Hanneke van der Gulden
Netherlands Cancer Institute
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Featured researches published by Hanneke van der Gulden.
Nature Genetics | 2001
Jos Jonkers; Ralph Meuwissen; Hanneke van der Gulden; Hans Peterse; Martin van der Valk; Anton Berns
Inheritance of one defective BRCA2 allele predisposes humans to breast cancer. To establish a mouse model for BRCA2-associated breast cancer, we generated mouse conditional mutants with BRCA2 and/or p53 inactivated in various epithelial tissues, including mammary-gland epithelium. Although no tumors arose in mice carrying conditional Brca2 alleles, mammary and skin tumors developed frequently in females carrying conditional Brca2 and Trp53 alleles. The presence of one wildtype Brca2 allele resulted in a markedly delayed tumor formation; loss of the wildtype Brca2 allele occurred in a subset of these tumors. Our results show that inactivation of BRCA2 and of p53 combine to mediate mammary tumorigenesis, and indicate that disruption of the p53 pathway is pivotal in BRCA2-associated breast cancer.
Nature Structural & Molecular Biology | 2010
Peter Bouwman; Amal Aly; Jose Miguel Escandell; Mark Pieterse; Jirina Bartkova; Hanneke van der Gulden; Sanne Hiddingh; Maria Thanasoula; Atul Kulkarni; Qifeng Yang; Bruce G. Haffty; Johanna Tommiska; Carl Blomqvist; Ronny Drapkin; David J. Adams; Heli Nevanlinna; Jiri Bartek; Madalena Tarsounas; Shridar Ganesan; Jos Jonkers
Germ-line mutations in breast cancer 1, early onset (BRCA1) result in predisposition to breast and ovarian cancer. BRCA1-mutated tumors show genomic instability, mainly as a consequence of impaired recombinatorial DNA repair. Here we identify p53-binding protein 1 (53BP1) as an essential factor for sustaining the growth arrest induced by Brca1 deletion. Depletion of 53BP1 abrogates the ATM-dependent checkpoint response and G2 cell-cycle arrest triggered by the accumulation of DNA breaks in Brca1-deleted cells. This effect of 53BP1 is specific to BRCA1 function, as 53BP1 depletion did not alleviate proliferation arrest or checkpoint responses in Brca2-deleted cells. Notably, loss of 53BP1 partially restores the homologous-recombination defect of Brca1-deleted cells and reverts their hypersensitivity to DNA-damaging agents. We find reduced 53BP1 expression in subsets of sporadic triple-negative and BRCA-associated breast cancers, indicating the potential clinical implications of our findings.
Proceedings of the National Academy of Sciences of the United States of America | 2007
Xiaoling Liu; Henne Holstege; Hanneke van der Gulden; Marcelle Treur-Mulder; John Zevenhoven; Arno Velds; Ron M. Kerkhoven; Martin H. van Vliet; Lodewyk F. A. Wessels; Johannes L. Peterse; Anton Berns; Jos Jonkers
Women carrying germ-line mutations in BRCA1 are strongly predisposed to developing breast cancers with characteristic features also observed in sporadic basal-like breast cancers. They appear as high-grade tumors with high proliferation rates and pushing borders. On the molecular level, they are negative for hormone receptors and ERBB2, display frequent TP53 mutations, and express basal epithelial markers. To study the role of BRCA1 and P53 loss of function in breast cancer development, we generated conditional mouse models with tissue-specific mutation of Brca1 and/or p53 in basal epithelial cells. Somatic loss of both BRCA1 and p53 resulted in the rapid and efficient formation of highly proliferative, poorly differentiated, estrogen receptor-negative mammary carcinomas with pushing borders and increased expression of basal epithelial markers, reminiscent of human basal-like breast cancer. BRCA1- and p53-deficient mouse mammary tumors exhibit dramatic genomic instability, and their molecular signatures resemble those of human BRCA1-mutated breast cancers. Thus, these tumors display important hallmarks of hereditary breast cancers in BRCA1-mutation carriers.
