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Dive into the research topics where Eleonora Di Gregorio is active.

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Featured researches published by Eleonora Di Gregorio.


PLOS Genetics | 2011

Molecular mechanisms generating and stabilizing terminal 22q13 deletions in 44 subjects with Phelan/McDermid syndrome

Maria Clara Bonaglia; Roberto Giorda; Silvana Beri; Cristina De Agostini; Francesca Novara; Marco Fichera; Lucia Grillo; Ornella Galesi; Annalisa Vetro; Roberto Ciccone; Maria Teresa Bonati; Sabrina Giglio; Renzo Guerrini; Sara Osimani; Susan Marelli; Claudio Zucca; Rita Grasso; Renato Borgatti; Elisa Mani; Cristina Motta; Massimo Molteni; Corrado Romano; Donatella Greco; Santina Reitano; Anna Baroncini; Elisabetta Lapi; Antonella Cecconi; Giulia Arrigo; Maria Grazia Patricelli; Chiara Pantaleoni

In this study, we used deletions at 22q13, which represent a substantial source of human pathology (Phelan/McDermid syndrome), as a model for investigating the molecular mechanisms of terminal deletions that are currently poorly understood. We characterized at the molecular level the genomic rearrangement in 44 unrelated patients with 22q13 monosomy resulting from simple terminal deletions (72%), ring chromosomes (14%), and unbalanced translocations (7%). We also discovered interstitial deletions between 17–74 kb in 9% of the patients. Haploinsufficiency of the SHANK3 gene, confirmed in all rearrangements, is very likely the cause of the major neurological features associated with PMS. SHANK3 mutations can also result in language and/or social interaction disabilities. We determined the breakpoint junctions in 29 cases, providing a realistic snapshot of the variety of mechanisms driving non-recurrent deletion and repair at chromosome ends. De novo telomere synthesis and telomere capture are used to repair terminal deletions; non-homologous end-joining or microhomology-mediated break-induced replication is probably involved in ring 22 formation and translocations; non-homologous end-joining and fork stalling and template switching prevail in cases with interstitial 22q13.3. For the first time, we also demonstrated that distinct stabilizing events of the same terminal deletion can occur in different early embryonic cells, proving that terminal deletions can be repaired by multistep healing events and supporting the recent hypothesis that rare pathogenic germline rearrangements may have mitotic origin. Finally, the progressive clinical deterioration observed throughout the longitudinal medical history of three subjects over forty years supports the hypothesis of a role for SHANK3 haploinsufficiency in neurological deterioration, in addition to its involvement in the neurobehavioral phenotype of PMS.


Human Molecular Genetics | 2015

A large genomic deletion leads to enhancer adoption by the lamin B1 gene: a second path to autosomal dominant adult-onset demyelinating leukodystrophy (ADLD).

Elisa Giorgio; Daniel Robyr; Malte Spielmann; Enza Ferrero; Eleonora Di Gregorio; D. Imperiale; Giovanna Vaula; Georgios Stamoulis; Federico Santoni; Cristiana Atzori; Laura Gasparini; Denise Ferrera; Claudio Canale; Michel Guipponi; Len A. Pennacchio; Alessandro Brussino

Chromosomal rearrangements with duplication of the lamin B1 (LMNB1) gene underlie autosomal dominant adult-onset demyelinating leukodystrophy (ADLD), a rare neurological disorder in which overexpression of LMNB1 causes progressive central nervous system demyelination. However, we previously reported an ADLD family (ADLD-1-TO) without evidence of duplication or other mutation in LMNB1 despite linkage to the LMNB1 locus and lamin B1 overexpression. By custom array-CGH, we further investigated this family and report here that patients carry a large (∼660 kb) heterozygous deletion that begins 66 kb upstream of the LMNB1 promoter. Lamin B1 overexpression was confirmed in further ADLD-1-TO tissues and in a postmortem brain sample, where lamin B1 was increased in the frontal lobe. Through parallel studies, we investigated both loss of genetic material and chromosomal rearrangement as possible causes of LMNB1 overexpression, and found that ADLD-1-TO plausibly results from an enhancer adoption mechanism. The deletion eliminates a genome topological domain boundary, allowing normally forbidden interactions between at least three forebrain-directed enhancers and the LMNB1 promoter, in line with the observed mainly cerebral localization of lamin B1 overexpression and myelin degeneration. This second route to LMNB1 overexpression and ADLD is a new example of the relevance of regulatory landscape modifications in determining Mendelian phenotypes.


