08

NEPHROLOGY · PERITONEAL DIALYSIS

Chapter 8

Metabolic Cost & Encapsulating

Peritoneal Sclerosis

Orientation & KnowledgeVisualise & MapClinical ReasoningSafety & EvidencePatient DecisionsApply & Test
Chapter Preamble

This preamble records the dynamic decisions the master makes for this chapter.

Signals declared

  • Sig-M mechanistic — glucose handling and membrane injury drive both halves of the chapter.
  • Sig-D diagnostic — it recognises and diagnoses encapsulating peritoneal sclerosis.
  • Sig-T therapeutic — it manages the metabolic burden and treats EPS.
  • Sig-V evidence-dense — EPS risk and the prediction problem rest on cohort evidence.

Levels populated and omitted

  • Twenty levels are built — a mechanism-and-evidence chapter with diagnosis, treatment, absolute-risk, and reflective prompts.
  • Omitted: L15 and L16 — the chapter's decisions (glucose-sparing, EPS treatment) are evidence-driven effective-care; the one values-laden question, elective transfer off PD to lower EPS risk, is framed within risk stratification rather than as a manufactured equipoise stack.
Phase A Orientation & Knowledge
01
Phase A · Level 1

Learning Objectives

The contract between this chapter and the reader.

  1. 1. Quantify the daily glucose load of PD and its metabolic consequences.
  2. 2. Explain how glucose absorption drives weight gain, dyslipidaemia, and worse glycaemia.
  3. 3. Recognise the paradox of glucose calories coexisting with protein-energy wasting.
  4. 4. Apply glucose-sparing strategies to reduce the metabolic burden.
  5. 5. Define encapsulating peritoneal sclerosis and its cocoon pathology.
  6. 6. Identify the risk factors for EPS, with PD duration as the dominant one.
  7. 7. Explain the two-hit pathogenesis linking chronic injury to the encapsulating phase.
  8. 8. Diagnose EPS using clinical features and CT.
  9. 9. Evaluate the management of EPS and the rationale for risk-stratified prevention.
02
Phase A · Level 2

Executive Summary

A sixty-second reading. Each bullet stands alone.

  • PD delivers a continuous glucose load — often in the order of 100 to 300 grams absorbed per day — with a real metabolic cost.
  • That load causes weight gain, dyslipidaemia (especially high triglycerides), and worse glycaemic control.
  • Glucose calories can suppress appetite, so metabolic burden and protein-energy wasting can coexist.
  • Glucose-sparing strategies — icodextrin, amino-acid dialysate, and the lowest effective glucose strength — reduce the burden.
  • Encapsulating peritoneal sclerosis is a rare but often fatal fibrosing cocoon that obstructs the bowel.
  • The dominant risk factor is long PD duration; high glucose exposure, severe or recurrent peritonitis, and fast transport add to it.
  • The two-hit model: chronic membrane injury primes the peritoneum, and a second inflammatory hit — severe peritonitis, stopping PD, or transplantation — triggers encapsulation.
  • EPS often declares itself after PD has stopped or after transplantation.
  • It presents as bowel obstruction with weight loss, sometimes with bloody effluent and ultrafiltration failure.
  • CT is the key test: peritoneal thickening, calcification, bowel tethering, and loculated fluid.
  • No single test reliably predicts EPS; long duration with a declining membrane is the current best signal.
  • Management is to stop PD, support nutrition, give corticosteroids and tamoxifen, and refer obstruction to experienced surgeons.
  • Risk-stratified prevention — glucose-sparing, minimising peritonitis, and considering elective transfer after long duration — is the realistic lever.
03
Phase A · Level 3

Main Narrative

The medical core. An expert should agree the metabolic cost and EPS are fully covered here.

Why it matters at the bedside

Glucose is the engine of peritoneal dialysis and, over years, one of its costs. Day to day it drives a metabolic burden that is easy to overlook; over a long PD life it injures the membrane and, rarely, sets the stage for the most feared complication of all — encapsulating peritoneal sclerosis. Both halves of this chapter trace back to the same molecule.

The glucose load and its metabolic cost

  • A substantial fraction of dialysate glucose is absorbed each day, supplying a steady stream of calories that the patient did not eat. The result is weight gain, an atherogenic rise in triglycerides, and worse glycaemic control — in diabetics and sometimes in those without prior glucose intolerance.
  • Together these feed the metabolic syndrome and add to an already high cardiovascular risk, so the glucose load is treated as a modifiable exposure, not an inert vehicle.

