05

APPLIED CHRONIC KIDNEY DISEASE · VOLUME 6

Chapter 5

The Modern Pillars

SGLT2 Inhibitors, Finerenone & Stacked Protection

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

Signals declared

  • Sig-D — Diagnostic (primary). Recognise who needs which pillar, read the expected eGFR dip on starting an SGLT2 inhibitor, and monitor potassium across the stack.
  • Sig-T — Therapeutic (strong). The modern pillars of kidney protection — SGLT2 inhibitors, finerenone, and the emerging GLP-1 agonists — layered on the RAAS foundation of Chapter 4.
  • Sig-M — Mechanistic (strong). How SGLT2 inhibition restores tubuloglomerular feedback to lower intraglomerular pressure, and how finerenone blocks the profibrotic aldosterone signal.
  • Sig-V — Evidence-dense (strong). This is one of the most trial-rich areas in nephrology — CREDENCE, DAPA-CKD, EMPA-KIDNEY, FIDELIO/FIGARO, and FLOW — so the chapter grades and reflects.

Levels populated and omitted

Populated (20): L1–L14, L17–L22. As a four-signal flagship it fires nearly everything — concept maps and triads (Sig-M), the absolute-risk table and templates (Sig-T), and the reflective prompts (Sig-V).

  • L15 / L16 preference-sensitive map and SDM scripts — omitted. No Sig-E; layering proven, guideline-recommended pillars is effective care.
Phase A Orientation & Knowledge
01
Phase A · Level 1

Learning Objectives

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

  • Explain how SGLT2 inhibitors restore tubuloglomerular feedback to lower intraglomerular pressure.
  • Justify why SGLT2-inhibitor kidney protection is glucose-independent and applies to non-diabetic CKD.
  • Interpret the expected eGFR dip on starting an SGLT2 inhibitor and continue through it.
  • State the trial evidence and the eGFR thresholds for SGLT2 inhibitors in CKD.
  • Describe finerenone's mechanism and its role added to RAAS blockade in diabetic CKD.
  • Use the potassium synergy between SGLT2 inhibitors and the RAAS/MRA pillars.
  • Position GLP-1 receptor agonists as an emerging pillar in diabetic and obese CKD.
  • Stack the pillars rationally and apply sick-day rules to SGLT2 inhibitors.
02
Phase A · Level 2

Executive Summary

  • Modern CKD care layers several proven therapies — pillars — each interrupting the final common pathway at a different point, on the RAAS foundation of Chapter 4.
  • SGLT2 inhibitors are the transformative addition: they block proximal glucose-sodium reabsorption, raising distal sodium delivery to the macula densa and restoring tubuloglomerular feedback.
  • That restored feedback constricts the afferent arteriole, lowering intraglomerular pressure and the hyperfiltration that drives progression.
  • Their kidney protection is glucose-independent, so it applies to CKD with or without diabetes — a key conceptual shift.
  • CREDENCE, DAPA-CKD, and EMPA-KIDNEY together show large, consistent reductions in CKD progression and cardiovascular and heart-failure outcomes across a broad range of patients.
  • Start an SGLT2 inhibitor down to an eGFR of around 20 and continue it until dialysis or transplant; expect an initial reversible eGFR dip that is haemodynamic, not toxic.
  • Their main safety issues are genital mycotic infection, volume depletion with diuretics, and rare euglycaemic ketoacidosis — hold them during acute illness or surgery.
  • Finerenone, a selective non-steroidal mineralocorticoid antagonist, blocks the profibrotic and pro-inflammatory action of aldosterone with less hyperkalaemia than steroidal MRAs.
  • In diabetic CKD with albuminuria already on RAAS blockade, finerenone (FIDELIO/FIGARO) further reduces kidney and cardiovascular events.
  • RAAS blockade and finerenone raise potassium while SGLT2 inhibitors lower it — a synergy that makes stacking more tolerable.
  • GLP-1 receptor agonists are an emerging pillar: in diabetic CKD they reduce kidney and cardiovascular outcomes (FLOW) and aid weight and glycaemia.
  • The paradigm, like heart-failure therapy, is to stack the pillars for additive protection rather than rely on any one.
  • Each pillar targets a distinct mechanism, which is why their benefits add and why most progressive CKD now warrants more than RAAS blockade alone.
  • Monitor potassium across the stack, apply sick-day rules to SGLT2 inhibitors, and continue the pillars through their expected, benign eGFR effects.
03
Phase A · Level 3

Main Narrative

For decades, RAAS blockade stood almost alone as a disease-modifying therapy in CKD. That era is over. A handful of trials in the last few years have given nephrology a set of additional pillars — SGLT2 inhibitors above all, then finerenone, and now the GLP-1 agonists — each proven to slow progression, each acting on a different point of the final common pathway, and each adding to the others. Modern CKD care is the deliberate stacking of these pillars, and this chapter is the centre of the volume because it is where the mechanism of Chapter 2 meets the most powerful therapeutics nephrology has.