American Journal of Human Genetics | 2014

ELOVL5 Mutations Cause Spinocerebellar Ataxia 38

Eleonora Di Gregorio; Barbara Borroni; Elisa Giorgio; Daniela Lacerenza; Marta Ferrero; Nicola Lo Buono; Neftj Ragusa; Cecilia Mancini; Marion Gaussen; Alessandro Calcia; Nico Mitro; Eriola Hoxha; Isabella Mura; Domenico Coviello; Young Ah Moon; Christelle Tesson; Giovanna Vaula; Philippe Couarch; Laura Orsi; Eleonora Duregon; Mauro Papotti; Jean-François Deleuze; Jean Imbert; Chiara Costanzi; Alessandro Padovani; Paola Giunti; Marcel Maillet-Vioud; Alexandra Durr; Alexis Brice; Filippo Tempia

Spinocerebellar ataxias (SCAs) are a heterogeneous group of autosomal-dominant neurodegenerative disorders involving the cerebellum and 23 different genes. We mapped SCA38 to a 56 Mb region on chromosome 6p in a SCA-affected Italian family by whole-genome linkage analysis. Targeted resequencing identified a single missense mutation (c.689G>T [p.Gly230Val]) in ELOVL5. Mutation screening of 456 independent SCA-affected individuals identified the same mutation in two further unrelated Italian families. Haplotyping showed that at least two of the three families shared a common ancestor. One further missense variant (c.214C>G [p.Leu72Val]) was found in a French family. Both missense changes affect conserved amino acids, are predicted to be damaging by multiple bioinformatics tools, and were not identified in ethnically matched controls or within variant databases. ELOVL5 encodes an elongase involved in the synthesis of polyunsaturated fatty acids of the ω3 and ω6 series. Arachidonic acid and docosahexaenoic acid, two final products of the enzyme, were reduced in the serum of affected individuals. Immunohistochemistry on control mice and human brain demonstrated high levels in Purkinje cells. In transfection experiments, subcellular localization of altered ELOVL5 showed a perinuclear distribution with a signal increase in the Golgi compartment, whereas the wild-type showed a widespread signal in the endoplasmic reticulum. SCA38 and SCA34 are examples of SCAs due to mutations in elongase-encoding genes, emphasizing the importance of fatty-acid metabolism in neurological diseases.


The Cerebellum | 2010

Two Italian Families with ITPR1 Gene Deletion Presenting a Broader Phenotype of SCA15

Eleonora Di Gregorio; Laura Orsi; Massimiliano Godani; Giovanna Vaula; Stella Jensen; Eric Salmon; Giancarlo Ferrari; Stefania Squadrone; Maria Cesarina Abete; Claudia Cagnoli; Alessandro Brussino

Spinocerebellar ataxia type15 (SCA15) is a pure ataxia characterized by very slow progression. Only seven families have been identified worldwide, in which partial deletions and a missense mutation of the inositol triphosphate receptor type I gene (ITPR1) have been reported. We examined a four-generation Italian family segregating an autosomal dominant cerebellar ataxia, in which linkage analysis was positive for the SCA15 locus. We performed a genomic real-time polymerase chain reaction to search for ITPR1 gene deletions in this family and in 60 SCA index cases negative for mutations in the SCA1–3, 6–8, 10, 12, and dentatorubral-pallidoluysian atrophy genes. The deleted segments were characterized using a custom array comparative genomic hybridization analysis. We have identified two families with an ITPR1 gene deletion: in one, the deletion involved ITPR1 only, while in the other both sulfatase-modifying factor 1 and ITPR1. Clinical data of ten patients and brain MRI (available for six) showed that the phenotype substantially overlapped known SCA15 cases, but we also noted buccolingual dyskinesias, facial myokymias, and pyramidal signs never reported in SCA15. ITPR1 expression analysis of two deleted cases showed a half dose. Our results further support ITPR1 gene as causative of SCA15. The families reported show that SCA15 is present in Italy and has a greater variability in the age at onset and clinical features than previously reported. We propose that the search for ITPR1 deletions is mandatory in the clinical hypothesis of SCA15 and that ITPR1-reduced expression in blood may be a useful marker to identify SCA15 patients harboring genomic deletions and possibly point mutations causing reduction of mRNA level.


