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Dive into the research topics where Jeffery W. Jones is active.

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Featured researches published by Jeffery W. Jones.


Nature Communications | 2016

Unique features of a global human ectoparasite identified through sequencing of the bed bug genome

Joshua B. Benoit; Zach N. Adelman; Klaus Reinhardt; Amanda Dolan; Monica Poelchau; Emily C. Jennings; Elise M. Szuter; Richard W. Hagan; Hemant Gujar; Jayendra Nath Shukla; Fang Zhu; M. Mohan; David R. Nelson; Andrew J. Rosendale; Christian Derst; Valentina Resnik; Sebastian Wernig; Pamela Menegazzi; Christian Wegener; Nicolai Peschel; Jacob M. Hendershot; Wolfgang Blenau; Reinhard Predel; Paul R. Johnston; Panagiotis Ioannidis; Robert M. Waterhouse; Ralf Nauen; Corinna Schorn; Mark Christoph Ott; Frank Maiwald

The bed bug, Cimex lectularius, has re-established itself as a ubiquitous human ectoparasite throughout much of the world during the past two decades. This global resurgence is likely linked to increased international travel and commerce in addition to widespread insecticide resistance. Analyses of the C. lectularius sequenced genome (650 Mb) and 14,220 predicted protein-coding genes provide a comprehensive representation of genes that are linked to traumatic insemination, a reduced chemosensory repertoire of genes related to obligate hematophagy, host–symbiont interactions, and several mechanisms of insecticide resistance. In addition, we document the presence of multiple putative lateral gene transfer events. Genome sequencing and annotation establish a solid foundation for future research on mechanisms of insecticide resistance, human–bed bug and symbiont–bed bug associations, and unique features of bed bug biology that contribute to the unprecedented success of C. lectularius as a human ectoparasite.


Genome Biology | 2016

Genome of the Asian longhorned beetle (Anoplophora glabripennis), a globally significant invasive species, reveals key functional and evolutionary innovations at the beetle-plant interface

Duane D. McKenna; Erin D. Scully; Yannick Pauchet; Kelli Hoover; Roy Kirsch; Scott M. Geib; Robert F. Mitchell; Robert M. Waterhouse; Seung Joon Ahn; Deanna Arsala; Joshua B. Benoit; Heath Blackmon; Tiffany Bledsoe; Julia H. Bowsher; André Busch; Bernarda Calla; Hsu Chao; Anna K. Childers; Christopher Childers; Dave J. Clarke; Lorna Cohen; Jeffery P. Demuth; Huyen Dinh; HarshaVardhan Doddapaneni; Amanda Dolan; Jian J. Duan; Shannon Dugan; Markus Friedrich; Karl M. Glastad; Michael A. D. Goodisman

BackgroundRelatively little is known about the genomic basis and evolution of wood-feeding in beetles. We undertook genome sequencing and annotation, gene expression assays, studies of plant cell wall degrading enzymes, and other functional and comparative studies of the Asian longhorned beetle, Anoplophora glabripennis, a globally significant invasive species capable of inflicting severe feeding damage on many important tree species. Complementary studies of genes encoding enzymes involved in digestion of woody plant tissues or detoxification of plant allelochemicals were undertaken with the genomes of 14 additional insects, including the newly sequenced emerald ash borer and bull-headed dung beetle.ResultsThe Asian longhorned beetle genome encodes a uniquely diverse arsenal of enzymes that can degrade the main polysaccharide networks in plant cell walls, detoxify plant allelochemicals, and otherwise facilitate feeding on woody plants. It has the metabolic plasticity needed to feed on diverse plant species, contributing to its highly invasive nature. Large expansions of chemosensory genes involved in the reception of pheromones and plant kairomones are consistent with the complexity of chemical cues it uses to find host plants and mates.ConclusionsAmplification and functional divergence of genes associated with specialized feeding on plants, including genes originally obtained via horizontal gene transfer from fungi and bacteria, contributed to the addition, expansion, and enhancement of the metabolic repertoire of the Asian longhorned beetle, certain other phytophagous beetles, and to a lesser degree, other phytophagous insects. Our results thus begin to establish a genomic basis for the evolutionary success of beetles on plants.


