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Role of TGFβ Signaling in the Pathogenesis of Alzheimer's Disease

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Specialty Cell Biology
Date 2015 Nov 19
PMID 26578886
Citations 74
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Abstract

Aging is the main risk factor for Alzheimer's disease (AD); being associated with conspicuous changes on microglia activation. Aged microglia exhibit an increased expression of cytokines, exacerbated reactivity to various stimuli, oxidative stress, and reduced phagocytosis of β-amyloid (Aβ). Whereas normal inflammation is protective, it becomes dysregulated in the presence of a persistent stimulus, or in the context of an inflammatory environment, as observed in aging. Thus, neuroinflammation can be a self-perpetuating deleterious response, becoming a source of additional injury to host cells in neurodegenerative diseases. In aged individuals, although transforming growth factor β (TGFβ) is upregulated, its canonical Smad3 signaling is greatly reduced and neuroinflammation persists. This age-related Smad3 impairment reduces protective activation while facilitating cytotoxic activation of microglia through several cellular mechanisms, potentiating microglia-mediated neurodegeneration. Here, we critically discuss the role of TGFβ-Smad signaling on the cytotoxic activation of microglia and its relevance in the pathogenesis of AD. Other protective functions, such as phagocytosis, although observed in aged animals, are not further induced by inflammatory stimuli and TGFβ1. Analysis in silico revealed that increased expression of receptor scavenger receptor (SR)-A, involved in Aβ uptake and cell activation, by microglia exposed to TGFβ, through a Smad3-dependent mechanism could be mediated by transcriptional co-factors Smad2/3 over the MSR1 gene. We discuss that changes of TGFβ-mediated regulation could at least partially mediate age-associated microglia changes, and, together with other changes on inflammatory response, could result in the reduction of protective activation and the potentiation of cytotoxicity of microglia, resulting in the promotion of neurodegenerative diseases.

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References
1.
Simonsson M, Kanduri M, Gronroos E, Heldin C, Ericsson J . The DNA binding activities of Smad2 and Smad3 are regulated by coactivator-mediated acetylation. J Biol Chem. 2006; 281(52):39870-80. DOI: 10.1074/jbc.M607868200. View

2.
Larbi A, Franceschi C, Mazzatti D, Solana R, Wikby A, Pawelec G . Aging of the immune system as a prognostic factor for human longevity. Physiology (Bethesda). 2008; 23:64-74. DOI: 10.1152/physiol.00040.2007. View

3.
Amara F, Junaid A, Clough R, Liang B . TGF-beta(1), regulation of alzheimer amyloid precursor protein mRNA expression in a normal human astrocyte cell line: mRNA stabilization. Brain Res Mol Brain Res. 1999; 71(1):42-9. DOI: 10.1016/s0169-328x(99)00158-8. View

4.
Alarcon R, Fuenzalida C, Santibanez M, von Bernhardi R . Expression of scavenger receptors in glial cells. Comparing the adhesion of astrocytes and microglia from neonatal rats to surface-bound beta-amyloid. J Biol Chem. 2005; 280(34):30406-15. DOI: 10.1074/jbc.M414686200. View

5.
Milner R . Microglial expression of alphavbeta3 and alphavbeta5 integrins is regulated by cytokines and the extracellular matrix: beta5 integrin null microglia show no defects in adhesion or MMP-9 expression on vitronectin. Glia. 2008; 57(7):714-23. DOI: 10.1002/glia.20799. View