Complex Modulation of the Aedes aegypti Transcriptome in Response to Dengue Virus Infection
暂无分享,去创建一个
[1] Shui-Tein Chen,et al. Alterations in actin cytoskeletal assembly and junctional protein complexes in human endothelial cells induced by dengue virus infection and mimicry of leukocyte transendothelial migration. , 2009, Journal of proteome research.
[2] Catalin C. Barbacioru,et al. Small RNA profiling of Dengue virus-mosquito interactions implicates the PIWI RNA pathway in anti-viral defense , 2011, BMC Microbiology.
[3] A. Raikhel,et al. Mosquito Cathepsin B-like Protease Involved in Embryonic Degradation of Vitellin Is Produced as a Latent Extraovarian Precursor* , 1999, The Journal of Biological Chemistry.
[4] F. Heinz,et al. Flavivirus structure and membrane fusion. , 2003, Advances in virus research.
[5] W. Black,et al. A dengue receptor as possible genetic marker of vector competence in Aedes aegypti , 2008, BMC Microbiology.
[6] Jorge P. Martínez-Muñoz,et al. Evidence of Vertical Transmission of Dengue Virus in Two Endemic Localities in the State of Oaxaca, Mexico , 2007, Intervirology.
[7] Cole Trapnell,et al. Transcript assembly and quantification by RNA-Seq reveals unannotated transcripts and isoform switching during cell differentiation. , 2010, Nature biotechnology.
[8] A. James. Preventing the spread of malaria and dengue fever using genetically modified mosquitoes. , 2007, Journal of visualized experiments : JoVE.
[9] G. Dimopoulos,et al. An evolutionary conserved function of the JAK-STAT pathway in anti-dengue defense , 2009, Proceedings of the National Academy of Sciences.
[10] S. Berger,et al. During Lytic Infection Herpes Simplex Virus Type 1 Is Associated with Histones Bearing Modifications That Correlate with Active Transcription , 2004, Journal of Virology.
[11] B. Foy,et al. The effects of midgut serine proteases on dengue virus type 2 infectivity of Aedes aegypti. , 2008, The American journal of tropical medicine and hygiene.
[12] J. Birchler,et al. Inhibition of RNA Interference and Modulation of Transposable Element Expression by Cell Death in Drosophila , 2011, Genetics.
[13] B. Kay,et al. Aedes aegypti survival and dispersal estimated by mark-release-recapture in northern Australia. , 1998, The American journal of tropical medicine and hygiene.
[14] P. Roux,et al. Differential Protein Modulation in Midguts of Aedes aegypti Infected with Chikungunya and Dengue 2 Viruses , 2010, PloS one.
[15] S. Wahlund. ZUSAMMENSETZUNG VON POPULATIONEN UND KORRELATIONSERSCHEINUNGEN VOM STANDPUNKT DER VERERBUNGSLEHRE AUS BETRACHTET , 2010 .
[16] L. Restifo,et al. Broad-complex transcription factors regulate thoracic muscle attachment in Drosophila. , 1997, Developmental biology.
[17] K. Miyake,et al. Cathepsins are required for Toll-like receptor 9 responses. , 2008, Biochemical and biophysical research communications.
[18] F. Rey,et al. Dengue virus envelope glycoprotein structure: New insight into its interactions during viral entry , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[19] Evgeny M. Zdobnov,et al. Genome Sequence of Aedes aegypti, a Major Arbovirus Vector , 2007, Science.
[20] S. Behura,et al. Global Cross-Talk of Genes of the Mosquito Aedes aegypti in Response to Dengue Virus Infection , 2011, PLoS neglected tropical diseases.
[21] D. Boyle,et al. Effects of Manipulating Apoptosis on Sindbis Virus Infection of Aedes aegypti Mosquitoes , 2012, Journal of Virology.
[22] K. Paaijmans,et al. Impact of daily temperature fluctuations on dengue virus transmission by Aedes aegypti , 2011, Proceedings of the National Academy of Sciences.
[23] Wei Wang,et al. The basic leucine zipper transcription factor Moatf1 mediates oxidative stress responses and is necessary for full virulence of the rice blast fungus Magnaporthe oryzae. , 2010, Molecular plant-microbe interactions : MPMI.
