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Dive into the research topics where Paola Giunti is active.

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Featured researches published by Paola Giunti.


Neurology | 2006

Scale for the assessment and rating of ataxia: development of a new clinical scale.

Tanja Schmitz-Hübsch; S. Tezenas du Montcel; László Balikó; José Berciano; S Boesch; Chantal Depondt; Paola Giunti; Christoph Globas; Jon Infante; Jun-Suk Kang; Berry Kremer; C. Mariotti; Bela Melegh; Massimo Pandolfo; Maryla Rakowicz; Pascale Ribai; Rafal Rola; Ludger Schöls; Sandra Szymanski; B.P.C. van de Warrenburg; Alexandra Durr; Thomas Klockgether

Objective: To develop a reliable and valid clinical scale measuring the severity of ataxia. Methods: The authors devised the Scale for the Assessment and Rating of Ataxia (SARA) and tested it in two trials of 167 and 119 patients with spinocerebellar ataxia. Results: The mean time to administer SARA in patients was 14.2 ± 7.5 minutes (range 5 to 40). Interrater reliability was high, with an intraclass coefficient (ICC) of 0.98. Test-retest reliability was high with an ICC of 0.90. Internal consistency was high as indicated by Cronbachs α of 0.94. Factorial analysis revealed that the rating results were determined by a single factor. SARA ratings showed a linear relation to global assessments using a visual analogue scale, suggesting linearity of the scale (p < 0.0001, r2 = 0.98). SARA score increased with the disease stage (p < 0.001) and was closely correlated with the Barthel Index (r = −0.80, p < 0.001) and part IV (functional assessment) of the Unified Huntingtons Disease Rating Scale (UHDRS-IV) (r = −0.89, p < 0.0001), whereas it had only a weak correlation with disease duration (r = 0.34, p < 0.0002) Conclusions: The Scale for the Assessment and Rating of Ataxia is a reliable and valid measure of ataxia, making it an appropriate primary outcome measure for clinical trials.


PLOS Genetics | 2007

Deletion at ITPR1 underlies ataxia in mice and spinocerebellar ataxia 15 in humans.

Joyce van de Leemput; Jayanth Chandran; Melanie A. Knight; Lynne A. Holtzclaw; Sonja W. Scholz; Mark R. Cookson; Henry Houlden; Katrina Gwinn-Hardy; Hon Chung Fung; Xian Lin; Dena Hernandez; Javier Simón-Sánchez; Nicholas W. Wood; Paola Giunti; Ian Rafferty; John Hardy; Elsdon Storey; R.J. McKinlay Gardner; Susan M. Forrest; Elizabeth M. C. Fisher; James T. Russell; Huaibin Cai; Andrew Singleton

We observed a severe autosomal recessive movement disorder in mice used within our laboratory. We pursued a series of experiments to define the genetic lesion underlying this disorder and to identify a cognate disease in humans with mutation at the same locus. Through linkage and sequence analysis we show here that this disorder is caused by a homozygous in-frame 18-bp deletion in Itpr1 (Itpr1Δ18/Δ18), encoding inositol 1,4,5-triphosphate receptor 1. A previously reported spontaneous Itpr1 mutation in mice causes a phenotype identical to that observed here. In both models in-frame deletion within Itpr1 leads to a decrease in the normally high level of Itpr1 expression in cerebellar Purkinje cells. Spinocerebellar ataxia 15 (SCA15), a human autosomal dominant disorder, maps to the genomic region containing ITPR1; however, to date no causal mutations had been identified. Because ataxia is a prominent feature in Itpr1 mutant mice, we performed a series of experiments to test the hypothesis that mutation at ITPR1 may be the cause of SCA15. We show here that heterozygous deletion of the 5′ part of the ITPR1 gene, encompassing exons 1–10, 1–40, and 1–44 in three studied families, underlies SCA15 in humans.


Nature Reviews Neurology | 2009

Diagnosis and treatment of Friedreich ataxia: a European perspective.

