Niels Van der Aa
Katholieke Universiteit Leuven
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Publication
Featured researches published by Niels Van der Aa.
Nature Methods | 2015
Iain C. Macaulay; Wilfried Haerty; Parveen Kumar; Yang I. Li; Tim Xiaoming Hu; Mabel J Teng; Mubeen Goolam; Nathalie Saurat; Paul Coupland; Lesley Shirley; Miriam Smith; Niels Van der Aa; Ruby Banerjee; Peter Ellis; Michael A. Quail; Harold Swerdlow; Magdalena Zernicka-Goetz; Frederick J. Livesey; Chris P. Ponting; Thierry Voet
The simultaneous sequencing of a single cells genome and transcriptome offers a powerful means to dissect genetic variation and its effect on gene expression. Here we describe G&T-seq, a method for separating and sequencing genomic DNA and full-length mRNA from single cells. By applying G&T-seq to over 220 single cells from mice and humans, we discovered cellular properties that could not be inferred from DNA or RNA sequencing alone.
Nucleic Acids Research | 2013
Thierry Voet; Parveen Kumar; Peter Van Loo; Susanna L. Cooke; John J Marshall; Meng-Lay Lin; Masoud Zamani Esteki; Niels Van der Aa; Ligia Mateiu; David J. McBride; Graham R. Bignell; Stuart McLaren; Jon Teague; Adam Butler; Keiran Raine; Lucy Stebbings; Michael A. Quail; Thomas D’Hooghe; Yves Moreau; P. Andrew Futreal; Michael R. Stratton; J.R. Vermeesch; Peter J. Campbell
The nature and pace of genome mutation is largely unknown. Because standard methods sequence DNA from populations of cells, the genetic composition of individual cells is lost, de novo mutations in cells are concealed within the bulk signal and per cell cycle mutation rates and mechanisms remain elusive. Although single-cell genome analyses could resolve these problems, such analyses are error-prone because of whole-genome amplification (WGA) artefacts and are limited in the types of DNA mutation that can be discerned. We developed methods for paired-end sequence analysis of single-cell WGA products that enable (i) detecting multiple classes of DNA mutation, (ii) distinguishing DNA copy number changes from allelic WGA-amplification artefacts by the discovery of matching aberrantly mapping read pairs among the surfeit of paired-end WGA and mapping artefacts and (iii) delineating the break points and architecture of structural variants. By applying the methods, we capture DNA copy number changes acquired over one cell cycle in breast cancer cells and in blastomeres derived from a human zygote after in vitro fertilization. Furthermore, we were able to discover and fine-map a heritable inter-chromosomal rearrangement t(1;16)(p36;p12) by sequencing a single blastomere. The methods will expedite applications in basic genome research and provide a stepping stone to novel approaches for clinical genetic diagnosis.
Nature Communications | 2016
Helen Bolton; Sarah J. L. Graham; Niels Van der Aa; Parveen Kumar; Koen Theunis; Elia Fernandez Gallardo; Thierry Voet; Magdalena Zernicka-Goetz
Most human pre-implantation embryos are mosaics of euploid and aneuploid cells. To determine the fate of aneuploid cells and the developmental potential of mosaic embryos, here we generate a mouse model of chromosome mosaicism. By treating embryos with a spindle assembly checkpoint inhibitor during the four- to eight-cell division, we efficiently generate aneuploid cells, resulting in embryo death during peri-implantation development. Live-embryo imaging and single-cell tracking in chimeric embryos, containing aneuploid and euploid cells, reveal that the fate of aneuploid cells depends on lineage: aneuploid cells in the fetal lineage are eliminated by apoptosis, whereas those in the placental lineage show severe proliferative defects. Overall, the proportion of aneuploid cells is progressively depleted from the blastocyst stage onwards. Finally, we show that mosaic embryos have full developmental potential, provided they contain sufficient euploid cells, a finding of significance for the assessment of embryo vitality in the clinic.
Human Mutation | 2011
Thierry Voet; Evelyne Vanneste; Niels Van der Aa; Cindy Melotte; Sigrun Jackmaert; Tamara Vandendael; Matthias Declercq; Sophie Debrock; Jean-Pierre Fryns; Yves Moreau; Thomas D'Hooghe; Joris Vermeesch
Recently, a high incidence of chromosome instability (CIN) was reported in human cleavage stage embryos. Based on the copy number changes that were observed in the blastomeres it was hypothesized that chromosome breakages and fusions occur frequently in cleavage stage human embryos and instigate subsequent breakage‐fusion‐bridge cycles. In addition, it was hypothesized that the DNA breaks present in spermatozoa could trigger this CIN. To test these hypotheses, we genotyped both parents as well as 93 blastomeres from 24 IVF embryos and developed a novel single nucleotide polymorphism (SNP) array‐based algorithm to determine the parental origin of (aberrant) loci in single cells. Paternal as well as maternal alleles were commonly rearranged in the blastomeres indicating that sperm‐specific DNA breaks do not explain the majority of these structural variants. The parent‐of‐origin analyses together with microarray‐guided FISH analyses demonstrate the presence of inv dup del chromosomes as well as more complex rearrangements. These data provide unequivocal evidence for breakage–fusion–bridge cycles in those embryos and suggest that the human cleavage stage embryo is a major source of chromosomal disorders. Hum Mutat 32:783–793, 2011.
