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Dive into the research topics where Frits A. Beemer is active.

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Featured researches published by Frits A. Beemer.


Journal of Medical Genetics | 1997

Spectrum of clinical features associated with interstitial chromosome 22q11 deletions: a European collaborative study.

A Ryan; Judith A. Goodship; David I. Wilson; Nicole Philip; A. Levy; H Seidel; S Schuffenhauer; H Oechsler; M Prieur; Alain Aurias; F L Raymond; J Clayton-Smith; E Hatchwell; Carole McKeown; Frits A. Beemer; Bruno Dallapiccola; Giuseppe Novelli; Jane A. Hurst; J Ignatius; A J Green; Robin M. Winter; Louise Brueton; K Brøndum-Nielsen; Peter J. Scambler

We present clinical data on 558 patients with deletions within the DiGeorge syndrome critical region of chromosome 22q11. Twenty-eight percent of the cases where parents had been tested had inherited deletions, with a marked excess of maternally inherited deletions (maternal 61, paternal 18). Eight percent of the patients had died, over half of these within a month of birth and the majority within 6 months. All but one of the deaths were the result of congenital heart disease. Clinically significant immunological problems were very uncommon. Nine percent of patients had cleft palate and 32% had velopharyngeal insufficiency, 60% of patients were hypocalcaemic, 75% of patients had cardiac problems, and 36% of patients who had abdominal ultrasound had a renal abnormality. Sixty-two percent of surviving patients were developmentally normal or had only mild learning problems. The majority of patients were constitutionally small, with 36% of patients below the 3rd centile for either height or weight parameters.


Nature Genetics | 2000

Identification of the familial cylindromatosis tumour-suppressor gene

Graham R. Bignell; William Warren; Sheila Seal; Meiko Takahashi; Elizabeth A. Rapley; Rita Barfoot; Helen Green; Carolanne Brown; Patrick J. Biggs; Sunil R. Lakhani; Chris Jones; Juliana E. Hansen; Edward Blair; Benedikt Hofmann; Reiner Siebert; Gwen Turner; D. Gareth Evans; Connie Schrander-Stumpel; Frits A. Beemer; Ans van den Ouweland; Dicky Halley; Bertrand Delpech; Mark G. Cleveland; Irene M. Leigh; Jaakko Leisti; Sonja A. Rasmussen; Margaret R. Wallace; Christiane Fenske; Piu Banerjee; Naoki Oiso

Familial cylindromatosis is an autosomal dominant genetic predisposition to multiple tumours of the skin appendages. The susceptibility gene (CYLD) has previously been localized to chromosome 16q and has the genetic attributes of a tumour-suppressor gene (recessive oncogene). Here we have identified CYLD by detecting germline mutations in 21 cylindromatosis families and somatic mutations in 1 sporadic and 5 familial cylindromas. All mutations predict truncation or absence of the encoded protein. CYLD encodes three cytoskeletal-associated-protein–glycine-conserved (CAP–GLY) domains, which are found in proteins that coordinate the attachment of organelles to microtubules. CYLD also has sequence homology to the catalytic domain of ubiquitin carboxy-terminal hydrolases (UCH).


Nature Genetics | 2000

MSX1 mutation is associated with orofacial clefting and tooth agenesis in humans

M. J. van den Boogaard; M. Dorland; Frits A. Beemer; H. K. P. Van Amstel

A Dutch family with tooth agenesis and various combinations of cleft palate only and cleft lip and cleft palate showed a nonsense mutation (Ser104stop) in exon 1 of MSX1. The mutant phenotype of the family is similar to that of the Msx1-mutant mouse.