Jörg B. Schulz; Sylvia Boesch; Katrin Bürk; Alexandra Durr; Paola Giunti; Caterina Mariotti; Francoise Pousset; Ludger Schöls; Pierre Vankan; Massimo Pandolfo

Friedreich ataxia is the most frequent hereditary ataxia, with an estimated prevalence of 3–4 cases per 100,000 individuals. This autosomal-recessive neurodegenerative disease is characterized by progressive gait and limb ataxia, dysarthria, lower-limb areflexia, decreased vibration sense, muscular weakness in the legs, and a positive extensor plantar response. Non-neurological signs include hypertrophic cardiomyopathy and diabetes mellitus. Symptom onset typically occurs around puberty, and life expectancy is 40–50 years. Friedreich ataxia is usually caused by a large GAA-triplet-repeat expansion within the first intron of the frataxin (FXN) gene. FXN mutations cause deficiencies of the iron–sulfur cluster-containing subunits of the mitochondrial electron transport complexes I, II, and III, and of the iron–sulfur protein aconitase. Mitochondrial dysfunction has been addressed in several open-label, non-placebo-controlled trials, which indicated that treatment with idebenone might ameliorate hypertrophic cardiomyopathy; a well-designed phase II trial suggested concentration-dependent functional improvements in non-wheelchair-bound children and adolescents. Other current experimental approaches address iron-mediated toxicity, or aim to increase FXN expression through the use of erythropoietin and histone deacetylase inhibitors. This Review provides guidelines, from a European perspective, for the diagnosis of Friedreich ataxia, differential diagnosis of ataxias and genetic counseling, and treatment of neurological and non-neurological symptoms.


Neurology | 2008

Spinocerebellar ataxia types 1, 2, 3, and 6: disease severity and nonataxia symptoms.

Tanja Schmitz-Hübsch; Mathieu Coudert; Peter Bauer; Paola Giunti; Christoph Globas; László Balikó; Alessandro Filla; C. Mariotti; Maryla Rakowicz; Perrine Charles; Pascale Ribai; Sandra Szymanski; Jon Infante; B.P.C. van de Warrenburg; Alexandra Durr; Dagmar Timmann; S Boesch; Roberto Fancellu; Rafal Rola; Chantal Depondt; Ludger Schöls; E Zdienicka; J-S Kang; S Döhlinger; Berry Kremer; D A Stephenson; Bela Melegh; Massimo Pandolfo; S. Di Donato; S. Tezenas du Montcel

Objective: To identify factors that determine disease severity and clinical phenotype of the most common spinocerebellar ataxias (SCAs), we studied 526 patients with SCA1, SCA2, SCA3. or SCA6. Methods: To measure the severity of ataxia we used the Scale for the Assessment and Rating of Ataxia (SARA). In addition, nonataxia symptoms were assessed with the Inventory of Non-Ataxia Symptoms (INAS). The INAS count denotes the number of nonataxia symptoms in each patient. Results: An analysis of covariance with SARA score as dependent variable and repeat lengths of the expanded and normal allele, age at onset, and disease duration as independent variables led to multivariate models that explained 60.4% of the SARA score variance in SCA1, 45.4% in SCA2, 46.8% in SCA3, and 33.7% in SCA6. In SCA1, SCA2, and SCA3, SARA was mainly determined by repeat length of the expanded allele, age at onset, and disease duration. The only factors determining the SARA score in SCA6 were age at onset and disease duration. The INAS count was 5.0 ± 2.3 in SCA1, 4.6 ± 2.2 in SCA2, 5.2 ± 2.5 in SCA3, and 2.0 ± 1.7 in SCA6. In SCA1, SCA2, and SCA3, SARA score and disease duration were the strongest predictors of the INAS count. In SCA6, only age at onset and disease duration had an effect on the INAS count. Conclusions: Our study suggests that spinocerebellar ataxia (SCA) 1, SCA2, and SCA3 share a number of common biologic properties, whereas SCA6 is distinct in that its phenotype is more determined by age than by disease-related factors.


American Journal of Human Genetics | 1999

Autosomal Dominant Cerebellar Ataxia Type III: Linkage in a Large British Family to a 7.6-cM Region on Chromosome 15q14-21.3

Paul Worth; Paola Giunti; Christopher Gardner-Thorpe; Peter H. Dixon; Mary B. Davis; Nicholas W. Wood

Autosomal dominant cerebellar ataxia type III (ADCA III) is a relatively benign, late-onset, slowly progressive neurological disorder characterized by an uncomplicated cerebellar syndrome. Three loci have been identified: a moderately expanded CAG trinucleotide repeat in the SCA 6 gene, the SCA 5 locus on chromosome 11, and a third locus on chromosome 22 (SCA 10). We have identified two British families in which affected individuals do not have the SCA 6 expansion and in which the disease is not linked to SCA 5 or SCA 10. Both families exhibit the typical phenotype of ADCA III. Using a genomewide searching strategy in one of these families, we have linked the disease phenotype to marker D15S1039. Construction of haplotypes has defined a 7.6-cM interval between the flanking markers D15S146 and D15S1016, thereby assigning another ADCA III locus to the proximal long-arm of chromosome 15 (SCA 11). We excluded linkage of the disease phenotype to this region in the second family. These results indicate the presence of two additional ADCA III loci and more clearly define the genetic heterogeneity of ADCA III.


