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Oral Administration of Rotenone using a Gavage and Image Analysis of Alpha-synuclein Inclusions in the Enteric Nervous System
Published on: October 26, 2010
Novel compound FLZ alleviates rotenone-induced PD mouse model by suppressing TLR4/MyD88/NF-κB pathway through
Zhe Zhao1, Fangyuan Li1, Jingwen Ning1
1State Key Laboratory of Bioactive Substrate and Function of Natural Medicine, Institute of Materia Medica, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing 100050, China.
Abstract:
Parkinson's disease (PD) is the second most common neurodegenerative disease, but none of the current treatments for PD can halt the progress of the disease due to the limited understanding of the pathogenesis. In PD development, the communication between the brain and the gastrointestinal system influenced by gut microbiota is known as microbiota-gut-brain axis. However, the explicit mechanisms of microbiota dysbiosis in PD development have not been well elucidated yet. FLZ, a novel squamosamide derivative, has been proved to be effective in many PD models and is undergoing the phase I clinical trial to treat PD in China. Moreover, our previous pharmacokinetic study revealed that gut microbiota could regulate the absorption of FLZ in vivo. The aims of our study were to assess the protective effects of FLZ treatment on PD and to further explore the underlying microbiota-related mechanisms of PD by using FLZ as a tool. In the current study, chronic oral administration of rotenone was utilized to induce a mouse model to mimic the pathological process of PD. Here we revealed that FLZ treatment alleviated gastrointestinal dysfunctions, motor symptoms, and dopaminergic neuron death in rotenone-challenged mice. 16S rRNA sequencing found that PD-related microbiota alterations induced by rotenone were reversed by FLZ treatment. Remarkably, FLZ administration attenuated intestinal inflammation and gut barrier destruction, which subsequently inhibited systemic inflammation. Eventually, FLZ treatment restored blood-brain barrier structure and suppressed neuroinflammation by inhibiting the activation of astrocytes and microglia in the substantia nigra (SN). Further mechanistic research demonstrated that FLZ treatment suppressed the TLR4/MyD88/NF-κB pathway both in the SN and colon. Collectively, FLZ treatment ameliorates microbiota dysbiosis to protect the PD model via inhibiting TLR4 pathway, which contributes to one of the underlying mechanisms beneath its neuroprotective effects. Our research also supports the importance of microbiota-gut-brain axis in PD pathogenesis, suggesting its potential role as a novel therapeutic target for PD treatment.
Insights
FLZ treatment protects against Parkinson's disease (PD) by reversing gut microbiota changes and reducing inflammation. This novel drug targets the microbiota-gut-brain axis, offering a potential new therapy for PD.
Area of Science:
- Neuroscience
- Microbiology
- Pharmacology
Background:
- Parkinson's disease (PD) pathogenesis is not fully understood, limiting effective treatments.
- The microbiota-gut-brain axis plays a role in PD, but mechanisms of dysbiosis remain unclear.
- FLZ, a novel drug, shows promise for PD and its absorption is influenced by gut microbiota.
Purpose of the Study:
- To evaluate FLZ's protective effects in a PD mouse model.
- To investigate FLZ's microbiota-related mechanisms in PD.
- To explore FLZ as a tool for understanding the microbiota-gut-brain axis in PD.
Main Methods:
- Induced a PD mouse model using chronic rotenone administration.
- Administered FLZ orally and assessed motor function, gastrointestinal issues, and dopaminergic neuron survival.
- Utilized 16S rRNA sequencing to analyze gut microbiota composition.
- Measured intestinal and systemic inflammation, gut barrier integrity, and blood-brain barrier status.
- Investigated the TLR4/MyD88/NF-κB pathway in the brain and colon.
Main Results:
- FLZ treatment alleviated PD symptoms, including motor deficits and neuron loss.
- FLZ reversed rotenone-induced gut microbiota alterations.
- FLZ reduced intestinal and systemic inflammation and restored gut barrier integrity.
- FLZ treatment improved blood-brain barrier structure and suppressed neuroinflammation.
- FLZ inhibited the TLR4/MyD88/NF-κB pathway in the colon and substantia nigra.
Conclusions:
- FLZ ameliorates PD symptoms by modulating the gut microbiota and inhibiting the TLR4 pathway.
- FLZ demonstrates neuroprotective effects through the microbiota-gut-brain axis.
- FLZ represents a potential therapeutic strategy for PD targeting gut dysbiosis.
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