Microbial biosurfactant research: time to improve the rigour in the reporting of synthesis, functional characterization and process development
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Sophie Roelants | Ibrahim M Banat | Niki Baccile | Roger Marchant | Matthew Simon Twigg | Eric Déziel | Inge N A Van Bogaert | I. Banat | R. Marchant | Eric Déziel | N. Baccile | S. Roelants | I. V. Van Bogaert | M. Twigg
[1] J. Chen,et al. Sophorolipid produced from the new yeast strain Wickerhamiella domercqiae induces apoptosis in H7402 human liver cancer cells , 2006, Applied Microbiology and Biotechnology.
[2] S. Benjamin,et al. Pseudomonas sp. BUP6, a novel isolate from Malabari goat produces an efficient rhamnolipid type biosurfactant , 2017, Journal of basic microbiology.
[3] Eric Déziel,et al. Structural determination of ananatoside A: An unprecedented 15-membered macrodilactone-containing glycolipid from Pantoea ananatis. , 2019, Carbohydrate research.
[4] J. E. Pemberton,et al. Optimization of a Chemical Synthesis for Single-Chain Rhamnolipids , 2020 .
[5] E. Kolehmainen,et al. Solid state NMR studies of gels derived from low molecular mass gelators , 2016, Soft matter.
[6] L. Bergström,et al. Explaining the growth behavior of surfactant micelles. , 2015, Journal of colloid and interface science.
[7] E. Chandrasekaran,et al. 11 – Constituent Analysis of Glycosaminoglycans , 1980 .
[8] J. Reiser,et al. Hydrocarbon assimilation and biosurfactant production in Pseudomonas aeruginosa mutants , 1991, Journal of bacteriology.
[9] L. Rodrigues,et al. Biosurfactants in cosmetic formulations: trends and challenges , 2017, Critical reviews in biotechnology.
[10] Fulvia Tambone,et al. Use of biosurfactants from urban wastes compost in textile dyeing and soil remediation. , 2009, Waste management.
[11] I. Banat,et al. Characterising rhamnolipid production in Burkholderia thailandensis E264, a non-pathogenic producer , 2016, Applied Microbiology and Biotechnology.
[12] I. Banat,et al. Microbial rhamnolipid production: a critical re-evaluation of published data and suggested future publication criteria , 2017, Applied Microbiology and Biotechnology.
[13] J. M. Bremner. Determination of nitrogen in soil by the Kjeldahl method , 1960, The Journal of Agricultural Science.
[14] S. Cui. Understanding the Physical Properties of Food Polysaccharides , 2005 .
[15] M. Marahiel,et al. Identification of a Gene Cluster for Biosynthesis of Mannosylerythritol Lipids in the Basidiomycetous Fungus Ustilago maydis , 2006, Applied and Environmental Microbiology.
[16] B. Devreese,et al. Unraveling and resolving inefficient glucolipid biosurfactants production through quantitative multiomics analyses of Starmerella bombicola strains , 2020, Biotechnology and bioengineering.
[17] Zhong Hu,et al. Genetic evidences for the core biosynthesis pathway, regulation, transport and secretion of liamocins in yeast-like fungal cells. , 2020, The Biochemical journal.
[18] I. Smalyukh,et al. Optical Microscopy of Soft Matter Systems , 2011, 1108.3287.
[19] Shuang Li,et al. High-Yield Di-Rhamnolipid Production by Pseudomonas aeruginosa YM4 and its Potential Application in MEOR , 2019, Molecules.
[20] Guneet Kaur,et al. Starmerella bombicola : recent advances on sophorolipid production and prospects of waste stream utilization , 2018, Journal of Chemical Technology & Biotechnology.
[21] S. Lindow,et al. Novel High-Throughput Detection Method To Assess Bacterial Surfactant Production , 2010, Applied and Environmental Microbiology.
[22] L. Blank,et al. A Straightforward Assay for Screening and Quantification of Biosurfactants in Microbial Culture Supernatants , 2020, Frontiers in Bioengineering and Biotechnology.
[23] C. Perrin,et al. Hemolysis by surfactants--A review. , 2016, Advances in colloid and interface science.