Genome Biology | 2016

The whole genome sequence of the Mediterranean fruit fly, Ceratitis capitata (Wiedemann), reveals insights into the biology and adaptive evolution of a highly invasive pest species

Alexie Papanicolaou; Marc F. Schetelig; Peter Arensburger; Peter W. Atkinson; Joshua B. Benoit; Kostas Bourtzis; Pedro Castañera; John P. Cavanaugh; Hsu Chao; Christopher Childers; Ingrid Curril; Huyen Dinh; HarshaVardhan Doddapaneni; Amanda Dolan; Shannon Dugan; Markus Friedrich; Giuliano Gasperi; Scott M. Geib; Georgios Georgakilas; Richard A. Gibbs; Sarah D. Giers; Ludvik M. Gomulski; Miguel González-Guzmán; Ana Guillem-Amat; Yi Han; Artemis G. Hatzigeorgiou; Pedro Hernández-Crespo; Daniel S.T. Hughes; Jeffery W. Jones; Dimitra Karagkouni

The Mediterranean fruit fly (medfly), Ceratitis capitata, is a major destructive insect pest due to its broad host range, which includes hundreds of fruits and vegetables. It exhibits a unique ability to invade and adapt to ecological niches throughout tropical and subtropical regions of the world, though medfly infestations have been prevented and controlled by the sterile insect technique (SIT) as part of integrated pest management programs (IPMs). The genetic analysis and manipulation of medfly has been subject to intensive study in an effort to improve SIT efficacy and other aspects of IPM control. The 479 Mb medfly genome is sequenced from adult flies from lines inbred for 20 generations. A high-quality assembly is achieved having a contig N50 of 45.7 kb and scaffold N50 of 4.06 Mb. In-depth curation of more than 1800 messenger RNAs shows specific gene expansions that can be related to invasiveness and host adaptation, including gene families for chemoreception, toxin and insecticide metabolism, cuticle proteins, opsins, and aquaporins. We identify genes relevant to IPM control, including those required to improve SIT. The medfly genome sequence provides critical insights into the biology of one of the most serious and widespread agricultural pests. This knowledge should significantly advance the means of controlling the size and invasive potential of medfly populations. Its close relationship to Drosophila, and other insect species important to agriculture and human health, will further comparative functional and structural studies of insect genomes that should broaden our understanding of gene family evolution.


Molecular and Cellular Biology | 2014

Histone Deacetylases and Phosphorylated Polymerase II C-Terminal Domain Recruit Spt6 for Cotranscriptional Histone Reassembly

Bala Bharathi Burugula; Célia Jeronimo; Rakesh Pathak; Jeffery W. Jones; François Robert; Chhabi K. Govind

ABSTRACT Spt6 is a multifunctional histone chaperone involved in the maintenance of chromatin structure during elongation by RNA polymerase II (Pol II). Spt6 has a tandem SH2 (tSH2) domain within its C terminus that recognizes Pol II C-terminal domain (CTD) peptides phosphorylated on Ser2, Ser5, or Try1 in vitro. Deleting the tSH2 domain, however, only has a partial effect on Spt6 occupancy in vivo, suggesting that more complex mechanisms are involved in the Spt6 recruitment. Our results show that the Ser2 kinases Bur1 and Ctk1, but not the Ser5 kinase Kin28, cooperate in recruiting Spt6, genome-wide. Interestingly, the Ser2 kinases promote the association of Spt6 in early transcribed regions and not toward the 3′ ends of genes, where phosphorylated Ser2 reaches its maximum level. In addition, our results uncover an unexpected role for histone deacetylases (Rpd3 and Hos2) in promoting Spt6 interaction with elongating Pol II. Finally, our data suggest that phosphorylation of the Pol II CTD on Tyr1 promotes the association of Spt6 with the 3′ ends of transcribed genes, independently of Ser2 phosphorylation. Collectively, our results show that a complex network of interactions, involving the Spt6 tSH2 domain, CTD phosphorylation, and histone deacetylases, coordinate the recruitment of Spt6 to transcribed genes in vivo.


Scientific Reports | 2018

A model species for agricultural pest genomics: The genome of the Colorado potato beetle, Leptinotarsa decemlineata (Coleoptera: Chrysomelidae)

Sean D. Schoville; Yolanda H. Chen; Martin Andersson; Joshua B. Benoit; Anita Bhandari; Julia H. Bowsher; Kristian Brevik; Kaat Cappelle; Mei-Ju M. Chen; Anna K. Childers; Christopher Childers; Olivier Christiaens; Justin Clements; Elise M. Didion; Elena N. Elpidina; Patamarerk Engsontia; Markus Friedrich; Inmaculada García-Robles; Richard A. Gibbs; Chandan Goswami; Alessandro Grapputo; Kristina Gruden; Marcin Grynberg; Bernard Henrissat; Emily C. Jennings; Jeffery W. Jones; Megha Kalsi; Sher Afzal Khan; Abhishek Kumar; Fei Li

