17

APPLIED AKI & CRITICAL CARE NEPHROLOGY · VOLUME 5

Chapter 17

Drug Dosing & Poisonings

Dosing in AKI, Dialysable Toxins & ECTR

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

Signals declared

  • Sig-D — Diagnostic (primary). Estimate kidney function in a non-steady state, recognise which drugs accumulate, and identify the poisonings that dialysis can remove.
  • Sig-T — Therapeutic (strong). Adjust loading and maintenance doses, account for dialysis clearance, and deliver extracorporeal removal with the right antidotes.

Levels populated and omitted

Populated (17): L1–L5, L7, L8, L10–L14, L17–L20, L22. The therapeutic signal fires the absolute-risk table (L14) and documentation templates (L17); the diagnostic signal drives the tables, rules, cases, pitfalls, and board items.

  • L6 / L9 mechanism levels — omitted. No Sig-M; this is a dosing-and-decision chapter, not a mechanistic one.
  • L15 / L16 preference-sensitive map and SDM scripts — omitted. No Sig-E; correct dosing and toxin removal are effective care.
  • L21 reflective prompts — omitted. No Sig-E/V; the chapter's tensions (the non-steady-state estimate, under- versus over-dosing) are worked through the pitfalls (L12).
Phase A Orientation & Knowledge
01
Phase A · Level 1

Learning Objectives

By the end of this chapter you should be able to:

  • Explain why a full loading dose is usually given in AKI while the maintenance dose is reduced.
  • Recognise that eGFR equations are invalid in non-steady-state AKI and dose with appropriate caution.
  • Account for dialysis clearance when dosing, and avoid antibiotic under-dosing on CRRT.
  • List the drugs that accumulate dangerously in AKI and adjust or avoid them.
  • Identify which poisonings are dialysable from their physicochemical properties.
  • Deliver extracorporeal treatment with the appropriate antidote for toxic alcohols, salicylates, lithium, and metformin.
  • Anticipate rebound after extracorporeal removal and re-dose drugs for recovering function.
02
Phase A · Level 2

Executive Summary

  • AKI reduces renal drug clearance, so renally cleared drugs and active metabolites accumulate toward toxicity unless doses are adjusted.
  • Unlike stable CKD, AKI is dynamic — function changes by the day — so dosing must be reassessed, not set once.
  • The loading dose usually stays the same, because it depends on the volume of distribution, not clearance — give a full load to reach therapeutic levels fast, especially antibiotics in sepsis.
  • The maintenance dose is reduced, or its interval extended, according to the estimated clearance.
  • eGFR equations assume steady state and are invalid in rapidly changing AKI: a rising creatinine means the true GFR is lower than the equation says, a falling one means it is higher.
  • Dialysis adds clearance that must be counted: CRRT under-dosing of antibiotics is a common, harmful error that causes treatment failure in sepsis.
  • On intermittent haemodialysis, dose dialysable drugs after the session; therapeutic drug monitoring guides vancomycin and aminoglycosides.
  • Many drugs accumulate dangerously in AKI — gabapentinoids, morphine's active metabolites, low-molecular-weight heparin, digoxin, sulfonylureas — and metformin should be held for the risk of lactic acidosis.
  • Some poisonings are removed by dialysis; the dialysable toxins are small, water-soluble, minimally protein-bound, and have a low volume of distribution.
  • Classic dialysable poisons include methanol and ethylene glycol, salicylates, lithium, metformin, valproate in massive overdose, theophylline, phenobarbital, and dabigatran.
  • Drugs with a large volume of distribution or high protein binding — tricyclics, digoxin, most benzodiazepines — are not effectively dialysable.
  • Intermittent haemodialysis removes most toxins most efficiently; CRRT suits the unstable patient and the management of rebound, as with lithium.
  • Toxic alcohols are treated with fomepizole to block their metabolism plus haemodialysis to remove the toxin and correct the acidosis; salicylates with urinary alkalinisation plus dialysis when severe.
  • Anticipate rebound after extracorporeal removal — especially lithium redistributing from cells — and re-dose all drugs for the function the kidney recovers to.
03
Phase A · Level 3