The New England Journal of Medicine | 1994

Clinical Screening as Compared with DNA Analysis in Families with Multiple Endocrine Neoplasia Type 2A

Cornelis J. M. Lips; Rudy M. Landsvater; Jo W.M. Höppener; Rolf A. Geerdink; Geert H. Blijham; Joke M. Jansen-Schillhorn van Veen; Adriaan van Gils; Mireille J. De Wit; Richard Zewald; Marianne Berends; Frits A. Beemer; Joanneke Brouwers-Smalbraak; R. Jansen; Hans Kristian Ploos van Amstel; Theo van Vroonhoven; Thea M. Vroom

BACKGROUND Multiple endocrine neoplasia type 2A (MEN-2A) is characterized by medullary thyroid carcinoma in combination with pheochromocytoma and sometimes parathyroid adenoma. Missense mutations in the RET proto-oncogene are associated with MEN-2A. Their detection by DNA analysis allows the identification of carriers of the gene, in whom the risk of medullary thyroid carcinoma is 100 percent. We compared the reliability of biochemical tests with that of DNA analysis in identifying carriers of the MEN2A gene. METHODS Starting in 1975, we screened 300 subjects in four large families with MEN-2A for expression of the disease, using measurements of plasma calcitonin after stimulation with pentagastrin or calcium and urinary excretion of catecholamines and catecholamine metabolites. We tested for carrier status by DNA analysis, including linkage analysis, and more recently by analysis of mutations in the RET gene. RESULTS Of 80 MEN2A gene carriers (in 61 of whom carrier status was proved by DNA analysis), 66 had abnormal plasma calcitonin values and medullary thyroid carcinoma. Fourteen young carriers had normal results of plasma calcitonin tests. In 8 of these 14, thyroidectomy revealed small foci of medullary thyroid carcinoma; the remaining 6 have not yet been operated on. Of the other 220 family members, 68 were found by DNA analysis not to carry the MEN2A gene. None of these 68 subjects had medullary thyroid carcinoma or pheochromocytoma; 6 had elevated plasma calcitonin concentrations and underwent thyroidectomy but had only C-cell hyperplasia. CONCLUSIONS Unlike biochemical tests, DNA analysis permits the unambiguous identification of MEN2A gene carriers.


American Journal of Human Genetics | 2000

Novel HOXA13 Mutations and the Phenotypic Spectrum of Hand-Foot-Genital Syndrome

Frances R. Goodman; Chiara Bacchelli; Angela F. Brady; Louise Brueton; Jean Pierre Fryns; Douglas P. Mortlock; Jeffrey W. Innis; Lewis B. Holmes; Alan E. Donnenfeld; Murray Feingold; Frits A. Beemer; Raoul C. M. Hennekam; Peter J. Scambler

Hand-foot-genital syndrome (HFGS) is a rare, dominantly inherited condition affecting the distal limbs and genitourinary tract. A nonsense mutation in the homeobox of HOXA13 has been identified in one affected family, making HFGS the second human syndrome shown to be caused by a HOX gene mutation. We have therefore examined HOXA13 in two new and four previously reported families with features of HFGS. In families 1, 2, and 3, nonsense mutations truncating the encoded protein N-terminal to or within the homeodomain produce typical limb and genitourinary abnormalities; in family 4, an expansion of an N-terminal polyalanine tract produces a similar phenotype; in family 5, a missense mutation, which alters an invariant domain, produces an exceptionally severe limb phenotype; and in family 6, in which limb abnormalities were atypical, no HOXA13 mutation could be detected. Mutations in HOXA13 can therefore cause more-severe limb abnormalities than previously suspected and may act by more than one mechanism.