[24] Panayiotis V. Benos,et al. STAMP: a web tool for exploring DNA-binding motif similarities , 2007, Nucleic Acids Res..
[25] V. Boggaram. Thyroid transcription factor-1 (TTF-1/Nkx2.1/TITF1) gene regulation in the lung. , 2009, Clinical science.
[26] James B. Munro,et al. Forkhead transcription factors regulate mosquito reproduction. , 2007, Insect biochemistry and molecular biology.
[27] A. Gamarnik,et al. Dengue Virus Capsid Protein Usurps Lipid Droplets for Viral Particle Formation , 2009, PLoS pathogens.
[28] B. Foy,et al. Expression profiling and comparative analyses of seven midgut serine proteases from the yellow fever mosquito, Aedes aegypti. , 2010, Journal of insect physiology.
[29] Y. Miki,et al. DNA damage signalling recruits RREB-1 to the p53 tumour suppressor promoter. , 2009, The Biochemical journal.
[30] H. Handa,et al. Drosophila Blimp-1 Is a Transient Transcriptional Repressor That Controls Timing of the Ecdysone-Induced Developmental Pathway , 2007, Molecular and Cellular Biology.
[31] H. Simon,et al. Cathepsins and their involvement in immune responses. , 2010, Swiss medical weekly.
[32] I. Sánchez-Vargas,et al. Dengue virus type 2: replication and tropisms in orally infected Aedes aegypti mosquitoes , 2007, BMC Microbiology.
[33] V. Deubel,et al. Nucleotide sequence and deduced amino acid sequence of the structural proteins of dengue type 2 virus, Jamaica genotype. , 1986, Virology.
[34] J. Deisenhofer,et al. The leucine-rich repeat: a versatile binding motif. , 1994, Trends in biochemical sciences.
[35] J. Cox,et al. Variation in Vector Competence for Dengue Viruses Does Not Depend on Mosquito Midgut Binding Affinity , 2011, PLoS neglected tropical diseases.
[36] B. A. Harrison,et al. Effect of temperature on the vector efficiency of Aedes aegypti for dengue 2 virus. , 1987, The American journal of tropical medicine and hygiene.
[37] S. Paskewitz,et al. Serine proteases as mediators of mosquito immune responses. , 2001, Insect biochemistry and molecular biology.
[38] G. Dimopoulos,et al. Dengue Virus Infection of the Aedes aegypti Salivary Gland and Chemosensory Apparatus Induces Genes that Modulate Infection and Blood-Feeding Behavior , 2012, PLoS pathogens.
[39] A. Sharrocks,et al. The MADS-box family of transcription factors. , 1995, European journal of biochemistry.
[40] Lior Pachter,et al. Sequence Analysis , 2020, Definitions.
[41] Zhiyong Xi,et al. The Aedes aegypti Toll Pathway Controls Dengue Virus Infection , 2008, PLoS pathogens.
[42] Mark P. Simmons,et al. Rapid Intraspecific Evolution of miRNA and siRNA Genes in the Mosquito Aedes aegypti , 2012, PloS one.
[43] G. Dimopoulos,et al. Dengue Virus Inhibits Immune Responses in Aedes aegypti Cells , 2010, PloS one.
[44] A. James,et al. Transgene‐mediated suppression of dengue viruses in the salivary glands of the yellow fever mosquito, Aedes aegypti , 2010, Insect molecular biology.
[45] R. Rico-Hesse,et al. Aedes aegypti vectorial capacity is determined by the infecting genotype of dengue virus. , 2006, The American journal of tropical medicine and hygiene.
[46] W. Huber,et al. which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. MAnorm: a robust model for quantitative comparison of ChIP-Seq data sets , 2011 .
[47] R. J. Pitts,et al. Transcriptome profiling of chemosensory appendages in the malaria vector Anopheles gambiae reveals tissue- and sex-specific signatures of odor coding , 2011, BMC Genomics.
[48] W. Hausermann,et al. Dispersal and other population parameters of Aedes aegypti in an African village and their possible significance in epidemiology of vector-borne diseases. , 1986, The American journal of tropical medicine and hygiene.
[49] B. Angel,et al. Distribution and seasonality of vertically transmitted dengue viruses in Aedes mosquitoes in arid and semi-arid areas of Rajasthan, India. , 2008, Journal of vector borne diseases.
