The Experts below are selected from a list of 873 Experts worldwide ranked by ideXlab platform

Jeanpierre Bayley - One of the best experts on this subject based on the ideXlab platform.

  • Models of parent-of-origin tumorigenesis in hereditary paraganglioma
    Seminars in cell & developmental biology, 2015
    Co-Authors: Attje S. Hoekstra, Peter Devilee, Jeanpierre Bayley
    Abstract:

    Paraganglioma and pheochromocytoma are neuroendocrine tumors that originate from either the sympathetic or the parasympathetic branches of the autonomic nervous system. Although 14 different genes have been linked to paraganglioma/pheochromocytoma, a subgroup of these genes is associated with hereditary paraganglioma-pheochromocytoma, the genes related to mitochondrial succinate dehydrogenase (SDH) including SDHA, SDHB, SDHC, SDHD and the assembly factor SDHAF2. Unlike mutations in other SDH subunit genes, mutations in SDHD and SDHAF2 show a remarkable parent-of-origin dependent tumorigenesis in which tumor formation almost exclusively occurs following paternal transmission of the mutation. To date, three different models have sought to explain the striking inheritance pattern seen in SDHD and SDHAF2-linked families. Despite the fact that the models suffer to varying degrees from a lack of experimental verification, all three models have made some attempt to incorporate current data and understanding of this phenomenon. In this review, we discuss our present understanding of this phenomenon and describe the three models that seek to explain the inheritance pattern in SDHD and SDHAF2-linked families.

  • The role of complex II in disease.
    Biochimica et biophysica acta, 2012
    Co-Authors: Attje S. Hoekstra, Jeanpierre Bayley
    Abstract:

    Abstract Genetically defined mitochondrial deficiencies that result in the loss of complex II function lead to a range of clinical conditions. An array of tumor syndromes caused by complex II-associated gene mutations, in both succinate dehydrogenase and associated accessory factor genes ( SDHA , SDHB , SDHC , SDHD , SDHAF1 , SDHAF2 ), have been identified over the last 12 years and include hereditary paraganglioma–pheochromocytomas, a diverse group of renal cell carcinomas, and a specific subtype of gastrointestinal stromal tumors (GIST). In addition, congenital complex II deficiencies due to inherited homozygous mutations of the catalytic components of complex II (SDHA and SDHB) and the SDHAF1 assembly factor lead to childhood disease including Leigh syndrome, cardiomyopathy and infantile leukodystrophies. The role of complex II subunit gene mutations in tumorigenesis has been the subject of intensive research and these data have led to a variety of compelling hypotheses. Among the most widely researched are the stabilization of hypoxia inducible factor 1 under normoxia, and the generation of reactive oxygen species due to defective succinate:ubiquinone oxidoreductase function. Further progress in understanding the role of complex II in disease, and in the development of new therapeutic approaches, is now being hampered by the lack of relevant cell and animal models. This article is part of a Special Issue entitled: Respiratory complex II: Role in cellular physiology and disease.

  • SDHA Immunohistochemistry Detects Germline SDHA Gene Mutations in Apparently Sporadic Paragangliomas and Pheochromocytomas
    The Journal of clinical endocrinology and metabolism, 2011
    Co-Authors: Esther Korpershoek, José Gaal, Nelly Burnichon, Judith Favier, Bram Van Gessel, Lindsey Oudijk, Cécile Badoual, Noémie Gadessaud, Annabelle Venisse, Jeanpierre Bayley
    Abstract:

    Context: Pheochromocytoma-paraganglioma syndrome is caused by mutations in SDHB, SDHC, and SDHD, encoding subunits of succinate dehydrogenase (SDH), and in SDHAF2, required for flavination of SDHA. A recent report described a patient with an abdominal paraganglioma, immunohistochemically negative for SDHA, and identified a causal germline mutation in SDHA. Objective: In this study, we evaluated the significance of SDHA immunohistochemistry in the identification of new patients with SDHA mutations. Setting: This study was performed in the Erasmus Medical Center in Rotterdam (The Netherlands) and the Universite Paris Descartes in Paris (France). Methods: We investigated 316 pheochromocytomas and paragangliomas for SDHA expression. Sequence analysis of SDHA was performed on all tumors that were immunohistochemically negative for SDHA and on a subset of tumors immunohistochemically positive for SDHA. Results: Six tumors were immunohistochemically negative for SDHA. Four tumors from Dutch patients showed a ger...

  • Recent advances in the genetics of SDH-related paraganglioma and pheochromocytoma
    Familial Cancer, 2011
    Co-Authors: Erik F Hensen, Jeanpierre Bayley
    Abstract:

    The last 10 years have seen enormous progress in the field of paraganglioma and pheochromocytoma genetics. The identification of the first gene related to paraganglioma, SDHD , encoding a subunit of mitochondrial succinate dehydrogenase (SDH), was quickly followed by the identification of mutations in SDHC and SDHB . Very recently several new SDH-related genes have been discovered. The SDHAF2 gene encodes an SDH co-factor related to the function of the SDHA subunit, and is currently exclusively associated with head and neck paragangliomas. SDHA itself has now also been identified as a paraganglioma gene, with the recent identification of the first mutation in a patient with extra-adrenal paraganglioma. Another SDH-related co-factor, SDHAF1 , is not currently known to be a tumor suppressor, but may shed some light on the mechanisms of tumorigenesis. An entirely novel gene associated with adrenal pheochromocytoma, TMEM127 , suggests that other new paraganglioma susceptibility genes may await discovery. In addition to these recent discoveries, new techniques related to mutation analysis, including genetic analysis algorithms, SDHB immunohistochemistry, and deletion analysis by MLPA have improved the efficiency and accuracy of genetic analysis. However, many intriguing questions remain, such as the striking differences in the clinical phenotype of genes that encode proteins with an apparently very close functional relationship, and the lack of expression of SDHD and SDHAF2 mutations when inherited via the maternal line. Little is still known of the origins and causes of truly sporadic tumors, and the role of oxygen in the relationships between high-altitude, familial and truly sporadic paragangliomas remains to be elucidated.

