09

APPLIED CHRONIC KIDNEY DISEASE · VOLUME 6

Chapter 9

Acidosis & Electrolytes

Bicarbonate, Potassium & the CKD Internal Milieu

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

Signals declared

  • Sig-D — Diagnostic (primary). Recognise the metabolic acidosis and electrolyte disturbances of CKD and read them against their consequences for bone, muscle, potassium, and progression.
  • Sig-T — Therapeutic (strong). Oral bicarbonate to a target, the potassium binders that enable the Part-2 pillars, and the management of magnesium and urate.

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 the 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 management chapter, and the relevant mechanisms (acid handling, potassium excretion) are summarised in narrative rather than mapped.
  • L15 / L16 preference-sensitive map and SDM scripts — omitted. No Sig-E; correcting acidosis and managing potassium are effective care.
  • L21 reflective prompts — omitted. No Sig-E/V; the chapter's tensions (the mixed bicarbonate-trial evidence) are worked through the grading and pitfalls.
Phase A Orientation & Knowledge
01
Phase A · Level 1

Learning Objectives

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

  • Explain why metabolic acidosis develops in CKD and the harm it causes to bone, muscle, potassium, and progression.
  • Treat metabolic acidosis with oral bicarbonate to an appropriate target, avoiding over-correction.
  • Summarise the evidence on bicarbonate for slowing progression and its limits.
  • Explain why hyperkalaemia develops in CKD and is worsened by the progression-slowing pillars.
  • Manage chronic hyperkalaemia so that RAAS blockade and finerenone can continue.
  • Use potassium binders appropriately and know which agent to avoid.
  • Manage magnesium and avoid magnesium-containing agents in advanced CKD.
  • Decide when to treat hyperuricaemia, and recognise that urate-lowering does not slow CKD progression.
02
Phase A · Level 2

Executive Summary

  • As nephrons are lost, the kidney excretes less acid, and a metabolic acidosis develops — initially normal-anion-gap, then high-anion-gap in advanced disease.
  • Acidosis is not benign: it buffers acid in bone (worsening CKD-MBD), drives muscle protein catabolism and wasting, aggravates hyperkalaemia, and accelerates CKD progression.
  • Treat with oral sodium bicarbonate to keep the serum bicarbonate at or above about 22, without over-correcting into alkalosis or excess sodium and volume.
  • Some trials show bicarbonate slows progression and preserves nutrition, while others, including in the elderly, are neutral — so the benefit is plausible but not uniform.
  • A base-rich, plant-dominant diet lowers the acid load and is a complementary approach.
  • Hyperkalaemia arises from reduced renal potassium excretion and is worsened by RAAS blockade and finerenone, acidosis, constipation, and diet.
  • Severe hyperkalaemia with ECG changes is an emergency treated with the standard measures; the CKD-specific challenge is chronic management.
  • The goal of chronic management is to keep patients on the protective pillars, not to stop them at the first elevated potassium.
  • Restrict dietary potassium thoughtfully, correct acidosis, use diuretics, and add a modern potassium binder — patiromer or sodium zirconium cyclosilicate — to enable continued RAAS blockade.
  • Avoid sodium polystyrene sulfonate where modern binders are available, given its gastrointestinal risk.
  • Magnesium accumulates as excretion falls, so avoid magnesium-containing laxatives and antacids in advanced CKD.
  • Hyperuricaemia is common, but urate-lowering does not slow CKD progression — treat symptomatic gout, not asymptomatic hyperuricaemia, for renoprotection.
  • Correcting acidosis and managing potassium are, in part, ways of protecting the bone, the muscle, and the pillars — not isolated number-chasing.
03
Phase A · Level 3

Main Narrative

The failing kidney loses control of the body's chemistry, and two disturbances in particular are both common and actionable: metabolic acidosis and hyperkalaemia. Each is more than a number on a panel. Acidosis quietly erodes bone and muscle and may hasten the kidney's own decline; hyperkalaemia is the side effect that most often drives clinicians to abandon the very drugs that protect the kidney. Managing both well is less about chasing values than about protecting the patient and preserving the therapies of Part 2.

