Paleogenomics: reconstruction of plant evolutionary trajectories from modern and ancient DNA
Палеогеномика: реконструкция эволюционных траекторий растений на основе современных и древних ДНК
2019-02-11
SCID: 54.1/av3kyd3u
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ancient DNAgenetic gainpaleogenomicsplant genome evolutionreference genomes
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Abstract (AI)
How contemporary plant genomes originated and evolved is a fascinating question. One approach uses reference genomes from extant species to reconstruct the sequence and structure of their common ancestors over deep timescales. A second approach focuses on the direct identification of genomic changes at a shorter timescale by sequencing ancient DNA preserved in subfossil remains. Merged within the nascent field of paleogenomics, these complementary approaches provide insights into the evolutionary forces that shaped the organization and regulation of modern genomes and open novel perspectives in fostering genetic gain in breeding programs and establishing tools to predict future population changes in response to anthropogenic pressure and global warming.
Key Findings
1
Ancient DNA enables direct detection of genomic changes occurring over shorter evolutionary timescales.
2
Modern genomes can be used to reconstruct the sequence and structural organization of plant common ancestors over deep evolutionary timescales.
3
Paleogenomics combines comparative analysis of modern reference genomes with sequencing of ancient DNA from subfossil remains.
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Paleogenomics may support genetic improvement in breeding and prediction of population responses to anthropogenic pressure and global warming.
5
These complementary approaches reveal evolutionary forces shaping modern plant genome organization and regulation.
Research Object
plant genomes and ancient DNA from subfossil plant remains
Research Subject
plant evolutionary trajectories, including ancestral genome reconstruction and genomic changes over deep and shorter timescales
Publication Details
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2019-02-11
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