[24] Honggang Cui,et al. Elucidating the assembled structure of amphiphiles in solution via cryogenic transmission electron microscopy. , 2007, Soft matter.
[25] Fritz Wagner,et al. New method for detecting rhamnolipids excreted by Pseudomonas species during growth on mineral agar , 1991 .
[26] Kazuya Watanabe,et al. Design and evaluation of PCR primers to amplify bacterial 16S ribosomal DNA fragments used for community fingerprinting. , 2001, Journal of microbiological methods.
[27] I. Banat,et al. Rhamnolipids are conserved biosurfactants molecules: implications for their biotechnological potential , 2013, Applied Microbiology and Biotechnology.
[28] I. Banat,et al. Biosynthesis of rhamnolipid by a Marinobacter species expands the paradigm of biosurfactant synthesis to a new genus of the marine microflora , 2019, Microbial Cell Factories.
[29] Julien Tremblay,et al. Self-produced extracellular stimuli modulate the Pseudomonas aeruginosa swarming motility behaviour. , 2007, Environmental microbiology.
[30] Markus Michael Müller,et al. Evaluation of rhamnolipid production capacity of Pseudomonas aeruginosa PAO1 in comparison to the rhamnolipid over-producer strains DSM 7108 and DSM 2874 , 2011, Applied Microbiology and Biotechnology.
[31] H. Nakahara,et al. Research on the vesicle-micelle transition by 1H NMR relaxation measurement. , 2006, The journal of physical chemistry. B.
[32] J. Tiedje,et al. The Ribosomal Database Project: Sequences and Software for High-Throughput rRNA Analysis , 2011 .
[33] H. Härmä,et al. Quantitative and discriminative analysis of nucleic acid samples using luminometric nonspecific nanoparticle methods. , 2016, Nanoscale.
[34] I. Banat,et al. Microbial biosurfactants production, applications and future potential , 2010, Applied Microbiology and Biotechnology.
[35] Ibrahim M. Banat,et al. Biosurfactants: Production and potential applications in microbial enhanced oil recovery (MEOR) , 2018 .
[36] C. Olvera,et al. Cloning and functional characterization of the Pseudomonas aeruginosa rhlC gene that encodes rhamnosyltransferase 2, an enzyme responsible for di‐rhamnolipid biosynthesis , 2001, Molecular microbiology.
[37] I. Banat,et al. Marine derived biosurfactants: a vast potential future resource , 2018, Biotechnology Letters.
[38] K. Sengupta,et al. Measuring shape fluctuations in biological membranes , 2016 .
[39] A. Saika,et al. A New Screening Approach for Glycolipid-type Biosurfactant Producers Using MALDI-TOF/MS. , 2019, Journal of oleo science.
[40] M. Parsek,et al. Pseudomonas aeruginosa recognizes and responds aggressively to the presence of polymorphonuclear leukocytes. , 2009, Microbiology.
[41] I. Banat,et al. Protocols for the Detection and Chemical Characterisation of Microbial Glycolipids , 2014 .
[42] F. Lépine,et al. Liquid chromatography/mass spectrometry for the identification and quantification of rhamnolipids. , 2014, Methods in molecular biology.
[43] J. Spencer,et al. Structure and reactions of lactonic and acidic sophorosides of 17-hydroxyoctadecanoic acid , 1968 .
[44] L. Bergström. Bending energetics of tablet-shaped micelles: a novel approach to rationalize micellar systems. , 2007, Chemphyschem : a European journal of chemical physics and physical chemistry.
[45] N. Christova,et al. Biosurfactant Production By A New Pseudomonas Putida Strain , 2002, Zeitschrift fur Naturforschung. C, Journal of biosciences.
[46] A. Middelberg,et al. Rapid screening of surfactant and biosurfactant surface cleaning performance. , 2009, Colloids and surfaces. B, Biointerfaces.
[47] Eric Déziel,et al. Quorum Sensing Controls Both Rhamnolipid and Polyhydroxyalkanoate Production in Burkholderia thailandensis Through ScmR Regulation , 2020, Frontiers in Bioengineering and Biotechnology.
[48] S. Prévost,et al. Micelles versus Ribbons: How Congeners Drive the Self-Assembly of Acidic Sophorolipid Biosurfactants. , 2017, Chemphyschem : a European journal of chemical physics and physical chemistry.