The anorexia–wasting paradox

  • Absorbed glucose blunts appetite. A patient can therefore gain fat from dialysate calories while losing muscle from poor protein intake — metabolic excess and protein-energy wasting at once. Nutrition is monitored on both axes, not by weight alone.

Reducing the metabolic burden

  • Glucose-sparing is the lever: icodextrin replaces the glucose long dwell, amino-acid dialysate substitutes for one exchange and supplies protein, and the glucose strength is kept to the minimum that achieves euvolemia. Matching the dwell to transport (Chapters 1 and 2) wins the same ultrafiltration for less glucose. Lipid and glycaemic management and dietetic input complete the package.

Encapsulating peritoneal sclerosis — what it is

  • EPS is a rare, serious, often fatal complication: progressive intra-abdominal fibrosis forms a fibrocollagenous cocoon that encases and tethers the bowel, producing obstruction. It is the catastrophic end of the membrane-injury spectrum, not a routine transport problem.

Why EPS happens — the two-hit model

  • Years of glucose, glucose-degradation-product, and low-pH exposure denude the mesothelium, drive new vessel growth, and lay down submesothelial fibrosis — the first hit that primes the peritoneum. A second inflammatory trigger — a severe peritonitis episode, stopping PD, or transplantation — then tips the primed membrane into the encapsulating phase.

Who is at risk

  • Long PD duration is the dominant risk factor, with risk rising sharply after several years. High cumulative glucose exposure, severe or recurrent peritonitis, fast or rapidly declining transport, and younger age all add to it. The hits are cumulative, which is why vintage matters so much.

Recognising and diagnosing EPS

  • Suspect EPS when a long-duration PD or ex-PD patient develops bowel-obstruction symptoms, weight loss, malnutrition, bloody effluent, or unexplained ultrafiltration failure. The diagnosis rests on CT — peritoneal thickening, calcification, bowel tethering and cocoon formation, and loculated fluid — supported by inflammatory markers.

The prediction problem

  • There is no single reliable predictor of EPS. The current best signal is long duration combined with a deteriorating membrane — falling ultrafiltration and rising transport over time — but it is neither sensitive nor specific. Predicting who will progress remains an unmet need, and risk is managed by stratification rather than by any one test.

Treating EPS

  • Stop PD and support nutrition, often parenterally. Corticosteroids are used in the inflammatory phase and tamoxifen as an anti-fibrotic adjunct, though the evidence is uncontrolled. Bowel obstruction is referred for surgical enterolysis at an experienced centre, where outcomes are best.

Risk-stratified prevention

  • Because cure is hard, prevention is the realistic goal: glucose-sparing throughout the PD life, minimising peritonitis, and, in long-duration high-risk patients, considering elective transfer off PD before a triggering event. Vigilance is heightened around the known triggers — stopping PD and transplantation.

Evidence base

  • The metabolic cost of glucose absorption is well established. EPS evidence is observational: long duration as the dominant risk factor, CT as the diagnostic standard, and the consistent finding that no biomarker yet predicts it reliably. EPS treatments rest on case series rather than trials, which is why specialist referral and prevention dominate practice.
04
Phase A · Level 4

Reference Tables

Five fully-built tables.

Table A — Metabolic consequences of the glucose load

ConsequenceMechanismMitigation
Weight gain / obesityAbsorbed glucose caloriesGlucose-sparing; dietetics
Dyslipidaemia (high TG)Glucose-driven lipogenesisGlucose-sparing; statin
Worse glycaemiaContinuous glucose absorptionIcodextrin; glycaemic management
Protein-energy wastingAppetite suppression by glucoseMonitor protein intake; amino-acid dialysate
Cardiovascular riskComposite metabolic burdenAddress all of the above

Table B — Glucose-sparing strategies

StrategyHowNote
IcodextrinColloid osmosis for the long dwellReplaces a glucose long dwell
Amino-acid dialysateNon-glucose osmotic agent + proteinOne exchange/day; aids nutrition
Lower glucose strengthUse the minimum for euvolemiaPair with salt/water restriction
Optimise UF efficiencyMatch dwell to transportSame UF for less glucose (Chapters 1–2)