Why acidosis develops, and why it matters

The kidney's job in acid-base balance is to excrete the daily acid load, largely by generating ammonia in the tubule. As nephrons are lost, ammoniagenesis and acid excretion fall, and acid accumulates — a metabolic acidosis that begins as a normal-anion-gap picture and, in advanced CKD, acquires a high anion gap as retained anions build up. The reason to treat it is that acidosis is not inert. The body buffers the retained acid in bone, demineralising it and worsening the mineral-bone disorder of the last chapter. It drives muscle protein catabolism, contributing to the protein-energy wasting that harms CKD patients. It aggravates hyperkalaemia by shifting potassium out of cells. And it appears to accelerate CKD progression itself, acting as one of the amplifiers of Chapter 2 through ammonia-mediated and hormonal tubular injury. So correcting acidosis is, simultaneously, a bone, muscle, potassium, and progression intervention.

Treating acidosis with bicarbonate

The mainstay is oral sodium bicarbonate, titrated to keep the serum bicarbonate at or above about 22 mmol/L. The aim is correction, not over-correction: pushing bicarbonate above the normal range courts a metabolic alkalosis and, because bicarbonate is a sodium salt, adds a sodium and volume load that can worsen blood pressure, so the target is the lower-normal range rather than the highest achievable. The evidence is genuinely mixed. Some trials — including an influential one — found that correcting acidosis slowed CKD progression and preserved nutritional status, while others, particularly in older patients, were neutral on the outcomes they measured. The honest reading is that bicarbonate is plausibly progression-slowing and clearly corrects a harmful metabolic state, but the magnitude of the progression benefit is uncertain. A base-rich, plant-dominant diet, which lowers the dietary acid load, is a complementary and increasingly favoured approach, and newer acid-binding agents are under investigation. Correct the acidosis; do not over-correct it.

Why hyperkalaemia is the pillar-limiting problem

Potassium excretion depends on functioning nephrons and on aldosterone, both compromised in CKD, so hyperkalaemia is common and becomes more so as the GFR falls. Several factors stack on top: the RAAS blockade and finerenone of Part 2 reduce aldosterone-driven potassium excretion and raise potassium; acidosis shifts potassium out of cells; constipation reduces the colonic excretion that becomes important in CKD; and a high-potassium diet adds load. The clinical importance is specific. Severe hyperkalaemia with ECG changes is an acute emergency managed with the standard measures — calcium to stabilise the membrane, insulin-glucose and other shifts, and removal — covered with the electrolyte emergencies elsewhere. But the CKD-defining problem is chronic hyperkalaemia, and its significance is that it is the commonest reason clinicians stop RAAS blockade and finerenone, forfeiting the kidney and cardiovascular protection those drugs provide. Managing chronic hyperkalaemia is, in large part, about keeping patients on the pillars.

Managing chronic hyperkalaemia

The chronic-management toolkit is built to enable, not abandon, the protective drugs. Dietary potassium is restricted thoughtfully — mindful of the potassium paradox of Chapter 6, where a healthy plant-rich diet is potassium-rich but beneficial, so blanket restriction is avoided. Acidosis is corrected, which itself lowers potassium. Diuretics enhance renal potassium excretion. Constipation is treated. And the modern potassium binders — patiromer and sodium zirconium cyclosilicate — bind potassium in the gut and have transformed chronic management by allowing RAAS blockade and finerenone to be continued at effective doses rather than withdrawn. The older binder, sodium polystyrene sulfonate, is best avoided where the modern agents are available, given concern about gastrointestinal injury including bowel necrosis. The governing principle, carried from the RAAS chapter, is to manage the potassium so the drug can stay, reserving discontinuation for hyperkalaemia that genuinely cannot be controlled.

Magnesium, urate, and the other electrolytes

Two further electrolyte issues deserve brief, specific attention. Magnesium is excreted by the kidney, so as the GFR falls magnesium accumulates, and the practical lesson is to avoid magnesium-containing laxatives and antacids in advanced CKD, which can precipitate dangerous hypermagnesaemia. Hyperuricaemia is common in CKD and tempts clinicians to treat it for renoprotection, but the trials of urate-lowering therapy in CKD did not show a slowing of progression — so urate-lowering is indicated for symptomatic gout, which is genuinely more frequent in CKD, but not for asymptomatic hyperuricaemia in the hope of protecting the kidney. The other disturbances — sodium and water handling, phosphate (the subject of the mineral-bone chapter) — are managed in their own contexts; the CKD-specific, high-yield actions of this chapter are correcting acidosis and managing potassium.