[49] W. Helfrich,et al. Special features of phosphatidylcholine vesicles as seen in cryo-transmission electron microscopy , 1993, European Biophysics Journal.
[50] P. Williams,et al. Rapid necrotic killing of polymorphonuclear leukocytes is caused by quorum-sensing-controlled production of rhamnolipid by Pseudomonas aeruginosa. , 2007, Microbiology.
[51] P. Agrawal,et al. NMR spectroscopy in the structural elucidation of oligosaccharides and glycosides. , 1992, Phytochemistry.
[52] S. Mayor,et al. The mystery of membrane organization: composition, regulation and roles of lipid rafts , 2017, Nature Reviews Molecular Cell Biology.
[53] A. Jordanova,et al. Rhamnolipid Biosurfactants Produced by Renibacterium salmoninarum 27BN During Growth on n-Hexadecane , 2004, Zeitschrift fur Naturforschung. C, Journal of biosciences.
[54] S. P. Moulik,et al. Pyrene absorption can be a convenient method for probing critical micellar concentration (cmc) and indexing micellar polarity. , 2006, Journal of colloid and interface science.
[55] P. Ratsep,et al. Identification and quantification of sophorolipid analogs using ultra-fast liquid chromatography-mass spectrometry. , 2009, Journal of microbiological methods.
[56] L. Blank,et al. Novel insights into biosynthesis and uptake of rhamnolipids and their precursors , 2016, Applied Microbiology and Biotechnology.
[57] Markus Michael Müller,et al. Regulatory and metabolic network of rhamnolipid biosynthesis: Traditional and advanced engineering towards biotechnological production , 2011, Applied Microbiology and Biotechnology.
[58] I. Banat,et al. Microbial biosurfactants as additives for food industries , 2013, Biotechnology progress.
[59] A Fiechter,et al. Production of Pseudomonas aeruginosa Rhamnolipid Biosurfactants in Heterologous Hosts , 1995, Applied and environmental microbiology.
[60] Jorge Lalucat,et al. An rpoD-based PCR procedure for the identification of Pseudomonas species and for their detection in environmental samples. , 2009, Molecular and cellular probes.
[61] I. Banat,et al. Microbial biosurfactants: current trends and applications in agricultural and biomedical industries , 2019, Journal of applied microbiology.
[62] Eric D. Dodds,et al. Gas chromatographic quantification of fatty acid methyl esters: Flame ionization detection vs. Electron impact mass spectrometry , 2005, Lipids.
[63] H. K. King,et al. The simultaneous determination of pentose and hexose in mixtures of sugars , 1953 .
[64] J. Reiser,et al. Isolation, characterization, and expression in Escherichia coli of the Pseudomonas aeruginosa rhlAB genes encoding a rhamnosyltransferase involved in rhamnolipid biosurfactant synthesis. , 1994, The Journal of biological chemistry.
[65] P. Liu. SURVEY OF HEMOLYSIN PRODUCTION AMONG SPECIES OF PSEUDOMONADS , 1957, Journal of bacteriology.
[66] M. Sztucki,et al. New opportunities for Anomalous Small-Angle X-Ray Scattering to characterize Charged Soft Matter Systems , 2011 .
[67] V. Parsegian,et al. Hydration forces: Observations, explanations, expectations, questions , 2011 .
[68] Jing Chen,et al. Metal ions can affect the composition and production of sophorolipids by Wickerhamiella domercqiae Y2A CGMCC 3798 , 2014 .
[69] S. Harayama,et al. PCR Amplification and Direct Sequencing of gyrB Genes with Universal Primers and Their Application to the Detection and Taxonomic Analysis of Pseudomonas putida Strains , 1995 .
[70] A. Çabuk,et al. The true methodology for rhamnolipid: Various solvents affect rhamnolipid characteristics , 2017 .
[71] A. R. Fernandes,et al. Occurrence of non-toxic bioemulsifiers during polyhydroxyalkanoate production by Pseudomonas strains valorizing crude glycerol by-product. , 2019, Bioresource technology.
[72] Suman Rana,et al. Making sense of Brownian motion: colloid characterization by dynamic light scattering. , 2015, Langmuir : the ACS journal of surfaces and colloids.