Main Narrative

Two dangers sit on either side of the drug chart in AKI: giving too much, so a renally cleared drug accumulates to toxicity, and giving too little, so an antibiotic never reaches the level that treats the sepsis. AKI makes both easy, because its falling and then recovering function is a moving target that standard equations cannot track. The same kidney that cannot clear a drug can, on dialysis, be used to remove a poison — so this chapter is about subtracting drug where the kidney has failed, and adding clearance where a toxin must go.

Loading versus maintenance: the first distinction

The single most useful dosing principle is that loading and maintenance doses obey different rules. The loading dose fills the volume of distribution to reach a therapeutic concentration, and that volume is not much changed by AKI, so the loading dose is usually given in full. This matters most for antibiotics in sepsis, where the instinct to 'go easy on the kidneys' by reducing the first dose is exactly wrong — it delays therapeutic levels when the infection is most dangerous. The maintenance dose, by contrast, replaces what the body clears, and since AKI reduces clearance, the maintenance dose is reduced or its interval extended. Full load, reduced maintenance: the rule covers most situations.

The non-steady-state trap

The equations clinicians reach for to estimate kidney function — the eGFR formulae — are built on an assumption that fails in AKI: steady state. They take a single creatinine and assume production and clearance are balanced, which is true in stable CKD but false in an acute injury where the creatinine is still rising or falling. In a patient whose creatinine is climbing, the true GFR is lower than the equation reports, because the creatinine has not yet caught up — so the equation flatters the kidney and risks over-dosing. In recovery, with creatinine falling, the true GFR is higher than reported, risking under-dosing. The practical response is to distrust the calculated number in non-steady-state AKI, to dose with caution in the direction the creatinine is moving, and to lean on therapeutic drug monitoring wherever it exists, since measured levels sidestep the estimation problem entirely.

Counting the dialysis clearance

Once a patient is on renal replacement therapy, the circuit adds clearance that the dosing must account for, and the commonest error — met repeatedly in this volume — is to dose as if the patient were anuric and so under-dose. CRRT in particular provides continuous, moderate clearance, and antibiotics dosed for anuria reach sub-therapeutic levels, causing treatment failure in exactly the septic patients who can least afford it. Intermittent haemodialysis removes drugs in bursts, so dialysable drugs are timed around the sessions — typically dosed after dialysis to avoid removing the dose just given. SLED sits in between. Across all modalities, the drugs with narrow therapeutic windows are monitored directly: vancomycin and the aminoglycosides are dosed by level, not by formula, precisely because the kinetics on dialysis are too unpredictable to guess.

The drugs that accumulate

A practical list of culprits earns its place because these drugs cause avoidable harm when their accumulation is forgotten. Gabapentin and pregabalin are renally cleared and accumulate to cause sedation and confusion. Morphine's active metabolites accumulate and prolong its effect, so safer opioids are preferred and all are used cautiously. Low-molecular-weight heparin accumulates and raises bleeding risk, so it is monitored by anti-Xa or replaced with unfractionated heparin in significant AKI. Digoxin, the sulfonylureas with their hypoglycaemia, and many others join the list. And metformin deserves singling out: it is held in significant AKI because its accumulation drives a metabolic lactic acidosis. The discipline is to scan the chart in any AKI for renally cleared drugs and to adjust or stop them before they accumulate.

When the kidney becomes the treatment: dialysable poisons

The same dialysis that supports a failed kidney can be turned to a different purpose — removing a poison from the blood. Whether a toxin is dialysable is predictable from its physicochemistry: small molecules that are water-soluble, minimally bound to protein, and confined to a small volume of distribution are removed well, because dialysis can only clear what is free in the plasma water. The classic dialysable poisons follow from these properties — methanol and ethylene glycol, salicylates, lithium, metformin, valproate in massive overdose, theophylline, phenobarbital, and dabigatran. The mirror-image rule is just as useful: drugs with a large volume of distribution or high protein binding — the tricyclic antidepressants, digoxin, most benzodiazepines — are barely touched by dialysis, because most of the drug is hidden in tissues or bound, not free to be cleared. For these, dialysis is futile and other measures, such as digoxin-specific antibody fragments, are used instead.

