Amycolatopsis from Desert Specialist Fungus-Growing Ants Suppresses Contaminant Fungi Using the Antibiotic ECO-0501
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Ethan B. Van Arnam | Georgia Scherer | Joyce H. Kim | Dellencia S. Lumpkin | Krithika Rao | Carmen D. Puentes Flores
[1] Ethan B. Van Arnam,et al. Bacterial Associates of a Desert Specialist Fungus-Growing Ant Antagonize Competitors with a Nocamycin Analog. , 2022, ACS chemical biology.
[2] Douglas W. Yu,et al. Competition-based screening helps to secure the evolutionary stability of a defensive microbiome , 2021, BMC biology.
[3] K. Kellner,et al. Cophylogenetic analyses of Trachymyrmex ant‐fungal specificity: “One to one with some exceptions” , 2021, Molecular ecology.
[4] K. Kellner,et al. Cophylogenetic analyses of Trachymyrmex ant‐fungal specificity: “One to one with some exceptions” , 2021, Molecular ecology.
[5] Alexander M. Kloosterman,et al. antiSMASH 6.0: improving cluster detection and comparison capabilities , 2021, Nucleic Acids Res..
[6] J. Clardy,et al. Specialized Metabolites Reveal Evolutionary History and Geographic Dispersion of a Multilateral Symbiosis , 2021, ACS central science.
[7] J. Klassen,et al. Pseudonocardia Symbionts of Fungus-Growing Ants and the Evolution of Defensive Secondary Metabolism , 2020, Frontiers in Microbiology.
[8] B. Wilkinson,et al. Chemical warfare between fungus-growing ants and their pathogens , 2020, Current opinion in chemical biology.
[9] U. Mueller,et al. Potential Distribution of Six North American Higher-Attine Fungus-Farming Ant (Hymenoptera: Formicidae) Species , 2019, Journal of insect science.
[10] John A. Tallarico,et al. Manumycin Polyketides Act as Molecular Glues Between UBR7 and P53 , 2019, bioRxiv.
[11] Ethan B. Van Arnam,et al. Thiopeptide Defense by an Ant's Bacterial Symbiont. , 2019, Journal of natural products.
[12] Chris S. Thomas,et al. The antimicrobial potential of Streptomyces from insect microbiomes , 2019, Nature Communications.
[13] J. Clardy,et al. Defense contracts: molecular protection in insect-microbe symbioses. , 2018, Chemical Society reviews.
[14] T. Engl,et al. Evolutionary stability of antibiotic protection in a defensive symbiosis , 2018, Proceedings of the National Academy of Sciences.
[15] Douglas W. Yu,et al. Genome Analysis of Two Pseudonocardia Phylotypes Associated with Acromyrmex Leafcutter Ants Reveals Their Biosynthetic Potential , 2016, Front. Microbiol..
[16] J. Clardy,et al. Selvamicin, an atypical antifungal polyene from two alternative genomic contexts , 2016, Proceedings of the National Academy of Sciences.
[17] J. Clardy,et al. A Rebeccamycin Analog Provides Plasmid-Encoded Niche Defense. , 2015, Journal of the American Chemical Society.
[18] Jon Clardy,et al. Variable genetic architectures produce virtually identical molecules in bacterial symbionts of fungus-growing ants , 2015, Proceedings of the National Academy of Sciences.
[19] T. Schultz,et al. Locating, collecting, and maintaining colonies of fungus-farming ants (Hymenoptera: Myrmicinae: Attini) , 2015 .
[20] T. Engl,et al. Defensive symbioses of animals with prokaryotic and eukaryotic microorganisms. , 2015, Natural product reports.
[21] J. Ju,et al. Naturally occurring tetramic acid products: isolation, structure elucidation and biological activity , 2014 .
[22] Guo-Ping Zhao,et al. Complete genome sequence and comparative genomic analyses of the vancomycin-producing Amycolatopsis orientalis , 2014, BMC Genomics.
[23] N. Lopanik. Chemical defensive symbioses in the marine environment , 2014 .
