PubMed Health⌕ Search

Biomedical subjects

Patrizia Amati-Bonneau

Publications and source records attributed to Patrizia Amati-Bonneau.

9 recordsLinked to original sources

Clinical and Genetic Spectrum of ACO2-Linked Dominant Optic Atrophy.

IMPORTANCE: Aconitase 2 (ACO2) gene variants are one of the most frequent causes of dominant optic atrophy (DOA). However, the associated phenotypes and genotypes still lack proper characterization. OBJECTIVE: To characterize the clinical and genetic spectrum of ACO2-related DOA and evaluate genotype-phenotype correlations. DESIGN, SETTING, AND PARTICIPANTS: This was a retrospective case series to describe the ophthalmological examination of novel DOA cases with a heterozygous ACO2 variant. Data were collected from 13 reference centers in ophthalmology from France and Great Britain between January 2021 and September 2025. Included participants were those patients with OA and confirmed heterozygous or compound heterozygous ACO2 variants. EXPOSURES: DOA cases with a heterozygous ACO2 variant. MAIN OUTCOMES AND MEASURES: Positive molecular diagnosis for ACO2 variants by next-generation sequencing, clinical examination including age at diagnosis, sex, best-corrected visual acuity (BCVA), retinal nerve fiber layer (RNFL) and ganglion cell layer (GCL) thickness, visual field mean deviation (MD), and fundus examination. RESULTS: Data for 55 patients (median [IQR] age at diagnosis for 45 patients, 24 [8-51] years; 33 male [67%]) from 37 families with ACO2 variants were compiled. Analyses were conducted on 49 patients who were strictly heterozygous or compound heterozygous with the c.220C>G benign variant. Clinical data disclosed a high variability of severity, from pauci-symptomatic up to legal blindness. Median BCVA was 0.46 logMAR (Snellen equivalent, 20/63; IQR 0.00-0.89; n = 45). Four patients exhibited retinal abnormalities: 3 displayed a foveopathy, and 1 had retinitis pigmentosa. There were 12 previously unreported variants (to the authors' knowledge), including the deletion of ACO2 exon 9. No correlation between BCVA and sex, age at diagnosis (Spearman ρ = -0.19; 95% CI, -0.45 to 0.07), or variant type (Kruskal-Wallis test P =.33) was found, but there was a correlation between BCVA and RNFL (Spearman ρ = -0.74; 95% CI, -0.85 to -0.54), GCL (Spearman ρ = -0.60; 95% CI, -0.79 to -0.30), and MD (Spearman ρ = -0.65; 95% CI, -0.89 to -0.31). RNFL correlated with GCL (Spearman ρ = 0.69; 95% CI, 0.42-0.87) and MD (Spearman ρ = 0.57; 95% CI, 0.14-0.85); age at diagnosis correlated with GCL (Spearman ρ = -0.37; 95% CI, -0.63 to -0.03). CONCLUSIONS AND RELEVANCE: Results of this case series reveal the high clinical heterogeneity among patients with ACO2-related DOA and demonstrated that some of these patients can also exhibit retinal abnormalities. In addition, there was a deletion of an entire ACO2 exon, emphasizing the potential importance of searching for large genomic rearrangements in patients without a molecular diagnosis. These findings support further studies to explain clinical variability, as no genotype-phenotype correlation was encountered.

Humans↗

Effects of OPA1 mutations on mitochondrial morphology and apoptosis: relevance to ADOA pathogenesis.

To characterize the molecular links between type-1 autosomal dominant optic atrophy (ADOA) and OPA1 dysfunctions, the effects of pathogenic alleles of this dynamin on mitochondrial morphology and apoptosis were analyzed, either in fibroblasts from affected individuals, or in HeLa cells transfected with similar mutants. The alleles were missense substitutions in the GTPase domain (OPA1(G300E) and OPA1(R290Q)) or deletion of the GTPase effector domain (OPA1(Delta58)). Fragmentation of mitochondria and apoptosis increased in OPA1(R290Q) fibroblasts and in OPA1(G300E) transfected HeLa cells. OPA1(Delta58) did not influence mitochondrial morphology, but increased the sensitivity to staurosporine of fibroblasts. In these cells, the amount of OPA1 protein was half of that in control fibroblasts. We conclude that GTPase mutants exert a dominant negative effect by competing with wild-type alleles to integrate into fusion-competent complexes, whereas C-terminal truncated alleles act by haplo-insufficiency. We present a model where antagonistic fusion and fission forces maintain the mitochondrial network, within morphological limits that are compatible with cellular functions. In the retinal ganglion cells (RGCs) of patients suffering from type-1 ADOA, OPA1-driven fusion cannot adequately oppose fission, thereby rendering them more sensitive to apoptotic stimuli and eventually leading to optic nerve degeneration.

Apoptosis↗

Mitochondrial dynamics and disease, OPA1.

The mitochondria are dynamic organelles that constantly fuse and divide. An equilibrium between fusion and fission controls the morphology of the mitochondria, which appear as dots or elongated tubules depending the prevailing force. Characterization of the components of the fission and fusion machineries has progressed considerably, and the emerging question now is what role mitochondrial dynamics play in mitochondrial and cellular functions. Its importance has been highlighted by the discovery that two human diseases are caused by mutations in the two mitochondrial pro-fusion genes, MFN2 and OPA1. This review will focus on data concerning the function of OPA1, mutations in which cause optic atrophy, with respect to the underlying pathophysiological processes.

GTP Phosphohydrolases↗

BBS10 encodes a vertebrate-specific chaperonin-like protein and is a major BBS locus.

