Alternaria alternata Isolated from Infected Pears (Pyrus communis) in Italy Produces Non-Host Toxins and Hydrolytic Enzymes as Infection Mechanisms and Exhibits Competitive Exclusion against Botrytis cinerea in Co-Infected Host Fruits
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R. Isticato | A. Cimmino | M. Masi | Claudia Petrillo | M. Russo | Stefany Castaldi | P. Ambrosino | J. G. Zorrilla | Maria Teresa Russo | S. Castaldi
[1] A. Cimmino,et al. Identification of Structural Features of Hydrocinnamic Acid Related to Its Allelopathic Activity against the Parasitic Weed Cuscuta campestris , 2022, Plants.
[2] A. Cimmino,et al. Identification of Allelochemicals with Differential Modes of Phytotoxicity against Cuscuta campestris , 2022, Agriculture.
[3] M. Masi,et al. Bioactive Metabolite Production in the Genus Pyrenophora (Pleosporaceae, Pleosporales) , 2022, Toxins.
[4] A. Cimmino,et al. Bacterial Lipodepsipeptides and Some of Their Derivatives and Cyclic Dipeptides as Potential Agents for Biocontrol of Pathogenic Bacteria and Fungi of Agrarian Plants , 2022, Journal of agricultural and food chemistry.
[5] S. Yagi,et al. Fungal perylenequinones , 2022, Mycological Progress.
[6] M. Shaaban,et al. Diverse polyketides from the marine endophytic Alternaria sp. LV52: Structure determination and cytotoxic activities , 2021, Biotechnology reports.
[7] R. Isticato,et al. Pseudomonas fluorescens Showing Antifungal Activity against Macrophomina phaseolina, a Severe Pathogenic Fungus of Soybean, Produces Phenazine as the Main Active Metabolite , 2021, Biomolecules.
[8] D. Andrivon,et al. Multi‐infections, competitive interactions, and pathogen coexistence , 2021, Plant Pathology.
[9] R. Isticato,et al. Genomic and Physiological Characterization of Bacilli Isolated From Salt-Pans With Plant Growth Promoting Features , 2021, Frontiers in Microbiology.
[10] H. Vélëz,et al. The Role of Glycoside Hydrolases in Phytopathogenic Fungi and Oomycetes Virulence , 2021, International journal of molecular sciences.
[11] M. Masi,et al. Argyrotoxins A-C, a trisubstituted dihydroisobenzofuranone, a tetrasubstituted 2-hydroxyethylbenzamide and a tetrasubstitutedphenyl trisubstitutedbutyl ether produced by Alternaria argyroxiphii, the causal agent of leaf spot on African mahogany trees (Khaya senegalensis). , 2021, Phytochemistry.
[12] R. Isticato,et al. Structural studies on the O-specific polysaccharide of the lipopolysaccharide from Pseudomonas donghuensis strain SVPB6, with antifungal activity against the phytopathogenic fungus Macrophomina phaseolina. , 2021, International Journal of Biological Macromolecules.
[13] R. Isticato,et al. Plant Growth Promotion Function of Bacillus sp. Strains Isolated from Salt-Pan Rhizosphere and Their Biocontrol Potential against Macrophomina phaseolina , 2021, International journal of molecular sciences.
[14] R. Isticato,et al. Phaseocyclopentenones A and B, Phytotoxic Penta- and Tetrasubstituted Cyclopentenones Produced by Macrophomina phaseolina, the Causal Agent of Charcoal Rot of Soybean in Argentina. , 2021, Journal of natural products.
[15] Xin Li,et al. The Destructive Fungal Pathogen Botrytis cinerea—Insights from Genes Studied with Mutant Analysis , 2020, Pathogens.
[16] A. Berestetskiy,et al. Fungi of the Genera Alternaria as Producers of Biological Active Compounds and Mycoherbicides , 2020, Applied Biochemistry and Microbiology.
