Antifungal Peptides as Therapeutic Agents
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Paul D. Cotter | P. Cotter | Miguel Fernández de Ullivarri | Sara Arbulu | Enriqueta Garcia-Gutierrez | Enriqueta Garcia-Gutierrez | Sara Arbulu | Miguel Fernández de Ullivarri
[1] M. Richardson,et al. Systemic fungal infections , 2017, Medicine.
[2] Jiwon Seo,et al. Antimicrobial peptides under clinical investigation , 2019, Peptide Science.
[3] Cheng Shi,et al. DRAMP 2.0, an updated data repository of antimicrobial peptides , 2019, Scientific Data.
[4] Xiaoqing Shi,et al. Biotechnological Production of the Cell Penetrating Antifungal PAF102 Peptide in Pichia pastoris , 2019, Front. Microbiol..
[5] L. Feliu,et al. Solid-phase synthesis of biaryl cyclic peptides containing a histidine-tyrosine linkage , 2019, Tetrahedron.
[6] Muhammad Arif,et al. Plant defensins: types, mechanism of action and prospects of genetic engineering for enhanced disease resistance in plants , 2019, 3 Biotech.
[7] F. Nazarian-Firouzabadi,et al. Production of a Recombinant Dermaseptin Peptide in Nicotiana tabacum Hairy Roots with Enhanced Antimicrobial Activity , 2019, Molecular Biotechnology.
[8] M. Felipe,et al. Antifungal drugs: New insights in research & development. , 2019, Pharmacology & therapeutics.
[9] A. Halasz. Lactic Acid Bacteria , 2019, Methods in Molecular Biology.
[10] R. Pogni,et al. Streptomyces Secondary Metabolites , 2018, Basic Biology and Applications of Actinobacteria.
[11] S. Enany. Basic Biology and Applications of Actinobacteria , 2018 .
[12] P. Contursi,et al. Antifungal and anti-biofilm activity of the first cryptic antimicrobial peptide from an archaeal protein against Candida spp. clinical isolates , 2018, Scientific Reports.
[13] Seong-Cheol Park,et al. Hydrophilic Linear Peptide with Histidine and Lysine Residues as a Key Factor Affecting Antifungal Activity , 2018, International journal of molecular sciences.
[14] B. Foligné,et al. Occurrence and Dynamism of Lactic Acid Bacteria in Distinct Ecological Niches: A Multifaceted Functional Health Perspective , 2018, Front. Microbiol..
[15] D. Wibowo,et al. Recent achievements and perspectives for large-scale recombinant production of antimicrobial peptides , 2018, Applied Microbiology and Biotechnology.
[16] Zhaoxin Lu,et al. Improving Iturin A Production of Bacillus amyloliquefaciens by Genome Shuffling and Its Inhibition Against Saccharomyces cerevisiae in Orange Juice , 2018, Front. Microbiol..
[17] Jufang Wang,et al. Rapid and efficient production of cecropin A antibacterial peptide in Escherichia coli by fusion with a self-aggregating protein , 2018, BMC Biotechnology.
[18] P. Manzanares,et al. Three Antifungal Proteins From Penicillium expansum: Different Patterns of Production and Antifungal Activity , 2018, Front. Microbiol..
[19] N. Akhtar,et al. Efficient Production of Recombinant Protegrin-1 From Pichia pastoris, and Its Antimicrobial and in vitro Cell Migration Activity , 2018, Front. Microbiol..
[20] Laichuang Han,et al. Exploitation of Bacillus subtilis as a robust workhorse for production of heterologous proteins and beyond , 2018, World Journal of Microbiology and Biotechnology.
[21] M. Kawada,et al. Structure-activity relationship study of leucinostatin A, a modulator of tumor−stroma interaction , 2018, Tetrahedron.
[22] A. Neves,et al. Identification and characterization of a new antifungal peptide in fermented milk product containing bioprotective Lactobacillus cultures. , 2018, FEMS yeast research.
[23] Simon L. Porter,et al. Ultrashort Self-Assembling Peptide Hydrogel for the Treatment of Fungal Infections , 2018, Gels.
[24] B. Kullberg,et al. Invasive Candidiasis. , 2019, The New England journal of medicine.
[25] N. Ajami,et al. Investigating Colonization of the Healthy Adult Gastrointestinal Tract by Fungi , 2018, mSphere.
[26] C. Vágvölgyi,et al. Anti-Candidal Activity and Functional Mapping of Recombinant and Synthetic Neosartorya fischeri Antifungal Protein 2 (NFAP2) , 2018, Front. Microbiol..
[27] P. Berger,et al. The Mycobiome: A Neglected Component in the Microbiota-Gut-Brain Axis , 2018, Microorganisms.
[28] Kumardeep Chaudhary,et al. In Silico Approach for Prediction of Antifungal Peptides , 2018, Front. Microbiol..