Nature Genetics | 2008

tRNA splicing endonuclease mutations cause pontocerebellar hypoplasia

Birgit Budde; Yasmin Namavar; Peter G. Barth; Bwee Tien Poll-The; Gudrun Nürnberg; Christian Becker; Fred van Ruissen; Marian A. J. Weterman; Kees Fluiter; Erik T. Te Beek; Eleonora Aronica; Marjo S. van der Knaap; Wolfgang Höhne; Mohammad R. Toliat; Yanick J. Crow; Maja Steinlin; Thomas Voit; Filip Roelens; Wim Brussel; Knut Brockmann; Mårten Kyllerman; Eugen Boltshauser; Gerhard Hammersen; M.A.A.P. Willemsen; Lina Basel-Vanagaite; Ingeborg Krägeloh-Mann; Linda S. de Vries; László Sztriha; Francesco Muntoni; Colin D. Ferrie

Pontocerebellar hypoplasias (PCH) represent a group of neurodegenerative autosomal recessive disorders with prenatal onset, atrophy or hypoplasia of the cerebellum, hypoplasia of the ventral pons, microcephaly, variable neocortical atrophy and severe mental and motor impairments. In two subtypes, PCH2 and PCH4, we identified mutations in three of the four different subunits of the tRNA-splicing endonuclease complex. Our findings point to RNA processing as a new basic cellular impairment in neurological disorders.


American Journal of Human Genetics | 2003

Homozygous mutations in IHH cause acrocapitofemoral dysplasia, an autosomal recessive disorder with cone- shaped epiphyses in hands and hips

Jan Hellemans; Paul Coucke; Andres Giedion; Anne De Paepe; Peter P. G. Kramer; Frits A. Beemer; Geert Mortier

Acrocapitofemoral dysplasia is a recently delineated autosomal recessive skeletal dysplasia, characterized clinically by short stature with short limbs and radiographically by cone-shaped epiphyses, mainly in hands and hips. Genomewide homozygosity mapping in two consanguineous families linked the locus to 2q35-q36 with a maximum two-point LOD score of 8.02 at marker D2S2248. Two recombination events defined the minimal critical region between markers D2S2248 and D2S2151 (3.74 cM). Using a candidate-gene approach, we identified two missense mutations in the amino-terminal signaling domain of the gene encoding Indian hedgehog (IHH). Both affected individuals of family 1 are homozygous for a 137C-->T transition (P46L), and the three patients in family 2 are homozygous for a 569T-->C transition (V190A). The two mutant amino acids are strongly conserved and predicted to be located outside the region where brachydactyly type A-1 mutations are clustered.


PLOS ONE | 2009

Gene-Network Analysis Identifies Susceptibility Genes Related to Glycobiology in Autism

Bert van der Zwaag; Lude Franke; Martin Poot; Ron Hochstenbach; Henk A. Spierenburg; Jacob Vorstman; Emma van Daalen; Maretha V. de Jonge; Nienke E. Verbeek; Eva H. Brilstra; Ruben van 't Slot; Roel A. Ophoff; Michael A. van Es; Hylke M. Blauw; Jan H. Veldink; Jacobine E. Buizer-Voskamp; Frits A. Beemer; Leonard H. van den Berg; Cisca Wijmenga; Hans Kristian Ploos van Amstel; Herman van Engeland; J. Peter H. Burbach; Wouter G. Staal

The recent identification of copy-number variation in the human genome has opened up new avenues for the discovery of positional candidate genes underlying complex genetic disorders, especially in the field of psychiatric disease. One major challenge that remains is pinpointing the susceptibility genes in the multitude of disease-associated loci. This challenge may be tackled by reconstruction of functional gene-networks from the genes residing in these loci. We applied this approach to autism spectrum disorder (ASD), and identified the copy-number changes in the DNA of 105 ASD patients and 267 healthy individuals with Illumina Humanhap300 Beadchips. Subsequently, we used a human reconstructed gene-network, Prioritizer, to rank candidate genes in the segmental gains and losses in our autism cohort. This analysis highlighted several candidate genes already known to be mutated in cognitive and neuropsychiatric disorders, including RAI1, BRD1, and LARGE. In addition, the LARGE gene was part of a sub-network of seven genes functioning in glycobiology, present in seven copy-number changes specifically identified in autism patients with limited co-morbidity. Three of these seven copy-number changes were de novo in the patients. In autism patients with a complex phenotype and healthy controls no such sub-network was identified. An independent systematic analysis of 13 published autism susceptibility loci supports the involvement of genes related to glycobiology as we also identified the same or similar genes from those loci. Our findings suggest that the occurrence of genomic gains and losses of genes associated with glycobiology are important contributors to the development of ASD.


