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  • Question 1 - A 26-year-old male smoker presents to the vascular clinic with complaints of pain...

    Incorrect

    • A 26-year-old male smoker presents to the vascular clinic with complaints of pain and claudication in both legs. Upon examination, the patient exhibits poor pedal pulses, loss of leg hair, and a necrotic ulcer at the base of his 5th toe. An angiogram reveals corkscrew vessels in the vasa vasorum, which are responsible for supplying blood to the larger blood vessels in the legs.

      Where in the wall of the blood vessel are these corkscrew vessels typically located?

      Your Answer: Elastin layer

      Correct Answer: Tunica adventitia

      Explanation:

      Vasa vasorum are vessels found in the outermost layer of the blood vessel wall known as the tunica adventitia. They are the hallmark of Buerger’s disease, which presents with corkscrew vessels and can lead to amputation. The other answers do not contain the vasa vasorum.

      Artery Histology: Layers of Blood Vessel Walls

      The wall of a blood vessel is composed of three layers: the tunica intima, tunica media, and tunica adventitia. The innermost layer, the tunica intima, is made up of endothelial cells that are separated by gap junctions. The middle layer, the tunica media, contains smooth muscle cells and is separated from the intima by the internal elastic lamina and from the adventitia by the external elastic lamina. The outermost layer, the tunica adventitia, contains the vasa vasorum, fibroblast, and collagen. This layer is responsible for providing support and protection to the blood vessel. The vasa vasorum are small blood vessels that supply oxygen and nutrients to the larger blood vessels. The fibroblast and collagen provide structural support to the vessel wall. Understanding the histology of arteries is important in diagnosing and treating various cardiovascular diseases.

    • This question is part of the following fields:

      • Cardiovascular System
      23.9
      Seconds
  • Question 2 - A 45-year-old patient visits his GP with complaints of fatigue and weight loss....

    Correct

    • A 45-year-old patient visits his GP with complaints of fatigue and weight loss. He reports pain in his right shoulder area and tingling sensations in his fourth and fifth fingers on the right hand. Upon diagnosis, it is revealed that he has an apical lung tumor that is pressing on the C8-T1 nerve roots of the brachial plexus. Which nerve in the upper limb is primarily affected?

      Your Answer: Ulnar nerve

      Explanation:

      The pressure applied by the tumour on the inferior roots of the brachial plexus (C8-T1) explains the pain in the shoulder region, as the ulnar nerve, which innervates the palmar surface of the fifth digit and medial part of the fourth digit, originates from these roots.

      The axillary nerve’s cutaneous branches supply the skin surrounding the inferior part of the deltoid muscle around the shoulder joint.

      The lateral cutaneous nerve of the forearm is the only sensory branch of the musculoskeletal nerve and innervates the lateral aspect of the forearm.

      Although the radial nerve has the most extensive cutaneous innervation of the nerves in the upper limb, it does not supply the palmar surface of the hand but rather its dorsal side.

      The median nerve supplies the lateral part of the palm and the palmar surface of the three most lateral fingers, and is partially comprised of the C8-T1 roots of the brachial plexus. Therefore, altered sensations of the thumb or index finger would be more typical of median nerve impairment than the fourth or fifth digits.

      The ulnar nerve originates from the medial cord of the brachial plexus, specifically from the C8 and T1 nerve roots. It provides motor innervation to various muscles in the hand, including the medial two lumbricals, adductor pollicis, interossei, hypothenar muscles (abductor digiti minimi, flexor digiti minimi), and flexor carpi ulnaris. Sensory innervation is also provided to the medial 1 1/2 fingers on both the palmar and dorsal aspects. The nerve travels through the posteromedial aspect of the upper arm and enters the palm of the hand via Guyon’s canal, which is located superficial to the flexor retinaculum and lateral to the pisiform bone.

