05

PERITONEAL DIALYSIS · A SELF-STUDY ATLAS

Chapter 5

PD-Related Peritonitis

Diagnosis to Decision

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

This preamble documents the dynamic decisions the Master makes for this chapter. It is read before the levels, not skipped.

Signals declared

  • Sig-D diagnostic — peritonitis is defined and distinguished from its mimics.
  • Sig-T therapeutic — empiric and organism-directed antibiotic regimens are prescribed.
  • Sig-P procedural — effluent sampling, intraperitoneal administration, and catheter removal are taught.
  • Sig-M mechanistic — the routes of infection and host-defence biology are explained.
  • Sig-V evidence-dense — the chapter rests on a body of trial and registry evidence.

Levels populated and omitted

  • Twenty of the twenty-two levels are populated.
  • L15 Preference-Sensitive Decisions and L16 Shared Decision-Making are omitted. Acute peritonitis management is effective-care: the evidence, not patient values, dictates sampling, empiric antibiotics, and the timing of catheter removal. There is no genuine equipoise to map, and the Master forbids manufacturing it. Preference-sensitive modality questions belong to the special-situations chapter, not here.
Phase A Orientation & Knowledge
01
Phase A · Level 1

Learning Objectives

The contract between this chapter and the reader. If you can do all eight, the chapter has succeeded.

  1. 1. Diagnose PD-related peritonitis from the diagnostic triad and obtain effluent samples correctly before any antibiotic is given.
  2. 2. Prescribe empiric intraperitoneal antibiotics that cover both gram-positive and gram-negative organisms, by the correct route and dosing mode.
  3. 3. Distinguish refractory, relapsing, recurrent, and repeat peritonitis, and state how each label changes the plan.
  4. 4. Tailor organism-directed therapy and treatment duration once culture and sensitivity return.
  5. 5. Decide when catheter removal is indicated and act within the correct time window rather than persisting with antibiotics.
  6. 6. Explain the routes by which organisms reach the peritoneum and link each route to a specific prevention strategy.
  7. 7. Interpret effluent cell count, differential, and Gram stain to guide immediate management.
  8. 8. Construct a peritonitis-prevention plan for a PD programme, including exit-site care and procedural prophylaxis.
02
Phase A · Level 2

Executive Summary

A sixty-second reading. Each bullet stands alone.

  • Cloudy effluent is peritonitis until proven otherwise; treat it as such while the workup runs.
  • Diagnosis needs two of three: clinical features, effluent white-cell count above 100 cells/µL with more than half neutrophils, and a positive culture.
  • Sample the effluent — cell count, differential, Gram stain, culture — before the first antibiotic, and inoculate blood-culture bottles to lift the yield.
  • Start empiric intraperitoneal antibiotics covering gram-positive (a glycopeptide or first-generation cephalosporin) and gram-negative (a third-generation cephalosporin or an aminoglycoside) the moment samples are taken.
  • The intraperitoneal route is first-line; it delivers high local drug concentration and outperforms intravenous-only therapy for most episodes.
  • Minimum duration is two weeks; three weeks for Staphylococcus aureus, Pseudomonas, and enterococci.
  • Refractory peritonitis — effluent not clearing after five days of appropriate antibiotics — is the trigger for catheter removal, not for more antibiotics.
  • Fungal peritonitis means prompt catheter removal plus an antifungal; antifungals alone with the catheter in place is a losing strategy.
  • Multiple enteric organisms or anaerobes point to an intra-abdominal source; get a surgical review.
  • Give antifungal prophylaxis during every antibacterial course to prevent secondary fungal peritonitis.
  • Catheter loss after fungal peritonitis is roughly 9 in 10 episodes; after coagulase-negative staphylococci it is roughly 1 in 10.
  • Death follows about 3 in 100 episodes overall, and more often when the organism is gram-negative, enteric, or fungal.
  • Most prevention is mechanical and behavioural: aseptic exchange technique, exit-site topical antibiotic, treating contamination promptly, and prophylaxis before catheter insertion and gut or dental procedures.
03
Phase A · Level 3

Main Narrative

The medical core. An expert should agree peritonitis is fully covered by this level alone.

What is it

Peritonitis is infection and inflammation of the peritoneal cavity in a patient on peritoneal dialysis, recognised at the bedside by cloudy effluent with or without abdominal pain. It is the dominant infectious complication of PD and the leading cause of catheter loss and technique failure — the single problem that most often ends a patient's time on the therapy.

  • The working diagnosis requires at least two of three findings: clinical features (pain, cloudy bag); effluent white-cell count above 100 cells/µL after a dwell of at least two hours, with more than 50% polymorphonuclear neutrophils; and a positive effluent culture.
  • A programme's culture-negative rate should sit below 15%; a higher rate signals a sampling or laboratory problem, not unusually fastidious organisms.

Why does it happen

  • Intraluminal (touch contamination). Skin organisms — most often coagulase-negative staphylococci — enter the catheter lumen during an exchange when technique lapses. This is the classic, usually antibiotic-responsive episode.
  • Periluminal. Organisms track from a colonised or infected exit site and tunnel down the outside of the catheter; Staphylococcus aureus and Pseudomonas dominate here, and the catheter itself is the reservoir.
  • Transmural (enteric). Bowel organisms cross the wall in diverticulitis, ischaemia, or perforation, producing polymicrobial enteric peritonitis that signals an intra-abdominal source.
  • Catheter biofilm. A polysaccharide biofilm on the catheter shelters organisms from antibiotics and from host defences, and is the mechanical reason relapsing and refractory episodes do not clear until the catheter comes out.
  • Impaired local defence. Conventional dialysate — acidic pH, high glucose, glucose-degradation products — blunts peritoneal neutrophil and macrophage function, lowering the inoculum needed to establish infection.