The Colorado potato beetle is one of the most challenging agricultural pests to manage. It has shown a spectacular ability to adapt to a variety of solanaceaeous plants and variable climates during its global invasion, and, notably, to rapidly evolve insecticide resistance. To examine evidence of rapid evolutionary change, and to understand the genetic basis of herbivory and insecticide resistance, we tested for structural and functional genomic changes relative to other arthropod species using genome sequencing, transcriptomics, and community annotation. Two factors that might facilitate rapid evolutionary change include transposable elements, which comprise at least 17% of the genome and are rapidly evolving compared to other Coleoptera, and high levels of nucleotide diversity in rapidly growing pest populations. Adaptations to plant feeding are evident in gene expansions and differential expression of digestive enzymes in gut tissues, as well as expansions of gustatory receptors for bitter tasting. Surprisingly, the suite of genes involved in insecticide resistance is similar to other beetles. Finally, duplications in the RNAi pathway might explain why Leptinotarsa decemlineata has high sensitivity to dsRNA. The L. decemlineata genome provides opportunities to investigate a broad range of phenotypes and to develop sustainable methods to control this widely successful pest.


bioRxiv | 2017

Molecular evolutionary trends and feeding ecology diversification in the Hemiptera, anchored by the milkweed bug genome

Kristen A. Panfilio; Iris M. Vargas Jentzsch; Joshua B. Benoit; Deniz Erezyilmaz; Yuichiro Suzuki; Stefano Colella; Hugh M. Robertson; Monica Poelchau; Robert M. Waterhouse; Panagiotis Ioannidis; Matthew T. Weirauch; Daniel S.T. Hughes; Shwetha C. Murali; John H. Werren; Chris G.C. Jacobs; Elizabeth J. Duncan; David Armisén; Barbara M.I. Vreede; Patrice Baa-Puyoulet; Chloé Suzanne Berger; Chun-che Chang; Hsu Chao; Mei-Ju M. Chen; Yen-Ta Chen; Christopher Childers; Ariel D. Chipman; Andrew G. Cridge; Antonin Jean Johan Crumière; Peter K. Dearden; Elise M. Didion

Background The Hemiptera (aphids, cicadas, and true bugs) are a key insect order whose members offer a close outgroup to the Holometabola, with high diversity within the order for feeding ecology and excellent experimental tractability for molecular genetics. Sequenced genomes have recently become available for hemipteran pest species such as phloem-feeding aphids and blood-feeding bed bugs. To complement and build upon these resources, we present the genome sequence and comparative analyses centered on the large milkweed bug, Oncopeltus fasciatus, a seed feeder of the family Lygaeidae. Results The 926-Mb genome of Oncopeltus is relatively well represented by the current assembly and official gene set, which supports Oncopeltus as a fairly conservative hemipteran species for anchoring molecular comparisons. We use our genomic and RNA-seq data not only to characterize features of the protein-coding gene repertoire and perform isoform-specific RNAi, but also to elucidate patterns of molecular evolution and physiology. We find ongoing, lineage-specific expansion and diversification of repressive C2H2 zinc finger proteins and of intron gain and turnover in the Hemiptera. These analyses also weigh the relative importance of lineage and genome size as predictors of gene structure evolution in insects. Furthermore, we identify enzymatic gains and losses that correlate with hemipteran feeding biology, particularly for reductions in chemoreceptor family size and loss of metabolic reactions within species with derived, fluid-nutrition feeding modes. Conclusions With the milkweed bug genome, for the first time we have a critical mass of sequenced species representing a hemimetabolous insect order, substantially improving the diversity of insect genomics beyond holometabolans such as flies and ants. We use this addition to define commonalities among the Hemiptera and then delve into how hemipteran species’ genomes reflect their feeding ecology types. Our novel and detailed analyses integrate global and rigorous manual approaches, generating hypotheses and identifying specific sets of genes for future investigation. Given Oncopeltus’s strength as an experimental research model, we take particular care to evaluate the sequence resources presented here, augmenting its foundation for molecular research and highlighting potentially general considerations exemplified in the assembly and annotation of this medium-sized genome.