The pillars, and why they stack

The organising idea is the pillar. Just as heart-failure care layers four drug classes that each improve outcomes by a different mechanism, CKD care now layers several: renin-angiotensin blockade as the foundation, SGLT2 inhibition, the non-steroidal mineralocorticoid antagonist finerenone, and — increasingly — GLP-1 receptor agonists, all on a base of blood-pressure control, proteinuria reduction, and lifestyle. They stack because they are not redundant: each interrupts the progression pathway at a distinct point, so their benefits add rather than overlap. The practical consequence is a shift in expectation — for most patients with progressive CKD, RAAS blockade alone is no longer enough, and the question has become which pillars this patient needs and in what order.

SGLT2 inhibitors: restoring tubuloglomerular feedback

The SGLT2 inhibitor is the transformative pillar, and its renal mechanism is elegant. It blocks the sodium-glucose cotransporter in the proximal tubule, so less sodium is reabsorbed there and more is delivered downstream to the macula densa. The macula densa reads that increased sodium as a signal that the glomerulus is over-filtering, and through tubuloglomerular feedback it constricts the afferent arteriole — lowering the intraglomerular pressure that, since Chapter 2, we have known to be the engine of progression. In other words, the drug works by restoring a feedback loop that hyperfiltration had switched off, dilating nothing and constricting the afferent rather than the efferent, which complements RAAS blockade's efferent dilation. On top of this haemodynamic core sit further benefits: a natriuresis and mild diuresis, a reduced tubular workload and oxygen demand, and metabolic and anti-inflammatory effects. The result is protection that begins at the glomerulus and extends through the tubulointerstitium.

Glucose-independent, and proven across CKD

Because that mechanism is haemodynamic and not glycaemic, the kidney protection is glucose-independent — it does not depend on lowering blood sugar and is undiminished in patients without diabetes. This was the conceptual leap the trials confirmed. CREDENCE established the benefit in albuminuric diabetic CKD; DAPA-CKD extended it to CKD with or without diabetes, including non-diabetic causes; and EMPA-KIDNEY broadened it further across a wide range of eGFR and to patients without albuminuria. Together they show large, consistent reductions in CKD progression to dialysis, in cardiovascular death, and in heart-failure hospitalisation, in populations that span most of the CKD clinic. An SGLT2 inhibitor is now indicated in CKD down to an eGFR of around 20, started there and continued until dialysis or transplant, with the glycaemic effect fading at low eGFR while the kidney and cardiovascular benefit persists.

The dip that is not damage

As with RAAS blockade, starting an SGLT2 inhibitor produces a small, reversible fall in eGFR — a dip of a few millilitres per minute over the first weeks — and as with RAAS blockade, this alarms the unwary into stopping the drug. The dip is the mechanism, not toxicity: the restored tubuloglomerular feedback has constricted the afferent arteriole and lowered glomerular pressure, exactly as intended, and the trials show that patients who dip go on to have slower long-term decline. The eGFR stabilises and the long-term slope is gentler than without the drug. The discipline is identical to the RAAS lesson of the previous chapter — expect the dip, continue through it, and do not mistake the sign of the drug working for a sign of harm.

Using SGLT2 inhibitors safely

The safety profile is favourable but has specific pitfalls. Genital mycotic infections are the commonest adverse effect, a consequence of the glucosuria the drug induces. The natriuresis can cause volume depletion, so doses of concurrent diuretics may need adjusting. Rare but serious is euglycaemic diabetic ketoacidosis — ketoacidosis without the expected high glucose — which is why these drugs are held during acute dehydrating illness, around surgery, and in any state of starvation or volume stress, the sick-day rules of the poisoning chapter. Fournier's gangrene is a rare association. They are not used for kidney protection in type 1 diabetes. None of this offsets the benefit for the great majority, but each item is a thing to anticipate, counsel on, and build into the prescription.

Finerenone: blocking the profibrotic aldosterone signal

The third pillar addresses a mechanism the first two leave standing: aldosterone's direct profibrotic and pro-inflammatory action on the kidney, noted in Chapter 2. Finerenone is a selective, non-steroidal mineralocorticoid-receptor antagonist, distinct from the steroidal spironolactone in being more selective and causing less hyperkalaemia and fewer hormonal effects. In diabetic CKD with albuminuria, in patients already on optimised RAAS blockade, the FIDELIO and FIGARO trials — pooled in FIDELITY — showed it further reduces kidney and cardiovascular events. Its place is therefore as an add-on in diabetic CKD with residual albuminuria despite maximal RAAS blockade. Its main caution is hyperkalaemia, less than with spironolactone but real, so potassium is monitored — which leads to the synergy that makes the modern stack workable.