Table C — EPS risk factors

FactorWeight
Long PD duration (vintage)Dominant; rises sharply after several years
High cumulative glucose exposureContributory
Severe / recurrent peritonitisContributory; a potential second hit
Fast or rapidly declining transportMarker of membrane injury
Younger ageAssociated
Stopping PD / transplantationCommon trigger of the encapsulating phase

Table D — Diagnosing EPS

ElementFinding
ClinicalBowel obstruction, weight loss, malnutrition, bloody effluent, UF failure
CT (key)Peritoneal thickening, calcification, bowel tethering/cocoon, loculated fluid
Inflammatory markersOften raised (non-specific)
TimingMay present on PD, after stopping, or after transplantation

Table E — Managing EPS

ModalityRole
Stop PDFirst step once diagnosed
Nutritional supportOften parenteral; corrects wasting
CorticosteroidsInflammatory phase
TamoxifenAnti-fibrotic adjunct
Surgery (enterolysis)Definitive for obstruction; experienced centres only

Visualise & Map

Phase B Visualise & Map
05
Phase B · Level 5

Imaging and Algorithm Flowcharts

Figure 8.1 — The fate of dialysate glucose
Figure 8.1 — The fate of dialysate glucose
figure
Flowchart 8.A — Suspected EPS
Flowchart 8.A — Suspected EPS
figure
06
Phase B · Level 6

Concept Maps

Causal chains, each ending in a named action.

Chain 1 — The daily metabolic cost

Dialysate glucose → large daily absorption → weight gain, high triglycerides, worse glycaemia → added cardiovascular risk → ACTION: glucose-sparing and metabolic management.

Chain 2 — Chronic membrane injury

Glucose, glucose-degradation products, low pH → mesothelial injury, neoangiogenesis, fibrosis → progressive sclerosis → ACTION: minimise glucose exposure; consider biocompatible solutions.

Chain 3 — The two hits

Chronic injury (first hit) primes the membrane → a second inflammatory trigger (severe peritonitis, stopping PD, transplant) → the encapsulating phase → bowel cocoon → ACTION: anticipate EPS around triggers in long-vintage patients.

Chain 4 — Cumulative risk

Long duration + rising transport + cumulative glucose → mounting EPS risk → ACTION: risk-stratify and consider elective transfer before a trigger.

Chain 5 — From sclerosis to obstruction

Fibrosis → bowel tethering and cocoon → obstruction and malnutrition → ACTION: stop PD, support nutrition, and refer obstruction for specialist surgery.

07
Phase B · Level 7

Clinical Decision Pathways

Numbered rules. These numbers are the cross-reference handle for the cases and flowcharts.

R1
IF prescribing PD, THEN account for the glucose load and prefer glucose-sparing where possible.
R2
IF there is weight gain, dyslipidaemia, or worse glycaemia, THEN reduce glucose strength, use icodextrin or amino-acid dialysate, and add dietetic and lipid management.
R3
IF a long-duration patient shows declining ultrafiltration and rising transport, THEN flag elevated EPS risk and review prevention.
R4
IF there is unexplained bowel obstruction, weight loss, or bloody effluent in a PD or ex-PD patient, THEN suspect EPS.
R5
IF EPS is suspected, THEN obtain a CT for peritoneal thickening, calcification, and bowel tethering.
R6
IF EPS is confirmed, THEN stop PD and provide nutritional support.
R7
IF EPS is in an inflammatory phase, THEN consider corticosteroids and tamoxifen as an anti-fibrotic.
R8
IF EPS causes bowel obstruction, THEN refer for surgical enterolysis at an experienced centre.
R9
IF a high-risk patient is stopping PD or being transplanted, THEN stay vigilant for triggered EPS.

Clinical Reasoning

Phase C Clinical Reasoning
08
Phase C · Level 8

Clinical Cases

Four cases. Each stops you at a decision before it answers it.

CASE 1STANDARD

Weight up, triglycerides upThe metabolic cost of glucose

Presentation

A patient on high-strength glucose dwells has gained weight, with rising triglycerides and worsening glycaemic control, despite reporting modest food intake.

Pause and reflect

Before reading on: where are these calories coming from, and what do you change?

Analysis

The dialysate is the hidden calorie source: absorbed glucose explains the weight, triglycerides, and glycaemia even with modest eating. The fix is glucose-sparing — icodextrin for the long dwell, the lowest glucose strength for euvolemia — with lipid and glycaemic management, not a scolding about diet.