Environmental Science & Technology | 2018

The Toxicogenome of Hyalella azteca: a model for sediment ecotoxicology and evolutionary toxicology

Helen C. Poynton; Simone Hasenbein; Joshua B. Benoit; Maria S. Sepúlveda; Monica Poelchau; Daniel S.T. Hughes; Shwetha C. Murali; Shuai Chen; Karl M. Glastad; Michael A. D. Goodisman; John H. Werren; Joseph H. Vineis; Jennifer L. Bowen; Markus Friedrich; Jeffery W. Jones; Hugh M. Robertson; René Feyereisen; Alexandra Mechler-Hickson; Nicholas Mathers; Carol Eunmi Lee; John K. Colbourne; Adam D. Biales; J. Spencer Johnston; Gary A. Wellborn; Andrew J. Rosendale; Andrew G. Cridge; Monica Munoz-Torres; Peter A. Bain; Austin Manny; Kaley M. Major

Hyalella azteca is a cryptic species complex of epibenthic amphipods of interest to ecotoxicology and evolutionary biology. It is the primary crustacean used in North America for sediment toxicity testing and an emerging model for molecular ecotoxicology. To provide molecular resources for sediment quality assessments and evolutionary studies, we sequenced, assembled, and annotated the genome of the H. azteca U.S. Lab Strain. The genome quality and completeness is comparable with other ecotoxicological model species. Through targeted investigation and use of gene expression data sets of H. azteca exposed to pesticides, metals, and other emerging contaminants, we annotated and characterized the major gene families involved in sequestration, detoxification, oxidative stress, and toxicant response. Our results revealed gene loss related to light sensing, but a large expansion in chemoreceptors, likely underlying sensory shifts necessary in their low light habitats. Gene family expansions were also noted for cytochrome P450 genes, cuticle proteins, ion transporters, and include recent gene duplications in the metal sequestration protein, metallothionein. Mapping of differentially expressed transcripts to the genome significantly increased the ability to functionally annotate toxicant responsive genes. The H. azteca genome will greatly facilitate development of genomic tools for environmental assessments and promote an understanding of how evolution shapes toxicological pathways with implications for environmental and human health.


BMC Biology | 2017

A model species for agricultural pest genomics: the genome of the Colorado potato beetle, Leptinotarsa decemlineata (Coleoptera: Chrysomelidae)

Sean D. Schoville; Yolanda H. Chen; Martin Andersson; Joshua B. Benoit; Anita Bhandari; Julia H. Bowsher; Kristian Brevik; Kaat Cappelle; Mei-Ju M. Chen; Anna K. Childers; Christopher Childers; Olivier Christiaens; Justin Clements; Elise M. Didion; Elena N. Elpidina; Patamarerk Engsontia; Markus Friedrich; Inmaculada García-Robles; Richard A. Gibbs; Chandan Goswami; Alessandro Grapputo; Kristina Gruden; Marcin Grynberg; Bernard Henrissat; Emily C. Jennings; Jeffery W. Jones; Megha Kalsi; Sher Afzal Khan; Abhishek Kumar; Fei Li

Background The Colorado potato beetle, Leptinotarsa decemlineata Say, is one of the most challenging agricultural pests to manage. It has shown a spectacular ability to not only rapidly adapt to a broad range of solanaceaeous plants and variable climates during its global invasion, but, most notably, to rapidly evolve resistance to insecticides (over 50 different compounds in all major classes, in some cases within the first year of use). To examine evidence of rapid evolutionary change, and to understand the genetic basis of herbivory and insecticide resistance, we tested for structural and functional genomic changes relative to other arthropod species, using whole-genome sequencing, transcriptome sequencing, and a large community-driven annotation effort. Results We present a 140x coverage whole genome sequence from a single female L. decemlineata, with a reference gene set of 24,740 genes. Transposable elements comprise at least 17% of the genome, and are heavily represented in an analysis of rapidly evolving gene families compared to other Coleoptera. Population genetic analyses provide evidence of high levels of nucleotide diversity, local geographic structure, and recent population growth in pest populations, pointing to the availability of considerable standing genetic variation. These factors may play an important role in rapid evolutionary change. Adaptations to plant feeding are evident in gene expansions and differential expression of digestive enzymes (e.g. cysteine peptidase genes) in gut tissues, as well as expansions of the gustatory receptors for bitter tasting plants in the nightshade family, Solanaceae. Despite its notoriety for adapting to insecticides, L. decemlineata has a similar suite of genes involved in resistance (metabolic detoxification and cuticle penetration) compared to other beetles, although expansions in specific cytochrome P450 subfamilies are known to be associated with insecticide resistance. Finally, this beetle has interesting duplications in RNAi genes that might be linked to its high sensitivity to RNAi and could be important in the future development of gene targeted pesticides. Conclusions As a representative of one of the most evolutionarily diverse lineages, the L. decemlineata genome will undoubtedly provide new opportunities for deeper understanding on the ecology, evolution, and management of this species, as well as new opportunities to leverage genomic technologies to understand the basis of a broad range of phenotypes and to develop sustainable methods to control this widely successful pest.