[24] S. Sørensen,et al. Specificity and stability of the Acromyrmex–Pseudonocardia symbiosis , 2013, Molecular ecology.
[25] J. Boomsma,et al. Towards a better understanding of the evolution of specialized parasites of fungus-growing ant crops , 2012 .
[26] A. Rodrigues,et al. Specialized Fungal Parasites and Opportunistic Fungi in Gardens of Attine Ants , 2012 .
[27] U. Mueller,et al. Microbiomes of ant castes implicate new microbial roles in the fungus-growing ant Trachymyrmex septentrionalis , 2011, Scientific reports.
[28] U. Mueller,et al. Ecology of microfungal communities in gardens of fungus-growing ants (Hymenoptera: Formicidae): a year-long survey of three species of attine ants in Central Texas. , 2011, FEMS microbiology ecology.
[29] M. Spiteller,et al. Chemical basis of the synergism and antagonism in microbial communities in the nests of leaf-cutting ants , 2011, Proceedings of the National Academy of Sciences.
[30] Douglas W. Yu,et al. A mixed community of actinomycetes produce multiple antibiotics for the fungus farming ant Acromyrmex octospinosus , 2010, BMC Biology.
[31] N. Gerardo,et al. Variation in Pseudonocardia antibiotic defence helps govern parasite-induced morbidity in Acromyrmex leaf-cutting ants. , 2009, Environmental microbiology reports.
[32] U. Mueller,et al. Generalized antifungal activity and 454-screening of Pseudonocardia and Amycolatopsis bacteria in nests of fungus-growing ants , 2009, Proceedings of the National Academy of Sciences.
[33] Dong-Chan Oh,et al. Dentigerumycin: a bacterial mediator of an ant-fungus symbiosis. , 2009, Nature chemical biology.
[34] T. Schultz,et al. Major evolutionary transitions in ant agriculture , 2008, Proceedings of the National Academy of Sciences.
[35] U. Mueller,et al. Microfungal “Weeds” in the Leafcutter Ant Symbiosis , 2008, Microbial Ecology.
[36] Rick L. Stevens,et al. The RAST Server: Rapid Annotations using Subsystems Technology , 2008, BMC Genomics.
[37] U. Mueller,et al. A review of the North American species of the fungus-gardening ant genus Trachymyrmex (Hymenoptera: Formicidae) , 2007, Zootaxa.
[38] M. Poulsen,et al. Antagonistic Bacterial Interactions Help Shape Host-Symbiont Dynamics within the Fungus-Growing Ant-Microbe Mutualism , 2007, PloS one.
[39] C. Farnet,et al. Genomic Analyses Lead to Novel Secondary Metabolites , 2006, The Journal of Antibiotics.
[40] J. Boomsma,et al. Specificity of the mutualistic association between actinomycete bacteria and two sympatric species of Acromyrmex leaf‐cutting ants , 2005, Molecular ecology.
[41] Emmanuel Zazopoulos,et al. Microbial genomics as a guide to drug discovery and structural elucidation: ECO-02301, a novel antifungal agent, as an example. , 2005, Journal of natural products.
[42] C. Currie. Prevalence and impact of a virulent parasite on a tripartite mutualism , 2001, Oecologia.
[43] U. Mueller,et al. The agricultural pathology of ant fungus gardens. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[44] T. Schultz,et al. Locating, collecting, and maintaining colonies of fungus-farming ants (Hymenoptera: Formicidae: Myrmicinae: Attini) , 2015 .
[45] U. Mueller,et al. Instability of novel ant-fungal associations constrains horizontal exchange of fungal symbionts , 2013, Evolutionary Ecology.
[46] C. Farnet,et al. Genomic analyses lead to novel secondary metabolites. Part 3. ECO-0501, a novel antibacterial of a new class. , 2006, The Journal of antibiotics.
[47] I. Sattler,et al. The manumycin-group metabolites. , 1998, Natural product reports.
[48] T. White. Amplification and direct sequencing of fungal ribosomal RNA genes for phylogenetics , 1990 .