How does it present

  • Cloudy effluent is the cardinal and earliest sign, often preceding pain; patients are trained to inspect every drained bag.
  • Abdominal pain is usual but variable in severity; diffuse pain with rebound or guarding raises the possibility of a surgical abdomen.
  • Fever, nausea, and reduced ultrafiltration may accompany it; frank sepsis is uncommon but defines an emergency when present.

What else could it be

  • Chemical or eosinophilic peritonitis: cloudy effluent with eosinophil predominance, often after a new catheter or icodextrin exposure, culture-negative and self-limiting.
  • Fibrin or chyle: a cloudy bag that is sterile on analysis; fibrin is common early after insertion and is not infection.
  • Haemoperitoneum: blood-stained rather than turbid effluent, with a different differential.
  • A genuinely raised cell count with neutrophil predominance moves the case back to infective peritonitis regardless of an initially negative Gram stain.

Which tests change probability or management

  • Effluent cell count and differential: the pivotal test; neutrophil predominance above the 100 cells/µL threshold establishes the diagnosis within the hour.
  • Gram stain: low sensitivity but high value when positive — fungal elements or gram-negative rods change the plan immediately.
  • Culture: inoculating 5–10 mL of effluent directly into aerobic and anaerobic blood-culture bottles, plus centrifugation of a larger volume, gives the highest yield and the organism-directed regimen.
  • Peripheral blood cultures and imaging are reserved for systemic sepsis or suspected surgical source, not routine episodes.

How is it treated, monitored, and escalated

  • Begin empiric intraperitoneal antibiotics as soon as samples are taken: a glycopeptide or first-generation cephalosporin for gram-positives, paired with a third-generation cephalosporin or aminoglycoside for gram-negatives.
  • Dose intraperitoneally either continuously (drug in every exchange) or intermittently (once daily in a dwell of at least six hours); intermittent dosing relies on adequate dwell time for absorption.
  • Add intravenous antibiotics and treat as an emergency only when the patient is septic or systemically unstable.
  • Narrow to organism-directed therapy when culture returns, and set duration by organism: two weeks for most; three weeks for S. aureus, Pseudomonas, and enterococci.
  • Reassess at 48–72 hours: clinical improvement and a falling cell count confirm the regimen; no improvement prompts re-culture and a coverage review.
  • Give antifungal prophylaxis (an oral antifungal such as nystatin or fluconazole) throughout the antibacterial course to prevent secondary fungal peritonitis.
  • Escalate to catheter removal for refractory, relapsing, or fungal peritonitis rather than extending antibiotics.

How it is performed — sampling, administration, removal

  • Effluent sampling. Use aseptic technique at the medication port; send cell count and differential, Gram stain, and culture; collect before antibiotics; inoculate blood-culture bottles with adequate volume.
  • Intraperitoneal administration. Add the drug to the bag with full asepsis; allow the prescribed dwell; intraperitoneal heparin may be added when fibrin threatens catheter flow.
  • Catheter removal. Remove for refractory (day-5 non-clearing), relapsing, or fungal peritonitis; do not reinsert at the same sitting — wait at least two weeks before a new catheter, bridging on haemodialysis.

Refractory, relapsing, recurrent, repeat

  • Refractory: effluent fails to clear after five days of appropriate antibiotics — remove the catheter.
  • Relapsing: a further episode with the same organism (or culture-negative) within four weeks of finishing therapy — implies biofilm; treat and remove/replace the catheter.
  • Recurrent: a further episode with a different organism within four weeks of finishing therapy.
  • Repeat: the same organism more than four weeks after finishing therapy.

Red flags and special populations

  • Faeculent or polymicrobial enteric effluent, a rigid abdomen, or systemic sepsis point away from simple touch-contamination peritonitis toward a surgical source.
  • In patients with recent gut or gynaecological procedures, consider a procedural source and lower the threshold for surgical review.
  • Diabetic and immunosuppressed patients tolerate delay poorly; the time-to-antibiotic target is unchanged but the consequences of missing it are larger.

Evidence base

  • Randomised and meta-analytic evidence supports pre-insertion antibiotic prophylaxis and exit-site topical antibiotics for prevention.
  • Comparative data favour the intraperitoneal route over intravenous-only therapy for non-severe episodes, chiefly on pharmacokinetic and observational grounds.
  • The five-day refractory threshold and the timing of catheter removal rest largely on observational cohorts and international consensus rather than randomised trials.
  • Antifungal prophylaxis during antibacterial therapy is supported by randomised and observational reductions in secondary fungal peritonitis.
04
Phase A · Level 4

Reference Tables

Five fully-built tables. Sources are conventions of contemporary practice; no cell is left for later.

  • Table A — Diagnostic criteria and effluent thresholds.
  • Table B — Empiric intraperitoneal regimen (first dose, before culture).
  • Table C — Organism-directed therapy and duration.
  • Table D — Classification of repeat episodes.
  • Table E — Indications for catheter removal.

