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Single-Nucleus Transcriptomics Uncovers Xaf1-Driven PANoptosis as a Therapeutic Target in Aminoglycoside-Induced
Xinlin Wang1, Hairong Xiao1,2, Jiheng Wu1
1Department of Otolaryngology Head and Neck Surgery, Zhongda Hospital, State Key Laboratory of Digital Medical Engineering, Jiangsu Provincial Key Laboratory of Critical Care Medicine, School of Life Sciences and Technology, School of Medicine, Advanced Institute for Life and Health, Southeast University, Nanjing, China.
Abstract:
Aminoglycoside antibiotics are essential in managing many life-threatening diseases. However, their derivatives, such as neomycin, are associated with severe side effects such as persistent sensorineural hearing loss. Therefore, it is essential to elucidate the molecular and biochemical mechanisms of aminoglycoside-induced ototoxicity and identify targets for alleviating ototoxic injury. Here, we provide a detailed cochlear cell atlas of neomycin-induced acute and chronic ototoxicity-related changes through single-nucleus RNA sequencing profiling. Utilising this cochlear cell atlas, we used the Augur and scDist algorithms to evaluate cell-type-specific susceptibility to neomycin injury. We observed aberrant expression of X-linked inhibitor of apoptosis (Xiap)-associated factor 1 (Xaf1) in neomycin-exposed cochleae using the cochlear cell atlas, and we identified a novel role for Xaf1 in facilitating PANoptosis through overexpression and knockdown assays in vitro. Finally, we assessed the protective role of Xaf1 against neomycin-induced ototoxicity by Xaf1 knockdown in cochlear hair cells using adeno-associated virus-based gene delivery. Mechanistically, Xaf1 orchestrates PANoptosis activation through direct interaction with and transcriptional regulation of ZBP1, establishing its hierarchical position upstream in the signalling cascade. This study presents detailed cochlear cellular maps of neomycin-induced ototoxicity and serves as a valuable resource for identifying transcriptome-wide disease-driving perturbations at the single-cell level. More importantly, we identified Xaf1 as a critical target for modulating the PANoptosis pathway, offering a promising treatment strategy for aminoglycoside-induced ototoxicity.
Insights
Neomycin causes hearing loss by damaging cochlear cells. Researchers identified X-linked inhibitor of apoptosis (Xiap)-associated factor 1 (Xaf1) as a key regulator of cell death, offering a potential therapeutic target for aminoglycoside ototoxicity.
Area of Science:
- Ototoxicity research
- Molecular mechanisms of cell death
- Auditory system science
Background:
- Aminoglycoside antibiotics are crucial for treating severe infections.
- Neomycin, an aminoglycoside, can cause irreversible sensorineural hearing loss.
- Understanding ototoxicity mechanisms is vital for developing protective strategies.
Purpose of the Study:
- To create a detailed cochlear cell atlas of neomycin-induced ototoxicity.
- To identify molecular targets for mitigating aminoglycoside-induced ototoxicity.
- To investigate the role of X-linked inhibitor of apoptosis (Xiap)-associated factor 1 (Xaf1) in ototoxicity.
Main Methods:
- Single-nucleus RNA sequencing to profile cochlear cells.
- Augur and scDist algorithms for cell-type susceptibility analysis.
- In vitro assays and adeno-associated virus (AAV)-based gene delivery to study Xaf1 function.
Main Results:
- Generated a comprehensive cochlear cell atlas detailing neomycin-induced changes.
- Identified Xaf1 as a key mediator of PANoptosis in cochlear cells.
- Demonstrated that Xaf1 knockdown protects cochlear hair cells from neomycin toxicity.
- Elucidated Xaf1's mechanism involving ZBP1 regulation in the PANoptosis pathway.
Conclusions:
- Xaf1 is a critical regulator of PANoptosis and a potential therapeutic target for neomycin-induced ototoxicity.
- This study provides valuable single-cell data for understanding ototoxicity at a molecular level.
- Targeting Xaf1 offers a promising avenue for preventing aminoglycoside-induced hearing loss.
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