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Adriana D. Briscoe

Bio: Adriana D. Briscoe is an academic researcher from University of California, Irvine. The author has contributed to research in topics: Heliconius & Opsin. The author has an hindex of 37, co-authored 80 publications receiving 5816 citations. Previous affiliations of Adriana D. Briscoe include Michigan State University & Smithsonian Institution.


Papers
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Journal ArticleDOI
TL;DR: It is proposed that chance evolutionary processes, history, and constraints should be considered and quantifying variance between individuals and populations and using fitness measurements to test the adaptive value of traits identified in insect color vision systems are suggested.
Abstract: We review the physiological, molecular, and neural mechanisms of insect color vision. Phylogenetic and molecular analyses reveal that the basic bauplan, UV-blue-green-trichromacy, appears to date back to the Devonian ancestor of all pterygote insects. There are variations on this theme, however. These concern the number of color receptor types, their differential expression across the retina, and their fine tuning along the wavelength scale. In a few cases (but not in many others), these differences can be linked to visual ecology. Other insects have virtually identical sets of color receptors despite strong differences in lifestyle. Instead of the adaptionism that has dominated visual ecology in the past, we propose that chance evolutionary processes, history, and constraints should be considered. In addition to phylogenetic analyses designed to explore these factors, we suggest quantifying variance between individuals and populations and using fitness measurements to test the adaptive value of traits identified in insect color vision systems.

1,308 citations

Journal ArticleDOI
Kanchon K. Dasmahapatra1, James R. Walters2, Adriana D. Briscoe3, John W. Davey, Annabel Whibley, Nicola J. Nadeau2, Aleksey V. Zimin4, Daniel S.T. Hughes5, Laura Ferguson5, Simon H. Martin2, Camilo Salazar6, Camilo Salazar2, James J. Lewis3, Sebastian Adler7, Seung-Joon Ahn8, Dean A. Baker9, Simon W. Baxter2, Nicola Chamberlain10, Ritika Chauhan11, Brian A. Counterman12, Tamas Dalmay11, Lawrence E. Gilbert13, Karl H.J. Gordon14, David G. Heckel8, Heather M. Hines5, Katharina J. Hoff7, Peter W. H. Holland5, Emmanuelle Jacquin-Joly15, Francis M. Jiggins, Robert T. Jones, Durrell D. Kapan16, Durrell D. Kapan17, Paul J. Kersey, Gerardo Lamas, Daniel Lawson, Daniel Mapleson11, Luana S. Maroja18, Arnaud Martin3, Simon Moxon19, William J. Palmer2, Riccardo Papa20, Alexie Papanicolaou14, Yannick Pauchet8, David A. Ray12, Neil Rosser1, Steven L. Salzberg21, Megan A. Supple22, Alison K. Surridge2, Ayşe Tenger-Trolander10, Heiko Vogel8, Paul A. Wilkinson23, Derek Wilson, James A. Yorke4, Furong Yuan3, Alexi Balmuth24, Cathlene Eland, Karim Gharbi, Marian Thomson, Richard A. Gibbs25, Yi Han25, Joy Jayaseelan25, Christie Kovar25, Tittu Mathew25, Donna M. Muzny25, Fiona Ongeri25, Ling-Ling Pu25, Jiaxin Qu25, Rebecca Thornton25, Kim C. Worley25, Yuanqing Wu25, Mauricio Linares26, Mark Blaxter, Richard H. ffrench-Constant27, Mathieu Joron, Marcus R. Kronforst10, Sean P. Mullen28, Robert D. Reed3, Steven E. Scherer25, Stephen Richards25, James Mallet10, James Mallet1, W. Owen McMillan, Chris D. Jiggins2, Chris D. Jiggins6 
05 Jul 2012-Nature
TL;DR: It is inferred that closely related Heliconius species exchange protective colour-pattern genes promiscuously, implying that hybridization has an important role in adaptive radiation.
Abstract: Sequencing of the genome of the butterfly Heliconius melpomene shows that closely related Heliconius species exchange protective colour-pattern genes promiscuously.

1,103 citations

Journal ArticleDOI
TL;DR: The transcriptional repressive function of insect CRY2 descended from a light-sensitive photolyase-like ancestral gene, probably lacking the ability to repress CLOCK:CYCLE-mediated transcription, providing an evolutionary context for proposing novel circadian clock mechanisms in insects.
Abstract: Cryptochrome (CRY) proteins are components of the central circadian clockwork of metazoans. Phylogenetic analyses show at least 2 rounds of gene duplication at the base of the metazoan radiation, as well as several losses, gave rise to 2 cryptochrome (cry) gene families in insects, a Drosophila-like cry1 gene family and a vertebrate-like cry2 family. Previous studies have shown that insect CRY1 is photosensitive, whereas photo-insensitive CRY2 functions to potently inhibit clock-relevant CLOCK:CYCLE-mediated transcription. Here, we extended the transcriptional repressive function of insect CRY2 to 2 orders--Hymenoptera (the honeybee Apis mellifera and the bumblebee Bombus impatiens) and Coleoptera (the red flour beetle Tribolium castaneum). Importantly, the bee and beetle CRY2 proteins are not light sensitive in culture, in either degradation of protein levels or inhibitory transcriptional response, suggesting novel light input pathways into their circadian clocks as Apis and Tribolium do not have CRY1. By mapping the functional data onto a cryptochrome/6-4 photolyase gene tree, we find that the transcriptional repressive function of insect CRY2 descended from a light-sensitive photolyase-like ancestral gene, probably lacking the ability to repress CLOCK:CYCLE-mediated transcription. These data provide an evolutionary context for proposing novel circadian clock mechanisms in insects.