Delivering extracorporeal treatment

When a poison is dialysable and the poisoning is severe, extracorporeal treatment is delivered with the modality that fits. Intermittent haemodialysis is usually the most efficient for rapid removal, because its high clearance clears a small-volume toxin quickly. CRRT is chosen for the haemodynamically unstable patient and for managing rebound — lithium is the archetype, redistributing out of cells back into the plasma after an intermittent session, so that levels climb again and a repeat or continuous treatment is needed. The toxin-specific approaches pair removal with an antidote where one exists. Toxic alcohols are treated by blocking alcohol dehydrogenase with fomepizole to stop the formation of toxic metabolites, alongside haemodialysis to remove the parent alcohol and correct the acidosis, with dialysis indicated for severe acidosis, high levels, or end-organ effects. Salicylate poisoning is treated by alkalinising the urine to enhance elimination, with haemodialysis added for severe features. Lithium and metformin-associated lactic acidosis are both managed with haemodialysis, the latter clearing the drug and correcting the acidosis at once. Consensus guidance from the extracorporeal-treatments-in-poisoning literature defines which poisonings warrant these interventions, and the poison centre is an early call.

After removal, and a closing principle

Two final points tie the chapter together. First, removal is not always one-and-done: rebound from tissue redistribution, classically with lithium, means levels and the patient must be rechecked after a session and treatment repeated or continued as needed. Second, the dosing story does not end when the AKI does — as the kidney recovers, clearance rises, and a maintenance dose set for anuria becomes an under-dose, so every drug must be re-dosed for the function the patient actually recovers to, the same reconciliation discipline of the recovery chapter. The unifying idea is simple: in AKI, subtract drug where the kidney can no longer clear it, add clearance where a toxin must be removed, and keep adjusting as the moving target moves.

04
Phase A · Level 4

Reference Tables

Table 17.1 — Dosing principles in AKI

PrincipleDetail
Loading doseUsually unchanged (volume-of-distribution dependent) — give a full load, especially antibiotics
Maintenance doseReduce dose or extend interval by estimated clearance
ReassessAKI is dynamic — re-dose as function changes
Therapeutic drug monitoringUse for narrow-window drugs (vancomycin, aminoglycosides)

Table 17.2 — Estimating function in non-steady-state AKI

SituationEffect on the eGFR estimate
Steady state (stable CKD)Equations valid
Rising creatinine (evolving AKI)Equation overestimates true GFR — risk of over-dosing
Falling creatinine (recovery)Equation underestimates true GFR — risk of under-dosing
Practical responseDistrust the number; dose cautiously; use drug levels

Table 17.3 — Dosing on renal replacement therapy

ModalityDosing implication
CRRTContinuous clearance — dose for it; under-dosing antibiotics is a common harm
Intermittent HDDose dialysable drugs after the session
SLEDIntermediate — account for prolonged clearance
All modalitiesMonitor narrow-window drugs by level

Table 17.4 — Drugs that accumulate in AKI

DrugConsequence / action
Gabapentin / pregabalinSedation, confusion — reduce dose
Morphine (active metabolites)Prolonged effect — prefer safer opioids, use cautiously
Low-molecular-weight heparinBleeding — monitor anti-Xa or use unfractionated heparin
MetforminLactic acidosis — hold in significant AKI
Sulfonylureas / digoxinHypoglycaemia / toxicity — adjust or avoid

Table 17.5 — Dialysable versus non-dialysable toxins

Property / classDialysability
Small, water-soluble, low protein binding, low VdDialysable
Dialysable poisonsMethanol, ethylene glycol, salicylates, lithium, metformin, valproate (massive), theophylline, phenobarbital, dabigatran
Large Vd or high protein bindingNot effectively dialysable
Non-dialysable examplesTricyclics, digoxin (use Fab), most benzodiazepines

