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Unraveling Neurotoxicity Discrepancies: Comparative In vitro and In vivo Analysis of Colistin and Polymyxin B and the
Rui Yang1,2, Debiao Xiang2,3,4, Fang Yuan2,3,4
1Hunan University of Chinese Medicine, Changsha, China.
Abstract:
Polymyxins, including colistin and polymyxin B, are the final resort against Gram-negative bacterial infections. However, its clinical application is restricted due to concerns related to neurotoxicity. Despite the similar antibacterial spectrum and mode of action shared between colistin and polymyxin B, there is still a lack of definitive evidence to support the idea that their neurotoxicity profiles are identical. To comprehensively compare the neurotoxicity between colistin and polymyxin B both in vivo and in vitro and establish a theoretical foundation to guide the rational use of polymyxins within clinical settings. in vitro experiments simulated nerve damage by exposing N2a and RSC96 cells to colistin and polymyxin B. The evaluation of nerve injury included assessments of cell viability and apoptosis. To discern the variance in the mechanisms of nerve injury between colistin and polymyxin B, oxidative stress levels were examined, such as SOD, CAT, GSH, and malondialdehyde (MDA). In in vivo experiments, a rat nerve injury model was created by intraventricular injections of colistin and polymyxin B, respectively. The impact of these drugs on brain injury in rats, particularly within the hippocampus and medulla oblongata, was measured using HE and Nissl staining. The potential influence of polymyxins on the ferroptosis pathway was evaluated by assessing LPO and Fe2+ levels and the degree of mitochondrial impairment. At equivalent doses, colistin demonstrated a reduced level of neurotoxicity compared to polymyxin B, both in vitro and in vivo. in vitro experiments revealed greater cell viability and a lower apoptosis rate after colistin treatment than after polymyxin B treatment. This variance in outcomes could be attributed to the comparatively lower levels of oxidative stress associated with colistin administration. In a rat model, nerve injury resulted in observable damage to both the hippocampus and the medulla oblongata. A comprehensive assessment of the extent of damage in the CA1 to CA4 regions of the hippocampus, and the solitary tract nucleus of the medulla oblongata underscored that the neurotoxic effects of colistin remained milder compared to those elicited by polymyxin B. Even when evaluated at equivalent multiples of clinically recommended doses, colistin exhibited lower neurotoxicity in vivo than polymyxin B. For the first time, this study demonstrated the role of ferroptosis in polymyxin B-induced nerve damage. The activation levels observed within the ferroptosis pathway due to polymyxin B exceeded those triggered by colistin. Colistin exhibited a marked reduction in neurotoxicity compared to polymyxin B, evident in both the equivalent and clinically recommended doses. These findings suggest that, from the perspective of neurotoxicity, colistin presents a more favorable option for clinical use.
Insights
Colistin shows less neurotoxicity than polymyxin B in vitro and in vivo, suggesting it
Area of Science:
- Pharmacology
- Neuroscience
- Toxicology
Background:
- Polymyxins (colistin, polymyxin B) are last-resort antibiotics for Gram-negative infections.
- Clinical use is limited by neurotoxicity concerns.
- Comparative neurotoxicity profiles of colistin and polymyxin B are not well-defined.
Purpose of the Study:
- To comprehensively compare the in vitro and in vivo neurotoxicity of colistin and polymyxin B.
- To establish a theoretical foundation for rational polymyxin use in clinical settings.
Main Methods:
- In vitro: N2a and RSC96 cells exposed to colistin/polymyxin B; assessed cell viability, apoptosis, oxidative stress (SOD, CAT, GSH, MDA).
- In vivo: Rat intraventricular injection model; assessed brain injury (hippocampus, medulla oblongata) via HE/Nissl staining.
- Evaluated ferroptosis pathway (LPO, Fe2+, mitochondrial impairment).
Main Results:
- Colistin demonstrated significantly lower neurotoxicity than polymyxin B both in vitro and in vivo at equivalent doses.
- In vitro: Colistin treatment resulted in higher cell viability and lower apoptosis rates, linked to reduced oxidative stress.
- In vivo: Colistin caused milder damage to rat hippocampus and medulla oblongata; polymyxin B induced greater ferroptosis pathway activation.
Conclusions:
- Colistin exhibits a more favorable neurotoxicity profile compared to polymyxin B.
- Ferroptosis plays a role in polymyxin B-induced nerve damage, exceeding that of colistin.
- Findings support colistin as a potentially safer clinical option regarding neurotoxicity.
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