Establishing Novel Cell Factories Producing Natural Pigments in Europe
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Gerit Tolborg | Thomas Isbrandt | Thomas Ostenfeld Larsen | Mhairi Workman | M. Workman | T. O. Larsen | T. Isbrandt | Gerit Tolborg
[1] S. Nagai,et al. A simple and rapid method for analyzing the Monascus pigment-mediated degradation of mutagenic 3-hydroxyamino-1-methyl-5H-pyrido[4,3-b]indole by in-capillary micellar electrokinetic chromatography. , 1999, Mutation research.
[2] B. Palsson,et al. UPLC-UV-MSE analysis for quantification and identification of major carotenoid and chlorophyll species in algae , 2012, Analytical and Bioanalytical Chemistry.
[3] Andreas Klitgaard,et al. Accurate Dereplication of Bioactive Secondary Metabolites from Marine-Derived Fungi by UHPLC-DAD-QTOFMS and a MS/HRMS Library , 2014, Marine drugs.
[4] Bianchi Antonio. Extracts of monascusus purpureus beyond statins —Profile of efficacy and safety of the use of extracts of monascus purpureus , 2005 .
[5] H. Wong,et al. Production of red water-soluble Monascus pigments , 1983 .
[6] V. Santos-Ebinuma,et al. Improving of red colorants production by a new Penicillium purpurogenum strain in submerged culture and the effect of different parameters in their stability , 2013, Biotechnology progress.
[7] Jun Kato,et al. PP-O and PP-V, Monascus pigment homologues, production, and phylogenetic analysis in Penicillium purpurogenum. , 2015, Fungal biology.
[8] T. Pan,et al. Safety and mutagenicity evaluation of nanoparticulate red mold rice. , 2008, Journal of agricultural and food chemistry.
[9] J. Ogihara,et al. PP-R, 7-(2-hydroxyethyl)-monascorubramine, a red pigment produced in the mycelia of Penicillium sp. AZ. , 2001, Journal of bioscience and bioengineering.
[10] P. Woo,et al. The biosynthetic pathway for a thousand-year-old natural food colorant and citrinin in Penicillium marneffei , 2014, Scientific Reports.
[11] E. Wang,et al. Chromatographic and electrophoretic procedures for analyzing plant pigments of pharmacologically interests , 2005 .
[12] 김용욱. Antimicrobial activities of amino acid derivatives of monascus pigments , 2006 .
[13] J Villadsen,et al. Continuous cultivation of Penicillium chrysogenum. Growth on glucose and penicillin production. , 1995, Journal of biotechnology.
[14] G. Panfili,et al. Improved normal-phase high-performance liquid chromatography procedure for the determination of carotenoids in cereals. , 2004, Journal of agricultural and food chemistry.
[15] W. Nierman,et al. Sequencing of mitochondrial genomes of nine Aspergillus and Penicillium species identifies mobile introns and accessory genes as main sources of genome size variability , 2012, BMC Genomics.
[16] Jin-Ming Gao,et al. Azaphilones: chemistry and biology. , 2013, Chemical reviews.
[17] Ulf Thrane,et al. Identification of potentially safe promising fungal cell factories for the production of polyketide natural food colorants using chemotaxonomic rationale , 2009, Microbial cell factories.
[18] A. Ariff,et al. Enhancement of Red Pigment Production by Monascus purpureus FTC 5391 through Retrofitting of Helical Ribbon Impeller in Stirred-Tank Fermenter , 2009, Food and Bioprocess Technology.
[19] Joseph S. Valacich,et al. The Influence of Task Interruption on Individual Decision Making: An Information Overload Perspective , 1999 .
[20] T. Pan,et al. Mpp7 controls regioselective Knoevenagel condensation during the biosynthesis of Monascus azaphilone pigments , 2014 .
[21] C. K. Venil,et al. Effect of light on growth, intracellular and extracellular pigment production by five pigment-producing filamentous fungi in synthetic medium. , 2010, Journal of bioscience and bioengineering.
[22] Xuehong Zhang,et al. Preparation and characterization of yellow Monascus pigments , 2015 .
[23] Vera Meyer,et al. Highly efficient gene targeting in the Aspergillus niger kusA mutant. , 2007, Journal of biotechnology.
[24] Laurent Dufossé,et al. Microorganisms and microalgae as sources of pigments for food use: a scientific oddity or an industrial reality? , 2005 .