  • SDHAF2 (PGL2-SDH5) and hereditary head and neck paraganglioma.
    Clinical cancer research : an official journal of the American Association for Cancer Research, 2011
    Co-Authors: Henricus P M Kunst, Jeanpierre Bayley, Jeroen C Jansen, Henri J L M Timmers, Lies H. Hoefsloot, Martijn Rutten, Jan-pieter De Mönnink, Henri A. M. Marres, Hannie Kremer, Cor W. R. J. Cremers
    Abstract:

    Purpose: Hereditary head and neck paraganglioma (HNPGL) syndromes are associated with mutations in the SDHD(PGL1), SDHC(PGL3) , and SDHB(PGL4) genes encoding succinate dehydrogenase subunits. We recently described mutations in a previously uncharacterized human gene, now called SDHAF2 , and showed that this was the long-sought “imprinted” PGL2 gene. Here, we present a new branch of the Dutch SDHAF2 (PLG2-SDH5) family. Experimental Design: The SDHAF2 family has been collected over a 30-year period. The family described here was linked to PGL2 and at-risk family members were invited to participate in this study. Patients were investigated and treated dependent on tumor size and localization. All family members have now been analyzed for the SDHAF2 mutation status. Results: Among the 57 family members, 23 were linkage positive including 7 risk-free carriers (maternal imprinting). Of the 16 at-risk individuals, 11 had a total of 24 tumors with primarily carotid (71%) and vagal locations (17%). Multifocality of tumors was prominent (91%). Malignancy was not detected. The average age at onset was 33 years, and many patients (42%) were asymptomatic prior to screening. SDHAF2 mutation analysis confirmed the findings of the previously performed linkage analysis without detection of discrepancies. Conclusions: We established the SDHAF2 mutation status of PGL2 family members. Phenotypic characterization of this family confirms the currently exclusive association of SDHAF2 mutations with HNPGL. This SDHAF2 family branch shows a young age at onset and very high levels of multifocality. A high percentage of patients were asymptomatic at time of detection. Clin Cancer Res; 17(2); 247–54. ©2011 AACR .

Esther Korpershoek - One of the best experts on this subject based on the ideXlab platform.

  • loss of maternal chromosome 11 is a signature event in SDHAF2 sdhd and vhl related paragangliomas but less significant in sdhb related paragangliomas
    Oncotarget, 2017
    Co-Authors: Attje S. Hoekstra, Esther Korpershoek, Jeroen C Jansen, Frederik J Hes, Erik F Hensen, Eleonora P M Corssmit, Ekaterina S Jordanova, Anouk N A Van Der Horstschrivers, Cees J Cornelisse, Henricus P M Kunst
    Abstract:

    // Attje S. Hoekstra 1 , Erik F. Hensen 2 , Ekaterina S. Jordanova 3 , Esther Korpershoek 4 , Anouk N.A. van der Horst-Schrivers 5 , Cees Cornelisse 3 , Eleonora P.M. Corssmit 6 , Frederik J. Hes 7 , Jeroen C. Jansen 8 , Henricus P.M. Kunst 9 , Henri J.L.M. Timmers 10 , Adrian Bateman 11 , Diana Eccles 12 , Judith V.M.G. Bovee 3 , Peter Devilee 1, 3 , Jean-Pierre Bayley 1 1 Department of Human Genetics, Leiden University Medical Center, Leiden, The Netherlands 2 Department of Otolaryngology/Head and Neck Surgery, VU University Medical Center, Amsterdam, The Netherlands 3 Department of Pathology, Leiden University Medical Center, Leiden, The Netherlands 4 Department of Pathology, Josephine Nefkens Institute, Erasmus Medical Center Rotterdam, Rotterdam, The Netherlands 5 Department of Endocrinology, University of Groningen, University Medical Center Groningen, Groningen, The Netherlands 6 Department of Endocrinology and Metabolic Diseases, Leiden University Medical Center, Leiden, The Netherlands 7 Department of Clinical Genetics, Leiden University Medical Center, Leiden, The Netherlands 8 Department of Otorhinolaryngology, Leiden University Medical Center, Leiden, The Netherlands 9 Department of Otorhinolaryngology, Head and Neck Surgery, Radboud University Medical Centre, Nijmegen, The Netherlands 10 Department of Medicine, Division of Endocrinology, Radboud University Medical Centre, Nijmegen, The Netherlands 11 Department of Cellular Pathology, University Hospital Southampton, Southampton, UK 12 University of Southampton School of Medicine, Cancer Sciences Division, Somers Cancer Research Building, Southampton, UK Correspondence to: Jean-Pierre Bayley, email: J.P.L.Bayley@lumc.nl Peter Devilee, email: P.Devilee@lumc.nl Keywords: paraganglioma, pheochromocytoma, succinate dehydrogenase, Von Hippel-Lindau, loss of heterozygosity Received: September 06, 2016      Accepted: January 04, 2017      Published: January 14, 2017 ABSTRACT Germline mutations in the succinate dehydrogenase (SDHA, SDHB, SDHC, SDHD, SDHAF2) or Von Hippel-Lindau (VHL) genes cause hereditary paraganglioma/pheochromocytoma. While SDHB (1p36) and VHL (3p25) are associated with autosomal dominant disease, SDHD (11q23) and SDHAF2 (11q13) show a remarkable parent-of-origin effect whereby tumor formation is almost completely dependent on paternal transmission of the mutant allele. Loss of the entire maternal copy of chromosome 11 occurs frequently in SDHD -linked tumors, and has been suggested to be the basis for this typical inheritance pattern. Using fluorescent in situ hybridization, microsatellite marker and SNP array analysis, we demonstrate that loss of the entire copy of chromosome 11 is also frequent in SDHAF2 -related PGLs, occurring in 89% of tumors. Analysis of two imprinted differentially methylated regions (DMR) in 11p15, H19-DMR and KvDMR, showed that this loss always affected the maternal copy of chromosome 11. Likewise, loss of maternal chromosome 11p15 was demonstrated in 85% of SDHD and 75% of VHL -related PGLs/PCCs. By contrast, both copies of chromosome 11 were found to be retained in 62% of SDHB -mutated PGLs/PCCs, while only 31% showed loss of maternal chromosome 11p15. Genome-wide copy number analysis revealed frequent loss of 1p in SDHB mutant tumors and show greater genomic instability compared to SDHD and SDHAF2 . These results show that loss of the entire copy of maternal chromosome 11 is a highly specific and statistically significant event in SDHAF2 , SDHD and VHL -related PGLs/PCCs, but is less significant in SDHB -mutated tumors, suggesting that these tumors have a distinct genetic etiology.

