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Hence, RNA-seq can expand our view and provide new insights into plant domestication evolution at the genomics level.
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Although comparative genomics has increased our understanding of plant evolution at the genome level, most studies to date have focussed on the entire genome sequence, and/or mixed EST resources developed from a range of tissues.
Comparative genomics is a powerful tool for investigating plant evolution at the whole-genome level [ 19- 27].
Therefore, these genomic sequence data provide an opportunity to decipher gene and genome evolution at the phylogenetic level within a single genus using comparative genomics approaches.
The rapidly advancing field of single-cell genomics provides an opportunity to study tumor heterogeneity and evolution at the ultimate level of resolution.
These include the orchid genome evolution, genome mapping, comparative genomics, secondary metabolomics, and genome editing.
The Society for Molecular Biology and Evolution (SMBE) has observed this development over the years, in particular, at the SMBE annual meeting, where genome evolution and population genomics continue to generate highlights within the society and within the field as a whole.
At present, we are able to exploit the powerful analytical methods of molecular evolution and population genomics to determine the relative contribution of the different evolutionary forces that shape mycobacterial genome organization, structure, and diversity.
Furthermore, because the genome provides the platform for evolution, insights from genomics should yield insights to evolution.
As the fields of genome evolution and population genomics grow, so will GBE.
The sequencing of multiple Plasmodium genomes allows the study of parasite evolution using comparative genomics.
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