butylidenephthalide and Inflammation

butylidenephthalide has been researched along with Inflammation* in 2 studies

Other Studies

2 other study(ies) available for butylidenephthalide and Inflammation

ArticleYear
The Protective Effects of n-Butylidenephthalide on Retinal Ganglion Cells during Ischemic Injury.
    International journal of molecular sciences, 2022, Feb-14, Volume: 23, Issue:4

    Clinically, acute ischemic symptoms in the eyes are one of the main causes of vision loss, with the associated inflammatory response and oxidative stress being the key factors that cause injury. Nonarteritic anterior ischemic optic neuropathy (NAION) is the most common type of ischemic optic neuropathy (ION); however, there are still no effective or safe treatment options to date. In this study, we investigated the neuroprotective effects of n-butylidenephthalide (BP) treatment in an experimental NAION rodent model (rAION). BP (10 mg/kg) or PBS (control group) were administered on seven consecutive days in the rAION model. Rats were evaluated for visual function by flash visual evoked potentials (FVEPs) at 4 weeks after NAION induction. The retina and optic nerve were removed for histological examination after the rats were euthanized. The molecular machinery of BP treatment in the rAION model was analyzed using Western blotting. We discovered that BP effectively improves retinal ganglion cell survival rates by preventing apoptotic processes after AION induction and reducing the inflammatory response through which blood-borne macrophages infiltrate the optic nerve. In addition, BP significantly preserved the integrity of the myelin sheath in the rAION model, demonstrating that BP can prevent the development of demyelination. Our immunoblotting results revealed the molecular mechanism through which BP mitigates the neuroinflammatory response through inhibition of the NF-κB signaling pathway. Taken together, these results demonstrate that BP can be used as an exceptional neuroprotective agent for ischemic injury.

    Topics: Animals; Apoptosis; Disease Models, Animal; Evoked Potentials, Visual; Inflammation; Ischemia; Macrophages; Male; Neuroprotective Agents; Optic Nerve; Optic Neuropathy, Ischemic; Phthalic Anhydrides; Rats; Rats, Wistar; Retina; Retinal Ganglion Cells

2022
Prevention of inflammation-mediated neurotoxicity by butylidenephthalide and its role in microglial activation.
    Cell biochemistry and function, 2013, Volume: 31, Issue:8

    Microglial cells are the prime effectors in immune and inflammatory responses of the central nervous system (CNS). During pathological conditions, the activation of these cells helps restore CNS homeostasis. However, chronic microglial activation endangers neuronal survival through the release of various proinflammatory molecules and neurotoxins. Thus, negative regulators of microglial activation have been considered as potential therapeutic candidates to target neurodegeneration, such as that in Alzheimer's and Parkinson's diseases. The rhizome of Ligusticum chuanxiong Hort. (Ligusticum wallichii Franch) has been widely used for the treatment of vascular diseases in traditional oriental medicine. Butylidenephthalide (BP), a major bioactive component from L. chuanxiong, has been reported to have a variety of pharmacological activities, including vasorelaxant, anti-anginal, anti-platelet and anti-cancer effects. The aim of this study was to examine whether BP represses microglial activation. In rat brain microglia, BP significantly inhibited the lipopolysaccharide (LPS)-induced production of nitric oxide (NO), tumour necrosis factor-α and interleukin-1β. In organotypic hippocampal slice cultures, BP clearly blocked the effect of LPS on hippocampal cell death and inhibited LPS-induced NO production in culture medium. These results newly suggest that BP provide neuroprotection by reducing the release of various proinflammatory molecules from activated microglia.

    Topics: Animals; Brain; Cell Death; Cell Survival; Cells, Cultured; Hippocampus; Inflammation; Interleukin-1beta; Lipopolysaccharides; Microglia; Neurons; Neuroprotective Agents; Nitric Oxide; Phthalic Anhydrides; Rats; Tumor Necrosis Factor-alpha

2013