[25] H. Wong,et al. Pigmentation and Antibacterial Activity of Fast Neutron- and X-Ray-induced Strains of Monascus purpureus Went. , 1977, Plant physiology.
[26] J. Coutinho,et al. Isolation of natural red colorants from fermented broth using ionic liquid-based aqueous two-phase systems , 2013, Journal of Industrial Microbiology & Biotechnology.
[27] Ulf Thrane,et al. Fungal polyketide azaphilone pigments as future natural food colorants? , 2010, Trends in biotechnology.
[28] C. Soccol,et al. Effect of stress on growth, pigment production and morphology of Monascus sp. in solid cultures , 2007, Journal of basic microbiology.
[29] A. Demain,et al. Formation of water-solubleMonascus red pigments by biological and semi-synthetic processes , 1992, Journal of Industrial Microbiology.
[30] S. Haam,et al. Enhancement of Monascus Pigment Production by the Culture of Monascus sp. J101 at Low Temperature , 2006, Biotechnology progress.
[31] S. Nagai,et al. Polyketide Synthase Gene Responsible for Citrinin Biosynthesis in Monascus purpureus , 2005, Applied and Environmental Microbiology.
[32] Laurent Dufossé,et al. Microbial Production of Food Grade Pigments , 2006 .
[33] K. Nakanishi,et al. Structure of monascorubrin. , 1962 .
[34] Takashi Suzuki,et al. Azaphilones, furanoisophthalides, and amino acids from the extracts of Monascus pilosus-fermented rice (red-mold rice) and their chemopreventive effects. , 2005, Journal of agricultural and food chemistry.
[35] J. Ogihara,et al. Production and structural analysis of PP-V, a homologue of monascorubramine, produced by a new isolate of Penicillium sp. , 2000, Journal of bioscience and bioengineering.
[36] Goma,et al. Improvement of red pigment/citrinin production ratio as a function of environmental conditions by monascus ruber , 1999, Biotechnology and bioengineering.
[37] R. Poorniammal,et al. Optimization of fermentation conditions for red pigment production from Penicillium sp . under submerged cultivation , 2008 .
[38] G Goma,et al. Characterization of monascidin A from Monascus as citrinin. , 1995, International journal of food microbiology.
[39] A. Meyer,et al. Photostability of natural orange-red and yellow fungal pigments in liquid food model systems. , 2009, Journal of agricultural and food chemistry.
[40] B. Liu,et al. Complete genome sequence and transcriptomics analyses reveal pigment biosynthesis and regulatory mechanisms in an industrial strain, Monascus purpureus YY-1 , 2015, Scientific Reports.
[41] Xuehong Zhang,et al. Perstraction of intracellular pigments by submerged cultivation of Monascus in nonionic surfactant micelle aqueous solution , 2012, Applied Microbiology and Biotechnology.
[42] R. Mudgett,et al. Effects of Oxygen and Carbon Dioxide Partial Pressures on Monascus Growth and Pigment Production in Solid‐State Fermentations , 1992 .
[43] U. Wissgott,et al. Prospects for new natural food colorants , 1996 .
[44] A. Tonso,et al. Effect of dissolved oxygen concentration on red pigment and citrinin production by Monascus purpureus ATCC 36928 , 2008 .
[45] C. Shin,et al. Novel derivatives of monascus pigment having a high CETP inhibitory activity , 2014, Natural product research.
[46] N. Ayoub,et al. Azaphilones: a class of fungal metabolites with diverse biological activities , 2010, Phytochemistry Reviews.
[47] M. Pistolozzi,et al. Controlling composition and color characteristics of Monascus pigments by pH and nitrogen sources in submerged fermentation. , 2015, Journal of bioscience and bioengineering.
[48] J. Ogihara,et al. Effect of ammonium nitrate on the production of PP-V and monascorubrin homologues by Penicillium sp. AZ. , 2002, Journal of bioscience and bioengineering.
[49] Hyun-Ju Kim,et al. Genetic localization and in vivo characterization of a Monascus azaphilone pigment biosynthetic gene cluster , 2013, Applied Microbiology and Biotechnology.
[50] J. Frisvad,et al. Talaromyces atroroseus, a New Species Efficiently Producing Industrially Relevant Red Pigments , 2013, PloS one.