Human Mutation | 2013

Analysis of LMNB1 Duplications in Autosomal Dominant Leukodystrophy Provides Insights into Duplication Mechanisms and Allele-Specific Expression

Elisa Giorgio; Harshvardhan Rolyan; Laura E. Kropp; Anish Chakka; Svetlana A. Yatsenko; Eleonora Di Gregorio; Daniela Lacerenza; Giovanna Vaula; Flavia Talarico; Paola Mandich; Camilo Toro; Eleonore Eymard Pierre; Pierre Labauge; Sabina Capellari; Pietro Cortelli; Filippo Pinto e Vairo; Diego Miguel; Danielle Stubbolo; Lourenco Charles Marques; William A. Gahl; Odile Boespflug-Tanguy; Atle Melberg; Sharon Hassin-Baer; Oren S. Cohen; Rastislav Pjontek; Armin Grau; Thomas Klopstock; Brent L. Fogel; Inge Meijer; Guy A. Rouleau

Autosomal dominant leukodystrophy (ADLD) is an adult onset demyelinating disorder that is caused by duplications of the lamin B1 (LMNB1) gene. However, as only a few cases have been analyzed in detail, the mechanisms underlying LMNB1 duplications are unclear. We report the detailed molecular analysis of the largest collection of ADLD families studied, to date. We have identified the minimal duplicated region necessary for the disease, defined all the duplication junctions at the nucleotide level and identified the first inverted LMNB1 duplication. We have demonstrated that the duplications are not recurrent; patients with identical duplications share the same haplotype, likely inherited from a common founder and that the duplications originated from intrachromosomal events. The duplication junction sequences indicated that nonhomologous end joining or replication‐based mechanisms such fork stalling and template switching or microhomology‐mediated break induced repair are likely to be involved. LMNB1 expression was increased in patients’ fibroblasts both at mRNA and protein levels and the three LMNB1 alleles in ADLD patients show equal expression, suggesting that regulatory regions are maintained within the rearranged segment. These results have allowed us to elucidate duplication mechanisms and provide insights into allele‐specific LMNB1 expression levels.


Journal of Medical Genetics | 2013

A de novo X;8 translocation creates a PTK2 - THOC2 gene fusion with THOC2 expression knockdown in a patient with psychomotor retardation and congenital cerebellar hypoplasia

Eleonora Di Gregorio; Federico Bianchi; Alfonso Schiavi; Alessandra Maria Adelaide Chiotto; M. Rolando; Ludovica Verdun di Cantogno; Enrico Grosso; Simona Cavalieri; Alessandro Calcia; Daniela Lacerenza; Orsetta Zuffardi; Saverio Francesco Retta; Giovanni Stevanin; Cecilia Marelli; Alexandra Durr; Sylvie Forlani; Jamel Chelly; Francesca Montarolo; Filippo Tempia; Hilary E. Beggs; Robin Reed; Stefania Squadrone; Maria Cesarina Abete; Alessandro Brussino; Natascia Ventura; Ferdinando Di Cunto

