Neuronal ER Stress Impedes Myeloid-Cell-Induced Vascular Regeneration through IRE1 alpha Degradation of Netrin-1
CELL METABOLISM
Authors: Binet, Francois; Mawambo, Gaelle; Sitaras, Nicholas; Tetreault, Nicolas; Lapalme, Eric; Favret, Sandra; Cerani, Agustin; Leboeuf, Dominique; Tremblay, Sophie; Rezende, Flavio; Juan, Aimee M.; Stahl, Andreas; Joyal, Jean-Sebastien; Milot, Eric; Kaufman, Randal J.; Guimond, Martin; Kennedy, Timothy E.; Sapieha, Przemyslaw
Abstract
In stroke and proliferative retinopathy, despite hypoxia driven angiogenesis, delayed revascularization of ischemic tissue aggravates the loss of neuronal function. What hinders vascular regrowth in the ischemic central nervous system remains largely unknown. Using the ischemic retina as a model of neurovascular interaction in the CNS, we provide evidence that the failure of reparative angiogenesis is temporally and spatially associated with endoplasmic reticulum (ER) stress. The canonical ER stress pathways of protein kinase RNA-like ER kinase (PERK) and inositol-requiring enzyme-1 alpha (IRE1 alpha) are activated within hypoxic/ischemic retinal ganglion neurons, initiating a cascade that results in angiostatic signals. Our findings demonstrate that the endoribonuclease IRE1 alpha degrades the classical guidance cue netrin-1. This neuron-derived cue triggers a critical reparative-angiogenic switch in neural macrophage/microglial cells. Degradation of netrin-1, by persistent neuronal ER stress, thereby hinders vascular regeneration. These data identify a neuronal-immune mechanism that directly regulates reparative angiogenesis.
Netrin 1 mediates protective effects exerted by insulin-like growth factor 1 on cochlear hair cells
NEUROPHARMACOLOGY
Authors: Yamahara, Kohei; Nakagawa, Takayuki; Ito, Juichi; Kinoshita, Kazuo; Omori, Koichi; Yamamoto, Norio
Abstract
Sensorineural hearing loss (SNHL) is mainly caused by the damage of cochlear hair cells (HCs). As HCs and supporting cells (SCs) do not proliferate in postnatal mammals, the loss of HCs and SCs is irreversible, emphasizing the importance of preserving their numbers to prevent SNHL. It is known that insulin-like growth factor 1 (IGF1) is instrumental in the treatment of SNHL. Our previous study indicates that IGF1 protects HCs against aminoglycoside by activating IGF1 receptor and its two major downstream pathways, PI3K/AKT and MEK/ERK, in SCs, which results in the upregulation of the expression of the Netrin1-encoding gene (Ntn1). However, the mechanisms underlying IGF1-induced protection of HCs via SC activation as well as the role of NTN1 in this process have not been elucidated. Here, we demonstrated that NTN1, similar to IGF1, promoted HC survival. NTN1 blocking antibody attenuated IGF1-induced HC protection from aminoglycoside, indicating that NTN1 is the effector molecule of IGF1 signaling during HC protection. In situ hybridization demonstrated that IGF1 potently induced Ntn1 expression in SCs. NTN1 receptors were abundantly expressed in the cochlea; among them, UNC5B mediated IGF1 protective effects on HCs, as NTN1 binding to UNC5B inhibited HC apoptosis. These results provide new insights into the mechanisms underlying IGF1 protection of cochlear HCs, suggesting a possibility of using NTN1 as a new treatment for SNHL. (C) 2017 Elsevier Ltd. All rights reserved.