[51] J. Frisvad,et al. Exploring fungal biodiversity for the production of water-soluble pigments as potential natural food colorants. , 2005, Current opinion in biotechnology.
[52] U. Mortensen,et al. A CRISPR-Cas9 System for Genetic Engineering of Filamentous Fungi , 2015, PloS one.
[53] F. Tan,et al. Effects of addition of anka rice on the qualities of low-nitrite Chinese sausages. , 2010 .
[54] S. Lumyong,et al. Improving Solid-State Fermentation of Monascus purpureus on Agricultural Products for Pigment Production , 2011 .
[55] P. Gunasekaran,et al. Optimization of a fermentation medium for the production of Penicillin G acylase from Bacillus sp. , 2002, Letters in applied microbiology.
[56] J. S. Holker,et al. 722. The chemistry of fungi. Part XXXVII. The structure of rubropunctatin , 1959 .
[57] J. Ogihara,et al. Effects of Inorganic Nitrogen Sources on the Production of PP-V [(10Z)-12-carboxyl-monascorubramine] and the Expression of the Nitrate Assimilation Gene Cluster by Penicillium sp. AZ , 2012, Bioscience, biotechnology, and biochemistry.
[58] P. Patakova. Monascus secondary metabolites: production and biological activity , 2013, Journal of Industrial Microbiology & Biotechnology.
[59] A. Serani,et al. Extraction of pigment information from near-UV vis absorption spectra of extra virgin olive oils. , 2014, Journal of agricultural and food chemistry.
[60] L. Bullerman,et al. A review of factors affecting biosynthesis of carotenoids by the order Mucorales , 1985, Mycopathologia.
[61] T. Miyake,et al. Light effects on cell development and secondary metabolism in Monascus , 2005, Journal of Industrial Microbiology and Biotechnology.
[62] K. Naidu,et al. Safety evaluation of Monascus purpureus red mould rice in albino rats. , 2009, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[63] D. Shepherd,et al. The effect of different nitrogen sources on pigment production and sporulation of Monascus species in submerged, shaken culture. , 1977, Canadian journal of microbiology.
[64] Débora Oliveira,et al. Influence of Light Intensity on Growth and Pigment Production by Monascus ruber in Submerged Fermentation , 2015, Applied Biochemistry and Biotechnology.
[65] G. Goma,et al. Production and Identification of N-Glucosylrubropunctamine and N-Glucosylmonascorubramine from Monascus ruber and Occurrence of Electron Donor-Acceptor Complexes in These Red Pigments , 1997, Applied and environmental microbiology.
[66] Ulf Thrane,et al. Colorimetric characterization for comparative analysis of fungal pigments and natural food colorants. , 2006, Journal of agricultural and food chemistry.
[67] Sasithorn Kongruang,et al. Growth kinetics of biopigment production by Thai isolated Monascus purpureus in a stirred tank bioreactor , 2010, Journal of Industrial Microbiology & Biotechnology.
[68] Jufang Wang,et al. Optimization of culture medium for yellow pigments production with Monascus anka mutant using response surface methodology , 2009 .
[69] You Wang,et al. The variability of citrinin production in Monascus type cultures , 2005 .
[70] Fusheng Chen,et al. Erratum to: ku70 and ku80 null mutants improve the gene targeting frequency in Monascus ruber M7 , 2013, Applied Microbiology and Biotechnology.
[71] G. Goma,et al. Medium-Chain Fatty Acids Affect Citrinin Production in the Filamentous Fungus Monascus ruber , 2000, Applied and Environmental Microbiology.
[72] Zheng-Tao Wang,et al. Identification and chemical profiling of monacolins in red yeast rice using high-performance liquid chromatography with photodiode array detector and mass spectrometry. , 2004, Journal of pharmaceutical and biomedical analysis.
[73] V. Křen,et al. Secondary metabolites of the fungusMonascus: A review , 1996, Journal of Industrial Microbiology.
[74] W. Hsu,et al. Treatment of metabolic syndrome with ankaflavin, a secondary metabolite isolated from the edible fungus Monascus spp. , 2014, Applied Microbiology and Biotechnology.
[75] C. Shin,et al. Color characteristics of monascus pigments derived by fermentation with various amino acids. , 2003, Journal of agricultural and food chemistry.
[76] A. Demain,et al. Effect of nutrition of Monascus sp. on formation of red pigments , 1991, Applied Microbiology and Biotechnology.