  • toward an improved definition of the genetic and tumor spectrum associated with sdh germ line mutations
    Genetics in Medicine, 2015
    Co-Authors: Lucie Evenepoel, Thomas G Papathomas, Alexandre Persu, Esther Korpershoek, Ronald R. Krijger, Niels M G Krol, Winand N.m. Dinjens
    Abstract:

    The tricarboxylic acid, or Krebs, cycle is central to the cellular metabolism of sugars, lipids, and amino acids; it fuels the mitochondrial respiratory chain for energy generation. In the past decade, mutations in the Krebs-cycle enzymes succinate dehydrogenase, fumarate hydratase, and isocitrate dehydrogenase have been documented to be causally involved in carcinogenesis. This review is focused on the relationship between SDH mutations and the carcinogenic phenotype. The succinate dehydrogenase complex catalyzes the oxidation of succinate to fumarate; mutations in its subunits SDHA, SDHB, SDHC, and SDHD, and in the assembly factor SDHAF2, result in syndromes with distinct tumor types, including pheochromocytoma/paraganglioma, gastrointestinal stromal tumor, and, less often, renal-cell carcinoma and pituitary adenoma. In this study we collected all previously reported SDH mutations with the aim of defining their nature and tumor spectrum. In addition, genotype-phenotype correlations as well as mechanisms of biallelic inactivation were analyzed in the SDH-deficient setting. Finally, we performed bioinformatics analysis using SIFT, Polyphen2, and Mutation Assessor to predict the functional impact of nonsynonymous mutations. The prediction of the latter was further compared with available SDHA and/or SDHB immunohistochemistry data.

  • Toward an improved definition of the genetic and tumor spectrum associated with SDH germ-line mutations
    Genetics in Medicine, 2015
    Co-Authors: Lucie Evenepoel, Thomas G Papathomas, Alexandre Persu, Esther Korpershoek, Ronald R. Krijger, Niels Krol, Winand N.m. Dinjens
    Abstract:

    The tricarboxylic acid, or Krebs, cycle is central to the cellular metabolism of sugars, lipids, and amino acids; it fuels the mitochondrial respiratory chain for energy generation. In the past decade, mutations in the Krebs-cycle enzymes succinate dehydrogenase, fumarate hydratase, and isocitrate dehydrogenase have been documented to be causally involved in carcinogenesis. This review is focused on the relationship between SDH mutations and the carcinogenic phenotype. The succinate dehydrogenase complex catalyzes the oxidation of succinate to fumarate; mutations in its subunits SDHA , SDHB , SDHC , and SDHD , and in the assembly factor SDHAF2 , result in syndromes with distinct tumor types, including pheochromocytoma/paraganglioma, gastrointestinal stromal tumor, and, less often, renal-cell carcinoma and pituitary adenoma. In this study we collected all previously reported SDH mutations with the aim of defining their nature and tumor spectrum. In addition, genotype–phenotype correlations as well as mechanisms of biallelic inactivation were analyzed in the SDH -deficient setting. Finally, we performed bioinformatics analysis using SIFT, Polyphen2, and Mutation Assessor to predict the functional impact of nonsynonymous mutations. The prediction of the latter was further compared with available SDHA and/or SDHB immunohistochemistry data. Genet Med 17 8, 610–620.

  • SDHA Immunohistochemistry Detects Germline SDHA Gene Mutations in Apparently Sporadic Paragangliomas and Pheochromocytomas
    The Journal of clinical endocrinology and metabolism, 2011
    Co-Authors: Esther Korpershoek, José Gaal, Nelly Burnichon, Judith Favier, Bram Van Gessel, Lindsey Oudijk, Cécile Badoual, Noémie Gadessaud, Annabelle Venisse, Jeanpierre Bayley
    Abstract:

    Context: Pheochromocytoma-paraganglioma syndrome is caused by mutations in SDHB, SDHC, and SDHD, encoding subunits of succinate dehydrogenase (SDH), and in SDHAF2, required for flavination of SDHA. A recent report described a patient with an abdominal paraganglioma, immunohistochemically negative for SDHA, and identified a causal germline mutation in SDHA. Objective: In this study, we evaluated the significance of SDHA immunohistochemistry in the identification of new patients with SDHA mutations. Setting: This study was performed in the Erasmus Medical Center in Rotterdam (The Netherlands) and the Universite Paris Descartes in Paris (France). Methods: We investigated 316 pheochromocytomas and paragangliomas for SDHA expression. Sequence analysis of SDHA was performed on all tumors that were immunohistochemically negative for SDHA and on a subset of tumors immunohistochemically positive for SDHA. Results: Six tumors were immunohistochemically negative for SDHA. Four tumors from Dutch patients showed a ger...