Where the evidence is firm, and where it is mixed

The firm parts are mechanistic and practical: that acidosis harms bone, muscle, and potassium balance, that potassium binders enable continuation of RAAS blockade, and that urate-lowering does not slow CKD progression are all well supported, the last by dedicated randomised trials. The mixed part is the progression benefit of bicarbonate — promising in some trials, neutral in others — so it is treated as a reasonable, low-risk intervention that corrects a harmful state, rather than a proven disease-modifier on the level of the Part-2 pillars. The disciplined approach is to correct acidosis without over-correcting, to use binders to keep patients on their protective drugs, to avoid magnesium loading, and to spare patients urate-lowering therapy given for the wrong reason.

04
Phase A · Level 4

Reference Tables

Table 9.1 — Metabolic acidosis in CKD

AspectDetail
MechanismReduced ammoniagenesis and acid excretion as nephrons are lost
PatternNormal-anion-gap early; high-anion-gap in advanced CKD
HarmsBone demineralisation, muscle catabolism, worse hyperkalaemia, faster progression
TargetKeep serum bicarbonate ≥ ~22 mmol/L

Table 9.2 — Bicarbonate therapy: evidence and cautions

PointDetail
AgentOral sodium bicarbonate, titrated to target
Progression benefitMixed — positive in some trials, neutral in others (e.g. elderly)
Other benefitCorrects a harmful metabolic state (bone, muscle, potassium)
CautionAvoid over-correction — alkalosis, sodium/volume load, higher BP
ComplementaryBase-rich, plant-dominant diet lowers acid load

Table 9.3 — Causes of hyperkalaemia in CKD

FactorEffect
Reduced excretionFewer nephrons; reduced aldosterone effect
RAAS blockade / finerenoneReduce potassium excretion (Chapters 4–5)
AcidosisShifts potassium out of cells
ConstipationReduces colonic potassium excretion
DietHigh potassium intake adds load

Table 9.4 — Managing chronic hyperkalaemia

MeasureDetail
DietThoughtful restriction — mind the potassium paradox (Chapter 6)
Correct acidosisBicarbonate lowers potassium
Diuretics / constipationEnhance excretion; treat constipation
Potassium bindersPatiromer or SZC — enable continued RAAS/finerenone
AvoidSodium polystyrene sulfonate where modern binders exist (GI injury)

Table 9.5 — Magnesium and urate in CKD

IssueAction
HypermagnesaemiaMagnesium accumulates — avoid Mg-containing laxatives/antacids
Hyperuricaemia (asymptomatic)Do NOT treat for renoprotection — trials show no slowing of progression
Gout (symptomatic)Treat — genuinely more common in CKD
Sodium/waterManage in context (water handling, volume)

Table 9.6 — The acidosis–progression–pillar links

LinkImplication
Acidosis → progressionAn amplifier of the final common pathway — correct it
Acidosis → hyperkalaemiaCorrecting acidosis lowers potassium
Hyperkalaemia → RAAS withdrawalThe commonest reason the pillars are stopped
Binders → pillar continuationKeep patients on protective therapy

Visualise & Map

Phase B Visualise & Map
05
Phase B · Level 5

Imaging & Flowchart Specifications

Figure 9.1 — The harms of acidosis
Figure 9.1 — The harms of acidosis
Figure 9.2 — Keeping patients on the pillars
Figure 9.2 — Keeping patients on the pillars
Figure 9.3 — The bicarbonate target window
Figure 9.3 — The bicarbonate target window
Flowchart 9.A — Acidosis and potassium in CKD
Flowchart 9.A — Acidosis and potassium in CKD

Clinical Reasoning

Phase C Clinical Reasoning
08
Phase C · Level 8

Clinical Cases

CASE 1THE LOW BICARBONATE

More than a numberCorrecting metabolic acidosis

Presentation

A patient with CKD G4 has a persistent serum bicarbonate of 18 mmol/L. The team regards it as an incidental finding and does not treat it; over time the patient loses muscle mass and the bone disease worsens.

Pause and reflect

Is a bicarbonate of 18 just a number, or is it doing harm?