Table 17.6 — Extracorporeal treatment and antidotes

PoisonAntidote / adjunctExtracorporeal treatment
Methanol / ethylene glycolFomepizole (block alcohol dehydrogenase)HD — removes toxin, corrects acidosis
SalicylatesUrinary alkalinisationHD if severe (high levels, acidosis, CNS, oedema)
LithiumSupportiveHD; watch rebound — repeat or CRRT
Metformin (lactic acidosis)SupportiveHD — removes drug, corrects acidosis
Phase B Visualise & Map
05
Phase B · Level 5

Imaging & Flowchart Specifications

Figure 17.1 — Loading versus maintenance dosing
Figure 17.1 — Loading versus maintenance dosing
Figure 17.2 — The non-steady-state estimate
Figure 17.2 — The non-steady-state estimate
Figure 17.3 — What makes a toxin dialysable
Figure 17.3 — What makes a toxin dialysable
Flowchart 17.A — Dosing and removal in AKI
Flowchart 17.A — Dosing and removal in AKI

Clinical Reasoning

Phase C Clinical Reasoning
08
Phase C · Level 8

Clinical Cases

CASE 1UNDER-DOSED ON CRRT

Treating the kidney, starving the antibioticDosing for dialysis clearance

Presentation

A septic patient on CRRT is not improving. The antibiotic was dosed as for an anuric patient, and a measured trough is sub-therapeutic. A colleague proposes lowering it further 'to protect the kidneys.'

Pause and reflect

Why are the levels low on CRRT, and is reducing the dose the right move?

Analysis

CRRT provides continuous clearance, so dosing as if anuric under-doses the antibiotic and produces sub-therapeutic levels — a common, harmful error that causes treatment failure in sepsis. Reducing the dose further would worsen it; the kidney is not being protected, the infection is being under-treated.

Plan

Increase the dose to account for the CRRT clearance, guided by levels where available, and ensure a full loading dose was given. Treat the sepsis adequately; the circuit, not anuria, sets the clearance.

Teaching point

CRRT clears drugs. Dose antibiotics for the circuit's clearance, not for anuria — under-dosing in sepsis kills.

Cross-reference

Exercises rules R3; Table 17.3; CRRT clearance in Chapters 10, 13, and 14.

CASE 2THE TOXIC ALCOHOL

Block and removeMethanol/ethylene-glycol poisoning

Presentation

A patient presents with a severe high-anion-gap metabolic acidosis, an osmolar gap, AKI, and a history suggesting toxic-alcohol ingestion. Envelope-shaped crystals are seen in the urine.

Pause and reflect

What two things does this poisoning need at once — and why both?

Analysis

This is toxic-alcohol poisoning, the oxalate crystals pointing to ethylene glycol. It needs both an antidote and removal: fomepizole blocks alcohol dehydrogenase to stop the formation of the toxic metabolites, while haemodialysis removes the parent alcohol and its metabolites and corrects the acidosis. Neither alone suffices in severe poisoning.

Plan

Start fomepizole immediately and arrange haemodialysis for the severe acidosis, high levels, and AKI. Involve the poison centre, and recheck after dialysis as toxin may persist.

Teaching point

Toxic alcohols are treated by blocking metabolism (fomepizole) and removing the toxin (haemodialysis) together — stop the poison forming and clear what is there.

Cross-reference

Exercises rules R6; Table 17.6; oxalate crystals in Chapters 3 and 12.

CASE 3LITHIUM, AND THE REBOUND

Removed, then risen againECTR and tissue redistribution

Presentation

A patient on long-term lithium develops AKI and severe lithium toxicity with neurological features. After a session of intermittent haemodialysis the level falls nicely, but hours later it has climbed again.

Pause and reflect

The dialysis worked — so why did the level rebound, and what do you do?