Management plan

  1. Attribute the gains to absorbed glucose, not over-eating (R1).
  2. Glucose-spare: icodextrin, lower glucose strength, consider amino-acid dialysate (R2).
  3. Add dietetic, lipid, and glycaemic management (R2).

Teaching points

  • PD weight gain is often dialysate calories — treat the prescription, not just the plate.

Cross-reference: exercises R1, R2.

CASE 2COMPLEX

Obstruction after the transplantTriggered EPS

Presentation

A patient with eight years of PD receives a kidney transplant and, months later, develops nausea, vomiting, weight loss, and abdominal pain. PD has already stopped.

Pause and reflect

Before reading on: the patient is off PD — can this still be a PD complication, and what is the test?

Analysis

Long vintage primed the membrane and transplantation supplied the second hit — the classic post-transplant EPS picture, presenting after PD has stopped. The discriminator from ordinary post-operative ileus is the obstruction with weight loss in a high-vintage patient; CT shows the cocoon. Stopping PD is already done, so management turns to nutrition, anti-inflammatory/anti-fibrotic therapy, and surgery for obstruction.

Management plan

  1. Suspect triggered EPS despite PD having stopped (R4, R9).
  2. Confirm with CT (R5); provide nutritional support (R6).
  3. Corticosteroids ± tamoxifen; refer obstruction to an experienced centre (R7, R8).

Teaching points

  • EPS can present after PD stops or after transplant — don't let “ex-PD” lower your guard.

Cross-reference: exercises R4, R5, R6, R7, R8, R9.

CASE 3COMPLEX

The well patient on year nineThe prediction dilemma

Presentation

A patient who has done well on PD for nine years now shows falling ultrafiltration and rising transport over the last two years. They feel well and value home dialysis.

Pause and reflect

Before reading on: there is no test that predicts EPS — so what do you actually do with this risk?

Analysis

This is the unsolved core of the chapter: long duration with a deteriorating membrane is the best available signal, yet it neither confirms nor excludes future EPS. The honest response is risk stratification, not false reassurance or alarm — maximise glucose-sparing, minimise peritonitis, heighten surveillance, and discuss the option of elective transfer, especially if a transplant is planned.

Management plan

  1. Recognise the high-risk profile (vintage + membrane decline) (R3).
  2. Maximise glucose-sparing; minimise peritonitis exposure (R1, R2).
  3. Discuss risk-stratified elective transfer, particularly around a planned transplant (R9).

Teaching points

  • With no predictive test, manage EPS risk by stratification and shared discussion, not certainty.

Cross-reference: exercises R1, R2, R3, R9.

CASE 4COMPLEX

A cocoon and a blocked gutEPS with obstruction

Presentation

A long-vintage patient has CT-confirmed EPS with established small-bowel obstruction and significant malnutrition.

Pause and reflect

Before reading on: what two things must happen, and who should operate?

Analysis

Established obstruction needs both nutritional rescue — usually parenteral — and definitive surgery. EPS enterolysis is technically demanding and high-risk, and outcomes are best in experienced centres, so referral, not a local attempt, is the right call.

Management plan

  1. Provide nutritional support, often parenteral (R6).
  2. Consider corticosteroids/tamoxifen per phase (R7).
  3. Refer for enterolysis at an experienced centre (R8).

Teaching points

  • EPS surgery belongs with experienced surgeons — refer, don't improvise.

Cross-reference: exercises R6, R7, R8.

09
Phase C · Level 9

Clinical Implications

Every mechanism from Level 3 earns a bedside consequence and an action.

MECHANISM

A large fraction of dialysate glucose is absorbed daily.

WHY IT MATTERS

It supplies calories the patient did not eat, driving weight, lipids, and glycaemia.

ACTION

Glucose-spare and manage lipids and glucose.

MECHANISM

Absorbed glucose suppresses appetite.

WHY IT MATTERS

Fat gain and protein-energy wasting can coexist.

ACTION

Monitor protein nutrition; use amino-acid dialysate.

MECHANISM

Glucose, GDPs, and low pH injure the mesothelium over years.

WHY IT MATTERS

Neoangiogenesis and fibrosis progress toward sclerosis.

ACTION

Minimise glucose exposure; consider biocompatible solutions.

MECHANISM

A primed membrane needs a second inflammatory hit to encapsulate.