  • isocitrate dehydrogenase mutations are rare in pheochromocytomas and paragangliomas
    The Journal of Clinical Endocrinology and Metabolism, 2010
    Co-Authors: José Gaal, Esther Korpershoek, Ronald R. Krijger, Nelly Burnichon, Isabelle Roncelin, Jerome Bertherat, Pierrefrancois Plouin, Annepaule Gimenezroqueplo, Winand N.m. Dinjens
    Abstract:

    Context: Paragangliomas and pheochromocytomas are neuroendocrine tumors that occur sporadically and in the context of inherited tumor syndromes including hereditary paraganglioma-pheochromocytoma syndrome and von Hippel-Lindau disease (VHL). The paraganglioma-pheochromocytoma syndrome is caused by germline-inactivating mutations in the mitochondrial succinate dehydrogenase (SDH) genes SDHB, SDHC, SDHD, or SDHAF2, and VHL is the result of inactivating VHL gene mutations. In SDH- and VHL-related paraganglioma and pheochromocytoma, hypoxia-inducible factor (HIF) stabilization has been described as the causal oncogenic event. Recently, HIF activation has also been found in glioblastoma multiforme, as the result of somatic mutational inactivation of the isocitrate dehydrogenase (IDH) type 1 or type 2 enzymes. These findings suggest that inactivating IDH1 and IDH2 mutations might also play a role in paraganglioma and pheochromocytoma tumorigenesis, especially in non-SDH- or non-VHL-related tumors. Design: We in...

Erik F Hensen - One of the best experts on this subject based on the ideXlab platform.

  • loss of maternal chromosome 11 is a signature event in SDHAF2 sdhd and vhl related paragangliomas but less significant in sdhb related paragangliomas
    Oncotarget, 2017
    Co-Authors: Attje S. Hoekstra, Esther Korpershoek, Jeroen C Jansen, Frederik J Hes, Erik F Hensen, Eleonora P M Corssmit, Ekaterina S Jordanova, Anouk N A Van Der Horstschrivers, Cees J Cornelisse, Henricus P M Kunst
    Abstract:

    // Attje S. Hoekstra 1 , Erik F. Hensen 2 , Ekaterina S. Jordanova 3 , Esther Korpershoek 4 , Anouk N.A. van der Horst-Schrivers 5 , Cees Cornelisse 3 , Eleonora P.M. Corssmit 6 , Frederik J. Hes 7 , Jeroen C. Jansen 8 , Henricus P.M. Kunst 9 , Henri J.L.M. Timmers 10 , Adrian Bateman 11 , Diana Eccles 12 , Judith V.M.G. Bovee 3 , Peter Devilee 1, 3 , Jean-Pierre Bayley 1 1 Department of Human Genetics, Leiden University Medical Center, Leiden, The Netherlands 2 Department of Otolaryngology/Head and Neck Surgery, VU University Medical Center, Amsterdam, The Netherlands 3 Department of Pathology, Leiden University Medical Center, Leiden, The Netherlands 4 Department of Pathology, Josephine Nefkens Institute, Erasmus Medical Center Rotterdam, Rotterdam, The Netherlands 5 Department of Endocrinology, University of Groningen, University Medical Center Groningen, Groningen, The Netherlands 6 Department of Endocrinology and Metabolic Diseases, Leiden University Medical Center, Leiden, The Netherlands 7 Department of Clinical Genetics, Leiden University Medical Center, Leiden, The Netherlands 8 Department of Otorhinolaryngology, Leiden University Medical Center, Leiden, The Netherlands 9 Department of Otorhinolaryngology, Head and Neck Surgery, Radboud University Medical Centre, Nijmegen, The Netherlands 10 Department of Medicine, Division of Endocrinology, Radboud University Medical Centre, Nijmegen, The Netherlands 11 Department of Cellular Pathology, University Hospital Southampton, Southampton, UK 12 University of Southampton School of Medicine, Cancer Sciences Division, Somers Cancer Research Building, Southampton, UK Correspondence to: Jean-Pierre Bayley, email: J.P.L.Bayley@lumc.nl Peter Devilee, email: P.Devilee@lumc.nl Keywords: paraganglioma, pheochromocytoma, succinate dehydrogenase, Von Hippel-Lindau, loss of heterozygosity Received: September 06, 2016      Accepted: January 04, 2017      Published: January 14, 2017 ABSTRACT Germline mutations in the succinate dehydrogenase (SDHA, SDHB, SDHC, SDHD, SDHAF2) or Von Hippel-Lindau (VHL) genes cause hereditary paraganglioma/pheochromocytoma. While SDHB (1p36) and VHL (3p25) are associated with autosomal dominant disease, SDHD (11q23) and SDHAF2 (11q13) show a remarkable parent-of-origin effect whereby tumor formation is almost completely dependent on paternal transmission of the mutant allele. Loss of the entire maternal copy of chromosome 11 occurs frequently in SDHD -linked tumors, and has been suggested to be the basis for this typical inheritance pattern. Using fluorescent in situ hybridization, microsatellite marker and SNP array analysis, we demonstrate that loss of the entire copy of chromosome 11 is also frequent in SDHAF2 -related PGLs, occurring in 89% of tumors. Analysis of two imprinted differentially methylated regions (DMR) in 11p15, H19-DMR and KvDMR, showed that this loss always affected the maternal copy of chromosome 11. Likewise, loss of maternal chromosome 11p15 was demonstrated in 85% of SDHD and 75% of VHL -related PGLs/PCCs. By contrast, both copies of chromosome 11 were found to be retained in 62% of SDHB -mutated PGLs/PCCs, while only 31% showed loss of maternal chromosome 11p15. Genome-wide copy number analysis revealed frequent loss of 1p in SDHB mutant tumors and show greater genomic instability compared to SDHD and SDHAF2 . These results show that loss of the entire copy of maternal chromosome 11 is a highly specific and statistically significant event in SDHAF2 , SDHD and VHL -related PGLs/PCCs, but is less significant in SDHB -mutated tumors, suggesting that these tumors have a distinct genetic etiology.

