Person:

Gusella, James

Loading...
Profile Picture

Email Address

AA Acceptance Date

Birth Date

Research Projects

Organizational Units

Job Title

Last Name

Gusella

First Name

James

Name

Gusella, James

Search Results

Now showing 1 - 10 of 29
  • Publication

    Genomic profiling distinguishes familial multiple and sporadic multiple meningiomas

    (BioMed Central, 2009) Engler, David A; Roy, Jennifer; Shen, Yiping; Nunes, Fabio Pereira; Stemmer-Rachamimov, Anat; James, Marianne F.; Mohapatra, Gayatry; Plotkin, Scott; Betensky, Rebecca; Ramesh, Vijaya; Gusella, James

    Background: Meningiomas may occur either as familial tumors in two distinct disorders, familial multiple meningioma and neurofibromatosis 2 (NF2), or sporadically, as either single or multiple tumors in individuals with no family history. Meningiomas in NF2 and approximately 60% of sporadic meningiomas involve inactivation of the NF2 locus, encoding the tumor suppressor merlin on chromosome 22q. This study was undertaken to establish whether genomic profiling could distinguish familial multiple meningiomas from sporadic solitary and sporadic multiple meningiomas. Methods: We compared 73 meningiomas presenting as sporadic solitary (64), sporadic multiple (5) and familial multiple (4) tumors using genomic profiling by array comparative genomic hybridization (array CGH). Results: Sporadic solitary meningiomas revealed genomic rearrangements consistent with at least two mechanisms of tumor initiation, as unsupervised cluster analysis readily distinguished tumors with chromosome 22 deletion (associated with loss of the NF2 tumor suppressor) from those without chromosome 22 deletion. Whereas sporadic meningiomas without chromosome 22 loss exhibited fewer chromosomal imbalance events overall, tumors with chromosome 22 deletion further clustered into two major groups that largely, though not perfectly, matched with their benign (WHO Grade I) or advanced (WHO Grades II and III) histological grade, with the latter exhibiting a significantly greater degree of genomic imbalance (P < 0.001). Sporadic multiple meningiomas showed a frequency of genomic imbalance events comparable to the atypical grade solitary tumors. By contrast, familial multiple meningiomas displayed no imbalances, supporting a distinct mechanism for the origin for these tumors. Conclusion: Genomic profiling can provide an unbiased adjunct to traditional meningioma classification and provides a basis for exploring the different genetic underpinnings of tumor initiation and progression. Most importantly, the striking difference observed between sporadic and familial multiple meningiomas indicates that genomic profiling can provide valuable information for differential diagnosis of subjects with multiple meningiomas and for considering the risk for tumor occurrence in their family members.

  • Publication

    Complex Reorganization and Predominant Non-Homologous Repair Following Chromosomal Breakage in Karyotypically Balanced Germline Rearrangements and Transgenic Integration

    (Nature Publishing Group, 2012) Chiang, Colby; Jacobsen, Jessie C.; Ernst, Carl; Hanscom, Carrie; Heilbut, Adrian; Blumenthal, Ian; Mills, Ryan E.; Kirby, Andrew; Rudiger, Skye R.; McLaughlan, Clive J.; Bawden, C. Simon; Reid, Suzanne J.; Faull, Richard L. M.; Snell, Russell G.; Hall, Ira M.; Ohsumi, Toshiro K.; Shen, Yiping; Borowsky, Mark L; Daly, Mark; Lee, Charles; Morton, Cynthia; MacDonald, Marcy; Gusella, James; Talkowski, Michael; Lindgren, Amelia M.