WHY IT MATTERS

Severe peritonitis, stopping PD, or transplant can trigger EPS.

ACTION

Anticipate EPS around these triggers in long-vintage patients.

MECHANISM

Risk accumulates with PD duration.

WHY IT MATTERS

Vintage is the dominant, cumulative EPS risk factor.

ACTION

Risk-stratify and consider elective transfer before a trigger.

MECHANISM

Fibrosis tethers and cocoons the bowel.

WHY IT MATTERS

Obstruction and malnutrition follow.

ACTION

Stop PD, support nutrition, refer obstruction for specialist surgery.

10
Phase C · Level 10

Clinical Pearls

Exhaustive. Every threshold and rule in the chapter is here.

PD absorbs ~100–300 g glucose/day — hidden calories.
Glucose load → weight gain, high triglycerides, worse glycaemia.
Glucose suppresses appetite → wasting can coexist with weight gain.
Glucose-sparing: icodextrin, amino-acid dialysate, lowest strength.
Match dwell to transport → same UF for less glucose.
EPS = fibrocollagenous cocoon obstructing the bowel; often fatal.
Long PD duration is the dominant EPS risk factor.
Other risks: glucose exposure, severe peritonitis, fast transport, young age.
Two-hit model: chronic injury + an inflammatory trigger.
Triggers: severe peritonitis, stopping PD, transplantation.
EPS often presents after PD stops or after transplant.
EPS clues: obstruction, weight loss, bloody effluent, UF failure.
CT is the key test: thickening, calcification, tethered bowel.
No single test reliably predicts EPS.
EPS treatment: stop PD, nutrition, steroids, tamoxifen, surgery.
EPS enterolysis only at experienced centres.
Prevention: glucose-sparing, fewer peritonitis episodes, risk-stratified transfer.

Safety & Evidence

Phase D Safety & Evidence
11
Phase D · Level 11

Red Flags and NEVER DO

Panel A — Red flags

Bowel-obstruction symptoms in a long-vintage PD or ex-PD patient — EPS.
Bloody effluent with ultrafiltration failure and weight loss — suspect EPS.
New obstruction after stopping PD or after transplantation — triggered EPS.
Falling ultrafiltration with rising transport over years — a membrane on a warning track.

Panel B — NEVER DO

NEVERdismiss bowel-obstruction symptoms in a long-vintage patient — consider EPS.
NEVERassume “ex-PD” excludes EPS — it often presents after PD stops.
NEVERrun high-glucose PD indefinitely without glucose-sparing.
NEVERattempt EPS enterolysis outside an experienced centre.
NEVERassume glucose calories protect a patient from malnutrition.
12
Phase D · Level 12

Common Pitfalls

Anti-patterns clinicians fall into. Each becomes a Level 22 distractor.

WRONG Treating PD weight gain as simple over-eating.
RIGHT Account for absorbed glucose calories and glucose-spare.
WHY The dialysate is a continuous caloric source.
WRONG Dismissing bowel obstruction in an ex-PD patient.
RIGHT Suspect EPS and obtain a CT.
WHY EPS frequently presents after PD has stopped.
WRONG Ignoring rising transport with falling UF over years.
RIGHT Flag EPS risk and review prevention and transfer.
WHY It is the best available warning signal.
WRONG Running a high-glucose prescription without glucose-sparing.
RIGHT Use icodextrin, amino-acid dialysate, and the lowest strength.
WHY Glucose carries both a metabolic and a membrane cost.
WRONG Operating on EPS at a non-specialist centre.
RIGHT Refer to experienced surgeons.
WHY EPS enterolysis is high-risk and outcomes are centre-dependent.
WRONG Assuming glucose calories prevent wasting.
RIGHT Monitor protein nutrition independently.
WHY Appetite suppression drives protein-energy wasting.
13
Phase D · Level 13

Evidence Grading

The grade reflects strength of evidence, not importance.

GRADE

A

HIGH CONFIDENCE

The effect is real and the estimate is stable.

RCTs at low risk of bias; multiple concordant prospective cohorts; meta-analyses.

GRADE

B

MODERATE CONFIDENCE

The effect is likely real but may shift with new data.

Observational studies, registries, mechanistic human studies.

GRADE

C

LOW CONFIDENCE

Rests on physiology, reasoning, or consensus rather than outcomes.

Pathophysiological reasoning; extrapolation; consensus without outcomes.