[29] S. Kroll,et al. Flow rate dependent continuous hydrolysis of protein isolates , 2018, AMB Express.
[30] A. Fazeli,et al. Recombinant production of bovine Lactoferrin-derived antimicrobial peptide in tobacco hairy roots expression system. , 2018, Plant physiology and biochemistry : PPB.
[31] Wolfgang Hüttel,et al. Cryptic Production of trans-3-Hydroxyproline in Echinocandin B Biosynthesis , 2018, Applied and Environmental Microbiology.
[32] K. Hyde,et al. Morpho-Molecular Characterization of Two Ampelomyces spp. (Pleosporales) Strains Mycoparasites of Powdery Mildew of Hevea brasiliensis , 2018, Front. Microbiol..
[33] Simranjeet Singh,et al. Fungal Biotechnology: Role and Aspects , 2018 .
[34] J. Frick,et al. Fungi as Part of the Microbiota and Interactions with Intestinal Bacteria. , 2018, Current topics in microbiology and immunology.
[35] C. Zhai,et al. The heterologous expression strategies of antimicrobial peptides in microbial systems. , 2017, Protein expression and purification.
[36] J. Robertson,et al. Face Dependence of Schottky Barriers Heights of Silicides and Germanides on Si and Ge , 2017, Scientific Reports.
[37] J. Drijfhout,et al. A Linear 19-Mer Plant Defensin-Derived Peptide Acts Synergistically with Caspofungin against Candida albicans Biofilms , 2017, Front. Microbiol..
[38] Felix Bongomin,et al. Global and Multi-National Prevalence of Fungal Diseases—Estimate Precision , 2017, Journal of fungi.
[39] D. Teng,et al. Antibacterial and immunomodulatory activities of insect defensins-DLP2 and DLP4 against multidrug-resistant Staphylococcus aureus , 2017, Scientific Reports.
[40] Jae Min Lee,et al. Voriconazole plus caspofungin for treatment of invasive fungal infection in children with acute leukemia , 2017, Blood research.
[41] Z. Urbańczyk-Lipkowska,et al. Natural Antimicrobial Peptides as Inspiration for Design of a New Generation Antifungal Compounds , 2017, Journal of fungi.
[42] Hun Heo,et al. Targeting and synergistic action of an antifungal peptide in an antibiotic drug‐delivery system , 2017, Journal of controlled release : official journal of the Controlled Release Society.
[43] Chuan-fa Liu,et al. Progress in Chemical Synthesis of Peptides and Proteins , 2017 .
[44] C. Millán-Pacheco,et al. Streptomyces as Overexpression System for Heterologous Production of an Antimicrobial Peptide. , 2017, Protein and peptide letters.
[45] O. Kuipers,et al. Mining prokaryotes for antimicrobial compounds: from diversity to function. , 2017, FEMS microbiology reviews.
[46] M. Pinedo,et al. Antimicrobial activity and mechanism of action of a thionin‐like peptide from Capsicum annuum fruits and combinatorial treatment with fluconazole against Fusarium solani , 2017, Biopolymers.
[47] P. Manzanares,et al. Mapping and Identification of Antifungal Peptides in the Putative Antifungal Protein AfpB from the Filamentous Fungus Penicillium digitatum , 2017, Front. Microbiol..
[48] J. Brandão-Neto,et al. Production in Pichia pastoris, antifungal activity and crystal structure of a class I chitinase from cowpea (Vigna unguiculata): Insights into sugar binding mode and hydrolytic action. , 2017, Biochimie.
[49] S. Dey,et al. DS6: anticandidal, antibiofilm peptide against Candida tropicalis and exhibit synergy with commercial drug , 2017, Journal of peptide science : an official publication of the European Peptide Society.
[50] G. Rádis-Baptista,et al. Anti-fungal activity of Ctn[15–34], the C-terminal peptide fragment of crotalicidin, a rattlesnake venom gland cathelicidin , 2016, The Journal of Antibiotics.
[51] B. Wren,et al. The importance of the glycosylation of antimicrobial peptides: natural and synthetic approaches. , 2017, Drug discovery today.
[52] D. Carter,et al. The Antifungal Activity of Lactoferrin and Its Derived Peptides: Mechanisms of Action and Synergy with Drugs against Fungal Pathogens , 2017, Front. Microbiol..
[53] M. Wang,et al. Efficient biosynthesis of a Cecropin A-melittin mutant in Bacillus subtilis WB700 , 2017, Scientific Reports.
[54] I. Kyriakidis,et al. Clinical hepatotoxicity associated with antifungal agents , 2016, Expert opinion on drug safety.
[55] M. Mahlapuu,et al. Antimicrobial Peptides: An Emerging Category of Therapeutic Agents , 2016, Front. Cell. Infect. Microbiol..
[56] G. Foster,et al. Natural products from filamentous fungi and production by heterologous expression , 2016, Applied Microbiology and Biotechnology.
