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Dive into the research topics where Bree L. Hodgson is active.

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Featured researches published by Bree L. Hodgson.


Annals of Neurology | 2004

Benign familial neonatal-infantile seizures: Characterization of a new sodium channelopathy

Samuel F. Berkovic; Sarah E. Heron; Lucio Giordano; Carla Marini; Renzo Guerrini; Robert E. Kaplan; Antonio Gambardella; Ortrud K. Steinlein; Bronwyn E. Grinton; Joanne T. Dean; Laura Bordo; Bree L. Hodgson; Toshiyuki Yamamoto; John C. Mulley; Federico Zara; Ingrid E. Scheffer

We recently reported mutations in the sodium channel gene SCN2A in two families with benign familial neonatal‐infantile seizures (BFNISs). Here, we aimed to refine the molecular‐clinical correlation of SCN2A mutations in early childhood epilepsies. SCN2A was analyzed in 2 families with probable BFNIS, 9 with possible BFNIS, 10 with benign familial infantile seizures, and in 93 additional families with various early childhood epilepsies. Mutations effecting changes in conserved amino acids were found in two of two probable BFNIS families, in four of nine possible BFNIS families, and in none of the others. Our eight families had six different SCN2A mutations; one mutation (R1319Q) occurred in three families. BFNIS is an autosomal dominant disorder presenting between day 2 and 7 months (mean, 11.2 ± 9.2 weeks) with afebrile secondarily generalized partial seizures; neonatal seizures were not seen in all families. The frequency of seizures varied; some individuals had only a few attacks without treatment and others had clusters of many per day. Febrile seizures were rare. All cases remitted by 12 months. Ictal recordings in four subjects showed onset in the posterior quadrants. SCN2A mutations appear specific for BFNIS; the disorder can now be strongly suspected clinically and the families can be given an excellent prognosis. Ann Neurol 2004


American Journal of Human Genetics | 2008

Array-Based Gene Discovery with Three Unrelated Subjects Shows SCARB2/LIMP-2 Deficiency Causes Myoclonus Epilepsy and Glomerulosclerosis

Samuel F. Berkovic; Leanne M. Dibbens; Alicia Oshlack; Jeremy D. Silver; Marina Katerelos; Danya F. Vears; Renate Lüllmann-Rauch; Judith Blanz; Ke Wei Zhang; Jim Stankovich; Renate M. Kalnins; John P. Dowling; Eva Andermann; Frederick Andermann; Enrico Faldini; Rudi D'Hooge; Lata Vadlamudi; Richard A.L. Macdonell; Bree L. Hodgson; Marta A. Bayly; Judy Savige; John C. Mulley; Gordon K. Smyth; David Anthony Power; Paul Saftig; Melanie Bahlo

Action myoclonus-renal failure syndrome (AMRF) is an autosomal-recessive disorder with the remarkable combination of focal glomerulosclerosis, frequently with glomerular collapse, and progressive myoclonus epilepsy associated with storage material in the brain. Here, we employed a novel combination of molecular strategies to find the responsible gene and show its effects in an animal model. Utilizing only three unrelated affected individuals and their relatives, we used homozygosity mapping with single-nucleotide polymorphism chips to localize AMRF. We then used microarray-expression analysis to prioritize candidates prior to sequencing. The disorder was mapped to 4q13-21, and microarray-expression analysis identified SCARB2/Limp2, which encodes a lysosomal-membrane protein, as the likely candidate. Mutations in SCARB2/Limp2 were found in all three families used for mapping and subsequently confirmed in two other unrelated AMRF families. The mutations were associated with lack of SCARB2 protein. Reanalysis of an existing Limp2 knockout mouse showed intracellular inclusions in cerebral and cerebellar cortex, and the kidneys showed subtle glomerular changes. This study highlights that recessive genes can be identified with a very small number of subjects. The ancestral lysosomal-membrane protein SCARB2/LIMP-2 is responsible for AMRF. The heterogeneous pathology in the kidney and brain suggests that SCARB2/Limp2 has pleiotropic effects that may be relevant to understanding the pathogenesis of other forms of glomerulosclerosis or collapse and myoclonic epilepsies.