Analysis

It is doing harm. A metabolic acidosis this degree buffers acid in bone (worsening the mineral-bone disorder), drives muscle protein catabolism (contributing to the muscle loss), aggravates hyperkalaemia, and may accelerate progression. Treating it to a target of at least 22 addresses all of these at once. Dismissing it as incidental missed a low-risk, multi-benefit intervention.

Plan

Start oral sodium bicarbonate to keep the serum bicarbonate at or above 22, without over-correcting, and consider a base-rich, plant-dominant diet. Monitor bicarbonate, sodium, volume, and blood pressure.

Teaching point

CKD acidosis is not incidental — it harms bone, muscle, potassium, and progression. Treat bicarbonate below 22, without over-correcting.

Cross-reference

Exercises rules R1 and R2; the harms-of-acidosis figure (9.1); Tables 9.1 and 9.2; CKD-MBD in Chapter 8.

CASE 2DON'T STOP THE PILLAR

Bind the potassium insteadChronic hyperkalaemia on RAAS

Presentation

A patient with proteinuric CKD on a maximal ACE inhibitor and finerenone develops a persistent potassium of 5.7 mmol/L. The plan is to stop both drugs to bring the potassium down.

Pause and reflect

Is stopping the protective drugs the right way to manage this chronic hyperkalaemia?

Analysis

Stopping the pillars would correct the potassium but forfeit the kidney and cardiovascular protection that RAAS blockade and finerenone provide — and chronic hyperkalaemia is usually manageable without that sacrifice. Thoughtful dietary restriction, correcting any acidosis, a diuretic, treating constipation, and a modern potassium binder can lower the potassium while the drugs continue. Reflexive withdrawal is the error this whole approach exists to prevent.

Plan

Keep the ACE inhibitor and finerenone. Correct acidosis, optimise a diuretic, address constipation and diet, and start patiromer or sodium zirconium cyclosilicate to control the potassium. Recheck and continue the pillars; avoid sodium polystyrene sulfonate.

Teaching point

Chronic hyperkalaemia is managed to keep the protective pillars on board — bind the potassium, don't reflexively stop the drug.

Cross-reference

Exercises rules R4 and R5; the keep-on-pillars figure (9.2); Tables 9.3 and 9.4; RAAS in Chapter 4, finerenone in Chapter 5.

CASE 3OVER-CORRECTED

Too much bicarbonateAvoiding over-correction

Presentation

A patient on escalating doses of oral bicarbonate now has a bicarbonate of 30 mmol/L, worsening hypertension, and increasing oedema. The team keeps increasing the dose to 'fully correct' the acidosis.

Pause and reflect

Is pushing the bicarbonate ever higher the right goal?

Analysis

No. The target is the lower-normal range, around 22 to 26, not the highest achievable. Pushing bicarbonate to 30 has produced a metabolic alkalosis and, because bicarbonate is a sodium salt, a sodium and volume load that is worsening her hypertension and oedema. Over-correction trades the harms of acidosis for the harms of alkalosis and volume. The goal is correction, not maximisation.

Plan

Reduce the bicarbonate dose to target a serum level in the lower-normal range, and address the sodium and volume load. Re-target correction rather than over-correction.

Teaching point

Correct acidosis, don't over-correct it — excess bicarbonate causes alkalosis and a sodium/volume load that worsens blood pressure.

Cross-reference

Exercises rule R3; the target-window figure (9.3); Table 9.2.

CASE 4THE ASYMPTOMATIC URATE

Treat gout, not the numberHyperuricaemia in CKD

Presentation

A patient with CKD has an asymptomatic hyperuricaemia. The team plans to start urate-lowering therapy specifically to slow the CKD progression, citing the association between urate and kidney decline.

Pause and reflect

Does lowering an asymptomatic urate slow CKD progression?

Analysis

The association is real, but the randomised trials of urate-lowering therapy in CKD did not show a slowing of progression, so treating asymptomatic hyperuricaemia for renoprotection is not supported and exposes the patient to drug risk without benefit. Urate-lowering is indicated for symptomatic gout — which is genuinely more common in CKD — not for the number alone.

Plan

Do not start urate-lowering therapy for the asymptomatic hyperuricaemia as a renoprotective measure. Reserve it for symptomatic gout, and focus renoprotection on the proven pillars and acidosis correction.

