effects of thiazide diuretics include dehydration, postural hypotension, and electrolyte imbalances such as hyponatremia, hypokalemia, and hypercalcemia. Other potential adverse effects include gout, impaired glucose tolerance, and impotence. Rare side effects may include thrombocytopenia, agranulocytosis, photosensitivity rash, and pancreatitis.

      It is worth noting that while thiazide diuretics may cause hypercalcemia, they can also reduce the incidence of renal stones by decreasing urinary calcium excretion. According to current NICE guidelines, the management of hypertension involves the use of thiazide-like diuretics, along with other medications and lifestyle changes, to achieve optimal blood pressure control and reduce the risk of cardiovascular disease.

    • This question is part of the following fields:

      • Cardiovascular System
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  • Question 18 - A 32-year-old woman arrives at the emergency department with a sudden and severe...

    Incorrect

    • A 32-year-old woman arrives at the emergency department with a sudden and severe headache, describing it as the worst she has ever experienced. She has a medical history of hypertension and polycystic kidney disease (PKD). The emergency physician diagnoses a subarachnoid hemorrhage, which is a common complication of her PKD.

      What is the gold standard investigation for intracranial vascular disease?

      Your Answer:

      Correct Answer: Cerebral angiography

      Explanation:

      The gold standard investigation for intracranial vascular disease is cerebral angiography, which can diagnose intracranial aneurysms and other vascular diseases by visualizing arteries and veins using contrast dye injected into the bloodstream. This technique can also create 3-D reconstructed images that allow for a comprehensive view of the cerebral vessels and accompanying pathology from all angles.

      Individuals with PKD are at an increased risk of cerebral aneurysms, which can lead to subarachnoid hemorrhages.

      Flow-Sensitive MRI (FS MRI) is a useful tool that combines functional MRI with images of cerebrospinal fluid (CSF) flow. It can aid in planning the surgical removal of skull base tumors, spinal cord tumors, or tumors causing hydrocephalus.

      While contrast and non-contrast CT scans are commonly used as the first line of investigation for intracranial lesions, they are not the gold standard and are superseded by cerebral angiography.

      Understanding Cerebral Blood Flow and Angiography

      Cerebral blood flow is regulated by the central nervous system, which can adjust its own blood supply. Various factors can affect cerebral pressure, including CNS metabolism, trauma, pressure, and systemic carbon dioxide levels. The most potent mediator is PaCO2, while acidosis and hypoxemia can also increase cerebral blood flow to a lesser degree. In patients with head injuries, increased intracranial pressure can impair blood flow. The Monro-Kelly Doctrine governs intracerebral pressure, which considers the brain as a closed box, and changes in pressure are offset by the loss of cerebrospinal fluid. However, when this is no longer possible, intracranial pressure rises.

      Cerebral angiography is an invasive test that involves injecting contrast media into the carotid artery using a catheter. Radiographs are taken as the dye works its way through the cerebral circulation. This test can be used to identify bleeding aneurysms, vasospasm, and arteriovenous malformations, as well as differentiate embolism from large artery thrombosis. Understanding cerebral blood flow and angiography is crucial in diagnosing and treating various neurological conditions.

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      • Cardiovascular System
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  • Question 19 - A 39-year-old male arrives at the emergency department complaining of palpitations and is...

    Incorrect

    • A 39-year-old male arrives at the emergency department complaining of palpitations and is diagnosed with monomorphic ventricular tachycardia. What electrolyte is responsible for maintaining the resting potential of ventricular myocytes?

      Your Answer:

      Correct Answer: Potassium

      Explanation:

      The resting potential of cardiac myocytes is maintained by potassium, while depolarization is initiated by a sudden influx of sodium ions and repolarization is caused by the outflow of potassium. The extended duration of a cardiac action potential, in contrast to skeletal muscle, is due to a gradual influx of calcium.

      Understanding the Cardiac Action Potential and Conduction Velocity

      The cardiac action potential is a series of electrical events that occur in the heart during each heartbeat. It is responsible for the contraction of the heart muscle and the pumping of blood throughout the body. The action potential is divided into five phases, each with a specific mechanism. The first phase is rapid depolarization, which is caused by the influx of sodium ions. The second phase is early repolarization, which is caused by the efflux of potassium ions. The third phase is the plateau phase, which is caused by the slow influx of calcium ions. The fourth phase is final repolarization, which is caused by the efflux of potassium ions. The final phase is the restoration of ionic concentrations, which is achieved by the Na+/K+ ATPase pump.

      Conduction velocity is the speed at which the electrical signal travels through the heart. The speed varies depending on the location of the signal. Atrial conduction spreads along ordinary atrial myocardial fibers at a speed of 1 m/sec. AV node conduction is much slower, at 0.05 m/sec. Ventricular conduction is the fastest in the heart, achieved by the large diameter of the Purkinje fibers, which can achieve velocities of 2-4 m/sec. This allows for a rapid and coordinated contraction of the ventricles, which is essential for the proper functioning of the heart. Understanding the cardiac action potential and conduction velocity is crucial for diagnosing and treating heart conditions.

    • This question is part of the following fields:

      • Cardiovascular System
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  • Question 20 - A 50-year-old UK born patient with end-stage kidney failure arrives at the emergency...

    Incorrect

    • A 50-year-old UK born patient with end-stage kidney failure arrives at the emergency department complaining of sharp chest pain that subsides when sitting forward. The patient has not undergone dialysis yet. Upon conducting an ECG, it is observed that there is a widespread 'saddle-shaped' ST elevation and PR depression, leading to a diagnosis of pericarditis. What could be the probable cause of this pericarditis?

      Your Answer:

      Correct Answer: Uraemia

      Explanation:

      There is no indication of trauma in patients with advanced renal failure prior to dialysis initiation.

      ECG results do not indicate a recent heart attack.

      The patient’s age decreases the likelihood of malignancy.

      Acute Pericarditis: Causes, Features, Investigations, and Management

      Acute pericarditis is a possible diagnosis for patients presenting with chest pain. The condition is characterized by chest pain, which may be pleuritic and relieved by sitting forwards. Other symptoms include non-productive cough, dyspnoea, and flu-like symptoms. Tachypnoea and tachycardia may also be present, along with a pericardial rub.

      The causes of acute pericarditis include viral infections, tuberculosis, uraemia, trauma, post-myocardial infarction, Dressler’s syndrome, connective tissue disease, hypothyroidism, and malignancy.

      Investigations for acute pericarditis include ECG changes, which are often global/widespread, as opposed to the ‘territories’ seen in ischaemic events. The ECG may show ‘saddle-shaped’ ST elevation and PR depression, which is the most specific ECG marker for pericarditis. All patients with suspected acute pericarditis should have transthoracic echocardiography.

      Management of acute pericarditis involves treating the underlying cause. A combination of NSAIDs and colchicine is now generally used as first-line treatment for patients with acute idiopathic or viral pericarditis.

      In summary, acute pericarditis is a possible diagnosis for patients presenting with chest pain. The condition is characterized by chest pain, which may be pleuritic and relieved by sitting forwards, along with other symptoms. The causes of acute pericarditis are varied, and investigations include ECG changes and transthoracic echocardiography. Management involves treating the underlying cause and using a combination of NSAIDs and colchicine as first-line treatment.

    • This question is part of the following fields:

      • Cardiovascular System
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SESSION STATS - PERFORMANCE PER SPECIALTY

Cardiovascular System (4/10) 40%
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