Table A — Diagnostic criteria and effluent thresholds

ParameterValueClinical implication
Diagnostic ruleAny 2 of 3: clinical features; effluent WBC >100/µL (>50% PMN); positive cultureTwo of three is enough; do not wait for culture to treat
Minimum dwell for cell count≥2 hoursShort dwells dilute the count and can read falsely low
Neutrophil fraction>50% PMNNeutrophil predominance points to bacterial infection
Programme culture-negative target<15% of episodesHigher rate signals a sampling/lab fault, not fastidious bugs
Culture method5–10 mL effluent into blood-culture bottlesDirect inoculation maximises organism yield

Table B — Empiric intraperitoneal regimen (first dose)

TargetAgent classNote
Gram-positive coverGlycopeptide (vancomycin) or first-generation cephalosporin (cefazolin)Glycopeptide preferred where MRSA prevalence is high
Gram-negative coverThird-generation cephalosporin (ceftazidime) or aminoglycosidePair with the gram-positive agent; do not use either alone
RouteIntraperitoneal, all exchanges or once-daily long dwellIP first-line; reserve IV for systemic sepsis
TimingImmediately after samplingEvery hour of delay worsens outcome
AdjunctIP heparin if fibrin; antifungal prophylaxis for the courseHeparin keeps the catheter patent; antifungal blocks secondary fungal peritonitis

Table C — Organism-directed therapy and duration

OrganismDirected therapyDuration / action
Coag-negative staphylococciFirst-gen cephalosporin or glycopeptide2 weeks; usually touch contamination
Staphylococcus aureus (MSSA)First-gen cephalosporin3 weeks; look for exit-site/tunnel source
MRSAGlycopeptide3 weeks
StreptococcusAmpicillin or cephalosporin2 weeks
EnterococcusAmpicillin + aminoglycoside3 weeks
PseudomonasTwo anti-pseudomonal agents3 weeks; removal often needed
Multiple enteric / anaerobesBroaden + metronidazoleSeek intra-abdominal source; surgical review
FungalAntifungal + prompt catheter removalRemove catheter; high mortality
Culture-negative (improving)Continue gram-positive cover2 weeks if effluent clears by day 3

Table D — Classification of repeat episodes

TermDefinitionWhy it matters
RefractoryEffluent not clearing after 5 days of appropriate antibioticsTrigger for catheter removal
RelapsingSame organism (or culture-negative) within 4 weeks of finishing therapyImplies biofilm; treat and remove/replace catheter
RecurrentDifferent organism within 4 weeks of finishing therapySuggests ongoing exposure; review technique
RepeatSame organism >4 weeks after finishing therapyNew event; re-treat and reassess source

Table E — Indications for catheter removal

IndicationTiming / caveat
Refractory peritonitisRemove at day 5 of non-clearing effluent
Relapsing peritonitisRemove (with simultaneous replacement possible if effluent clear)
Fungal peritonitisRemove promptly once fungus identified
Refractory exit-site / tunnel infection with peritonitisRemove the catheter
Multiple enteric organisms with surgical abdomenRemove and pursue source control
Reinsertion after removalWait ≥2 weeks (bridge on haemodialysis) for refractory/fungal

Visualise & Map

Phase B Visualise & Map
05
Phase B · Level 5

Imaging and Algorithm Flowcharts

Figure 5.1 — The effluent comparison strip
Figure 5.1 — The effluent comparison strip
figure
Flowchart 5.A — Diagnosis of cloudy effluent
Flowchart 5.A — Diagnosis of cloudy effluent
figure
06
Phase B · Level 6

Concept Maps

Causal chains, figure-ready. Each starts at a mechanism and ends at a named clinical action.

Chain 1 — Touch contamination (ends at a prevention action)

Technique lapse at exchange → skin flora enter the lumen → coagulase-negative staphylococci reach the peritoneum → neutrophil influx, cloudy effluent → ACTION: aseptic-technique retraining and prompt contamination management.

Chain 2 — Biofilm (ends at a procedural go/no-go)

Organisms colonise the catheter → polysaccharide biofilm forms → antibiotics fail to penetrate → effluent does not clear / relapses → GO/NO-GO: remove the catheter rather than extend antibiotics.

Chain 3 — Enteric translocation (ends at surgical action)

Diverticulitis or ischaemia breaches the bowel wall → multiple enteric organisms enter → polymicrobial peritonitis with a surgical abdomen → ACTION: surgical review and source control, not antibiotics alone.

Chain 4 — Impaired local defence (ends at a therapeutic action)

Acidic, high-glucose dialysate → neutrophil and macrophage function blunted → lower inoculum establishes infection → ACTION: minimise episodes through prophylaxis and consider biocompatible solutions.

Chain 5 — Membrane injury (ends at a long-term decision)

Repeated peritonitis → mesothelial injury and fibrosis → ultrafiltration failure and EPS risk → ACTION: count episodes as a technique-survival metric and escalate prevention after recurrence.

07
Phase B · Level 7

Clinical Decision Pathways

Numbered rules, executable under time pressure. These numbers are the cross-reference handle for the cases and flowcharts.

R1
IF the effluent is cloudy, THEN sample it (cell count, differential, Gram stain, culture) before giving any antibiotic.
R2
IF peritonitis is suspected, THEN start empiric intraperitoneal antibiotics covering gram-positive AND gram-negative organisms without waiting for the culture.
R3
IF the patient is septic or systemically unstable, THEN add intravenous antibiotics and manage as an emergency.
R4
IF a culture identifies the organism, THEN narrow to organism-directed therapy and set duration by organism (2 weeks most; 3 weeks for S. aureus, Pseudomonas, enterococci).
R5
IF there is no clinical improvement by 48–72 hours, THEN re-culture, review drug coverage and dosing, and reassess for a surgical source.
R6
IF the effluent has not cleared after 5 days of appropriate antibiotics (refractory), THEN remove the catheter.
R7
IF Gram stain or culture shows fungus, THEN remove the catheter promptly and start an antifungal.
R8
IF the same organism returns within 4 weeks of finishing therapy (relapsing), THEN treat and remove or replace the catheter.
R9
IF multiple enteric organisms or anaerobes are isolated, THEN seek an intra-abdominal source and obtain a surgical review.
R10
IF an antibacterial course is started, THEN give antifungal prophylaxis for its duration to prevent secondary fungal peritonitis.