Neurology | 2003

Sodium channel α1-subunit mutations in severe myoclonic epilepsy of infancy and infantile spasms

Robyn H. Wallace; Bree L. Hodgson; Bronwyn E. Grinton; R. M. Gardiner; Robert Robinson; Victoria Rodriguez-Casero; Lynette G. Sadleir; J. Morgan; Louise A. Harkin; Leanne M. Dibbens; T. Yamamoto; Eva Andermann; J. C. Mulley; Samuel F. Berkovic; Ingrid E. Scheffer

Background: Mutations in SCN1A, the gene encoding the α1 subunit of the sodium channel, have been found in severe myoclonic epilepsy of infancy (SMEI) and generalized epilepsy with febrile seizures plus (GEFS+). Mutations in SMEI include missense, nonsense, and frameshift mutations more commonly arising de novo in affected patients. This finding is difficult to reconcile with the family history of GEFS+ in a significant proportion of patients with SMEI. Infantile spasms (IS), or West syndrome, is a severe epileptic encephalopathy that is usually symptomatic. In some cases, no etiology is found and there is a family history of epilepsy. Method: The authors screened SCN1A in 24 patients with SMEI and 23 with IS. Results: Mutations were found in 8 of 24 (33%) SMEI patients, a frequency much lower than initial reports from Europe and Japan. One mutation near the carboxy terminus was identified in an IS patient. A family history of seizures was found in 17 of 24 patients with SMEI. Conclusions: The rate of SCN1A mutations in this cohort of SMEI patients suggests that other factors may be important in SMEI. Less severe mutations associated with GEFS+ could interact with other loci to cause SMEI in cases with a family history of GEFS+. This study extends the phenotypic heterogeneity of mutations in SCN1A to include IS.


Nature Genetics | 2013

Mutations in DEPDC5 cause familial focal epilepsy with variable foci

Leanne M. Dibbens; Boukje de Vries; Simona Donatello; Sarah E. Heron; Bree L. Hodgson; Satyan Chintawar; Douglas E. Crompton; James N. Hughes; Susannah T. Bellows; Karl Martin Klein; Petra M.C. Callenbach; Mark Corbett; Alison Gardner; Sara Kivity; Xenia Iona; Brigid M. Regan; Claudia M. Weller; Denis Crimmins; Terence J. O'Brien; Rosa Guerrero-López; John C. Mulley; François Dubeau; Laura Licchetta; Francesca Bisulli; Patrick Cossette; Paul Q. Thomas; Jozef Gecz; José M. Serratosa; Oebele F. Brouwer; Frederick Andermann

The majority of epilepsies are focal in origin, with seizures emanating from one brain region. Although focal epilepsies often arise from structural brain lesions, many affected individuals have normal brain imaging. The etiology is unknown in the majority of individuals, although genetic factors are increasingly recognized. Autosomal dominant familial focal epilepsy with variable foci (FFEVF) is notable because family members have seizures originating from different cortical regions. Using exome sequencing, we detected DEPDC5 mutations in two affected families. We subsequently identified mutations in five of six additional published large families with FFEVF. Study of families with focal epilepsy that were too small for conventional clinical diagnosis with FFEVF identified DEPDC5 mutations in approximately 12% of families (10/82). This high frequency establishes DEPDC5 mutations as a common cause of familial focal epilepsies. Shared homology with G protein signaling molecules and localization in human neurons suggest a role of DEPDC5 in neuronal signal transduction.


American Journal of Human Genetics | 2012

PRRT2 mutations cause benign familial infantile epilepsy and infantile convulsions with choreoathetosis syndrome.

Sarah E. Heron; Bronwyn E. Grinton; Sara Kivity; Zaid Afawi; Sameer M. Zuberi; James N. Hughes; Clair Pridmore; Bree L. Hodgson; Xenia Iona; Lynette G. Sadleir; James T. Pelekanos; Eric Herlenius; Hadassa Goldberg-Stern; Haim Bassan; Eric Haan; Amos D. Korczyn; Alison Gardner; Mark Corbett; Jozef Gecz; Paul Q. Thomas; John C. Mulley; Samuel F. Berkovic; Ingrid E. Scheffer; Leanne M. Dibbens