    We defined the genetic landscape of balanced chromosomal rearrangements at nucleotide resolution by sequencing 141 breakpoints from cytogenetically-interpreted translocations and inversions. We confirm that the recently described phenomenon of “chromothripsis” (massive chromosomal shattering and reorganization) is not unique to cancer cells but also occurs in the germline where it can resolve to a karyotypically balanced state with frequent inversions. We detected a high incidence of complex rearrangements (19.2%) and substantially less reliance on microhomology (31%) than previously observed in benign CNVs. We compared these results to experimentally-generated DNA breakage-repair by sequencing seven transgenic animals, and revealed extensive rearrangement of the transgene and host genome with similar complexity to human germline alterations. Inversion is the most common rearrangement, suggesting that a combined mechanism involving template switching and non-homologous repair mediates the formation of balanced complex rearrangements that are viable, stably replicated and transmitted unaltered to subsequent generations.

  • Publication

    KCTD13 is a Major Driver of Mirrored Neuroanatomical Phenotypes Associated with the 16p11.2 CNV

    (Nature Publishing Group, 2012) Golzio, Christelle; Willer, Jason; Oh, Edwin C; Taniguchi, Yu; Jacquemont, Sébastien; Reymond, Alexandre; Sun, Mei; Sawa, Akira; Kamiya, Atsushi; Beckmann, Jacques S; Katsanis, Nicholas; Talkowski, Michael; Gusella, James

    Copy number variants (CNVs) are major contributors to genetic disorders1. We have dissected a region of the 16p11.2 chromosome—which encompasses 29 genes—that confers susceptibility to neurocognitive defects when deleted or duplicated2, 3. Overexpression of each human transcript in zebrafish embryos identified KCTD13 as the sole message capable of inducing the microcephaly phenotype associated with the 16p11.2 duplication2, 3, 4, 5, whereas suppression of the same locus yielded the macrocephalic phenotype associated with the 16p11.2 deletion5, 6, capturing the mirror phenotypes of humans. Analyses of zebrafish and mouse embryos suggest that microcephaly is caused by decreased proliferation of neuronal progenitors with concomitant increase in apoptosis in the developing brain, whereas macrocephaly arises by increased proliferation and no changes in apoptosis. A role for KCTD13 dosage changes is consistent with autism in both a recently reported family with a reduced 16p11.2 deletion and a subject reported here with a complex 16p11.2 rearrangement involving de novo structural alteration of KCTD13. Our data suggest that KCTD13 is a major driver for the neurodevelopmental phenotypes associated with the 16p11.2 CNV, reinforce the idea that one or a small number of transcripts within a CNV can underpin clinical phenotypes, and offer an efficient route to identifying dosage-sensitive loci.

  • Publication

    Huntingtin Facilitates Polycomb Repressive Complex 2

    (Oxford University Press, 2009) Woda, Juliana M.; Song, Ji-Joon; Lloret, Alejandro; Abeyrathne, Priyanka D.; Gregory, Gillian; Lee, Jong-Min; Conlon, Ronald A.; Seong, Ihn; Woo, Caroline; Wheeler, Vanessa; Walz, Thomas; Kingston, Robert; Gusella, James; MacDonald, Marcy

    Huntington's disease (HD) is caused by expansion of the polymorphic polyglutamine segment in the huntingtin protein. Full-length huntingtin is thought to be a predominant HEAT repeat α-solenoid, implying a role as a facilitator of macromolecular complexes. Here we have investigated huntingtin's domain structure and potential intersection with epigenetic silencer polycomb repressive complex 2 (PRC2), suggested by shared embryonic deficiency phenotypes. Analysis of a set of full-length recombinant huntingtins, with different polyglutamine regions, demonstrated dramatic conformational flexibility, with an accessible hinge separating two large α-helical domains. Moreover, embryos lacking huntingtin exhibited impaired PRC2 regulation of Hox gene expression, trophoblast giant cell differentiation, paternal X chromosome inactivation and histone H3K27 tri-methylation, while full-length endogenous nuclear huntingtin in wild-type embryoid bodies (EBs) was associated with PRC2 subunits and was detected with trimethylated histone H3K27 at Hoxb9. Supporting a direct stimulatory role, full-length recombinant huntingtin significantly increased the histone H3K27 tri-methylase activity of reconstituted PRC2 in vitro, and structure–function analysis demonstrated that the polyglutamine region augmented full-length huntingtin PRC2 stimulation, both in (Hdh^{Q111}) EBs and in vitro, with reconstituted PRC2. Knowledge of full-length huntingtin's α-helical organization and role as a facilitator of the multi-subunit PRC2 complex provides a novel starting point for studying PRC2 regulation, implicates this chromatin repressive complex in a neurodegenerative disorder and sets the stage for further study of huntingtin's molecular function and the impact of its modulatory polyglutamine region.

