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Bentz, P. C.

Publications and source records attributed to Bentz, P. C..

5 recordsLinked to original sources

Two independent origins of XY sex chromosomes in Asparagus

The relatively young and repeated evolutionary origins of dioecy (separate sexes) in flowering plants enable investigation of molecular dynamics occurring at the earliest stages of sex chromosome evolution. With two independently young origins of dioecy in the genus, Asparagus is a model taxon for studying genetic sex-determination and sex chromosome evolution. Dioecy first evolved in Asparagus [~]3-4 million years ago (Ma) in the ancestor of a now widespread Eurasian clade that includes garden asparagus (Asparagus officinalis), while the second origin occurred in a smaller, geographically restricted, Mediterranean Basin clade including Asparagus horridus. The XY sex chromosomes and sex-determination genes in garden asparagus have been well characterized, but the genetics underlying dioecy in the Mediterranean Basin clade are unknown. We generated new haplotype-resolved reference genomes for garden asparagus and A. horridus, to elucidate the sex chromosomes of A. horridus and explore how dioecy evolved between these two closely related lineages. Analysis of the A. horridus genome revealed an independently evolved XY system derived from different ancestral autosomes (chromosome 3) with different sex-determining genes than documented for garden asparagus (on chromosome 1). We estimate that proto-XY chromosomes evolved around 1-2 Ma in the Mediterranean Basin clade, following an [~]2.1-megabase inversion between the ancestral pair. Recombination suppression and LTR retrotransposon accumulation drove the establishment and expansion of the Y-linked sex-determination region (Y-SDR) that now reaches [~]9.6-megabases in A. horridus. The new garden asparagus genome revealed a Y-SDR that spans [~]1.9-megabases with ten hemizygous genes. Our results evoke hemizygosity as the most probable mechanism responsible for the origin of proto-XY recombination suppression in the Eurasian clade, and that neofunctionalization of one duplicated gene (SOFF) drove the origin of dioecy. These findings support previous inference based on phylogeographic analysis revealing two recent origins of dioecy in Asparagus. Moreover, this work implicates alternative molecular mechanisms for two separate shifts to dioecy in a model taxon important for investigating young sex chromosome evolution. SIGNIFICANCE STATEMENTFlowering plants with separate sexes are ideal systems for investigating genome dynamics underlying the earliest stages of sex chromosome evolution across the tree of life. We use Asparagus as a model to better understand early sex chromosome formation more generally, by investigating how different XY sex chromosomes evolved between two young, closely related clades. Genomic comparisons of garden asparagus and Asparagus horridus (wild related species) revealed distinct evolutionary origins of XY-chromosomes with different sex-determination mechanisms. Whereas the garden asparagus Y-chromosome originally evolved around 3-4 million years ago (Ma), following a small segmental duplication, the Y-chromosome in Asparagus horridus evolved more recently ([~]1-2 Ma) following a large structural inversion between a different chromosome pair. Interestingly, both evolutionary transitions from hermaphroditism to separate sexes occurred as ancestors of garden asparagus and Asparagus horridus independently dispersed northward out of southern Africa.

evolutionary biology↗

Genomic Characterization of Novel Endophyte Strains from Tall Fescue Shows Genome Fragmentation Post-Hybridization

Interspecific hybridization in fungi has gained attention for its role in fungal evolution and potential commercial applications. Successful hybridization can enhance fitness and facilitate adaptation to new ecological niches. However, the genomic consequences of hybridization in fungi remain poorly understood. Epichloe is a genus of fungi that includes both non-hybrid and hybrid species, with the hybrids forming through parasexual hybridization and reproducing asexually. Some Epichloe hybrids are of commercial significance, as they colonize Lolium arundinaceum (Schreb.) Darbysh., a crucial forage and turf grass species. In this study, we sought to generate high-quality genome assemblies for two previously uncharacterized Epichloe hybrid strains, both of which are similar to Epichloe sp. FaTG-3. We aimed to characterize their genomes and examine the effects of parasexual interspecific hybridization on fungal genome structure. Our results reveal that the genomes of both strains are rich in AT-rich blocks and repetitive elements. Upon comparison with putative progenitor genomes, we observed significant fragmentation and rearrangement. Despite the genomic instability, more than 85% of gene homologs from each progenitor species were retained. This study demonstrates that while parasexual hybridization dramatically alters genome structure, it does not significantly affect gene content.

