Perfluoropentane-based oxygen-loaded nanodroplets reduce microglial activation through metabolic reprogramming.
Wanxian LuoChuanhui XuLinxi LiYunxiang JiYezhong WangYingjia LiYongyi YePublished in: Neural regeneration research (2024)
JOURNAL/nrgr/04.03/01300535-202504000-00032/figure1/v/2024-07-06T104127Z/r/image-tiff Microglia, the primary immune cells within the brain, have gained recognition as a promising therapeutic target for managing neurodegenerative diseases within the central nervous system, including Parkinson's disease. Nanoscale perfluorocarbon droplets have been reported to not only possess a high oxygen-carrying capacity, but also exhibit remarkable anti-inflammatory properties. However, the role of perfluoropentane in microglia-mediated central inflammatory reactions remains poorly understood. In this study, we developed perfluoropentane-based oxygen-loaded nanodroplets (PFP-OLNDs) and found that pretreatment with these droplets suppressed the lipopolysaccharide-induced activation of M1-type microglia in vitro and in vivo, and suppressed microglial activation in a mouse model of Parkinson's disease. Microglial suppression led to a reduction in the inflammatory response, oxidative stress, and cell migration capacity in vitro. Consequently, the neurotoxic effects were mitigated, which alleviated neuronal degeneration. Additionally, ultrahigh-performance liquid chromatography-tandem mass spectrometry showed that the anti-inflammatory effects of PFP-OLNDs mainly resulted from the modulation of microglial metabolic reprogramming. We further showed that PFP-OLNDs regulated microglial metabolic reprogramming through the AKT-mTOR-HIF-1α pathway. Collectively, our findings suggest that the novel PFP-OLNDs constructed in this study alleviate microglia-mediated central inflammatory reactions through metabolic reprogramming.
Keyphrases
- inflammatory response
- lipopolysaccharide induced
- lps induced
- oxidative stress
- toll like receptor
- anti inflammatory
- liquid chromatography tandem mass spectrometry
- cell migration
- neuropathic pain
- mouse model
- drug delivery
- cell proliferation
- cancer therapy
- transcription factor
- simultaneous determination
- spinal cord injury
- endothelial cells
- cerebral ischemia
- deep learning
- wastewater treatment
- mass spectrometry
- brain injury
- blood brain barrier
- single molecule
- atomic force microscopy
- functional connectivity