Background and aim We identified a balanced de novo translocation involving chromosomes Xq25 and 8q24 in an eight year-old girl with a non-progressive form of congenital ataxia, cognitive impairment and cerebellar hypoplasia. Methods and Results Breakpoint definition showed that the promoter of the Protein Tyrosine Kinase 2 (PTK2, also known as Focal Adhesion Kinase, FAK) gene on chromosome 8q24.3 is translocated 2 kb upstream of the THO complex subunit 2 (THOC2) gene on chromosome Xq25. PTK2 is a well-known non-receptor tyrosine kinase whereas THOC2 encodes a component of the evolutionarily conserved multiprotein THO complex, involved in mRNA export from nucleus. The translocation generated a sterile fusion transcript under the control of the PTK2 promoter, affecting expression of both PTK2 and THOC2 genes. PTK2 is involved in cell adhesion and, in neurons, plays a role in axonal guidance, and neurite growth and attraction. However, PTK2 haploinsufficiency alone is unlikely to be associated with human disease. Therefore, we studied the role of THOC2 in the CNS using three models: 1) THOC2 ortholog knockout in C.elegans which produced functional defects in specific sensory neurons; 2) Thoc2 knockdown in primary rat hippocampal neurons which increased neurite extension; 3) Thoc2 knockdown in neuronal stem cells (LC1) which increased their in vitro growth rate without modifying apoptosis levels. Conclusion We suggest that THOC2 can play specific roles in neuronal cells and, possibly in combination with PTK2 reduction, may affect normal neural network formation, leading to cognitive impairment and cerebellar congenital hypoplasia.


Molecular Cytogenetics | 2014

Large cryptic genomic rearrangements with apparently normal karyotypes detected by array-CGH

Eleonora Di Gregorio; Elisa Savin; Elisa Biamino; E Belligni; Valeria Giorgia Naretto; Gaetana D’Alessandro; Giorgia Gai; Franco Fiocchi; Alessandro Calcia; Cecilia Mancini; Elisa Giorgio; Simona Cavalieri; Flavia Talarico; Patrizia Pappi; Marina Gandione; Monica Grosso; Valentina Asnaghi; Gabriella Restagno; Giorgia Mandrile; Giovanni Botta; Margherita Silengo; Enrico Grosso; Giovanni Battista Ferrero

BackgroundConventional karyotyping (550 bands resolution) is able to identify chromosomal aberrations >5-10 Mb, which represent a known cause of intellectual disability/developmental delay (ID/DD) and/or multiple congenital anomalies (MCA). Array-Comparative Genomic Hybridization (array-CGH) has increased the diagnostic yield of 15-20%.ResultsIn a cohort of 700 ID/DD cases with or without MCA, including 15 prenatal diagnoses, we identified a subgroup of seven patients with a normal karyotype and a large complex rearrangement detected by array-CGH (at least 6, and up to 18 Mb). FISH analysis could be performed on six cases and showed that rearrangements were translocation derivatives, indistinguishable from a normal karyotype as they involved a similar band pattern and size. Five were inherited from a parent with a balanced translocation, whereas two were apparently de novo. Genes spanning the rearrangements could be associated with some phenotypic features in three cases (case 3: DOCK8; case 4: GATA3, AKR1C4; case 6: AS/PWS deletion, CHRNA7), and in two, likely disease genes were present (case 5: NR2F2, TP63, IGF1R; case 7: CDON). Three of our cases were prenatal diagnoses with an apparently normal karyotype.ConclusionsLarge complex rearrangements of up to 18 Mb, involving chromosomal regions with similar size and band appearance may be overlooked by conventional karyotyping. Array-CGH allows a precise chromosomal diagnosis and recurrence risk definition, further confirming this analysis as a first tier approach to clarify molecular bases of ID/DD and/or MCA. In prenatal tests, array-CGH is confirmed as an important tool to avoid false negative results due to karyotype intrinsic limit of detection.


Epilepsia | 2013

Different electroclinical picture of generalized epilepsy in two families with 15q13.3 microdeletion.

Antonietta Coppola; Irene Bagnasco; Monica Traverso; Eleonora Di Gregorio; Luigi Del Gaudio; Lia Santulli; Carmela Caccavale; Piernanda Vigliano; Carlo Minetti; Salvatore Striano; Federico Zara; Pasquale Striano

15q.13.3 microdeletion has been described in a variety of neurodevelopmental disorders. Epilepsy appears to be a common feature and, specifically, the 15q13.3 microdeletion is found in about 1% of patients with idiopathic generalized epilepsy. Recently, absence seizures with intellectual disability (ID) have been reported in patients carrying this mutation. We describe two families in which several affected members carry a 15q13.3 microdeletion in a pattern suggestive of autosomal dominant inheritance. Their phenotype includes mainly absence epilepsy and mild ID, suggesting only similarities with genetic/idiopathic generalized epilepsies but not typical features. The importance of studying such families is crucial to broaden the phenotype and understand the long‐term outcome of patients with this condition.