StatementGradeRationale for the grade
PD glucose absorption imposes a measurable metabolic load.BConsistent metabolic and observational data.
Long PD duration is the dominant risk factor for EPS.BConsistent observational cohorts.
CT is the key diagnostic modality for EPS.BObservational diagnostic data.
No single biomarker reliably predicts EPS.BConsistent absence across studies.
Corticosteroids and tamoxifen are used to treat EPS.CUncontrolled case series.
Enterolysis at experienced centres improves EPS outcomes.CObservational, centre-dependent outcomes.
Glucose-sparing reduces the metabolic burden.BRandomised and observational data.

Patient Decisions

Phase E Patient Decisions
14
Phase E · Level 14

Absolute-Risk Presentation

Outcomes as natural frequencies. EPS is rare; figures are representative and the direction of effect is given where precise numbers are uncertain.

OutcomeBaselineWith time / actionAbsolute effectEvidence
EPS, short PD duration (< ~5 years)low (a few per 1000 pt-years)Rare earlySee Table C — Grade B
EPS, long PD duration (> ~8–10 years)short-duration lowmarkedly higherRisk rises with vintageSee L3 — Grade B
Death once EPS developshigh (a large minority)Major mortalitySee L3 — Grade B
Metabolic markers with glucose-sparinghigh-glucoseimprovedLower weight/lipids/glucoseSee L13 — Grade B

Reading the table

EPS is rare in absolute terms but its risk climbs steeply with PD duration and its mortality is high — which is why prevention and vigilance, not a predictive test, carry the weight. Where exact frequencies are uncertain, the direction of effect is given; the evidence column points to where the detail lives.

Apply & Test

Phase F Apply & Test
17
Phase F · Level 17

Documentation Templates

Copy-paste chart notes that map to the real decisions in this chapter.

Template 1 — Metabolic review / glucose-sparing plan

  • Glucose exposure: strengths used ___; estimated daily glucose load ___.
  • Metabolic markers: weight/BMI ___; triglycerides ___; glycaemic control ___.
  • Nutrition: appetite ___; protein intake ___; wasting? yes/no.
  • Glucose-sparing plan: icodextrin ___; amino-acid dialysate ___; lower strength ___.
  • Adjuncts: statin ___; glycaemic management ___; dietetic referral ___.

Template 2 — EPS risk / assessment note

  • PD duration ___; transport trend ___; UF trend ___; peritonitis history ___.
  • EPS risk: low / elevated / high (vintage + membrane decline).
  • Symptoms: obstruction / weight loss / bloody effluent / UF failure — present? ___.
  • CT (if suspected): findings ___.
  • Plan: glucose-sparing / surveillance / discuss elective transfer / EPS treatment ___.
18
Phase F · Level 18

High-Yield Cheat Sheet

Pre-rounds compression. Numbers and rules only.

PD absorbs ~100–300 g glucose/day = hidden calories.
→ weight gain, high TG, worse glycaemia, CV risk.
Glucose calories suppress appetite → wasting too.
Glucose-spare: icodextrin, amino-acid, lowest strength.
EPS = fibrosing bowel cocoon; rare, often fatal.
Dominant risk = long PD duration (vintage).
Two-hit: chronic injury + inflammatory trigger.
Triggers: severe peritonitis, stopping PD, transplant.
EPS can present after PD stops / post-transplant.
CT is the key test (thickening, calcification, cocoon).
No test reliably predicts EPS.
Treat: stop PD, nutrition, steroids, tamoxifen, surgery (expert centre).
19
Phase F · Level 19

Flashcards

Active recall. At least one card per objective.

CARD 1

Q. How large is the metabolic glucose load of PD?

Show answer

A. Often around 100 to 300 grams of glucose absorbed per day.

DETAILED. These are calories the patient did not eat — a continuous source.

CLINICAL. Explains weight gain and lipid/glucose changes despite modest diet.

CARD 2

Q. What metabolic problems does the glucose load cause?

Show answer

A. Weight gain, dyslipidaemia (high triglycerides), and worse glycaemic control, adding to cardiovascular risk.

DETAILED. Glucose-driven lipogenesis and continuous absorption are the mechanisms.

CLINICAL. Manage with glucose-sparing plus lipid and glycaemic control.

