An overview of the sand fly salivary proteins in vaccine development against leishmaniases
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[1] N. Seyed,et al. Leishmania tarentolae as Potential Live Vaccine Co-Expressing Distinct Salivary Gland Proteins Against Experimental Cutaneous Leishmaniasis in BALB/c Mice Model , 2022, Frontiers in Immunology.
[2] S. Ajdary,et al. Immunoinformatics Evaluation of a Fusion Protein Composed of Leishmania infantum LiHyV and Phlebotomus kandelakii Apyrase as a Vaccine Candidate against Visceral Leishmaniasis , 2022, Iranian journal of parasitology.
[3] R. Coler,et al. Protective Efficacy in a Hamster Model of a Multivalent Vaccine for Human Visceral Leishmaniasis (MuLeVaClin) Consisting of the KMP11, LEISH-F3+, and LJL143 Antigens in Virosomes, Plus GLA-SE Adjuvant , 2021, Microorganisms.
[4] J. Andersen,et al. A sand fly salivary protein acts as a neutrophil chemoattractant , 2021, Nature Communications.
[5] J. Valenzuela,et al. Engineering a vector-based pan-Leishmania vaccine for humans: proof of principle , 2020, Scientific Reports.
[6] N. Polanska,et al. Phlebotomus perniciosus Recombinant Salivary Proteins Polarize Murine Macrophages Toward the Anti-Inflammatory Phenotype , 2020, Frontiers in Cellular and Infection Microbiology.
[7] N. Polanska,et al. Interactions between host biogenic amines and sand fly salivary yellow-related proteins , 2020, Parasites & Vectors.
[8] V. Prajapati,et al. Vaccinomics strategy to concoct a promising subunit vaccine for visceral leishmaniasis targeting sandfly and leishmania antigens. , 2020, International journal of biological macromolecules.
[9] P. Parvizi,et al. Bioinformatics analyses of immunogenic T-cell epitopes of LeIF and PpSP15 proteins from Leishmania major and sand fly saliva used as model antigens for the design of a multi-epitope vaccine to control leishmaniasis. , 2020, Infection, genetics and evolution : journal of molecular epidemiology and evolutionary genetics in infectious diseases.
[10] R. Safaralizadeh,et al. Lactococcus lactis expressing sand fly PpSP15 salivary protein confers long-term protection against Leishmania major in BALB/c mice , 2020, PLoS neglected tropical diseases.
[11] J. Andersen,et al. Functional and structural similarities of D7 proteins in the independently-evolved salivary secretions of sand flies and mosquitoes , 2019, Scientific Reports.
[12] S. Gharibzadeh,et al. DNA plasmid coding for Phlebotomus sergenti salivary protein PsSP9, a member of the SP15 family of proteins, protects against Leishmania tropica , 2019, PLoS neglected tropical diseases.
[13] P. Volf,et al. Human antibody reaction against recombinant salivary proteins of Phlebotomus orientalis in Eastern Africa , 2018, PLoS neglected tropical diseases.
[14] J. Ribeiro,et al. Immunity to LuloHya and Lundep, the salivary spreading factors from Lutzomyia longipalpis, protects against Leishmania major infection , 2018, PLoS pathogens.
[15] S. Kamhawi,et al. Phlebotomus papatasi Yellow-Related and Apyrase Salivary Proteins Are Candidates for Vaccination against Human Cutaneous Leishmaniasis. , 2017, The Journal of investigative dermatology.
[16] J. Valenzuela,et al. Immunization with LJM11 salivary protein protects against infection with Leishmania braziliensis in the presence of Lutzomyia longipalpis saliva. , 2018, Acta tropica.
[17] O. Courtenay,et al. Antibody response to sand fly saliva is a marker of transmission intensity but not disease progression in dogs naturally infected with Leishmania infantum , 2018, Parasites & Vectors.
[18] W. Wheat,et al. Immunization against full-length protein and peptides from the Lutzomyia longipalpis sand fly salivary component maxadilan protects against Leishmania major infection in a murine model , 2017, Vaccine.
[19] R. Coler,et al. Pre-clinical antigenicity studies of an innovative multivalent vaccine for human visceral leishmaniasis , 2017, PLoS neglected tropical diseases.
[20] P. Volf,et al. Insights into the sand fly saliva: Blood-feeding and immune interactions between sand flies, hosts, and Leishmania , 2017, PLoS neglected tropical diseases.
[21] A. M. Carvalho,et al. Seroconversion to Lutzomyia intermedia LinB-13 as a biomarker for developing cutaneous leishmaniasis , 2017, Scientific Reports.
[22] M. Gramiccia,et al. The recombinant protein rSP03B is a valid antigen for screening dog exposure to Phlebotomus perniciosus across foci of canine leishmaniasis , 2017, Medical and veterinary entomology.
[23] J. Ribeiro,et al. Molecular Diversity between Salivary Proteins from New World and Old World Sand Flies with Emphasis on Bichromomyia olmeca, the Sand Fly Vector of Leishmania mexicana in Mesoamerica , 2016, PLoS neglected tropical diseases.