[73] L. Vega-Alvarado,et al. High-Quality Draft Genome Sequence of Candida apicola NRRL Y-50540 , 2015, Genome Announcements.
[74] J. K. Thomas,et al. Environmental effects on vibronic band intensities in pyrene monomer fluorescence and their application in studies of micellar systems , 1977 .
[75] O. Mamer,et al. Liquid chromatography/mass spectrometry analysis of mixtures of rhamnolipids produced by Pseudomonas aeruginosa strain 57RP grown on mannitol or naphthalene. , 1999, Biochimica et biophysica acta.
[76] R. Parthasarathi,et al. Production and characterization of rhamnolipids produced by Serratia rubidaea SNAU02 under solid-state fermentation and its application as biocontrol agent. , 2014, Bioresource technology.
[77] E. Myers,et al. Basic local alignment search tool. , 1990, Journal of molecular biology.
[78] I. V. Van Bogaert,et al. Sophorolipid production by yeasts: a critical review of the literature and suggestions for future research , 2017, Applied Microbiology and Biotechnology.
[79] P. Meda,et al. Rhamnolipids Are Virulence Factors That Promote Early Infiltration of Primary Human Airway Epithelia by Pseudomonas aeruginosa , 2006, Infection and Immunity.
[80] N. Stribeck. X-Ray Scattering of Soft Matter , 2007 .
[81] V. Wray,et al. Microbial production, structure elucidation and bioconversion of sophorose lipids , 1988 .
[82] W. Helfrich. Steric Interaction of Fluid Membranes in Multilayer Systems , 1978 .
[83] I. Banat,et al. Identification and characterisation of short chain rhamnolipid production in a previously uninvestigated, non-pathogenic marine pseudomonad , 2018, Applied Microbiology and Biotechnology.
[84] D. Otzen,et al. Folding of outer membrane protein A in the anionic biosurfactant rhamnolipid , 2014, FEBS letters.
[85] E. Chan,et al. A CRITICAL REVIEW: SURFACE AND INTERFACIAL TENSION MEASUREMENT BY THE DROP WEIGHT METHOD , 2008 .
[86] M. Infante,et al. Physicochemical characterization and antimicrobial properties of rhamnolipids produced by Pseudomonas aeruginosa 47T2 NCBIM 40044. , 2003, Biotechnology and bioengineering.
[87] J M Walker,et al. The bicinchoninic acid (BCA) assay for protein quantitation. , 1994, Methods in molecular biology.
[88] Wenyu Lu,et al. Semicontinuous sophorolipid fermentation using a novel bioreactor with dual ventilation pipes and dual sieve‐plates coupled with a novel separation system , 2017, Microbial biotechnology.
[89] C. Mulligan,et al. Selection of microbes producing biosurfactants in media without hydrocarbons , 1984 .
[90] T. McIntosh,et al. Short-range pressures between liquid bilayer membranes , 1996 .
[91] M. De Mey,et al. Comparison of DNA and RNA quantification methods suitable for parameter estimation in metabolic modeling of microorganisms. , 2006, Analytical biochemistry.
[92] A. Nuñez,et al. Production of Rhamnolipids by Pseudomonas chlororaphis, a Nonpathogenic Bacterium , 2005, Applied and Environmental Microbiology.
[93] I. Banat,et al. Microscopic Investigation of the Combined Use of Antibiotics and Biosurfactants on Methicillin Resistant Staphylococcus aureus , 2020, Frontiers in Microbiology.
[94] B. Devreese,et al. Towards the industrialization of new biosurfactants: Biotechnological opportunities for the lactone esterase gene from Starmerella bombicola , 2016, Biotechnology and bioengineering.
[95] C. Kurtzman,et al. Production of sophorolipid biosurfactants by multiple species of the Starmerella (Candida) bombicola yeast clade. , 2010, FEMS microbiology letters.
[96] Tilmann Weber,et al. The evolution of genome mining in microbes - a review. , 2016, Natural product reports.
[97] J. Hodge. Determination of reducing sugars and carbohydrates , 1962 .
[98] Feihe Huang,et al. Characterization of supramolecular gels. , 2013, Chemical Society reviews.