[77] V. Santos-Ebinuma,et al. Improvement of submerged culture conditions to produce colorants by Penicillium purpurogenum , 2014, Brazilian journal of microbiology : [publication of the Brazilian Society for Microbiology].
[78] E. Haller,et al. Blood-Brain Barrier Alterations Provide Evidence of Subacute Diaschisis in an Ischemic Stroke Rat Model , 2013, PloS one.
[79] B. V. Kilikian,et al. Effect of pH on citrinin and red pigments production by Monascus purpureus CCT3802 , 2008 .
[80] A. Meyer,et al. Computerized screening for novel producers of Monascus-like food pigments in Penicillium species. , 2008, Journal of agricultural and food chemistry.
[81] C. Soccol,et al. Effect of light on growth, pigment production and culture morphology of Monascus purpureus in solid-state fermentation , 2008 .
[82] D. Nimmo,et al. Interspecific and Geographic Variation in the Diets of Sympatric Carnivores: Dingoes/Wild Dogs and Red Foxes in South-Eastern Australia , 2015, PloS one.
[83] G. Goma,et al. Pigments of Monascus , 1994 .
[84] U. Trivedi,et al. An enhancement of red pigment production by submerged culture of Monascus purpureus MTCC 410 employing statistical methodology , 2014 .
[85] W. Whalley,et al. Isolation and structure of ankaflavin: A new pigment from Monascus anka , 1973 .
[86] L. Dufossé,et al. Filamentous fungi are large-scale producers of pigments and colorants for the food industry. , 2014, Current opinion in biotechnology.
[87] A. Demain,et al. Negative effect of ammonium nitrate as nitrogen source on the production of water-soluble red pigments by Monascus sp. , 1995, Applied Microbiology and Biotechnology.
[88] P. Suwanarit,et al. Fermentation of ang‐kak in plastic bags and regulation of pigmentation by initial moisture content , 1990 .
[89] H. Shimizu,et al. Maximizing yellow pigment production in fed-batch culture of Monascus sp. , 2000, Journal of bioscience and bioengineering.
[90] D. Shepherd,et al. The effect of pH and amino acids on conidiation and pigment production of Monascus major ATCC 16362 and Monascus rubiginosus ATCC 16367 in submerged shaken culture. , 1978, Canadian Journal of Microbiology (print).
[91] Y. Hsu,et al. Monascin and ankaflavin act as novel hypolipidemic and high-density lipoprotein cholesterol-raising agents in red mold dioscorea. , 2010, Journal of agricultural and food chemistry.
[92] G. Goma,et al. Production of citrinin by various species ofMonascus , 1995, Biotechnology Letters.
[93] Y. Chisti,et al. Optimal C:N ratio for the production of red pigments by Monascus ruber , 2014, World journal of microbiology & biotechnology.
[94] F. Chow,et al. Standardization of a protocol to extract and analyze chlorophyll a and carotenoids in Gracilaria tenuistipitata Var. Liui. Zhang and Xia (Rhodophyta) , 2014 .
[95] Xuehong Zhang,et al. Accumulation of yellow Monascus pigments by extractive fermentation in nonionic surfactant micelle aqueous solution , 2014, Applied Microbiology and Biotechnology.
[96] Alison Downham,et al. Colouring our foods in the last and next millennium , 2000 .
[97] Y. Hsu,et al. New bioactive orange pigments with yellow fluorescence from Monascus-fermented dioscorea. , 2011, Journal of agricultural and food chemistry.
[98] C. R. Soccol,et al. Effect of substrates on the production of Monascus biopigments by solid-state fermentation and pigment extraction using different solvents , 2007 .
[99] V. Santos-Ebinuma,et al. Submerged culture conditions for the production of alternative natural colorants by a new isolated Penicillium purpurogenum DPUA 1275. , 2013, Journal of microbiology and biotechnology.
[100] M. Sobh,et al. Efficacy and safety of Monascus purpureus Went rice in children and young adults with secondary hyperlipidemia: a preliminary report. , 2009, European journal of internal medicine.
[101] Fusheng Chen,et al. Insights into Monascus biology at the genetic level , 2014, Applied Microbiology and Biotechnology.
[102] V. Havlíček,et al. Biological activities of oligoketide pigments of Monascus purpureus. , 1999, Food additives and contaminants.
