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Winkler, T. S.

Publications and source records attributed to Winkler, T. S..

4 recordsLinked to original sources

Pleiotropy and repeated mutation drove convergent domestication of grain amaranth

Humans reshaped environments for domesticated plants, yet the extent of human agency in the domestication process remains unresolved. Color variation has been used as evidence for an intended process by humans, as the trait has been mainly linked to visual properties. In the ancient pseudocereal grain amaranth major domestication traits have not changed, but the seed color changed repeatedly from dark to white during multiple domestication processes. Here, we show that the transition to white seed color was of major ecological significance beyond human preference through mechanistic links to seed germination. We identify major metabolomic and transcriptomic changes in the proanthocyanidin pathway leading to loss of seed color and dormancy in domesticated amaranth. Despite the potentially large mutational target size of the proanthocyanidin pathway, the repeated mutation in a single gene led to the domestication phenotype. Multiple independent knock-out mutations in this gene reveal the repeated selection for the loss of seed dormancy in different parts of the Americas. Competition experiments show that the pleiotropic link between seed color and seed dormancy provides a competitive advantage to white seeds in agricultural environments. The reduction of proanthocyanidin content in the seed is observed in numerous crops, including rice and beans, suggesting a common ecological adaptation after early humans altered their environment through changing lifestyles. Our findings establish a direct mechanistic link between individual mutations, pathway-level biochemical reconfiguration, and ecological fitness, illustrating how plants adapted to human-modified environments largely without intentional human agency.

evolutionary biology↗

The grain amaranth pangenome reveals domestication-associated changes in diversity and function of structural variation

BackgroundGrain amaranth is a nutritious pseudocereal from the Americas that was independently domesticated three times from a common wild ancestor. The three domesticated grain amaranths, their wild progenitor, and a close wild relative form a species complex. Pangenomes enable the assessment of genetic variation beyond single nucleotide polymorphisms. ResultsWe have constructed a pangenome for the entire grain amaranth species complex, consisting of new, chromosome-scale genome assemblies for all five species, including the first reference genomes for A. caudatus and A. quitensis. Our high-quality assemblies reach near telomere-to-telomere contiguity. Comparative analyses within the grain amaranth pangenome revealed a high degree of collinearity and overall conserved chromosome structure across species. Genes are similarly conserved, with a [~]75% core gene set. We identify over 100,000 structural variants, distributed throughout the genomes. We quantify gene presence-absence and find that protein biosynthesis gene families were expanding during domestication, while gene loss reflects possible redundancies in other processes. We further map flowering time in a biparental population and find two QTL that together account for a 55-day difference in flowering time between homozygous genotypes. One QTL contains an ortholog of a known flowering-time regulator that may be disrupted by an insertion in the late flowering parent. ConclusionsOur work establishes high-quality genomic resources for the promising protein crop grain amaranth and sheds light on how structural variants shape genomic diversity and repeated evolutionary change in crops. The structural variants and flowering time loci identified can help to understand amaranth adaptation and provide breeding targets for crop improvement.

genomics↗

Domestication shaped the chromatin landscape of grain amaranth

Plant domestication has had profound impacts on the morphology and genetic diversity of crops. Beyond sequence diversity, changes in chromatin structure can play an important role in plant adaptation. However, the interplay between the chromatin landscape and plant domestication remains unclear. We present a high-quality genome assembly and chromatin landscape map of the ancient pseudo-cereal, amaranth. Using ATAC-sequencing of multiple accessions of three grain amaranth species and two wild relatives, we show that the overall amount of accessible chromatin is highly conserved, but about 2.5% of all chromatin switched states, with a higher fraction of the genome repeatedly opening during domestication processes. These differentially accessible chromatin regions, between the crops and their wild ancestor, were species-specific and significantly associated with selective sweeps - reflecting the repeated independent domestication of amaranth. Our findings reveal the dynamic interplay between domestication and the chromatin landscape, highlighting an additional layer of diversity in crops.

genomics↗

Isoform-resolved genome annotation enables mapping of tissue-specific betalain regulation and anthocyanin regulator co-option in amaranth

* Betalains are coloring pigments produced in some families of the order Caryophyllales, where they replace anthocyanins as coloring pigments. While the betalain pathway itself is well studied, the tissue-specific regulation of the pathway remains mostly unknown. * We enhance the high-quality Amaranthus hypochondriacus reference genome and produce a substantially more complete genome annotation, incorporating isoform details. We annotate betalain and anthocyanin pathway genes along with their regulators in amaranth and map the genetic control and tissue-specific regulation of the betalain pathway. * Our improved genome annotation allowed us to identify causal mutations that lead to a knock-out of red betacyanins in natural accessions of amaranth. We reveal the tissue-specific regulation of flower color via a previously uncharacterized MYB transcription factor, AhMYB2. Downregulation of AhMYB2 in the flower leads to reduced expression of key betalain enzyme genes and loss of red flower color. * Our improved amaranth reference genome represents the most complete genome of amaranth to date and a valuable resource for betalain and amaranth research. High similarity of the flower betalain regulator AhMYB2 to anthocyanin regulators and a partially conserved interaction motif support the co-option of anthocyanin regulators for the betalain pathway as possible reason for mutual exclusiveness of the two pigments.

plant biology↗