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  • Question 1 - A 50-year-old man comes to the cardiac clinic for a follow-up exercise stress...

    Correct

    • A 50-year-old man comes to the cardiac clinic for a follow-up exercise stress test. The physician discusses the cardiac adaptations during physical activity.

      What statement best describes this patient's pulse pressure?

      Your Answer: Their increased stroke volume will increase pulse pressure

      Explanation:

      Increasing stroke volume leads to an increase in pulse pressure, while decreasing stroke volume results in a decrease in pulse pressure. This is because pulse pressure is determined by the difference between systolic and diastolic pressure, and an increase in stroke volume raises systolic pressure. During exercise, stroke volume increases to meet the body’s demands, leading to an increase in pulse pressure. Therefore, it is incorrect to say that a decrease in pulse pressure will increase stroke volume, or that a decrease in stroke volume will not affect pulse pressure.

      Cardiovascular physiology involves the study of the functions and processes of the heart and blood vessels. One important measure of heart function is the left ventricular ejection fraction, which is calculated by dividing the stroke volume (the amount of blood pumped out of the left ventricle with each heartbeat) by the end diastolic LV volume (the amount of blood in the left ventricle at the end of diastole) and multiplying by 100%. Another key measure is cardiac output, which is the amount of blood pumped by the heart per minute and is calculated by multiplying stroke volume by heart rate.

      Pulse pressure is another important measure of cardiovascular function, which is the difference between systolic pressure (the highest pressure in the arteries during a heartbeat) and diastolic pressure (the lowest pressure in the arteries between heartbeats). Factors that can increase pulse pressure include a less compliant aorta (which can occur with age) and increased stroke volume.

      Finally, systemic vascular resistance is a measure of the resistance to blood flow in the systemic circulation and is calculated by dividing mean arterial pressure (the average pressure in the arteries during a heartbeat) by cardiac output. Understanding these measures of cardiovascular function is important for diagnosing and treating cardiovascular diseases.

    • This question is part of the following fields:

      • Cardiovascular System
      31.6
      Seconds
  • Question 2 - A 27-year-old patient arrives at the emergency department complaining of severe abdominal pain...

    Incorrect

    • A 27-year-old patient arrives at the emergency department complaining of severe abdominal pain and vomiting blood. The patient has been taking naproxen for Achilles tendinopathy. Upon examination, the patient is found to be tachycardic with a pulse of 110 and has a blood pressure of 95/60. An urgent endoscopy is performed, revealing a bleeding peptic ulcer. To stop the bleeding definitively, the patient is sent for embolisation of the left gastric artery via angiogram.

      During the angiogram, what vertebral level can be used as a radiological marker for the origin of the artery supplying the left gastric artery?

      Your Answer: L2

      Correct Answer: T12

      Explanation:

      In cases where initial treatment for upper GI bleeds is ineffective, angiography may be necessary to embolize the affected vessel and halt the bleeding. To perform an angiogram, the radiologist will access the aorta through the femoral artery, ascend to the 12th vertebrae, and then enter the left gastric artery via the coeliac trunk.

      Peptic ulcers in otherwise healthy patients are often caused by non-steroidal anti-inflammatory drugs.

      The coeliac trunk is not located at any vertebral level other than the 12th. The oesophagus passes through the diaphragm with the vagal trunk at the T10 level, while the T11 level has no significant associated structures. The superior mesenteric artery and left renal artery branch off the abdominal aorta at the L1 level.

      The aorta is a major blood vessel that carries oxygenated blood from the heart to the rest of the body. At different levels along the aorta, there are branches that supply blood to specific organs and regions. These branches include the coeliac trunk at the level of T12, which supplies blood to the stomach, liver, and spleen. The left renal artery, at the level of L1, supplies blood to the left kidney. The testicular or ovarian arteries, at the level of L2, supply blood to the reproductive organs. The inferior mesenteric artery, at the level of L3, supplies blood to the lower part of the large intestine. Finally, at the level of L4, the abdominal aorta bifurcates, or splits into two branches, which supply blood to the legs and pelvis.

    • This question is part of the following fields:

      • Cardiovascular System
      27527.8
      Seconds
  • Question 3 - The venous drainage of the heart is aided by the Thebesian veins. To...