Clinical Reasoning

Phase C Clinical Reasoning
08
Phase C · Level 8

Clinical Cases

Five cases. Each stops you at a decision before it tells you the answer.

CASE 1STANDARD

The cloudy bag after a missed stepTouch-contamination peritonitis — the common episode

Presentation

A patient on CAPD for two years drains a cloudy morning bag with mild, diffuse abdominal ache. They recall fumbling the connection the previous evening. They are afebrile and haemodynamically well. Effluent WBC is 1,200/µL with 80% neutrophils; Gram stain shows gram-positive cocci in clusters.

Pause and reflect

Before reading on: what is your first action, and what do you start — in that order?

Analysis

The diagnostic rule is already met on two of three criteria (clinical features plus a neutrophil-predominant count), so treatment does not wait for culture. The history of a connection error and clustered cocci point to coagulase-negative staphylococci by the intraluminal route. The discriminator from a surgical abdomen is the benign, localised picture and a single gram-positive organism rather than a mixed enteric pattern.

Management plan

  1. Sample first (R1): cell count, differential, Gram stain, culture into blood-culture bottles.
  2. Start empiric IP gram-positive + gram-negative cover immediately (R2).
  3. Narrow to a first-generation cephalosporin when CNS confirmed (R4); treat two weeks.
  4. Add antifungal prophylaxis for the course (R10) and retrain on aseptic technique.
  5. Reassess at 48–72 h (R5): expect a clearing bag and a falling count.

Teaching points

  • Two-of-three criteria are usually met before culture; treat now.
  • Clustered gram-positive cocci with a contamination history is the archetypal CNS episode.

Cross-reference: exercises R1, R2, R4, R5, R10.

CASE 2COMPLEX

The bag that won't clearRefractory peritonitis — knowing when to stop treating

Presentation

Five days into appropriate IP antibiotics for a gram-positive episode, a patient still has cloudy effluent and a WBC of 900/µL. They feel better and want to avoid losing the catheter.

Pause and reflect

Before reading on: the patient is improving but the bag is not clearing at day 5. Do you extend antibiotics or remove the catheter?

Analysis

Refractory peritonitis is defined by non-clearing effluent after five days of appropriate therapy, and the correct response is catheter removal, not a longer course. The temptation to salvage the catheter because the patient feels well is the classic error: a biofilm-laden catheter keeps re-seeding the cavity, and delay raises the risk of membrane injury and death. The discriminator is the calendar and the cell count, not the symptom score.

Management plan

  1. Confirm antibiotics were appropriate and adequately dosed; re-culture (R5).
  2. Diagnose refractory peritonitis at day 5 (R6).
  3. Remove the catheter; bridge to haemodialysis.
  4. Continue antibiotics after removal per organism; wait ≥2 weeks before a new catheter.

Teaching points

  • “Improving” does not override the day-5 refractory rule.
  • Catheter removal is treatment, not failure, in refractory disease.

Cross-reference: exercises R5, R6.

CASE 3COMPLEX

Yeast on the Gram stainFungal peritonitis — a catheter-out diagnosis

Presentation

A patient who finished a three-week antibacterial course a fortnight ago returns with cloudy effluent and abdominal pain. Gram stain shows budding yeast. They had no antifungal cover during the antibiotics.

Pause and reflect

Before reading on: name the single most important action, and one thing that might have prevented this episode.

Analysis

Fungal peritonitis demands prompt catheter removal alongside an antifungal; treating with antifungals while leaving the catheter in place carries unacceptable mortality. Recent antibacterial therapy without antifungal prophylaxis is the commonest setup, which is exactly why prophylaxis is given for every course. The discriminator from bacterial peritonitis is the yeast on Gram stain, which should redirect management instantly.

Management plan

  1. Start an antifungal and arrange prompt catheter removal (R7).
  2. Bridge to haemodialysis; continue antifungal after removal.
  3. Review the prior episode: antifungal prophylaxis was omitted (R10).

Teaching points

  • Yeast on Gram stain changes the plan to catheter-out immediately.
  • Antifungal prophylaxis during antibiotics prevents most of these episodes.

Cross-reference: exercises R7, R10.

CASE 4COMPLEX

The same bug, three weeks laterRelapsing peritonitis — the biofilm signature

Presentation

Three weeks after completing therapy for a S. aureus episode, a patient presents again with cloudy effluent; culture grows the same S. aureus with an identical sensitivity pattern.

Pause and reflect

Before reading on: is this relapsing, recurrent, or repeat peritonitis — and how does the label change what you do?

Analysis

The same organism within four weeks of finishing therapy is relapsing peritonitis, the hallmark of a colonised catheter. Calling it a fresh “repeat” and simply re-treating misses the biofilm and invites another relapse. The plan is to treat and remove or replace the catheter, distinguishing it from recurrent peritonitis (a different organism) and repeat peritonitis (same organism beyond four weeks).

Management plan

  1. Restart organism-directed therapy (R4).
  2. Classify as relapsing and plan catheter removal/replacement (R8).
  3. If effluent is clear at removal, simultaneous replacement is reasonable.

Teaching points

  • Same organism within four weeks = relapsing = think biofilm = catheter out.
  • The four-week clock and the organism identity define the label.

Cross-reference: exercises R4, R8.

CASE 5COMPLEX

A mixed growth and a rigid abdomenEnteric peritonitis — looking past the catheter

Presentation

An older patient with known diverticular disease develops severe abdominal pain, fever, and cloudy effluent. Culture grows two gram-negative enteric organisms and an anaerobe. The abdomen is rigid with rebound.

Pause and reflect

Before reading on: what does a polymicrobial enteric growth with peritonism tell you, and who needs to see this patient?