[99] F. Lépine,et al. Characterization of rhamnolipid production by Burkholderia glumae , 2011, Letters in applied microbiology.
[100] P. Clegg,et al. Foaming, emulsifying and rheological properties of extracts from a co-product of the Quorn fermentation process , 2019, European Food Research and Technology.
[101] W. Soetaert,et al. Synthesis of bolaform biosurfactants by an engineered Starmerella bombicola yeast , 2016, Biotechnology and bioengineering.
[102] V. Parsegian,et al. Measurement of forces between lecithin bilayers , 1976, Nature.
[103] I. Banat,et al. Production and applications of trehalose lipid biosurfactants , 2010 .
[104] P. L. Noüy,et al. AN INTERFACIAL TENSIOMETER FOR UNIVERSAL USE. , 1925 .
[105] F. Lépine,et al. Rhamnolipids: diversity of structures, microbial origins and roles , 2010, Applied Microbiology and Biotechnology.
[106] A. B. Kayitmazer,et al. Thermodynamics of complex coacervation. , 2017, Advances in colloid and interface science.
[107] C. Syldatk,et al. Fast quantitative determination of microbial rhamnolipids from cultivation broths by ATR-FTIR Spectroscopy , 2008, Journal of biological engineering.
[108] K. Tam,et al. Use of isothermal titration calorimetry to study surfactant aggregation in colloidal systems. , 2016, Biochimica et biophysica acta.
[109] Wim Soetaert,et al. Microbial production and application of sophorolipids , 2007, Applied Microbiology and Biotechnology.
[110] V. Parsegian,et al. Equation of state of a charged bilayer system: Measure of the entropy of the lamellar–lamellar transition in DDABr , 1998 .
[111] Yilin Wang,et al. Applications of small-angle X-ray scattering/small-angle neutron scattering and cryogenic transmission electron microscopy to understand self-assembly of surfactants , 2019, Current Opinion in Colloid & Interface Science.
[112] Hugh E. Olsen,et al. The Oxford Nanopore MinION: delivery of nanopore sequencing to the genomics community , 2016, Genome Biology.
[113] Pelin Yilmaz,et al. The SILVA ribosomal RNA gene database project: improved data processing and web-based tools , 2012, Nucleic Acids Res..
[114] W. C. Griffin. Classification of surface-active agents by "HLB" , 1946 .
[115] B. Ninham,et al. Theory of self-assembly of hydrocarbon amphiphiles into micelles and bilayers , 1976 .
[116] Stephen P. Diggle,et al. A new assay for rhamnolipid detection—important virulence factors of Pseudomonas aeruginosa , 2014, Applied Microbiology and Biotechnology.
[117] Qingxin Li,et al. Microbial production of rhamnolipids using sugars as carbon sources , 2018, Microbial Cell Factories.
[118] T. Narayanan,et al. Anomalous small-angle X-ray scattering from charged soft matter , 2012, The European Physical Journal Special Topics.
[119] I. V. Van Bogaert,et al. Yeast glycolipid biosurfactants , 2018, FEBS letters.
[120] A. Kharazmi,et al. Effect of Pseudomonas aeruginosa rhamnolipid on human neutrophil and monocyte function , 1989, APMIS : acta pathologica, microbiologica, et immunologica Scandinavica.
[121] A. Ariff,et al. Isolation and screening of high efficiency biosurfactant-producing bacteria Pseudomonas sp. , 2013, Journal of Biochemistry, Microbiology and Biotechnology.
[122] Nancy F. Hansen,et al. Accurate Whole Human Genome Sequencing using Reversible Terminator Chemistry , 2008, Nature.
[123] J. Chun,et al. Introducing EzBioCloud: a taxonomically united database of 16S rRNA gene sequences and whole-genome assemblies , 2017, International journal of systematic and evolutionary microbiology.
[124] Charles Tanford,et al. The Hydrophobic Effect: Formation of Micelles and Biological Membranes , 1991 .
[125] W. Soetaert,et al. Miniaturization of Starmerella bombicola fermentation for evaluation and increasing (novel) glycolipid production , 2019, Applied Microbiology and Biotechnology.