Cancer Cell | 2011
Rinske Drost; Peter Bouwman; Sven Rottenberg; Ute Boon; Eva Schut; Sjoerd Klarenbeek; Christiaan Klijn; Ingrid van der Heijden; Hanneke van der Gulden; Ellen Wientjens; Mark Pieterse; Aurélie Catteau; Peter M. Green; Ellen Solomon; Joanna R. Morris; Jos Jonkers
Hereditary breast cancers are frequently caused by germline BRCA1 mutations. The BRCA1(C61G) mutation in the BRCA1 RING domain is a common pathogenic missense variant, which reduces BRCA1/BARD1 heterodimerization and abrogates its ubiquitin ligase activity. To investigate the role of BRCA1 RING function in tumor suppression and therapy response, we introduced the Brca1(C61G) mutation in a conditional mouse model for BRCA1-associated breast cancer. In contrast to BRCA1-deficient mammary carcinomas, tumors carrying the Brca1(C61G) mutation responded poorly to platinum drugs and PARP inhibition and rapidly developed resistance while retaining the Brca1(C61G) mutation. These findings point to hypomorphic activity of the BRCA1-C61G protein that, although unable to prevent tumor development, affects response to therapy.
Cancer Discovery | 2013
Peter Bouwman; Hanneke van der Gulden; Ingrid van der Heijden; Rinske Drost; Christiaan Klijn; Pramudita Prasetyanti; Mark Pieterse; Ellen Wientjens; Jost Seibler; Frans B. L. Hogervorst; Jos Jonkers
UNLABELLED Mutations in BRCA1 and BRCA2 account for the majority of hereditary breast and ovarian cancers, and therefore sequence analysis of both genes is routinely conducted in patients with early-onset breast cancer. Besides mutations that clearly abolish protein function or are known to increase cancer risk, a large number of sequence variants of uncertain significance (VUS) have been identified. Although several functional assays for BRCA1 VUSs have been described, thus far it has not been possible to conduct a high-throughput analysis in the context of the full-length protein. We have developed a relatively fast and easy cDNA-based functional assay to classify BRCA1 VUSs based on their ability to functionally complement BRCA1-deficient mouse embryonic stem cells. Using this assay, we have analyzed 74 unclassified BRCA1 missense mutants for which all predicted pathogenic variants are confined to the BRCA1 RING and BRCT domains. SIGNIFICANCE BRCA1 VUSs are frequently found in patients with hereditary breast or ovarian cancer and present a serious problem for clinical geneticists. This article describes the generation, validation, and application of a reliable high-throughput assay for the functional classification of BRCA1 sequence variants of uncertain significance.
Cancer Research | 2016
Yifan Wang; Andrea J. Bernhardy; Cristina Cruz; John J. Krais; Joseph Nacson; Emmanuelle Nicolas; Suraj Peri; Hanneke van der Gulden; Ingrid van der Heijden; Shane W. O'Brien; Yong Zhang; Maribel I. Harrell; Shawn F. Johnson; Francisco José Candido dos Reis; Paul Pharoah; Beth Y. Karlan; Charlie Gourley; Diether Lambrechts; Georgia Chenevix-Trench; Håkan Olsson; Javier Benitez; Mark H. Greene; Martin Gore; Robert L. Nussbaum; Siegal Sadetzki; Simon A. Gayther; Susanne K. Kjaer; kConFab Investigators; Alan D. D'Andrea; Geoffrey I. Shapiro
Breast and ovarian cancer patients harboring BRCA1/2 germline mutations have clinically benefitted from therapy with PARP inhibitor (PARPi) or platinum compounds, but acquired resistance limits clinical impact. In this study, we investigated the impact of mutations on BRCA1 isoform expression and therapeutic response. Cancer cell lines and tumors harboring mutations in exon 11 of BRCA1 express a BRCA1-Δ11q splice variant lacking the majority of exon 11. The introduction of frameshift mutations to exon 11 resulted in nonsense-mediated mRNA decay of full-length, but not the BRCA1-Δ11q isoform. CRISPR/Cas9 gene editing as well as overexpression experiments revealed that the BRCA1-Δ11q protein was capable of promoting partial PARPi and cisplatin resistance relative to full-length BRCA1, both in vitro and in vivo Furthermore, spliceosome inhibitors reduced BRCA1-Δ11q levels and sensitized cells carrying exon 11 mutations to PARPi treatment. Taken together, our results provided evidence that cancer cells employ a strategy to remove deleterious germline BRCA1 mutations through alternative mRNA splicing, giving rise to isoforms that retain residual activity and contribute to therapeutic resistance. Cancer Res; 76(9); 2778-90. ©2016 AACR.
