Massively parallel sequencing greatly facilitates the discovery of novel disease genes causing Mendelian and oligogenic disorders. However, many mutations are present in any individual genome, and identifying which ones are disease causing remains a largely open problem. We introduce eXtasy, an approach to prioritize nonsynonymous single-nucleotide variants (nSNVs) that substantially improves prediction of disease-causing variants in exome sequencing data by integrating variant impact prediction, haploinsufficiency prediction and phenotype-specific gene prioritization.status: publishe
<div><p>Exome sequencing has been widely used in detecting pathogenic nonsynonymous single nucleotid...
Over the past fifty years, the genetic bases for many human diseases have been discovered. Genome-wi...
© 2019 Harriet DashnowNext-generation sequencing is increasingly used to diagnose patients with susp...
With the completion of human genome sequencing project and the rapid development of sequencing techn...
Next-generation sequencing has catapulted healthcare into a revolutionary genomics era. One such tec...
The field of human genetics has evolved at a dramatically fast pace over the past few decades. Break...
Recent advances in next-generation sequencing technologies have brought a paradigm shift in how medi...
The advent of next-generation sequencing (NGS) in 2010 has transformed medicine, particularly the gr...
Many new disease genes can be identified through high-throughput sequencing. Yet, variant interpreta...
CITATION: Glanzmann, B. et al. 2016. A new tool for prioritization of sequence variants from whole e...
Whole genome sequencing (WGS) is increasingly used to diagnose rare genetic diseases (RGD). WGS data...
BACKGROUND:With the expanded availability of next generation sequencing (NGS)-based clinical genetic...
Next-generation sequencing has revolutionized rare disease diagnostics, but many patients remain wit...
International audienceThe advent of next-generation sequencing (NGS) in 2010 has transformed medicin...
Next-generation sequencing has revolutionized rare disease diagnostics, but many patients remain wit...
<div><p>Exome sequencing has been widely used in detecting pathogenic nonsynonymous single nucleotid...
Over the past fifty years, the genetic bases for many human diseases have been discovered. Genome-wi...
© 2019 Harriet DashnowNext-generation sequencing is increasingly used to diagnose patients with susp...
With the completion of human genome sequencing project and the rapid development of sequencing techn...
Next-generation sequencing has catapulted healthcare into a revolutionary genomics era. One such tec...
The field of human genetics has evolved at a dramatically fast pace over the past few decades. Break...
Recent advances in next-generation sequencing technologies have brought a paradigm shift in how medi...
The advent of next-generation sequencing (NGS) in 2010 has transformed medicine, particularly the gr...
Many new disease genes can be identified through high-throughput sequencing. Yet, variant interpreta...
CITATION: Glanzmann, B. et al. 2016. A new tool for prioritization of sequence variants from whole e...
Whole genome sequencing (WGS) is increasingly used to diagnose rare genetic diseases (RGD). WGS data...
BACKGROUND:With the expanded availability of next generation sequencing (NGS)-based clinical genetic...
Next-generation sequencing has revolutionized rare disease diagnostics, but many patients remain wit...
International audienceThe advent of next-generation sequencing (NGS) in 2010 has transformed medicin...
Next-generation sequencing has revolutionized rare disease diagnostics, but many patients remain wit...
<div><p>Exome sequencing has been widely used in detecting pathogenic nonsynonymous single nucleotid...
Over the past fifty years, the genetic bases for many human diseases have been discovered. Genome-wi...
© 2019 Harriet DashnowNext-generation sequencing is increasingly used to diagnose patients with susp...