Movement Disorders | 2006

Reliability and Validity of the international cooperative ataxia rating scale: A study in 156 spinocerebellar ataxia patients

Tanja Schmitz-Hübsch; Sophie Tezenas du Montcel; László Balikó; S Boesch; Sara Bonato; Roberto Fancellu; Paola Giunti; Christoph Globas; Jun Suk J.S. Kang; Berry Kremer; Caterina Mariotti; Béla Melegh; Maryla Rakowicz; Rafal Rola; Sylvie S. Romano; Lodger L. Schöls; Sandra Szymanski; Bart P. van de Warrenburg; Zdzienicka E; Alexandra Durr; Thomas Klockgether

To evaluate the efficacy of treatments in spinocerebellar ataxias (SCAs), appropriate clinical scales are required. This study evaluated metric properties of the International Cooperative Ataxia Rating Scale (ICARS) in 156 SCA patients and 8 controls. ICARS was found to be a reliable scale satisfying accepted criteria for interrater reliability, test–retest reliability, and internal consistency. Although validity testing was limited, we found evidence of validity of ICARS when ataxia disease stages and Barthel index were used as external criteria. On the other hand, our study revealed two major problems associated with the use of ICARS. First, the redundant and overlapping nature of several items gave rise to a considerable number of contradictory ratings. Second, a factorial analysis showed that the rating results were determined by four different factors that did not coincide with the ICARS subscales, thus questioning the justification of ICARS subscore analysis in clinical trials.


Neurology | 2011

The natural history of spinocerebellar ataxia type 1, 2, 3, and 6: A 2-year follow-up study

Heike Jacobi; P. Bauer; Paola Giunti; R. Labrum; M. G. Sweeney; P. Charles; A. Durr; C. Marelli; Christoph Globas; C. Linnemann; Ludger Schöls; Maria Rakowicz; Rafal Rola; Zdzienicka E; Tanja Schmitz-Hübsch; R. Fancellu; C. Mariotti; C. Tomasello; László Balikó; Bela Melegh; A. Filla; C. Rinaldi; B.P.C. van de Warrenburg; C.C.P. Verstappen; S. Szymanski; J. Berciano; J. Infante; Dagmar Timmann; S. Boesch; S. Hering

Objective: To obtain quantitative data on the progression of the most common spinocerebellar ataxias (SCAs) and identify factors that influence their progression, we initiated the EUROSCA natural history study, a multicentric longitudinal cohort study of 526 patients with SCA1, SCA2, SCA3, or SCA6. We report the results of the 1- and 2-year follow-up visits. Methods: As the primary outcome measure we used the Scale for the Assessment and Rating of Ataxia (SARA, 0–40), and as a secondary measure the Inventory of Non-Ataxia Symptoms (INAS, 0–16) count. Results: The annual increase of the SARA score was greatest in SCA1 (2.18 ± 0.17, mean ± SE) followed by SCA3 (1.61 ± 0.12) and SCA2 (1.40 ± 0.11). SARA progression in SCA6 was slowest and nonlinear (first year: 0.35 ± 0.34, second year: 1.44 ± 0.34). Analysis of the INAS count yielded similar results. Larger expanded repeats and earlier age at onset were associated with faster SARA progression in SCA1 and SCA2. In SCA1, repeat length of the expanded allele had a similar effect on INAS progression. In SCA3, SARA progression was influenced by the disease duration at inclusion, and INAS progression was faster in females. Conclusions: Our study gives a comprehensive quantitative account of disease progression in SCA1, SCA2, SCA3, and SCA6 and identifies factors that specifically affect disease progression.