      The ulnar nerve has several branches that supply different muscles and areas of the hand. The muscular branch provides innervation to the flexor carpi ulnaris and the medial half of the flexor digitorum profundus. The palmar cutaneous branch arises near the middle of the forearm and supplies the skin on the medial part of the palm, while the dorsal cutaneous branch supplies the dorsal surface of the medial part of the hand. The superficial branch provides cutaneous fibers to the anterior surfaces of the medial one and one-half digits, and the deep branch supplies the hypothenar muscles, all the interosseous muscles, the third and fourth lumbricals, the adductor pollicis, and the medial head of the flexor pollicis brevis.

      Damage to the ulnar nerve at the wrist can result in a claw hand deformity, where there is hyperextension of the metacarpophalangeal joints and flexion at the distal and proximal interphalangeal joints of the 4th and 5th digits. There may also be wasting and paralysis of intrinsic hand muscles (except for the lateral two lumbricals), hypothenar muscles, and sensory loss to the medial 1 1/2 fingers on both the palmar and dorsal aspects. Damage to the nerve at the elbow can result in similar symptoms, but with the addition of radial deviation of the wrist. It is important to diagnose and treat ulnar nerve damage promptly to prevent long-term complications.

    • This question is part of the following fields:

      • Neurological System
      30.7
      Seconds
  • Question 3 - A 58-year-old female patient with chronic rheumatoid arthritis visits her GP complaining of...

    Incorrect

    • A 58-year-old female patient with chronic rheumatoid arthritis visits her GP complaining of symptoms related to keratoconjunctivitis sicca. What is a straightforward test that can be performed to confirm this diagnosis?

      Your Answer: Schober's test

      Correct Answer: Schirmer's test

      Explanation:

      Secondary Sjögren’s Syndrome in Rheumatological Patients

      It is not uncommon for patients with rheumatological disease to develop secondary Sjögren’s syndrome, which is also known as keratoconjunctivitis sicca. This condition is characterized by a reduction in secretions, particularly in the salivary and lacrimal glands. One of the diagnostic tests used to identify this condition is the Schirmer’s test. This test is a simple procedure that measures the production of tears in the eyes. During the test, a strip of paper is placed under the eyelid of the patient, and after five minutes, the amount of moistness on the paper is measured. If the moistness is less than 5 mm, it is suggestive of Sjögren’s syndrome.

      Overall, secondary Sjögren’s syndrome is a common condition that can occur in patients with rheumatological disease. The Schirmer’s test is a simple and effective way to diagnose this condition, and it can help healthcare professionals provide appropriate treatment to patients.

    • This question is part of the following fields:

      • Rheumatology
      29.5
      Seconds
  • Question 4 - A 39-year-old man comes to the emergency department with his wife who reports...

    Correct

    • A 39-year-old man comes to the emergency department with his wife who reports that he is exhibiting unusual behavior. According to her, he has been experiencing a progressively severe headache for the past three days. He vomited once this morning, and there is no history of head injury. Bilateral papilloedema is present on ophthalmoscopy. Although he scores a GCS of 15, his speech is sometimes slurred and confused. A CT scan of the head reveals a mass on the right side, near the midline in the anterior parietal lobe. The lateral and third ventricles are significantly dilated, indicating a blockage in the flow of cerebrospinal fluid (CSF). What structure does CSF from the third ventricle typically flow into the fourth ventricle through?

      Your Answer: Cerebral aqueduct

      Explanation:

      The cerebral aqueduct is the correct answer.

      The interventricular foramina allow the two lateral ventricles to drain into the third ventricle, which is located in the midline between the thalami of the two hemispheres. The third ventricle communicates with the fourth ventricle via the cerebral aqueduct (of Sylvius).

      CSF flows from the third ventricle into the fourth ventricle through the cerebral aqueduct (of Sylvius). From the fourth ventricle, CSF can leave through one of four openings: the median aperture (foramen of Magendie), either of the two lateral apertures (foramina of Luschka), or the central canal at the obex.

