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Eichenberger, J.

Publications and source records attributed to Eichenberger, J..

3 recordsLinked to original sources

From tiny to massive: exploring genome evolution in the model 1 grass genus Brachypodium

Brachypodium is a powerful model system for investigating grass genome evolution, yet genomic resources remain concentrated in the three annual species, whereas perennial species are less sampled. Here, we present chromosome-level assemblies for two perennial species, Brachypodium mexicanum and B. arbuscula, which represent the earliest-diverging lineages of the genus and the earliest-diverging lineage of the core perennial clade, respectively. Synteny-based phylogenomics indicate that B. mexicanum is a meso-allotetraploid composed of two closely related but temporally distinct x=10 subgenomes, here designed as P and U, each carrying subgenome-specific chromosome rearrangements. We further show that the unusually large B. mexicanum genome, in contrast to the reduced genomes of most other Brachypodium species, is primarily due to transposable elements distributed across all chromosomal regions. By contrast, the diploid genome of the earliest-diverging core perennial, B. arbuscula, contains few transposable elements, whereas the most recent diverged diploid perennial B. sylvaticum shows evidence of a secondary TEs proliferation. Comparisons of lineage-specific and functionally enriched orthogroups among B. mexicanum, core perennial species and annual species suggest that ancestral hybridization between annual and perennial lineages may have contributed to the origin of allotetraploid B. mexicanum. These assemblies provide a framework for testing how polyploidy, descending dysploidy, transposable-element turnover, and life-history evolution jointly shaped genome architecture in Brachypodium.

evolutionary biology↗

Legume genome structures and histories inferred from Cercis canadensis and Chamaecrista fasciculata genomes

O_LIThe legume family originated ca. 70 million years ago and soon diversified into at least six lineages (now extant subfamilies). The signal of whole genome duplications (WGD) is apparent in species sampled from all six subfamilies. The early diversification has posed difficulties for resolving the legume backbone structure and the timing of WGDs. C_LIO_LIIn this study, we report the genome sequences and annotations for Cercis canadensis (Cercidoideae) and Chamaecrista fasciculata (Caesalpinoideae) to help resolve the relative taxonomic placements along the legume backbone, the timings of WGDs relative to subfamily origins, and the ancestral legume karyotype. C_LIO_LIAnalyses of genome assemblies from four subfamilies within Fabaceae show that the last common ancestor of all legumes likely had seven chromosomes, with a genome structure similar to the extant Cercis genome. Our analysis supports an allopolyploid origin of the subfamily Caesalpinoideae, with progenitors involving lineages along the backbone of the legume phylogeny. C_LIO_LIA probable allopolyploid origin of Caesalpinoideae subfamily provides a partial explanation for the difficulty in resolving the structure of the legume backbone. The retained karyotype structure and lack of a WGD in the last 100+ Mya, underscore the utility of the Cercis genome as an ancestral reference for the legume family. C_LI

genomics↗

Comparative genomics of the extremophile Cryomyces antarcticus and other psychrophilic Dothideomycetes

Cryomyces antarcticus is an endolithic fungus that inhabits rock outcrops in Antarctica. It survives extremes of cold, humidity and solar radiation in one of the least habitable environments on Earth. This fungus is unusual because it produces heavily melanized, meristematic growth and is thought to be haploid and asexual. Due to its growth in the most extreme environment, it has been suggested as an organism that could survive on Mars. However, the mechanisms it uses to achieve its extremophilic nature are not known. Over a billion years of fungal evolution has enabled representatives of this kingdom to populate almost all parts of planet Earth and to adapt to some of its most uninhabitable environments including extremes of temperature, salinity, pH, water, light, or other sources of radiation. Comparative genomics can provide clues to the processes underlying biological diversity, evolution, and adaptation. This effort has been greatly facilitated by the 1000 Fungal Genomes project and the JGI MycoCosm portal where sequenced genomes have been assembled into phylogenetic and ecological groups representing different projects, lifestyles, ecologies, and evolutionary histories. Comparative genomics within and between these groups provides insights into fungal adaptations, for example to extreme environmental conditions. Here, we analyze two Cryomyces genomes in the context of additional psychrophilic fungi, as well as non-psychrophilic fungi with diverse lifestyles selected from the MycoCosm database. This analysis identifies families of genes that are expanded and contracted in Cryomyces and other psychrophiles and may explain their extremophilic lifestyle. Higher GC contents of genes and of bases in the third positions of codons may help to stabilize DNA under extreme conditions. Numerous smaller contigs in C. antarcticus suggest the presence of an alternative haplotype that could indicate that the sequenced isolate is diploid or dikaryotic. These analyses provide a first step to unraveling the secrets of the extreme lifestyle of C. antarcticus.

genomics↗