Analysis

Lithium distributes into cells, and intermittent haemodialysis clears only the plasma compartment quickly; afterward, intracellular lithium redistributes back into the plasma, so the level rebounds. This is expected, not a failure of dialysis, and it means a single session is often not enough.

Plan

Recheck the level after the session and repeat haemodialysis, or use continuous therapy (CRRT) to manage the rebound and achieve sustained removal. Continue supportive care and involve toxicology.

Teaching point

Lithium rebounds after intermittent dialysis as it redistributes from cells. Recheck and repeat, or use CRRT, rather than declaring victory after one session.

Cross-reference

Exercises rules R7; Table 17.6; CRRT in Chapter 14.

CASE 4THE ACCUMULATING DRUGS

Sedated and bleedingRecognising drug accumulation in AKI

Presentation

An elderly patient develops AKI and becomes increasingly drowsy and confused. She is on gabapentin and regular morphine, and a treatment-dose low-molecular-weight heparin; she also has a falling haemoglobin.

Pause and reflect

What links her sedation and her bleeding to the AKI?

Analysis

Several renally cleared drugs are accumulating as her clearance falls. Gabapentin accumulates to cause sedation and confusion; morphine's active metabolites accumulate and prolong its effect; and low-molecular-weight heparin accumulates, raising bleeding risk — the likely cause of her falling haemoglobin. The AKI has turned a stable drug regimen into a toxic one.

Plan

Reduce or stop the gabapentin, switch to a safer opioid used cautiously, and hold or switch the low-molecular-weight heparin to monitored unfractionated heparin. Re-dose everything for her current function and reassess as it changes.

Teaching point

AKI makes a familiar drug chart dangerous. Scan for renally cleared drugs — gabapentinoids, morphine, LMWH — and adjust before they accumulate to harm.

Cross-reference

Exercises rules R4; Table 17.4; medication reconciliation in Chapter 15.

10
Phase C · Level 10

Clinical Pearls

Full loading dose, reduced maintenance — the core AKI dosing rule.
Don't under-load antibiotics in sepsis to 'protect the kidney.'
eGFR equations assume steady state — invalid in evolving AKI.
Rising creatinine: true GFR is lower than the equation (over-dosing risk).
Falling creatinine: true GFR is higher (under-dosing risk).
CRRT clears drugs — under-dosing antibiotics on CRRT causes treatment failure.
On IHD, dose dialysable drugs after the session.
Monitor narrow-window drugs (vancomycin, aminoglycosides) by level.
Metformin: hold in significant AKI (lactic acidosis).
Accumulate in AKI: gabapentinoids (sedation), morphine metabolites, LMWH (bleeding), digoxin, sulfonylureas.
Dialysable = small, water-soluble, low protein binding, low Vd.
Dialysable poisons: toxic alcohols, salicylates, lithium, metformin, valproate (massive), theophylline, phenobarbital, dabigatran.
Large Vd / high protein binding (TCAs, digoxin, most benzos) = not dialysable.
IHD removes most toxins fastest; CRRT for instability and rebound.
Toxic alcohols: fomepizole + HD; salicylates: alkalinise + HD if severe.
Lithium rebounds from cells — recheck and repeat, or use CRRT.
Metformin lactic acidosis: HD removes drug and corrects acidosis.
Re-dose for recovering function as the AKI improves.

Safety & Evidence

Phase D Safety & Evidence
11
Phase D · Level 11

Red Flags & Never-Do

Panel A — Red flags

A septic patient on CRRT with sub-therapeutic antibiotic levels — under-dosing from clearance; increase the dose.
High-anion-gap acidosis with an osmolar gap — toxic-alcohol poisoning; start fomepizole and arrange dialysis.
Lithium level rising again after dialysis — rebound from tissue redistribution; recheck and repeat or use CRRT.
New sedation, confusion, or bleeding in AKI — consider accumulating gabapentinoids, opioid metabolites, or LMWH.
Metformin continued in significant AKI — risk of lactic acidosis; hold it.