[24] P. Volf,et al. Recombinant Salivary Proteins of Phlebotomus orientalis are Suitable Antigens to Measure Exposure of Domestic Animals to Sand Fly Bites , 2016, PLoS neglected tropical diseases.
[25] J. Ribeiro,et al. SALO, a novel classical pathway complement inhibitor from saliva of the sand fly Lutzomyia longipalpis , 2016, Scientific Reports.
[26] S. Gannavaram,et al. Intradermal Immunization of Leishmania donovani Centrin Knock-Out Parasites in Combination with Salivary Protein LJM19 from Sand Fly Vector Induces a Durable Protective Immune Response in Hamsters , 2016, PLoS neglected tropical diseases.
[27] F. Zahedifard,et al. Leishmania tarentolae secreting the sand fly salivary antigen PpSP15 confers protection against Leishmania major infection in a susceptible BALB/c mice model. , 2015, Molecular immunology.
[28] A. Ben Salah,et al. Validation of Recombinant Salivary Protein PpSP32 as a Suitable Marker of Human Exposure to Phlebotomus papatasi, the Vector of Leishmania major in Tunisia , 2015, PLoS neglected tropical diseases.
[29] J. Andersen,et al. A sand fly salivary protein vaccine shows efficacy against vector-transmitted cutaneous leishmaniasis in nonhuman primates , 2015, Science Translational Medicine.
[30] M. Gramiccia,et al. Canine Antibodies against Salivary Recombinant Proteins of Phlebotomus perniciosus: A Longitudinal Study in an Endemic Focus of Canine Leishmaniasis , 2015, PLoS neglected tropical diseases.
[31] E. Gomez,et al. Ayadualin, a novel RGD peptide with dual antihemostatic activities from the sand fly Lutzomyia ayacuchensis, a vector of Andean-type cutaneous leishmaniasis. , 2015, Biochimie.
[32] P. Volf,et al. Phlebotomus papatasi exposure cross-protects mice against Leishmania major co-inoculated with Phlebotomus duboscqi salivary gland homogenate. , 2015, Acta tropica.
[33] L. Kelly-Hope,et al. Severity of Old World Cutaneous Leishmaniasis Is Influenced by Previous Exposure to Sandfly Bites in Saudi Arabia , 2015, PLoS neglected tropical diseases.
[34] P. Volf,et al. High levels of anti-Phlebotomus perniciosus saliva antibodies in different vertebrate hosts from the re-emerging leishmaniosis focus in Madrid, Spain. , 2014, Veterinary parasitology.
[35] S. Kamhawi,et al. A Listeria monocytogenes-Based Vaccine That Secretes Sand Fly Salivary Protein LJM11 Confers Long-Term Protection against Vector-Transmitted Leishmania major , 2014, Infection and Immunity.
[36] F. Zahedifard,et al. Enhanced Protective Efficacy of Nonpathogenic Recombinant Leishmania tarentolae Expressing Cysteine Proteinases Combined with a Sand Fly Salivary Antigen , 2014, PLoS neglected tropical diseases.
[37] J. Ribeiro,et al. Lundep, a Sand Fly Salivary Endonuclease Increases Leishmania Parasite Survival in Neutrophils and Inhibits XIIa Contact Activation in Human Plasma , 2014, PLoS pathogens.
[38] P. Volf,et al. Recombinant Antigens from Phlebotomus perniciosus Saliva as Markers of Canine Exposure to Visceral Leishmaniases Vector , 2014, PLoS neglected tropical diseases.
[39] J. Andersen,et al. Novel Family of Insect Salivary Inhibitors Blocks Contact Pathway Activation by Binding to Polyphosphate, Heparin, and Dextran Sulfate , 2013, Arteriosclerosis, thrombosis, and vascular biology.
[40] C. D. de Oliveira,et al. Sand-Fly Saliva-Leishmania-Man: The Trigger Trio , 2013, Front. Immunol..
[41] M. Barral-Netto,et al. Seroconversion of sentinel chickens as a biomarker for monitoring exposure to visceral Leishmaniasis , 2013, Scientific Reports.
[42] J. Ribeiro,et al. Functional Transcriptomics of Wild-Caught Lutzomyia intermedia Salivary Glands: Identification of a Protective Salivary Protein against Leishmania braziliensis Infection , 2013, PLoS neglected tropical diseases.
[43] Lee L Yu,et al. Salivary Antigen-5/CAP Family Members Are Cu2+-dependent Antioxidant Enzymes That Scavenge O2⨪ and Inhibit Collagen-induced Platelet Aggregation and Neutrophil Oxidative Burst* , 2013, The Journal of Biological Chemistry.
[44] J. Ribeiro,et al. Lufaxin, a Novel Factor Xa Inhibitor From the Salivary Gland of the Sand Fly Lutzomyia longipalpis Blocks Protease-Activated Receptor 2 Activation and Inhibits Inflammation and Thrombosis In Vivo , 2012, Arteriosclerosis, thrombosis, and vascular biology.
