A potent, non-toxic insulin-releasing peptide isolated from an extract of the skin of the Asian frog, Hylarana guntheri (Anura:Ranidae)
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Jérôme Leprince | Hubert Vaudry | H. Vaudry | J. Leprince | P. Flatt | T. Jouenne | J. Conlon | L. Coquet | Yasser H.A. Abdel-Wahab | Peter R. Flatt | Thierry Jouenne | Laurent Coquet | J. Michael Conlon | Gavin J. Power | Hu Jiansheng | Y. Abdel-Wahab | Huang Jiansheng | J. Conlon | P. Flatt | Gavin J. Power | Jiansheng Hu
[1] J. Raufman,et al. Isolation and characterization of exendin-4, an exendin-3 analogue, from Heloderma suspectum venom. Further evidence for an exendin receptor on dispersed acini from guinea pig pancreas. , 1992, The Journal of biological chemistry.
[2] P. Flatt,et al. Brevinin-1 and multiple insulin-releasing peptides in the skin of the frog Rana palustris. , 2004, The Journal of endocrinology.
[3] A. Dubois. Notes sur la classification des Ranidae (Amphibiens Anoures) , 1992 .
[4] T. Nakajima,et al. Brevinin-1 and -2, unique antimicrobial peptides from the skin of the frog, Rana brevipoda porsa. , 1992, Biochemical and biophysical research communications.
[5] C. Newgard,et al. Metabolic coupling factors in pancreatic beta-cell signal transduction. , 1995, Annual review of biochemistry.
[6] E. Ah-Sing,et al. Characterization of a Novel Glucose-Responsive Insulin-Secreting Cell Line, BRIN-BD11, Produced by Electrofusion , 1996, Diabetes.
[7] J. Conlon,et al. Glycation of glucagon-like peptide-1(7–36)amide: characterization and impaired action on rat insulin secreting cells , 1998, Diabetologia.
[8] A. Rinaldi. Antimicrobial peptides from amphibian skin: an expanding scenario. , 2002, Current opinion in chemical biology.
[9] A. Bjourson,et al. Purification and characterization of novel antimicrobial peptides from the skin secretion of Hylarana guentheri , 2006, Peptides.
[10] F. Dai,et al. The Zn2+-transporting pathways in pancreatic beta-cells: a role for the L-type voltage-gated Ca2+ channel. , 2006, The Journal of biological chemistry.
[11] F M Matschinsky,et al. A Lesson in Metabolic Regulation Inspired by the Glucokinase Glucose Sensor Paradigm , 1996, Diabetes.
[12] M. Schiffer,et al. Use of helical wheels to represent the structures of proteins and to identify segments with helical potential. , 1967, Biophysical journal.
[13] D. Barra,et al. Antimicrobial peptides from amphibian skin: what do they tell us? , 1998, Biopolymers.
[14] P. Flatt,et al. Asparagus adscendens (Shweta musali) stimulates insulin secretion, insulin action and inhibits starch digestion , 2006, British Journal of Nutrition.
[15] P. Flatt,et al. Skin secretions of Rana saharica frogs reveal antimicrobial peptides esculentins-1 and -1B and brevinins-1E and -2EC with novel insulin releasing activity. , 2006, The Journal of endocrinology.
[16] R. Hancock,et al. Cationic peptides: effectors in innate immunity and novel antimicrobials. , 2001, The Lancet. Infectious diseases.
[17] J. Conlon,et al. Amino terminal glycation of gastric inhibitory polypeptide enhances its insulinotropic action on clonal pancreatic B-cells. , 1998, Biochimica et biophysica acta.
[18] P. Flatt,et al. Insulin-releasing properties of the frog skin peptide pseudin-2 and its [Lys18]-substituted analogue , 2008, Biological chemistry.
[19] H. Vaudry,et al. Cytolytic peptides belonging to the brevinin-1 and brevinin-2 families isolated from the skin of the Japanese brown frog, Rana dybowskii. , 2007, Toxicon : official journal of the International Society on Toxinology.
[20] J. McCarthy,et al. Common infections in diabetes: pathogenesis, management and relationship to glycaemic control , 2007, Diabetes/metabolism research and reviews.
[21] P. Moler,et al. THE AMPHIBIAN TREE OF LIFE , 2006 .
[22] Ya-ping Zhang,et al. Phylogeny of Raninae (Anura: Ranidae) inferred from mitochondrial and nuclear sequences. , 2007, Molecular phylogenetics and evolution.
[23] J. Conlon,et al. Antimicrobial peptides from ranid frogs: taxonomic and phylogenetic markers and a potential source of new therapeutic agents. , 2004, Biochimica et biophysica acta.
[24] P. Nicolas,et al. Molecular strategies in biological evolution of antimicrobial peptides , 2003, Peptides.
[25] P. Flatt,et al. Characterization of naturally occurring peptides in the skin secretion of Rana pipiens frog reveal pipinin-1 as the novel insulin-releasing agent. , 2005, The journal of peptide research : official journal of the American Peptide Society.
[26] J. Conlon,et al. Insulin releasing properties of the temporin family of antimicrobial peptides. , 2007, Protein Peptide Letters.
[27] D. Hillis,et al. Phylogeny of the New World true frogs (Rana). , 2005, Molecular phylogenetics and evolution.