[126] F. Lépine,et al. Biosurfactant production by a soil pseudomonas strain growing on polycyclic aromatic hydrocarbons , 1996, Applied and environmental microbiology.
[127] Christoph Syldatk,et al. Screening concepts for the isolation of biosurfactant producing microorganisms. , 2010, Advances in experimental medicine and biology.
[128] B. Jönsson. Surfactants and Polymers in Aqueous Solution , 1998 .
[129] Paul T Rygiewicz,et al. Fungal-specific PCR primers developed for analysis of the ITS region of environmental DNA extracts , 2005, BMC Microbiology.
[130] T. Tolker-Nielsen,et al. Multiple Roles of Biosurfactants in Structural Biofilm Development by Pseudomonas aeruginosa , 2007, Journal of bacteriology.
[131] E. Ruckenstein,et al. Critical micelle concentration and the transition point for micellar size distribution , 1975 .
[132] A. Escalante,et al. Rhamnolipids: Production in bacteria other than Pseudomonas aeruginosa , 2010 .
[133] Sanket J. Joshi,et al. Sophorolipids Production by Candida bombicola ATCC 22214 and its Potential Application in Microbial Enhanced Oil Recovery , 2015, Front. Microbiol..
[134] Karl E. Vermillion,et al. MALDI-TOF mass spectrometry of naturally occurring mixtures of monorhamnolipids and dirhamnolipids. , 2009, Carbohydrate research.
[135] W. Ludwig,et al. SILVA: a comprehensive online resource for quality checked and aligned ribosomal RNA sequence data compatible with ARB , 2007, Nucleic acids research.
[136] M. Meijler,et al. Quorum Sensing Controls Swarming Motility of Burkholderia glumae through Regulation of Rhamnolipids , 2015, PloS one.
[137] Jesse R. Zaneveld,et al. Predictive functional profiling of microbial communities using 16S rRNA marker gene sequences , 2013, Nature Biotechnology.
[138] E. Ron,et al. High- and low-molecular-mass microbial surfactants , 1999, Applied Microbiology and Biotechnology.
[139] Gloria Soberón-Chávez,et al. Monorhamnolipids and 3-(3-hydroxyalkanoyloxy)alkanoic acids (HAAs) production using Escherichia coli as a heterologous host , 2006, Applied Microbiology and Biotechnology.
[140] R. Darton,et al. The application of a high throughput analysis method for the screening of potential biosurfactants from natural sources. , 2007, Journal of microbiological methods.
[141] Jiashan Li,et al. Identification and characterization of a flavin-containing monooxygenase MoA and its function in a specific sophorolipid molecule metabolism in Starmerella bombicola , 2015, Applied Microbiology and Biotechnology.
[142] Palashpriya Das,et al. Analysis of biosurfactants from industrially viable Pseudomonas strain isolated from crude oil suggests how rhamnolipids congeners affect emulsification property and antimicrobial activity , 2014, Front. Microbiol..
[143] D. Cooper,et al. Surface-Active Agents from Two Bacillus Species , 1987, Applied and environmental microbiology.
[144] Wim Soetaert,et al. Microbial synthesis of sophorolipids , 2011 .
[145] I. Banat,et al. Biosurfactants: a sustainable replacement for chemical surfactants? , 2012, Biotechnology Letters.
[146] John L. Spouge,et al. Nuclear ribosomal internal transcribed spacer (ITS) region as a universal DNA barcode marker for Fungi , 2012, Proceedings of the National Academy of Sciences.
[147] L. Brown,et al. Microbial enhanced oil recovery (MEOR). , 2010, Current opinion in microbiology.
[148] R. Berka,et al. Studies of phospholipase C (heat-labile hemolysin) in Pseudomonas aeruginosa , 1981, Infection and immunity.
[149] W. Soetaert,et al. Production and Applications of Sophorolipids , 2019, Biobased Surfactants.
[150] S. Turner,et al. Real-Time DNA Sequencing from Single Polymerase Molecules , 2009, Science.
[151] W. Soetaert,et al. On the Self-Assembly Mechanism of pH-Responsive Glycolipids: Micelles, Fibers, Vesicles, and Bilayers , 2019 .
[152] I. Joint,et al. Improved group-specific PCR primers for denaturing gradient gel electrophoresis analysis of the genetic diversity of complex microbial communities , 2008, The ISME Journal.
