Whole genome duplication (WGD) is a major factor in the evolution of multicellular eukaryotes, yet by doubling the number of homologs, WGD severely challenges reliable chromosome segregation [1, 2, 3], a process conserved across kingdoms [4]. Despite this, numerous genomeduplicated (polyploid) species persist in nature, indicating early problems can be overcome [1, 2]. Little is known about which genes are involved – only one has been molecularly characterized [5]. To gain new insights into the molecular basis of adaptation to polyploidy, we investigated genome-wide patterns of differentiation between natural diploids and tetraploids of Arabidopsis arenosa, an outcrossing relative of A. thaliana [6, 7]. We first show that diploids are not p...
A sudden shift in environment or cellular context necessitates rapid adaptation. A dramatic example ...
Whole genome duplication is a prominent feature of many highly evolved organisms, especially plants....
Polyploidy is a major force shaping eukaryote evolution but poses challenges for meiotic chromosome ...
Whole genome duplication (WGD) is a major factor in the evolution of multicellular eukaryotes, yet b...
Whole genome duplication (WGD) is a major factor in the evolution of multicellular eukaryotes, yet b...
Whole genome duplication (WGD) is a major factor in the evolution of multicellular eukaryotes, yet b...
SummaryWhole genome duplication (WGD) is a major factor in the evolution of multicellular eukaryotes...
<div><p>Genome duplication, which results in polyploidy, is disruptive to fundamental biological pro...
Polyploidy, which results from whole genome duplication (WGD), has shaped the long-term evolution of...
Meiotic chromosome segregation is critical for fertility across eukaryotes, and core meiotic process...
Meiosis is functionally conserved across eukaryotes, thus not expected to vary considerably among di...
Abstract Whole genome duplication (WGD) can promote adaptation but is disruptive to conserv...
Genome duplication, which leads to polyploidy, poses challenges to the meiotic segregation of the no...
Whole genome duplication (WGD) can promote adaptation but is disruptive to conserved processes, espe...
Whole genome duplication is a prominent feature of many highly evolved organisms, especially plants....
A sudden shift in environment or cellular context necessitates rapid adaptation. A dramatic example ...
Whole genome duplication is a prominent feature of many highly evolved organisms, especially plants....
Polyploidy is a major force shaping eukaryote evolution but poses challenges for meiotic chromosome ...
Whole genome duplication (WGD) is a major factor in the evolution of multicellular eukaryotes, yet b...
Whole genome duplication (WGD) is a major factor in the evolution of multicellular eukaryotes, yet b...
Whole genome duplication (WGD) is a major factor in the evolution of multicellular eukaryotes, yet b...
SummaryWhole genome duplication (WGD) is a major factor in the evolution of multicellular eukaryotes...
<div><p>Genome duplication, which results in polyploidy, is disruptive to fundamental biological pro...
Polyploidy, which results from whole genome duplication (WGD), has shaped the long-term evolution of...
Meiotic chromosome segregation is critical for fertility across eukaryotes, and core meiotic process...
Meiosis is functionally conserved across eukaryotes, thus not expected to vary considerably among di...
Abstract Whole genome duplication (WGD) can promote adaptation but is disruptive to conserv...
Genome duplication, which leads to polyploidy, poses challenges to the meiotic segregation of the no...
Whole genome duplication (WGD) can promote adaptation but is disruptive to conserved processes, espe...
Whole genome duplication is a prominent feature of many highly evolved organisms, especially plants....
A sudden shift in environment or cellular context necessitates rapid adaptation. A dramatic example ...
Whole genome duplication is a prominent feature of many highly evolved organisms, especially plants....
Polyploidy is a major force shaping eukaryote evolution but poses challenges for meiotic chromosome ...