genomics↗

Long-Read Low-Pass Sequencing for High-Resolution Trait Mapping

Accelerating crop improvement is critical to meeting food security demands in a changing climate. Long-read sequencing offers advantages over short-reads in resolving structural variations (SVs) and aligning to complex genomes, but its high cost has limited adoption in breeding programs. Here we develop a high-throughput, scalable approach for long-read low-pass (LRLP) sequencing and variant analysis with PacBio HiFi reads, and apply it to trait mapping in a complex tetraploid peanut (Arachis hypogaea) genome multi-parent advanced generation intercross. We analyze LRLP using both a single reference genome and a pangraph, using both proprietary and open-source tools to analyze SVs and coverage. An increased number of variants are consistently called for LRLP data compared to short-read data. At 1.63x average depth, LRLP sequencing covered 55% of the genome and 58% of gene space, outperforming 1.68x depth short-read low-pass sequencing, which achieved only 17% and 11%, respectively. Enhanced data retention after filtering for probabilistic misalignment and an [~]8.5x decrease in cost per value further demonstrated LRLPs efficacy. Our results highlight LRLP sequencing as a scalable, cost-effective tool for high-resolution trait mapping, with transformative potential for plant breeding and broader genomic applications.

genetics↗

The evolution of heteromorphic sex chromosomes in plants

Sex chromosomes in cannabis and hop were identified a century ago because of their obvious visible differences in size (heteromorphy). However, we know little about the genes they contain that control the development of the inflorescences. Here we assembled genomes, with phased sex chromosomes, for hop and cannabis. The XY chromosomes share an origin prior to the divergence between the genera >36 MYA. Due to the inheritance patterns of the XYs, the male-specific region of the Y is highly-degenerated, with substantial gene loss, while the X shows faster rates of molecular evolution. Consistent with the theory that these species lack an active-Y system, no clear sex-determining genes reside on the Y. Instead, an X-linked homolog of aminocyclopropane-1-carboxylate synthase (ACS), that is involved in the ethylene biosynthesis pathway, determines the fate of the female inflorescence. Beyond sex determination, the sex chromosomes contribute to the sexual dimorphism in ecology and physiology and have played a role in the domestication and breeding of these species.

evolutionary biology↗

Bursts of rapid diversification, dispersals out of southern Africa, and two origins of dioecy punctuate the evolution of Asparagus

The genus Asparagus arose approximately 9-15 million years ago (Ma) and transitions from hermaphroditism to dioecy (separate sexes) occurred [~]3-4 Ma. Roughly 27% of extant Asparagus species are dioecious, while the remaining are bisexual with monoclinous flowers. As such, Asparagus is an ideal model taxon for studying early stages of dioecy and sex chromosome evolution in plants. Until now, however, understanding of diversification and shifts from hermaphroditism to dioecy in Asparagus has been hampered by the lack of robust species tree estimates for the genus. In this study, a genus-wide phylogenomic analysis including 1726 nuclear loci and comprehensive species sampling supports two independent origins of dioecy in Asparagus--first in a widely distributed Eurasian clade, then again in a clade restricted to the Mediterranean Basin. Modeling of ancestral biogeography indicates that both dioecy origins were associated with range expansion out of southern Africa. Our findings also revealed several bursts of diversification across the phylogeny, including an initial radiation in southern Africa that gave rise to 12 major clades in the genus, and more recent radiations that have resulted in paraphyly and polyphyly among closely related species, as expected given active speciation processes. Lastly, we report that the geographic origin of domesticated garden asparagus (Asparagus officinalis L.) was likely in western Asia near the Mediterranean Sea. The presented phylogenomic framework for Asparagus is foundational for ongoing genomic investigations of diversification and functional trait evolution in the genus and contributes to its utility for understanding the origin and early evolution of dioecy and sex chromosomes. Significance StatementAsparagus is an important model system for studying dioecy (separate sexes) evolution in plants. Asparagus taxonomy has been challenging, likely due to rapid species diversifications leading to highly variable species with complicated relationships that are impossible to resolve with limited DNA-sequence data. Using phylogenomics and the largest species sampling to date, we show that all Asparagus lineages originated from an initial radiation in southern Africa and that separate range expansions out of southern Africa set the stage for two distinct origins of dioecy in Asparagus. Our findings provide a deeper understanding of species diversification and the role of long-distance dispersals in the evolution of dioecy. This study also illustrates the utility of phylogenomics for elucidating past and present speciation processes.

evolutionary biology↗