[57] A. M. Reis,et al. Adverse Drug Reactions in Patients Receiving Systemic Antifungal Therapy at a High‐Complexity Hospital , 2016, Journal of clinical pharmacology.
[58] J. A. Vosloo,et al. Antifungal peptides: To be or not to be membrane active. , 2016, Biochimie.
[59] A. Bekhit,et al. Towards generation of bioactive peptides from meat industry waste proteins: Generation of peptides using commercial microbial proteases. , 2016, Food chemistry.
[60] K. Hartshorn,et al. The Role of Antimicrobial Peptides in Influenza Virus Infection and Their Potential as Antiviral and Immunomodulatory Therapy , 2016, Pharmaceuticals.
[61] K. Thevissen. How promising are combinatorial drug strategies in combating Candida albicans biofilms? , 2016, Future medicinal chemistry.
[62] S. Nath,et al. A novel covalent approach to bio-conjugate silver coated single walled carbon nanotubes with antimicrobial peptide , 2016, Journal of Nanobiotechnology.
[63] M. Capucchio,et al. Antimicrobial Activity of Lactoferrin-Related Peptides and Applications in Human and Veterinary Medicine , 2016, Molecules.
[64] M. F. Ottaviani,et al. Spectral characterization and in vitro microbiological activity of new bis-1,8-naphthalimides and their Cu(II) complexes , 2016 .
[65] Overview of fusion tags for recombinant proteins , 2016, Biochemistry (Moscow).
[66] Esther Vázquez,et al. Recombinant pharmaceuticals from microbial cells: a 2015 update , 2016, Microbial Cell Factories.
[67] M. Mangoni,et al. Bacillomycin D and its combination with amphotericin B: promising antifungal compounds with powerful antibiofilm activity and wound‐healing potency , 2016, Journal of applied microbiology.
[68] D. Craik,et al. The radish defensins RsAFP1 and RsAFP2 act synergistically with caspofungin against Candida albicans biofilms , 2016, Peptides.
[69] R. Gallo,et al. Antimicrobial peptides , 2016, Current Biology.
[70] P. White,et al. Advances in Fmoc solid‐phase peptide synthesis , 2016, Journal of peptide science : an official publication of the European Peptide Society.
[71] Xia Li,et al. APD3: the antimicrobial peptide database as a tool for research and education , 2015, Nucleic Acids Res..
[72] O. Franco,et al. Antifungal Peptides with Potential Against Pathogenic Fungi , 2016 .
[73] R. Hancock,et al. The role of antimicrobial , 2016 .
[74] N. P. Money. Fungi and Biotechnology , 2016 .
[75] يزن العكام. A Review of Antifungal Peptides : Basis to New Era of Antifungal Drugs = مضادات الفطريات الببتيدية : عصر جديد من العقاقير المضادة للفطريات , 2016 .
[76] G. Pujalte,et al. Superficial Fungal Infections. , 2015, Primary care.
[77] I. Frébort,et al. Antimicrobial peptide production and plant-based expression systems for medical and agricultural biotechnology. , 2015, Biotechnology advances.
[78] A. Shan,et al. Expression of plectasin in Bacillus subtilis using SUMO technology by a maltose-inducible vector , 2015, Journal of Industrial Microbiology & Biotechnology.
[79] Lukas Martin,et al. Antimicrobial Peptides in Human Sepsis , 2015, Front. Immunol..
[80] Shigekazu Yano,et al. Structure activity relationship study of burkholdine analogues toward simple antifungal agents. , 2015, Bioorganic & medicinal chemistry letters.
[81] J. Drijfhout,et al. Synergistic Activity of the Plant Defensin HsAFP1 and Caspofungin against Candida albicans Biofilms and Planktonic Cultures , 2015, PloS one.
[82] B. Posteraro,et al. Antifungal drug resistance among Candida species: mechanisms and clinical impact , 2015, Mycoses.
[83] Shamala Devi Sekaran,et al. Activity of Novel Synthetic Peptides against Candida albicans , 2015, Scientific Reports.
[84] P. Manzanares,et al. Concatemerization increases the inhibitory activity of short, cell-penetrating, cationic and tryptophan-rich antifungal peptides , 2015, Applied Microbiology and Biotechnology.
[85] Vaibhav Upadhyay,et al. Protein recovery from inclusion bodies of Escherichia coli using mild solubilization process , 2015, Microbial Cell Factories.
[86] C. Qin,et al. Expression of porcine protegrin-1 in Pichia pastoris and its anticancer activity in vitro , 2015, Experimental and therapeutic medicine.
[87] J. Donnelly,et al. Safety and tolerability of the antimicrobial peptide human lactoferrin 1-11 (hLF1-11) , 2009, BMC medicine.
[88] T. Hoffmann,et al. Peptide therapeutics: current status and future directions. , 2015, Drug discovery today.
