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1.
Acta Neuropathol ; 130(3): 349-62, 2015 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-26150341

RESUMO

Filamentous tau inclusions are hallmarks of Alzheimer's disease (AD) and other neurodegenerative tauopathies. An increasing number of studies implicate the cell-to-cell propagation of tau pathology in the progression of tauopathies. We recently showed (Iba et al., J Neurosci 33:1024-1037, 2013) that inoculation of preformed synthetic tau fibrils (tau PFFs) into the hippocampus of young transgenic (Tg) mice (PS19) overexpressing human P301S mutant tau induced robust tau pathology in anatomically connected brain regions including the locus coeruleus (LC). Since Braak and colleagues hypothesized that the LC is the first brain structure to develop tau lesions and since LC has widespread connections throughout the CNS, LC neurons could be the critical initiators of the stereotypical spreading of tau pathology through connectome-dependent transmission of pathological tau in AD. Here, we report that injections of tau PFFs into the LC of PS19 mice induced propagation of tau pathology to major afferents and efferents of the LC. Notably, tau pathology propagated along LC efferent projections was localized not only to axon terminals but also to neuronal perikarya, suggesting transneuronal transfer of templated tau pathology to neurons receiving LC projections. Further, brainstem neurons giving rise to major LC afferents also developed perikaryal tau pathology. Surprisingly, while tangle-bearing neurons degenerated in the LC ipsilateral to the injection site starting 6 months post-injection, no neuron loss was seen in the contralateral LC wherein tangle-bearing neurons gradually cleared tau pathology by 6-12 months post-injection. However, the spreading pattern of tau pathology observed in our LC-injected mice is different from that in AD brains since hippocampus and entorhinal cortex, which are affected in early stages of AD, were largely spared of tau inclusions in our model. Thus, while our study tested critical aspects of the Braak hypothesis of tau pathology spread, this novel mouse model provides unique opportunities to elucidate mechanisms underlying the selective vulnerability of neurons to acquire tau pathology and succumb to or resist tau-mediated neurodegeneration.


Assuntos
Locus Cerúleo/patologia , Neurônios/patologia , Tauopatias/patologia , Vias Aferentes/metabolismo , Vias Aferentes/patologia , Animais , Modelos Animais de Doenças , Progressão da Doença , Vias Eferentes/metabolismo , Vias Eferentes/patologia , Escherichia coli , Feminino , Humanos , Hipotálamo/metabolismo , Hipotálamo/patologia , Imuno-Histoquímica , Locus Cerúleo/metabolismo , Masculino , Camundongos Transgênicos , Mutação , Tauopatias/metabolismo , Tálamo/metabolismo , Tálamo/patologia , Tirosina 3-Mono-Oxigenase/metabolismo , Proteínas tau/genética , Proteínas tau/metabolismo
2.
Neuroimage ; 101: 185-92, 2014 Nov 01.
Artigo em Inglês | MEDLINE | ID: mdl-25003815

RESUMO

Glutamate is the primary excitatory neurotransmitter in the brain, and is implicated in neurodegenerative diseases such as Alzheimer's disease (AD) and several other tauopathies. The current method for measuring glutamate in vivo is proton magnetic resonance spectroscopy ((1)H MRS), although it has poor spatial resolution and weak sensitivity to glutamate changes. In this study, we sought to measure the effect of tau pathology on glutamate levels throughout the brain of a mouse model of tauopathy using a novel magnetic resonance imaging (MRI) technique. We employed glutamate chemical exchange saturation transfer (GluCEST) imaging, which has been previously validated as a complimentary method for measuring glutamate levels with several important advantages over conventional (1)H MRS. We hypothesized that the regional changes in glutamate levels would correlate with histological measurements of pathology including pathological tau, synapse and neuron loss. Imaging and spectroscopy were carried out on tau transgenic mice with the P301S mutation (PS19, n=9) and their wild-type littermates (WT, n=8), followed by immunohistochemistry of their brain tissue. GluCEST imaging resolution allowed for sub-hippocampal analysis of glutamate. Glutamate was significantly decreased by 29% in the CA sub-region of the PS19 hippocampus, and by 15% in the thalamus, where synapse loss was also measured. Glutamate levels and synapse density remained high in the dentate gyrus sub-region of the hippocampus, where neurogenesis is known to occur. The further development of GluCEST imaging for preclinical applications will be valuable, as therapies are being tested in mouse models of tauopathy.


Assuntos
Ácido Glutâmico/metabolismo , Hipocampo/metabolismo , Imageamento por Ressonância Magnética/métodos , Sinapses/patologia , Tauopatias/metabolismo , Tálamo/metabolismo , Animais , Giro Denteado/metabolismo , Giro Denteado/patologia , Modelos Animais de Doenças , Hipocampo/patologia , Camundongos , Camundongos Transgênicos , Neurogênese/fisiologia , Espectroscopia de Prótons por Ressonância Magnética , Tauopatias/patologia , Tálamo/patologia
3.
J Neurosci ; 31(29): 10648-65, 2011 Jul 20.
Artigo em Inglês | MEDLINE | ID: mdl-21775608

RESUMO

The temporal structuring of multiple events is essential for the purposeful regulation of behavior. We investigated the role of the lateral prefrontal cortex (LPFC) in transforming external signals of multiple sensory modalities into information suitable for monitoring successive events across behavioral phases until an intended action is prompted and then initiated. We trained monkeys to receive a succession of 1 s visual, auditory, or tactile sensory signals separated by variable intervals and to then release a key as soon as the fourth signal appeared. Thus, the animals had to monitor and update information about the progress of the task upon receiving each signal preceding the key release in response to the fourth signal. We found that the initial, short-latency responses of LPFC neurons reflected primarily the sensory modality, rather than the phase or progress of the task. However, a task phase-selective response developed within 500 ms of signal reception, and information about the task phase was maintained throughout the presentation of successive cues. The task phase-selective activity was updated with the appearance of each cue until the planned action was initiated. The phase-selective activity of individual neurons reflected not merely a particular phase of the task but also multiple successive phases. Furthermore, we found combined representations of task phase and sensory modality in the activity of individual LPFC neurons. These properties suggest how information representing multiple phases of behavioral events develops in the LPFC to provide a basis for the temporal regulation of behavior.


Assuntos
Mapeamento Encefálico , Rememoração Mental/fisiologia , Córtex Pré-Frontal/fisiologia , Tempo de Reação/fisiologia , Estimulação Acústica , Potenciais de Ação/fisiologia , Análise de Variância , Animais , Comportamento Animal , Sinais (Psicologia) , Feminino , Macaca fascicularis , Masculino , Neurônios/fisiologia , Estimulação Luminosa , Córtex Pré-Frontal/citologia , Desempenho Psicomotor/fisiologia , Fatores de Tempo , Tato
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