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Therefore, Artemis has the potential to visualize and investigate sequencing data from numerous sequencing technologies.
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Recently, numerous high throughput sequencing technologies have been developed to allow rapid and cost-effective ways to obtain genome-wide information [35] [37].
With the grapevine genome sequenced [ 1] and the extensive advances in next generation sequencing technologies, numerous miRNAs have been predicted in grapevine [ 24– 31].
The proliferation of next generation sequencing technologies has created numerous data management and analysis issues.
Thus, implementing sequencing technologies and approaches would have numerous clinical advantages.
High-throughput sequencing technologies are increasingly applied for numerous purposes, including developing SNP markers for building linkage maps (e.g., rainbow trout) (Sanchez et al. 2009).
It is of technological importance since it imposes significant limitations to next-generation sequencing technologies [ 1] and is related to numerous properties of the genome [ 2- 5].
Summary: High-throughput DNA sequencing technologies have spurred the development of numerous novel methods for genome assembly.
Although modern sequencing technologies permit the ready detection of numerous DNA sequence variants in any organisms, converting such information to PCR-based genetic markers is hampered by a lack of simple, scalable tools.
With the recent progress in Next-Generation Sequencing technologies, the genomes and transcriptomes of numerous plant species have been recently sequenced, giving access to a vast amount of data.
Transcriptomes of many species have been analyzed by next-generation sequencing technologies [ 25- 27], and numerous coding single-nucleotide polymorphisms (SNPs) were identified in conifer species such as Pinus contorta, Picea glauca and Pinus taeda[ 26, 28, 29].
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