Nucleic Acids Research | 2013
Niels Van der Aa; Jiqiu Cheng; Ligia Mateiu; Masoud Zamani Esteki; Parveen Kumar; Eftychia Dimitriadou; Evelyne Vanneste; Yves Moreau; Joris Vermeesch; Thierry Voet
Single-cell genomics is revolutionizing basic genome research and clinical genetic diagnosis. However, none of the current research or clinical methods for single-cell analysis distinguishes between the analysis of a cell in G1-, S- or G2/M-phase of the cell cycle. Here, we demonstrate by means of array comparative genomic hybridization that charting the DNA copy number landscape of a cell in S-phase requires conceptually different approaches to that of a cell in G1- or G2/M-phase. Remarkably, despite single-cell whole-genome amplification artifacts, the log2 intensity ratios of single S-phase cells oscillate according to early and late replication domains, which in turn leads to the detection of significantly more DNA imbalances when compared with a cell in G1- or G2/M-phase. Although these DNA imbalances may, on the one hand, be falsely interpreted as genuine structural aberrations in the S-phase cell’s copy number profile and hence lead to misdiagnosis, on the other hand, the ability to detect replication domains genome wide in one cell has important applications in DNA-replication research. Genome-wide cell-type-specific early and late replicating domains have been identified by analyses of DNA from populations of cells, but cell-to-cell differences in DNA replication may be important in genome stability, disease aetiology and various other cellular processes.
American Journal of Human Genetics | 2015
Masoud Zamani Esteki; Eftychia Dimitriadou; Ligia Mateiu; Cindy Melotte; Niels Van der Aa; Parveen Kumar; Rakhi Das; Koen Theunis; Jiqiu Cheng; Eric Legius; Yves Moreau; Sophie Debrock; Thomas D’Hooghe; Pieter Verdyck; Martine De Rycke; Karen Sermon; Joris Vermeesch; Thierry Voet
Methods for haplotyping and DNA copy-number typing of single cells are paramount for studying genomic heterogeneity and enabling genetic diagnosis. Before analyzing the DNA of a single cell by microarray or next-generation sequencing, a whole-genome amplification (WGA) process is required, but it substantially distorts the frequency and composition of the cells alleles. As a consequence, haplotyping methods suffer from error-prone discrete SNP genotypes (AA, AB, BB) and DNA copy-number profiling remains difficult because true DNA copy-number aberrations have to be discriminated from WGA artifacts. Here, we developed a single-cell genome analysis method that reconstructs genome-wide haplotype architectures as well as the copy-number and segregational origin of those haplotypes by employing phased parental genotypes and deciphering WGA-distorted SNP B-allele fractions via a process we coin haplarithmisis. We demonstrate that the method can be applied as a generic method for preimplantation genetic diagnosis on single cells biopsied from human embryos, enabling diagnosis of disease alleles genome wide as well as numerical and structural chromosomal anomalies. Moreover, meiotic segregation errors can be distinguished from mitotic ones.
Genome Medicine | 2013
Niels Van der Aa; Masoud Zamani Esteki; Joris Vermeesch; Thierry Voet
Preimplantation genetic diagnosis (PGD) aims to help couples with heritable genetic disorders to avoid the birth of diseased offspring or the recurrence of loss of conception. Following in vitro fertilization, one or a few cells are biopsied from each human preimplantation embryo for genetic testing, allowing diagnosis and selection of healthy embryos for uterine transfer. Although classical methods, including single-cell PCR and fluorescent in situ hybridization, enable PGD for many genetic disorders, they have limitations. They often require family-specific designs and can be labor intensive, resulting in long waiting lists. Furthermore, certain types of genetic anomalies are not easy to diagnose using these classical approaches, and healthy offspring carrying the parental mutant allele(s) can result. Recently, state-of-the-art methods for single-cell genomics have flourished, which may overcome the limitations associated with classical PGD, and these underpin the development of generic assays for PGD that enable selection of embryos not only for the familial genetic disorder in question, but also for various other genetic aberrations and traits at once. Here, we discuss the latest single-cell genomics methodologies based on DNA microarrays, single-nucleotide polymorphism arrays or next-generation sequence analysis. We focus on their strengths, their validation status, their weaknesses and the challenges for implementing them in PGD.
Seminars in Reproductive Medicine | 2012
Evelyne Vanneste; Niels Van der Aa; Thierry Voet; Joris Vermeesch
Early human in vitro fertilized embryos frequently accumulate whole chromosome aneuploidies and segmental imbalances. This embryonic chromosomal instability does not necessarily undermine normal human development, but it may lead to loss of conception, genetic disease, and genetic variation development. In this review we provide an overview of how this instability of chromosomes arises and evolves during early human embryogenesis.
Archive | 2014
Parveen Kumar; Masoud Zamani Esteki; Niels Van der Aa; Thierry Voet; Karen Sermon; Stéphane Viville
Archive | 2013
Parveen Kumar; Masoud Zamani Esteki; Niels Van der Aa; Thierry Voet