[50] A. James,et al. Strain Variation in the Transcriptome of the Dengue Fever Vector, Aedes aegypti , 2012, G3: Genes | Genomes | Genetics.
[51] R. Rico-Hesse,et al. Differential susceptibility of Aedes aegypti to infection by the American and Southeast Asian genotypes of dengue type 2 virus. , 2001, Vector borne and zoonotic diseases.
[52] D. Gubler. Epidemic dengue/dengue hemorrhagic fever as a public health, social and economic problem in the 21st century. , 2002, Trends in microbiology.
[53] Nikos Vasilakis,et al. Molecular evolution of dengue viruses: contributions of phylogenetics to understanding the history and epidemiology of the preeminent arboviral disease. , 2009, Infection, genetics and evolution : journal of molecular epidemiology and evolutionary genetics in infectious diseases.
[54] Karyn Megy,et al. Comparative genomics allows the discovery of cis-regulatory elements in mosquitoes , 2009, Proceedings of the National Academy of Sciences.
[55] J. Farfán-Ale,et al. Flavivirus susceptibility in Aedes aegypti. , 2002, Archives of medical research.
[56] Maria Miller. The importance of being flexible: the case of basic region leucine zipper transcriptional regulators. , 2009, Current protein & peptide science.
[57] G. Ebel,et al. Dynamics of flavivirus infection in mosquitoes. , 2003, Advances in virus research.
[58] G. Kuno. Early History of Laboratory Breeding of Aedes aegypti (Diptera: Culicidae) Focusing on the Origins and use of Selected Strains , 2010, Journal of medical entomology.
[59] C. Rice,et al. Dengue Virus Type 2 Infections of Aedes aegypti Are Modulated by the Mosquito's RNA Interference Pathway , 2009, PLoS pathogens.
[60] S. Higgs,et al. Salivary gland morphology and virus transmission during long-term cytopathologic West Nile virus infection in Culex mosquitoes. , 2007, The American journal of tropical medicine and hygiene.
[61] Aurelija Zvirbliene,et al. Influenza Virus Ribonucleoprotein Complexes Gain Preferential Access to Cellular Export Machinery through Chromatin Targeting , 2011, PLoS pathogens.
[62] Ming-Ming Zhou,et al. Viral-encoded enzymes that target host chromatin functions. , 2010, Biochimica et biophysica acta.
[63] D. Missé,et al. Induction of a Peptide with Activity against a Broad Spectrum of Pathogens in the Aedes aegypti Salivary Gland, following Infection with Dengue Virus , 2011, PLoS pathogens.
[64] Alexander E. Kel,et al. TRANSFAC® and its module TRANSCompel®: transcriptional gene regulation in eukaryotes , 2005, Nucleic Acids Res..
[65] S. Higgs,et al. Variation in vector competence for dengue 2 virus among 24 collections of Aedes aegypti from Mexico and the United States. , 2002, The American journal of tropical medicine and hygiene.
[66] A. James,et al. Engineering RNA interference-based resistance to dengue virus type 2 in genetically modified Aedes aegypti. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[67] Aklank Jain,et al. High-mobility-group chromosomal proteins, HMGA1 as potential tumour markers , 2002 .
[68] M. Saarma,et al. Novel CDNF/MANF family of neurotrophic factors , 2010, Developmental neurobiology.
[69] S. Higgs,et al. Alterations in the Aedes aegypti Transcriptome during Infection with West Nile, Dengue and Yellow Fever Viruses , 2011, PLoS pathogens.
[70] Deborah J. Andrew,et al. CrebA regulates secretory activity in the Drosophila salivary gland and epidermis , 2005, Development.
[71] S. Dimitrov,et al. Control of the histone-acetyltransferase activity of Tip60 by the HIV-1 transactivator protein, Tat. , 1999, Biochemistry.
[72] P. Moreau,et al. RREB-1 Is a Transcriptional Repressor of HLA-G1 , 2009, The Journal of Immunology.
[73] D. Gubler,et al. A simple technique for demonstrating transmission of dengue virus by mosquitoes without the use of vertebrate hosts. , 1976, The American journal of tropical medicine and hygiene.