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Published on: May 22, 2019
Assessment of a Urinary Kidney MicroRNA Panel as Potential Nephron Segment-Specific Biomarkers of Subacute Renal
Stéphanie F Glineur1,2, Etienne Hanon3, Sarah Dremier1,4
1Investigative Toxicology, Development Science, UCB Biopharma SPRL, B-1420 Braine L'Alleud, Belgium.
Abstract:
Drug-induced kidney injury (DIKI) remains a significant concern during drug development. Whereas FDA-endorsed urinary protein biomarkers encounter limitations including the lack of translatability, there is a considerable interest surrounding the application of microRNAs (miRNAs) in the renal biomarker space. Current knowledge about the value of these novel biomarkers for subacute preclinical rodent studies is still sparse. In this work, Wistar rats were treated with three nephrotoxic compounds-cisplatin (CIS, proximal tubule, 2.5 mg/kg, intraperitoneal [i.p.]), puromycin (PUR, glomerulus, 20/10 mg/kg, i.p.) and N-phenylanthranylic acid (NPAA, collecting ducts, 500 mg/kg, per os)-for up to 28 days to evaluate the performance of a panel of 68 urinary miRNAs as potential nephron segment-specific biomarkers. Out of these 68 kidney injury associated-miRNAs, our selection strategy ultimately revealed rno-miR-34c-5p significantly dysregulated after CIS single administration, and rno-miR-335 and rno-miR-155-5p significantly dysregulated after PUR treatment. In contrast, NPAA daily administration strongly altered the expression profile of 28 miRNAs, with rno-miR-210-3p displaying the most robust changes. A thorough evaluation showed that these miRNA candidates could complement urinary protein biomarkers to detect CIS- or PUR-induced kidney injury in a subacute setting, with a mechanistic (based on rno-miR-34c-5p) and/or a kidney injury detection potential. Our results also provide the first evidence that urinary miRNAs could enhance the detection of collecting duct damage. Overall, these data improve our understanding of the utility of urinary miRNAs as DIKI biomarkers in a subacute DIKI preclinical setting and support the value of using urinary biomarker panels comprising proteins and miRNAs.
Insights
Urinary microRNAs show promise as biomarkers for drug-induced kidney injury (DIKI) in preclinical studies. These novel biomarkers can detect damage in specific kidney segments, complementing traditional protein markers.
Area of Science:
- Nephrology
- Biomarker Discovery
- Toxicology
- Molecular Biology
Background:
- Drug-induced kidney injury (DIKI) is a major concern in drug development.
- Current FDA-approved urinary protein biomarkers for DIKI have limitations in translatability.
- MicroRNAs (miRNAs) are emerging as promising novel renal biomarkers, but their utility in subacute preclinical rodent models is not well-established.
Purpose of the Study:
- To evaluate the performance of urinary miRNAs as nephron segment-specific biomarkers in a subacute preclinical DIKI model.
- To identify specific miRNAs that can detect kidney injury induced by different nephrotoxic compounds.
- To assess the potential of urinary miRNAs to complement existing protein biomarkers for DIKI detection.
Main Methods:
- Wistar rats were administered nephrotoxic compounds: cisplatin (CIS), puromycin (PUR), and N-phenylanthranylic acid (NPAA).
- Urinary miRNAs were analyzed over a 28-day period to identify potential biomarkers.
- A panel of 68 kidney injury-associated miRNAs was evaluated for their expression changes.
Main Results:
- Specific miRNAs, including rno-miR-34c-5p (CIS), rno-miR-335 and rno-miR-155-5p (PUR), were significantly dysregulated.
- NPAA treatment altered the expression profile of 28 miRNAs, with rno-miR-210-3p showing the most significant changes.
- Urinary miRNAs demonstrated potential to detect CIS- or PUR-induced kidney injury and enhance the detection of collecting duct damage.
Conclusions:
- Urinary miRNAs can serve as valuable biomarkers for detecting DIKI in subacute preclinical settings.
- These miRNA candidates complement urinary protein biomarkers for improved DIKI detection.
- This study provides the first evidence for urinary miRNAs enhancing the detection of collecting duct damage.
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