  • Publication

    Reversal of a Full-length Mutant Huntingtin Neuronal Cell Phenotype by Chemical Inhibitors of Polyglutamine-mediated Aggregation

    (BioMed Central, 2005) Wang, Jin; Gines, Silvia; MacDonald, Marcy; Gusella, James

    Background: Huntington's disease (HD) is an inherited neurodegenerative disorder triggered by an expanded polyglutamine tract in huntingtin that is thought to confer a new conformational property on this large protein. The propensity of small amino-terminal fragments with mutant, but not wild-type, glutamine tracts to self-aggregate is consistent with an altered conformation but such fragments occur relatively late in the disease process in human patients and mouse models expressing full-length mutant protein. This suggests that the altered conformational property may act within the full-length mutant huntingtin to initially trigger pathogenesis. Indeed, genotype-phenotype studies in HD have defined genetic criteria for the disease initiating mechanism, and these are all fulfilled by phenotypes associated with expression of full-length mutant huntingtin, but not amino-terminal fragment, in mouse models. As the in vitro aggregation of amino-terminal mutant huntingtin fragment offers a ready assay to identify small compounds that interfere with the conformation of the polyglutamine tract, we have identified a number of aggregation inhibitors, and tested whether these are also capable of reversing a phenotype caused by endogenous expression of mutant huntingtin in a striatal cell line from the (Hdh^{Q111/Q111}) knock-in mouse. Results: We screened the NINDS Custom Collection of 1,040 FDA approved drugs and bioactive compounds for their ability to prevent in vitro aggregation of Q58-htn 1–171 amino terminal fragment. Ten compounds were identified that inhibited aggregation with (IC_{50}) < 15 μM, including gossypol, gambogic acid, juglone, celastrol, sanguinarine and anthralin. Of these, both juglone and celastrol were effective in reversing the abnormal cellular localization of full-length mutant huntingtin observed in mutant (Hdh^{Q111/Q111}) striatal cells. Conclusions: At least some compounds identified as aggregation inhibitors also prevent a neuronal cellular phenotype caused by full-length mutant huntingtin, suggesting that in vitro fragment aggregation can act as a proxy for monitoring the disease-producing conformational property in HD. Thus, identification and testing of compounds that alter in vitro aggregation is a viable approach for defining potential therapeutic compounds that may act on the deleterious conformational property of full-length mutant huntingtin.

  • Publication

    Screening for Familial APP Mutations in Sporadic Cerebral Amyloid Angiopathy

    (Public Library of Science, 2010) Biffi, Alessandro; Plourde, Anna; Shen, Yiping; Onofrio, Robert; Smith, Eric E.; Frosch, Matthew; Prada, Claudia M.; Gusella, James; Greenberg, Steven; Rosand, Jonathan

    Background: Advances in genetic technology have revealed that variation in the same gene can cause both rare familial and common sporadic forms of the same disease. Cerebral amyloid angiopathy (CAA), a common cause of symptomatic intracerebral hemorrhage (ICH) in the elderly, can also occur in families in an autosomal dominant pattern. The majority of affected families harbor mutations in the Beta amyloid Peptide (Aβ) coding region of the gene for amyloid precursor protein (APP) or have duplications of chromosomal segments containing APP. Methodology/Principal Findings: A total of 58 subjects with a diagnosis of probable or definite CAA according to validated criteria were included in the present study. We sequenced the Aβ coding region of APP in 58 individuals and performed multiplex ligation-dependent probe amplification to determine APP gene dosage in 60. No patient harbored a known or novel APP mutation or gene duplication. The frequency of mutations investigated in the present study is estimated to range from 0% to 8% in individuals with probable CAA in the general population, based on the ascertained sample size. Conclusions/Significance: We found no evidence that variants at loci associated with familial CAA play a role in sporadic CAA. Based on our findings, these rare highly-penetrant mutations are unlikely to be seen in sporadic CAA patients. Therefore, our results do not support systematic genetic screening of CAA patients who lack a strong family history of hemorrhage or dementia.

