Past Paper · 2017A

2017 First Sitting

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Outline the anatomy and physiology of the parasympathetic nervous system.

Other appearances: 2014B Q04 · 2025B Q14

Examiner comments

2017A 01: 0% of candidates passed this question. Generally there was a lack of detailed knowledge, incorrect facts and at times confusion between the sympathetic and parasympathetic nervous system functions. A lack of anatomical detail was common (the origin of preganglionic cell bodies was not described clearly, and parasympathetic ganglia were not often named and located). It was expected an answer would mention the central role of Acetylcholine as a neurotransmitter at preganglionic and post ganglionic neurons in the parasympathetic system. Target organs were identified correctly but the exact action was not specified e.g. pupillary constriction vs. dilatation, GI sphincter/bladder - contraction vs. relaxation. Detail concerning receptor physiology was not required. This is a question covering a core topic that no candidate passed. An overview of the arrangement and function of the autonomic nervous system is provided in several core physiology texts, including Ganong and Guyton.

Outline the components of dietary fat (20% of marks). Describe their possible metabolic fates (80% of marks)

Examiner comments

2017A 02: 21% of candidates passed this question. Almost all candidates interpreted "metabolic fate" to mean absorption, digestion and transport of fat. Hence a lot of time was spent on this and little on the fate of fat once it enters the blood stream. The processes of neither beta oxidation, nor lipogenesis were not well understood. Ketone body production was better understood.

Classify and describe the mechanisms of drug interactions with examples.

Other appearances: 2015A Q09 · 2021B Q15

Examiner comments

2017A 03: 44% of candidates passed this question. Candidates with a well organised answer scored highly. A list of drug interactions was not sufficient to pass, as the question asked to 'describe' the mechanism of drug interactions. Some candidates described the interaction but did not give examples. Common mistakes included using incorrect examples for a particular mechanism and describing the mechanism of action of drugs instead of drug interactions.

Describe the Endocrine functions of the kidney.

Examiner comments

2017A 04: 39% of candidates passed this question. It was expected that candidates would discuss the major hormones produced (or activated) by the kidney. These included erythropoeitin, renin and calcitriol. Good answers included the following: the area where the hormone is produced or modified; stimuli for release; factors which inhibit release; and the subsequent actions / effects. Marks were not awarded for hormones that act on the kidney.

Describe the regulation of plasma calcium concentration.

Other appearances: 2008A Q07 · 2016B Q01 · 2026A Q14

Examiner comments

2017A 05: 51% of candidates passed this question. High scoring answers discussed the three major hormones involved in calcium regulation - parathyroid hormone, vitamin D and calcitonin. For each of these it was expected that candidates include: site of production, stimulus for release, inhibitory factors and actions. In the case of renin it was expected that candidates also include the actions of angiotensin and aldosterone. Very few answers discussed inhibitory factors or negative feedback loops.

Statistics (not in current primary syllabus)

No CICMWrecks answer yet. Open canonical question

Compare and contrast the systemic circulation with the pulmonary circulation.

Examiner comments

2017A 07: 26% of candidates passed this question. This question encompasses a wide area of cardiovascular physiology. As a compare and contrast question this question was well answered by candidates who used a table with relevant headings. Comprehensive answers included: anatomy, blood volume, blood flow, blood pressure, circulatory resistance, circulatory regulation, regional distribution of blood flow, response to hypoxia, gas exchange function, metabolic and synthetic functions, role in acid base homeostasis and filter and reservoir functions. A frequent cause for missing marks was writing about each circulation separately but comparing. For example: many candidates stated 'hypoxic pulmonary vasoconstriction', but did not contrast this to 'hypoxic vasodilation' for the systemic circulation. Frequently functions of the circulations were limited to gas transport / exchange

Describe the physiological consequences of decreasing the functional residual capacity (FRC) in an adult by 1 litre.

Other appearances: 2010B Q15

Examiner comments

2017A 08: 70% of candidates passed this question. High scoring answers began with a definition and normal values, followed by a detailed list of the consequences of decreasing the FRC. Some candidates included descriptions of the normal function of FRC, conditions that decrease FRC and ways of improving reduced FRC. These were not required and did not attract marks. Diagrams require correctly labelled axes, values & units.

Outline how the following tests assess coagulation: a. Prothombin Time (PT) b. Activated Partial Thromboplastin Time (APTT) c. Activated Clotting Time (ACT) d. Thromboelastography (TEG or ROTEM)

Other appearances: 2014B Q08

Examiner comments

2017A 09: 61% of candidates passed this question. Many candidates incorrectly stated that the PT assessed the intrinsic system and that the APTT assessed the extrinsic system. This led to subsequent errors in relating a coagulation test to the appropriate coagulation factors that it assessed. Some candidates produced elaborate diagrams of the coagulation cascade in isolation without relating it to the question.

Describe the pharmacology of hydrocortisone.

Other appearances: 2020B Q03

Outline the anatomical relations of the trachea relevant to performing a percutaneous tracheostomy.

Other appearances: 2009A Q08 · 2012A Q10 · 2018B Q01

Examiner comments

2017A 11: 44% of candidates passed this question. Many candidates described how to perform a tracheostomy or the structure of the trachea rather than the relevant anatomical relations. It was expected that answers include anterior, posterior and lateral relations at the correct tracheal level including relevant vascular structures.

Describe the pharmacology of oxycodone.

Other appearances: 2021A Q12

Outline the anatomy relevant to the insertion of a Dorsalis Pedis arterial cannula (50% of marks). Explain the differences between blood pressure measurement at this site compared to measurement at the aortic arch (50% of marks).