  • Low penetrance of paraganglioma and pheochromocytoma in an extended kindred with a germline SDHB exon 3 deletion
    Clinical genetics, 2015
    Co-Authors: Johannes A Rijken, Eleonora P M Corssmit, Fred H Menko, N.d. Niemeijer, Marianne A. Jonker, Charles R. Leemans, Erik F Hensen
    Abstract:

    In the Netherlands, the majority of hereditary paragangliomas (PGL) is caused by SDHD, SDHB and SDHAF2 mutations. Founder mutations in SDHD are particularly prevalent, but several SDHB founder mutations have also been described. Here, we describe an extended PGL family with a Dutch founder mutation in SDHB, c.201-4429_287-933del. The proband presented with apparently sporadic head and neck paraganglioma at advanced age. Subsequently, evaluation of the family identified several unaffected mutation carriers, asymptomatic and symptomatic PGL patients, and patients presenting with early-onset malignant pheochromocytoma. The calculated penetrance of the SDHB mutation in this kindred is lower than the risk suggested for SDHB mutations in the literature. This may represent a characteristic of this particular SDHB mutation, but may also be a reflection of the inclusion of relatively large numbers of asymptomatic mutation carriers in this family and adequate statistical correction for ascertainment bias. The low penetrance of SDHB mutations may obscure the hereditary nature of SDHB-linked disease and is important in the counseling of SDHB-linked patients. Risk estimates should preferably be based on the specific mutation involved.

  • high prevalence of founder mutations of the succinate dehydrogenase genes in the netherlands
    Clinical Genetics, 2012
    Co-Authors: Erik F Hensen, Jeroen C Jansen, Eleonora P M Corssmit, Cees J Cornelisse, N Van Duinen, Carli M J Tops, Johannes A Romijn, A H J T Vriendsd, A G L Van Der Mey, Peter Devilee
    Abstract:

    Mutations in four genes encoding subunits or cofactors of succinate dehydrogenase (SDH) cause hereditary paraganglioma and pheochromocytoma syndromes. Mutations in SDHB and SDHD are generally the most common, whereas mutations in SDHC and SDHAF2 are far less frequently observed. A total of 1045 DNA samples from Dutch paraganglioma and pheochromocytoma patients and their relatives were analyzed for mutations of SDHB, SDHC, SDHD or SDHAF2. Mutations in these genes were identified in 690 cases, 239 of which were index cases. The vast majority of mutation carriers had a mutation in SDHD (87.1%). The second most commonly affected gene was SDHAF2 (6.7%). Mutations in SDHB were found in only 5.9% of samples, whereas SDHC mutations were found in 0.3% of samples. Remarkably, 69.1% of all carriers of a mutation in an SDH gene in the Netherlands can be attributed to a single founder mutation in SDHD, c.274G>T and p.Asp92Tyr. Moreover, 88.8% of all SDH mutation carriers carry one of just six Dutch founder mutations in SDHB, SDHD and SDHAF2. The dominance of SDHD mutations is unique to the Netherlands, contrasting with the higher prevalence of SDHB mutations found elsewhere. In addition, we found that most SDH mutation-related paragangliomas-pheochromocytomas in the Netherlands can be explained by only six founder mutations in SDHAF2, SDHB and SDHD. The findings underline the regional differences in the SDH mutation spectrum, differences that should be taken into account in the development of effective screening protocols. The results show the crucial role that demographic factors play in the frequency of gene mutations.

  • Recent advances in the genetics of SDH-related paraganglioma and pheochromocytoma
    Familial Cancer, 2011
    Co-Authors: Erik F Hensen, Jeanpierre Bayley
    Abstract:

    The last 10 years have seen enormous progress in the field of paraganglioma and pheochromocytoma genetics. The identification of the first gene related to paraganglioma, SDHD , encoding a subunit of mitochondrial succinate dehydrogenase (SDH), was quickly followed by the identification of mutations in SDHC and SDHB . Very recently several new SDH-related genes have been discovered. The SDHAF2 gene encodes an SDH co-factor related to the function of the SDHA subunit, and is currently exclusively associated with head and neck paragangliomas. SDHA itself has now also been identified as a paraganglioma gene, with the recent identification of the first mutation in a patient with extra-adrenal paraganglioma. Another SDH-related co-factor, SDHAF1 , is not currently known to be a tumor suppressor, but may shed some light on the mechanisms of tumorigenesis. An entirely novel gene associated with adrenal pheochromocytoma, TMEM127 , suggests that other new paraganglioma susceptibility genes may await discovery. In addition to these recent discoveries, new techniques related to mutation analysis, including genetic analysis algorithms, SDHB immunohistochemistry, and deletion analysis by MLPA have improved the efficiency and accuracy of genetic analysis. However, many intriguing questions remain, such as the striking differences in the clinical phenotype of genes that encode proteins with an apparently very close functional relationship, and the lack of expression of SDHD and SDHAF2 mutations when inherited via the maternal line. Little is still known of the origins and causes of truly sporadic tumors, and the role of oxygen in the relationships between high-altitude, familial and truly sporadic paragangliomas remains to be elucidated.

Peyman Björklund - One of the best experts on this subject based on the ideXlab platform.