[17] D. Pei,et al. Morphology and Molecular Characterization of a Fungus from the Alternaria alternata Species Complex Causing Black Spots on Pyrus sinkiangensis (Koerle pear) , 2020, Mycobiology.
[18] H. Shao,et al. Two Phytotoxins Isolated from the Pathogenic Fungus of the Invasive Weed Xanthium italicum , 2020, Chemistry & biodiversity.
[19] G. Del Favero,et al. Mycotoxin Altertoxin II Induces Lipid Peroxidation Connecting Mitochondrial Stress Response to NF-κB Inhibition in THP-1 Macrophages , 2020, Chemical research in toxicology.
[20] D. Marko,et al. Co-Occurrence and Combinatory Effects of Alternaria Mycotoxins and Other Xenobiotics of Food Origin: Current Scenario and Future Perspectives , 2019, Toxins.
[21] Hongbin Pu,et al. Pathogenetic process monitoring and early detection of pear black spot disease caused by Alternaria alternata using hyperspectral imaging , 2019, Postharvest Biology and Technology.
[22] S. Shamsi,et al. Antagonistic potential of soil fungi against Colletotrichum gloeosporiodes (Penz.) Sacc., the causal agent of anthracnose of Rauwolfia serpentina (L.) Benth. ex Kurz , 2019, Dhaka University Journal of Biological Sciences.
[23] A. Gangawane,et al. Amylase Activity of Starch Degrading Bacteria Isolated from Soil , 2019, International Journal of Current Microbiology and Applied Sciences.
[24] J. Reyes-Pérez,et al. Biocontrol of Postharvest Fruit Fungal Diseases by Bacterial Antagonists: A Review , 2019, Agronomy.
[25] D. Budakov,et al. Effect of Wheat Milling Process on the Distribution of Alternaria Toxins , 2019, Toxins.
[26] Dong-Lin Zhao,et al. Phytotoxicity and anti-phytopathogenic activities of marine-derived fungi and their secondary metabolites , 2018, RSC advances.
[27] M. Moracci,et al. Conversion of xylan by recyclable spores of Bacillus subtilis displaying thermophilic enzymes , 2017, Microbial Cell Factories.
[28] M. Lutz,et al. Effect of pre and postharvest application of fungicides on postharvest decay of Bosc pear caused by Alternaria—Cladosporium complex in North Patagonia, Argentina , 2017 .
[29] L. Di Bari,et al. Pyriculins A and B, two monosubstituted hex-4-ene-2,3-diols and other phytotoxic metabolites produced by Pyricularia grisea isolated from buffelgrass (Cenchrus ciliaris). , 2017, Chirality.
[30] M. Garbelotto,et al. Interspecific interactions between the Sudden Oak Death pathogen Phytophthora ramorum and two sympatric Phytophthora species in varying ecological conditions , 2017 .
[31] Fatoumata Gnacko,et al. Virus-Bacteria Rice Co-Infection in Africa: Field Estimation, Reciprocal Effects, Molecular Mechanisms, and Evolutionary Implications , 2017, Front. Plant Sci..
[32] M. Petriccione,et al. An ELISA method to identify the phytotoxic Pseudomonas syringae pv. actinidiae exopolysaccharides: A tool for rapid immunochemical detection of kiwifruit bacterial canker , 2017 .
[33] A. Solhaug,et al. Mechanisms of Action and Toxicity of the Mycotoxin Alternariol: A Review. , 2016, Basic & clinical pharmacology & toxicology.
[34] M. Metzler,et al. Sulfoglucosides as Novel Modified Forms of the Mycotoxins Alternariol and Alternariol Monomethyl Ether. , 2016, Journal of agricultural and food chemistry.
[35] M. Aydogdu,et al. First report of pre-harvest rot of pear fruit caused by Botrytis cinerea in Turkey , 2016 .
[36] T. Nakano,et al. Alternaria alternata apple pathotype (A. mali) causes black spot of European pear , 2016, European Journal of Plant Pathology.