American Journal of Medical Genetics Part A | 2016

Whole exome sequencing is necessary to clarify ID/DD cases with de novo copy number variants of uncertain significance: Two proof-of-concept examples

Elisa Giorgio; Andrea Ciolfi; Elisa Biamino; Viviana Caputo; Eleonora Di Gregorio; E Belligni; Alessandro Calcia; Elena Gaidolfi; Alessandro Bruselles; Cecilia Mancini; Simona Cavalieri; Cristina Molinatto; Margherita Silengo; Giovanni Battista Ferrero; Marco Tartaglia

Whole exome sequencing (WES) is a powerful tool to identify clinically undefined forms of intellectual disability/developmental delay (ID/DD), especially in consanguineous families. Here we report the genetic definition of two sporadic cases, with syndromic ID/DD for whom array—Comparative Genomic Hybridization (aCGH) identified a de novo copy number variant (CNV) of uncertain significance. The phenotypes included microcephaly with brachycephaly and a distinctive facies in one proband, and hypotonia in the legs and mild ataxia in the other. WES allowed identification of a functionally relevant homozygous variant affecting a known disease gene for rare syndromic ID/DD in each proband, that is, c.1423C>T (p.Arg377*) in the Trafficking Protein Particle Complex 9 (TRAPPC9), and c.154T>C (p.Cys52Arg) in the Very Low Density Lipoprotein Receptor (VLDLR). Four mutations affecting TRAPPC9 have been previously reported, and the present finding further depicts this syndromic form of ID, which includes microcephaly with brachycephaly, corpus callosum hypoplasia, facial dysmorphism, and overweight. VLDLR‐associated cerebellar hypoplasia (VLDLR‐CH) is characterized by non‐progressive congenital ataxia and moderate‐to‐profound intellectual disability. The c.154T>C (p.Cys52Arg) mutation was associated with a very mild form of ataxia, mild intellectual disability, and cerebellar hypoplasia without cortical gyri simplification. In conclusion, we report two novel cases with rare causes of autosomal recessive ID, which document how interpreting de novo array‐CGH variants represents a challenge in consanguineous families; as such, clinical WES should be considered in diagnostic testing.


American Journal of Medical Genetics | 2016

A novel 3q29 deletion associated with autism, intellectual disability, psychiatric disorders, and obesity

Elisa Biamino; Eleonora Di Gregorio; E Belligni; Roberto Keller; Evelise Riberi; Marina Gandione; Alessandro Calcia; Cecilia Mancini; Elisa Giorgio; Simona Cavalieri; Patrizia Pappi; Flavia Talarico; Antonio Maria Fea; Silvia De Rubeis; Margherita Silengo; Giovanni Battista Ferrero

Copy number variation (CNV) has been associated with a variety of neuropsychiatric disorders, including intellectual disability/developmental delay (ID/DD), autism spectrum disorder (ASD), and schizophrenia (SCZ). Often, individuals carrying the same pathogenic CNV display high clinical variability. By array‐CGH analysis, we identified a novel familial 3q29 deletion (1.36 Mb), centromeric to the 3q29 deletion region, which manifests with variable expressivity. The deletion was identified in a 3‐year‐old girl diagnosed with ID/DD and autism and segregated in six family members, all affected by severe psychiatric disorders including schizophrenia, major depression, anxiety disorder, and personality disorder. All individuals carrying the deletion were overweight or obese, and anomalies compatible with optic atrophy were observed in three out of four cases examined. Amongst the 10 genes encompassed by the deletion, the haploinsufficiency of Optic Atrophy 1 (OPA1), associated with autosomal dominant optic atrophy, is likely responsible for the ophthalmological anomalies. We hypothesize that the haploinsufficiency of ATPase type 13A4 (ATP13A4) and/or Hairy/Enhancer of Split Drosophila homolog 1 (HES1) contribute to the neuropsychiatric phenotype, while HES1 deletion might underlie the overweight/obesity. In conclusion, we propose a novel contiguous gene syndrome due to a proximal 3q29 deletion variably associated with autism, ID/DD, psychiatric traits and overweight/obesity.

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