Teaching point

Urate-lowering does not slow CKD progression — treat symptomatic gout, not asymptomatic hyperuricaemia, for the kidney.

Cross-reference

Exercises rule R8; Table 9.5.

10
Phase C · Level 10

Clinical Pearls

CKD acidosis: reduced ammoniagenesis/acid excretion → retained acid.
Pattern: normal-anion-gap early, high-anion-gap in advanced CKD.
Acidosis harms: bone demineralisation, muscle catabolism, worse hyperkalaemia, faster progression.
Treat with oral bicarbonate to keep serum bicarbonate ≥ ~22.
Don't over-correct — alkalosis, sodium/volume load, higher BP.
Bicarbonate progression benefit is mixed across trials — plausible, not proven.
A base-rich, plant-dominant diet lowers the acid load.
Hyperkalaemia: reduced excretion + RAAS/finerenone + acidosis + constipation + diet.
Severe hyperkalaemia with ECG changes = acute emergency (standard measures).
Chronic hyperkalaemia is the commonest reason the pillars are wrongly stopped.
Manage chronic K to KEEP patients on RAAS/finerenone.
Correcting acidosis itself lowers potassium.
Binders: patiromer or SZC enable continued RAAS/finerenone.
Avoid sodium polystyrene sulfonate where modern binders exist (GI injury).
Magnesium accumulates — avoid Mg-containing laxatives/antacids in advanced CKD.
Urate-lowering does NOT slow CKD progression — treat gout, not the number.

Safety & Evidence

Phase D Safety & Evidence
11
Phase D · Level 11

Red Flags & Never-Do

Panel A — Red flags

Severe hyperkalaemia with ECG changes — an acute emergency; treat immediately with the standard measures.
A persistently low bicarbonate dismissed as incidental — it harms bone, muscle, and progression; treat it.
RAAS blockade or finerenone being stopped for a manageable chronic hyperkalaemia — bind the potassium instead.
Rising bicarbonate above normal with worsening BP/oedema — over-correction; reduce the dose.
Hypermagnesaemia in advanced CKD — look for magnesium-containing laxatives or antacids and stop them.

Panel B — Never do

NEVER — treat CKD acidosis as an incidental finding.
NEVER — over-correct bicarbonate above the normal range.
NEVER — stop the protective pillars for a manageable chronic hyperkalaemia.
NEVER — start urate-lowering therapy for asymptomatic hyperuricaemia to slow CKD.
12
Phase D · Level 12

Common Pitfalls

Pitfall 1 — Ignoring the acidosis

WRONG Leaving a bicarbonate of 18 untreated as incidental.
RIGHT Correcting it to a target of at least 22.
WHY Acidosis harms bone, muscle, potassium, and progression.

Pitfall 2 — Over-correcting

WRONG Pushing bicarbonate to 30 to 'fully correct' acidosis.
RIGHT Targeting the lower-normal range (~22–26).
WHY Over-correction causes alkalosis and a sodium/volume load that worsens BP.

Pitfall 3 — Stopping the pillar

WRONG Stopping RAAS blockade and finerenone for a chronic potassium of 5.7.
RIGHT Managing the potassium with binders and the other measures to keep the drugs.
WHY Withdrawal forfeits kidney and cardiovascular protection for a manageable problem.

Pitfall 4 — The old binder

WRONG Reaching for sodium polystyrene sulfonate by default.
RIGHT Using a modern binder (patiromer or SZC) where available.
WHY Sodium polystyrene sulfonate carries a risk of gastrointestinal injury.

Pitfall 5 — Treating the urate number

WRONG Starting urate-lowering therapy for asymptomatic hyperuricaemia to protect the kidney.
RIGHT Reserving it for symptomatic gout.
WHY Trials show urate-lowering does not slow CKD progression.
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)
Metabolic acidosis harms bone, muscle, and potassium balance.AEstablished physiology and observational data
Bicarbonate corrects acidosis; the progression benefit is mixed across trials.BRCTs with inconsistent outcomes
Over-correction of bicarbonate causes alkalosis and sodium/volume load.APharmacology and physiology
Hyperkalaemia is worsened by RAAS blockade and finerenone.AEstablished pharmacology and trial data
Potassium binders enable continuation of RAAS blockade.ARCTs of binders
Sodium polystyrene sulfonate carries a risk of gastrointestinal injury.BCase series and observational data
Urate-lowering does not slow CKD progression.ADedicated RCTs (CKD-FIX/PERL-type)

Patient Decisions

Phase E Patient Decisions
14
Phase E · Level 14

Absolute Risk in Natural Frequency

Natural-frequency estimates for orientation, from the relevant trials; they vary with population and severity. They convey the size of the acidosis and potassium decisions, expressed per 100 comparable patients.

