Enhanced production of aspochalasin D through genetic engineering of Aspergillus flavipes
暂无分享,去创建一个
[1] Huiling Liu,et al. Stimulating fungal cell wall integrity by exogenous β-glucanase to improve the production of fungal natural products , 2022, Applied Microbiology and Biotechnology.
[2] Yijun Yan,et al. Discovery of the Biosynthetic Pathway of Beticolin 1 Reveals a Novel Non-heme Iron-dependent Oxygenase for Anthraquinone Ring Cleavage. , 2022, Angewandte Chemie.
[3] Jinmei Zhang,et al. Berberine bridge enzyme-like oxidase-catalysed double bond isomerization acts as the pathway switch in cytochalasin synthesis , 2022, Nature communications.
[4] N. Keller,et al. Transcription Factor Repurposing Offers Insights into Evolution of Biosynthetic Gene Cluster Regulation , 2021, mBio.
[5] T. Zhou,et al. Enhanced cercosporin production by co-culturing Cercospora sp. JNU001 with leaf-spot-disease-related endophytic bacteria , 2021, Microbial Cell Factories.
[6] C. Thawai,et al. Functional analysis of a chaetoglobosin A biosynthetic regulator in Chaetomium globosum. , 2020, Fungal biology.
[7] R. Cox,et al. Chemical and Genetic Studies on the Formation of Pyrrolones During the Biosynthesis of Cytochalasans , 2020, Chemistry.
[8] Jianying Luo,et al. Bisaspochalasins A-C: Three Cytochalasan Homodimers with Highly Fused Ring System from an Endophytic Aspergillus flavipes. , 2020, Organic letters.
[9] Jaclyn M. Winter,et al. Discovery and characterization of a cytochalasan biosynthetic cluster from the marine-derived fungus Aspergillus flavipes CNL-338 , 2020, The Journal of Antibiotics.
[10] R. Cox,et al. Evidence for enzyme catalysed intramolecular [4+2] Diels-Alder cyclization during the biosynthesis of pyrichalasin H. , 2020, Chemical communications.
[11] Yinhua Lu,et al. Recent Advances in Synthetic Biology Approaches to Optimize Production of Bioactive Natural Products in Actinobacteria , 2019, Front. Microbiol..
[12] R. Cox,et al. Function of pathway specific regulators in the ACE1 and pyrichalasin H biosynthetic gene clusters , 2019, RSC advances.
[13] R. Cox,et al. Investigating the Function of Cryptic Cytochalasan Cytochrome P450 Monooxygenases Using Combinatorial Biosynthesis. , 2019, Organic letters.
[14] Elizabeth J. Skellam. Strategies for Engineering Natural Product Biosynthesis in Fungi. , 2019, Trends in biotechnology.
[15] B. Shen,et al. Challenges and opportunities for natural product discovery, production, and engineering in native producers versus heterologous hosts , 2019, Journal of Industrial Microbiology & Biotechnology.
[16] N. Keller. Fungal secondary metabolism: regulation, function and drug discovery , 2018, Nature Reviews Microbiology.
[17] D. Trauner,et al. Biomimetic Synthesis of (+)-Aspergillin PZ. , 2018, Angewandte Chemie.
[18] Wan-jing Ding,et al. Two Novel Aspochalasins from the Gut Fungus Aspergillus sp. Z4 , 2018, Marine drugs.
[19] Elizabeth J. Skellam. The biosynthesis of cytochalasans. , 2017, Natural product reports.
[20] Yonghui Zhang,et al. Asperflavipine A: A Cytochalasan Heterotetramer Uniquely Defined by a Highly Complex Tetradecacyclic Ring System from Aspergillus flavipes QCS12. , 2017, Angewandte Chemie.
[21] Xuewei Wang,et al. Overexpression of the Global Regulator LaeA in Chaetomium globosum Leads to the Biosynthesis of Chaetoglobosin Z. , 2016, Journal of natural products.
[22] Inhyung Lee,et al. Overexpression of the laeA gene leads to increased production of cyclopiazonic acid in Aspergillus fumisynnematus. , 2015, Fungal biology.
[23] R. Cox,et al. Heterologous expression of the avirulence gene ACE1 from the fungal rice pathogen Magnaporthe oryzae , 2015, Chemical science.
[24] J. Vederas,et al. A Carbonate-Forming Baeyer-Villiger Monooxygenase , 2014, Nature chemical biology.
[25] Hong-wu Zhang,et al. Trichodermone, a spiro-cytochalasan with a tetracyclic nucleus (7/5/6/5) skeleton from the plant endophytic fungus Trichoderma gamsii. , 2014, Journal of natural products.
[26] A. Minami,et al. Biosynthetic assembly of cytochalasin backbone , 2013 .
[27] C. Shao,et al. Bioactive Phenylalanine Derivatives and Cytochalasins from the Soft Coral-Derived Fungus, Aspergillus elegans , 2013, Marine drugs.
[28] Xingzhong Liu,et al. Trichalasins C and D from the plant endophytic fungus Trichoderma gamsii. , 2012, Fitoterapia.
[29] Y. Chooi,et al. Identification and engineering of the cytochalasin gene cluster from Aspergillus clavatus NRRL 1. , 2011, Metabolic engineering.
[30] C. Hertweck,et al. The chemistry and biology of cytochalasans. , 2010, Natural product reports.
[31] Hong Wei,et al. Spicochalasin A and New Aspochalasins from the Marine-Derived Fungus Spicaria elegans. , 2009 .
[32] Hong Wei,et al. Spicochalasin A and New Aspochalasins from the Marine‐Derived Fungus Spicaria elegans , 2009 .
[33] L. Pierson,et al. Aspochalasins I, J, and K: three new cytotoxic cytochalasans of Aspergillus flavipes from the rhizosphere of Ericameria laricifolia of the Sonoran Desert. , 2004, Journal of natural products.
[34] K. Shin‐ya,et al. Selective cytotoxicity and stereochemistry of aspochalasin D. , 2001, The Journal of antibiotics.
[35] S. Brown,et al. Mechanism of action of cytochalasin: evidence that it binds to actin filament ends , 1981, The Journal of cell biology.
[36] C. Tamm,et al. Isolation and structure of Phomin , 1966, Experientia.
[37] R. Teshima,et al. Effects of various cytochalasins on the IgE-mediated serotonin release from rat basophilic leukemia cells. , 1985, International archives of allergy and applied immunology.