dominant optic atrophy
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2022 ◽  
Vol 100 (S267) ◽  
Author(s):  
Remi Rufus‐Toye ◽  
Neringa Jurkute ◽  
Shaun Leo ◽  
Omar Mahroo ◽  
Patrick Yu‐Wai‐Man

Author(s):  
Christoph Jüschke ◽  
Thomas Klopstock ◽  
Claudia B. Catarino ◽  
Marta Owczarek-Lipska ◽  
Bernd Wissinger ◽  
...  

2021 ◽  
Vol 429 ◽  
pp. 117725
Author(s):  
Giulia Amore ◽  
Martina Romagnoli ◽  
Michele Carbonelli ◽  
Piero Barboni ◽  
Leonardo Caporali ◽  
...  

2021 ◽  
Vol Publish Ahead of Print ◽  
Author(s):  
Jason A. Zehden ◽  
Subahari Raviskanthan ◽  
Peter W. Mortensen ◽  
Marc Ferré ◽  
Pascal Reynier ◽  
...  

2021 ◽  
Author(s):  
Nicole Weisschuh ◽  
Valerio Marino ◽  
Karin Schäferhoff ◽  
Paul Richter ◽  
Joohyun Park ◽  
...  

Abstract Exonic (i.e. coding) variants in genes associated with disease can exert pathogenic effects both at the protein and mRNA level, either by altering the amino acid sequence or by affecting pre-mRNA splicing. The latter is often neglected due to the lack of RNA analyses in genetic diagnostic testing. In this study we considered both pathomechanisms and performed a comprehensive analysis of nine exonic nucleotide changes in OPA1, which is the major gene underlying autosomal dominant optic atrophy (DOA) and is characterized by pronounced allelic heterogeneity. We focused on the GTPase-encoding domain of OPA1, which harbors most of the missense variants associated with DOA. Given that the consensus splice sites extend into the exons, we chose a split codon, namely codon 438, for our analyses. Variants at this codon are the second most common cause of disease in our large cohort of DOA patients harboring disease-causing variants in OPA1. In silico splice predictions, heterologous splice assays, analysis of patient’s RNA when available, and protein modeling revealed different molecular outcomes for variants at codon 438. The wildtype aspartate residue at amino acid position 438 is directly involved in the dimerization of OPA1 monomers. We found that six amino acid substitutions at codon 438 (i.e. all substitutions of the first and second nucleotide of the codon) destabilized dimerization while only substitutions of the first nucleotide of the codon caused exon skipping. Our study highlights the value of combining RNA analysis and protein modeling approaches to accurately assign patients to future precision therapies.


2021 ◽  
pp. 112067212110448
Author(s):  
Miriam Rahhal-Ortuño ◽  
Juan Aurelio Aviñó-Martínez ◽  
Alex Samir Fernández-Santodomingo ◽  
Marina Aguilar-González ◽  
Ioan Alexandru Placinta-Tat ◽  
...  

Peripapillary capillary network using optical coherence tomography angiography (OCT-A) was analysed in two siblings suffering from dominant optic atrophy linked to OPA-1 gene mutation. Peripapillary capillary network has been scarcely described in this type of optic atrophy.


Author(s):  
Marta Zaninello ◽  
Konstantinos Palikaras ◽  
Aggeliki Sotiriou ◽  
Nektarios Tavernarakis ◽  
Luca Scorrano

AbstractMitochondrial dysfunction and mitophagy are often hallmarks of neurodegenerative diseases such as autosomal dominant optic atrophy (ADOA) caused by mutations in the key mitochondrial dynamics protein optic atrophy 1 (Opa1). However, the second messengers linking mitochondrial dysfunction to initiation of mitophagy remain poorly characterized. Here, we show in mammalian and nematode neurons that Opa1 mutations trigger Ca2+-dependent mitophagy. Deletion or expression of mutated Opa1 in mouse retinal ganglion cells and Caenorhabditis elegans motor neurons lead to mitochondrial dysfunction, increased cytosolic Ca2+ levels, and decreased axonal mitochondrial density. Chelation of Ca2+ restores mitochondrial density in neuronal processes, neuronal function, and viability. Mechanistically, sustained Ca2+ levels activate calcineurin and AMPK, placed in the same genetic pathway regulating axonal mitochondrial density. Our data reveal that mitophagy in ADOA depends on Ca2+-calcineurin-AMPK signaling cascade.


Author(s):  
Paul E. Sladen ◽  
Pedro R.L. Perdigão ◽  
Grace Salsbury ◽  
Tatiana Novoselova ◽  
Jacqueline van der Spuy ◽  
...  

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