      The patient in the question is showing symptoms of raised intracranial pressure, which can be caused by various factors, including mass lesions and neoplasms. In this case, a mass is blocking the normal flow of CSF through the ventricular system, leading to an increase in intracranial pressure.

      Cerebrospinal Fluid: Circulation and Composition

      Cerebrospinal fluid (CSF) is a clear, colorless liquid that fills the space between the arachnoid mater and pia mater, covering the surface of the brain. The total volume of CSF in the brain is approximately 150ml, and it is produced by the ependymal cells in the choroid plexus or blood vessels. The majority of CSF is produced by the choroid plexus, accounting for 70% of the total volume. The remaining 30% is produced by blood vessels. The CSF is reabsorbed via the arachnoid granulations, which project into the venous sinuses.

      The circulation of CSF starts from the lateral ventricles, which are connected to the third ventricle via the foramen of Munro. From the third ventricle, the CSF flows through the cerebral aqueduct (aqueduct of Sylvius) to reach the fourth ventricle via the foramina of Magendie and Luschka. The CSF then enters the subarachnoid space, where it circulates around the brain and spinal cord. Finally, the CSF is reabsorbed into the venous system via arachnoid granulations into the superior sagittal sinus.

      The composition of CSF is essential for its proper functioning. The glucose level in CSF is between 50-80 mg/dl, while the protein level is between 15-40 mg/dl. Red blood cells are not present in CSF, and the white blood cell count is usually less than 3 cells/mm3. Understanding the circulation and composition of CSF is crucial for diagnosing and treating various neurological disorders.

    • This question is part of the following fields:

      • Neurological System
      33.7
      Seconds
  • Question 5 - A physician informs a recently pregnant woman about the typical physiological alterations that...

    Incorrect

    • A physician informs a recently pregnant woman about the typical physiological alterations that occur during pregnancy. He clarifies that her cardiac output will rise. What is the primary cause of this?

      Your Answer: Increased heart rate

      Correct Answer: Increased stroke volume

      Explanation:

      During pregnancy, the main contributor to the increased cardiac output is the increased stroke volume, which is caused by the activation of the renin-angiotensin system and the subsequent increase in plasma volume. Although the heart rate also increases slightly, it is not as significant as the increase in stroke volume. Therefore, the major contributor to the increased cardiac output is the stroke volume.

      The statements ‘decreased heart rate’ and ‘increased peripheral resistance’ are incorrect. In fact, peripheral resistance decreases due to progesterone, which contributes to the normal decrease in blood pressure during pregnancy. Peripheral resistance is more concerned with blood pressure.

      Pregnancy also causes various physiological changes, including increased uterine size, cervical ectropion, reduced cervical collagen, and increased vaginal discharge. Cardiovascular and haemodynamic changes include increased plasma volume, anaemia, increased white cell count, platelets, ESR, cholesterol, and fibrinogen, as well as decreased albumin, urea, and creatinine. Progesterone-related effects, such as muscle relaxation, can cause decreased blood pressure, constipation, ureteral dilation, bladder relaxation, biliary stasis, and increased tidal volume.

      During pregnancy, a woman’s body undergoes various physiological changes. The cardiovascular system experiences an increase in stroke volume, heart rate, and cardiac output, while systolic blood pressure remains unchanged and diastolic blood pressure decreases in the first and second trimesters before returning to normal levels by term. The enlarged uterus may cause issues with venous return, leading to ankle swelling, supine hypotension, and varicose veins.

      The respiratory system sees an increase in pulmonary ventilation and tidal volume, with oxygen requirements only increasing by 20%. This can lead to a sense of dyspnea due to over-breathing and a fall in pCO2. The basal metabolic rate also increases, potentially due to increased thyroxine and adrenocortical hormones.

      Maternal blood volume increases by 30%, with red blood cells increasing by 20% and plasma increasing by 50%, leading to a decrease in hemoglobin levels. Coagulant activity increases slightly, while fibrinolytic activity decreases. Platelet count falls, and white blood cell count and erythrocyte sedimentation rate rise.