Analysis

Multiple enteric organisms plus an anaerobe and a surgical abdomen point to an intra-abdominal source — here, likely perforated diverticulitis — rather than touch contamination. Antibiotics alone will not solve a perforation; the priority is surgical review and source control, with antibiotic broadening to include anaerobic cover. Mistaking this for a routine catheter episode is the dangerous error.

Management plan

  1. Broaden antibiotics and add metronidazole; sample and culture (R2, R9).
  2. Obtain urgent surgical review and cross-sectional imaging (R9).
  3. Plan catheter removal as part of source control.

Teaching points

  • Polymicrobial enteric growth signals a surgical source until excluded.
  • Source control, not antibiotic escalation, is the decisive step.

Cross-reference: exercises R2, R9.

09
Phase C · Level 9

Clinical Implications

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

MECHANISM

Skin flora enter the catheter lumen during a technique lapse (intraluminal route).

WHY IT MATTERS

Produces the common, gram-positive, antibiotic-responsive episode after a connection error.

ACTION

Teach and retrain aseptic exchange; manage any contamination promptly.

MECHANISM

Organisms track along the outside of the catheter from a colonised exit site (periluminal route).

WHY IT MATTERS

Drives S. aureus and Pseudomonas episodes where the catheter is the reservoir.

ACTION

Treat exit-site infection early; apply topical exit-site antibiotic prophylaxis.

MECHANISM

Bowel organisms cross the wall in diverticulitis, ischaemia, or perforation (transmural route).

WHY IT MATTERS

Yields polymicrobial enteric peritonitis that marks an intra-abdominal source.

ACTION

On a mixed enteric growth, seek the source and obtain surgical review.

MECHANISM

A polysaccharide biofilm on the catheter shelters organisms from antibiotics.

WHY IT MATTERS

Explains why relapsing and refractory episodes never clear with drugs alone.

ACTION

For refractory or relapsing disease, remove the catheter rather than extend antibiotics.

MECHANISM

Acidic, high-glucose dialysate blunts peritoneal neutrophil and macrophage function.

WHY IT MATTERS

Lowers the inoculum needed to establish infection in PD patients.

ACTION

Minimise episodes through prophylaxis; consider biocompatible solutions where available.

MECHANISM

Repeated peritonitis injures the mesothelium and drives peritoneal fibrosis.

WHY IT MATTERS

Causes long-term ultrafiltration failure and raises EPS risk — the technique-ending consequence.

ACTION

Track episode count as a survival metric; escalate prevention after any recurrence.

MECHANISM

Inflammation drives fibrin formation in the peritoneal cavity.

WHY IT MATTERS

Fibrin can obstruct the catheter and loculate infected fluid.

ACTION

Add intraperitoneal heparin when fibrin threatens catheter flow.

10
Phase C · Level 10

Clinical Pearls

Exhaustive, not a highlights reel. Every threshold and rule that appears anywhere in the chapter is here.

Cloudy effluent = peritonitis until proven otherwise.
Diagnosis: any 2 of 3 — features, WBC >100/µL (>50% PMN), positive culture.
Cell count needs a dwell of ≥2 hours to be reliable.
Sample before antibiotics; inoculate blood-culture bottles with 5–10 mL.
Programme culture-negative rate should be <15%.
Empiric cover = gram-positive PLUS gram-negative, intraperitoneally.
IP route is first-line; IV is for systemic sepsis.
Minimum duration 2 weeks; 3 weeks for S. aureus, Pseudomonas, enterococci.
Refractory = not clearing at day 5 → remove catheter.
Relapsing = same organism ≤4 weeks after therapy → biofilm → catheter out.
Recurrent = different organism ≤4 weeks; Repeat = same organism >4 weeks.
Fungal peritonitis → prompt catheter removal + antifungal.
Antifungal prophylaxis during every antibacterial course.
Multiple enteric organisms → surgical source → surgical review.
Wait ≥2 weeks before reinsertion after removal for refractory/fungal.
IP heparin for fibrin; do not mistake fibrin for infection.
Reassess at 48–72 h: clearing bag + falling count = on track.
Catheter loss ≈ 9 in 10 for fungal, ≈ 1 in 10 for CNS.
Death ≈ 3 in 100 episodes overall; higher for gram-negative/enteric/fungal.
Pre-insertion antibiotic prophylaxis reduces early peritonitis.

Safety & Evidence

Phase D Safety & Evidence
11
Phase D · Level 11

Red Flags and NEVER DO

Panel A — Red flags

Faeculent or polymicrobial enteric effluent — suspect bowel perforation.
Effluent not clearing after 5 days of appropriate antibiotics — refractory peritonitis.
Hypotension, rigors, or peritonism out of proportion — systemic sepsis or surgical abdomen.
Fungal elements on Gram stain — catheter-out diagnosis.
Same organism within 4 weeks of finishing therapy — relapsing, biofilm-driven.
Rigid abdomen with rebound and guarding — treat as a surgical emergency.