Panel B — Never do

NEVER — reduce the loading dose of an antibiotic in sepsis to 'spare the kidney.'
NEVER — dose drugs on CRRT as if the patient were anuric.
NEVER — trust an eGFR equation to dose in non-steady-state AKI without caution or levels.
NEVER — attempt to dialyse a high-volume-of-distribution toxin (e.g. a tricyclic) expecting removal.
12
Phase D · Level 12

Common Pitfalls

Pitfall 1 — Under-loading the antibiotic

WRONG Reducing the loading dose of an antibiotic in AKI sepsis.
RIGHT Giving the full loading dose and reducing only the maintenance.
WHY The load depends on volume of distribution, not clearance; reducing it delays therapeutic levels.

Pitfall 2 — Trusting the eGFR in flux

WRONG Dosing from a CKD-EPI eGFR in a patient whose creatinine is rapidly rising.
RIGHT Recognising the equation overestimates GFR in evolving AKI and dosing cautiously.
WHY eGFR equations assume a steady state that does not exist in acute injury.

Pitfall 3 — Anuric dosing on CRRT

WRONG Dosing antibiotics for anuria in a patient on CRRT.
RIGHT Dosing for the continuous clearance the circuit provides.
WHY CRRT clears drugs, so anuric dosing under-treats the infection.

Pitfall 4 — One-and-done for lithium

WRONG Stopping after a single dialysis session once the lithium level falls.
RIGHT Rechecking the level and repeating, or using CRRT for the rebound.
WHY Lithium redistributes from cells, so the plasma level rebounds after intermittent dialysis.

Pitfall 5 — Dialysing the undialysable

WRONG Attempting haemodialysis to remove a tricyclic or digoxin overdose.
RIGHT Using the appropriate measure (supportive care, digoxin-specific antibody fragments).
WHY A large volume of distribution or high protein binding leaves little free drug to remove.
13
Phase D · Level 13

Evidence Grading

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.

Graded statements (by evidence type)

StatementGradeBasis (evidence type)
Loading dose depends on volume of distribution and is usually unchanged in AKI.AEstablished pharmacokinetics
eGFR equations are invalid in non-steady-state AKI.APharmacokinetic principle
Antibiotics are commonly under-dosed on CRRT, risking treatment failure.BObservational and pharmacokinetic studies
Dialysability is predicted by molecular weight, protein binding, and volume of distribution.AEstablished pharmacology
Fomepizole plus haemodialysis treats severe toxic-alcohol poisoning.BConsensus and observational evidence
Lithium rebounds after intermittent dialysis from tissue redistribution.BPharmacokinetic and clinical data
Haemodialysis removes metformin and corrects the associated lactic acidosis.BObservational evidence and consensus

Patient Decisions

Phase E Patient Decisions
14
Phase E · Level 14

Absolute Risk in Natural Frequency

Natural-frequency estimates for orientation, from pharmacokinetic and toxicology cohorts; they vary with the drug, the toxin, and the modality. They convey the size of the dosing and removal decisions, expressed per 100 comparable patients.

Per 100 patients…OutcomeRoughly how manySee
On CRRT dosed as if anuricReach sub-therapeutic antibiotic levelsA substantial share — a common errorL13 row 3
With severe toxic-alcohol poisoning given fomepizole + HDSurvive with organ recoveryMore than with delayed treatmentL13 row 5
With severe lithium toxicity treated by intermittent HD aloneHave a rebound rise in levelA meaningful share — anticipate itL13 row 6
Dosed from an eGFR in rapidly rising creatinineBe over-dosedMore than with cautious dosingL13 row 2

How to read these

Read these as orientation, not promises; the numbers vary with the drug, the toxin, and the circuit. The stable signals: anuric dosing on CRRT under-treats, fomepizole plus dialysis works in toxic alcohols, lithium rebounds, and trusting an eGFR in flux over-doses. Communicate them as people out of 100, not as a hazard ratio.