CARD 3

Q. What is the anorexia–wasting paradox?

Show answer

A. Absorbed glucose suppresses appetite, so fat gain and protein-energy wasting can coexist.

DETAILED. Weight alone can mislead; protein nutrition must be tracked.

CLINICAL. Amino-acid dialysate both spares glucose and supplies protein.

CARD 4

Q. Name the main glucose-sparing strategies.

Show answer

A. Icodextrin for the long dwell, amino-acid dialysate, the lowest effective glucose strength, and matching dwell to transport.

DETAILED. Efficient UF wins the same fluid removal for less glucose.

CLINICAL. They cut both the metabolic and the membrane cost.

CARD 5

Q. What is encapsulating peritoneal sclerosis?

Show answer

A. A rare, often fatal fibrocollagenous cocoon that encases and obstructs the bowel.

DETAILED. It is the catastrophic end of the membrane-injury spectrum.

CLINICAL. Suspect it in long-vintage patients with obstruction.

CARD 6

Q. What is the dominant risk factor for EPS?

Show answer

A. Long PD duration (vintage), with risk rising sharply after several years.

DETAILED. Glucose exposure, severe peritonitis, and fast transport add to it.

CLINICAL. Vintage drives risk-stratified prevention.

CARD 7

Q. Explain the two-hit model of EPS.

Show answer

A. Chronic membrane injury primes the peritoneum (first hit); a second inflammatory trigger — severe peritonitis, stopping PD, or transplant — sets off encapsulation.

DETAILED. It explains why EPS often appears after PD stops or after transplant.

CLINICAL. Vigilance is heightened around these triggers.

CARD 8

Q. How is EPS diagnosed?

Show answer

A. Clinical suspicion (obstruction, weight loss, bloody effluent) confirmed by CT showing peritoneal thickening, calcification, and bowel tethering.

DETAILED. Inflammatory markers are often raised but non-specific.

CLINICAL. No biomarker reliably predicts it beforehand.

CARD 9

Q. Outline EPS management and prevention.

Show answer

A. Stop PD, support nutrition, give corticosteroids and tamoxifen, and refer obstruction to experienced surgeons; prevent by glucose-sparing, fewer peritonitis episodes, and risk-stratified transfer.

DETAILED. Treatment evidence is observational; prevention dominates practice.

CLINICAL. Surgery belongs at experienced centres only.

20
Phase F · Level 20

One-Minute Preceptor

Micro-teaching for rounds. Two scenarios, five steps each.

SCENE 1
Weight and triglycerides creeping up
GET A COMMITMENTAsk: “He's gaining weight with high triglycerides but eats modestly — source?”
PROBE“What in the prescription supplies calories?”
TEACHAbsorbed dialysate glucose; glucose-spare with icodextrin and the lowest strength.
REINFORCE“Right — treat the prescription, not just the diet.”
CORRECT ERRORSIf they blamed diet alone, point to the absorbed glucose load.
SCENE 2
Obstruction in an ex-PD patient
GET A COMMITMENTAsk: “Eight years of PD, now transplanted, with bowel obstruction — what's on your list?”
PROBE“Can a PD complication appear after PD has stopped?”
TEACHYes — triggered EPS classically presents after stopping PD or transplant; CT confirms the cocoon.
REINFORCE“Exactly — ‘ex-PD’ doesn't take EPS off the table.”
CORRECT ERRORSIf they fixed on simple ileus, broaden to EPS and order a CT.
21
Phase F · Level 21

Reflective Prompts

Metacognition anchored to this chapter's tensions. No answers provided.

  1. 1. With no test that predicts EPS, how do you talk about a rare but catastrophic risk without either frightening a well patient or falsely reassuring them?
  2. 2. At what point does accumulating PD vintage tip the balance toward recommending transfer — and whose judgement should weigh most in that call?
  3. 3. The daily glucose cost is invisible and the EPS risk is distant; how do you keep either from being discounted in routine reviews?
  4. 4. Knowing that stopping PD and transplantation can trigger EPS, how should that shape the timing and counselling around a transplant in a long-vintage patient?
  5. 5. If a reliable EPS predictor existed, what would you do differently tomorrow — and what does that reveal about how you manage the uncertainty today?
22
Phase F · Level 22

Board-Style Q&A

Nine items, each anchored in this chapter. At least one per objective.