PLOS ONE | 2016

Recruitment of Saccharomyces cerevisiae Cmr1/Ydl156w to Coding Regions Promotes Transcription Genome Wide

Jeffery W. Jones; Priyanka Singh; Chhabi K. Govind

Cmr1 (changed mutation rate 1) is a largely uncharacterized nuclear protein that has recently emerged in several global genetic interaction and protein localization studies. It clusters with proteins involved in DNA damage and replication stress response, suggesting a role in maintaining genome integrity. Under conditions of proteasome inhibition or replication stress, this protein localizes to distinct sub-nuclear foci termed as intranuclear quality control (INQ) compartments, which sequester proteins for their subsequent degradation. Interestingly, it also interacts with histones, chromatin remodelers and modifiers, as well as with proteins involved in transcription including subunits of RNA Pol I and Pol III, but not with those of Pol II. It is not known whether Cmr1 plays a role in regulating transcription of Pol II target genes. Here, we show that Cmr1 is recruited to the coding regions of transcribed genes of S. cerevisiae. Cmr1 occupancy correlates with the Pol II occupancy genome-wide, indicating that it is recruited to coding sequences in a transcription-dependent manner. Cmr1-enriched genes include Gcn4 targets and ribosomal protein genes. Furthermore, our results show that Cmr1 recruitment to coding sequences is stimulated by Pol II CTD kinase, Kin28, and the histone deacetylases, Rpd3 and Hos2. Finally, our genome-wide analyses implicate Cmr1 in regulating Pol II occupancy at transcribed coding sequences. However, it is dispensable for maintaining co-transcriptional histone occupancy and histone modification (acetylation and methylation). Collectively, our results show that Cmr1 facilitates transcription by directly engaging with transcribed coding regions.


bioRxiv | 2018

The genome of the water strider Gerris buenoi reveals expansions of gene repertoires associated with adaptations to life on the water

David Armisén; Rajendhran Rajakumar; Markus Friedrich; Joshua B. Benoit; Hugh M. Robertson; Kristen A. Panfilio; Seung-Joon Ahn; Monica Poelchau; Hsu Chao; Huyen Dinh; HarshaVardhan Doddapaneni; Shannon Dugan-Perez; Richard A. Gibbs; Daniel St Hughes; Yi Han; Sandra Lee; Shwetha C Murali; Donna M. Muzny; Jiaxin Qu; Kim C. Worley; Monica Munoz-Torres; Ehab Abouheif; François Bonneton; Travis Chen; Li-Mei Chiang; Christopher P. Childers; Andrew G. Cridge; Antonin Jj Crumiere; Amelie Decaras; Elise M. Didion

The semi-aquatic bugs conquered water surfaces worldwide and occupy ponds, streams, lakes, mangroves, and even open oceans. As such, they inspired a range of scientific studies from ecology and evolution to developmental genetics and hydrodynamics of fluid locomotion. However, the lack of a representative water strider genome hinders thorough investigations of the mechanisms underlying the processes of adaptation and diversification in this group. Here we report the sequencing and manual annotation of the Gerris buenoi (G. buenoi) genome, the first water strider genome to be sequenced so far. G. buenoi genome is about 1 000Mb and the sequencing effort recovered 20 949 predicted protein-coding genes. Manual annotation uncovered a number of local (tandem and proximal) gene duplications and expansions of gene families known for their importance in a variety of processes associated with morphological and physiological adaptations to water surface lifestyle. These expansions affect key processes such as growth, vision, desiccation resistance, detoxification, olfaction and epigenetic components. Strikingly, the G. buenoi genome contains three Insulin Receptors, a unique case among metazoans, suggesting key changes in the rewiring and function of the insulin pathway. Other genomic changes include wavelength sensitivity shifts in opsin proteins likely in association with the requirements of vision in water habitats. Our findings suggest that local gene duplications might have had an important role during the evolution of water striders. These findings along with the G. buenoi genome open exciting research opportunities to understand adaptation and genome evolution of this unique hemimetabolous insect.

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Christopher Childers

United States Department of Agriculture

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Amanda Dolan

University of Rochester

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Hsu Chao

Baylor College of Medicine

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Huyen Dinh

Baylor College of Medicine

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Richard A. Gibbs

Baylor College of Medicine

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Anna K. Childers

United States Department of Agriculture

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