Bardet-Biedl syndrome (BBS) is a genetically heterogeneous ciliopathy. Although nine BBS genes have been cloned, they explain only 40-50% of the total mutational load. Here we report a major new BBS locus, BBS10, that encodes a previously unknown, rapidly evolving vertebrate-specific chaperonin-like protein. We found BBS10 to be mutated in about 20% of an unselected cohort of families of various ethnic origins, including some families with mutations in other BBS genes, consistent with oligogenic inheritance. In zebrafish, mild suppression of bbs10 exacerbated the phenotypes of other bbs morphants.

Bardet-Biedl Syndrome↗

OPA1 R445H mutation in optic atrophy associated with sensorineural deafness.

The heterozygous R445H mutation in OPA1 was found in five patients with optic atrophy and deafness. Audiometry suggested that the sensorineural deafness resulted from auditory neuropathy. Skin fibroblasts showed hyperfragmentation of the mitochondrial network, decreased mitochondrial membrane potential, and adenosine triphosphate synthesis defect. In addition, OPA1 was found to be widely expressed in the sensory and neural cochlear cells of the guinea pig. Thus, optic atrophy and deafness may be related to energy defects due to a fragmented mitochondrial network.

Adolescent↗

eOPA1: an online database for OPA1 mutations.

Autosomal dominant optic atrophy (ADOA), also known as Kjer disease, is characterized by moderate to severe loss of visual acuity with an insidious onset in early childhood, blue-yellow dyschromatopsia, and central scotoma. An optic atrophy gene, called OPA1, has been identified in most cases of the disease. A total of 83 OPA1 mutations, often family-specific, have been reported so far, and the observations support the hypothesis that haploinsufficiency and the functional loss of a single allele may lead to ADOA. We have developed a new locus-specific database (LSDB), eOPA1 (http://lbbma.univ-angers.fr/eOPA1/) aimed at collecting published and unpublished sequence variations in OPA1. The database has been designed to incorporate new submissions rapidly and will provide a secured online catalog of OPA1 mutations and nonpathogenic sequence variants (NPSVs). The LSDB should prove useful for molecular diagnosis, large-scale mutation statistics, and the determination of original genotype-phenotype correlations in studies on ADOA.

Base Sequence↗

Axenfeld-Rieger anomaly: a novel mutation in the forkhead box C1 (FOXC1) gene in a 4-generation family.

OBJECTIVE: To characterize DNA mutations in a pedigree of Axenfeld-Rieger anomaly (ARA) (Online Mendelian Inheritance of Man 601631), a clinically and genetically heterogeneous, autosomal dominantly inherited disorder associated with anterior chamber abnormalities and glaucoma. DESIGN: Observational case-control and DNA linkage and screening studies. PARTICIPANTS: Affected (10 cases) and unaffected (5 controls) members of a family with ARA. METHODS: Clinical characteristics of ARA were documented by history or physical examination of symptomatic individuals. With their informed consent, a blood sample was collected from each of 10 affected and 5 unaffected family members. DNA was tested for linkage to the IRID1 locus at chromosome 6p25, a known locus for ARA/Rieger syndrome. A candidate gene previously mapped at this locus, FOXC1, was screened for mutations in cases and controls. Main Outcome Measure Linkage of the ARA phenotype at the 6p25 locus and mutation detected in FOXC1. RESULTS: Direct sequencing of FOXC1 detected a new mutation, T272C, that segregated with the ARA phenotype in this family and was not detected in DNA from family members without ARA. This mutation, a T-->C transition, is predicted to result in a change of isoleucine to threonine (Ile9lThr) in a highly conserved location within the first helix of the forkhead domain. CONCLUSION: Characterization of the FOXC1 mutation in family members with ARA furthers our understanding of the molecular origin of developmental glaucoma and other anterior segment disorders.

Adult↗

Fourteen novel OPA1 mutations in autosomal dominant optic atrophy including two de novo mutations in sporadic optic atrophy.

The OPA1 gene, encoding a dynamin-related GTPase that plays a role in mitochondrial biogenesis, is implicated in most cases of autosomal dominant optic atrophy (ADOA). Sixty-nine pathogenic OPA1 mutations have been reported so far. Most of these are truncating mutations located in the GTPase domain coding region (exons 8-16) and at the 3'-end (exons 27-28). We screened 44 patients with typical ADOA using PCR-sequencing. We also tested 20 sporadic cases of bilateral optic atrophy compatible with ADOA. Of the 18 OPA1 mutations found, 14 have never been previously reported. The novel mutations include one nonsense mutation, 3 missense mutations, 6 deletions, one insertion and 3 exon-skipping mutations. Two of these are de novo mutations, which were found in 2 patients with sporadic optic atrophy. The recurrent c.2708_2711delTTAG mutation was found in 2 patients with a severe congenital presentation of the disease. These results suggest that screening for OPA1 gene mutations may be useful for patients with optic atrophy who have no affected relatives, or when the presentation of the disease is atypical as in the case of early onset optic atrophy.

Alternative Splicing↗

The association of autosomal dominant optic atrophy and moderate deafness may be due to the R445H mutation in the OPA1 gene.

PURPOSE: To examine the involvement of the optic atrophy 1 (OPA1) gene in optic atrophy associated with moderate deafness. DESIGN: Observational case report. The entire coding sequence of the OPA1 gene was directly sequenced in the case of a patient suffering from optic atrophy associated with moderate deafness. RESULTS: A de novo heterozygous mutation R445H in the OPA1 gene was found. No similar mutation was detected in either of the patient's parents or in the 100 chromosome controls. CONCLUSION: The R445H mutation in OPA1 might be the cause of the association between dominant optic atrophy and moderate deafness, a phenotype that may be currently underdiagnosed.

Adult↗