Human Genetics | 2002

Identification of a novel SCA locus (SCA19) in a Dutch autosomal dominant cerebellar ataxia family on chromosome region 1p21-q21

Dineke S. Verbeek; Jurgen H. Schelhaas; Elly F. Ippel; Frits A. Beemer; Peter L. Pearson; Richard J. Sinke

Abstract. We present a linkage study in a four-generation autosomal dominant cerebellar ataxia (ADCA) family of Dutch ancestry. The family shows a clinically and genetically distinct form of ADCA. This neurodegenerative disorder manifests in the family as a relatively mild ataxia syndrome with some additional characteristic symptoms. We have identified a SCA19 locus, approved by the Human Genome Nomenclature Committee that can be assigned to the chromosome region 1p21-q21. Our mutation analysis failed to identify any mutations in the known spinocerebellar ataxia (SCA) genes and linkage analysis excluded the remaining SCA loci. We therefore performed a genome-wide scan with 350 microsatellite markers to identify the location of the disease-causing gene in this family. Multi-point analysis was performed and exclusion maps were generated. Linkage and haplotype analysis revealed linkage to an interval located on chromosome 1. The estimated minimal prevalence of ADCA in the Netherlands is about 3:100,000. To date, sixteen different SCA loci have been identified in ADCA (SCA1–8 and SCA10–17). However, mutation analysis has been commercially available only for the SCA1, 2, 3, 6 and 7 genes. So far, a molecular analysis in these SCA genes cannot be made in about one-third of the ADCA families. Thus, the identification of this new, additional SCA19 locus will contribute to expanding the DNA diagnostic possibilities.


Neuropsychopharmacology | 2009

Proline Affects Brain Function in 22q11DS Children with the Low Activity COMT158 Allele

Jacob Vorstman; Bruce I. Turetsky; Monique E J Sijmens-Morcus; Monique G.M. de Sain; Bert Dorland; Mirjam Sprong; Eric Rappaport; Frits A. Beemer; Beverly S. Emanuel; René S. Kahn; Herman van Engeland; Chantal Kemner

The association between the 22q11.2 deletion syndrome (22q11DS) and psychiatric disorders, particularly psychosis, suggests a causal relationship between 22q11DS genes and abnormal brain function. The genes catechol-O-methyl-transferase (COMT) and proline dehydrogenase both reside within the commonly deleted region of 22q11.2. COMT activity and proline levels may therefore be altered in 22q11DS individuals. Associations of both COMT158 genotype and elevated serum proline levels with abnormal brain function have been reported. Fifty-six 22q11DS children and 75 healthy controls were assessed on physiological measures of brain function, including prepulse inhibition (PPI) of startle, P50 auditory sensory gating and smooth pursuit eye movements (SPEM). COMT158 genotype and plasma proline levels were determined in the 22q11DS children. We hypothesized an interaction between the COMT158 genotype and proline, predicting the strongest negative effect of high proline on brain function to occur in 22q11DS children who are carriers of the COMTmet allele. Of the three physiological measures, only SPEM and PPI were abnormal in the patient sample. With regard to the SPEM performance, there was a significant interaction between the COMT158 genotype and proline level with significantly decreased SPEM performance in children with high plasma proline levels and the low activity COMTmet allele. A similar interaction effect was not observed with regard to PPI. These findings are consistent with a model in which elevated proline negatively affects brain function by an increase in dopamine in the prefrontal cortex. 22q11DS patients with low dopamine catabolic capacity are therefore especially vulnerable to this functional disruption.

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M. Duran

University of Amsterdam

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Leo P. ten Kate

VU University Medical Center

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