Ayers WA, Lumsden RD (1975) Factors affecting production and germination of oospores of three Pythium species. Phytopathology 65:1094–1100
Article
Google Scholar
Ben Kheder S, Boukedi H, Dammak M, Kilani-Feki O, Sellami-Boudawara T, Abdelkefi-Mesrati L, Tounsi S (2017) Combinatorial effect of Bacillus amyloliquefaciens AG1 biosurfactant and Bacillus thuringiensis Vip3Aa16 toxin on Spodoptera littoralis larvae. J Invert Pathol 144:11–17
Article
CAS
Google Scholar
Bradford MM (1976) A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem 72:248–254
CAS
PubMed
Article
Google Scholar
Busschaert N, Gale PA (2013) Small-molecule lipid-bilayer anion transporters for biological applications. Angew Chem Int Ed Engl 52:1374–1382
CAS
PubMed
Article
Google Scholar
Cantrell CL, Dayan FE, Duke SO (2012) Natural products as sources for new pesticides. J Nat Prod 75:1231–1242
CAS
PubMed
Article
Google Scholar
Chen K (2008) Applications of mass spectrometry to analysis of prodiginines, bioactivated methylenedianiline intermediates, and hypoxia induced changes in the zebrafish skeletal muscle proteome. University of New Orleans Theses and Dissertations: University of New Orleans, PhD
D’aes J, De Maeyer K, Pauwelyn E, Höfte M (2010) Biosurfactants in plant-Pseudomonas interactions and their importance to biocontrol. Environ Microbiol Rep 2:359–372
PubMed
Article
CAS
Google Scholar
Danevčič T, Borić Vezjak M, Tabor M, Zorec M, Stopar D (2016) Prodigiosin induces autolysins in actively brown Bacillus subtilis cells. Front Microbiol 7:27. https://doi.org/10.3389/fmicb.2016.00027
Article
PubMed
PubMed Central
Google Scholar
Danyuo Y, Dozie-Nwachukwu S, Obayemi JD, Ani CJ, Odusanya OS, Oni Y, Anuku N, Malatesta K, Soboyejo WO (2016) Swelling of poly(N-isopropylacrylamide) P(NIPA)-based hydrogels with bacterial-synthesized prodigiosin for localized cancer drug delivery. Mat Sci Engin C 59:19–29
CAS
Article
Google Scholar
Darshan N, Manonmani HK (2016) Prodigiosin inhibits motility and activates bacterial cell death revealing molecular biomarkers of programmed cell death. AMB Express 6:50. https://doi.org/10.1186/s13568-016-0222-z
CAS
Article
PubMed
PubMed Central
Google Scholar
Dayan FE, Cantrell CL, Duke SO (2009) Natural products in crop protection. Bioorg Medicin Chem 17:4022–5034
CAS
Article
Google Scholar
DeLorenzo V, Herrero M, Jakubzik U, Timmis KN (1990) Mini-Tn5 transposon derivatives for insertion mutagenesis, promoter probing, and chromosomal insertion of cloned DNA in Gram-negative eubacteria. J Bacteriol 172:6568–6572
CAS
Article
Google Scholar
Demain AL (1995) Why do microorganisms produce antimicrobials? In: Hunter PA, Darby GK, Russel NJ (eds). Fifty years of antimicrobials: Past perspectives and future trends. Society for General Microbiology, Symposium 53, Cambridge, UK
Domröse A, Klein AS, Hage-Hůlsmann J, Thies S, Svensson V, Cassen T, Pietruszka J, Jaeger K-E, Drepper T, Loeschcke A (2015) Efficient recombinant production of prodigiosin in Pseudomonas putida. Front Microbiol 6:972. https://doi.org/10.3389/fmicb.2015.00972
Article
PubMed
PubMed Central
Google Scholar
Dwivedi D, Jansen R, Molinari G, Nimtz M, Johri BN, Wray V (2008) Antimycobacterial serratamolides and diacyl peptoglucosamine derivatives from Serratia sp. J Nat Prod 71:637–641
CAS
PubMed
Article
Google Scholar
Ferreira LC, Maul JE, Viana MVC, de Sousa TJ, de Carvalho Azevedo VA, Roberts DP, de Souza JT (2020) Complete genome sequence of the biocontrol agent Serratia marcescens strain N4-5 uncovers an assembly artefact. Braz J Microbiol. https://doi.org/10.1007/s42770-020-00382-2
Article
PubMed
PubMed Central
Google Scholar
Garzón CD, Molineros JE, Yánez JM, Flores FJ, Jiménez-Gasco MM, Moorman GW (2011) Sublethal doses of mefenoxam enhance Pythium damping-off of geranium. Plant Dis 95:1233–1238
PubMed
Article
CAS
Google Scholar
Gerwick BC, Sparks TC (2014) Natural products for pest control: an analysis of their role, value and future. Pest Manag Sci 70:1169–1185
CAS
PubMed
Article
Google Scholar
