Paediatric Nephrology. Teaching website .

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Paediatric Nephrology

Transcript of Paediatric Nephrology. Teaching website .

Page 1: Paediatric Nephrology. Teaching website .

Paediatric Nephrology

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Teaching website

http://paedstudent.cardiff.ac.uk

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UTI – cumulative incidence

Boys Girls

By 2 years 2.2% 2.1%

By 7 years 2.8% 8.2%

By 16 years 3.6% 11.3%

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When to suspect a UTI

Infants Pyrexia (>38.5oC) Poor feeding Vomiting Abdominal discomfort Febrile seizure

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When to suspect a UTI (2)

Older children Frequency Dysuria Wetting Abdominal pain Pyrexia

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Diagnosis

Collect a urine specimen MSU Clean catch specimen Bag specimen Catheter specimen Suprapubic aspirate Pad specimen

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Leucocyte esterase

Identifies presence of white blood cells

High sensitivity for UTI but low specificity

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Nitrite test

Reliable sign of infection when positive

BUT high false negative rate Urine has to have been in the bladder

for at least an hour.This lowers the false negative rate.

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Use of both nitrite & leucocyte esterase tests

Sensitivity 95%

Specificity 69%

Positive predictive value 37%

Negative predictive value 98%

Has not replaced urine culture in patients suspectedof having a UTI.

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What do you do with the urine?

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Aims of treatment

Prevention of renal scarring Achieved through prompt initiation of

antibiotic therapy, particularly in those groups at highest risk Infants Children with vesicoureteric reflux

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Ultrasound - Normal

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Ultrasound - Hydronephrosis

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Ultrasound - Scarring

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DMSA scan - normal

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DMSA - scarring

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DMSA - scarring

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MCUG - normal

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MCUG - normal

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MCUG – R sided grade II VUR

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MCUG – Bilateral VUR

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MCUG – Bilateral VUR

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Management of VUR

Antibiotic prophylaxis until 4 -5 years old

Surgery if continue to get UTIs Reimplantation Injection of Deflux

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IMPORTANT MESSAGE

Only do an investigation if the result will potentially alter your management of the patient.

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Any questions?

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Nephrotic syndrome

Triad of: Heavy proteinuria Hypoalbuminaemia Oedema

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Normal glomerulus (em)

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EM showing foot process fusion

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Interstitial fluid

Ph - Hydrostatic pressure

Po - Oncotic pressure

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Mechanisms of oedema formation (2)

Increased hydrostatic pressure Hypervolaemia Increased venous pressure

Reduced oncotic pressure Hypoalbuminaemia

Increased capillary permeability Sepsis

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Complications

Oedema Hypovolaemia

Cool peripheries Prolonged capillary refill time Abdominal pain Increased blood pressure

Infection Hypogammaglobulinaemia

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Complications (2)

Hypercoaguable state Raised haematocrit Loss of anti-thrombin III

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VQ scan in nephrotic patient

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Complications (2)

Hypercoaguable state Raised haematocrit Loss of anti-thrombin III

Hyperlipidaemia Hypothyroidism

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Treatment

Lots of steroids

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Any questions?

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Red cell cast

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Tubules filled with red blood cells – source of red cell casts

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Dysmorphic red blood cells – Indicates they have had to squeeze through the glomerular basement membrane

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Causative organism - Streptococcus

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Resultant infections

Impetigo Tonsillitis

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Complement

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Normal glomerulus

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Glomerulus showing a proliferative nephritis – note the increased number of nuclei seen

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Higher magnification

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Immunofluorescent staining for C3

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By electron microscopy, the immune deposits of post-infectious glomerulonephritis are predominantly subepithelial, as seen below, with electron dense subepithelial "humps" above the basement membrane and below the epithelial cell. The capillary lumen is filled with a leukocyte demonstrating cytoplasmic granules.

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Features of acute nephritis

Haematuria Proteinuria Oliguria Hypertension Oedema Renal impairment

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Assessment of renal function Glomerular filtration rate (GFR)

mls/min Number of mls of blood cleared of a

freely filtered substance each minute. Correct for body surface area

– mls/min/1.73m2

Creatinine clearance GFR 1 / serum creatinine

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Creatinine clearance Fact

If serum [creatinine] is constant, the rate of production of creatinine must equal its excretion.

If serum [Cr] = 100 µmol/l andUrine [Cr] = 10 mmol/l andUrine production = 60 ml/hrWhat is the rate of creatinine production?What is the creatinine clearance?

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Creatinine production

Urine [Cr] = 10 mmol/l Urine production = 60 ml/hr

Creatinine excretion =

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Creatinine production

Urine [Cr] = 10 mmol/l Urine production = 60 ml/hr

Creatinine excretion =

10 x 0.06 = 0.6 mmol/h = 600 µmol/h

= 10 µmol/min

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Creatinine clearance

Serum [Cr] = 100 µmol/l Creatinine excretion = 10 µmol/min

Creatinine clearance =

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Creatinine clearance

Serum [Cr] = 100 µmol/l Creatinine excretion = 10 µmol/min

Creatinine clearance =

10 ÷ 100 = 0.1 l/min = 100 ml/min

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Renal impairment

What is the creatinine clearance if the serum [Cr] rises to 200 µmol/l?

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Renal impairment

Serum [Cr] = 200 µmol/lCreatinine excretion =

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Renal impairment

Serum [Cr] = 200 µmol/lCreatinine excretion = 10 µmol/min

Creatinine clearance =

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Renal impairment

Serum [Cr] = 200 µmol/lCreatinine excretion = 10 µmol/min

Creatinine clearance =

10 ÷ 200 = 0.05 l/min = 50 ml/min