    Incorrect

    • The venous drainage of the heart is aided by the Thebesian veins. To which primary structure do they drain?

      Your Answer: Great cardiac vein

      Correct Answer: Atrium

      Explanation:

      The surface of the heart is covered by numerous small veins known as thebesian veins, which drain directly into the heart, typically into the atrium.

      The walls of each cardiac chamber are made up of the epicardium, myocardium, and endocardium. The heart and roots of the great vessels are related anteriorly to the sternum and the left ribs. The coronary sinus receives blood from the cardiac veins, and the aortic sinus gives rise to the right and left coronary arteries. The left ventricle has a thicker wall and more numerous trabeculae carnae than the right ventricle. The heart is innervated by autonomic nerve fibers from the cardiac plexus, and the parasympathetic supply comes from the vagus nerves. The heart has four valves: the mitral, aortic, pulmonary, and tricuspid valves.

    • This question is part of the following fields:

      • Cardiovascular System
      6.6
      Seconds
  • Question 4 - A patient in his 60s with dilated cardiomyopathy visits his primary care physician...

    Correct

    • A patient in his 60s with dilated cardiomyopathy visits his primary care physician complaining of heart failure symptoms. What is the reason behind his heart condition causing heart failure?

      Your Answer: Ventricular dilatation increases afterload due to Laplace's law

      Explanation:

      Laplace’s law states that the pressure in a lumen is equal to the wall tension divided by the lumen radius. Heart failure occurs when the heart is unable to meet the body’s demands for cardiac output. While an increased end diastolic volume can initially increase cardiac output, if myocytes become too stretched, cardiac output will decrease. Insufficient blood supply to the myocardium can also cause heart failure, but this is not related to dilated cardiomyopathy. The Bainbridge reflex and baroreceptor reflex are the main controllers of heart rate, with the former responding to increased stretch in the atrium. Ventricular dilatation does not directly cause an increase in aortic pressure. Laplace’s law shows that as the ventricle dilates, tension must increase to maintain pressure, but at a certain point, myocytes will no longer be able to exert enough force, leading to heart failure. Additionally, as the ventricle dilates, afterload increases, which is the force the heart must contract against.

      The heart has four chambers and generates pressures of 0-25 mmHg on the right side and 0-120 mmHg on the left. The cardiac output is the product of heart rate and stroke volume, typically 5-6L per minute. The cardiac impulse is generated in the sino atrial node and conveyed to the ventricles via the atrioventricular node. Parasympathetic and sympathetic fibers project to the heart via the vagus and release acetylcholine and noradrenaline, respectively. The cardiac cycle includes mid diastole, late diastole, early systole, late systole, and early diastole. Preload is the end diastolic volume and afterload is the aortic pressure. Laplace’s law explains the rise in ventricular pressure during the ejection phase and why a dilated diseased heart will have impaired systolic function. Starling’s law states that an increase in end-diastolic volume will produce a larger stroke volume up to a point beyond which stroke volume will fall. Baroreceptor reflexes and atrial stretch receptors are involved in regulating cardiac output.

    • This question is part of the following fields:

      • Cardiovascular System
      32.1
      Seconds
  • Question 5 - A 16-year-old competitive swimmer visits the paediatric clinic after experiencing palpitations during races...

    Correct

    • A 16-year-old competitive swimmer visits the paediatric clinic after experiencing palpitations during races or intense training. She has never had shortness of breath or chest pain, but one persistent episode led her to the emergency department where an ECG was taken. Based on the shortening of one of the ECG intervals, a provisional diagnosis of Wolff-Parkinson-White syndrome was made. What does this abnormal section of the ECG represent in terms of electrical activity?

      Your Answer: The time between atrial depolarisation and ventricular depolarisation

      Explanation:

      The PR interval on an ECG represents the duration between atrial depolarisation and ventricular depolarisation. In Wolff-Parkinson-White syndrome, an accessory pathway called the Bundle of Kent exists between the atrium and ventricle, allowing electrical signals to bypass the atrioventricular node and potentially leading to tachyarrhythmias. This results in a shorter PR interval on the ECG. Atrial repolarisation is not visible on the ECG, while the depolarisation of the sinoatrial node is represented by the p wave. The QT interval on the ECG represents the time between ventricular depolarisation and repolarisation, while the QRS complex represents ventricular depolarisation, not the PR interval.

