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Topoisomerase II inhibitor

Etoposide

Etopophos · VP-16

Topoisomerase II inhibitor · approved 1983 · 6 references

A topoisomerase II poison whose renal risk runs through tumor lysis, not the tubule.

Signature injury
Crystal / Obstructive Nephropathy
Severity
Mild
Reversibility
Reversible
Onset
TLS typically within hours to a few days of starting cytotoxic therapy in sensitive tumors; exposure-related myelosuppression accrues over cycles.

Signature kidney injury & incidence

Crystal / Obstructive Nephropathy.

Etoposide is renally cleared (~30-40% as unchanged drug, so dose-adjust in renal impairment) and is a frequent component of regimens for bulky, rapidly proliferating tumors that can trigger tumor lysis syndrome (TLS). Direct etoposide nephrotoxicity is not a recognized signal; TLS-related AKI risk depends on tumor burden and tumor type rather than a per-drug rate.

Source: Howard et al., N Engl J Med 2011

Reported injury signatures: Crystal / Obstructive Nephropathy, Prerenal / Hemodynamic AKI, Electrolyte Disturbance.

Renal toxicity profile

  1. Crystal / Obstructive NephropathyPrimary
  2. Prerenal / Hemodynamic AKISecondary
  3. Electrolyte DisturbanceSecondary

Onset timing & rechallenge

Acute (~1–7 days) — Tumor-lysis AKI within hours to a few days of starting cytotoxic therapy in sensitive tumors.

Mechanism of kidney injury

When highly chemosensitive tumors lyse, released purines are catabolized to uric acid and released phosphate binds calcium; uric acid and calcium-phosphate precipitate intratubularly, causing crystal/obstructive AKI alongside hyperkalemia and hypocalcemia. Etoposide itself is not a characteristic tubular toxin; additional prerenal contributions arise from nausea, vomiting, and poor intake.

Clinical presentation

In TLS: hyperuricemia, hyperphosphatemia, hyperkalemia, and hypocalcemia with rising creatinine and oliguria, typically within 12-72 hours of cytotoxic therapy. A high uric-acid:creatinine ratio in urine supports urate nephropathy. Otherwise the renal picture is bland.

Management

Treat TLS with vigorous hydration, rasburicase for hyperuricemia, electrolyte correction (avoid calcium unless symptomatic hypocalcemia), and renal replacement therapy for refractory hyperkalemia, hyperphosphatemia, or oliguric AKI. Provide supportive care and adjust dosing for renal impairment.

Risk factors

  • High tumor burden / rapidly proliferating malignancy (acute leukemia, high-grade lymphoma, germ-cell tumor)
  • Elevated baseline uric acid and LDH
  • Pre-existing renal impairment, oliguria, or volume depletion
  • Renal impairment also raises etoposide exposure (free fraction increases with hypoalbuminemia/low GFR)

Prevention

  • Risk-stratified TLS prophylaxis: aggressive IV hydration plus allopurinol (intermediate risk) or rasburicase (high risk/established hyperuricemia)
  • Frequent monitoring of potassium, phosphate, calcium, uric acid, and creatinine around initiation
  • Dose-adjust etoposide for creatinine clearance

Renal dose adjustment

Reduce dose for renal impairment: roughly 75% of dose for CrCl 15-50 mL/min and consider further reduction below 15 mL/min, because renal clearance contributes meaningfully and hypoalbuminemia raises free drug.

Dialyzability & ESKD dosing

Highly protein-bound (~95%) and not cleared by hemodialysis: in the PK-guided dialysis study that dosed carboplatin and etoposide together, carboplatin was cleared by hemodialysis and etoposide was not, and peritoneal dialysis removed neither. There is therefore no post-HD supplemental dose to give. Dialysis is used for TLS-related metabolic complications, not to clear etoposide; reduce dose in renal impairment and target exposure by pharmacokinetic monitoring.

Differential diagnosis

TLS-associated AKI (the hyperuricemia/hyperphosphatemia/hyperkalemia/hypocalcemia tetrad with high LDH) vs prerenal azotemia vs contrast or nephrotoxin ATN. The metabolic signature distinguishes TLS.

Monitoring

  • Uric acid, potassium, phosphate, calcium, and creatinine every 6-12 h during high-risk TLS windows
  • Urine output and volume status
  • CrCl before dosing; CBC for myelosuppression

Key trials & series

  • Howard NEJM 2011 TLS definition/management framework
  • British Committee for Standards in Hematology TLS guidelines (Cairo-Bishop classification)

Clinical pearls

  • Etoposide does not poison the tubule - the tumor it lyses does, via urate and calcium-phosphate crystals.
  • Rasburicase, not urinary alkalinization, is preferred for high-risk hyperuricemia (and avoid alkalinization, which worsens calcium-phosphate deposition).
  • Low albumin raises free etoposide - reduce dose in renal impairment and hypoalbuminemia.