Apply & Test

Phase F Apply & Test
17
Phase F · Level 17

Documentation Templates

Paste-ready notes. Tick the boxes that apply and delete the rest; make the dosing basis and the removal decision explicit.

Template 1 — AKI / RRT drug-dosing review

  • AKI stage ___ ; function trend: ☐ rising creatinine (eGFR overestimates) ☐ falling/recovery (eGFR underestimates) ☐ steady.
  • Loading doses given in full (esp. antibiotics): ☐ yes.
  • Maintenance doses reduced/extended for clearance: ☐ yes.
  • On RRT: ☐ CRRT (dosed for clearance — antibiotics not under-dosed) ☐ IHD (dialysable drugs after sessions) ☐ SLED.
  • Therapeutic drug monitoring: ☐ vancomycin ☐ aminoglycoside ☐ other ___ .
  • Accumulating drugs reviewed: ☐ gabapentinoids ☐ morphine ☐ LMWH ☐ metformin (held) ☐ sulfonylurea/digoxin.
  • Re-dose plan as function recovers: ___ .

Template 2 — Poisoning / ECTR decision

  • Suspected toxin ___ ; level ___ ; acid-base/osmolar gap ___ ; end-organ effects ___ .
  • Dialysable? ☐ yes (small, water-soluble, low protein binding, low Vd) ☐ no (high Vd / protein-bound).
  • Antidote/adjunct: ☐ fomepizole (toxic alcohols) ☐ urinary alkalinisation (salicylates) ☐ other ___ .
  • Extracorporeal treatment: ☐ IHD (rapid removal) ☐ CRRT (unstable / rebound) ☐ not indicated.
  • Rebound anticipated (e.g. lithium): ☐ recheck level post-session, repeat/continue as needed.
  • Poison centre / toxicology involved: ☐ yes.
18
Phase F · Level 18

Cheat Sheet

Full loading dose, reduced maintenance.
Never under-load antibiotics in sepsis.
eGFR equations invalid in non-steady-state AKI.
Rising creatinine → true GFR lower (over-dose risk); falling → higher (under-dose risk).
CRRT clears drugs — don't dose as anuric (antibiotic failure).
IHD: dose dialysable drugs after the session.
TDM for vancomycin, aminoglycosides.
Hold metformin in significant AKI (lactic acidosis).
Accumulate: gabapentinoids, morphine metabolites, LMWH, digoxin, sulfonylureas.
Dialysable = small + water-soluble + low protein binding + low Vd.
Dialysable poisons: methanol, ethylene glycol, salicylates, lithium, metformin, valproate (massive), theophylline, phenobarbital, dabigatran.
Not dialysable: TCAs, digoxin (Fab), most benzodiazepines.
IHD = fastest removal; CRRT = unstable / rebound.
Toxic alcohols: fomepizole + HD. Salicylates: alkalinise + HD if severe.
Lithium rebounds — recheck/repeat or CRRT.
Re-dose for recovering function (Chapter 15).
19
Phase F · Level 19

Flashcards

CARD 1

Q. Why is the loading dose usually unchanged in AKI while maintenance is reduced?

Show answer

A. The loading dose fills the volume of distribution (little changed by AKI) to reach therapeutic levels; maintenance replaces clearance, which AKI reduces.

DETAILED. Under-loading antibiotics in sepsis delays therapeutic levels.

CLINICAL. Full load, reduced maintenance.

CARD 2

Q. Why are eGFR equations invalid in evolving AKI?

Show answer

A. They assume steady state; with a rising creatinine the true GFR is lower than estimated (over-dose risk), and in recovery it is higher (under-dose risk).

DETAILED. The creatinine lags the true GFR.

CLINICAL. Distrust the number; dose cautiously and use drug levels.

CARD 3

Q. How should drugs be dosed on CRRT?

Show answer

A. For the continuous clearance the circuit provides — not as if anuric, which under-doses antibiotics and causes treatment failure.

DETAILED. On IHD, dose dialysable drugs after the session.