  • Publication

    Genome-wide Significance for a Modifier of Age at Neurological Onset in Huntington's Disease at 6q23-24: The HD MAPS Study

    (BioMed Central, 2006) Li, Jian-Liang; Hayden, Michael R; Warby, Simon C; Durr, Alexandra; Morrison, Patrick J; Nance, Martha; Ross, Christopher A; Margolis, Russell L; Rosenblatt, Adam; Squitieri, Ferdinando; Frati, Luigi; Gómez-Tortosa, Estrella; García, Carmen Ayuso; Suchowersky, Oksana; Klimek, Mary Lou; Trent, Ronald JA; McCusker, Elizabeth; Novelletto, Andrea; Frontali, Marina; Paulsen, Jane S; Jones, Randi; Ashizawa, Tetsuo; Lazzarini, Alice; Prakash, Ranjana; Djoussé, Luc; Mysore, Jayalakshmi Srinidhi; Gillis, Tammy; Hakky, Michael; Cupples, L Adrienne; Saint-Hilaire, Marie H; Penney, John B; Harrison, Madaline B; Perlman, Susan L; Zanko, Andrea; Abramson, Ruth K; Lechich, Anthony J; Duckett, Ayana; Marder, Karen; Conneally, P Michael; Wheeler, Vanessa; Xu, G; Cha, Jang-Ho; Hersch, Steven; Gusella, James; MacDonald, Marcy; Myers, Richard Hepworth

    Background: Age at onset of Huntington's disease (HD) is correlated with the size of the abnormal CAG repeat expansion in the HD gene; however, several studies have indicated that other genetic factors also contribute to the variability in HD age at onset. To identify modifier genes, we recently reported a whole-genome scan in a sample of 629 affected sibling pairs from 295 pedigrees, in which six genomic regions provided suggestive evidence for quantitative trait loci (QTL), modifying age at onset in HD. Methods: In order to test the replication of this finding, eighteen microsatellite markers, three from each of the six genomic regions, were genotyped in 102 newly recruited sibling pairs from 69 pedigrees, and data were analyzed, using a multipoint linkage variance component method, in the follow-up sample and the combined sample of 352 pedigrees with 753 sibling pairs. Results: Suggestive evidence for linkage at 6q23-24 in the follow-up sample (LOD = 1.87, p = 0.002) increased to genome-wide significance for linkage in the combined sample (LOD = 4.05, p = 0.00001), while suggestive evidence for linkage was observed at 18q22, in both the follow-up sample (LOD = 0.79, p = 0.03) and the combined sample (LOD = 1.78, p = 0.002). Epistatic analysis indicated that there is no interaction between 6q23-24 and other loci. Conclusion: In this replication study, linkage for modifier of age at onset in HD was confirmed at 6q23-24. Evidence for linkage was also found at 18q22. The demonstration of statistically significant linkage to a potential modifier locus opens the path to location cloning of a gene capable of altering HD pathogenesis, which could provide a validated target for therapeutic development in the human patient.

