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Gene networking in colistin-induced nephrotoxicity reveals an adverse outcome pathway triggered by proteotoxic stress
Eun Hee Lee1, Soojin Kim1, Mi-Sun Choi1
1Department of Predictive Toxicology, Korea Institute of Toxicology, Daejeon 34114, Republic of Korea.
Abstract:
Colistin has been widely used for the treatment of infections of multidrug‑resistant Gram‑negative bacteria, despite the fact that it induces serious kidney injury as a side effect. To investigate the mechanism underlying its nephrotoxicity, colistin methanesulfonate sodium (CMS; 25 or 50 mg/kg) was administered via intraperitoneal injection to Sprague‑Dawley rats daily over 7 days. Serum biochemistry and histopathology indicated that nephrotoxicity occurred in the rats administered with CMS. Whole‑genome microarrays indicated 894 differentially expressed genes in the group treated with CMS (analysis of variance, false discovery rate <0.05, fold‑change ≥1.3). Gene pathway and networking analyses revealed that genes associated with proteotoxic stress, including ribosome synthesis, protein translation, and protein folding, were significantly associated with the nephrotoxicity induced by CMS. It was found that colistin inhibited the expression of the target genes heat shock factor 1 and nuclear factor erythroid‑2‑related factor‑2, which are associated with proteostasis, and that nephrotoxicity of CMS may be initiated by proteotoxic stress due to heat shock response inhibition, leading to oxidative stress, endoplasmic reticulum stress, cell cycle arrest and apoptosis, eventually leading to cell death. A putative adverse outcome pathway was constructed based on the integrated gene networking data, which may clarify the mode of action of colistin‑induced nephrotoxicity.
Insights
Colistin treatment causes kidney injury by disrupting protein homeostasis, leading to cell death. This study reveals colistin methanesulfonate sodium (CMS) induces proteotoxic stress, inhibiting key protective genes and initiating a cascade of cellular damage in rats.
Area of Science:
- Nephrology
- Molecular Toxicology
- Genomics
Background:
- Colistin is crucial for treating multidrug-resistant Gram-negative bacterial infections.
- Colistin use is limited by severe nephrotoxicity (kidney injury).
Purpose of the Study:
- To elucidate the molecular mechanisms of colistin-induced nephrotoxicity.
- To identify key pathways and genes involved in colistin's kidney damage.
Main Methods:
- Administration of colistin methanesulfonate sodium (CMS) to Sprague-Dawley rats.
- Analysis of serum biochemistry, kidney histopathology, and whole-genome gene expression.
- Gene pathway and networking analyses to identify affected biological processes.
Main Results:
- CMS administration induced significant nephrotoxicity in rats.
- Whole-genome analysis revealed 894 differentially expressed genes.
- Genes related to proteotoxic stress (ribosome synthesis, protein folding) were significantly altered.
- Colistin inhibited heat shock factor 1 and nuclear factor erythroid-2-related factor-2, crucial for proteostasis.
- A putative adverse outcome pathway for colistin nephrotoxicity was constructed.
Conclusions:
- Colistin-induced nephrotoxicity is initiated by proteotoxic stress, stemming from heat shock response inhibition.
- This stress triggers a cascade including oxidative stress, endoplasmic reticulum stress, and apoptosis.
- Understanding this pathway clarifies colistin's mechanism of kidney damage and may inform future therapeutic strategies.
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