CLINICAL. Monitor narrow-window drugs by level.

CARD 4

Q. Which common drugs accumulate dangerously in AKI?

Show answer

A. Gabapentinoids (sedation), morphine's active metabolites, low-molecular-weight heparin (bleeding), digoxin, sulfonylureas; metformin risks lactic acidosis.

DETAILED. AKI turns a stable regimen toxic.

CLINICAL. Scan the chart and adjust or hold renally cleared drugs.

CARD 5

Q. What makes a toxin dialysable?

Show answer

A. Low molecular weight, water solubility, low protein binding, and a low volume of distribution — dialysis clears only free, small, plasma-confined drug.

DETAILED. Large Vd or high protein binding (TCAs, digoxin) are not dialysable.

CLINICAL. Predict dialysability from the physicochemistry.

CARD 6

Q. Name the classic dialysable poisons.

Show answer

A. Methanol and ethylene glycol, salicylates, lithium, metformin, valproate in massive overdose, theophylline, phenobarbital, and dabigatran.

DETAILED. These are small, water-soluble, and minimally bound.

CLINICAL. Consider extracorporeal removal when these poisonings are severe.

CARD 7

Q. How are toxic alcohols and lithium toxicity treated with ECTR?

Show answer

A. Toxic alcohols: fomepizole to block alcohol dehydrogenase plus haemodialysis to remove toxin and correct acidosis. Lithium: haemodialysis, anticipating rebound from tissue redistribution.

DETAILED. IHD removes fastest; CRRT manages rebound.

CLINICAL. Pair removal with the antidote and recheck after the session.

20
Phase F · Level 20

One-Minute Preceptor

SCENE 1
The intern lowering the antibiotic on CRRT
GET A COMMITMENT“You want to cut the antibiotic dose on CRRT — why?”
PROBE FOR EVIDENCE“To protect the kidneys” — ask: “What is CRRT doing to the drug, and what's the measured level?”
TEACH A GENERAL RULECRRT clears drugs; dosing as if anuric under-treats the sepsis — dose for the circuit's clearance, guided by levels.
REINFORCE WHAT WAS RIGHTThinking about renal handling was the right instinct.
CORRECT A MISTAKERaise the dose for CRRT clearance and confirm a full loading dose was given.
SCENE 2
The resident done after one lithium session
GET A COMMITMENT“You've stopped after one dialysis run because the lithium fell — what's your plan now?”
PROBE FOR EVIDENCE“The level normalised” — ask: “Where is most of the lithium, and what happens to the level after the session?”
TEACH A GENERAL RULELithium redistributes from cells, so the plasma level rebounds after intermittent dialysis — recheck and repeat, or use CRRT.
REINFORCE WHAT WAS RIGHTGetting effective removal in the first session was good.
CORRECT A MISTAKERecheck the level after the session and plan repeat or continuous treatment for the rebound.
22
Phase F · Level 22

Board-Style Questions

Q 01
Why is the loading dose of an antibiotic usually unchanged in AKI?

Tap an option to check your answer and reveal the explanation.

Q 02
A patient's creatinine is rapidly rising. Using a CKD-EPI eGFR to dose drugs will:

Tap an option to check your answer and reveal the explanation.

Q 03
A septic patient on CRRT has sub-therapeutic antibiotic levels because the drug was dosed as for anuria. The correct action is to:

Tap an option to check your answer and reveal the explanation.

Q 04
Which property makes a toxin amenable to removal by dialysis?

Tap an option to check your answer and reveal the explanation.

Q 05
A patient with ethylene-glycol poisoning, severe acidosis, and AKI should be treated with:

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Q 06
After a single intermittent haemodialysis session for lithium toxicity, the level falls then rises again hours later. This is because:

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Q 07
An elderly patient with new AKI becomes sedated and is bleeding while on gabapentin, morphine, and treatment-dose LMWH. The explanation is:

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Q 08
Which overdose is NOT effectively treated by haemodialysis?

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