Per 100 patients…OutcomeRoughly how manySee
With acidosis given bicarbonateSlow progression vs untreatedSome in supportive trials; uncertain overallL13 row 2
On RAAS blockade given a potassium binderContinue the drug rather than stoppingMany more than without a binderL13 row 5
With asymptomatic hyperuricaemia given urate-loweringSlow CKD progressionNo more than placeboL13 row 7
Over-corrected with bicarbonateDevelop alkalosis / worse BP/oedemaA meaningful share — hence target the lower-normal rangeL13 row 3

How to read these

Read these as orientation, not promises; the bicarbonate progression data are inconsistent. The stable signals: binders keep patients on protective drugs, urate-lowering does not slow CKD, and over-correcting bicarbonate harms. 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 bicarbonate target and the pillar-preservation explicit.

Template 1 — Acidosis and bicarbonate plan

  • Serum bicarbonate ___ ; anion gap ___ — ☐ normal-gap ☐ high-gap (advanced).
  • Harms noted: ☐ bone (Chapter 8) ☐ muscle/wasting ☐ hyperkalaemia ☐ progression.
  • Oral bicarbonate started/titrated to keep ≥ 22; ☐ NOT over-corrected (target lower-normal ~22–26).
  • Base-rich/plant-dominant diet considered: ☐ yes.
  • Monitoring: bicarbonate, sodium, volume, BP.

Template 2 — Chronic hyperkalaemia management

  • Potassium ___ — ☐ acute/ECG changes → emergency management ☐ chronic.
  • Contributors addressed: ☐ acidosis corrected ☐ constipation treated ☐ diuretic optimised ☐ diet (mind potassium paradox).
  • Binder: ☐ patiromer ☐ sodium zirconium cyclosilicate (SPS avoided).
  • Protective pillars: ☐ RAAS blockade continued ☐ finerenone continued (not reflexively stopped).
  • Magnesium: ☐ Mg-containing laxatives/antacids avoided.
  • Urate: ☐ treat only symptomatic gout (not asymptomatic for renoprotection).
18
Phase F · Level 18

Cheat Sheet

CKD acidosis = reduced acid excretion (ammoniagenesis).
Normal-gap early → high-gap advanced.
Harms: bone, muscle, hyperkalaemia, progression.
Treat bicarbonate < 22 → keep ≥ 22.
Don't over-correct (alkalosis, Na/volume, BP).
Bicarbonate progression benefit = mixed (plausible, not proven).
Plant-dominant diet lowers acid load.
Hyperkalaemia: ↓ excretion + RAAS/finerenone + acidosis + constipation + diet.
Severe + ECG → acute emergency.
Chronic K = top reason pillars are wrongly stopped.
Manage K to KEEP RAAS/finerenone.
Correcting acidosis lowers K.
Binders: patiromer / SZC enable the pillars.
Avoid SPS where modern binders exist.
Magnesium accumulates — avoid Mg laxatives/antacids.
Urate-lowering doesn't slow CKD — treat gout, not the number.
19
Phase F · Level 19

Flashcards

CARD 1

Q. Why does metabolic acidosis develop in CKD, and why treat it?

Show answer

A. Reduced ammoniagenesis and acid excretion as nephrons are lost cause acid to accumulate; acidosis harms bone, muscle, potassium balance, and progression.

DETAILED. It is normal-anion-gap early, high-anion-gap in advanced disease.

CLINICAL. Treat with bicarbonate to keep serum bicarbonate ≥ 22.

CARD 2

Q. How is bicarbonate used, and what is the evidence?

Show answer

A. Oral sodium bicarbonate titrated to keep serum bicarbonate at or above about 22, without over-correcting; trials of its progression benefit are mixed but it corrects a harmful state.

