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Burke, A. M.

Publications and source records attributed to Burke, A. M..

2 recordsLinked to original sources

Mitotree: The Universal Human Mitochondrial Reference Phylogeny at 10x the Resolution

Mitochondrial DNA (mtDNA) is the oldest and most prevalent source of human molecular phylogenetic reconstruction. Everyone alive today traces their matrilines to one female African ancestor who lived some 145 thousand years ago. For decades, PhyloTree provided researchers with a moderately sized reference tree (v17: n=24,275 sequences, n=5,438 branches). However, hundreds of thousands of sequences are available today, and since PhyloTrees retirement in 2016, there is a need for an actively maintained phylogenetic reference system. In addition, no currently published method can wield such a large de novo reconstruction while dealing with the rampant homoplasy seen in mtDNA and adhering to the accuracy standards expected in this well-studied field. In this paper we introduce Mitotree, the largest human phylogeny ever described (n{approx}330,000 complete sequences, n{approx}54,000 branches), and a new recursive phylogenetic pipeline for estimating it. We incorporate ancient DNA, relaxed clock age estimates (TMRCAs), and public databases (e.g., GenBank, 1000 Genomes, HGDP, and SGDP). We report approximately 180 previously unknown branches older than 30,000 years. The median TMRCA of terminal haplogroups is 2,000 years more recent than PhyloTree. Our pipeline offers a novel divide-and-conquer approach that tackles huge heuristic searches within tractable runtimes, provides high accuracy, and reasonable confidence estimates. Our validation found a false negative rate of 3.5%, and a false positive rate of 1.0%. Among the most striking findings are an [~]83 kya split of African L2e (the oldest in our dataset), the resolution of Otzis K1f into a clade with living descendants, new ethnic founder haplogroups (e.g., Jewish diaspora), and placement of historical figures such as Abraham Lincoln. To our knowledge, Mitotree is the largest de novo haplotype phylogeny built for humanity, and is a continually improved resource for academic, genealogical, and medical research.

genetics↗

Plasmids encode and can mobilize onion pathogenicity in Pantoea agglomerans

Pantoea agglomerans is one of four Pantoea species for which strains have been reported in the United States to cause bacterial rot of onion bulbs. However, not all P. agglomerans strains are pathogenic to onion. We characterized onion-associated strains of P. agglomerans to elucidate the genetic and genomic signatures of onion-pathogenic P. agglomerans. We collected >300 P. agglomerans strains associated with symptomatic onion plants and bulbs from public culture collections, research laboratories, and a multi-year survey in 11 states in the USA. Genome assemblies were generated for 87 P. agglomerans strains that showed a range in onion virulence phenotypes. Combining the 87 genome assemblies with 100 high-quality, public P. agglomerans genome assemblies identified two well-represented and well-supported P. agglomerans phylogroups. Strains causing severe symptoms on onion leaves and bulbs were only identified in Phylogroup II and encoded the HiVir biosynthetic cluster for the phytotoxin pantaphos, supporting the role of HiVir as a crucial pathogenicity factor. Using a MASH-based plasmid classification system, the P. agglomerans HiVir cluster was determined to be encoded in two distinct plasmid contexts: 1) as an accessory gene cluster on a conserved P. agglomerans plasmid (pAggl), or 2) on a mosaic cluster of plasmids common among onion strains (pOnion). Analysis of closed genomes of P. agglomerans revealed that the pOnion plasmids harbored alt genes responsible for encoding tolerance to the thiosulfinate defensive chemistry in Allium spp. Additionally, many of these pOnion plasmids harbored cop gene clusters, which confer resistance to copper. However, the pOnion plasmids encoded the HiVir cluster less frequently. We demonstrated that the pOnion plasmid pCB1C, encoding HiVir and alt clusters as well as an intact conjugative type IV secretion system (T4SS), can act as a natively mobilizable pathogenicity plasmid that transforms P. agglomerans Phylogroup I strains, including environmental strains, into virulent pathogens of onion. This work indicates a central role for plasmids and plasmid ecology in mediating P. agglomerans interactions with onion plants, with potential implications for onion bacterial disease management.

microbiology↗