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Calhoun, S.

Publications and source records attributed to Calhoun, S..

4 recordsLinked to original sources

Comparative genomics reveals shared accessory regions between members of two Fusarium species complexes virulent on garden pea

The contribution of accessory or conditionally dispensable chromosomes to host-specific virulence was first demonstrated in members of the Fusarium solani species complex (FSSC) that are pathogens of garden pea, Pisum sativum L. The phenomenon has since been shown to exist in many fungal plant pathogens, including the closely related F. oxysporum species complex (FOSC). Genome analysis of members of the FSSC and FOSC pathogenic on pea revealed a diverse size range of the accessory genome of these fungi. Despite the [~]65 million years of diverging time, regions on a chromosome known to carry host-specific virulence factors for pea, including the cytochrome P450 pisatin demethylase (PDA) and other pea pathogenicity (PEP) genes, were present in all genomes of these pea pathogens. Genes directly involved in virulence on pea - PEP2, PDA, and PEP5- were the most frequently clustered together. Transcriptome analysis of fungal mycelia treated with the pea phytoalexin pisatin, identified 1,155 differentially expressed genes where many were involved in cellular stress responses. As wilt pathogens that invade host xylem, members of the FOSC encode more putative effectors, when compared to those in the FSSC, and several FOSC effectors were identified to confer race specificity. The conservation of part of the accessory genomes across two evolutionarily diverged species complexes suggests a common origin. Horizontal transfer of accessory chromosomes containing genetic loci involved in pathogenesis for garden pea offers a parsimonious explanation of the polyphyletic origin of host specificity.

genomics↗

The reference genome for the northeastern Pacific bull kelp, Nereocystis luetkeana

Bull kelp, Nereocystis luetkeana, is a northeastern Pacific kelp with broad distribution from Alaska to central California. Its population declines have caused severe concerns in northern California, the Salish Sea in Washington, and recently in some populations in Oregon. Despite bull kelps accumulated ecological and physiological studies, an assembled and annotated genomic reference was still unavailable. Here, we report the complete and annotated genome of Nereocystis luetkeana, produced by the California Conservation Genomics Project (CCGP), which aims to reveal genomic diversity patterns across California by sequencing the complete genomes of approximately 150 carefully selected species. The genome was assembled into 1,562 scaffolds with 449.82 Mb, 80x of coverage and 22,952 gene models. BUSCO assembly showed a completeness score of 72% for the stramenopiles gene set. The mitochondria and chloroplast genome sequences have 37 Mb and 131 Mb, respectively. The orthology analysis between 10 Phaeophycean genomes showed 1,065 expanded and 286 unique orthogroups for this species. Pairwise comparisons showed 542 orthogroups present only in N. luetkeana and M. pyrifera, another large-body kelp. The enrichment analysis of these orthogroups showed important functions related to central metabolism and signaling due to ATPases enrichment in these two species. This genome assembly will provide an essential resource for the ecology, evolution, conservation, and breeding of bull kelp.

genomics↗

Plasmodium falciparum DNA repair dynamics reveal unique roles for TLS polymerases and PfRad51 in genome diversification

The haploid malaria parasite, Plasmodium falciparum, evolved a unique cohort of DNA repair pathways enabling the parasite to survive in a vertebrate host red blood cell and the mosquito vector. P. falciparum chromosomes are partitioned into a highly conserved core genome and remarkably diverse, largely subtelomeric regions that contain genes encoding important parasite virulence factors. The molecular mechanisms that maintain this chromosomal structure have not been identified. Here, we describe specific DNA repair pathways that differentiate between hypervariable subtelomeric and conserved core regions of the genome. Based on our previous work, we hypothesized that there are potentially important interactions between translesion (TLS) and homologous recombination (HR) pathways for the diversification of multicopy gene families in P. falciparum. Thus, we created knockout parasite lines of the DNA repair enzymes: PfRad51 and the TLS polymerases PfPol{zeta} and PfRev1. We identified that irradiation hypersensitivity varied across the cell cycle for TLS{Delta} parasites and was uniform across the erythrocytic cycle for PfRad51{Delta} parasites, highlighting the variable roles of these pathways. However, important interactions between these pathways were found when we studied directed double strand break (DSB) repair, which revealed a difference in the DNA damage response according to chromosomal location. PfRad51 was essential for HR-mediated repair in the core genome. In contrast, we identified a Rad51 independent homology-directed repair in all three of our knockout lines when a DSB was made in the subtelomeric region of the chromosome. We propose that this differential DNA damage response maintains the distinction in diversification across the chromosome.

microbiology↗

Astrocyte and neurogenic mechanisms of protective gene therapy prevent brain disease and death due to non-ketotic hyperglycinemia

Genetic defects in glycine decarboxylase (GLDC) cause non-ketotic hyperglycinemia (NKH), a rare and frequently fatal neurometabolic disease, which lacks FDA-approved therapies. We characterized CRISPR Cas9-edited humanized mice expressing a prevalent clinical mutation after administration with a single intraperitoneal dose of a novel recombinant of adeno-associated viral vector 9 expressing GLDC (rAAV9-GLDC). Long term biological activity of rAAV9-GLDC was first validated by assessment of its systemic efficacy over five and ten months in mice. Access of rAAV9 to the brain was confirmed by tracking green fluorescent protein (GFP) after a single intraperitoneal dose of rAAV9-GFP. Over five months, control mock treated GFP-mice showed reduction in astrocytes but not microglia, oligodendrocytes or neurons in the brain. 37% of these animals suffered long term neurological disease and/or death. rAAV9-GLDC boosts astrogenesis without triggering an inflammatory response and confers 100% protection against disease progression and fatality due to NKH.

neuroscience↗