      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
      41.1
      Seconds
  • Question 6 - A 79-year-old man visits his doctor complaining of chest pain that occurs during...

    Incorrect

    • A 79-year-old man visits his doctor complaining of chest pain that occurs during physical activity and subsides after rest for the past three months. The doctor diagnoses him with angina and prescribes medications. Due to contraindications, beta blockers and calcium channel blockers are not suitable for this patient, so the doctor starts him on ranolazine. What is the main mechanism of action of ranolazine?

      Your Answer: Inhibition of funny channels

      Correct Answer: Inhibition of persistent or late inward sodium current

      Explanation:

      Ranolazine is a medication that works by inhibiting persistent or late sodium current in various voltage-gated sodium channels in heart muscle. This results in a decrease in intracellular calcium levels, which in turn reduces tension in the heart muscle and lowers its oxygen demand.

      Other medications used to treat angina include ivabradine, which inhibits funny channels, trimetazidine, which inhibits fatty acid metabolism, nitrates, which increase nitric oxide, and several drugs that reduce heart rate, such as beta blockers and calcium channel blockers.

      It is important to note that ranolazine is not typically the first medication prescribed for angina. The drug management of angina may vary depending on the individual patient’s needs and medical history.

      Angina pectoris can be managed through lifestyle changes, medication, percutaneous coronary intervention, and surgery. In 2011, NICE released guidelines for the management of stable angina. Medication is an important aspect of treatment, and all patients should receive aspirin and a statin unless there are contraindications. Sublingual glyceryl trinitrate can be used to abort angina attacks. NICE recommends using either a beta-blocker or a calcium channel blocker as first-line treatment, depending on the patient’s comorbidities, contraindications, and preferences. If a calcium channel blocker is used as monotherapy, a rate-limiting one such as verapamil or diltiazem should be used. If used in combination with a beta-blocker, a longer-acting dihydropyridine calcium channel blocker like amlodipine or modified-release nifedipine should be used. Beta-blockers should not be prescribed concurrently with verapamil due to the risk of complete heart block. If initial treatment is ineffective, medication should be increased to the maximum tolerated dose. If a patient is still symptomatic after monotherapy with a beta-blocker, a calcium channel blocker can be added, and vice versa. If a patient cannot tolerate the addition of a calcium channel blocker or a beta-blocker, long-acting nitrate, ivabradine, nicorandil, or ranolazine can be considered. If a patient is taking both a beta-blocker and a calcium-channel blocker, a third drug should only be added while awaiting assessment for PCI or CABG.

      Nitrate tolerance is a common issue for patients who take nitrates, leading to reduced efficacy. NICE advises patients who take standard-release isosorbide mononitrate to use an asymmetric dosing interval to maintain a daily nitrate-free time of 10-14 hours to minimize the development of nitrate tolerance. However, this effect is not seen in patients who take once-daily modified-release isosorbide mononitrate.

    • This question is part of the following fields:

      • Cardiovascular System
      76.4
      Seconds
  • Question 7 - A 67-year-old man is admitted for a below knee amputation. He is taking...

    Incorrect

    • A 67-year-old man is admitted for a below knee amputation. He is taking digoxin. The patient presents with an irregularly irregular pulse. What would be your expectation when examining the jugular venous pressure?

      Your Answer: Steep y descent

      Correct Answer: Absent a waves

      Explanation:

      The pressure in the jugular vein.

      Understanding Jugular Venous Pressure

      Jugular venous pressure (JVP) is a useful tool for assessing right atrial pressure and identifying underlying valvular disease. The waveform of the jugular vein can provide valuable information about the heart’s function. A non-pulsatile JVP may indicate superior vena caval obstruction, while Kussmaul’s sign describes a paradoxical rise in JVP during inspiration seen in constrictive pericarditis.

      The ‘a’ wave of the jugular vein waveform represents atrial contraction. A large ‘a’ wave may indicate conditions such as tricuspid stenosis, pulmonary stenosis, or pulmonary hypertension. However, an absent ‘a’ wave is common in atrial fibrillation.

      Cannon ‘a’ waves are caused by atrial contractions against a closed tricuspid valve. They are seen in conditions such as complete heart block, ventricular tachycardia/ectopics, nodal rhythm, and single chamber ventricular pacing.

