Cargando…

Activated CX3CL1/Smad2 Signals Prevent Neuronal Loss and Alzheimer's Tau Pathology-Mediated Cognitive Dysfunction

Neurofibrillary tangles likely cause neurodegeneration in Alzheimer's disease (AD). We demonstrate that the CX3CL1 C-terminal domain can upregulate neurogenesis, which may ameliorate neurodegeneration. Here we generated transgenic (Tg-CX3CL1) mice by overexpressing CX3CL1 in neurons. Tg-CX3CL1...

Descripción completa

Detalles Bibliográficos
Autores principales: Fan, Qingyuan, He, Wanxia, Gayen, Manoshi, Benoit, Marc Robert, Luo, Xiaoyang, Hu, Xiangyou, Yan, Riqiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society for Neuroscience 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6989010/
https://www.ncbi.nlm.nih.gov/pubmed/31822518
http://dx.doi.org/10.1523/JNEUROSCI.1333-19.2019
_version_ 1783492346273333248
author Fan, Qingyuan
He, Wanxia
Gayen, Manoshi
Benoit, Marc Robert
Luo, Xiaoyang
Hu, Xiangyou
Yan, Riqiang
author_facet Fan, Qingyuan
He, Wanxia
Gayen, Manoshi
Benoit, Marc Robert
Luo, Xiaoyang
Hu, Xiangyou
Yan, Riqiang
author_sort Fan, Qingyuan
collection PubMed
description Neurofibrillary tangles likely cause neurodegeneration in Alzheimer's disease (AD). We demonstrate that the CX3CL1 C-terminal domain can upregulate neurogenesis, which may ameliorate neurodegeneration. Here we generated transgenic (Tg-CX3CL1) mice by overexpressing CX3CL1 in neurons. Tg-CX3CL1 mice exhibit enhanced neurogenesis in both subgranular and subventricular zones. This enhanced neurogenesis correlates well with elevated expression of TGF-β2 and TGF-β3, and activation of their downstream signaling molecule Smad2. Intriguingly, the enhanced adult neurogenesis was mitigated when Smad2 expression was deleted in neurons, supporting a role for the CX3CL1–TGF-β2/3–Smad2 pathway in the control of adult neurogenesis. When Tg-CX3CL1 mice were crossed with Alzheimer's PS19 mice, which overexpress a tau P301S mutation and exhibit age-dependent neurofibrillary tangles and neurodegeneration, overexpressed CX3CL1 in both male and female mice was sufficient to rescue the neurodegeneration, increase survival time, and improve cognitive function. Hence, we provide in vivo evidence that CX3CL1 is a strong activator of adult neurogenesis, and that it reduces neuronal loss and improves cognitive function in AD. SIGNIFICANCE STATEMENT This study will be the first to demonstrate that enhanced neurogenesis by overexpressed CX3CL1 is mitigated by disruption of Smad2 signaling and is independent of its interaction with CX3CR1. Overexpression of CX3CL1 lengthens the life span of PS19 tau mice by enhancing adult neurogenesis while having minimal effect on tau pathology. Enhancing neuronal CX3CL1, mainly the C-terminal fragment, is a therapeutic strategy for blocking or reversing neuronal loss in Alzheimer's disease or related neurodegenerative disease patients.
format Online
Article
Text
id pubmed-6989010
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Society for Neuroscience
record_format MEDLINE/PubMed
spelling pubmed-69890102020-01-30 Activated CX3CL1/Smad2 Signals Prevent Neuronal Loss and Alzheimer's Tau Pathology-Mediated Cognitive Dysfunction Fan, Qingyuan He, Wanxia Gayen, Manoshi Benoit, Marc Robert Luo, Xiaoyang Hu, Xiangyou Yan, Riqiang J Neurosci Research Articles Neurofibrillary tangles likely cause neurodegeneration in Alzheimer's disease (AD). We demonstrate that the CX3CL1 C-terminal domain can upregulate neurogenesis, which may ameliorate neurodegeneration. Here we generated transgenic (Tg-CX3CL1) mice by overexpressing CX3CL1 in neurons. Tg-CX3CL1 mice exhibit enhanced neurogenesis in both subgranular and