Stacking the pillars, and the potassium synergy

Layering these drugs raises an obvious worry: RAAS blockade and finerenone both raise potassium, so stacking them might seem to court hyperkalaemia. Here the SGLT2 inhibitor helps in an unexpected way — it tends to lower potassium, partly through its diuretic and other effects, offsetting the rise from the other two and making the combination more tolerable than its parts suggest. So the stack is not merely additive in benefit but partly self-balancing in its commonest side effect. The emerging fourth pillar, the GLP-1 receptor agonists, adds another mechanism: in diabetic CKD the FLOW trial showed semaglutide reduces kidney and cardiovascular outcomes, alongside its weight and glycaemic benefits, making it an increasingly attractive addition in diabetic and obese CKD. The modern prescription, then, is a considered stack — RAAS blockade plus an SGLT2 inhibitor for almost all progressive CKD, finerenone added in albuminuric diabetic CKD, and a GLP-1 agonist where diabetes and obesity argue for it — with potassium watched across the whole.

Where the evidence is firm, and where it is still moving

Little in nephrology is as firm as the SGLT2-inhibitor evidence: multiple large trials, consistent across diabetic and non-diabetic CKD and across the eGFR range, with kidney and cardiovascular benefit — this is grade-A, practice-defining data. Finerenone's benefit in albuminuric diabetic CKD is well established, and the GLP-1 kidney data are now strong and growing. What is still moving is the optimal sequence and combination — which pillar first, how fast to stack, how to individualise in the non-albuminuric or the very advanced — and the long-term data on the full four-pillar combination are still maturing. The honest summary is that the individual pillars are proven and the architecture of combining them is being built in real time, so practice should deploy each proven pillar confidently while remaining open as the stacking evidence matures.

04
Phase A · Level 4

Reference Tables

Table 5.1 — The modern pillars of kidney protection

PillarMechanismRole
RAAS blockadeEfferent dilation; antifibroticFoundation in proteinuric CKD (Chapter 4)
SGLT2 inhibitorRestores tubuloglomerular feedback; afferent constrictionAlmost all progressive CKD, ± diabetes
Finerenone (non-steroidal MRA)Blocks profibrotic aldosteroneAdd-on in albuminuric diabetic CKD on RAAS
GLP-1 receptor agonistMetabolic, weight, anti-inflammatoryEmerging — diabetic/obese CKD

Table 5.2 — SGLT2-inhibitor landmark trials

Trial typePopulationFinding
CREDENCEAlbuminuric diabetic CKDReduced ESKD, creatinine doubling, renal/CV death
DAPA-CKDCKD with or without diabetesReduced progression and death; benefit in non-diabetics
EMPA-KIDNEYBroad CKD (wide eGFR, incl. non-albuminuric)Reduced progression and CV death
HF trialsHeart failure ± CKDReduced HF hospitalisation and CV death

Table 5.3 — SGLT2 inhibitors in practice

ItemDetail
Initiation thresholdStart down to eGFR ~20; continue until dialysis/transplant
Expected eGFR dipSmall, reversible, haemodynamic — continue, do not stop
Kidney benefitGlucose-independent — applies in non-diabetic CKD
SafetyGenital mycotic infection; volume depletion; rare euglycaemic DKA; Fournier's (rare)
Sick-day rulesHold during acute illness, surgery, or volume/starvation stress

Table 5.4 — Finerenone (non-steroidal MRA)

ItemDetail
MechanismSelective non-steroidal MRA — blocks profibrotic aldosterone
Versus spironolactoneMore selective; less hyperkalaemia and fewer hormonal effects
EvidenceFIDELIO (kidney), FIGARO (CV), FIDELITY (pooled)
IndicationAlbuminuric diabetic CKD on optimised RAAS blockade
CautionHyperkalaemia — monitor potassium

Table 5.5 — GLP-1 receptor agonists (emerging pillar)

ItemDetail
EvidenceFLOW (semaglutide) — reduced kidney and CV outcomes in diabetic CKD
Additional benefitsWeight loss, glycaemic control, cardiovascular protection
RoleEmerging — diabetic and obese CKD
StatusIncreasingly part of the stack as evidence matures

Table 5.6 — Stacking the pillars and the potassium balance

ConsiderationDetail
Additive benefitEach pillar targets a distinct pathway step — benefits add
RAAS + finerenoneBoth raise potassium
SGLT2 inhibitorTends to lower potassium — offsets the others
Net effectThe stack is partly self-balancing; monitor potassium across it
Modern defaultRAAS + SGLT2i for most; add finerenone (diabetic albuminuric) ± GLP-1

Visualise & Map

Phase B Visualise & Map
05
Phase B · Level 5

Imaging & Flowchart Specifications

Figure 5.1 — SGLT2 inhibition restores tubuloglomerular feedback
Figure 5.1 — SGLT2 inhibition restores tubuloglomerular feedback
Figure 5.2 — The pillars on the pathway
Figure 5.2 — The pillars on the pathway
Figure 5.3 — The eGFR dip over time
Figure 5.3 — The eGFR dip over time
Flowchart 5.A — Building the modern stack
Flowchart 5.A — Building the modern stack
06
Phase B · Level 6

Concept Maps

Each chain runs from physiology to a named bedside action; read the arrows as “leads to.”