Panel B — NEVER DO

NEVERdelay empiric antibiotics while waiting for culture results.
NEVERtreat fungal peritonitis with antifungals alone while leaving the catheter in place.
NEVERextend antibiotics beyond day 5 in refractory peritonitis instead of removing the catheter.
NEVERreinsert a new catheter at the same sitting after removal for refractory or fungal peritonitis.
NEVERdismiss a cloudy bag as “just fibrin” without sampling it.
12
Phase D · Level 12

Common Pitfalls

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

WRONG Treating a cloudy bag as catheter malfunction and flushing it.
RIGHT Sample and treat as peritonitis until the cell count says otherwise.
WHY Delay to first antibiotic worsens outcome and risks the catheter and the patient.
WRONG Giving intravenous-only antibiotics for a routine episode.
RIGHT Use the intraperitoneal route first-line; reserve IV for systemic sepsis.
WHY IP dosing achieves high local concentration at the site of infection.
WRONG Stopping at one week because the patient is improving.
RIGHT Treat a minimum of two weeks; three for S. aureus, Pseudomonas, enterococci.
WHY Under-treatment leaves residual organisms and drives relapse.
WRONG Persisting with antibiotics to salvage the catheter in refractory or fungal disease.
RIGHT Remove the catheter on time — day 5 for refractory, promptly for fungal.
WHY Biofilm and fungal infection will not clear with drugs; delay raises mortality.
WRONG Omitting antifungal cover during an antibacterial course.
RIGHT Give antifungal prophylaxis for the duration of every antibiotic course.
WHY Antibiotics select for fungi; prophylaxis prevents secondary fungal peritonitis.
WRONG Starting antibiotics before sampling, or sending too little effluent.
RIGHT Sample first and inoculate 5–10 mL into blood-culture bottles.
WHY Poor sampling raises the culture-negative rate and blinds organism-directed therapy.
13
Phase D · Level 13

Evidence Grading

The grade reflects the strength of evidence behind each statement, not its 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
Pre-insertion antibiotic prophylaxis reduces early peritonitis.ASupported by randomised trials and meta-analysis.
Exit-site topical antibiotic reduces exit-site infection and peritonitis.ARandomised evidence for mupirocin and gentamicin.
Intraperitoneal antibiotics are preferred over IV-only for non-severe episodes.BPharmacokinetic and observational data; limited head-to-head trials.
Antifungal prophylaxis during antibiotics reduces secondary fungal peritonitis.BRandomised and observational reductions, some heterogeneity.
Treating S. aureus nasal carriage lowers staphylococcal infection.BObservational and small interventional studies.
Catheter removal at day 5 for refractory peritonitis improves outcome.CObservational cohorts and international consensus; no RCT.
Empiric cover of both gram-positive and gram-negative organisms.CConsensus and microbiological reasoning.
Biocompatible (neutral-pH, low-GDP) solutions reduce peritonitis.CInconsistent trial results; mechanistic rationale only.

Patient Decisions

Phase E Patient Decisions
14
Phase E · Level 14

Absolute-Risk Presentation

Outcomes as natural frequencies a clinician and patient can act on. Figures are representative of contemporary cohorts; ranges vary by programme.

OutcomeBaselineWith actionAbsolute effectEvidence
Catheter loss after fungal peritonitis~9 in 10Highest of any organismSee L3 routes — Grade C (observational)
Catheter loss after Pseudomonas~4 in 10High; removal often neededSee Table C — Grade C (observational)
Catheter loss after coag-neg staphylococci~1 in 10Low; usually salvageableSee Table C — Grade B (registry)
Death per episode (overall)~3 in 100Baseline episode mortalitySee L2 — Grade B (registry)
Death per episode (gram-negative/enteric)~3 in 100~5–10 in 1002–7 more deaths per 100See Case 5 — Grade B (observational)
Early peritonitis without pre-insertion prophylaxishigherlower with prophylaxisFewer early episodesSee L13 — Grade A (RCT)

Reading the table

Natural frequency leads (“9 in 10”) because it is easier to act on than a percentage. The evidence column points to where in this chapter the detail lives, in keeping with the no-citation convention.

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. Included because peritonitis generates notes clinicians actually write.

Template 1 — Peritonitis diagnosis and initial management note

  • Presentation: cloudy effluent ± pain; dwell time of sampled bag ___ h.
  • Effluent: WBC ___ /µL; PMN ___ %; Gram stain ___; cultures sent (bottles inoculated: yes/no).
  • Diagnostic criteria met: ___ of 3.
  • Empiric IP antibiotics started at ___ : gram-positive agent ___ ; gram-negative agent ___.
  • Antifungal prophylaxis started: yes/no. IP heparin added: yes/no.
  • Plan: reassess at 48–72 h; patient educated; technique reviewed.

Template 2 — Organism-directed therapy and monitoring note

  • Organism: ___ ; sensitivities: ___.
  • Directed regimen: ___ ; route IP/IV; duration planned ___ weeks.
  • 48–72 h response: effluent clearing yes/no; repeat WBC ___ /µL.
  • Classification if repeat event: refractory / relapsing / recurrent / repeat.
  • Escalation decision: continue / re-culture / remove catheter.

Template 3 — Catheter-removal decision note

  • Indication: refractory (day 5) / relapsing / fungal / enteric-surgical / refractory exit-site.
  • Effluent status at decision: WBC ___ /µL; organism ___.
  • Plan: remove catheter; bridge to haemodialysis; continue antimicrobial ___.
  • Reinsertion: earliest date (≥2 weeks if refractory/fungal) ___.
18
Phase F · Level 18

High-Yield Cheat Sheet

Pre-rounds compression. Numbers and rules only.

Cloudy bag → sample → empiric IP antibiotics. In that order.
Dx: 2 of 3 — features, WBC >100/µL (>50% PMN), culture +.
Cell count valid only after ≥2 h dwell.
Empiric: gram-positive + gram-negative, IP.
Duration: 2 weeks; 3 weeks for S. aureus / Pseudomonas / enterococci.
Day 5 not clearing = refractory = catheter out.
Same organism ≤4 weeks = relapsing = catheter out.
Yeast on Gram stain = catheter out + antifungal.
Antifungal prophylaxis with every antibiotic course.
Mixed enteric growth = surgical source = surgical review.
Reinsert ≥2 weeks after removal for refractory/fungal.
Catheter loss: fungal ~9 in 10; CNS ~1 in 10.
Mortality ~3 in 100 per episode; more for gram-negative/enteric.
Culture-negative target <15% of episodes.
19
Phase F · Level 19

Flashcards

Active recall. At least one card per objective.