[89] Wolfgang Hüttel,et al. Pneumocandin Biosynthesis: Involvement of a trans‐Selective Proline Hydroxylase , 2014, Chembiochem : a European journal of chemical biology.
[90] G. Wider,et al. Copsin, a Novel Peptide-based Fungal Antibiotic Interfering with the Peptidoglycan Synthesis* , 2014, The Journal of Biological Chemistry.
[91] B. Cammue,et al. Antifungal Plant Defensins: Mechanisms of Action and Production , 2014, Molecules.
[92] T. Roemer,et al. Antifungal drug development: challenges, unmet clinical needs, and new approaches. , 2014, Cold Spring Harbor perspectives in medicine.
[93] Germán L. Rosano,et al. Recombinant protein expression in Escherichia coli: advances and challenges , 2014, Front. Microbiol..
[94] A. S. Akalın,et al. Dairy-derived antimicrobial peptides: Action mechanisms, pharmaceutical uses and production proposals , 2014 .
[95] U. Zottich,et al. Functional expression and activity of the recombinant antifungal defensin PvD1r from Phaseolus vulgaris L. (common bean) seeds , 2014, BMC Biochemistry.
[96] L. Domingues,et al. Fusion tags for protein solubility, purification and immunogenicity in Escherichia coli: the novel Fh8 system , 2014, Front. Microbiol..
[97] Yue‐wen Chen,et al. HETEROLOGOUS EXPRESSION AND PURIFICATION OF DERMASEPTIN S4 FUSION IN Escherichia coli AND RECOVERY OF BIOLOGICAL ACTIVITY , 2014, Preparative biochemistry & biotechnology.
[98] H. Riezman,et al. Synthetic Multivalent Antifungal Peptides Effective against Fungi , 2014, PloS one.
[99] R. Montelaro,et al. Antimicrobial peptides: new drugs for bad bugs? , 2014, Expert opinion on biological therapy.
[100] R. Fanin,et al. Multicentre surveillance study on feasibility, safety and efficacy of antifungal combination therapy for proven or probable invasive fungal diseases in haematological patients: the SEIFEM real‐life combo study , 2013, Mycoses.
[101] Deguang Song,et al. Expressing antimicrobial peptide cathelicidin-BF in Bacillus subtilis using SUMO technology , 2014, Applied Microbiology and Biotechnology.
[102] Jing Li,et al. Design and high-level expression of a hybrid antimicrobial peptide LF15-CA8 in Escherichiacoli , 2014, Journal of Industrial Microbiology & Biotechnology.
[103] A. Bahar,et al. Antimicrobial Peptides , 2013, Pharmaceuticals.
[104] E. Reguera,et al. Magnetic nanoparticles: new players in antimicrobial peptide therapeutics. , 2013, Current protein & peptide science.
[105] G. Huffnagle,et al. The emerging world of the fungal microbiome. , 2013, Trends in microbiology.
[106] M. Ghannoum,et al. Potentiation of Azole Antifungals by 2-Adamantanamine , 2013, Antimicrobial Agents and Chemotherapy.
[107] J. Fox. Antimicrobial peptides stage a comeback , 2013, Nature Biotechnology.
[108] L. Firdaous,et al. Separation of bioactive peptides by membrane processes: technologies and devices. , 2013, Recent patents on biotechnology.
[109] T. Emri,et al. Echinocandins: production and applications , 2013, Applied Microbiology and Biotechnology.
[110] Marilyn A. Anderson,et al. Cellular and Molecular Life Sciences Properties and Mechanisms of Action of Naturally Occurring Antifungal Peptides , 2022 .
[111] D. Harzallah,et al. Lactic Acid Bacteria as Probiotics: Characteristics, Selection Criteria and Role in Immunomodulation of Human GI Muccosal Barrier , 2013 .
[112] Vanessa M S Duncan,et al. Commercialization of antifungal peptides , 2013 .
[113] L. Domingues,et al. Recombinant expression and purification of the antimicrobial peptide magainin‐2 , 2013, Biotechnology progress.
[114] E. Garcia-Fruitós. Lactic acid bacteria: a promising alternative for recombinant protein production , 2012, Microbial Cell Factories.
[115] J. Vleugels,et al. The nonsteroidal antiinflammatory drug diclofenac potentiates the in vivo activity of caspofungin against Candida albicans biofilms. , 2012, The Journal of infectious diseases.
[116] H. Tan,et al. Novel polyoxins generated by heterologously expressing polyoxin biosynthetic gene cluster in the sanN inactivated mutant of Streptomyces ansochromogenes , 2012, Microbial Cell Factories.
[117] Y. Li,et al. Retigeric acid B enhances the efficacy of azoles combating the virulence and biofilm formation of Candida albicans. , 2012, Biological & pharmaceutical bulletin.
[118] O. Franco,et al. Predicting antimicrobial peptides from eukaryotic genomes: In silico strategies to develop antibiotics , 2012, Peptides.