  • Publication

    The Gly2019Ser Mutation in LRRK2 is not Fully Penetrant in Familial Parkinson's Disease: The GenePD Study

    (BioMed Central, 2008) Latourelle, Jeanne C; Lew, Mark F; Suchowersky, Oksana; Klein, Christine; Golbe, Lawrence I; Mark, Margery H; Wooten, G Frederick; Watts, Ray L; Guttman, Mark; Racette, Brad A; Perlmutter, Joel S; Ahmed, Anwar; Shill, Holly A; Singer, Carlos; Goldwurm, Stefano; Pezzoli, Gianni; Zini, Michela; Saint-Hilaire, Marie H; Hendricks, Audrey E; Williamson, Sally; Nagle, Michael W; Wilk, Jemma B; Massood, Tiffany; Huskey, Karen W; Laramie, Jason M; DeStefano, Anita L; Baker, Kenneth B; Itin, Ilia; Litvan, Irene; Nicholson, Garth; Corbett, Alastair; Nance, Martha; Drasby, Edward; Isaacson, Stuart; Burn, David J; Chinnery, Patrick F; Pramstaller, Peter P; Al-hinti, Jomana; Moller, Anette T; Ostergaard, Karen; Roxburgh, Richard; Snow, Barry; Slevin, John T; Cambi, Franca; Growdon, John; Gusella, James; Sun, Mei; Sherman, Scott J; Myers, Richard Hepworth

    Background: We report age-dependent penetrance estimates for leucine-rich repeat kinase 2 (LRRK2)-related Parkinson's disease (PD) in a large sample of familial PD. The most frequently seen LRRK2 mutation, Gly2019Ser (G2019S), is associated with approximately 5 to 6% of familial PD cases and 1 to 2% of idiopathic cases, making it the most common known genetic cause of PD. Studies of the penetrance of LRRK2 mutations have produced a wide range of estimates, possibly due to differences in study design and recruitment, including in particular differences between samples of familial PD versus sporadic PD. Methods: A sample, including 903 affected and 58 unaffected members from 509 families ascertained for having two or more PD-affected members, 126 randomly ascertained PD patients and 197 controls, was screened for five different LRRK2 mutations. Penetrance was estimated in families of LRRK2 carriers with consideration of the inherent bias towards increased penetrance in a familial sample. Results: Thirty-one out of 509 families with multiple cases of PD (6.1%) were found to have 58 LRRK2 mutation carriers (6.4%). Twenty-nine of the 31 families had G2019S mutations while two had R1441C mutations. No mutations were identified among controls or unaffected relatives of PD cases. Nine PD-affected relatives of G2019S carriers did not carry the LRRK2 mutation themselves. At the maximum observed age range of 90 to 94 years, the unbiased estimated penetrance was 67% for G2019S families, compared with a baseline PD risk of 17% seen in the non-LRRK2-related PD families. Conclusion: Lifetime penetrance of LRRK2 estimated in the unascertained relatives of multiplex PD families is greater than that reported in studies of sporadically ascertained LRRK2 cases, suggesting that inherited susceptibility factors may modify the penetrance of LRRK2 mutations. In addition, the presence of nine PD phenocopies in the LRRK2 families suggests that these susceptibility factors may also increase the risk of non-LRRK2-related PD. No differences in penetrance were found between men and women, suggesting that the factors that influence penetrance for LRRK2 carriers are independent of the factors which increase PD prevalence in men.

  • Publication

    Lack of Association of Rare Functional Variants in TSC1/TSC2 Genes with Autism Spectrum Disorder

    (BioMed Central, 2013) Bahl, Samira; Chiang, Colby; Beauchamp, Roberta L; Neale, Benjamin; Daly, Mark; Gusella, James; Talkowski, Michael; Ramesh, Vijaya