subventricular zones. This enhanced neurogenesis correlates well with elevated expression of TGF-β2 and TGF-β3, and activation of their downstream signaling molecule Smad2. Intriguingly, the enhanced adult neurogenesis was mitigated when Smad2 expression was deleted in neurons, supporting a role for the CX3CL1–TGF-β2/3–Smad2 pathway in the control of adult neurogenesis. When Tg-CX3CL1 mice were crossed with Alzheimer's PS19 mice, which overexpress a tau P301S mutation and exhibit age-dependent neurofibrillary tangles and neurodegeneration, overexpressed CX3CL1 in both male and female mice was sufficient to rescue the neurodegeneration, increase survival time, and improve cognitive function. Hence, we provide in vivo evidence that CX3CL1 is a strong activator of adult neurogenesis, and that it reduces neuronal loss and improves cognitive function in AD. SIGNIFICANCE STATEMENT This study will be the first to demonstrate that enhanced neurogenesis by overexpressed CX3CL1 is mitigated by disruption of Smad2 signaling and is independent of its interaction with CX3CR1. Overexpression of CX3CL1 lengthens the life span of PS19 tau mice by enhancing adult neurogenesis while having minimal effect on tau pathology. Enhancing neuronal CX3CL1, mainly the C-terminal fragment, is a therapeutic strategy for blocking or reversing neuronal loss in Alzheimer's disease or related neurodegenerative disease patients. Society for Neuroscience 2020-01-29 /pmc/articles/PMC6989010/ /pubmed/31822518 http://dx.doi.org/10.1523/JNEUROSCI.1333-19.2019 Text en Copyright © 2020 Fan et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License Creative Commons Attribution 4.0 International (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Articles
Fan, Qingyuan
He, Wanxia
Gayen, Manoshi
Benoit, Marc Robert
Luo, Xiaoyang
Hu, Xiangyou
Yan, Riqiang
Activated CX3CL1/Smad2 Signals Prevent Neuronal Loss and Alzheimer's Tau Pathology-Mediated Cognitive Dysfunction
title Activated CX3CL1/Smad2 Signals Prevent Neuronal Loss and Alzheimer's Tau Pathology-Mediated Cognitive Dysfunction
title_full Activated CX3CL1/Smad2 Signals Prevent Neuronal Loss and Alzheimer's Tau Pathology-Mediated Cognitive Dysfunction
title_fullStr Activated CX3CL1/Smad2 Signals Prevent Neuronal Loss and Alzheimer's Tau Pathology-Mediated Cognitive Dysfunction
title_full_unstemmed Activated CX3CL1/Smad2 Signals Prevent Neuronal Loss and Alzheimer's Tau Pathology-Mediated Cognitive Dysfunction
title_short Activated CX3CL1/Smad2 Signals Prevent Neuronal Loss and Alzheimer's Tau Pathology-Mediated Cognitive Dysfunction
title_sort activated cx3cl1/smad2 signals prevent neuronal loss and alzheimer's tau pathology-mediated cognitive dysfunction
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6989010/
https://www.ncbi.nlm.nih.gov/pubmed/31822518
http://dx.doi.org/10.1523/JNEUROSCI.1333-19.2019
work_keys_str_mv AT fanqingyuan activatedcx3cl1smad2signalspreventneuronallossandalzheimerstaupathologymediatedcognitivedysfunction
AT hewanxia activatedcx3cl1smad2signalspreventneuronallossandalzheimerstaupathologymediatedcognitivedysfunction
AT gayenmanoshi activatedcx3cl1smad2signalspreventneuronallossandalzheimerstaupathologymediatedcognitivedysfunction
AT benoitmarcrobert activatedcx3cl1smad2signalspreventneuronallossandalzheimerstaupathologymediatedcognitivedysfunction
AT luoxiaoyang activatedcx3cl1smad2signalspreventneuronallossandalzheimerstaupathologymediatedcognitivedysfunction
AT huxiangyou activatedcx3cl1smad2signalspreventneuronallossandalzheimerstaupathologymediatedcognitivedysfunction
AT yanriqiang activatedcx3cl1smad2signalspreventneuronallossandalzheimerstaupathologymediatedcognitivedysfunction