[119] Honggang Hu,et al. Synthesis and Antifungal Activities of Glycosylated Derivatives of the Cyclic Peptide Fungicide Caspofungin , 2012, ChemMedChem.
[120] K. Garey,et al. Echinocandin Resistance in Candida Species: Mechanisms of Reduced Susceptibility and Therapeutic Approaches , 2012, The Annals of pharmacotherapy.
[121] William F. Porto,et al. Prediction and Rational Design of Antimicrobial Peptides , 2012 .
[122] T. Sorrell,et al. Echinocandin Antifungal Drugs in Fungal Infections , 2012, Drugs.
[123] G. Schneider,et al. Designing antimicrobial peptides: form follows function , 2011, Nature Reviews Drug Discovery.
[124] Yifeng Li. Recombinant production of antimicrobial peptides in Escherichia coli: a review. , 2011, Protein expression and purification.
[125] R. Petruzzelli,et al. Fungicidal activity of the human peptide hepcidin 20 alone or in combination with other antifungals against Candida glabrata isolates , 2011, Peptides.
[126] S. Chadha,et al. Histatin 5 Uptake by Candida albicans Utilizes Polyamine Transporters Dur3 and Dur31 Proteins* , 2011, The Journal of Biological Chemistry.
[127] Antiviral and antifungal activity of some dermaseptin S4 analogues , 2011 .
[128] H. Vogel,et al. The expanding scope of antimicrobial peptide structures and their modes of action. , 2011, Trends in biotechnology.
[129] A. Spisni,et al. Killer peptide: a novel paradigm of antimicrobial, antiviral and immunomodulatory auto-delivering drugs. , 2011, Future medicinal chemistry.
[130] R. Drew,et al. Overview of treatment options for invasive fungal infections. , 2011, Medical mycology.
[131] John A. Robinson,et al. Protein epitope mimetics as anti-infectives. , 2011, Current opinion in chemical biology.
[132] Robert E. W. Hancock,et al. Multifunctional cationic host defence peptides and their clinical applications , 2011, Cellular and Molecular Life Sciences.
[133] M. Danquah,et al. Industrial-scale manufacturing of pharmaceutical-grade bioactive peptides. , 2011, Biotechnology advances.
[134] K. Leung,et al. Antimicrobial decapeptide KSL-W attenuates Candida albicans virulence by modulating its effects on Toll-like receptor, human β-defensin, and cytokine expression by engineered human oral mucosa , 2011, Peptides.
[135] W. Siqueira,et al. Histatin 1 Resists Proteolytic Degradation when Adsorbed to Hydroxyapatite , 2011, Journal of dental research.
[136] William C. Wimley,et al. Antimicrobial Peptides: Successes, Challenges and Unanswered Questions , 2011, The Journal of Membrane Biology.
[137] Sean P. Palecek,et al. Short Alkylated Peptoid Mimics of Antimicrobial Lipopeptides , 2010, Antimicrobial Agents and Chemotherapy.
[138] K. Hilpert,et al. Screening for Antifungal Peptides and Their Modes of Action in Aspergillus nidulans , 2010, Applied and Environmental Microbiology.
[139] P. Desai,et al. Production of heterologous proteins in plants: strategies for optimal expression. , 2010, Biotechnology advances.
[140] M. Edgerton,et al. Salivary histatin 5 internalization by translocation, but not endocytosis, is required for fungicidal activity in Candida albicans , 2010, Molecular microbiology.
[141] A. Brandelli,et al. Food applications of liposome-encapsulated antimicrobial peptides. , 2010 .
[142] Richard H. Baltz,et al. Streptomyces and Saccharopolyspora hosts for heterologous expression of secondary metabolite gene clusters , 2010, Journal of Industrial Microbiology & Biotechnology.
[143] M. Yadav,et al. Use of oil bodies and oleosins in recombinant protein production and other biotechnological applications. , 2010, Biotechnology advances.
[144] Victoria S. Paulsen,et al. Powerful workhorses for antimicrobial peptide expression and characterization , 2010, Bioengineered bugs.
[145] P. Coote,et al. Combination of caspofungin or anidulafungin with antimicrobial peptides results in potent synergistic killing of Candida albicans and Candida glabrata in vitro. , 2010, International journal of antimicrobial agents.
[146] M. Woodle,et al. Peptide-based Antifungal Therapies against Emerging Infections. , 2010, Drugs of the future.
[147] J. Donnelly,et al. Safety and tolerability of the antimicrobial peptide human lactoferrin 1-11 (hLF1-11) , 2009, BMC medicine.
[148] Yifeng Li. Carrier proteins for fusion expression of antimicrobial peptides in Escherichia coli , 2009, Biotechnology and applied biochemistry.
[149] M. Kesting,et al. Host Defense Peptides as Effector Molecules of the Innate Immune Response: A Sledgehammer for Drug Resistance? , 2009, International journal of molecular sciences.
