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Massively parallel sequencing technologies have permitted whole genome re-sequencing in a cost-effective manner [ 17].
Massively parallel sequencing technologies have brought an enormous increase in sequencing throughput.
Massively parallel sequencing technologies provide precise digital readouts of both static (genomic) and dynamic (expression) cellular information.
Massively parallel sequencing technologies will greatly increase the number of genetic diagnoses made primarily through laboratory testing.
Massively parallel sequencing technologies, such as 454 pyrosequencing, remove many time consuming steps involved in Sanger sequencing of ESTs and have facilitated transcriptome sequencing at a fraction of the time and cost previously required [ 5, 9- 11].
Massively parallel sequencing technologies enabled us to generate a large amount of sequences in the complex genome - soybean, which allowed us to identify many SNPs in QTL regions of interest.
These problems can be overcome by employing next-generation DNA sequencers based on massively parallel sequencing technologies, by which the cloning step is eliminated and sequence quantity is increased by orders-of-magnitude compared with that of conventional Sanger sequencers.
This may be a question of technological sensitivity and so the application of high-resolution massively parallel sequencing technologies is certainly warranted to clarify such findings.
Over the last decade this field has been revolutionized by new experimental data stemming from massively parallel sequencing technologies.
9. Ye K, Lu J, Ma F, Keinan A, Gu Z. Reply to Just et al.: Mitochondrial DNA heteroplasmy could be reliably detected with massively parallel sequencing technologies.
Thanks to a new generation of "massively parallel sequencing technologies", sequencing costs have fallen to 1/100,000 of that seen during the HGP.
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