      The urinary system experiences an increase in blood flow and glomerular filtration rate, with elevated sex steroid levels leading to increased salt and water reabsorption and urinary protein losses. Trace glycosuria may also occur.

      Calcium requirements increase during pregnancy, with gut absorption increasing substantially due to increased 1,25 dihydroxy vitamin D. Serum levels of calcium and phosphate may fall, but ionized calcium levels remain stable. The liver experiences an increase in alkaline phosphatase and a decrease in albumin levels.

      The uterus undergoes significant changes, increasing in weight from 100g to 1100g and transitioning from hyperplasia to hypertrophy. Cervical ectropion and discharge may increase, and Braxton-Hicks contractions may occur in late pregnancy. Retroversion may lead to retention in the first trimester but usually self-corrects.

    • This question is part of the following fields:

      • Reproductive System
      31.8
      Seconds
  • Question 6 - A 56-year-old woman comes to you complaining of severe body aches and pains...

    Correct

    • A 56-year-old woman comes to you complaining of severe body aches and pains that have been ongoing for the past 2 weeks. She has been taking atorvastatin for the last 5 years and is aware of its potential side effects, but insists that she has never experienced anything like this before.

      Upon examination, her CK levels are found to be above 3000 U/L. Reviewing her medical records, it is noted that she had a medication review with her cardiologist just 2 weeks ago.

      What could be the possible cause of her current symptoms?

      Your Answer: The cardiologist started her on amiodarone

      Explanation:

      The patient’s symptoms and elevated CK levels suggest that she may have rhabdomyolysis, which is a known risk associated with taking statins while also taking amiodarone. It is likely that her cardiologist prescribed amiodarone. To reduce her risk of statin-induced rhabdomyolysis, her atorvastatin dosage should be lowered.

      It is important to note that digoxin and beta-blockers do not increase the risk of statin-induced rhabdomyolysis, and there is no association between laxatives and this condition.

      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
      65.4
      Seconds
  • Question 7 - A 35-year-old man has been referred to the neurology department due to experiencing...

    Correct

    • A 35-year-old man has been referred to the neurology department due to experiencing episodes of visual obstruction with flashes and strange shapes floating over his vision, accompanied by eyelid fluttering. He remains conscious during these episodes. Which brain region is likely to be affected?

      Your Answer: Occipital lobe

      Explanation:

      Occipital lobe seizures can cause visual disturbances such as floaters and flashes. This is because the occipital lobe contains the primary visual cortex and visual association cortex, which receive sensory information from the optic radiations. Other symptoms of occipital lobe seizures may include uncontrolled eye movements and eyelid fluttering. It is important to note that seizures in other areas of the brain, such as the frontal or parietal lobes, may present with different symptoms.

      Localising Features of Focal Seizures in Epilepsy

      Focal seizures in epilepsy can be localised based on the specific location of the brain where they occur. Temporal lobe seizures are common and may occur with or without impairment of consciousness or awareness. Most patients experience an aura, which is typically a rising epigastric sensation, along with psychic or experiential phenomena such as déjà vu or jamais vu. Less commonly, hallucinations may occur, such as auditory, gustatory, or olfactory hallucinations. These seizures typically last around one minute and are often accompanied by automatisms, such as lip smacking, grabbing, or plucking.

      On the other hand, frontal lobe seizures are characterised by motor symptoms such as head or leg movements, posturing, postictal weakness, and Jacksonian march. Parietal lobe seizures, on the other hand, are sensory in nature and may cause paraesthesia. Finally, occipital lobe seizures may cause visual symptoms such as floaters or flashes. By identifying the specific location and type of seizure, doctors can better diagnose and treat epilepsy in patients.

    • This question is part of the following fields:

      • Neurological System
      54
      Seconds
  • Question 8 - What are the root values of the sciatic nerve? ...