[150] Puja Shahi,et al. Coordinate control of lipid composition and drug transport activities is required for normal multidrug resistance in fungi. , 2009, Biochimica et biophysica acta.
[151] S. Leong,et al. Soluble fusion expression and characterization of bioactive human beta-defensin 26 and 27 , 2009, Applied Microbiology and Biotechnology.
[152] M. N. Melo,et al. Antimicrobial peptides: linking partition, activity and high membrane-bound concentrations , 2009, Nature Reviews Microbiology.
[153] J. Slightom,et al. Cloning and molecular characterization of the gene encoding the Aureobasidin A biosynthesis complex in Aureobasidium pullulans BP-1938. , 2009, Gene.
[154] F. Wang,et al. Bioproducts from Aureobasidium pullulans, a biotechnologically important yeast , 2009, Applied Microbiology and Biotechnology.
[155] Artem Cherkasov,et al. Identification of novel host defense peptides and the absence of α‐defensins in the bovine genome , 2008, Proteins.
[156] C. Ching,et al. Production of bioactive human beta-defensin 5 and 6 in Escherichia coli by soluble fusion expression. , 2008, Protein expression and purification.
[157] M. Gee,et al. Hierarchical mesoporous silica materials for separation of functional food ingredients — A review , 2008 .
[158] J. Heitman,et al. Synergistic Effect of Calcineurin Inhibitors and Fluconazole against Candida albicans Biofilms , 2008, Antimicrobial Agents and Chemotherapy.
[159] E. Eriksson,et al. ROLE OF HOST DEFENSE PEPTIDES OF THE INNATE IMMUNE RESPONSE IN SEPSIS , 2007, Shock.
[160] M. Selsted,et al. Microbicidal Properties and Cytocidal Selectivity of Rhesus Macaque Theta Defensins , 2007, Antimicrobial Agents and Chemotherapy.
[161] R. Prasad,et al. Multidrug Transporters CaCdr1p and CaMdr1p of Candida albicans Display Different Lipid Specificities: both Ergosterol and Sphingolipids Are Essential for Targeting of CaCdr1p to Membrane Rafts , 2007, Antimicrobial Agents and Chemotherapy.
[162] Artem Cherkasov,et al. BIOINFORMATICS ORIGINAL PAPER doi:10.1093/bioinformatics/btm068 Databases and ontologies AMPer: a database and an automated discovery tool for antimicrobial peptides , 2022 .
[163] H. Ling. Oleosin fusion expression systems for the production of recombinant proteins , 2007, Biologia.
[164] D. Hoffmeister,et al. Natural products of filamentous fungi: enzymes, genes, and their regulation. , 2007, Natural product reports.
[165] P. Carver,et al. Comparison of echinocandin antifungals , 2007, Therapeutics and clinical risk management.
[166] Ling Zhu,et al. Molecular cloning, expression of a big defensin gene from bay scallop Argopecten irradians and the antimicrobial activity of its recombinant protein. , 2007, Molecular immunology.
[167] B. Bechinger,et al. Detergent-like actions of linear amphipathic cationic antimicrobial peptides. , 2006, Biochimica et biophysica acta.
[168] Huey W. Huang. Molecular mechanism of antimicrobial peptides: the origin of cooperativity. , 2006, Biochimica et biophysica acta.
[169] M. Edgerton,et al. Candida albicans Cell Wall Ssa Proteins Bind and Facilitate Import of Salivary Histatin 5 Required for Toxicity* , 2006, Journal of Biological Chemistry.
[170] C. Deber,et al. Activity of novel non-amphipathic cationic antimicrobial peptides against Candida species. , 2006, The Journal of antimicrobial chemotherapy.
[171] Ju-Hoon Lee,et al. Expression of the cationic antimicrobial peptide lactoferricin fused with the anionic peptide in Escherichia coli , 2006, Applied Microbiology and Biotechnology.
[172] T. Prasad,et al. Membrane raft lipid constituents affect drug susceptibilities of Candida albicans. , 2005, Biochemical Society transactions.
[173] C. Fogher,et al. Heterologous Expression of Biologically Active Porcine Lactoferrin in Pichia Pastoris Yeast , 2005, Veterinary Research Communications.
[174] Gisbert Schneider,et al. Computer-based de novo design of drug-like molecules , 2005, Nature Reviews Drug Discovery.
[175] Yirong Li,et al. Improvement of nikkomycin production by enhanced copy of sanU and sanV in Streptomyces ansochromogenes and characterization of a novel glutamate mutase encoded by sanU and sanV. , 2005, Metabolic engineering.
[176] R. Wenzel,et al. Fungicidal activity of cilofungin (LY121019) alone and in combination with anticapsin or other antifungal agents , 1989, European Journal of Clinical Microbiology and Infectious Diseases.