    Background: Autism spectrum disorder (ASD) is reported in 30 to 60% of patients with tuberous sclerosis complex (TSC) but shared genetic mechanisms that exist between TSC-associated ASD and idiopathic ASD have yet to be determined. Through the small G-protein Rheb, the TSC proteins, hamartin and tuberin, negatively regulate mammalian target of rapamycin complex 1 (mTORC1) signaling. It is well established that mTORC1 plays a pivotal role in neuronal translation and connectivity, so dysregulation of mTORC1 signaling could be a common feature in many ASDs. Pam, an E3 ubiquitin ligase, binds to TSC proteins and regulates mTORC1 signaling in the CNS, and the FBXO45-Pam ubiquitin ligase complex plays an essential role in neurodevelopment by regulating synapse formation and growth. Since mounting evidence has established autism as a disorder of the synapses, we tested whether rare genetic variants in TSC1, TSC2, MYCBP2, RHEB and FBXO45, genes that regulate mTORC1 signaling and/or play a role in synapse development and function, contribute to the pathogenesis of idiopathic ASD. Methods: Exons and splice junctions of TSC1, TSC2, MYCBP2, RHEB and FBXO45 were resequenced for 300 ASD trios from the Simons Simplex Collection (SSC) using a pooled PCR amplification and next-generation sequencing strategy, targeted to the discovery of deleterious coding variation. These detected, potentially functional, variants were confirmed by Sanger sequencing of the individual samples comprising the pools in which they were identified. Results: We identified a total of 23 missense variants in MYCBP2, TSC1 and TSC2. These variants exhibited a near equal distribution between the proband and parental pools, with no statistical excess in ASD cases (P > 0.05). All proband variants were inherited. No putative deleterious variants were confirmed in RHEB and FBXO45. Three intronic variants, identified as potential splice defects in MYCBP2 did not show aberrant splicing upon RNA assay. Overall, we did not find an over-representation of ASD causal variants in the genes studied to support them as contributors to autism susceptibility. Conclusions: We did not observe an enrichment of rare functional variants in TSC1 and TSC2 genes in our sample set of 300 trios.

  • Publication

    Candidate glutamatergic and dopaminergic pathway gene variants do not influence Huntington’s disease motor onset

    (Springer Berlin Heidelberg, 2013) Ramos, Eliana Marisa; Latourelle, Jeanne C.; Gillis, Tammy; Mysore, Jayalakshmi S.; Squitieri, Ferdinando; Di Pardo, Alba; Di Donato, Stefano; Gellera, Cinzia; Hayden, Michael R.; Morrison, Patrick J.; Nance, Martha; Ross, Christopher A.; Margolis, Russell L.; Gomez-Tortosa, Estrella; Ayuso, Carmen; Suchowersky, Oksana; Trent, Ronald J.; McCusker, Elizabeth; Novelletto, Andrea; Frontali, Marina; Jones, Randi; Ashizawa, Tetsuo; Frank, Samuel; Saint-Hilaire, Marie-Helene; Hersch, Steven; Rosas, Herminia; Lucente, Diane; Harrison, Madaline B.; Zanko, Andrea; Abramson, Ruth K.; Marder, Karen; Gusella, James; Lee, Jong-Min; Alonso, Isabel; Sequeiros, Jorge; Myers, Richard H.; MacDonald, Marcy

    Huntington’s disease (HD) is a neurodegenerative disorder characterized by motor, cognitive, and behavioral disturbances. It is caused by the expansion of the HTT CAG repeat, which is the major determinant of age at onset (AO) of motor symptoms. Aberrant function of N-methyl-D-aspartate receptors and/or overexposure to dopamine has been suggested to cause significant neurotoxicity, contributing to HD pathogenesis. We used genetic association analysis in 1,628 HD patients to evaluate candidate polymorphisms in N-methyl-D-aspartate receptor subtype genes (GRIN2A rs4998386 and rs2650427, and GRIN2B rs1806201) and functional polymorphisms in genes in the dopamine pathway (DAT1 3′ UTR 40-bp variable number tandem repeat (VNTR), DRD4 exon 3 48-bp VNTR, DRD2 rs1800497, and COMT rs4608) as potential modifiers of the disease process. None of the seven polymorphisms tested was found to be associated with significant modification of motor AO, either in a dominant or additive model, after adjusting for ancestry. The results of this candidate-genetic study therefore do not provide strong evidence to support a modulatory role for these variations within glutamatergic and dopaminergic genes in the AO of HD motor manifestations.