[103] M. Johns,et al. Effect of pH and nitrogen source on pigment production by Monascus purpureus , 2004, Applied Microbiology and Biotechnology.
[104] K. Dekermendjian,et al. Novel Bioactive Azaphilones from Fruit Bodies and Mycelial Cultures of the Ascomycete Bulgaria inquinans (Fr.) , 1995 .
[105] Xuehong Zhang,et al. Production of citrinin-free Monascus pigments by submerged culture at low pH. , 2014, Enzyme and microbial technology.
[106] C. Tseng,et al. Cloning and characterization of monacolin K biosynthetic gene cluster from Monascus pilosus. , 2008, Journal of agricultural and food chemistry.
[107] M. Workman,et al. Integrated Approaches for Assessment of Cellular Performance in Industrially Relevant Filamentous Fungi , 2013 .
[108] J. Frisvad,et al. Chemotaxonomy of the genus Talaromyces , 1990, Antonie van Leeuwenhoek.
[109] J. François,et al. Biosynthetic Pathway of Citrinin in the Filamentous Fungus Monascus ruber as Revealed by 13C Nuclear Magnetic Resonance , 1999, Applied and Environmental Microbiology.
[110] R. Firn,et al. Natural products--a simple model to explain chemical diversity. , 2003, Natural product reports.
[111] S. Nagai,et al. Separation and Determination of Monascus Yellow Pigments for Food by Micellar Electrokinetic Chromatography , 1997 .
[112] Cristóbal N. Aguilar,et al. Red pigment production by Penicillium purpurogenum GH2 is influenced by pH and temperature , 2011, Journal of Zhejiang University SCIENCE B.
[113] J. C. Carvalho,et al. Monascus: a Reality on the Production and Application of Microbial Pigments , 2015, Applied Biochemistry and Biotechnology.
[114] Nan-Wei Su,et al. Ankaflavin from Monascus-fermented red rice exhibits selective cytotoxic effect and induces cell death on Hep G2 cells. , 2005, Journal of agricultural and food chemistry.
[115] Ashok Pandey,et al. Solid-state fermentation for the production of Monascus pigments from jackfruit seed. , 2007, Bioresource technology.
[116] R. Cox,et al. Genetic, molecular, and biochemical basis of fungal tropolone biosynthesis , 2012, Proceedings of the National Academy of Sciences.
[117] James J. Cai,et al. High diversity of polyketide synthase genes and the melanin biosynthesis gene cluster in Penicillium marneffei , 2010, The FEBS journal.
[118] Y. Goda,et al. IDENTIFICATION OF MAJOR PIGMENTS CONTAINING D-AMINO ACID UNITS IN COMMERCIAL MONASCUS PIGMENTS , 1997 .
[119] J. Nielsen,et al. Glucoamylase production in batch, chemostat and fed-batch cultivations by an industrial strain of Aspergillus niger , 2000, Applied Microbiology and Biotechnology.
[120] J. Nielsen,et al. Induction and repression of alpha-amylase production in batch and continuous cultures of Aspergillus oryzae. , 1995, Microbiology.
[121] W. Whalley,et al. The structure of monascin , 1969 .
[122] Y. Kim,et al. Antimicrobial activities of amino acid derivatives of monascus pigments. , 2006, FEMS microbiology letters.
[123] A. Demain,et al. Leucine interference in the production of water-soluble red Monascus pigments , 1994, Archives of Microbiology.
[124] R. Twyman,et al. Nutritionally important carotenoids as consumer products , 2015, Phytochemistry Reviews.
[125] J. Eyzaguirre,et al. Culture conditions for enhanced cellulase production by a native strain of Penicillium purpurogenum , 1994, World journal of microbiology & biotechnology.
[126] J. Ayuso,et al. Measurement of the concentrations of solutions through chromatic systems. , 1995, Applied optics.
[127] P. Koehler,et al. PIGMENTS PRODUCED BY Monascus purpureus WITH REGARD TO QUALITY AND QUANTITY , 1980 .
[128] Weiping Wang,et al. Effect of oxygen supply on Monascus pigments and citrinin production in submerged fermentation. , 2015, Journal of bioscience and bioengineering.
[129] D. M. Stuart,et al. Production of pigments byMonascus purpureus in solid culture , 2005, Journal of Industrial Microbiology.