Telmisartan prevention of LPS-induced microglia activation involves M2 microglia polarization via CaMKKβ-dependent
Yuan Xu1, Yazhou Xu1, Yurong Wang1
1Jiangsu Key Laboratory of Drug Screening and State Key Laboratory of Natural Medicines, China Pharmaceutical University, Nanjing 210009, PR China.
Abstract:
Brain inflammation plays an important role in the pathophysiology of many psychiatric and neurological diseases. During brain inflammation, microglia cells are activated, producing neurotoxic molecules and neurotrophic factors depending on their pro-inflammatory M1 and anti-inflammatory M2 phenotypes. It has been demonstrated that Angiotensin II type 1 receptor blockers (ARBs) ameliorate brain inflammation and reduce M1 microglia activation. The ARB telmisartan suppresses glutamate-induced upregulation of inflammatory genes in cultured primary neurons. We wished to clarify whether telmisartan, in addition, prevents microglia activation through polarization to an anti-inflammatory M2 phenotype. We found that telmisartan promoted M2 polarization and reduced M1 polarization in LPS-stimulated BV2 and primary microglia cells, effects partially dependent on PPARγ activation. The promoting effects of telmisartan on M2 polarization, were attenuated by an AMP-activated protein kinase (AMPK) inhibitor or AMPK knockdown, indicating that AMPK activation participates on telmisartan effects. Moreover, in LPS-stimulated BV2 cells, telmisartan enhancement of M2 gene expression was prevented by the inhibitor STO-609 and siRNA of calmodulin-dependent protein kinase kinase β (CaMKKβ), an upstream kinase of AMPK. Furthermore, telmisartan enhanced brain AMPK activation and M2 gene expression in a mouse model of LPS-induced neuroinflammation. In addition, telmisartan reduced the LPS-induced sickness behavior in this in vivo model, and this effect was prevented by prior administration of an AMPK inhibitor. Our results indicate that telmisartan can be considered as a novel AMPK activator, suppressing microglia activation by promoting M2 polarization. Telmisartan may provide a novel, safe therapeutic approach to treat brain disorders associated with enhanced inflammation.
Insights
Telmisartan, an ARB, promotes anti-inflammatory M2 microglia polarization and reduces M1 activation. This effect involves AMP-activated protein kinase (AMPK) activation, offering a potential treatment for brain inflammation.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Brain inflammation is implicated in neurological and psychiatric diseases.
- Microglia activation, with M1 (pro-inflammatory) and M2 (anti-inflammatory) phenotypes, drives neuroinflammation.
- Angiotensin II type 1 receptor blockers (ARBs) are known to reduce brain inflammation and M1 microglia activation.
Purpose of the Study:
- To investigate if the ARB telmisartan can prevent microglia activation by promoting a shift towards the anti-inflammatory M2 phenotype.
- To elucidate the molecular mechanisms, including AMP-activated protein kinase (AMPK) and PPARγ pathways, underlying telmisartan's effects on microglia polarization.
Main Methods:
- Utilized LPS-stimulated BV2 and primary microglia cell cultures.
- Employed PPARγ activation, AMPK inhibition, AMPK knockdown, CaMKKβ inhibition, and siRNA in vitro.
- Administered telmisartan to a mouse model of LPS-induced neuroinflammation.
- Assessed microglia polarization, gene expression, AMPK activation, and sickness behavior.
Main Results:
- Telmisartan promoted M2 microglia polarization and reduced M1 polarization, partially via PPARγ activation.
- Telmisartan's M2-promoting effects were dependent on AMP-activated protein kinase (AMPK) activation, involving CaMKKβ.
- In vivo, telmisartan enhanced brain AMPK activation and M2 gene expression, reducing LPS-induced sickness behavior.
Conclusions:
- Telmisartan acts as a novel AMP-activated protein kinase (AMPK) activator, suppressing neuroinflammation by promoting M2 microglia polarization.
- Telmisartan demonstrates potential as a safe therapeutic agent for brain disorders characterized by excessive inflammation.
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