328 citations

Journal ArticleDOI
TL;DR: The authors wish to correct an omission in this Correspondence, because Adriana D. Briscoe should be a coauthor for this paper, because she was the first to disclose to us the existence of a mammalian-like cryptochrome (CRY2) in Anopheles and other insects, a discovery that led directly to searching and finding the monarch butterfly CRY2 in the EST library.

206 citations

Journal ArticleDOI
05 May 2005-Neuron
TL;DR: This work cloned the cDNAs of three visual pigment-encoding opsins (ultraviolet, blue, and long wavelength) and found that all three are expressed uniformly in main retina and the location of a circadian clock in the dorsolateral protocerebrum of butterfly brain is identified.

193 citations


Cited by
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Journal ArticleDOI
TL;DR: Both BlastKOALA and GhostKOalA are automatic annotation servers for genome and metagenome sequences, which perform KO (KEGG Orthology) assignments to characterize individual gene functions and reconstruct KEGG pathways, BRITE hierarchies and K EGG modules to infer high-level functions of the organism or the ecosystem.

2,247 citations

Journal ArticleDOI
01 Nov 2012-Genetics
TL;DR: A suite of methods for learning about population mixtures are presented, implemented in a software package called ADMIXTOOLS, that support formal tests for whether mixture occurred and make it possible to infer proportions and dates of mixture.
Abstract: Population mixture is an important process in biology. We present a suite of methods for learning about population mixtures, implemented in a software package called ADMIXTOOLS, that support formal tests for whether mixture occurred and make it possible to infer proportions and dates of mixture. We also describe the development of a new single nucleotide polymorphism (SNP) array consisting of 629,433 sites with clearly documented ascertainment that was specifically designed for population genetic analyses and that we genotyped in 934 individuals from 53 diverse populations. To illustrate the methods, we give a number of examples that provide new insights about the history of human admixture. The most striking finding is a clear signal of admixture into northern Europe, with one ancestral population related to present-day Basques and Sardinians and the other related to present-day populations of northeast Asia and the Americas. This likely reflects a history of admixture between Neolithic migrants and the indigenous Mesolithic population of Europe, consistent with recent analyses of ancient bones from Sweden and the sequencing of the genome of the Tyrolean "Iceman."

1,877 citations

Journal ArticleDOI
TL;DR: A perspective on the context and evolutionary significance of hybridization during speciation is offered, highlighting issues of current interest and debate and suggesting that the Dobzhansky–Muller model of hybrid incompatibilities requires a broader interpretation.
Abstract: Hybridization has many and varied impacts on the process of speciation. Hybridization may slow or reverse differentiation by allowing gene flow and recombination. It may accelerate speciation via adaptive introgression or cause near-instantaneous speciation by allopolyploidization. It may have multiple effects at different stages and in different spatial contexts within a single speciation event. We offer a perspective on the context and evolutionary significance of hybridization during speciation, highlighting issues of current interest and debate. In secondary contact zones, it is uncertain if barriers to gene flow will be strengthened or broken down due to recombination and gene flow. Theory and empirical evidence suggest the latter is more likely, except within and around strongly selected genomic regions. Hybridization may contribute to speciation through the formation of new hybrid taxa, whereas introgression of a few loci may promote adaptive divergence and so facilitate speciation. Gene regulatory networks, epigenetic effects and the evolution of selfish genetic material in the genome suggest that the Dobzhansky-Muller model of hybrid incompatibilities requires a broader interpretation. Finally, although the incidence of reinforcement remains uncertain, this and other interactions in areas of sympatry may have knock-on effects on speciation both within and outside regions of hybridization.

1,715 citations

Journal ArticleDOI
26 Oct 2006-Nature
TL;DR: The genome sequence of the honeybee Apis mellifera is reported, suggesting a novel African origin for the species A. melliferA and insights into whether Africanized bees spread throughout the New World via hybridization or displacement.
Abstract: Here we report the genome sequence of the honeybee Apis mellifera, a key model for social behaviour and essential to global ecology through pollination. Compared with other sequenced insect genomes, the A. mellifera genome has high A+T and CpG contents, lacks major transposon families, evolves more slowly, and is more similar to vertebrates for circadian rhythm, RNA interference and DNA methylation genes, among others. Furthermore, A. mellifera has fewer genes for innate immunity, detoxification enzymes, cuticle-forming proteins and gustatory receptors, more genes for odorant receptors, and novel genes for nectar and pollen utilization, consistent with its ecology and social organization. Compared to Drosophila, genes in early developmental pathways differ in Apis, whereas similarities exist for functions that differ markedly, such as sex determination, brain function and behaviour. Population genetics suggests a novel African origin for the species A. mellifera and insights into whether Africanized bees spread throughout the New World via hybridization or displacement.

1,673 citations

10 Dec 2007
TL;DR: The experiments on both rice and human genome sequences demonstrate that EVM produces automated gene structure annotation approaching the quality of manual curation.
Abstract: EVidenceModeler (EVM) is presented as an automated eukaryotic gene structure annotation tool that reports eukaryotic gene structures as a weighted consensus of all available evidence. EVM, when combined with the Program to Assemble Spliced Alignments (PASA), yields a comprehensive, configurable annotation system that predicts protein-coding genes and alternatively spliced isoforms. Our experiments on both rice and human genome sequences demonstrate that EVM produces automated gene structure annotation approaching the quality of manual curation.

1,528 citations