Tubuloglomerular feedback. SGLT2 blockade → less proximal sodium reabsorption → more sodium to the macula densa → tubuloglomerular feedback → afferent constriction → ↓ intraglomerular pressure → ACTION: use SGLT2 inhibitors to lower hyperfiltration, complementing RAAS efferent dilation.

Glucose-independent benefit. Haemodynamic (not glycaemic) mechanism → kidney protection independent of blood sugar → benefit in non-diabetic CKD → ACTION: offer SGLT2 inhibitors in CKD with or without diabetes.

The benign dip. Restored feedback → afferent constriction → small reversible eGFR dip → then a flatter long-term slope → ACTION: expect the dip and continue — it is the drug working, not harm.

Finerenone. Aldosterone profibrotic/pro-inflammatory signalling → selective non-steroidal MRA blocks it → less fibrosis, fewer kidney/CV events → ACTION: add finerenone in albuminuric diabetic CKD on RAAS, monitoring potassium.

Potassium synergy. RAAS + finerenone raise potassium; SGLT2 inhibitor lowers it → the stack is partly self-balancing → ACTION: stack the pillars and monitor potassium, using the SGLT2i to offset the rise.

07
Phase B · Level 7

Decision Pathways

R1
IF a patient has progressive CKD on RAAS blockade, THEN add an SGLT2 inhibitor — for almost all, diabetic or not — down to an eGFR of around 20.
R2
IF the eGFR dips on starting an SGLT2 inhibitor, THEN continue — the dip is haemodynamic and predicts a flatter long-term slope.
R3
IF CKD is non-diabetic, THEN still offer an SGLT2 inhibitor — its kidney protection is glucose-independent.
R4
IF a patient on an SGLT2 inhibitor has an acute dehydrating illness or surgery, THEN hold it (sick-day rules) to avoid volume depletion and euglycaemic ketoacidosis.
R5
IF diabetic CKD has residual albuminuria despite optimised RAAS blockade, THEN add finerenone and monitor potassium.
R6
IF stacking RAAS blockade and finerenone, THEN use the potassium-lowering effect of the SGLT2 inhibitor and monitor potassium across the stack.
R7
IF diabetes and obesity favour further benefit, THEN consider a GLP-1 receptor agonist as an additional pillar.
R8
IF building the regimen, THEN remember each pillar targets a distinct pathway step — stack for additive protection rather than relying on RAAS blockade alone.

Clinical Reasoning

Phase C Clinical Reasoning
08
Phase C · Level 8

Clinical Cases

CASE 1THE eGFR DIPPED

The dip that predicts protectionContinuing through the SGLT2-inhibitor dip

Presentation

A patient with proteinuric CKD on an ACE inhibitor starts an SGLT2 inhibitor. Two weeks later the eGFR has fallen by 4 mL/min. A colleague stops the new drug, fearing it is harming the kidney.

Pause and reflect

Is a small eGFR dip on starting an SGLT2 inhibitor a reason to stop it?

Analysis

It is not. The dip is the mechanism: restored tubuloglomerular feedback has constricted the afferent arteriole and lowered glomerular pressure, exactly as intended. The trials show that patients who dip go on to have a gentler long-term decline, so stopping the drug forfeits the protection the dip signals. This is the same lesson as the RAAS creatinine rise of Chapter 4.

Plan

Restart the SGLT2 inhibitor, confirm the eGFR stabilises, and continue it. Counsel the team that the dip is expected and benign, and reserve concern for an unexpectedly large or progressive fall with another explanation.

Teaching point

The SGLT2-inhibitor eGFR dip is the drug working, not failing — continue through it, just as with RAAS blockade.

Cross-reference

Exercises rules R1 and R2; the benign-dip concept map; Figure 5.3; Table 5.3.

CASE 2NON-DIABETIC, STILL INDICATED

Glucose-independent protectionSGLT2 inhibitors without diabetes

Presentation

A patient with non-diabetic proteinuric CKD on a maximal ARB is not offered an SGLT2 inhibitor because, the team reasons, 'they're diabetes drugs and he isn't diabetic.'

Pause and reflect

Does a patient need diabetes to benefit from an SGLT2 inhibitor's kidney protection?

Analysis

No. The kidney protection is haemodynamic — restored tubuloglomerular feedback lowering intraglomerular pressure — not glycaemic, so it is glucose-independent. DAPA-CKD and EMPA-KIDNEY proved the benefit in non-diabetic CKD. Treating these as glucose-lowering drugs alone, to be reserved for diabetics, withholds a major protective therapy from a patient who would benefit.

Plan

Add the SGLT2 inhibitor to his ARB, counsel on sick-day rules and genital hygiene, and expect the usual benign dip. The indication is progressive proteinuric CKD, with or without diabetes.

Teaching point

SGLT2-inhibitor kidney protection is glucose-independent — offer it in non-diabetic CKD too.

Cross-reference

Exercises rule R3; the glucose-independent concept map; Table 5.2.