Journal of Clinical Investigation | 2016
Rinske Drost; Kiranjit K. Dhillon; Hanneke van der Gulden; Ingrid van der Heijden; Inger Brandsma; Cristina Cruz; Dafni Chondronasiou; Marta Castroviejo-Bermejo; Ute Boon; Eva Schut; Eline van der Burg; Ellen Wientjens; Mark Pieterse; Christiaan Klijn; Sjoerd Klarenbeek; Fabricio Loayza-Puch; Ran Elkon; Liesbeth van Deemter; Sven Rottenberg; Marieke van de Ven; Dick H. W. Dekkers; Jeroen Demmers; Dik C. van Gent; Reuven Agami; Judith Balmaña; Violeta Serra; Toshiyasu Taniguchi; Peter Bouwman; Jos Jonkers
Heterozygous germline mutations in breast cancer 1 (BRCA1) strongly predispose women to breast cancer. BRCA1 plays an important role in DNA double-strand break (DSB) repair via homologous recombination (HR), which is important for tumor suppression. Although BRCA1-deficient cells are highly sensitive to treatment with DSB-inducing agents through their HR deficiency (HRD), BRCA1-associated tumors display heterogeneous responses to platinum drugs and poly(ADP-ribose) polymerase (PARP) inhibitors in clinical trials. It is unclear whether all pathogenic BRCA1 mutations have similar effects on the response to therapy. Here, we have investigated mammary tumorigenesis and therapy sensitivity in mice carrying the Brca1185stop and Brca15382stop alleles, which respectively mimic the 2 most common BRCA1 founder mutations, BRCA1185delAG and BRCA15382insC. Both the Brca1185stop and Brca15382stop mutations predisposed animals to mammary tumors, but Brca1185stop tumors responded markedly worse to HRD-targeted therapy than did Brca15382stop tumors. Mice expressing Brca1185stop mutations also developed therapy resistance more rapidly than did mice expressing Brca15382stop. We determined that both murine Brca1185stop tumors and human BRCA1185delAG breast cancer cells expressed a really interesting new gene domain-less (RING-less) BRCA1 protein that mediated resistance to HRD-targeted therapies. Together, these results suggest that expression of RING-less BRCA1 may serve as a marker to predict poor response to DSB-inducing therapy in human cancer patients.
Genome Biology | 2010
Ignacio Varela; Christiaan Klijn; Phillip J. Stephens; Laura Mudie; Lucy Stebbings; Danushka Galappaththige; Hanneke van der Gulden; Eva Schut; Sjoerd Klarenbeek; Peter J. Campbell; Lodewyk F. A. Wessels; Michael R. Stratton; Jos Jonkers; P. Andrew Futreal; David J. Adams
BackgroundHere we present the first paired-end sequencing of tumors from genetically engineered mouse models of cancer to determine how faithfully these models recapitulate the landscape of somatic rearrangements found in human tumors. These were models of Trp53-mutated breast cancer, Brca1- and Brca2-associated hereditary breast cancer, and E-cadherin (Cdh1) mutated lobular breast cancer.ResultsWe show that although Brca1- and Brca2-deficient mouse mammary tumors have a defect in the homologous recombination pathway, there is no apparent difference in the type or frequency of somatic rearrangements found in these cancers when compared to other mouse mammary cancers, and tumors from all genetic backgrounds showed evidence of microhomology-mediated repair and non-homologous end-joining processes. Importantly, mouse mammary tumors were found to carry fewer structural rearrangements than human mammary cancers and expressed in-frame fusion genes. Like the fusion genes found in human mammary tumors, these were not recurrent. One mouse tumor was found to contain an internal deletion of exons of the Lrp1b gene, which led to a smaller in-frame transcript. We found internal in-frame deletions in the human ortholog of this gene in a significant number (4.2%) of human cancer cell lines.ConclusionsPaired-end sequencing of mouse mammary tumors revealed that they display significant heterogeneity in their profiles of somatic rearrangement but, importantly, fewer rearrangements than cognate human mammary tumors, probably because these cancers have been induced by strong driver mutations engineered into the mouse genome. Both human and mouse mammary cancers carry expressed fusion genes and conserved homozygous deletions.