CARD 1

Q. What does the diagnosis of PD peritonitis require?

Show answer

A. Any two of three: clinical features, effluent WBC >100/µL with >50% neutrophils, and a positive culture.

DETAILED. The two-of-three rule lets you treat before culture returns; the cell count after a ≥2 h dwell is the fastest confirmatory test.

CLINICAL. You start treatment on clinical features plus the count, not on the culture.

CARD 2

Q. What is first-line empiric therapy and by what route?

Show answer

A. Intraperitoneal antibiotics covering both gram-positive and gram-negative organisms.

DETAILED. A glycopeptide or first-gen cephalosporin paired with a third-gen cephalosporin or aminoglycoside; IP delivers high local levels.

CLINICAL. IV-only therapy is reserved for systemic sepsis.

CARD 3

Q. Define refractory peritonitis and its consequence.

Show answer

A. Effluent not clearing after five days of appropriate antibiotics — remove the catheter.

DETAILED. Refractory disease reflects a biofilm-laden catheter that re-seeds the cavity; more antibiotics will not clear it.

CLINICAL. Day 5 is a decision point, not a reason to extend the course.

CARD 4

Q. How do relapsing, recurrent, and repeat peritonitis differ?

Show answer

A. Relapsing = same organism ≤4 weeks; recurrent = different organism ≤4 weeks; repeat = same organism >4 weeks.

DETAILED. The four-week clock from finishing therapy and the organism identity define the label, and relapsing implies biofilm.

CLINICAL. Relapsing peritonitis is an indication for catheter removal or replacement.

CARD 5

Q. What is the standard minimum treatment duration?

Show answer

A. Two weeks for most organisms; three weeks for S. aureus, Pseudomonas, and enterococci.

DETAILED. Under-treatment leaves residual organisms and drives relapse, especially for these tougher pathogens.

CLINICAL. Set the planned duration when the culture returns, not at presentation.

CARD 6

Q. What does yeast on the effluent Gram stain mandate?

Show answer

A. Prompt catheter removal plus an antifungal — not antifungals alone.

DETAILED. Fungal peritonitis carries high mortality and rarely clears with the catheter in place.

CLINICAL. Antifungal prophylaxis during antibiotic courses prevents most of these episodes.

CARD 7

Q. What does a polymicrobial enteric growth suggest?

Show answer

A. An intra-abdominal source such as perforation — obtain a surgical review.

DETAILED. Multiple enteric organisms with an anaerobe and peritonism point to source control, not antibiotic escalation alone.

CLINICAL. Add anaerobic cover and image the abdomen.

CARD 8

Q. Name the main prevention strategies for PD peritonitis.

Show answer

A. Aseptic technique, exit-site topical antibiotic, prompt contamination management, and prophylaxis before insertion and gut/dental procedures.

DETAILED. Most prevention is mechanical and behavioural; pre-insertion prophylaxis has the strongest evidence.

CLINICAL. A prevention plan is a programme-level deliverable, not just a patient instruction.

CARD 9

Q. How should effluent be sampled for culture?

Show answer

A. Before antibiotics, with 5–10 mL inoculated into blood-culture bottles.

DETAILED. Direct inoculation plus centrifugation of a larger volume maximises yield and keeps the culture-negative rate below 15%.

CLINICAL. Poor sampling blinds you to organism-directed therapy.

CARD 10

Q. When can a new PD catheter be reinserted after removal for refractory or fungal peritonitis?

Show answer

A. After at least two weeks, bridging on haemodialysis.

DETAILED. Early reinsertion re-seeds the cavity; the interval lets infection clear before a new foreign body is placed.

CLINICAL. Do not reinsert at the same sitting as removal.

20
Phase F · Level 20

One-Minute Preceptor

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

SCENE 1
The trainee facing a cloudy bag
GET A COMMITMENTAsk the trainee: “What is your working diagnosis and your first action?”
PROBE“What makes you treat now rather than wait for the culture?” — looking for the two-of-three rule.
TEACHCloudy effluent plus a neutrophil-predominant count meets criteria; sample first, then start empiric IP cover.
REINFORCE“Exactly — sampling before antibiotics protects the culture without delaying treatment.”
CORRECT ERRORSIf they reached for IV-only therapy, correct to the intraperitoneal route as first-line.
SCENE 2
The catheter that the team wants to keep
GET A COMMITMENT“It is day 5 and the bag is still cloudy on appropriate antibiotics — what now?”
PROBE“The patient feels better; does that change the plan?” — testing the refractory definition.
TEACHRefractory peritonitis is defined at day 5 by the effluent, not the symptoms; the catheter comes out.
REINFORCE“Right — removal here is treatment, and it lowers mortality risk.”
CORRECT ERRORSIf they wanted to extend antibiotics to salvage the catheter, correct to timely removal.
21
Phase F · Level 21

Reflective Prompts

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

  1. 1. Why does the five-day refractory threshold rest on consensus rather than randomised evidence, and how should that uncertainty shape how firmly you hold to it?
  2. 2. How would you explain to a reluctant patient that removing the catheter is treatment, not failure?
  3. 3. What features at the bedside would move you from “routine catheter episode” to “surgical abdomen”, and how early can you detect them?
  4. 4. When your programme's culture-negative rate climbs above 15%, what parts of the sampling pathway would you audit first?
  5. 5. How do the routes of infection in this chapter map onto the specific prevention steps your unit already uses — and where are the gaps?
22
Phase F · Level 22

Board-Style Q&A

Ten items, each anchored in this chapter's own traps. At least one per objective.

