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10篇 您的检索式:作者名="Thomas Goedert"
    题名 作者 年代 出处 被引量
1A GSK3-binding peptide from FRAT1 selectively inhibits the GSK3-catalysed phosphory- lation of axin and beta-catenin显示文摘Thomas GM Frame S Goedert M 1999FEBS Lett1999,458,:1
2Racial differences in HLA class II associations with hepatitis C virus outcomes显示文摘 Thomas DL Goedert JJ 2001J Infect Dis2001,184,1:1
3Genetic variation in IL28Band spontaneous clearance of hepatitis C virus显示文摘Thomas DL Thio CL Martin MP Qi Y Ge D O’Huigin C Kidd J Kidd K Khakoo SI Alexander G Goedert JJ Kirk GD Donfield SM Rosen HR Tobler LH Busch MP McHutchison JG Goldstein DB Carrington M 2009Nature2009,461,7265:1
4A GSK3-binding peptide from FRAT1 selectively inhibits the GSK3-catalysed phosphorylation of axin and beta-catenin显示文摘Thomas GM Frame S Goedert M 1999FEBS Lett1999,458,2:1
5Increased risk of noncardia gastric cancer associated with proinflammatory cytokine gene polymorphisms显示文摘Emad M El-Omar Charles S Rabkin Marilie D Gammon Thomas L Vaughan Harvey A Risch Janet B Schoenberg Janet L Stanford Susan T Mayne James Goedert William J Blot Joseph F Fraumeni Wong-ho Chow 2003Gastroenterology2003,,5:1
6Racial differences in HLA class II associations with hepatitis C virus outcomes显示文摘 Thomas DL Goedert JJ 2001J Infect Dis2001,184,:1
7AGSK3 -binding peptide from FRATI selecfively inhibils the GSK3 -catalysed phosphorylation of axin and beta-catenin显示文摘Thomas G M Framess Goedert M 1999FEB S Left1999,458,2:1
8Racial differences in HLA class Ⅱ associations with hepatitis C virus outcomes显示文摘 Thomas DL Goedert JJ 2001J Infect Dis2001,184,1:1
9Increased risk of noncardia gastric cancer associated with proinflammatory cytokine gene polymorphisms显示文摘Emad M El-Omar Charles S Rabkin Marilie D Gammon Thomas L Vaughan Harvey A Risch Janet B Schoenberg Janet L Stanford Susan T Mayne James Goedert William J Blot Joseph F Fraumeni Wong-ho Chow 2003Gastroenterology2003,,5:1
10How do neurons age?A focused review on the aging of the microtubular cytoskeleton显示文摘Aging is the leading risk factor for Alzheimer’s disease and other neurodegenerative diseases. We now understand that a breakdown in the neuronal cytoskeleton, mainly underpinned by protein modifications leading to the destabilization of microtubules, is central to the pathogenesis of Alzheimer’s disease. This is accompanied by morphological defects across the somatodendritic compartment, axon, and synapse. However, knowledge of what occurs to the microtubule cytoskeleton and morphology of the neuron during physiological aging is comparatively poor. Several recent studies have suggested that there is an age-related increase in the phosphorylation of the key microtubule stabilizing protein tau, a modification, which is known to destabilize the cytoskeleton in Alzheimer’s disease. This indicates that the cytoskeleton and potentially other neuronal structures reliant on the cytoskeleton become functionally compromised during normal physiological aging. The current literature shows age-related reductions in synaptic spine density and shifts in synaptic spine conformation which might explain age-related synaptic functional deficits. However, knowledge of what occurs to the microtubular and actin cytoskeleton, with increasing age is extremely limited. When considering the somatodendritic compartment, a regression in dendrites and loss of dendritic length and volume is reported whilst a reduction in soma volume/size is often seen. However, research into cytoskeletal change is limited to a handful of studies demonstrating reductions in and mislocalizations of microtubule-associated proteins with just one study directly exploring the integrity of the microtubules. In the axon, an increase in axonal diameter and age-related appearance of swellings is reported but like the dendrites, just one study investigates the microtubules directly with others reporting loss or mislocalization of microtubule-associated proteins. Though these are the general trends reported, there are clear disparities between model organisms and brain regions that are worthy of further investigation. Additionally, longitudinal studies of neuronal/cytoskeletal aging should also investigate whether these age-related changes contribute not just to vulnerability to disease but also to the decline in nervous system function and behavioral output that all organisms experience. This will highlight the utility, if any, of cytoskeletal fortification for the promotion of healthy neuronal aging and potential protection against age-related neurodegenerative disease. This review seeks to summarize what is currently known about the physiological aging of the neuron and microtubular cytoskeleton in the hope of uncovering mechanisms underpinning age-related risk to disease.Brad Richardson Thomas Goedert Shmma Quraishe Katrin Deinhardt Amritpal Mudher 2024Neural Regeneration Research2024,19,9:0
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