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1.
Neurology ; 96(20): 944-954, 2021 05 18.
Artículo en Inglés | MEDLINE | ID: mdl-33674360

RESUMEN

Drug development for Alzheimer disease and other neurodegenerative dementias, including frontotemporal dementia, has experienced a long history of phase 2 and phase 3 clinical trials that failed to show efficacy of investigational drugs. Despite differences in clinical and behavioral characteristics, these disorders have shared pathologies and face common challenges in designing early-phase trials that are predictive of late-stage success. Here, we discuss exploratory clinical trials in neurodegenerative dementias. These are generally phase 1b or phase 2a trials that are designed to assess pharmacologic effects and rely on biomarker outcomes, with shorter treatment durations and fewer patients than traditional phase 2 studies. Exploratory trials can establish go/no-go decision points, support proof of concept and dose selection, and terminate drugs that fail to show target engagement with suitable exposure and acceptable safety profiles. Early failure saves valuable resources including opportunity costs. This is especially important for programs in academia and small biotechnology companies but may be applied to high-risk projects in large pharmaceutical companies to achieve proof of concept more rapidly at lower costs than traditional approaches. Exploratory studies in a staged clinical development program may provide promising data to warrant the substantial resources needed to advance compounds through late-stage development. To optimize the design and application of exploratory trials, the Alzheimer's Drug Discovery Foundation and the Association for Frontotemporal Degeneration convened an advisory panel to provide recommendations on outcome measures and statistical considerations for these types of studies and study designs that can improve efficiency in clinical development.


Asunto(s)
Enfermedad de Alzheimer/tratamiento farmacológico , Ensayos Clínicos como Asunto/métodos , Desarrollo de Medicamentos/métodos , Demencia Frontotemporal/tratamiento farmacológico , Ensayos Clínicos Fase I como Asunto , Ensayos Clínicos Fase II como Asunto , Demencia/tratamiento farmacológico , Humanos , Enfermedades Neurodegenerativas/tratamiento farmacológico , Evaluación de Resultado en la Atención de Salud , Prueba de Estudio Conceptual , Proyectos de Investigación , Insuficiencia del Tratamiento , Resultado del Tratamiento
2.
Neurology ; 92(2): 84-93, 2019 01 08.
Artículo en Inglés | MEDLINE | ID: mdl-30530798

RESUMEN

Aging is the leading risk factor for most chronic illnesses of old age, including Alzheimer disease (AD), a progressive neurodegenerative disease with currently no therapies that prevent, slow, or halt disease progression. Like other chronic diseases of old age, the progressive pathology of AD begins decades before the onset of symptoms. Many decades of research in biological gerontology have revealed common processes that are relevant to understanding why the aging brain is vulnerable to AD. In this review, we frame the development of novel therapeutics for AD in the context of biological gerontology. The many therapies currently in development based on biological gerontology principles provide promise for the development of a new generation of therapeutics to prevent and treat AD.


Asunto(s)
Envejecimiento , Enfermedad de Alzheimer/terapia , Investigación Biomédica Traslacional/métodos , Envejecimiento/patología , Enfermedad de Alzheimer/patología , Animales , Progresión de la Enfermedad , Humanos
3.
PLoS Biol ; 16(3): e2002988, 2018 03.
Artículo en Inglés | MEDLINE | ID: mdl-29534062

RESUMEN

How asymmetries in motor behavior become established normally or atypically in mammals remains unclear. An established model for motor asymmetry that is conserved across mammals can be obtained by experimentally inducing asymmetric striatal dopamine activity. However, the factors that can cause motor asymmetries in the absence of experimental manipulations to the brain remain unknown. Here, we show that mice with inner ear dysfunction display a robust left or right rotational preference, and this motor preference reflects an atypical asymmetry in cortico-striatal neurotransmission. By unilaterally targeting striatal activity with an antagonist of extracellular signal-regulated kinase (ERK), a downstream integrator of striatal neurotransmitter signaling, we can reverse or exaggerate rotational preference in these mice. By surgically biasing vestibular failure to one ear, we can dictate the direction of motor preference, illustrating the influence of uneven vestibular failure in establishing the outward asymmetries in motor preference. The inner ear-induced striatal asymmetries identified here intersect with non-ear-induced asymmetries previously linked to lateralized motor behavior across species and suggest that aspects of left-right brain function in mammals can be ontogenetically influenced by inner ear input. Consistent with inner ear input contributing to motor asymmetry, we also show that, in humans with normal ear function, the motor-dominant hemisphere, measured as handedness, is ipsilateral to the ear with weaker vestibular input.


