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Richard, E. M.

Publications and source records attributed to Richard, E. M..

3 recordsLinked to original sources

WFS1E864K in humans and mice causes Wolfram-like syndrome optic atrophy via early axonal mitochondrial dysfunction

Wolfram-like syndrome leads to retinal ganglion cell degeneration and vision loss. Wolfram-like syndrome is primarily caused by variants in the WFS1 gene, which encodes an endoplasmic reticulum resident transmembrane protein, Wolframin. To date, the disease mechanism remains unclear, and no therapies are available. Here, we generated a mouse model carrying the pathogenic WFS1E864K allele that recapitulated key features of human Wolfram-like syndrome, including bilateral optic atrophy, retinal nerve fiber thinning and lamination of the outer plexiform layer. We demonstrated, using the Wfs1E864K mouse model, that alteration of the protein leads to impairments of retinal ganglion cell function, associated with a thinning of the inner retina layer and nerve fibers. These alterations are associated with myelin disorganization, axonal death, mitochondrial alterations in the axons, and impairment of endoplasmic reticulum-mitochondria communication in the soma. Our data showed that primary deficits are localized in the optic nerve before progressing towards the retinal ganglion cell soma. RNAseq analysis identified several altered signaling pathways such as in lipid metabolism, glia activation response, metabolic stress, organelle transport and quality control. These findings highlighted the critical role of Wolframin in optic nerve mitochondrial physiology, providing us with a pertinent model to develop novel innovative therapeutic strategies.

neuroscience↗

The Wolfram-like variant WFS1E864K destabilizes MAM and compromises autophagy and mitophagy in human and mice.

Dominant variants in WFS1, a gene coding for the mitochondria-associated endoplasmic reticulum (ER) membrane (MAM) resident protein Wolframin, have been associated with Wolfram-like syndrome (WLS). In vitro and in vivo, WFS1 loss results in reduced ER to mitochondria calcium (Ca2+) transfer, mitochondrial dysfunction, and enhanced autophagy and mitophagy. However, in WLS pathological context, whether the mutant protein triggers the same cellular processes is unknown. Here, we show that, in human fibroblasts and murine neuronal cultures, WLS protein WFS1E864K leads to decreases in mitochondria bioenergetics and Ca2+ uptake, deregulation of the mitochondrial quality system mechanisms, and alteration of the autophagic flux. Moreover, in the Wfs1E864K mouse, these alterations are concomitant with a decrease of MAM number. These findings reveal pathophysiological similarities between WS and WLS, highlighting the importance of WFS1 for MAMs integrity and functionality. It may open new treatment perspectives, until now non-existent, for patients with WLS.

neuroscience↗

PAH DEFICIENT PATHOLOGY IN HUMANIZED c.1066-11G>A PHENYLKETONURIA MICE

We have generated using CRISPR/Cas9 technology a partially humanized mouse model of the neurometabolic disease phenylketonuria (PKU), carrying the highly prevalent PAH variant c.1066-11G>A. This variant creates an alternative 3 splice site, leading to the inclusion of 9 nucleotides coding for 3 extra amino acids between Q355 and Y356 of the protein. Homozygous Pah c.1066-11A mice, with a partially humanized intron 10 sequence with the variant, accurately recapitulate the splicing defect and present almost undetectable hepatic PAH activity. They exhibit fur hypopigmentation, lower brain and body weight and reduced survival. Blood and brain phenylalanine levels are elevated, along with decreased tyrosine, tryptophan and monoamine neurotransmitter levels. They present behavioral deficits, mainly hypoactivity and diminished social interaction, locomotor deficiencies and an abnormal hind-limb clasping reflex. Changes in the morphology of glial cells, increased GFAP and Iba1 staining signals and decreased myelinization are observed. Hepatic tissue exhibits nearly absent PAH protein, reduced levels of chaperones DNAJC12 and HSP70 and increased autophagy markers LAMP1 and LC3BII, suggesting possible coaggregation of mutant PAH with chaperones and subsequent autophagy processing. This PKU mouse model with a prevalent human variant represents a useful tool for pathophysiology research and for novel therapies development.

pathology↗