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Published on: July 31, 2017
Salvianolic acid B protects against MPP+-induced neuronal injury via repressing oxidative stress and restoring
Yuan Zhao1, Yidan Zhang, Jian Zhang
1Department of Geriatrics, Second Hospital of Hebei Medical University, Shijiazhuang, Hebei, China.
Abstract:
Maintaining normal conditions in the mitochondria and repressing oxidative stress has emerged as a crucial therapeutic strategy to ameliorate neuron damage in Parkinson's disease. Salvianolic acid B (SalB) is a polyphenolic compound isolated from Salvia miltiorrhiza, which has been prescribed for various biological properties, including antioxidative stress, anti-inflammation and neuroprotection in pathological conditions. Previously, SalB was reported to be of benefit in slowing Parkinson's disease pathology, but whether the neuroprotective role of SalB is associated with a mitochondrial protective action is still elusive. Here we aimed to explore the effects of SalB on mitochondrial function in Parkinson's disease to uncover the underlying cellular mechanisms. The results showed that SalB significantly alleviated 1-methyl-4-phenylpyridinium (MPP+)-induced mitochondrial disruption in line with ameliorated oxidative injury, which is evidenced by inhibited mitochondrial membrane potential collapse, reduced reactive oxygen species (ROS) generation, increased expression of NAD(P)H: quinone oxidoreductase, and enhanced mitochondrial biosynthesis - the upregulation of nuclear respiratory factor 1 and mitochondrial transcription factor A expressions. Mechanistically, SalB not only increased AMP-activated protein kinase (AMPK) activation and sirtuin3 mRNA and protein levels, but also attenuated ROS-triggered neuroinflammation by downregulating the expressions of NOD-like receptor family pyrin domain containing 3, caspase-1 and Interleukin-1β (IL-1β). In conclusion, these in-vitro findings, for the first time, demonstrate that SalB offers protection against MPP+-induced neuronal injury via upregulating sirtuin3 expression and activating the AMPK signaling to restore mitochondrial function.
Insights
Salvianolic acid B (SalB) protects neurons from Parkinson's disease damage by improving mitochondrial function and reducing oxidative stress. This study reveals SalB's neuroprotective effects are linked to enhanced mitochondrial health and reduced inflammation.
Area of Science:
- Neuroscience
- Biochemistry
- Pharmacology
Background:
- Parkinson's disease (PD) involves mitochondrial dysfunction and oxidative stress, leading to neurodegeneration.
- Salvianolic acid B (SalB), a compound from Salvia miltiorrhiza, shows potential neuroprotective properties.
- The exact mitochondrial protective mechanisms of SalB in PD remain unclear.
Purpose of the Study:
- To investigate the effects of SalB on mitochondrial function in a cellular model of Parkinson's disease.
- To elucidate the underlying cellular and molecular mechanisms of SalB's neuroprotective action.
Main Methods:
- Utilized 1-methyl-4-phenylpyridinium (MPP+)-induced cellular model for Parkinson's disease.
- Assessed mitochondrial function markers including membrane potential, reactive oxygen species (ROS) generation, and mitochondrial biosynthesis.
- Analyzed the expression of key signaling molecules such as AMP-activated protein kinase (AMPK), sirtuin3, and inflammatory markers (NLRP3, caspase-1, IL-1β).
Main Results:
- SalB significantly protected against MPP+-induced mitochondrial disruption and oxidative injury.
- Observed inhibition of mitochondrial membrane potential collapse and reduced ROS generation.
- Demonstrated enhanced mitochondrial biosynthesis via upregulation of NRF1 and TFAM.
- Showed SalB activated AMPK and sirtuin3, while downregulating NLRP3 inflammasome components, thereby reducing neuroinflammation.
Conclusions:
- SalB protects against MPP+-induced neuronal injury by restoring mitochondrial function.
- The neuroprotective effects are mediated through the upregulation of sirtuin3 and activation of AMPK signaling pathways.
- SalB attenuates neuroinflammation, contributing to its overall therapeutic potential in Parkinson's disease.