Q 01
A CAPD patient drains a cloudy bag with mild pain after a connection error. What is the correct first action?
  • AFlush the catheter to clear presumed fibrin
  • BSample the effluent for cell count, differential, Gram stain and culture, then start empiric IP antibiotics
  • CGive intravenous antibiotics only and admit
  • DWait for culture before any antibiotic
Reveal answer & rationale
Answer: B

Rationale

B is correct: sample first, then treat empirically by the IP route. A is the Level 12 pitfall of treating a cloudy bag as fibrin/malfunction — a dangerous delay. C inverts the Level 9 action that the IP route is first-line. D is the Level 11 NEVER DO of delaying antibiotics for culture.

Q 02
Which empiric regimen is appropriate before culture in a stable patient?
  • AIntraperitoneal gram-positive plus gram-negative cover
  • BIntravenous vancomycin alone
  • COral ciprofloxacin
  • DIntraperitoneal gram-positive cover only
Reveal answer & rationale
Answer: A

Rationale

A is correct: dual IP cover is the standard empiric choice. B is the IV-only pitfall and also omits gram-negative cover. C abandons the IP route entirely. D leaves gram-negatives uncovered — the inverted Level 9 mechanism that both routes must be covered empirically.

Q 03
Effluent remains cloudy with WBC 900/µL after five days of appropriate antibiotics, though the patient feels well. What is the next step?
  • AExtend antibiotics by another week
  • BRemove the catheter
  • CSwitch to oral antibiotics
  • DReduce dwell times for comfort
Reveal answer & rationale
Answer: B

Rationale

B is correct: this is refractory peritonitis, defined at day 5 by the effluent. A is the Level 12 pitfall of extending antibiotics to salvage the catheter. C and D do not address the biofilm-laden catheter (inverted Level 9 mechanism). Symptom improvement does not override the threshold.

Q 04
A patient represents 3 weeks after finishing therapy with the same organism on culture. How is this classified?
  • ARepeat peritonitis
  • BRecurrent peritonitis
  • CRelapsing peritonitis
  • DChemical peritonitis
Reveal answer & rationale
Answer: C

Rationale

C is correct: same organism within four weeks is relapsing peritonitis, implying biofilm. A (repeat) requires >4 weeks. B (recurrent) requires a different organism — the adjacent-definition distractors. D ignores the positive culture.

Q 05
Gram stain of cloudy effluent shows budding yeast. What is the correct management?
  • AStart an antifungal and continue PD with the catheter in place
  • BStart an antifungal and arrange prompt catheter removal
  • CContinue antibacterial therapy and recount in 48 hours
  • DIncrease the antibacterial dose
Reveal answer & rationale
Answer: B

Rationale

B is correct: fungal peritonitis requires prompt removal plus an antifungal. A is the Level 11 NEVER DO of antifungals alone with the catheter in. C and D treat a fungal infection as bacterial — a missed-discriminator error from the Gram stain.

Q 06
For how long should an uncomplicated coagulase-negative staphylococcal episode be treated, and how long for Pseudomonas?
  • A1 week and 2 weeks
  • B2 weeks and 3 weeks
  • C3 weeks and 3 weeks
  • D2 weeks and 2 weeks
Reveal answer & rationale
Answer: B

Rationale

B is correct: 2 weeks for CNS, 3 weeks for Pseudomonas. A reflects the under-treatment pitfall (stopping early). C over-treats the CNS episode. D under-treats Pseudomonas — the numerical-threshold distractors drawn from adjacent organisms.

Q 07
An older patient with diverticular disease has peritonism and grows two enteric gram-negatives plus an anaerobe. What is the priority?
  • AContinue IP antibiotics and reassess in 72 hours
  • BObtain urgent surgical review and pursue source control
  • CRemove the catheter and discharge
  • DSwitch to oral antibiotics
Reveal answer & rationale
Answer: B

Rationale

B is correct: polymicrobial enteric growth with a surgical abdomen signals an intra-abdominal source. A is the pitfall of escalating antibiotics for a surgical problem (inverted Level 9 enteric-route mechanism). C and D ignore the surgical emergency.

Q 08
In Flowchart 5.A, a patient has WBC >100/µL with >50% PMN and a Gram stain showing fungal elements. Which node does the pathway direct you to?
  • AContinue empiric therapy and await culture (N7)
  • BEscalate — remove catheter / surgical review (N6)
  • CConsider chemical peritonitis (N5)
  • DRecount the cell differential (N5)
Reveal answer & rationale
Answer: B

Rationale

B is correct: a positive fungal Gram stain routes to the N6 escape node. A is the path for a negative Gram stain — the trap of staying on the medical arm despite fungus. C and D belong to the low-cell-count branch, which does not apply here.

Q 09
Catheter loss is most likely after which type of peritonitis?
  • ACoagulase-negative staphylococcal
  • BStreptococcal
  • CFungal
  • DCulture-negative, improving
Reveal answer & rationale
Answer: C

Rationale

C is correct: catheter loss follows roughly 9 in 10 fungal episodes. A and D are the low-loss, usually salvageable episodes (CNS ~1 in 10). B is intermediate. The distractors are organisms with much lower catheter-loss frequencies — an absolute-risk discrimination.

Q 10
Which prevention measure has the strongest (randomised) evidence base?
  • ABiocompatible dialysis solutions
  • BPre-insertion antibiotic prophylaxis
  • CRoutinely shortening dwell times
  • DAvoiding all icodextrin
Reveal answer & rationale
Answer: B

Rationale

B is correct: pre-insertion prophylaxis is Grade A (RCT/meta-analysis). A is Grade C with inconsistent trials — the trap of confusing mechanistic plausibility with proven benefit. C and D are not established prevention measures.