      The ‘c’ wave represents the closure of the tricuspid valve and is not normally visible. The ‘v’ wave is due to passive filling of blood into the atrium against a closed tricuspid valve. Giant ‘v’ waves may indicate tricuspid regurgitation.

      Finally, the ‘x’ descent represents the fall in atrial pressure during ventricular systole, while the ‘y’ descent represents the opening of the tricuspid valve. Understanding the jugular venous pressure waveform can provide valuable insights into the heart’s function and help diagnose underlying conditions.

    • This question is part of the following fields:

      • Cardiovascular System
      14.9
      Seconds
  • Question 8 - One of the elderly patients at your general practice was recently hospitalized and...

    Correct

    • One of the elderly patients at your general practice was recently hospitalized and diagnosed with myeloma. It was discovered that they have severe chronic kidney disease. The patient comes in for an update on their condition. After reviewing their medications, you realize they are taking ramipril for hypertension, which is contraindicated in renal failure. What is the most accurate description of the effect of ACE inhibitors on glomerular filtration pressure?

      Your Answer: Vasodilation of the efferent arteriole

      Explanation:

      The efferent arteriole experiences vasodilation as a result of ACE inhibitors and ARBs, which inhibit the production of angiotensin II and block its receptors. This leads to a decrease in glomerular filtration pressure and rate, particularly in individuals with renal artery stenosis. On the other hand, the afferent arteriole remains dilated due to the presence of prostaglandins. NSAIDs, which inhibit COX-1 and COX-2, can cause vasoconstriction of the afferent arteriole and a subsequent decrease in glomerular filtration pressure. In healthy individuals, the afferent arteriole remains dilated while the efferent arteriole remains constricted to maintain a balanced glomerular pressure. The patient in the scenario has been diagnosed with myeloma, a disease that arises from the malignant transformation of B-cells and is characterized by bone infiltration, hypercalcaemia, anaemia, and renal impairment.

      Angiotensin-converting enzyme (ACE) inhibitors are commonly used as the first-line treatment for hypertension and heart failure in younger patients. However, they may not be as effective in treating hypertensive Afro-Caribbean patients. ACE inhibitors are also used to treat diabetic nephropathy and prevent ischaemic heart disease. These drugs work by inhibiting the conversion of angiotensin I to angiotensin II and are metabolized in the liver.

      While ACE inhibitors are generally well-tolerated, they can cause side effects such as cough, angioedema, hyperkalaemia, and first-dose hypotension. Patients with certain conditions, such as renovascular disease, aortic stenosis, or hereditary or idiopathic angioedema, should use ACE inhibitors with caution or avoid them altogether. Pregnant and breastfeeding women should also avoid these drugs.

      Patients taking high-dose diuretics may be at increased risk of hypotension when using ACE inhibitors. Therefore, it is important to monitor urea and electrolyte levels before and after starting treatment, as well as any changes in creatinine and potassium levels. Acceptable changes include a 30% increase in serum creatinine from baseline and an increase in potassium up to 5.5 mmol/l. Patients with undiagnosed bilateral renal artery stenosis may experience significant renal impairment when using ACE inhibitors.

      The current NICE guidelines recommend using a flow chart to manage hypertension, with ACE inhibitors as the first-line treatment for patients under 55 years old. However, individual patient factors and comorbidities should be taken into account when deciding on the best treatment plan.

    • This question is part of the following fields:

      • Cardiovascular System
      52.8
      Seconds
  • Question 9 - A 87-year-old man is currently admitted to the medical ward and experiences an...

    Correct

    • A 87-year-old man is currently admitted to the medical ward and experiences an abnormal heart rhythm. The doctor on call is consulted and finds that the patient is feeling light-headed but denies any chest pain, sweating, nausea, or palpitations. The patient's vital signs are as follows: pulse rate of 165 beats per minute, respiratory rate of 16 breaths per minute, blood pressure of 165/92 mmHg, body temperature of 37.8 ยบ C, and oxygen saturation of 97% on air.

      Upon reviewing the patient's electrocardiogram (ECG), the doctor on call identifies a polymorphic pattern and recommends treatment with magnesium sulfate to prevent the patient from going into ventricular fibrillation. The doctor also notes that the patient's previous ECG showed QT prolongation, which was missed by the intern doctor. The patient has a medical history of type 2 diabetes mellitus, hypertension, heart failure, and chronic kidney disease.