  • Targeted enrichment, included genomic regions.
    2015
    Co-Authors: Joakim Crona, Per Hellman, Viktor Ljungström, Staffan Welin, Martin K. Walz, Peyman Björklund
    Abstract:

    Selected genomic regions for targeted enrichment utilized in the TruSeq Custom Amplicon assay. Sequences annotated as protein coding were selected in SDHA, SDHB, SDHC, SDHD, SDHAF2, VHL, EPAS1, RET, NF1, TMEM127, MAX and H-RAS. In RET exons 8,10–11,13–16 were selected. The design was extended with 10 base pairs at exon-intron junctions.Targeted enrichment, included genomic regions.

  • Global DNA methylation patterns through an array-based approach in small intestinal neuroendocrine tumors.
    Endocrine-related cancer, 2014
    Co-Authors: Alberto Delgado Verdugo, Lee F. Starker, Per Hellman, Joakim Crona, Peter Stålberg, Göran Åkerström, Gunnar Westin, Peyman Björklund
    Abstract:

    Endocrine tumors arise from endocrine glands. Most endocrine tumors are benign but malignant variants exist. Several endocrine neoplasms display loss of parts of chromosome 11 or 18, produce hormones and responds poorly to conventional chemotherapeutics. The multiple endocrine neoplasia syndromes are mainly confined to endocrine tumors. This opens the question if there exists a single or several endocrine tumor genes.The aim of the study was to describe genetic derangements in endocrine tumors.Paper I: Investigation of mutational status of SDHAF2 in parathyroid tumors. SDHAF2 is located in the proximity of 11q13, a region that frequently displays loss in parathyroid tumors. We established that mutations in SDHAF2 are infrequent in parathyroid tumors.Paper II: Study of SDHAF2 gene expression in a cohort of benign pheochromocytomas (PCC) (n=40) and malignant PCC (n=10). We discovered a subset of benign PCC (28/40) and all malignant PCC (10/10) with significantly lower SDHAF2 expression. Benign PCC with low SDHAF2 expression and malignant tumors consistently expressing low levels of SDHAF2 were methylated in the promoter region. SDHAF2 expression was restored in vitro after treatment with 5- aza-2-deoxycytidine.Paper III: HumanMethylation27 array (Illumina) covering 27578 CpG sites spanning over 14495 genes were analyzed in a discovery cohort of 10 primary small neuroendocrine tumors (SI-NETs) with matched metastases. 2697 genes showed different methylation pattern between the primary tumor and its metastasis. We identified several hypermethylated genes in key regions. Unsupervised clustering of the tumors identified three distinct clusters, one with a highly malignant behavior.Paper IV: Loss of chromosome 18 is the most frequent genetic aberration in SI-NETs. DNA from SI-NETs were subjected to whole exome capture sequencing and high resolution SNP array. Genomic profiling revealed loss of chromosome 18 in 5 out of 7 SI-NETs. No tumor-specific somatic mutation on chromosome 18 was identified which suggests involvement of other mechanisms than point mutations in SI-NET tumorigenesis.Paper V: The cost for diagnostic genetic screening of common susceptibility genes in PCC is expensive and labor intensive. Three PCC from three patients with no known family history were chosen for exome capture sequencing. We identified three variants in known candidate genes. We suggest that exome-capture sequencing is a quick and cost-effective tool.

  • Epigenetic inactivation of SDHAF2 is a frequent event in benign and malignant pheochromocytomas.
    2014
    Co-Authors: Alberto Delgado Verdugo, Per Hellman, Peyman Björklund
    Abstract:

    Endocrine tumors arise from endocrine glands. Most endocrine tumors are benign but malignant variants exist. Several endocrine neoplasms display loss of parts of chromosome 11 or 18, produce hormones and responds poorly to conventional chemotherapeutics. The multiple endocrine neoplasia syndromes are mainly confined to endocrine tumors. This opens the question if there exists a single or several endocrine tumor genes.The aim of the study was to describe genetic derangements in endocrine tumors.Paper I: Investigation of mutational status of SDHAF2 in parathyroid tumors. SDHAF2 is located in the proximity of 11q13, a region that frequently displays loss in parathyroid tumors. We established that mutations in SDHAF2 are infrequent in parathyroid tumors.Paper II: Study of SDHAF2 gene expression in a cohort of benign pheochromocytomas (PCC) (n=40) and malignant PCC (n=10). We discovered a subset of benign PCC (28/40) and all malignant PCC (10/10) with significantly lower SDHAF2 expression. Benign PCC with low SDHAF2 expression and malignant tumors consistently expressing low levels of SDHAF2 were methylated in the promoter region. SDHAF2 expression was restored in vitro after treatment with 5- aza-2-deoxycytidine.Paper III: HumanMethylation27 array (Illumina) covering 27578 CpG sites spanning over 14495 genes were analyzed in a discovery cohort of 10 primary small neuroendocrine tumors (SI-NETs) with matched metastases. 2697 genes showed different methylation pattern between the primary tumor and its metastasis. We identified several hypermethylated genes in key regions. Unsupervised clustering of the tumors identified three distinct clusters, one with a highly malignant behavior.Paper IV: Loss of chromosome 18 is the most frequent genetic aberration in SI-NETs. DNA from SI-NETs were subjected to whole exome capture sequencing and high resolution SNP array. Genomic profiling revealed loss of chromosome 18 in 5 out of 7 SI-NETs. No tumor-specific somatic mutation on chromosome 18 was identified which suggests involvement of other mechanisms than point mutations in SI-NET tumorigenesis.Paper V: The cost for diagnostic genetic screening of common susceptibility genes in PCC is expensive and labor intensive. Three PCC from three patients with no known family history were chosen for exome capture sequencing. We identified three variants in known candidate genes. We suggest that exome-capture sequencing is a quick and cost-effective tool.