[45] S. Kamhawi,et al. Immunity to Sand Fly Salivary Protein LJM11 Modulates Host Response to Vector-Transmitted Leishmania Conferring Ulcer-Free Protection , 2012, The Journal of Investigative Dermatology.
[46] B. Andrade,et al. Biomarkers for Exposure to Sand Flies Bites as Tools to Aid Control of Leishmaniasis , 2012, Front. Immun..
[47] J. Valenzuela,et al. DNA vaccination with KMP11 and Lutzomyia longipalpis salivary protein protects hamsters against visceral leishmaniasis. , 2011, Acta tropica.
[48] J. Andersen,et al. Structure and Function of a “Yellow” Protein from Saliva of the Sand Fly Lutzomyia longipalpis That Confers Protective Immunity against Leishmania major Infection* , 2011, The Journal of Biological Chemistry.
[49] J. Valenzuela,et al. Lutzomyia longipalpis Saliva or Salivary Protein LJM19 Protects against Leishmania braziliensis and the Saliva of Its Vector, Lutzomyia intermedia , 2011, PLoS neglected tropical diseases.
[50] J. Valenzuela,et al. Using Recombinant Proteins from Lutzomyia longipalpis Saliva to Estimate Human Vector Exposure in Visceral Leishmaniasis Endemic Areas , 2010, PLoS neglected tropical diseases.
[51] P. Volf,et al. Discovery of Markers of Exposure Specific to Bites of Lutzomyia longipalpis, the Vector of Leishmania infantum chagasi in Latin America , 2010, PLoS neglected tropical diseases.
[52] J. Valenzuela,et al. Functional characterization of a salivary apyrase from the sand fly, Phlebotomus duboscqi, a vector of Leishmania major. , 2009, Journal of insect physiology.
[53] J. Ward,et al. Sand Fly Salivary Proteins Induce Strong Cellular Immunity in a Natural Reservoir of Visceral Leishmaniasis with Adverse Consequences for Leishmania , 2009, PLoS pathogens.
[54] P. Volf,et al. Hyaluronidase of Bloodsucking Insects and Its Enhancing Effect on Leishmania Infection in Mice , 2008, PLoS neglected tropical diseases.
[55] J. C. Miranda,et al. Immunity to a salivary protein of a sand fly vector protects against the fatal outcome of visceral leishmaniasis in a hamster model , 2008, Proceedings of the National Academy of Sciences.
[56] S. Kamhawi,et al. Immunity to Distinct Sand Fly Salivary Proteins Primes the Anti-Leishmania Immune Response towards Protection or Exacerbation of Disease , 2008, PLoS neglected tropical diseases.
[57] C. Brodskyn,et al. Role of Sand Fly Saliva in Human and Experimental Leishmaniasis: Current Insights , 2007, Scandinavian journal of immunology.
[58] P. Volf,et al. Sand fly saliva: effects on host immune response and Leishmania transmission. , 2006, Folia parasitologica.
[59] K. Chang,et al. Sand fly specificity of saliva-mediated protective immunity in Leishmania amazonensis-BALB/c mouse model. , 2005, Microbes and infection.
[60] J. Valenzuela,et al. Identification of the most abundant secreted proteins from the salivary glands of the sand fly Lutzomyia longipalpis, vector of Leishmania chagasi , 2004, Journal of Experimental Biology.
[61] P. Desjeux. Leishmaniasis: current situation and new perspectives. , 2004, Comparative immunology, microbiology and infectious diseases.
[62] C. Shoemaker,et al. Sandfly Maxadilan Exacerbates Infection with Leishmania major and Vaccinating Against It Protects Against L. major Infection1 , 2001, The Journal of Immunology.
[63] M. Enserink. Sand Fly Saliva May Be Key to New Vaccine , 2001, Science.
[64] Y. Belkaid,et al. Toward a Defined Anti-Leishmania Vaccine Targeting Vector Antigens , 2001, The Journal of experimental medicine.
[65] Y. Belkaid,et al. Protection against cutaneous leishmaniasis resulting from bites of uninfected sand flies. , 2000, Science.
[66] S. Kamhawi. The biological and immunomodulatory properties of sand fly saliva and its role in the establishment of Leishmania infections. , 2000, Microbes and infection.
[67] J. Ribeiro,et al. The salivary adenosine deaminase from the sand fly Lutzomyia longipalpis. , 2000, Experimental parasitology.
[68] J. Ribeiro,et al. Salivary glands of the sand fly Phlebotomus papatasi contain pharmacologically active amounts of adenosine and 5'-AMP. , 1999, The Journal of experimental biology.
[69] M. Soares,et al. The vasoactive peptide maxadilan from sand fly saliva inhibits TNF-alpha and induces IL-6 by mouse macrophages through interaction with the pituitary adenylate cyclase-activating polypeptide (PACAP) receptor. , 1998, Journal of immunology.
[70] M. Lerner,et al. Isolation of maxadilan, a potent vasodilatory peptide from the salivary glands of the sand fly Lutzomyia longipalpis. , 1991, The Journal of biological chemistry.