Anticancer mechanism

Inhibits topoisomerase II, stabilizing enzyme-DNA complexes and causing double-strand DNA breaks. Backbone agent in germ-cell tumors, small-cell lung cancer, lymphomas, and leukemias.

Note

Renally cleared with tumor-lysis risk; the kidney injury is overwhelmingly TLS- and volume-mediated, not a direct etoposide tubular toxin.

Guidelines & consensus

Each recommendation below is this atlas's faithful summary of the source, not a quotation from it — follow the PubMed link for the wording the society published. Summaries may be superseded; consult the current full text and individualize to the patient.

  • ADQI (2026) — The nephrotoxic effects of anti-cancer therapies: consensus report of the 34th Acute Disease Quality Initiative workgroupProvides expert-based statements (modified Delphi) on preventing and managing cisplatin/platinum-associated AKI, including isotonic IV hydration, attention to volume status and concomitant nephrotoxins, and incorporates evidence that IV magnesium supplementation may reduce cisplatin-associated AKI; emphasizes risk stratification and standardized AKI definitions.Nat Rev Nephrol · PMID 41361704
  • SIRM (2022) — SIRM-SIN-AIOM: appropriateness criteria for evaluation and prevention of renal damage in the patient undergoing contrast medium examinations-consensus statements from Italian College of Radiology (SIRM), Italian College of Nephrology (SIN) and Italian Association of Medical Oncology (AIOM)Recommends eGFR-based renal risk assessment and pre/post-contrast isotonic saline or sodium bicarbonate hydration; advises maintaining a 5-7 day interval between iodinated contrast administration and cisplatin in cancer patients to reduce additive nephrotoxicity.Radiol Med · PMID 35303246
  • KDIGO (2020) — KDIGO Controversies Conference on onco-nephrology: understanding kidney impairment and solid-organ malignancies, and managing kidney cancerIdentifies platinum compounds (especially cisplatin) as leading cytotoxic causes of acute tubular injury, AKI, and electrolyte/magnesium wasting; calls for interdisciplinary onco-nephrology care, accurate GFR estimation, and individualized drug dosing in patients with reduced kidney function.Kidney Int · PMID 33126977
  • KDIGO (2020) — KDIGO Controversies Conference on onco-nephrology: kidney disease in hematological malignancies and the burden of cancer after kidney transplantationAddresses chemotherapy-associated AKI/CKD in hematologic cancer, GFR estimation and chemotherapy dosing in patients with reduced kidney function, and management priorities and research gaps for onco-nephrology care.Kidney Int · PMID 33276867
  • ADDIKD (2025) — Integrating International Consensus Guidelines for Anticancer Drug Dosing in Kidney Dysfunction (ADDIKD) into everyday practiceProvides GRADE-based, drug-specific dose-adjustment recommendations for anticancer agents in kidney dysfunction (illustrated for methotrexate, cisplatin, carboplatin and nivolumab); the recommendations build on Part 1's standardised CKD-EPI eGFR assessment rather than Cockcroft-Gault creatinine clearance.EClinicalMedicine · PMID 40290844
  • ADDIKD (2025) — Aligning kidney function assessment in patients with cancer to global practices in internal medicineThree consensus recommendations: assess kidney function by GFR (measured GFR or CKD-EPI eGFR), classify it using KDIGO categories, and use this uniform approach to dose anticancer drugs — moving cancer medicine away from Cockcroft-Gault estimated creatinine clearance.EClinicalMedicine · PMID 40290845
  • ADDIKD (2025) — A methodology for determining dosing recommendations for anticancer drugs in patients with reduced kidney functionEstablishes that, where RCT evidence is lacking, anticancer drug dosing recommendations in kidney dysfunction should be derived by critically appraising observational literature via GRADE combined with structured international multidisciplinary consensus voting.EClinicalMedicine · PMID 40290846
  • KDIGO (2013) — Diagnosis, evaluation, and management of acute kidney injury: a KDIGO summary (Part 1)Defines/stages AKI by serum creatinine and urine output; emphasizes avoiding nephrotoxins, maintaining euvolemia/perfusion, dose-adjusting drugs to kidney function, and monitoring high-risk patients — the framework applied to nephrotoxic anti-cancer agents.Crit Care · PMID 23394211
  • KDIGO (2024) — Executive summary of the KDIGO 2024 Clinical Practice Guideline for the Evaluation and Management of Chronic Kidney Disease: known knowns and known unknownsEvaluate and risk-stratify CKD, manage to delay progression and its complications, and practise explicit medication management and drug stewardship — the framework the atlas's G1–G5 eGFR banding and every renal dose-adjustment recommendation sit inside. Because the guideline excludes dialysis and transplant recipients by its own statement of scope, its recommendations do not carry to those settings, where this atlas's dialyzability and post-transplant guidance rests on other sources.Kidney Int · PMID 38519239
  • KDIGO (2021) — Executive summary of the KDIGO 2021 Guideline for the Management of Glomerular DiseasesProvides the staging/treatment framework for drug-associated glomerular lesions (e.g., bisphosphonate- and interferon-related collapsing FSGS, VEGF-inhibitor podocytopathy/proteinuria), including immunosuppression and supportive RAAS-blockade strategies.Kidney Int · PMID 34556300
  • KDIGO (2024) — Executive summary of the KDIGO 2024 Clinical Practice Guideline for the Management of ANCA-Associated VasculitisUpdates immunosuppressive induction (rituximab/cyclophosphamide), incorporates avacopan and lower-dose or glucocorticoid-sparing regimens — the management framework for drug- and checkpoint-inhibitor-associated ANCA/pauci-immune glomerulonephritis.Kidney Int · PMID 38388147
  • KDIGO (2024) — Executive summary of the KDIGO 2024 Clinical Practice Guideline for the Management of Lupus NephritisUpdates first-line lupus nephritis therapy to combination immunosuppression with the addition of belimumab or a calcineurin inhibitor (voclosporin) — informs management of immune-complex/lupus-like glomerulonephritis encountered with immunotherapy.Kidney Int · PMID 38182299
  • KDIGO (2025) — Executive summary of the KDIGO 2025 Clinical Practice Guideline for the Management of Immunoglobulin A Nephropathy (IgAN) and Immunoglobulin A Vasculitis (IgAV)Encourages liberal kidney biopsy and stricter proteinuria control (<0.5 g/d, ideally <0.3 g/d) with RAAS blockers, SGLT2 inhibitors, and targeted-release budesonide — the framework for IgA-dominant glomerular lesions, including those triggered by immune-modulating cancer therapy.Kidney Int · PMID 40975525