    Correct

    • What are the root values of the sciatic nerve?

      Your Answer: L4 to S3

      Explanation:

      The origin of the sciatic nerve is typically from the fourth lumbar vertebrae to the third sacral vertebrae.

      Understanding the Sciatic Nerve

      The sciatic nerve is the largest nerve in the body, formed from the sacral plexus and arising from spinal nerves L4 to S3. It passes through the greater sciatic foramen and emerges beneath the piriformis muscle, running under the cover of the gluteus maximus muscle. The nerve provides cutaneous sensation to the skin of the foot and leg, as well as innervating the posterior thigh muscles and lower leg and foot muscles. Approximately halfway down the posterior thigh, the nerve splits into the tibial and common peroneal nerves. The tibial nerve supplies the flexor muscles, while the common peroneal nerve supplies the extensor and abductor muscles.

      The sciatic nerve also has articular branches for the hip joint and muscular branches in the upper leg, including the semitendinosus, semimembranosus, biceps femoris, and part of the adductor magnus. Cutaneous sensation is provided to the posterior aspect of the thigh via cutaneous nerves, as well as the gluteal region and entire lower leg (except the medial aspect). The nerve terminates at the upper part of the popliteal fossa by dividing into the tibial and peroneal nerves. The nerve to the short head of the biceps femoris comes from the common peroneal part of the sciatic, while the other muscular branches arise from the tibial portion. The tibial nerve goes on to innervate all muscles of the foot except the extensor digitorum brevis, which is innervated by the common peroneal nerve.

    • This question is part of the following fields:

      • Neurological System
      24.6
      Seconds
  • Question 9 - 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: Myoglobin

      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
      52.3
      Seconds
  • Question 10 - A 26-year-old male is in a motorcycle crash and experiences a head injury....

    Incorrect

    • A 26-year-old male is in a motorcycle crash and experiences a head injury. Upon admission to the emergency department, it is determined that neuro-imaging is necessary. A CT scan reveals a haemorrhage resulting from damage to the bridging veins connecting the cortex and cavernous sinuses.

      What classification of haemorrhage does this fall under?

      Your Answer: Subarachnoid haemorrhage

      Correct Answer: Subdural haemorrhage

      Explanation:

      Understanding Subdural Haemorrhage

      Subdural haemorrhage is a condition where blood accumulates beneath the dural layer of the meninges. This type of bleeding is not within the brain tissue and is referred to as an extra-axial or extrinsic lesion. Subdural haematomas can be classified into three types based on their age: acute, subacute, and chronic.

      Acute subdural haematomas are caused by high-impact trauma and are associated with other brain injuries. Symptoms and severity of presentation vary depending on the size of the compressive acute subdural haematoma and the associated injuries. CT imaging is the first-line investigation, and surgical options include monitoring of intracranial pressure and decompressive craniectomy.

      Chronic subdural haematomas, on the other hand, are collections of blood within the subdural space that have been present for weeks to months. They are caused by the rupture of small bridging veins within the subdural space, which leads to slow bleeding. Elderly and alcoholic patients are particularly at risk of subdural haematomas due to brain atrophy and fragile or taut bridging veins. Infants can also experience subdural haematomas due to fragile bridging veins rupturing in shaken baby syndrome.

      Chronic subdural haematomas typically present with a progressive history of confusion, reduced consciousness, or neurological deficit. CT imaging shows a crescentic shape, not restricted by suture lines, and compresses the brain. Unlike acute subdurals, chronic subdurals are hypodense compared to the substance of the brain. Treatment options depend on the size and severity of the haematoma, with conservative management or surgical decompression with burr holes being the main options.

    • This question is part of the following fields:

      • Neurological System
      54.2
      Seconds

SESSION STATS - PERFORMANCE PER SPECIALTY

Cardiovascular System (1/3) 33%
Neurological System (4/5) 80%
Rheumatology (0/1) 0%
Reproductive System (0/1) 0%
Passmed