Examiner comments

2017A 13: 30% of candidates passed this question. The anatomy component of answers frequently lacked required detail. Many candidates listed the observed differences in the waveforms however an explanation for these differences was required.

Define respiratory compliance (20% of marks). Describe the factors that affect it (80% of marks).

Other appearances: 2007B Q13 · 2019B Q17 · 2011B Q07 · 2014A Q15 · 2022A Q03

Examiner comments

2017A 14: 54% of candidates passed this question. This question was generally well answered with good structure.

Outline the cardiovascular changes associated with morbid obesity.

Other appearances: 2025B Q12

Examiner comments

2017A 15: 42% of candidates passed this question. Many candidates did not include enough detail in their answers. Higher scoring answers included more depth such as the following: blood volume, left ventricular changes, arterial blood pressure, pulmonary artery pressures, risks of ischaemia, arrhythmias etc.

List the potential problems resulting from blood transfusion and methods used to minimise them.

Other appearances: 2020A Q03 · 2013B Q13 · 2025B Q06 · 2026A Q06

Examiner comments

2017A 16: 53% of candidates passed this question. This question required a broad answer. It was generally well answered. Those candidates who scored well had a good structure to their answers e.g. grouping potential electrolyte disturbances together, and infectious risks together etc. and including methods used to minimise these risks in appropriate detail.

Compare and contrast the pharmacology of phenytoin and levetiracetam.

Other appearances: 2014B Q02

Outline the functional anatomy of the kidneys (40% of marks). Outline the regulation of renal blood flow (60% of marks).

Other appearances: 2019A Q04

Examiner comments

2017A 18: 67% of candidates passed this question. Candidates who scored well weighted their answers according to the marks allocation outlined in the question and adopted a good structure. A number of candidates confused the roles of tubuloglomerular feedback and the renin angiotensin aldosterone pathway.

Define mixed venous PO2 (20% of marks). Outline the factors that affect this value (80% of marks).

Other appearances: 2008A Q10 · 2021B Q13

Examiner comments

2017A 19: 37% of candidates passed this question. This question was in two parts – the first part was worth 20% and candidates were expected to provide a definition of mixed venous blood as well as the partial pressure of oxygen in mixed venous blood (including normal range). Good answers also provided the varying PO2 from different tissue beds that make up mixed venous blood, where the ‘mixing’ occurs (the right ventricle) and where it is sampled (pulmonary artery). For the second part of the question, worth 80% of the marks, good answers included the relationship between mixed venous PO2 and mixed venous O2 content (including the shape and position of the HbO2 dissociation curve); the variables encompassed in the modified Fick equation; arterial oxygen content and its determinants; oxygen consumption (VO2); and cardiac output (CO). Including an outline of how each affects the value of mixed venous PO2. A number of candidates wrote about mixed venous oxygen saturation. Other common errors were: missing a number of key factors that affect PO2; and using an incorrect form and/or content of the modified Fick equation.

Describe the pharmacology of vasopressin (70% of marks) and its analogues (30% of marks).

Other appearances: 2013A Q22

Explain the potential causes of a difference between the measured end tidal CO2 and the arterial partial pressure of CO2.

Other appearances: 2007B Q24 · 2009A Q09 · 2018B Q03

Examiner comments

2017A 21: 30% of candidates passed this question. Many candidates didn’t distinguish between the different types of dead space. In general this topic was not well understood.

Outline the functions of the liver

Other appearances: 2009B Q23 · 2017B Q20 · 2013B Q04 · 2025B Q15

Examiner comments

2017A 22: 56% of candidates passed this question. Most candidates attempted a structure however did not expand the answers within the categories: e.g. a passing mention of glucose homeostasis is insufficient to score full marks for the carbohydrate metabolism category.

Draw and label a left ventricular pressure volume loop in a normal adult (40% of marks). List the information that can be obtained from this loop (60% of marks).

Other appearances: 2008A Q24

Examiner comments

2017A 23: 65% of candidates passed this question. Many candidates lost marks for poor quality diagrams with inaccurate labelling. An accurate diagram was required. Many answers lacked sufficient detail regarding contractility and afterload.

Outline the physiology of cerebral spinal fluid (CSF)

Other appearances: 2007B Q22 · 2015A Q16 · 2017B Q09 · 2020A Q16 · 2008B Q06 · 2018B Q15 · 2023A Q12

Examiner comments

2017A 24: 67% of candidates passed this question. Better answers included details on CSF production (amount, site), reabsorption and factors which influences CSF and its circulation. VIVAs A. Pharmaceutics B. Pharmacokinetics C. Pharmacodynamics D. Variability in Drug Response E. Cellular Physiology F. Respiratory physiological reasons for an increased respiratory rate and the mechanism understanding of the gas laws understanding of lung volumes CO2, Capnograph Oxygen cascade G. CVS myocardial performance, lusitropy and blood pressure regulation. cardiac physiology and measurement, cardiac conduction pathway diagram cardiovascular response to a rapid and sudden loss of 1000 mls of blood? CVP anatomy and physio. H. Renal physiological causes of polyuria I. Body Fluids and Electrolytes J. Acid Base acid/base physiology, H-h equation K. Neuro cerebral perfusion, its control and measurement pharmacology of propofol and ketamine L. Musculoskeletal NMJ, NM blockers M. ANS N. Liver O. GIT P. Nutrition and Metabolism Q. Haematology knowledge of blood groups and coagulation R. Thermoregulation S. Immunology T. Microbiology classification of bacteria. U. Endocrine V. Obstetrics W. Measurement and Monitoring X. Procedures