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RhoA/ROCK2 signaling pathway regulates Mn-induced alterations in tight junction proteins leading to cognitive
Yan Ma1, Honggang Chen1, Yuxin Jiang1
1Department of Occupational & Environmental Health and the Ministry of Education Key Lab of Hazard Assessment and Control in Special Operational Environment, School of Public Health, Fourth Military Medical University, Chang Le Xi Road, Xi'an,Shaanxi 710032, China.
Abstract:
Elevated manganese (Mn) exposure has been implicated in a broad spectrum of neurological disorders, including motor dysfunction and cognitive deficits. Previous studies have demonstrated that Mn induces neurotoxicity by disrupting the integrity of the blood-brain barrier (BBB), a critical regulator in maintaining central nervous system homeostasis and a contributing factor in the pathogenesis of numerous neurological disorders. However, the precise molecular mechanisms underlying Mn-induced BBB disruption and its role in facilitating neurotoxicity remain incompletely understood. The primary objectives of this study were to elucidate the mechanisms underlying the relationship between Mn exposure and BBB tight junction proteins (TJPs), and to further investigate potential neuroprotective strategies for mitigating Mn-induced cognitive impairments. In this investigation, we developed Mn exposure models utilizing both murine subjects and cell culture systems to elucidate the mechanisms underlying TJPs involvement and to assess the potential neuroprotective effects of gastrodin (GAS), a bioactive compound extracted from traditional Chinese medicine. Our findings revealed a significant reduction in TJPs expression, both in vivo and in vitro, in Mn-induced BBB disruption. The overexpression of Occludin (OCLN), a crucial component of TJPs, mitigated Mn-induced BBB damage. GAS administration effectively attenuated Mn-induced disruption of the BBB, enhanced the expression of TJPs, and mitigated Mn-induced cognitive dysfunctions, potentially through the modulation of the RhoA/ROCK2 signaling pathway. This research sought to advance our understanding of the molecular pathways involved in Mn-mediated BBB disruption and to identify novel therapeutic approaches for mitigating the deleterious effects of Mn exposure on cognitive function.
Insights
Manganese (Mn) exposure disrupts the blood-brain barrier (BBB) by reducing tight junction proteins (TJPs). Gastrodin (GAS) protects against Mn-induced cognitive deficits by restoring TJPs and modulating the RhoA/ROCK2 pathway.
Area of Science:
- Neuroscience
- Toxicology
- Pharmacology
Background:
- Elevated manganese (Mn) exposure is linked to neurological disorders, including cognitive deficits.
- Mn-induced neurotoxicity involves disruption of the blood-brain barrier (BBB), but mechanisms are unclear.
- Tight junction proteins (TJPs) are crucial for BBB integrity.
Purpose of the Study:
- To elucidate the mechanisms of Mn-induced BBB disruption related to TJPs.
- To investigate gastrodin (GAS) as a neuroprotective strategy against Mn-induced cognitive impairment.
Main Methods:
- Developed Mn exposure models in murine subjects and cell cultures.
- Assessed TJP expression and BBB integrity.
- Evaluated the effects of gastrodin (GAS) administration.
Main Results:
- Mn exposure significantly reduced TJP expression, causing BBB disruption both *in vivo* and *in vitro*.
- Overexpression of Occludin (OCLN) mitigated Mn-induced BBB damage.
- GAS administration attenuated BBB disruption, enhanced TJP expression, and improved cognitive function, potentially via the RhoA/ROCK2 pathway.
Conclusions:
- Mn exposure disrupts the BBB by downregulating TJPs, contributing to cognitive deficits.
- Gastrodin (GAS) demonstrates neuroprotective effects against Mn toxicity by preserving BBB integrity.
- Modulation of the RhoA/ROCK2 pathway is a potential mechanism for GAS's therapeutic action.
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