[177] Seongmi Ji,et al. Heterologous Expression of Human $\beta$-Defensin-1 in Bacteriocin-Producing Laetoeoeeus lactis , 2005 .
[178] L. Bobek,et al. In vitro synergic antifungal effect of MUC7 12-mer with histatin-5 12-mer or miconazole. , 2004, The Journal of antimicrobial chemotherapy.
[179] R. Prasad,et al. Membrane Sphingolipid-Ergosterol Interactions Are Important Determinants of Multidrug Resistance in Candida albicans , 2004, Antimicrobial Agents and Chemotherapy.
[180] Ann Eisenberg Shinnar,et al. Cathelicidin family of antimicrobial peptides: proteolytic processing and protease resistance. , 2003, Bioorganic chemistry.
[181] Michael R. Yeaman,et al. Mechanisms of Antimicrobial Peptide Action and Resistance , 2003, Pharmacological Reviews.
[182] J. M. Rodríguez,et al. Heterologous production of bacteriocins by lactic acid bacteria. , 2003, International journal of food microbiology.
[183] P. Nibbering,et al. Synergistic Activity of the N-Terminal Peptide of Human Lactoferrin and Fluconazole against Candida Species , 2003, Antimicrobial Agents and Chemotherapy.
[184] F. Menozzi,et al. Involvement of β-Glucans in the Wide-Spectrum Antimicrobial Activity of Williopsis saturnus var. mrakii MUCL 41968 Killer Toxin , 2002, Molecular medicine.
[185] S. Tsuda,et al. Production and characterization of recombinant tachycitin, the Cys-rich chitin-binding protein. , 2002, Protein engineering.
[186] S. Gellman,et al. Mimicry of Host-Defense Peptides by Unnatural Oligomers: Antimicrobial β-Peptides , 2002 .
[187] K. Hahm,et al. Design of novel peptide analogs with potent fungicidal activity, based on PMAP-23 antimicrobial peptide isolated from porcine myeloid. , 2002, Biochemical and biophysical research communications.
[188] M. Zasloff. Antimicrobial peptides of multicellular organisms , 2002, Nature.
[189] Y. Shai,et al. Mode of action of membrane active antimicrobial peptides. , 2002, Biopolymers.
[190] H. Vogel,et al. Tryptophan-rich antimicrobial peptides: comparative properties and membrane interactions. , 2002, Biochemistry and cell biology = Biochimie et biologie cellulaire.
[191] C. Rovaldi,et al. P-113d, an Antimicrobial Peptide Active againstPseudomonas aeruginosa, Retains Activity in the Presence of Sputum from Cystic Fibrosis Patients , 2001, Antimicrobial Agents and Chemotherapy.
[192] T. Osaki,et al. Lactoferrin Peptide Increases the Survival ofCandida albicans- Inoculated Mice by Upregulating Neutrophil and Macrophage Functions, Especially in Combination with Amphotericin B and Granulocyte-Macrophage Colony-Stimulating Factor , 2001, Infection and Immunity.
[193] L. Sijtsma,et al. Synthetic peptides derived from the beta2-beta3 loop of Raphanus sativus antifungal protein 2 that mimic the active site. , 2001, The journal of peptide research : official journal of the American Peptide Society.
[194] P. Friden,et al. Anticandida Activity Is Retained in P-113, a 12-Amino-Acid Fragment of Histatin 5 , 2001, Antimicrobial Agents and Chemotherapy.
[195] D. Tomalia,et al. Poly(amidoamine) (PAMAM) dendrimers: from biomimicry to drug delivery and biomedical applications. , 2001, Drug discovery today.
[196] T. Tamaya,et al. In vitro antifungal activity of FK463, a new water-soluble echinocandin-like lipopeptide. , 2000, The Journal of antimicrobial chemotherapy.
[197] T. Falla,et al. IB-367, a Protegrin Peptide with In Vitro and In Vivo Activities against the Microflora Associated with Oral Mucositis , 2000, Antimicrobial Agents and Chemotherapy.
[198] A. D. De Lucca,et al. Antifungal peptides: potential candidates for the treatment of fungal infections , 2000, Expert opinion on investigational drugs.
[199] Deloire Aj. Antifungal peptides: potential candidates for the treatment of fungal infections. , 2000 .
[200] S. Blondelle,et al. Combinatorial libraries: a tool to design antimicrobial and antifungal peptide analogues having lytic specificities for structure-activity relationship studies. , 2000, Biopolymers.
[201] M. Edgerton,et al. Salivary Histatin 5 Induces Non-lytic Release of ATP fromCandida albicans Leading to Cell Death* , 1999, The Journal of Biological Chemistry.
[202] R. Hancock,et al. Peptide Antibiotics , 1999, Antimicrobial Agents and Chemotherapy.
[203] E Maier,et al. Mechanism of interaction of different classes of cationic antimicrobial peptides with planar bilayers and with the cytoplasmic membrane of Escherichia coli. , 1999, Biochemistry.