DETAILED. Over-correction causes alkalosis and a sodium/volume load.

CLINICAL. Correct, don't over-correct; consider a base-rich diet.

CARD 3

Q. Why is hyperkalaemia the pillar-limiting problem in CKD?

Show answer

A. Reduced potassium excretion, worsened by RAAS blockade and finerenone, acidosis, constipation, and diet, makes hyperkalaemia common — and it is the commonest reason clinicians stop the protective drugs.

DETAILED. Stopping the pillars forfeits their protection.

CLINICAL. Manage the potassium to keep the drugs.

CARD 4

Q. How is chronic hyperkalaemia managed to preserve the pillars?

Show answer

A. Thoughtful dietary restriction, correcting acidosis, diuretics, treating constipation, and modern potassium binders (patiromer, sodium zirconium cyclosilicate) to continue RAAS blockade and finerenone.

DETAILED. Correcting acidosis itself lowers potassium.

CLINICAL. Bind the potassium rather than stopping the drug.

CARD 5

Q. Which potassium binder should be avoided, and why?

Show answer

A. Sodium polystyrene sulfonate, where modern binders are available, because of a risk of gastrointestinal injury including bowel necrosis.

DETAILED. Patiromer and sodium zirconium cyclosilicate are preferred.

CLINICAL. Use a modern binder by default.

CARD 6

Q. What is the magnesium issue in advanced CKD?

Show answer

A. Magnesium is renally excreted and accumulates as the GFR falls, so magnesium-containing laxatives and antacids can cause dangerous hypermagnesaemia.

DETAILED. It is an avoidable, iatrogenic problem.

CLINICAL. Avoid magnesium-containing agents in advanced CKD.

CARD 7

Q. Should asymptomatic hyperuricaemia be treated to slow CKD?

Show answer

A. No — randomised trials of urate-lowering therapy in CKD did not show slowing of progression, so it is not used for renoprotection.

DETAILED. The urate-progression association is not causal-actionable.

CLINICAL. Treat symptomatic gout, not the asymptomatic number.

20
Phase F · Level 20

One-Minute Preceptor

SCENE 1
The intern ignoring the bicarbonate
GET A COMMITMENT“You've left this bicarbonate of 18 untreated as incidental — why?”
PROBE FOR EVIDENCE“It's just a mild acidosis” — ask: “What does chronic acidosis do to bone, muscle, and progression?”
TEACH A GENERAL RULECKD acidosis harms bone, drives muscle wasting, worsens hyperkalaemia, and may speed progression — treat a bicarbonate below 22 toward at least 22, without over-correcting.
REINFORCE WHAT WAS RIGHTNoting the value was the first step.
CORRECT A MISTAKEStart oral bicarbonate to target and consider a base-rich diet.
SCENE 2
The resident stopping the pillars
GET A COMMITMENT“You're stopping the ACE inhibitor and finerenone for a potassium of 5.7 — why?”
PROBE FOR EVIDENCE“To bring the potassium down” — ask: “What do those drugs do for the kidney, and what else can lower the potassium?”
TEACH A GENERAL RULEChronic hyperkalaemia is usually manageable — correct acidosis, optimise diet/diuretics, and use a binder — so the protective pillars can continue.
REINFORCE WHAT WAS RIGHTRecognising the hyperkalaemia mattered was correct.
CORRECT A MISTAKEKeep the pillars and bind the potassium instead.
22
Phase F · Level 22

Board-Style Questions

Q 01
Why is metabolic acidosis in CKD worth treating?

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

Q 02
What is the serum-bicarbonate target when treating CKD acidosis?

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

Q 03
The evidence that bicarbonate slows CKD progression is best described as:

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

Q 04
A patient on a maximal ACE inhibitor and finerenone has a chronic potassium of 5.7. The best approach is to:

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

Q 05
Which potassium binder is best avoided where modern agents are available?

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

Q 06
Why is over-correction of acidosis with bicarbonate harmful?

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

Q 07
Should asymptomatic hyperuricaemia be treated to slow CKD progression?

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

Q 08
Across 100 CKD patients on RAAS blockade, adding a potassium binder for hyperkalaemia (versus no binder) typically:

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