The Journal of Pathology | 2011
Peter Bouwman; Rinske Drost; Christiaan Klijn; Mark Pieterse; Hanneke van der Gulden; Ji-Ying Song; Karoly Szuhai; Jos Jonkers
PALB2 interacts with BRCA1 and BRCA2 in supercomplexes involved in DNA repair via homologous recombination. Heterozygous germline mutations in PALB2 confer a moderate risk of breast cancer, while biallelic PALB2 mutations are linked to a severe form of Fanconi anaemia characterized by early childhood solid tumours and severe chromosomal instability. In contrast to BRCA1‐ or BRCA2‐associated cancers, breast tumours in heterozygous PALB2 mutation carriers do not show loss of the wild‐type allele, suggesting PALB2 might be haploinsufficient for tumour suppression. To study the role of PALB2 in development and tumourigenesis, we have generated Palb2GT mouse mutants using a gene trap approach. Whereas Palb2GT/GT homozygous mutant embryos died at mid‐gestation due to massive apoptosis, Palb2GT/+ heterozygous mice were viable and did not show any obvious abnormalities. Deletion of p53 alleviated the phenotype of Palb2GT/GT embryos, but did not rescue embryonic lethality. In addition, loss of p53 did not significantly collaborate with Palb2 heterozygosity in tumourigenesis in heterozygous or homozygous p53 knockout mice. Tumours arising in Palb2GT/+;p53+/− or Palb2GT/+;p53−/− compound mutant mice retained the wild‐type Palb2 allele and did not display increased genomic instability. Copyright
The Journal of Pathology | 2017
Marieke van de Ven; Eline van der Burg; Hanneke van der Gulden; Sjoerd Klarenbeek; Peter Bouwman; Jos Jonkers
Women with heterozygous germline mutations in the BRCA1 tumour suppressor gene are strongly predisposed to developing early‐onset breast cancer through loss of the remaining wild‐type BRCA1 allele and inactivation of TP53. Although tumour prevention strategies in BRCA1‐mutation carriers are still limited to prophylactic surgery, several therapeutic strategies have been developed to target the DNA repair defects (also known as ‘BRCAness’) of BRCA1‐deficient tumours. In particular, DNA‐damaging agents such as platinum drugs and poly(ADP‐ribose) polymerase (PARP) inhibitors show strong activity against BRCA1‐mutated tumours. However, it is unclear whether drugs that target BRCAness can also be used to prevent tumour formation in BRCA1‐mutation carriers, especially as loss of wild‐type BRCA1 may not be the first event in BRCA1‐associated tumourigenesis. We performed prophylactic treatments in a genetically engineered mouse model in which de novo development of BRCA1‐deficient mammary tumours is induced by stochastic loss of BRCA1 and p53. We found that prophylactic window therapy with nimustine, cisplatin or olaparib reduced the amount and size of mammary gland lesions, and significantly increased the median tumour latency. Similar results were obtained with intermittent prophylactic treatment with olaparib. Importantly, prophylactic window therapy with nimustine and cisplatin resulted in an increased fraction of BRCA1‐proficient mammary tumours, suggesting selective survival and malignant transformation of BRCA1‐proficient lesions upon prophylactic treatment with DNA‐damaging agents. Prophylactic therapy with olaparib significantly prolonged mammary tumour‐free survival without any significant increase in the fraction of BRCA1‐proficient tumours, warranting the evaluation of this PARP inhibitor in prophylactic trials in BRCA1‐mutation carriers. Copyright