CASE 3STILL ALBUMINURIC ON RAAS + SGLT2i

Adding the third pillarFinerenone in diabetic CKD

Presentation

A patient with type 2 diabetic CKD on a maximal ARB and an SGLT2 inhibitor still has substantial albuminuria. The team wonders whether anything more can be done, and worries about potassium if they add another agent.

Pause and reflect

With residual albuminuria despite two pillars, what is the next step — and is the potassium worry decisive?

Analysis

This is exactly the niche for finerenone: diabetic CKD with residual albuminuria despite optimised RAAS blockade, where the FIDELIO and FIGARO trials show added kidney and cardiovascular benefit by blocking the profibrotic aldosterone signal the other pillars leave standing. The potassium concern is real but manageable, and helpfully the SGLT2 inhibitor he is already on tends to lower potassium, offsetting finerenone's rise.

Plan

Add finerenone, check the baseline potassium, and monitor it after initiation. Use the SGLT2 inhibitor's potassium-lowering effect as part of the balance, and manage any rise rather than abandoning the stack.

Teaching point

Residual albuminuria in diabetic CKD despite RAAS and SGLT2 inhibition is the indication for finerenone — and the SGLT2 inhibitor eases the potassium concern.

Cross-reference

Exercises rules R5 and R6; the finerenone and potassium-synergy concept maps; Tables 5.4 and 5.6.

CASE 4THE SICK DAY

Holding the SGLT2 inhibitorEuglycaemic ketoacidosis and sick-day rules

Presentation

A patient on an SGLT2 inhibitor develops a vomiting illness with poor intake and continues the drug. He becomes unwell with a metabolic acidosis, but his blood glucose is only mildly elevated, so diabetic ketoacidosis is initially dismissed.

Pause and reflect

A metabolic acidosis with near-normal glucose on an SGLT2 inhibitor — what is being missed, and what should have happened on the sick day?

Analysis

This is euglycaemic diabetic ketoacidosis — ketoacidosis without the high glucose that usually flags it — a rare but serious SGLT2-inhibitor effect precipitated by the dehydrating, low-intake illness. The near-normal glucose is precisely what makes it easy to miss. The drug should have been held at the onset of the acute illness under sick-day rules, which exist for this and for volume depletion.

Plan

Hold the SGLT2 inhibitor, check ketones, and treat the euglycaemic ketoacidosis with fluids and insulin as appropriate. In future, instruct the patient to hold the drug during any acute dehydrating illness, around surgery, and in starvation or volume stress.

Teaching point

Suspect euglycaemic ketoacidosis when an SGLT2-inhibitor patient is acidotic with near-normal glucose — and apply sick-day rules to prevent it.

Cross-reference

Exercises rule R4; Table 5.3; sick-day rules and drug holds in Volume 5 Chapter 17.

09
Phase C · Level 9

Clinical Implications

One triad per mechanism the narrative exposed: the physiology, why it matters, and the bedside move.

MECHANISM

SGLT2 inhibition raises distal sodium delivery to the macula densa, restoring tubuloglomerular feedback and constricting the afferent arteriole.

WHY IT MATTERS

This lowers the intraglomerular pressure that drives progression, complementing RAAS efferent dilation.

ACTION

Add an SGLT2 inhibitor to lower hyperfiltration in progressive CKD.

MECHANISM

The protective mechanism is haemodynamic, not glycaemic.

WHY IT MATTERS

Kidney benefit is glucose-independent and undiminished without diabetes.

ACTION

Offer SGLT2 inhibitors in CKD with or without diabetes.

MECHANISM

Restored feedback constricts the afferent arteriole, producing a small reversible eGFR dip.

WHY IT MATTERS

The dip is the mechanism and predicts a gentler long-term slope, not harm.

ACTION

Continue through the dip, exactly as with RAAS blockade.

MECHANISM

Finerenone selectively blocks aldosterone's profibrotic, pro-inflammatory action with less hyperkalaemia than steroidal MRAs.

WHY IT MATTERS

It targets a fibrotic driver the other pillars leave standing, adding kidney and CV benefit.

ACTION

Add it in albuminuric diabetic CKD on RAAS blockade, monitoring potassium.

MECHANISM

RAAS blockade and finerenone raise potassium, while SGLT2 inhibitors lower it.

WHY IT MATTERS

The opposing effects make the multi-pillar stack more tolerable than its parts suggest.

ACTION

Stack the pillars and monitor potassium, using the SGLT2 inhibitor to offset the rise.

