Neuronal p38α mediates age‐associated neural stem cell exhaustion and cognitive decline
暂无分享,去创建一个
A. Nebreda | A. Matheu | J. Bolaños | D. Jiménez-Blasco | F. Gil-Bea | I. Llarena | M. Moreno-Valladares | S. Colié | Leire Moreno-Cugnon | M. Revuelta | Olatz Arrizabalaga
[1] M. Pekny,et al. The role of GFAP and vimentin in learning and memory , 2019, Biological chemistry.
[2] T. Shimazaki,et al. Involvement of p38 in Age-Related Decline in Adult Neurogenesis via Modulation of Wnt Signaling , 2019, Stem cell reports.
[3] A. Ittner,et al. Neuronal MAP kinase p38α inhibits c-Jun N-terminal kinase to modulate anxiety-related behaviour , 2018, Scientific Reports.
[4] N. Toni,et al. Mossy Cells Control Adult Neural Stem Cell Quiescence and Maintenance through a Dynamic Balance between Direct and Indirect Pathways , 2018, Neuron.
[5] M. Lynch,et al. Infiltrating macrophages contribute to age-related neuroinflammation in C57/BL6 mice , 2018, Mechanisms of Ageing and Development.
[6] A. Nebreda,et al. Neuronal p38α mediates synaptic and cognitive dysfunction in an Alzheimer’s mouse model by controlling β-amyloid production , 2017, Scientific Reports.
[7] D. Bulavin,et al. Aged dominant negative p38α MAPK mice are resistant to age-dependent decline in adult-neurogenesis and context discrimination fear conditioning , 2017, Behavioural Brain Research.
[8] J. Gonçalves,et al. Adult Neurogenesis in the Hippocampus: From Stem Cells to Behavior , 2016, Cell.
[9] K. Takamatsu,et al. Cell-permeable p38 MAP kinase promotes migration of adult neural stem/progenitor cells , 2016, Scientific Reports.
[10] Age-related changes in behavior in C57BL/6J mice from young adulthood to middle age , 2016, Molecular Brain.
[11] D. Sinclair,et al. When stem cells grow old: phenotypes and mechanisms of stem cell aging , 2016, Development.
[12] J. García-Verdugo,et al. The aged brain: genesis and fate of residual progenitor cells in the subventricular zone , 2015, Front. Cell. Neurosci..
[13] David W. Nauen,et al. Single-Cell RNA-Seq with Waterfall Reveals Molecular Cascades underlying Adult Neurogenesis. , 2015, Cell stem cell.
[14] R. Lovell-Badge,et al. Increased gene dosage of Ink4/Arf and p53 delays age-associated central nervous system functional decline , 2015, Aging cell.
[15] O. Arancio,et al. Targeting Human Central Nervous System Protein Kinases: An Isoform Selective p38αMAPK Inhibitor That Attenuates Disease Progression in Alzheimer’s Disease Mouse Models , 2015, ACS chemical neuroscience.
[16] M. Chopp,et al. Beneficial effects of gfap/vimentin reactive astrocytes for axonal remodeling and motor behavioral recovery in mice after stroke , 2014, Glia.
[17] L. V. Van Eldik,et al. Inhibition of Neuronal p38α, but not p38β MAPK, Provides Neuroprotection Against Three Different Neurotoxic Insults , 2014, Journal of Molecular Neuroscience.
[18] Qian-Quan Sun,et al. Distribution of CaMKIIα expression in the brain in vivo, studied by CaMKIIα-GFP mice , 2013, Brain Research.
[19] Gerald J. Sun,et al. Neuronal circuitry mechanism regulating adult quiescent neural stem cell fate decision , 2012, Nature.
[20] J. Kaye,et al. The aging systemic milieu negatively regulates neurogenesis and cognitive function , 2011, Nature.
[21] G. Fishell,et al. Division-coupled astrocytic differentiation and age-related depletion of neural stem cells in the adult hippocampus. , 2011, Cell stem cell.
[22] L. Pevny,et al. SOX2 expression levels distinguish between neural progenitor populations of the developing dorsal telencephalon. , 2011, Developmental biology.
[23] J. Kaye,et al. The ageing systemic milieu negatively regulates neurogenesis and cognitive function , 2011 .
[24] R. Lovell-Badge,et al. SOX9 induces and maintains neural stem cells , 2010, Nature Neuroscience.
[25] A. Cuadrado,et al. Mechanisms and functions of p38 MAPK signalling. , 2010, The Biochemical journal.
[26] L. V. Van Eldik,et al. The p38 MAP Kinase Family as Regulators of Proinflammatory Cytokine Production in Degenerative Diseases of the CNS. , 2010, Aging and disease.
[27] L. Martin,et al. Long-term culture of mouse cortical neurons as a model for neuronal development, aging, and death. , 2002, Journal of neurobiology.
[28] M. Mattson,et al. p38 MAP Kinase Mediates Nitric Oxide-induced Apoptosis of Neural Progenitor Cells* , 2001, The Journal of Biological Chemistry.
[29] S. Kassis,et al. Inhibition of p38 mitogen‐activated protein kinase provides neuroprotection in cerebral focal ischemia , 2001, Medicinal research reviews.
[30] M. Mattson,et al. p 38 MAP Kinase Mediates Nitric Oxide-induced Apoptosis of Neural Progenitor Cells * , 2001 .
[31] A. Reith,et al. Differential activation of MAPK/ERK and p38/SAPK in neurones and glia following focal cerebral ischaemia in the rat. , 2000, Brain research. Molecular brain research.
[32] S. Zeitlin,et al. CaMKIIα‐cre transgene expression and recombination patterns in the mouse brain , 2000 .
[33] S. Zeitlin,et al. CaMKIIalpha-Cre transgene expression and recombination patterns in the mouse brain. , 2000, Genesis.
[34] W. Markesbery,et al. p38 Kinase Is Activated in the Alzheimer's Disease Brain , 1999, Journal of neurochemistry.
[35] K. Heidenreich,et al. Apoptosis Induced by Withdrawal of Trophic Factors Is Mediated by p38 Mitogen-activated Protein Kinase* , 1997, The Journal of Biological Chemistry.
[36] M. Michaelson,et al. Interleukin-7 is trophic for embryonic neurons and is expressed in developing brain. , 1996, Developmental biology.
[37] Fred H. Gage,et al. Spatial learning and motor deficits in aged rats , 1984, Neurobiology of Aging.