[37] S. Faeth,et al. Altertoxins with potent anti-HIV activity from Alternaria tenuissima QUE1Se, a fungal endophyte of Quercus emoryi. , 2014, Bioorganic & medicinal chemistry.
[38] G. Ramachandran,et al. Growth and mass spectrometry profile of Alternaria alternata pigment grown in maize grain extract. , 2014 .
[39] G. Forlani,et al. The fungal phytotoxin alternariol 9-methyl ether and some of its synthetic analogues inhibit the photosynthetic electron transport chain. , 2013, Journal of natural products.
[40] Ligang Zhou,et al. Metabolites from Alternaria Fungi and Their Bioactivities , 2013, Molecules.
[41] K. Ohtani,et al. Host-selective toxins produced by the plant pathogenic fungus Alternaria alternata. , 2013, FEMS microbiology reviews.
[42] J. Marchesi,et al. A robust plate assay for detection of extracellular microbial protease activity in metagenomic screens and pure cultures. , 2012, Journal of microbiological methods.
[43] E. O'brien,et al. Perylenequinones: Isolation, Synthesis, and Biological Activity. , 2012, European journal of organic chemistry.
[44] J. Winograd,et al. Primary subcutaneous Alternaria alternata infection of the hand in an immunocompromised host. , 2011, Medical mycology.
[45] Antonio Logrieco,et al. Alternaria toxins and plant diseases: an overview of origin, occurrence and risks , 2009 .
[46] E. Gareth Jones,et al. Isolation, structure elucidation, and mutagenicity of four alternariol derivatives produced by the mangrove endophytic fungus No. 2240 , 2008, Chemistry of Natural Compounds.
[47] Seung-Beom Hong,et al. Detection of Extracellular enzymes Activities in Various Fusarium spp. , 2007, Mycobiology.
[48] A. D. Girolamo,et al. Toxigenic profile of Alternaria alternata and Alternaria radicina occurring on umbelliferous plants , 2005, Food additives and contaminants.
[49] K. Ohtani,et al. An Isolate of Alternaria alternata That Is Pathogenic to Both Tangerines and Rough Lemon and Produces Two Host-Selective Toxins, ACT- and ACR-Toxins. , 2005, Phytopathology.
[50] B. Thomma. Alternaria spp.: from general saprophyte to specific parasite. , 2003, Molecular plant pathology.
[51] D. Stirling. DNA extraction from fungi, yeast, and bacteria. , 2003, Methods in molecular biology.
[52] M. Yamamoto,et al. Insertional mutagenesis and cloning of the genes required for biosynthesis of the host-specific AK-toxin in the Japanese pear pathotype of Alternaria alternata. , 1999, Molecular plant-microbe interactions : MPMI.
[53] J. Mann. Medicinal Natural Products: A Biosynthetic Approach , 1998 .
[54] P. Dewick. Medicinal Natural Products , 1997 .
[55] J. Walton,et al. Host-selective toxins: agents of compatibility. , 1996, The Plant cell.
[56] J. Chełkowski,et al. Alternaria: biology, plant diseases and metabolites. , 1992 .
[57] T. White. Amplification and direct sequencing of fungal ribosomal RNA genes for phylogenetics , 1990 .
[58] J. Clardy,et al. Phytotoxins from Alternaria cassiae , 1989 .
[59] J. Wells,et al. Unusual plant-growth regulators from microorganisms , 1988 .
[60] W. Ayer,et al. Metabolites Produced by Alternaria brassicae, the Black Spot Pathogen of Canola. Part 1, The Phytotoxic Components , 1987 .
[61] Takeshi Matsumoto,et al. Structure of antifungal and phytotoxic pigments produced by sps. , 1983 .
[62] L. Hankin,et al. SOLID MEDIA CONTAINING CARBOXY METHYL CELLULOSE TO DETECT CM CELULASE ACTIVITY OF MICROORGANISMS , 1977 .