10
Phase C · Level 10

Clinical Pearls

Modern CKD care stacks pillars, each hitting a different pathway step (like HF therapy).
RAAS blockade is the foundation; SGLT2 inhibitors are the transformative addition.
SGLT2i mechanism: ↑ distal sodium → macula densa → tubuloglomerular feedback → afferent constriction → ↓ glomerular pressure.
SGLT2i complements RAAS: afferent constriction vs efferent dilation.
Kidney benefit is glucose-independent — works in non-diabetic CKD.
CREDENCE, DAPA-CKD, EMPA-KIDNEY: consistent kidney and CV/HF benefit.
Start SGLT2i down to eGFR ~20; continue until dialysis/transplant.
Expected reversible eGFR dip — continue, it predicts a flatter slope.
SGLT2i safety: genital mycotic infection, volume depletion, rare euglycaemic DKA, Fournier's.
Sick-day rules: hold SGLT2i in acute illness, surgery, volume/starvation stress.
Euglycaemic DKA: acidosis with near-normal glucose — don't miss it.
Finerenone: selective non-steroidal MRA — blocks profibrotic aldosterone.
Finerenone (FIDELIO/FIGARO): add in albuminuric diabetic CKD on RAAS.
Finerenone < spironolactone for hyperkalaemia, but still monitor K.
Potassium synergy: RAAS/finerenone raise K, SGLT2i lowers it.
GLP-1 RA (FLOW): emerging pillar in diabetic/obese CKD.
Each pillar adds because it targets a distinct mechanism.
RAAS alone is no longer enough for most progressive CKD.

Safety & Evidence

Phase D Safety & Evidence
11
Phase D · Level 11

Red Flags & Never-Do

Panel A — Red flags

A metabolic acidosis with near-normal glucose on an SGLT2 inhibitor — euglycaemic ketoacidosis; hold the drug and check ketones.
An SGLT2-inhibitor patient continuing the drug through a vomiting or dehydrating illness — sick-day-rule failure; hold it.
Rising potassium on a RAAS-plus-finerenone stack — monitor and manage; the SGLT2 inhibitor helps offset it.
Progressive proteinuric CKD on RAAS blockade alone — a missed pillar; add an SGLT2 inhibitor.
Volume depletion or hypotension after adding an SGLT2 inhibitor to a diuretic — adjust the diuretic.

Panel B — Never do

NEVER — stop an SGLT2 inhibitor for the expected, reversible initiation dip.
NEVER — withhold an SGLT2 inhibitor from CKD merely because the patient is not diabetic.
NEVER — continue an SGLT2 inhibitor through an acute dehydrating illness or around surgery.
NEVER — settle for RAAS blockade alone in progressive CKD when a proven additional pillar applies.
12
Phase D · Level 12

Common Pitfalls

Pitfall 1 — Stopping for the dip

WRONG Stopping the SGLT2 inhibitor when the eGFR dips on initiation.
RIGHT Continuing through the reversible dip and confirming it stabilises.
WHY The dip reflects restored feedback lowering glomerular pressure — it predicts protection.

Pitfall 2 — 'Diabetes drugs only'

WRONG Reserving SGLT2 inhibitors for diabetic patients.
RIGHT Offering them in non-diabetic CKD, where they are proven.
WHY The kidney benefit is glucose-independent.

Pitfall 3 — Missing euglycaemic DKA

WRONG Dismissing ketoacidosis because the glucose is near-normal.
RIGHT Recognising euglycaemic ketoacidosis and holding the drug.
WHY SGLT2 inhibitors can cause ketoacidosis without the usual hyperglycaemia.

Pitfall 4 — Fearing the potassium too much

WRONG Refusing to add finerenone to a RAAS-blocked diabetic CKD patient over potassium worry.
RIGHT Adding it with monitoring, using the SGLT2 inhibitor's offsetting effect.
WHY The hyperkalaemia is manageable and partly offset within the stack.

Pitfall 5 — RAAS alone

WRONG Treating progressive CKD with RAAS blockade as the only disease-modifying drug.
RIGHT Stacking the proven pillars that each add benefit.
WHY RAAS alone is no longer sufficient for most progressive CKD.
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)
SGLT2 inhibitors slow CKD progression and reduce CV/HF outcomes.AMultiple large RCTs (CREDENCE/DAPA-CKD/EMPA-KIDNEY)
SGLT2-inhibitor kidney protection is glucose-independent.ANon-diabetic CKD trial subgroups
The initiation eGFR dip is reversible and not harmful.BTrial analyses of the dip
SGLT2 inhibitors can cause euglycaemic ketoacidosis.APharmacovigilance and trial data
Finerenone reduces kidney and CV events in albuminuric diabetic CKD on RAAS.ARCTs (FIDELIO/FIGARO/FIDELITY)
GLP-1 receptor agonists reduce kidney outcomes in diabetic CKD.ARCT (FLOW-type)
The optimal sequence and combination of pillars is still being defined.CLimited head-to-head/combination data

Patient Decisions

Phase E Patient Decisions
14
Phase E · Level 14

Absolute Risk in Natural Frequency

Natural-frequency estimates for orientation, from the major trials; they vary with baseline risk and albuminuria. They convey the size of the pillar decisions, expressed per 100 comparable patients.

