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In vivo imaging neuronal recovery in neuroinflammation [Meeting Abstract]
Gan Wanbiao; Christopher, Parkhurst; Scott, Hayes; Gan Wen-Biao
ISI:000283694400413
ISSN: 0165-5728
CID: 120558
Microglia dynamics and function in the CNS
Parkhurst, Christopher N; Gan, Wen-Biao
Microglial cells constitute the resident immune cell population of the mammalian central nervous system. One striking feature of these cells is their highly dynamic nature under both normal and pathological brain conditions. The highly branched processes of resting microglia display a constitutive mobility and undergo rapid directional movement towards sites of acute tissue disruption. Microglia can be converted by a large number of different stimuli to a chronically activated state by signaling through both purinergic and Toll-like receptor systems, among others. Recent work has uncovered some of the mechanisms underlying microglia dynamics and shed new light into the functional significance of this enigmatic member of the glial cell family
PMCID:3708473
PMID: 20705452
ISSN: 1873-6882
CID: 138196
Experience-dependent dendritic spine dynamics in the mouse cortex [Meeting Abstract]
Gan, WB; Yang, G; Pan, F
ISI:000272421100043
ISSN: 0168-0102
CID: 106960
Ankyrin Repeat-rich Membrane Spanning/Kidins220 protein regulates dendritic branching and spine stability in vivo
Wu, Synphen H; Arevalo, Juan Carlos; Sarti, Federica; Tessarollo, Lino; Gan, Wen-Biao; Chao, Moses V
The development of nervous system connectivity depends upon the arborization of dendritic fields and the stabilization of dendritic spine synapses. It is well established that neuronal activity and the neurotrophin BDNF modulate these correlated processes. However, the downstream mechanisms by which these extrinsic signals regulate dendritic development and spine stabilization are less well known. Here we report that a substrate of BDNF signaling, the Ankyrin Repeat-rich Membrane Spanning (ARMS) protein or Kidins220, plays a critical role in the branching of cortical and hippocampal dendrites and in the turnover of cortical spines. In the barrel somatosensory cortex and the dentate gyrus, regions where ARMS/Kidins220 is highly expressed, no difference in the complexity of dendritic arbors was observed in 1-month-old adolescent ARMS/Kidins220(+/-) mice compared to wild-type littermates. However, at 3 months of age, young adult ARMS/Kidins220(+/-) mice exhibited decreased dendritic complexity. This suggests that ARMS/Kidins220 does not play a significant role in the initial formation of dendrites but, rather, is involved in the refinement or stabilization of the arbors later in development. In addition, at 1 month of age, the rate of spine elimination was higher in ARMS/Kidins220(+/-) mice than in wild-type mice, suggesting that ARMS/Kidins220(+/-) levels regulate spine stability. Taken together, these data suggest that ARMS/Kidins220 is important for the growth of dendritic arbors and spine stability during an activity- and BDNF-dependent period of development. (c) 2009 Wiley Periodicals, Inc. Develop Neurobiol 2009
PMCID:4098644
PMID: 19449316
ISSN: 1932-8451
CID: 100607
Dendritic spine dynamics
Bhatt, D Harshad; Zhang, Shengxiang; Gan, Wen-Biao
Dendritic spines are the postsynaptic components of most excitatory synapses in the mammalian brain. Spines accumulate rapidly during early postnatal development and undergo a substantial loss as animals mature into adulthood. In past decades, studies have revealed that the number and size of dendritic spines are regulated by a variety of gene products and environmental factors, underscoring the dynamic nature of spines and their importance to brain plasticity. Recently, in vivo time-lapse imaging of dendritic spines in the cerebral cortex suggests that, although spines are highly plastic during development, they are remarkably stable in adulthood, and most of them last throughout life. Therefore, dendritic spines may provide a structural basis for lifelong information storage, in addition to their well-established role in brain plasticity. Because dendritic spines are the key elements for information acquisition and retention, understanding how spines are formed and maintained, particularly in the intact brain, will likely provide fundamental insights into how the brain possesses the extraordinary capacity to learn and to remember
PMID: 19575680
ISSN: 1545-1585
CID: 100626
Stably maintained dendritic spines are associated with lifelong memories
Yang, Guang; Pan, Feng; Gan, Wen-Biao
