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April 17, 2026Naunyn-Schmiedeberg s Archives of Pharmacology0 citationsOpen Access

Chrysin mitigates ciprofloxacin-induced nephrotoxicity: associations with notch/HES1 signaling, inflammation, and a ferroptosis-related molecular signature

MGMustafa Önder GönenNANurhan AkarasHŞHasan Şimşek

Key Points

  • The aim is to explore how chrysin protects against nephrotoxicity caused by ciprofloxacin in rats.
  • Administered ciprofloxacin to male Wistar rats for 8 days.
  • Co-treated with chrysin to assess protective effects.
  • Analyzed renal function and structural integrity through biochemical and molecular assessments.
  • Evaluated markers for inflammation, oxidative stress, and cell death mechanisms.
  • Ciprofloxacin caused significant kidney damage, indicated by elevated urea and creatinine levels.
  • Chrysin co-treatment restored renal function and structural integrity.
  • Ciprofloxacin disrupted redox balance and initiated inflammatory responses.
  • Chrysin suppressed cell death pathways and normalized the expression of ferroptosis-related genes.

Abstract

Ciprofloxacin (CIP) is a widely used antibiotic frequently associated with dose-limiting nephrotoxicity. Chrysin (CHR), a natural flavonoid, possesses significant cytoprotective properties, yet its specific role in mitigating CIP-induced kidney injury remains underexplored. This study investigates the comprehensive nephroprotective mechanisms of CHR against CIP toxicity in rats. Male Wistar rats received CIP (100 mg/kg/day, i.p.) with or without CHR (50 mg/kg/day, p.o.) for 8 consecutive days. Results showed that CIP administration compromised renal function (urea, creatinine) and structural integrity, while markedly altering tubular injury markers (KIM-1, AQP-1). Biochemical and molecular analyses revealed that CIP disrupted cellular redox balance (MDA, GSH, SOD, CAT, GPx) and triggered a robust inflammatory response (NF-κB, TNF-α, IL-17A). Furthermore, CIP exposure engaged distinct cell death mechanisms, including intrinsic apoptosis (Bax, Bcl-2, Caspase-3) and ferroptosis (GPX4, TfR1, PTGS2). A novel finding was the activation of the Notch signaling pathway (Notch, HES1) in renal tissue. CHR co-treatment significantly attenuated these pathological changes, restoring renal function and histology, re-establishing antioxidant defenses, and suppressing inflammatory and apoptotic signaling and normalizing ferroptosis-related gene expression changes. In conclusion, CHR confers robust nephroprotection by targeting the inflammation-ferroptosis-apoptosis axis and modulating Notch signaling, positioning it as a promising adjuvant to mitigate CIP-induced renal injury.

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Cite This Study

Gönen et al. (2026) studied this question.

synapsesocial.com/papers/69e1d0165cdc762e9d85912ehttps://doi.org/10.1007/s00210-026-05338-1
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Redox-sensitive and inflammatory pathway modulation by Chrysin confers protection against aflatoxin B1–induced hepato-renal damage2026
  2. 2Modulatory Effects of Chrysin on Cadmium‐Induced Hepatotoxicity and Testicular Injury in Rats2026
  3. 3Protective Role of Chrysin in Sodium Valproate-Induced Kidney Injury: Modulation of Stress Response Pathways, Toxicity Pathways and Inflammation2025
  4. 4Chrysin inhibits ferroptosis of cerebral ischemia/reperfusion injury via regulating HIF-1α/CP loop2024 · 11 citations
  5. 5Chrysin Mitigates Acetamiprid‐Induced Testicular Injury in Mice via Suppression of Endoplasmic Reticulum Stress and Inflammation2026