Per 100 patients…OutcomeRoughly how manySee
With CKD given an SGLT2 inhibitorAvoid CKD progression / a kidney event over the trialA meaningful several in 100L13 row 1
Non-diabetic CKD given an SGLT2 inhibitorGain kidney protectionAs much as diabetic patientsL13 row 2
Diabetic albuminuric CKD given finerenone on RAASAvoid a kidney/CV eventA few in 100L13 row 5
On an SGLT2 inhibitorDevelop euglycaemic ketoacidosisRare — but serious; hence sick-day rulesL13 row 4

How to read these

Read these as orientation, not promises; the benefits scale with baseline risk and albuminuria. The stable signals: SGLT2 inhibitors deliver a meaningful, glucose-independent reduction in progression and CV events, finerenone adds further benefit in diabetic albuminuric CKD, and euglycaemic ketoacidosis is rare but serious. 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 stack rationale, the expected dip, and the sick-day rules explicit.

Template 1 — Modern-pillar prescription / stacking

  • Foundation: RAAS blockade at maximum tolerated dose (Chapter 4): ☐ in place.
  • SGLT2 inhibitor: started (eGFR ___ , ≥ ~20): ☐ yes; diabetic ☐ / non-diabetic ☐ (benefit glucose-independent).
  • Expected eGFR dip counselled and to be continued through: ☐ yes.
  • Finerenone: ☐ added (albuminuric diabetic CKD on RAAS) ☐ not indicated; baseline potassium ___ .
  • GLP-1 receptor agonist: ☐ considered (diabetic/obese) ☐ not indicated.
  • Sick-day rules given (hold SGLT2i in acute illness/surgery): ☐ yes; genital-hygiene counselling: ☐ yes.

Template 2 — Pillar monitoring and sick-day rules

  • eGFR trend: initiation dip ___ → stabilised: ☐ yes (continue).
  • Potassium across the stack: ___ — RAAS/finerenone raise it, SGLT2i offsets; ☐ acceptable ☐ managed (diet/diuretic/binder).
  • SGLT2i safety: ☐ genital mycotic infection screened ☐ diuretic dose reviewed (volume) ☐ euglycaemic-DKA risk counselled.
  • Sick-day plan documented: hold SGLT2i for ☐ vomiting/diarrhoea ☐ reduced intake ☐ surgery; restart when well.
  • Finerenone potassium monitoring schedule: ___ .
  • Albuminuria response to the stack: ___ ; further pillar if residual: ☐ considered.
18
Phase F · Level 18

Cheat Sheet

Modern CKD = stacked pillars (like HF GDMT).
Pillars: RAAS · SGLT2i · finerenone · (GLP-1 RA) + BP/proteinuria/lifestyle.
SGLT2i: ↑ distal Na → macula densa → TGF → afferent constriction → ↓ glomerular pressure.
SGLT2i (afferent) complements RAAS (efferent).
Kidney benefit GLUCOSE-INDEPENDENT — use in non-diabetic CKD.
Trials: CREDENCE, DAPA-CKD, EMPA-KIDNEY — kidney + CV/HF benefit.
Start SGLT2i to eGFR ~20; continue to dialysis/transplant.
Expected eGFR dip → continue (predicts flatter slope).
SGLT2i risks: genital mycosis, volume depletion, euglycaemic DKA, Fournier's.
Sick-day rules: HOLD SGLT2i in acute illness/surgery.
Euglycaemic DKA = acidosis + near-normal glucose — don't miss.
Finerenone = selective non-steroidal MRA (antifibrotic aldosterone block).
Finerenone (FIDELIO/FIGARO): albuminuric diabetic CKD on RAAS; monitor K.
K synergy: RAAS/finerenone ↑K, SGLT2i ↓K.
GLP-1 RA (FLOW): emerging, diabetic/obese CKD.
RAAS alone no longer enough — stack the proven pillars.
19
Phase F · Level 19

Flashcards

CARD 1

Q. How do SGLT2 inhibitors protect the kidney?

Show answer

A. By blocking proximal sodium-glucose reabsorption, raising distal sodium delivery to the macula densa, restoring tubuloglomerular feedback, constricting the afferent arteriole, and lowering intraglomerular pressure.

DETAILED. This complements RAAS blockade's efferent dilation.

CLINICAL. Add an SGLT2 inhibitor to reduce hyperfiltration in progressive CKD.

CARD 2

Q. Why are SGLT2 inhibitors used in non-diabetic CKD?

Show answer

A. Their kidney protection is haemodynamic and glucose-independent, proven in non-diabetic CKD by DAPA-CKD and EMPA-KIDNEY.

DETAILED. The benefit does not depend on lowering blood sugar.

CLINICAL. Offer them in CKD with or without diabetes.

CARD 3

Q. What is the eGFR dip on starting an SGLT2 inhibitor?

Show answer

A. A small, reversible fall from restored tubuloglomerular feedback constricting the afferent arteriole — the mechanism, not toxicity — followed by a gentler long-term slope.

DETAILED. Patients who dip have slower long-term decline.

CLINICAL. Continue through the dip, as with RAAS blockade.

CARD 4

Q. What are the key SGLT2-inhibitor safety issues and sick-day rules?

Show answer

A. Genital mycotic infection, volume depletion, rare euglycaemic ketoacidosis, and rare Fournier's gangrene; hold the drug during acute illness, surgery, or volume/starvation stress.

DETAILED. Euglycaemic ketoacidosis has near-normal glucose.