[153] F. Monroy,et al. Bending stiffness of biological membranes: What can be measured by neutron spin echo? , 2013, The European physical journal. E, Soft matter.
[154] T. Datta,et al. Evaluating analytical methods for the characterization of lipids, proteins and carbohydrates in organic substrates for anaerobic co-digestion. , 2018, Bioresource technology.
[155] G. Tiddy. N.m.r. relaxation times of the lamellar phases of the system sodium caprylate/decanol/water , 1972 .
[156] S. P. Moulik,et al. A critical assessment of micellization of sodium dodecyl benzene sulfonate (SDBS) and its interaction with poly(vinyl pyrrolidone) and hydrophobically modified polymers, JR 400 and LM 200 , 2003 .
[157] N. Doucet,et al. Semi‐rational evolution of the 3‐(3‐hydroxyalkanoyloxy)alkanoate (HAA) synthase RhlA to improve rhamnolipid production in Pseudomonas aeruginosa and Burkholderia glumae , 2019, The FEBS journal.
[158] F. Lépine,et al. Mass spectrometry monitoring of rhamnolipids from a growing culture of Pseudomonas aeruginosa strain 57RP. , 2000, Biochimica et biophysica acta.
[159] I. Banat,et al. Production and Roles of Biosurfactants and Bioemulsifiers in Accessing Hydrophobic Substrates. , 2010 .
[160] H. Busscher,et al. Assessment of bacterial biosurfactant production through axisymmetric drop shape analysis by profile , 1991, Applied Microbiology and Biotechnology.
[161] Donald E Woods,et al. Burkholderia thailandensis harbors two identical rhl gene clusters responsible for the biosynthesis of rhamnolipids , 2009, BMC Microbiology.
[162] O. Jáuregui,et al. Use of liquid chromatography-mass spectroscopy for studying the composition and properties of rhamnolipids produced by different strains of Pseudomonas aeruginosa , 2003 .
[163] E. Franses,et al. Adsorption and surface tension of ionic surfactants at the air–water interface: review and evaluation of equilibrium models , 2001 .
[164] I. Banat,et al. Enhanced rhamnolipid production in Burkholderia thailandensis transposon knockout strains deficient in polyhydroxyalkanoate (PHA) synthesis , 2017, Applied Microbiology and Biotechnology.
[165] B. Joris,et al. Surfactin and fengycin lipopeptides of Bacillus subtilis as elicitors of induced systemic resistance in plants. , 2007, Environmental microbiology.
[166] M. Franzreb,et al. Development and trends of biosurfactant analysis and purification using rhamnolipids as an example , 2008, Analytical and bioanalytical chemistry.
[167] Eric Déziel,et al. A Novel Glycolipid Biosurfactant Confers Grazing Resistance upon Pantoea ananatis BRT175 against the Social Amoeba Dictyostelium discoideum , 2016, mSphere.
[168] I. Banat,et al. Erratum to: Development and validation of an ultra-performance liquid chromatography tandem mass spectrometry (UPLC-MS/MS) method for the quantitative determination of rhamnolipid congeners , 2015, Applied Microbiology and Biotechnology.
[169] W. Soetaert,et al. From lab to market: An integrated bioprocess design approach for new‐to‐nature biosurfactants produced by Starmerella bombicola , 2018, Biotechnology and bioengineering.
[170] D. Kitamoto,et al. Production of glycolipid biosurfactants by basidiomycetous yeasts , 2009, Biotechnology and applied biochemistry.
[171] P. Jensen,et al. Omics-based natural product discovery and the lexicon of genome mining. , 2017, Current opinion in microbiology.
[172] F. Lépine,et al. rhlA is required for the production of a novel biosurfactant promoting swarming motility in Pseudomonas aeruginosa: 3-(3-hydroxyalkanoyloxy)alkanoic acids (HAAs), the precursors of rhamnolipids. , 2003, Microbiology.
[173] D. Cowan,et al. Review and re-analysis of domain-specific 16S primers. , 2003, Journal of microbiological methods.
[174] M. Alam,et al. Utilization of sludge palm oil as a novel substrate for biosurfactant production. , 2010, Bioresource technology.