  • Exome Sequencing reveal no recurrent mutations on chromosome 18 in small intestinal neuroendocrine tumors; Ruling out a suspect?
    2014
    Co-Authors: Alberto Delgado Verdugo, Per Hellman, Joakim Crona, Gunnar Westin, Rajani Maharjan, Peyman Björklund
    Abstract:

    Endocrine tumors arise from endocrine glands. Most endocrine tumors are benign but malignant variants exist. Several endocrine neoplasms display loss of parts of chromosome 11 or 18, produce hormones and responds poorly to conventional chemotherapeutics. The multiple endocrine neoplasia syndromes are mainly confined to endocrine tumors. This opens the question if there exists a single or several endocrine tumor genes.The aim of the study was to describe genetic derangements in endocrine tumors.Paper I: Investigation of mutational status of SDHAF2 in parathyroid tumors. SDHAF2 is located in the proximity of 11q13, a region that frequently displays loss in parathyroid tumors. We established that mutations in SDHAF2 are infrequent in parathyroid tumors.Paper II: Study of SDHAF2 gene expression in a cohort of benign pheochromocytomas (PCC) (n=40) and malignant PCC (n=10). We discovered a subset of benign PCC (28/40) and all malignant PCC (10/10) with significantly lower SDHAF2 expression. Benign PCC with low SDHAF2 expression and malignant tumors consistently expressing low levels of SDHAF2 were methylated in the promoter region. SDHAF2 expression was restored in vitro after treatment with 5- aza-2-deoxycytidine.Paper III: HumanMethylation27 array (Illumina) covering 27578 CpG sites spanning over 14495 genes were analyzed in a discovery cohort of 10 primary small neuroendocrine tumors (SI-NETs) with matched metastases. 2697 genes showed different methylation pattern between the primary tumor and its metastasis. We identified several hypermethylated genes in key regions. Unsupervised clustering of the tumors identified three distinct clusters, one with a highly malignant behavior.Paper IV: Loss of chromosome 18 is the most frequent genetic aberration in SI-NETs. DNA from SI-NETs were subjected to whole exome capture sequencing and high resolution SNP array. Genomic profiling revealed loss of chromosome 18 in 5 out of 7 SI-NETs. No tumor-specific somatic mutation on chromosome 18 was identified which suggests involvement of other mechanisms than point mutations in SI-NET tumorigenesis.Paper V: The cost for diagnostic genetic screening of common susceptibility genes in PCC is expensive and labor intensive. Three PCC from three patients with no known family history were chosen for exome capture sequencing. We identified three variants in known candidate genes. We suggest that exome-capture sequencing is a quick and cost-effective tool.

  • MAX mutations status in Swedish patients with pheochromocytoma and paraganglioma tumours.
    Familial cancer, 2013
    Co-Authors: Joakim Crona, Alberto Delgado Verdugo, Per Hellman, Peter Stålberg, Rajani Maharjan, Dan Granberg, Peyman Björklund
    Abstract:

    Pheochromocytoma (PCC) and Paraganglioma are rare tumours originating from neuroendocrine cells. Up to 60 % of cases have either germline or somatic mutation in one of eleven described susceptibility loci, SDHA, SDHB, SDHC, SDHD, SDHAF2, VHL, EPAS1, RET, NF1, TMEM127 and MYC associated factor-X (MAX). Recently, germline mutations in MAX were found to confer susceptibility to PCC and paraganglioma (PGL). A subsequent multicentre study found about 1 % of PCCs and PGLs to have germline or somatic mutations in MAX. However, there has been no study investigating the frequency of MAX mutations in a Scandinavian cohort. We analysed tumour specimens from 63 patients with PCC and PGL treated at Uppsala University hospital, Sweden, for re-sequencing of MAX using automated Sanger sequencing. Our results show that 0 % (0/63) of tumours had mutations in MAX. Allele frequencies of known single nucleotide polymorphisms rs4902359, rs45440292, rs1957948 and rs1957949 corresponded to those available in the Single Nucleotide Polymorphism Database. We conclude that MAX mutations remain unusual events and targeted genetic screening should be considered after more common genetic events have been excluded.

Attje S. Hoekstra - One of the best experts on this subject based on the ideXlab platform.

  • loss of maternal chromosome 11 is a signature event in SDHAF2 sdhd and vhl related paragangliomas but less significant in sdhb related paragangliomas
    Oncotarget, 2017
    Co-Authors: Attje S. Hoekstra, Esther Korpershoek, Jeroen C Jansen, Frederik J Hes, Erik F Hensen, Eleonora P M Corssmit, Ekaterina S Jordanova, Anouk N A Van Der Horstschrivers, Cees J Cornelisse, Henricus P M Kunst
    Abstract:

    // Attje S. Hoekstra 1 , Erik F. Hensen 2 , Ekaterina S. Jordanova 3 , Esther Korpershoek 4 , Anouk N.A. van der Horst-Schrivers 5 , Cees Cornelisse 3 , Eleonora P.M. Corssmit 6 , Frederik J. Hes 7 , Jeroen C. Jansen 8 , Henricus P.M. Kunst 9 , Henri J.L.M. Timmers 10 , Adrian Bateman 11 , Diana Eccles 12 , Judith V.M.G. Bovee 3 , Peter Devilee 1, 3 , Jean-Pierre Bayley 1 1 Department of Human Genetics, Leiden University Medical Center, Leiden, The Netherlands 2 Department of Otolaryngology/Head and Neck Surgery, VU University Medical Center, Amsterdam, The Netherlands 3 Department of Pathology, Leiden University Medical Center, Leiden, The Netherlands 4 Department of Pathology, Josephine Nefkens Institute, Erasmus Medical Center Rotterdam, Rotterdam, The Netherlands 5 Department of Endocrinology, University of Groningen, University Medical Center Groningen, Groningen, The Netherlands 6 Department of Endocrinology and Metabolic Diseases, Leiden University Medical Center, Leiden, The Netherlands 7 Department of Clinical Genetics, Leiden University Medical Center, Leiden, The Netherlands 8 Department of Otorhinolaryngology, Leiden University Medical Center, Leiden, The Netherlands 9 Department of Otorhinolaryngology, Head and Neck Surgery, Radboud University Medical Centre, Nijmegen, The Netherlands 10 Department of Medicine, Division of Endocrinology, Radboud University Medical Centre, Nijmegen, The Netherlands 11 Department of Cellular Pathology, University Hospital Southampton, Southampton, UK 12 University of Southampton School of Medicine, Cancer Sciences Division, Somers Cancer Research Building, Southampton, UK Correspondence to: Jean-Pierre Bayley, email: J.P.L.Bayley@lumc.nl Peter Devilee, email: P.Devilee@lumc.nl Keywords: paraganglioma, pheochromocytoma, succinate dehydrogenase, Von Hippel-Lindau, loss of heterozygosity Received: September 06, 2016      Accepted: January 04, 2017      Published: January 14, 2017 ABSTRACT Germline mutations in the succinate dehydrogenase (SDHA, SDHB, SDHC, SDHD, SDHAF2) or Von Hippel-Lindau (VHL) genes cause hereditary paraganglioma/pheochromocytoma. While SDHB (1p36) and VHL (3p25) are associated with autosomal dominant disease, SDHD (11q23) and SDHAF2 (11q13) show a remarkable parent-of-origin effect whereby tumor formation is almost completely dependent on paternal transmission of the mutant allele. Loss of the entire maternal copy of chromosome 11 occurs frequently in SDHD -linked tumors, and has been suggested to be the basis for this typical inheritance pattern. Using fluorescent in situ hybridization, microsatellite marker and SNP array analysis, we demonstrate that loss of the entire copy of chromosome 11 is also frequent in SDHAF2 -related PGLs, occurring in 89% of tumors. Analysis of two imprinted differentially methylated regions (DMR) in 11p15, H19-DMR and KvDMR, showed that this loss always affected the maternal copy of chromosome 11. Likewise, loss of maternal chromosome 11p15 was demonstrated in 85% of SDHD and 75% of VHL -related PGLs/PCCs. By contrast, both copies of chromosome 11 were found to be retained in 62% of SDHB -mutated PGLs/PCCs, while only 31% showed loss of maternal chromosome 11p15. Genome-wide copy number analysis revealed frequent loss of 1p in SDHB mutant tumors and show greater genomic instability compared to SDHD and SDHAF2 . These results show that loss of the entire copy of maternal chromosome 11 is a highly specific and statistically significant event in SDHAF2 , SDHD and VHL -related PGLs/PCCs, but is less significant in SDHB -mutated tumors, suggesting that these tumors have a distinct genetic etiology.

  • Models of parent-of-origin tumorigenesis in hereditary paraganglioma
    Seminars in cell & developmental biology, 2015
    Co-Authors: Attje S. Hoekstra, Peter Devilee, Jeanpierre Bayley
    Abstract:

    Paraganglioma and pheochromocytoma are neuroendocrine tumors that originate from either the sympathetic or the parasympathetic branches of the autonomic nervous system. Although 14 different genes have been linked to paraganglioma/pheochromocytoma, a subgroup of these genes is associated with hereditary paraganglioma-pheochromocytoma, the genes related to mitochondrial succinate dehydrogenase (SDH) including SDHA, SDHB, SDHC, SDHD and the assembly factor SDHAF2. Unlike mutations in other SDH subunit genes, mutations in SDHD and SDHAF2 show a remarkable parent-of-origin dependent tumorigenesis in which tumor formation almost exclusively occurs following paternal transmission of the mutation. To date, three different models have sought to explain the striking inheritance pattern seen in SDHD and SDHAF2-linked families. Despite the fact that the models suffer to varying degrees from a lack of experimental verification, all three models have made some attempt to incorporate current data and understanding of this phenomenon. In this review, we discuss our present understanding of this phenomenon and describe the three models that seek to explain the inheritance pattern in SDHD and SDHAF2-linked families.

  • The role of complex II in disease.
    Biochimica et biophysica acta, 2012
    Co-Authors: Attje S. Hoekstra, Jeanpierre Bayley
    Abstract:

    Abstract Genetically defined mitochondrial deficiencies that result in the loss of complex II function lead to a range of clinical conditions. An array of tumor syndromes caused by complex II-associated gene mutations, in both succinate dehydrogenase and associated accessory factor genes ( SDHA , SDHB , SDHC , SDHD , SDHAF1 , SDHAF2 ), have been identified over the last 12 years and include hereditary paraganglioma–pheochromocytomas, a diverse group of renal cell carcinomas, and a specific subtype of gastrointestinal stromal tumors (GIST). In addition, congenital complex II deficiencies due to inherited homozygous mutations of the catalytic components of complex II (SDHA and SDHB) and the SDHAF1 assembly factor lead to childhood disease including Leigh syndrome, cardiomyopathy and infantile leukodystrophies. The role of complex II subunit gene mutations in tumorigenesis has been the subject of intensive research and these data have led to a variety of compelling hypotheses. Among the most widely researched are the stabilization of hypoxia inducible factor 1 under normoxia, and the generation of reactive oxygen species due to defective succinate:ubiquinone oxidoreductase function. Further progress in understanding the role of complex II in disease, and in the development of new therapeutic approaches, is now being hampered by the lack of relevant cell and animal models. This article is part of a Special Issue entitled: Respiratory complex II: Role in cellular physiology and disease.