      What electrolyte abnormality is most likely responsible for this patient's abnormal heart rhythm?

      Your Answer: Hypocalcemia

      Explanation:

      Torsades to pointes, a type of polymorphic ventricular tachycardia, can be a fatal arrhythmia that is often characterized by a shifting sinusoidal waveform on an ECG. This condition is associated with hypocalcemia, which can lead to QT interval prolongation. On the other hand, hypercalcemia is associated with QT interval shortening and may also cause a prolonged QRS interval.

      Hyponatremia and hypernatremia typically do not result in ECG changes, but can cause various symptoms such as confusion, weakness, and seizures. Hyperkalemia, another life-threatening electrolyte imbalance, often causes tall tented T waves, small p waves, and a wide QRS interval on an ECG. Hypokalemia, on the other hand, can lead to QT interval prolongation and increase the risk of Torsades to pointes.

      Physicians should be aware that hypercalcemia may indicate the presence of primary hyperparathyroidism or malignancy, and should investigate further for any signs of cancer in affected patients.

      Long QT syndrome (LQTS) is a genetic condition that causes a delay in the ventricles’ repolarization. This delay can lead to ventricular tachycardia/torsade de pointes, which can cause sudden death or collapse. The most common types of LQTS are LQT1 and LQT2, which are caused by defects in the alpha subunit of the slow delayed rectifier potassium channel. A normal corrected QT interval is less than 430 ms in males and 450 ms in females.

      There are various causes of a prolonged QT interval, including congenital factors, drugs, and other conditions. Congenital factors include Jervell-Lange-Nielsen syndrome and Romano-Ward syndrome. Drugs that can cause a prolonged QT interval include amiodarone, sotalol, tricyclic antidepressants, and selective serotonin reuptake inhibitors. Other factors that can cause a prolonged QT interval include electrolyte imbalances, acute myocardial infarction, myocarditis, hypothermia, and subarachnoid hemorrhage.

      LQTS may be detected on a routine ECG or through family screening. Long QT1 is usually associated with exertional syncope, while Long QT2 is often associated with syncope following emotional stress, exercise, or auditory stimuli. Long QT3 events often occur at night or at rest and can lead to sudden cardiac death.

      Management of LQTS involves avoiding drugs that prolong the QT interval and other precipitants if appropriate. Beta-blockers are often used, and implantable cardioverter defibrillators may be necessary in high-risk cases. It is important to note that sotalol may exacerbate LQTS.

    • This question is part of the following fields:

      • Cardiovascular System
      102
      Seconds
  • Question 10 - You are asked to evaluate a 5-day old cyanotic infant named Benjamin. Benjamin...

    Incorrect

    • You are asked to evaluate a 5-day old cyanotic infant named Benjamin. Benjamin has had a chest x-ray which shows a heart appearance described as 'egg-on-side'. What is the probable underlying diagnosis?

      Your Answer: Ventricular septal defect

      Correct Answer: Transposition of the great arteries

      Explanation:

      The ‘egg-on-side’ appearance on x-rays is a characteristic finding of transposition of the great arteries, which is one of the causes of cyanotic heart disease along with tetralogy of Fallot. While the age of the patient can help distinguish between the two conditions, the x-ray provides a clue for diagnosis. Patent ductus arteriosus, coarctation of the aorta, and ventricular septal defect do not typically present with cyanosis.

      Understanding Transposition of the Great Arteries

      Transposition of the great arteries (TGA) is a type of congenital heart disease that results in cyanosis. This condition occurs when the aorticopulmonary septum fails to spiral during septation, causing the aorta to leave the right ventricle and the pulmonary trunk to leave the left ventricle. Infants born to diabetic mothers are at a higher risk of developing TGA.

      The clinical features of TGA include cyanosis, tachypnea, a loud single S2, and a prominent right ventricular impulse. Chest x-rays may show an egg-on-side appearance. To manage TGA, prostaglandins can be used to maintain the ductus arteriosus. However, surgical correction is the definitive treatment for this condition.

    • This question is part of the following fields:

      • Cardiovascular System
      11.4
      Seconds

SESSION STATS - PERFORMANCE PER SPECIALTY

Cardiovascular System (5/10) 50%
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