Asunto(s)
Lateralidad Funcional , Enfermedades del Laberinto/complicaciones , Actividad Motora/fisiología , Animales , Conducta Animal , Humanos , Ratones , Transmisión Sináptica/fisiología , Vestíbulo del Laberinto/fisiología , Vestíbulo del Laberinto/fisiopatología
4.
J Neurosci ; 37(20): 5144-5154, 2017 05 17.
Artículo en Inglés | MEDLINE | ID: mdl-28438970

RESUMEN

Attention-deficit/hyperactivity disorder (ADHD) and anxiety-related disorders occur at rates 2-3 times higher in deaf compared with hearing children. Potential explanations for these elevated rates and the heterogeneity of behavioral disorders associated with deafness have usually focused on socio-environmental rather than biological effects. Children with the 22q11.2 deletion or duplication syndromes often display hearing loss and behavioral disorders, including ADHD and anxiety-related disorders. Here, we show that mouse mutants with either a gain or loss of function of the T-Box transcription factor gene, Tbx1, which lies within the 22q11.2 region and is responsible for most of the syndromic defects, exhibit inner ear defects and hyperactivity. Furthermore, we show that (1) inner ear dysfunction due to the tissue-specific loss of Tbx1 or Slc12a2, which encodes a sodium-potassium-chloride cotransporter and is also necessary for inner ear function, causes hyperactivity; (2) vestibular rather than auditory failure causes hyperactivity; and (3) the severity rather than the age of onset of vestibular dysfunction differentiates whether hyperactivity or anxiety co-occurs with inner ear dysfunction. Together, these findings highlight a biological link between inner ear dysfunction and behavioral disorders and how sensory abnormalities can contribute to the etiology of disorders traditionally considered of cerebral origin.SIGNIFICANCE STATEMENT This study examines the biological rather than socio-environmental reasons why hyperactivity and anxiety disorders occur at higher rates in deaf individuals. Using conditional genetic approaches in mice, the authors show that (1) inner ear dysfunction due to either Tbx1 or Slc12a2 mutations cause hyperactivity; (2) it is vestibular dysfunction, which frequently co-occurs with deafness but often remains undiagnosed, rather than auditory dysfunction that causes hyperactivity and anxiety-related symptoms; and (3) the severity of vestibular dysfunction can predict whether hyperactivity or anxiety coexist with inner ear dysfunction. These findings suggest a need to evaluate vestibular function in hearing impaired individuals, especially those who exhibit hyperactive and anxiety-related symptoms.


Asunto(s)
Ansiedad/complicaciones , Ansiedad/fisiopatología , Trastorno por Déficit de Atención con Hiperactividad/fisiopatología , Conducta Animal , Sordera/fisiopatología , Enfermedades Vestibulares/fisiopatología , Animales , Ansiedad/patología , Trastorno por Déficit de Atención con Hiperactividad/complicaciones , Trastorno por Déficit de Atención con Hiperactividad/patología , Sordera/complicaciones , Sordera/patología , Femenino , Masculino , Ratones , Ratones Noqueados , Ratones Transgénicos , Índice de Severidad de la Enfermedad , Enfermedades Vestibulares/complicaciones , Enfermedades Vestibulares/patología
5.
J Neurosci ; 33(15): 6278-84, 2013 Apr 10.
Artículo en Inglés | MEDLINE | ID: mdl-23575827

RESUMEN

Adult neurogenesis is actively studied in part because of the potential to manipulate endogenous neural stem and progenitor cells for tissue repair. Although constitutive generation of neurons in the adult rodent olfactory bulb and hippocampal dentate gyrus is widely accepted and stroke-induced generation of striatal inhibitory neurons consistently observed, evidence supporting the generation of neurons in the neocortex after neuronal loss remains slim. Nevertheless, a few studies suggested that targeted apoptosis of neocortical glutamatergic neurons could trigger the generation of new ones in the adult brain. In light of such studies, we tested whether apoptosis of glutamatergic cortical neurons using two novel transgenic approaches in mice, an inducible Caspase-8 protein and an inducible diphtheria toxin gene, results in new neurons. After a thorough analysis, no new neurons were detected in the neocortex. Interestingly, an increase in the expression of the neuroblast marker DCX was observed in both models, in some cases in cells with morphologies previously associated with poststroke neuroblasts, but DCX(+) cells coexpressed the oligodendrocyte precursor marker Olig2, suggesting caution when using DCX as a marker for neuroblasts after injury. Given that the adult neocortex lacks an innate potential to regenerate lost glutamatergic neurons, future strategies should concentrate on manipulating the differentiation potential of endogenous or exogenous precursor cells.


Asunto(s)
Apoptosis/fisiología , Glutamatos/fisiología , Neocórtex/fisiología , Neurogénesis/fisiología , Neuronas/fisiología , Animales , Factores de Transcripción con Motivo Hélice-Asa-Hélice Básico/biosíntesis , Caspasa 8/genética , Toxina Diftérica/genética , Proteínas de Dominio Doblecortina , Proteína Doblecortina , Ratones , Ratones Transgénicos , Microglía/metabolismo , Proteínas Asociadas a Microtúbulos/biosíntesis , Degeneración Nerviosa/genética , Degeneración Nerviosa/metabolismo , Proteínas del Tejido Nervioso/biosíntesis , Neuropéptidos/biosíntesis , Factor de Transcripción 2 de los Oligodendrocitos , Regulación hacia Arriba
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