Results for 'latrophilin'

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  1.  16
    Information Processing in Affective Disorders: Did an Ancient Peptide Regulating Intercellular Metabolism Become Co‐Opted for Noxious Stress Sensing?David A. Lovejoy & David W. Hogg - 2020 - Bioessays 42 (9):2000039.
    Affective disorders arise in stressful situations from aberrant sensory information integration that affects energetic nutrient (i.e., glucose) utilization to the cognitive centers of the brain. Because energy flow is mediated by molecular signals and receptors that evolved before the first complex brains, the phylogenetically oldest signaling systems are essential in the etiology of affective disorders. The corticotropin‐releasing factor (CRF) peptide subfamily is a phylogenetically old metazoan peptide family and is pivotal for regulating organismal energy response associated with stress. Highly conserved, (...)
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    BioEssays 9/2020.David A. Lovejoy & David W. Hogg - 2020 - Bioessays 42 (9):2070091.
    Graphical AbstractIn neurons, teneurins and latrophilins form a juxtacrine unit that originated in the earliest metazoans. The ‘teneurin C-terminal associated peptide’ (TCAP) regulates mitochondrial function to coordinate energy usage in surrounding cells. TCAP inhibits stress-related actions of corticotropin-releasing factor (CRF) in the central nervous system and may underlie the etiology of some affective disorders. More details can be found in article number 2000039 by David A. Lovejoy and David W. Hogg. Cover image by Mia Husic.
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    Trans‐synaptic mechanisms orchestrated by mammalian synaptic cell adhesion molecules.Jinhu Kim, Luis E. Gomez Wulschner, Won Chan Oh & Jaewon Ko - 2022 - Bioessays 44 (11):2200134.
    Bidirectional trans‐synaptic signaling is essential for the formation, maturation, and plasticity of synaptic connections. Synaptic cell adhesion molecules (CAMs) are prime drivers in shaping the identities of trans‐synaptic signaling pathways. A series of recent studies provide evidence that diverse presynaptic cell adhesion proteins dictate the regulation of specific synaptic properties in postsynaptic neurons. Focusing on mammalian synaptic CAMs, this article outlines several exemplary cases supporting this notion and highlights how these trans‐synaptic signaling pathways collectively contribute to the specificity and diversity (...)
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