Q 01
A PD patient gains weight with rising triglycerides despite a modest diet. The most likely source of calories is:
  • AUndisclosed over-eating
  • BAbsorbed dialysate glucose
  • CReduced physical activity alone
  • DFluid retention only
Reveal answer & rationale
Answer: B

Rationale

B is correct: absorbed glucose is a continuous calorie source. A is the Level 12 pitfall of blaming diet; C and D do not explain the triglyceride rise — the inverted Level 9 glucose-load mechanism.

Q 02
Which strategy best reduces the metabolic glucose burden while maintaining ultrafiltration?
  • AHigher glucose strength on every dwell
  • BIcodextrin for the long dwell and the lowest effective glucose strength
  • CMore frequent high-glucose exchanges
  • DStopping ultrafiltration entirely
Reveal answer & rationale
Answer: B

Rationale

B is correct: glucose-sparing maintains UF with less glucose. A and C increase the load; D is unsafe. Running high-glucose without sparing is the Level 12 pitfall.

Q 03
A PD patient has fat gain yet falling muscle mass and low protein intake. This reflects:
  • AAdequate nutrition from glucose calories
  • BThe anorexia–wasting paradox
  • CPure fluid overload
  • DA laboratory error
Reveal answer & rationale
Answer: B

Rationale

B is correct: glucose suppresses appetite, so weight gain and wasting coexist. A is the Level 12 pitfall of assuming glucose calories prevent malnutrition; C and D ignore the muscle loss.

Q 04
What is the single most important risk factor for encapsulating peritoneal sclerosis?
  • AA single peritonitis episode
  • BLong PD duration (vintage)
  • CUse of icodextrin
  • DLow transporter status
Reveal answer & rationale
Answer: B

Rationale

B is correct: vintage is the dominant risk factor. A is contributory but not dominant; C is protective if anything; D is the wrong direction — distractors that misweight the risk factors.

Q 05
Which sequence best describes the two-hit pathogenesis of EPS?
  • AA single acute injury causes immediate encapsulation
  • BChronic membrane injury primes, then an inflammatory trigger encapsulates
  • CEncapsulation precedes any membrane injury
  • DOnly transplantation can cause EPS
Reveal answer & rationale
Answer: B

Rationale

B is correct: priming then trigger. A and C invert the sequence; D over-narrows the trigger — the inverted Level 9 two-hit mechanism.

Q 06
A patient with eight years of PD develops bowel obstruction months after a kidney transplant. The priority diagnosis and test are:
  • APost-operative ileus — observe
  • BTriggered EPS — obtain a CT
  • CSimple constipation — laxatives
  • DPeritonitis — culture effluent
Reveal answer & rationale
Answer: B

Rationale

B is correct: long vintage plus transplant is classic triggered EPS — image with CT. A is the Level 12 pitfall of dismissing obstruction in an ex-PD patient; C and D miss the diagnosis.

Q 07
Which statement about predicting EPS is correct?
  • AA single biomarker reliably identifies who will develop EPS
  • BNo single test reliably predicts EPS; long duration with a declining membrane is the best signal
  • CTransport testing rules EPS in or out
  • DEPS cannot be anticipated at all
Reveal answer & rationale
Answer: B

Rationale

B is correct: prediction is unsolved, and risk is managed by stratification. A and C overstate available tests; D is too nihilistic — the trap of treating the membrane trend as either diagnostic or useless.

Q 08
EPS risk is rare in absolute terms but changes with PD duration. The correct interpretation is:
  • ARisk is constant regardless of duration
  • BAbsolute risk rises steeply with longer duration
  • CRisk falls with longer duration
  • DDuration has no measurable effect
Reveal answer & rationale
Answer: B

Rationale

B is correct, and is an absolute-risk reading: the per-patient risk climbs with vintage even though it stays low early. A, C, and D misread the duration–risk relationship — the trap of ignoring how a rare risk concentrates with time.

Q 09
In Flowchart 8.A, CT in a long-vintage patient shows peritoneal calcification and a tethered small-bowel cocoon. The pathway directs you to:
  • AContinue PD and repeat CT in a year
  • BDiagnose EPS — stop PD, support nutrition, and treat by phase
  • CIncrease glucose strength for ultrafiltration
  • DStart antibiotics for presumed peritonitis
Reveal answer & rationale
Answer: B

Rationale

B is correct: the positive-CT node diagnoses EPS and routes to stopping PD, nutrition, and phase-based treatment. A delays care; C worsens membrane injury; D treats the wrong condition.