4.7 Review

Connexin and pannexin signaling pathways, an architectural blueprint for CNS physiology and pathology?

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NMDA receptors regulate developmental gap junction uncoupling via CREB signaling

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Pannexin1 and Pannexin2 expression in the developing and mature rat brain

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Gap junctions modulate interkinetic nuclear movement in retinal progenitor cells

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Loss of connexin36 increases retinal cell vulnerability to secondary cell loss

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ATP mediates rapid microglial response to local brain injury in vivo

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P Gomes et al.

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Calcium-dependent open/closed conformations and interfacial energy maps of reconstituted hemichannels

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L Leybaert

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The mammalian pannexin family is homologous to the invertebrate innexin gap junction proteins

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Pannexin membrane channels are mechanosensitive conduits for ATP

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Glutamate released from glial cells synchronizes neuronal activity in the hippocampus

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Pannexins, a family of gap junction proteins expressed in brain

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Intercellular calcium signaling mediated by point-source burst release of ATP

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Ischemia-induced brain damage depends on specific gap-junctional coupling

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Intercellular calcium signaling in astrocytes via ATP release through connexin hemichannels

CE Stout et al.

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Metabolic inhibition induces opening of unapposed connexin 43 gap junction hemichannels and reduces gap junctional communication in cortical astrocytes in culture

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Activation of connexin-43 hemichannels can elevate [Ca2+]i and [Na+]i in rabbit ventricular myocytes during metabolic inhibition

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Microglia at brain stab wounds express connexin 43 and in vitro form functional gap junctions after treatment with interferon-γ and tumor necrosis factor-α

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Identification of cells expressing Cx43, Cx30, Cx26, Cx32 and Cx36 in gap junctions of rat brain and spinal cord

JE Rash et al.

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Activity-dependent neuronal control of gap-junctional communication in astrocytes

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Immunogold evidence that neuronal gap junctions in adult rat brain and spinal cord contain connexin-36 but not connexin-32 or connexin-43

JE Rash et al.

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