Changes in synaptic connections are considered essential for learning and memory formation. However, it is unknown how neural circuits undergo continuous synaptic changes during learning while maintaining lifelong memories. Here we show, by following postsynaptic dendritic spines over time in the mouse cortex, that learning and novel sensory experience lead to spine formation and elimination by a protracted process. The extent of spine remodelling correlates with behavioural improvement after learning, suggesting a crucial role of synaptic structural plasticity in memory formation. Importantly, a small fraction of new spines induced by novel experience, together with most spines formed early during development and surviving experience-dependent elimination, are preserved and provide a structural basis for memory retention throughout the entire life of an animal. These studies indicate that learning and daily sensory experience leave minute but permanent marks on cortical connections and suggest that lifelong memories are stored in largely stably connected synaptic networks
PMCID:4724802
PMID: 19946265
ISSN: 1476-4687
CID: 105966
Ballistic delivery of dyes for structural and functional studies of the nervous system
Gan, Wen-Biao; Grutzendler, Jaime; Wong, Rachel O; Lichtman, Jeff W
This protocol describes detailed procedures for rapid labeling of cells in a variety of preparations by means of particle-mediated ballistic (i.e., Gene Gun) delivery of fluorescent dyes. The method has been used for rapid labeling of cells with either lipid- or water-soluble dyes, in a variety of preparations at different ages. Tissue preparations include fixed mouse brain slices (described here), cell cultures, and tissue explants. This ballistic labeling technique is useful for studying neuronal connectivity, function, and pathology in the nervous system of living as well as fixed specimens
PMCID:2916724
PMID: 20147144
ISSN: 1940-3402
CID: 112400
Long-term two-photon transcranial imaging of synaptic structures in the living brain
Grutzendler, Jaime; Gan, Wen-Biao
INTRODUCTIONThis is a detailed protocol for long-term transcranial imaging of neuronal structures in the brains of living mice, using two-photon microscopy. It has been used to image individual dendritic spines and axonal varicosities in various mouse brain areas, such as visual, somatosensory, motor, and frontal cortices, over intervals of up to 4 months. This long-term transcranial imaging approach allows detailed structural and functional changes of synapses to be monitored during learning and memory processes, as well as in neurological disease models. It also provides a sensitive tool to detect the effects of various pharmacological and therapeutic interventions on cells in the living brain.
PMID: 21357119
ISSN: n/a
CID: 937742
Various dendritic abnormalities are associated with fibrillar amyloid deposits in Alzheimer's disease
Grutzendler, Jaime; Helmin, Kathryn; Tsai, Julia; Gan, Wen-Biao
Dystrophic neurites are associated with fibrillar amyloid deposition in Alzheimer's disease (AD), but the frequency and types of changes in synaptic structures near amyloid deposits have not been well characterized. Using high-resolution confocal microscopy to image lipophilic dye-labeled dendrites and thioflavin-S-labeled amyloid plaques, we systematically analyzed the structural changes of dendrites associated with amyloid deposition in both a transgenic mouse model of AD (PSAPP) and in human postmortem brain. We found that in PSAPP mice, dendritic branches passing through or within 40 mum from amyloid deposits displayed various dendritic abnormalities such as loss of dendritic spines, shaft atrophy, bending, abrupt branch endings, varicosity formation, and sprouting. Similar structural alterations of dendrites were seen in postmortem human AD tissue, with spine loss as the most common abnormality in both PSAPP mice and human AD brains. These results demonstrate that fibrillar amyloid deposits and their surrounding microenvironment are toxic to dendrites and likely contribute to significant disruption of neuronal circuits in AD
PMID: 17413007
ISSN: 0077-8923
CID: 71869
Choice of cranial window type for in vivo imaging affects dendritic spine turnover in the cortex
Xu, Hua-Tai; Pan, Feng; Yang, Guang; Gan, Wen-Biao
Determining the degree of synapse formation and elimination is essential for understanding the structural basis of brain plasticity and pathology. We show that in vivo imaging of dendritic spine dynamics through an open-skull glass window, but not a thinned-skull window, is associated with high spine turnover and substantial glial activation during the first month after surgery. These findings help to explain existing discrepancies in the degree of dendritic spine plasticity observed in the mature cortex.
PMID: 17417634
ISSN: 1097-6256
CID: 73017