Abstract
Amyloid precursor protein knockout mice (APP-KO) have impaired differentiation of amacrine and horizontal cells. APP is part of a gene family and its paralogue amyloid precursor-like protein 2 (APLP2) has both shared as well as distinct expression patterns to APP, including in the retina. Given the impact of APP in the retina we investigated how APLP2 expression affected the retina using APLP2 knockout mice (APLP2-KO). Using histology, morphometric analysis with noninvasive imaging technique and electron microscopy, we showed that APLP2-KO retina displayed abnormal formation of the outer synaptic layer, accompanied with greatly impaired photoreceptor ribbon synapses in adults. Moreover, APLP2-KO displayed a significant decease in ON-bipolar, rod bipolar and type 2 OFF-cone bipolar cells (36, 21 and 63 %, respectively). Reduction of the number of bipolar cells was accompanied with disrupted dendrites, reduced expression of metabotropic glutamate receptor 6 at the dendritic tips and alteration of axon terminals in the OFF laminae of the inner plexiform layer. In contrast, the APP-KO photoreceptor ribbon synapses and bipolar cells were intact. The APLP2-KO retina displayed numerous phenotypic similarities with the congenital stationary night blindness, a non-progressive retinal degeneration disease characterized by the loss of night vision. The pathological phenotypes in the APLP2-KO mouse correlated to altered transcription of genes involved in pre- and postsynatic structure/function, including CACNA1F, GRM6, TRMP1 and Gα0, and a normal scotopic a-wave electroretinogram amplitude, markedly reduced scotopic electroretinogram b-wave and modestly reduced photopic cone response. This confirmed the impaired function of the photoreceptor ribbon synapses and retinal bipolar cells, as is also observed in congenital stationary night blindness. Since congenital stationary night blindness present at birth, we extended our analysis to retinal differentiation and showed impaired differentiation of different bipolar cell subtypes and an altered temporal sequence of development from OFF to ON laminae in the inner plexiform layer. This was associated with the altered expression patterns of bipolar cell generation and differentiation factors, including MATH3, CHX10, VSX1 and OTX2. These findings demonstrate that APLP2 couples retina development and synaptic genes and present the first evidence that APLP2 expression may be linked to synaptic disease.
Keywords
Amyloid precursor protein
Amyloid precursor-like protein 2
Congenital stationary night blindness
Differentiation
Synapses
Synaptopathy
Transcription
MeSH 主题词
Aging/pathology
Amacrine Cells/metabolism
Amyloid beta-Protein Precursor/chemistry,deficiency,genetics,metabolism
Animals
Animals, Newborn
Cell Differentiation
Complement System Proteins/metabolism
Dendrites/metabolism
Eye Diseases, Hereditary/genetics,pathology,physiopathology
Gene Deletion
Genetic Diseases, X-Linked/genetics,pathology,physiopathology
Mice, Inbred C57BL
Mice, Knockout
Myopia/genetics,pathology,physiopathology
Neurogenesis
Night Blindness/genetics,pathology,physiopathology
Photoreceptor Cells, Vertebrate/metabolism,pathology,ultrastructure
Presynaptic Terminals/metabolism,ultrastructure
RNA, Messenger/genetics,metabolism
Retinal Bipolar Cells/metabolism,pathology,ultrastructure
Synaptic Transmission
Transcription Factors/metabolism
Transcription, Genetic
化学物质
Amyloid beta-Protein Precursor
Aplp2 protein, mouse
RNA, Messenger
Transcription Factors
Complement System Proteins
作者与单位
共 16 位作者,点击展开单位 / ORCID
Dinet Virginie
Centre de Recherche des Cordeliers, Université Paris Descartes, Université Pierre et Marie Curie, Paris, France.
Ciccotosto Giuseppe D
Department of Pathology and Bio21 Molecular Science and Biotechnology Institute, The University of Melbourne, Melbourne, Australia.
Delaunay Kimberley
Centre de Recherche des Cordeliers, Université Paris Descartes, Université Pierre et Marie Curie, Paris, France.
Borras Céline
Centre de Recherche des Cordeliers, Université Paris Descartes, Université Pierre et Marie Curie, Paris, France.
Ranchon-Cole Isabelle
Laboratoire de Biophysique Sensorielle, Université Clermont 1, Clermont-Ferrand, France.
Kostic Corinne
Unit of Gene Therapy & Stem Cell Biology, University of Lausanne, Jules-Gonin Eye Hospital, Lausanne, Switzerland.
Savoldelli Michèle
Centre de Recherche des Cordeliers, Université Paris Descartes, Université Pierre et Marie Curie, Paris, France.
El Sanharawi Mohamed
Centre de Recherche des Cordeliers, Université Paris Descartes, Université Pierre et Marie Curie, Paris, France.
Jonet Laurent
Centre de Recherche des Cordeliers, Université Paris Descartes, Université Pierre et Marie Curie, Paris, France.
Pirou Caroline
Centre de Recherche des Cordeliers, Université Paris Descartes, Université Pierre et Marie Curie, Paris, France.
An Na
Centre de Recherche des Cordeliers, Université Paris Descartes, Université Pierre et Marie Curie, Paris, France.
Abitbol Marc
Centre de Recherche des Cordeliers, Université Paris Descartes, Université Pierre et Marie Curie, Paris, France.
Arsenijevic Yvan
Unit of Gene Therapy & Stem Cell Biology, University of Lausanne, Jules-Gonin Eye Hospital, Lausanne, Switzerland.
Behar-Cohen Francine
Centre de Recherche des Cordeliers, Université Paris Descartes, Université Pierre et Marie Curie, Paris, France.
Cappai Roberto
Department of Pathology and Bio21 Molecular Science and Biotechnology Institute, The University of Melbourne, Melbourne, Australia.
Mascarelli Frédéric
Centre de Recherche des Cordeliers, Université Paris Descartes, Université Pierre et Marie Curie, Paris, France. frederic.mascarelli@inserm.fr.