Benign familial infantile epilepsy (BFIE) is a self-limited seizure disorder that occurs in infancy and has autosomal-dominant inheritance. We have identified heterozygous mutations in PRRT2, which encodes proline-rich transmembrane protein 2, in 14 of 17 families (82%) affected by BFIE, indicating that PRRT2 mutations are the most frequent cause of this disorder. We also report PRRT2 mutations in five of six (83%) families affected by infantile convulsions and choreoathetosis (ICCA) syndrome, a familial syndrome in which infantile seizures and an adolescent-onset movement disorder, paroxysmal kinesigenic choreoathetosis (PKC), co-occur. These findings show that mutations in PRRT2 cause both epilepsy and a movement disorder. Furthermore, PRRT2 mutations elicit pleiotropy in terms of both age of expression (infancy versus later childhood) and anatomical substrate (cortex versus basal ganglia).


Neurology | 2014

GABRA1 and STXBP1: Novel genetic causes of Dravet syndrome

Gemma L. Carvill; Sarah Weckhuysen; Jacinta M. McMahon; Corinna Hartmann; Rikke S. Møller; Helle Hjalgrim; Joseph Cook; Eileen Geraghty; Brian J. O'Roak; Steven Petrou; Alison L. Clarke; Deepak Gill; Lynette G. Sadleir; Hiltrud Muhle; Sarah von Spiczak; Marina Nikanorova; Bree L. Hodgson; Elena V. Gazina; Arvid Suls; Jay Shendure; Leanne M. Dibbens; Ingo Helbig; Samuel F. Berkovic; Ingrid E. Scheffer; Mefford Hc

Objective: To determine the genes underlying Dravet syndrome in patients who do not have an SCN1A mutation on routine testing. Methods: We performed whole-exome sequencing in 13 SCN1A-negative patients with Dravet syndrome and targeted resequencing in 67 additional patients to identify new genes for this disorder. Results: We detected disease-causing mutations in 2 novel genes for Dravet syndrome, with mutations in GABRA1 in 4 cases and STXBP1 in 3. Furthermore, we identified 3 patients with previously undetected SCN1A mutations, suggesting that SCN1A mutations occur in even more than the currently accepted ∼75% of cases. Conclusions: We show that GABRA1 and STXBP1 make a significant contribution to Dravet syndrome after SCN1A abnormalities have been excluded. Our results have important implications for diagnostic testing, clinical management, and genetic counseling of patients with this devastating disorder and their families.


Brain | 2008

Epilepsy and mental retardation limited to females: an under-recognized disorder

Ingrid E. Scheffer; Samantha J. Turner; Leanne M. Dibbens; Marta A. Bayly; Kathryn Friend; Bree L. Hodgson; Linda Burrows; Marie Shaw; Chen Wei; Reinhard Ullmann; Hans-Hilger Ropers; Pierre Szepetowski; Eric Haan; Aziz Mazarib; Zaid Afawi; Miriam Y. Neufeld; P. Ian Andrews; Geoffrey Wallace; Sara Kivity; Dorit Lev; Tally Lerman-Sagie; Christopher P. Derry; Amos D. Korczyn; Jozef Gecz; John C. Mulley; Samuel F. Berkovic

Epilepsy and Mental Retardation limited to Females (EFMR) which links to Xq22 has been reported in only one family. We aimed to determine if there was a distinctive phenotype that would enhance recognition of this disorder. We ascertained four unrelated families (two Australian, two Israeli) where seizures in females were transmitted through carrier males. Detailed clinical assessment was performed on 58 individuals, using a validated seizure questionnaire, neurological examination and review of EEG and imaging studies. Gene localization was examined using Xq22 microsatellite markers. Twenty-seven affected females had a mean seizure onset of 14 months (range 6-36) typically presenting with convulsions. All had convulsive attacks at some stage, associated with fever in 17 out of 27 (63%). Multiple seizure types occurred including tonic-clonic (26), tonic (4), partial (11), absence (5), atonic (3) and myoclonic (4). Seizures ceased at mean 12 years. Developmental progress varied from normal (7), to always delayed (4) to normal followed by regression (12). Intellect ranged from normal to severe intellectual disability (ID), with 67% of females having ID or being of borderline intellect. Autistic (6), obsessive (9) and aggressive (7) features were prominent. EEGs showed generalized and focal epileptiform abnormalities. Five obligate male carriers had obsessional tendencies. Linkage to Xq22 was confirmed (maximum lod 3.5 at = 0). We conclude that EFMR is a distinctive, under-recognized familial syndrome where girls present with convulsions in infancy, often associated with intellectual impairment and autistic features. The unique inheritance pattern with transmission by males is perplexing. Clinical recognition is straightforward in multiplex families due to the unique inheritance pattern; however, this disorder should be considered in smaller families where females alone have seizures beginning in infancy, particularly in the setting of developmental delay. In single cases, diagnosis will depend on identification of the molecular basis.


