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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Brain Renin-Angiotensin System and Microglial Polarization: Implications for Aging and Neurodegeneration
Jose L Labandeira-Garcia1,2, Ana I Rodríguez-Perez1,2, Pablo Garrido-Gil1,2
1Laboratory of Neuroanatomy and Experimental Neurology, Department of Morphological Sciences, Center for Research in Molecular Medicine and Chronic Diseases (CIMUS), University of Santiago de CompostelaSantiago de Compostela, Spain.
Abstract:
Microglia can transform into proinflammatory/classically activated (M1) or anti-inflammatory/alternatively activated (M2) phenotypes following environmental signals related to physiological conditions or brain lesions. An adequate transition from the M1 (proinflammatory) to M2 (immunoregulatory) phenotype is necessary to counteract brain damage. Several factors involved in microglial polarization have already been identified. However, the effects of the brain renin-angiotensin system (RAS) on microglial polarization are less known. It is well known that there is a "classical" circulating RAS; however, a second RAS (local or tissue RAS) has been observed in many tissues, including brain. The locally formed angiotensin is involved in local pathological changes of these tissues and modulates immune cells, which are equipped with all the components of the RAS. There are also recent data showing that brain RAS plays a major role in microglial polarization. Level of microglial NADPH-oxidase (Nox) activation is a major regulator of the shift between M1/proinflammatory and M2/immunoregulatory microglial phenotypes so that Nox activation promotes the proinflammatory and inhibits the immunoregulatory phenotype. Angiotensin II (Ang II), via its type 1 receptor (AT1), is a major activator of the NADPH-oxidase complex, leading to pro-oxidative and pro-inflammatory effects. However, these effects are counteracted by a RAS opposite arm constituted by Angiotensin II/AT2 receptor signaling and Angiotensin 1-7/Mas receptor (MasR) signaling. In addition, activation of prorenin-renin receptors may contribute to activation of the proinflammatory phenotype. Aged brains showed upregulation of AT1 and downregulation of AT2 receptor expression, which may contribute to a pro-oxidative pro-inflammatory state and the increase in neuron vulnerability. Several recent studies have shown interactions between the brain RAS and different factors involved in microglial polarization, such as estrogens, Rho kinase (ROCK), insulin-like growth factor-1 (IGF-1), tumor necrosis factor α (TNF)-α, iron, peroxisome proliferator-activated receptor gamma, and toll-like receptors (TLRs). Metabolic reprogramming has recently been involved in the regulation of the neuroinflammatory response. Interestingly, we have recently observed a mitochondrial RAS, which is altered in aged brains. In conclusion, dysregulation of brain RAS plays a major role in aging-related changes and neurodegeneration by exacerbation of oxidative stress (OS) and neuroinflammation, which may be attenuated by pharmacological manipulation of RAS components.
Insights
The brain renin-angiotensin system (RAS) significantly influences microglial polarization, impacting neuroinflammation and neurodegeneration. Dysregulation of brain RAS exacerbates oxidative stress and neuroinflammation, particularly in aging brains.
Area of Science:
- Neuroscience
- Immunology
- Molecular Biology
Background:
- Microglia, the brain's immune cells, exhibit M1 (proinflammatory) and M2 (immunoregulatory) phenotypes.
- Microglial polarization is crucial for managing brain damage, requiring a shift from M1 to M2 phenotypes.
- The brain's renin-angiotensin system (RAS) role in microglial polarization is not fully understood.
Purpose of the Study:
- To investigate the impact of the brain RAS on microglial polarization.
- To explore the mechanisms linking brain RAS components to microglial phenotype.
- To understand the implications of brain RAS dysregulation in aging and neurodegeneration.
Main Methods:
- Review of existing literature on brain RAS and microglial polarization.
- Analysis of molecular pathways involving NADPH-oxidase (Nox), Angiotensin II (Ang II), and their receptors (AT1, AT2).
- Examination of interactions between brain RAS and other factors influencing microglial phenotype (e.g., estrogens, ROCK, IGF-1).
Main Results:
- Brain RAS components, particularly Angiotensin II (Ang II) via the AT1 receptor, activate NADPH-oxidase (Nox), promoting M1 (proinflammatory) microglia.
- Counter-regulatory pathways involving AT2 and Mas receptors, as well as Angiotensin 1-7, modulate this effect.
- Aged brains exhibit altered RAS component expression (upregulated AT1, downregulated AT2), contributing to a pro-oxidative, proinflammatory state.
- Interactions between brain RAS and various signaling molecules (estrogens, ROCK, IGF-1, TNF-α, iron, PPARγ, TLRs) influence microglial polarization.
- A mitochondrial RAS, altered in aged brains, may also play a role in neuroinflammation.
Conclusions:
- Dysregulation of the brain RAS is a key factor in aging-related neuroinflammation and neurodegeneration.
- The balance of RAS signaling pathways significantly impacts microglial polarization and oxidative stress.
- Pharmacological targeting of RAS components offers potential therapeutic strategies for neuroinflammatory conditions.