CLINICAL. Counsel sick-day rules and genital hygiene.

CARD 5

Q. What is finerenone and where does it fit?

Show answer

A. A selective non-steroidal mineralocorticoid antagonist that blocks profibrotic aldosterone with less hyperkalaemia than spironolactone; added in albuminuric diabetic CKD on RAAS blockade (FIDELIO/FIGARO).

DETAILED. It targets a fibrotic driver the other pillars leave standing.

CLINICAL. Add it for residual albuminuria, monitoring potassium.

CARD 6

Q. How does the potassium synergy across the pillars work?

Show answer

A. RAAS blockade and finerenone raise potassium, while SGLT2 inhibitors tend to lower it, so the stack is partly self-balancing.

DETAILED. This makes combining the pillars more tolerable.

CLINICAL. Stack the pillars and monitor potassium, using the SGLT2 inhibitor to offset the rise.

CARD 7

Q. What is the emerging role of GLP-1 receptor agonists?

Show answer

A. In diabetic CKD they reduce kidney and cardiovascular outcomes (FLOW) and aid weight and glycaemia — an emerging pillar in diabetic and obese CKD.

DETAILED. They add another distinct mechanism to the stack.

CLINICAL. Consider one where diabetes and obesity favour further benefit.

CARD 8

Q. Why do the modern pillars stack rather than overlap?

Show answer

A. Each interrupts the final common pathway at a distinct point — efferent tone, afferent feedback, aldosterone fibrosis, metabolic drivers — so their benefits add.

DETAILED. It mirrors heart-failure guideline-directed therapy.

CLINICAL. Layer the proven pillars rather than relying on RAAS alone.

20
Phase F · Level 20

One-Minute Preceptor

SCENE 1
The intern who stopped the SGLT2 inhibitor
GET A COMMITMENT“You stopped the SGLT2 inhibitor when the eGFR dipped — why?”
PROBE FOR EVIDENCE“The eGFR fell 4 points” — ask: “What causes that dip, and what do the trials show happens afterward?”
TEACH A GENERAL RULEThe dip is restored tubuloglomerular feedback lowering glomerular pressure — it predicts a flatter long-term slope, so continue, as with RAAS blockade.
REINFORCE WHAT WAS RIGHTMonitoring the eGFR after initiation was correct.
CORRECT A MISTAKERestart the SGLT2 inhibitor and confirm it stabilises.
SCENE 2
The resident reserving it for diabetics
GET A COMMITMENT“You've held off the SGLT2 inhibitor because he's not diabetic — your reasoning?”
PROBE FOR EVIDENCE“They're diabetes drugs” — ask: “Is the kidney protection glycaemic or haemodynamic, and what did DAPA-CKD show in non-diabetics?”
TEACH A GENERAL RULEThe kidney benefit is glucose-independent and proven in non-diabetic CKD — these are kidney-protective drugs, not only glucose-lowering ones.
REINFORCE WHAT WAS RIGHTThinking about the indication was the right instinct.
CORRECT A MISTAKEAdd the SGLT2 inhibitor to his RAAS blockade with the usual counselling.
21
Phase F · Level 21

Reflective Prompts

Genuine tensions this evidence leaves open; sit with them rather than resolving them too quickly.

  • The individual pillars are proven, but the four-drug stack has not been tested as a whole. How confidently should we combine therapies whose joint effect is inferred rather than trialled?
  • SGLT2 inhibitors began as glucose-lowering drugs and became kidney-protective ones. How often do we under-use a therapy because of the category it was first marketed in?
  • The eGFR dip teaches the same lesson as the RAAS creatinine rise, yet both still prompt drugs to be stopped. Why is 'the number that means it's working' so hard to internalise?
  • Stacking pillars adds cost, pill burden, and monitoring. Where is the line between optimal evidence-based therapy and a polypharmacy a patient cannot sustain?
  • If RAAS blockade alone is no longer enough, how quickly should guidelines, formularies, and clinics change — and who is accountable when proven pillars are not offered?
22
Phase F · Level 22

Board-Style Questions

Q 01
By what mechanism do SGLT2 inhibitors lower intraglomerular pressure?

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Q 02
A non-diabetic patient with proteinuric CKD is not offered an SGLT2 inhibitor because he has no diabetes. This is:

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Q 03
Two weeks after starting an SGLT2 inhibitor, the eGFR falls by 4 mL/min. The best action is to:

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Q 04
An SGLT2-inhibitor patient is acidotic during a vomiting illness, but the glucose is only mildly raised. The diagnosis to suspect is:

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Q 05
A type 2 diabetic with CKD has residual albuminuria despite a maximal ARB and an SGLT2 inhibitor. The next pillar to consider is:

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Q 06
How does the potassium synergy across the pillars work?

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Q 07
What distinguishes finerenone from spironolactone?

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Q 08
Why do the modern pillars provide additive benefit?

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Q 09
Across 100 CKD patients given an SGLT2 inhibitor, the kidney benefit relative to diabetic status is best described as:

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