[204] T. Abee,et al. The Cellular Target of Histatin 5 on Candida albicans Is the Energized Mitochondrion* , 1999, The Journal of Biological Chemistry.
[205] T. Walsh,et al. Antifungal Peptides: Novel Therapeutic Compounds against Emerging Pathogens , 1999, Antimicrobial Agents and Chemotherapy.
[206] J. Bland,et al. Fungicidal and binding properties of the natural peptides cecropin B and dermaseptin. , 1998, Medical mycology.
[207] S. Teraguchi,et al. Inhibition of Hyphal Growth of Azole-Resistant Strains of Candida albicans by Triazole Antifungal Agents in the Presence of Lactoferrin-Related Compounds , 1998, Antimicrobial Agents and Chemotherapy.
[208] P. A. Raj,et al. Structure of human salivary histatin 5 in aqueous and nonaqueous solutions. , 1998, Biopolymers.
[209] J. Hoffmann,et al. Cysteine-rich antimicrobial peptides in invertebrates. , 1998, Biopolymers.
[210] D. Andreu,et al. Animal antimicrobial peptides: an overview. , 1998, Biopolymers.
[211] J. Karlowsky,et al. In vitro kill curves of a new semisynthetic echinocandin, LY-303366, against fluconazole-sensitive and -resistant Candida species , 1997, Antimicrobial agents and chemotherapy.
[212] D. Stevens,et al. Efficacy of nikkomycin Z against experimental pulmonary blastomycosis , 1997, Antimicrobial agents and chemotherapy.
[213] R. Lester,et al. Sphingolipid Synthesis as a Target for Antifungal Drugs , 1997, The Journal of Biological Chemistry.
[214] K. Takesako,et al. Fungicidal action of aureobasidin A, a cyclic depsipeptide antifungal antibiotic, against Saccharomyces cerevisiae , 1997, Antimicrobial agents and chemotherapy.
[215] K. Agarwala,et al. Tachycitin, a small granular component in horseshoe crab hemocytes, is an antimicrobial protein with chitin-binding activity. , 1996, Journal of biochemistry.
[216] S. Abe,et al. Cooperative Anti‐Candida Effects of Lactoferrin or Its Peptides in Combination with Azole Antifungal Agents , 1996, Microbiology and immunology.
[217] Y. Shai,et al. Broad spectrum antibiotic activity of the skin-PYY. , 1996, FEBS letters.
[218] T. Saito,et al. A novel big defensin identified in horseshoe crab hemocytes: isolation, amino acid sequence, and antibacterial activity. , 1995, Journal of biochemistry.
[219] C. Bewley,et al. Theonegramide, an Antifungal Glycopeptide from the Philippine Lithistid Sponge Theonella swinhoei , 1994 .
[220] Franky R. G. Terras,et al. Analysis of two novel classes of plant antifungal proteins from radish (Raphanus sativus L.) seeds. , 1992, The Journal of biological chemistry.
[221] R. Schwartz,et al. Synthesis, stability, and biological evaluation of water-soluble prodrugs of a new echinocandin lipopeptide. Discovery of a potential clinical agent for the treatment of systemic candidiasis and Pneumocystis carinii pneumonia (PCP). , 1992, Journal of medicinal chemistry.
[222] A. Mor,et al. Isolation, amino acid sequence, and synthesis of dermaseptin, a novel antimicrobial peptide of amphibian skin. , 1991, Biochemistry.
[223] B. Zimmer,et al. Evaluation of nikkomycins X and Z in murine models of coccidioidomycosis, histoplasmosis, and blastomycosis , 1990, Antimicrobial Agents and Chemotherapy.
[224] P. Cook,et al. Fungi in the production of foods and food ingredients , 1989 .
[225] F. Peypoux,et al. Interactions of antibiotics of the iturin group with human erythrocytes. , 1986, Biochimica et biophysica acta.
[226] K. Gull,et al. Mechanism of action of nikkomycin and the peptide transport system of Candida albicans. , 1985, Journal of general microbiology.
[227] F. Besson,et al. Action of the antibiotics of the iturin group on artificial membranes. , 1984, The Journal of antibiotics.
[228] K. Kakiki,et al. Interaction between Polyoxin and Active Center of Chitin Synthetase , 1974 .
[229] J. Devay,et al. Properties of syringomycin, a wide spectrum antibiotic and phytotoxin produced by Pseudomonas syringae, and its role in the bacterial canker disease of peach trees , 1971 .
[230] K. Isono,et al. Studies on polyoxins, antifungal antibiotics. 13. The structure of polyoxins. , 1969, Journal of the American Chemical Society.
[231] K. Isono,et al. A NEW ANTIBIOTIC, POLYOXIN A. , 1965, The Journal of antibiotics.
[232] M. Landy,et al. Bacillomycin , 1948 .