References

6 peer-reviewed references. Citation metadata via PubMed / NLM.

  1. 1.The tumor lysis syndrome.Howard SC et al. · N Engl J Med · 2011 · PMID 21561350
  2. 2.Rational use of rasburicase for the treatment and management of tumor lysis syndrome.Shaikh SA et al. · J Oncol Pharm Pract · 2017 · PMID 28077046
  3. 3.Acute tumor lysis syndrome in solid tumors--a case report and review of the literature.Baeksgaard L et al. · Cancer Chemother Pharmacol · 2003 · PMID 12655435
  4. 4.Tumor lysis syndrome in an infant with Langerhans cell histiocytosis successfully treated using continuous arteriovenous hemofiltration.Jaing TH et al. · J Pediatr Hematol Oncol · 2001 · PMID 11216709
  5. 5.[Analysis of the 2015 British guidelines on the prevention and management of tumor lysis syndrome].Dupré A et al. · Rev Med Interne · 2016 · PMID 27659746
  6. 6.Onconephrology.Kala J et al. · Crit Care Clin · 2021 · PMID 33752861

Case reports & series (3)

The weakest rung of clinical evidence — single-patient and small-series reports, strongest first. Each carries a heuristic strength grade (A Strong / B Moderate / C Limited) inferred from its abstract and journal, not a formal appraisal. Weigh well below the primary references above.

  1. C1.[B · Moderate]Thrombotic microangiopathy: a new dose-limiting toxicity of high-dose sequential chemotherapy.Vantelon JM et al. · Bone Marrow Transplant · 2001 · PMID 11313688
  2. C2.[B · Moderate]Hemolytic uremic syndrome after high dose chemotherapy with autologous stem cell support.van der Lelie H et al. · Cancer · 1995 · PMID 8635040
  3. C3.[C · Limited]Complete recovery of renal function in a Wilms' tumor patient after acute renal failure caused by autologous bone marrow transplantation (ABMT).Hempel L et al. · Pediatr Hematol Oncol · 1998 · PMID 9615324
Educational monograph from NephTox (nephtox.com). Not medical advice — verify against current guidelines before any clinical decision.