Annals of Neurology | 2014

Mutations in mammalian target of rapamycin regulator DEPDC5 cause focal epilepsy with brain malformations

Ingrid E. Scheffer; Sarah E. Heron; Brigid M. Regan; Simone Mandelstam; Douglas E. Crompton; Bree L. Hodgson; Laura Licchetta; Federica Provini; Francesca Bisulli; Lata Vadlamudi; Jozef Gecz; Alan Connelly; Paolo Tinuper; Michael G. Ricos; Samuel F. Berkovic; Leanne M. Dibbens

We recently identified DEPDC5 as the gene for familial focal epilepsy with variable foci and found mutations in >10% of small families with nonlesional focal epilepsy. Here we show that DEPDC5 mutations are associated with both lesional and nonlesional epilepsies, even within the same family. DEPDC5‐associated malformations include bottom‐of‐the‐sulcus dysplasia (3 members from 2 families), and focal band heterotopia (1 individual). DEPDC5 negatively regulates the mammalian target of rapamycin (mTOR) pathway, which plays a key role in cell growth. The clinicoradiological phenotypes associated with DEPDC5 mutations share features with the archetypal mTORopathy, tuberous sclerosis, raising the possibility of therapies targeted to this pathway. Ann Neurol 2014;75:782–787


Annals of Neurology | 2010

Augmented currents of an HCN2 variant in patients with febrile seizure syndromes

Leanne M. Dibbens; Christopher A. Reid; Bree L. Hodgson; Evan A. Thomas; Alison M. Phillips; Elena V. Gazina; Brett A. Cromer; Alison L. Clarke; Tallie Z. Baram; Ingrid E. Scheffer; Samuel F. Berkovic; Steven Petrou

The genetic architecture of common epilepsies is largely unknown. HCNs are excellent epilepsy candidate genes because of their fundamental neurophysiological roles. Screening in subjects with febrile seizures and genetic epilepsy with febrile seizures plus revealed that 2.4% carried a common triple proline deletion (delPPP) in HCN2 that was seen in only 0.2% of blood bank controls. Currents generated by mutant HCN2 channels were ∼35% larger than those of controls; an effect revealed using automated electrophysiology and an appropriately powered sample size. This is the first association of HCN2 and familial epilepsy, demonstrating gain of function of HCN2 current as a potential contributor to polygenic epilepsy. ANN NEUROL 2010;67:542–546


Annals of Neurology | 2016

Mutations in the mammalian target of rapamycin pathway regulators NPRL2 and NPRL3 cause focal epilepsy.

Michael G. Ricos; Bree L. Hodgson; Tommaso Pippucci; Akzam Saidin; Yeh Sze Ong; Sarah E. Heron; Laura Licchetta; Francesca Bisulli; Marta A. Bayly; James N. Hughes; Sara Baldassari; Flavia Palombo; Margherita Santucci; Stefano Meletti; Samuel F. Berkovic; Guido Rubboli; Paul Q. Thomas; Ingrid E. Scheffer; Paolo Tinuper; Joel Geoghegan; Andreas W. Schreiber; Leanne M. Dibbens

Focal epilepsies are the most common form observed and have not generally been considered to be genetic in origin. Recently, we identified mutations in DEPDC5 as a cause of familial focal epilepsy. In this study, we investigated whether mutations in the mammalian target of rapamycin (mTOR) regulators, NPRL2 and NPRL3, also contribute to cases of focal epilepsy.

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Leanne M. Dibbens

University of South Australia

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Sarah E. Heron

University of South Australia

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Jozef Gecz

University of Adelaide

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Xenia Iona

University of South Australia

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