20-Bio-A6 Biomedical Signal Processing · Undated paper
Nivaar worked solution (AI-drafted; not reviewed by a licensed engineer)
National Exams May 2019 — 04-Bio-A6, 3 hours, closed book (one of two calculators permitted — any Casio or Sharp approved model). Six questions are printed; the first five as they appear in the answer book are marked, each of equal value; most require an essay-format answer. All six are answered here.
Reference texts: Guyton & Hall, Textbook of Medical Physiology (13th ed.); Junqueira & Mescher, Basic Histology: Text and Atlas (14th ed.); Robbins & Cotran, Pathologic Basis of Disease (9th ed., for the Q2 autopsy case).
Question text not reproduced: the examination questions are © Engineers and Geoscientists BC. Open the official past paper (linked at the top of this page) to read the question, then follow the worked solution below.
Each kidney is organised into an outer cortex and inner medulla, the medulla arranged as 8–18 renal pyramids whose papillae drain into minor, then major, calyces and the renal pelvis, which narrows into the ureter. The functional unit is the nephron (≈1–1.3 million per kidney): a glomerulus (a tuft of fenestrated capillaries) invaginated into Bowman’s capsule, filtering plasma into the tubule — proximal convoluted tubule → loop of Henle (descending thin limb, ascending thin/thick limb) → distal convoluted tubule → collecting duct. Blood enters each glomerulus via an afferent arteriole and leaves via an efferent arteriole (the only capillary bed in the body fed and drained by arterioles, letting the kidney control glomerular pressure independently of downstream pressure); the efferent arteriole then supplies a second capillary bed, the peritubular capillaries (and, for juxtamedullary nephrons, the vasa recta running alongside the loop of Henle) that reabsorb tubular fluid. Where the thick ascending limb passes back between its own afferent and efferent arterioles, specialised macula densa cells and juxtaglomerular (granular) cells of the afferent arteriole form the juxtaglomerular apparatus, the sensor/effector unit for tubuloglomerular feedback and renin release.
Given.
| Quantity | Value |
|---|---|
| Plasma glucose concentration, $P_{glu}$ | 10 mg/mL |
| GFR (via inulin clearance) | 125 mL/min |
| Urine flow rate, $\dot V_{urine}$ | 10 mL/min |
| Glucose transport maximum, $T_m$ | 400 mg/min |
Find. Filtered load of glucose, rate of tubular reabsorption, rate of excretion, and glucose concentration in the urine.
Approach. Glucose is freely filtered at the glomerulus (filtered load $= \text{GFR}\times P_{glu}$) and then actively reabsorbed by a carrier-mediated transporter with a finite capacity $T_m$; whatever is filtered but exceeds $T_m$ cannot be reabsorbed and is excreted, and the excreted mass rate divided by urine flow gives the urine concentration.
| Quantity | Value |
|---|---|
| Filtered load of glucose | 1250 mg/min |
| Rate of glucose reabsorption (Tm-limited) | 400 mg/min |
| Rate of glucose excretion | 850 mg/min |
| Glucose concentration in urine | 85 mg/mL |