Movement Disorders | 2011

Movement disorders in spinocerebellar ataxias

Judith van Gaalen; Paola Giunti; Bart P. van de Warrenburg

Autosomal dominant spinocerebellar ataxias (SCAs) can present with a large variety of noncerebellar symptoms, including movement disorders. In fact, movement disorders are frequent in many of the various SCA subtypes, and they can be the presenting, dominant, or even isolated disease feature. When combined with cerebellar ataxia, the occurrence of a specific movement disorder can provide a clue toward the underlying genotype. There are reasons to believe that for some coexisting movement disorders, the cerebellar pathology itself is the culprit, for example, in the case of cortical myoclonus and perhaps dystonia. However, movement disorders in SCAs are more likely related to extracerebellar pathology, and imaging and neuropathological data indeed show involvement of other parts of the motor system (substantia nigra, striatum, pallidum, motor cortex) in some SCA subtypes. When confronted with a patient with an isolated movement disorder, that is, without ataxia, there is currently no reason to routinely screen for SCA gene mutations, the only exceptions being SCA2 in autosomal dominant parkinsonism (particularly in Asian patients) and SCA17 in the case of a Huntingtons disease–like presentation without an HTT mutation.


Journal of Neurochemistry | 2013

Clinical features of Friedreich's ataxia: Classical and atypical phenotypes

Michael H Parkinson; Sylvia Boesch; Wolfgang Nachbauer; Caterina Mariotti; Paola Giunti

One hundred and fifty years since Nikolaus Friedreichs first description of the degenerative ataxic syndrome which bears his name, his description remains at the core of the classical clinical phenotype of gait and limb ataxia, poor balance and coordination, leg weakness, sensory loss, areflexia, impaired walking, dysarthria, dysphagia, eye movement abnormalities, scoliosis, foot deformities, cardiomyopathy and diabetes. Onset is typically around puberty with slow progression and shortened life‐span often related to cardiac complications. Inheritance is autosomal recessive with the vast majority of cases showing an unstable intronic GAA expansion in both alleles of the frataxin gene on chromosome 9q13. A small number of cases are caused by a compound heterozygous expansion with a point mutation or deletion. Understanding of the underlying molecular biology has enabled identification of atypical phenotypes with late onset, or atypical features such as retained reflexes. Late‐onset cases tend to have slower progression and are associated with smaller GAA expansions. Early‐onset cases tend to have more rapid progression and a higher frequency of non‐neurological features such as diabetes, cardiomyopathy, scoliosis and pes cavus. Compound heterozygotes, including those with large deletions, often have atypical features. In this paper, we review the classical and atypical clinical phenotypes of Friedreichs ataxia.


American Journal of Human Genetics | 1999

Molecular and Clinical Study of 18 Families with ADCA Type II: Evidence for Genetic Heterogeneity and De Novo Mutation

Paola Giunti; Giovanni Stevanin; Paul Worth; Gilles David; Alexis Brice; Nicholas W. Wood

The SCA7 mutation has been found in 54 patients and 7 at-risk subjects from 17 families who have autosomal dominant cerebellar ataxia (ADCA) II with progressive pigmentary maculopathy. In one isolated case, haplotype reconstruction through three generations confirmed a de novo mutation owing to paternal meiotic instability. Different disease-associated haplotypes segregated among the SCA7-positive kindreds, which indicated a multiple origin of the mutation. One family with the clinical phenotype of ADCA type II did not have the CAG expansion that indicated locus heterogeneity. The distribution of the repeat size in 944 independent normal chromosomes from controls, unaffected at-risk subjects, and one affected individual fell into two ranges. The majority of the alleles were in the first range of 7-19 CAG repeats. A second range could be identified with 28-35 repeats, and we provide evidence that these repeats represent intermediate alleles that are prone to further expansion. The repeat size of the pathological allele, the widest reported for all CAG-repeat disorders, ranged from 37 to approximately 220. The repeat size showed significant negative correlation with both age at onset and age at death. Analysis of the clinical features in the patients with SCA7 confirmed that the most frequently associated features are pigmentary maculopathy, pyramidal tract involvement, and slow saccades. The subjects with <49 repeats tended to have a less complicated neurological phenotype and a longer disease duration, whereas the converse applied to subjects with >/=49 repeats. The degree of instability during meiotic transmission was greater than in all other CAG-repeat disorders and was particularly striking in paternal transmission, in which a median increase in repeat size of 6 and an interquartile range of 12 were observed, versus a median increase of 3 and interquartile range of 3.5 in maternal transmission.

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Nicholas W. Wood

UCL Institute of Neurology

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Massimo Pandolfo

Université libre de Bruxelles

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Dagmar Timmann

University of Duisburg-Essen

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Caterina Mariotti

Carlo Besta Neurological Institute

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Thomas Klockgether

German Center for Neurodegenerative Diseases

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Maria Spadaro

Sapienza University of Rome

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