Hage-Hülsmann J, Grünberger A, Thies S, Santiago-Schübel B, Klein AS, Pietruszka J, Binder D, Hilgers F, Domröse A, Drepper T, Kohlheyer D, Jaeger KE, Loeschcke A (2018) Natural biocide cocktails: combinatorial antibiotic effects of prodigiosin and biosurfactants. PLoS ONE 13:e0200940
PubMed
PubMed Central
Article
CAS
Google Scholar
Herrero M, DeLorenzo V, Timmis KN (1990) Transposon vectors containing non-antibiotic selection markers for cloning and stable chromosomal insertion of foreign genes in Gram-negative bacteria. J Bacteriol 172:6557–6567
CAS
PubMed
PubMed Central
Article
Google Scholar
Hüter FO (2011) Use of natural products in the crop protection industry. Phytochem Rev 10:185–194
Article
CAS
Google Scholar
Jain DK, Collins-Thompson DL, Lee H, Trevors JT (1991) A drop collapsing test for screening surfactant-producing organisms. J Microbiol Meth 13:271–279
Article
Google Scholar
Kadouri ED, Shanks RMQ (2013) Identification of a methicillin-resistant Staphylococcus aureus inhibitory compound isolated from Serratia marcescens. Res Microbiol 164:821–826
CAS
PubMed
PubMed Central
Article
Google Scholar
Kamoun S, Furzer O, Jones JDG, Judelson HS, Ali GS, Dalio RJD, Roy SG, Schena L, Zambounis A, Panabières F, Cahill D, Ruocco M, Figueiredo A, Chan X-R, Hulvey J, Stam R, Lamour K, Gijzen M, Tyler BM, Grünwald NJ, Mukhtar MS, Tomé DFA, Tör M, Van Den Ackerveken G, McDowell J, Daayf F, Fry WE, Lindqvist-Kreuze H, Meijer HJG, Petre B, Ristaino J, Yoshida K, Birch PRJ, Govers F (2014) The top 10 oomycete pathogens in molecular plant pathology. Molec Plant Path. https://doi.org/10.1111/mpp.12190
Article
Google Scholar
Kobayashi DY, El-Barrad N (1996) Selection of bacterial antagonists using enrichment cultures for the control of summer patch disease in Kentucky Bluegrass. Curr Microbiol 32:106–111
CAS
Article
Google Scholar
Lamour KH, Hausbeck MK (2000) Mefenoxam insensitivity and the sexual stage of Phytophthora capsici in Michigan cucurbit fields. Phytopathology 90:396–400
CAS
PubMed
Article
Google Scholar
Lapenda JC, Silva PA, Vicalvi MC, Sena KXFR, Nascimento SC (2015) Antimicrobial activity of prodigiosin isolated from Serratia marcescens UFPEDA 398. World J Micobio Biotechnol 31:1757–1765
Google Scholar
Matsuyama T, Nakagawa Y (1996) Surface-active exolipids: analysis of absolute chemical structures and biological functions. J Microbiol Meth 25:165–175
CAS
Article
Google Scholar
Matsuyama T, Fujita M, Yano I (1985) Wetting agent produced by Serratia marcescens. FEMS Microbiol Lett 28:125–129
CAS
Article
Google Scholar
Miller JH (1972) Experiments in molecular genetics. Cold Spring Harbor Press, Cold Spring Harbor
Google Scholar
Moorman GW, Kim SH (2004) Species of Pythium from greenhouses in Pennsylvania exhibit resistance to propamocarb and mefenoxam. Plant Dis 88:630–632
CAS
PubMed
Article
Google Scholar
Nguyen ND, Gottgert M, Singh M, Klingmuller W (1983) Nif-hybrids of Enterobacter cloacae: selection for nif-gene integration with nif-plasmids containing the Mu transposon. Mol Gen Genet 192:439–443
CAS
Article
Google Scholar
Okubara PA, Dickman MB, Blechl AE (2014) Molecular and genetic aspects of controlling the soilborne necrotrophic pathogens Rhizoctonia and Pythium. Plant Sci 228:61–70
CAS
PubMed
Article
Google Scholar
Parani K, Saha BK (2008) Optimization of prodigiosin production from a strain of Serratia marcescens SR1 and screening for antifungal activity. J Biol Contrl 22:73–79
Google Scholar
Perneel M, D’Hondt L, De Maeyer K, Adiobo A, Rabaey K, Höfte M (2008) Phenazines and biosurfactants interact in the biological control of soil-borne disease caused by Pythium spp. Environ Microbiol 10:778–788
PubMed
Article
Google Scholar
Roberts DP, Marty AM, Dery PD, Yucel I, Hartung JS (1996) Amino acids as reduced carbon sources for Enterobacter cloacae during colonization of the spermospheres of crop plants. Soil Biol Biochem 28:1015–1020
CAS
Article
Google Scholar
Roberts DP, Dery PD, Hebbar PK, Mao W, Lumsden RD (1997) Biological control of damping-off of cucumber caused by Pythium ultimum with a root-colonization-deficient strain of Escherichia coli. J Phytopathol 145:383–388
Article
Google Scholar
Roberts DP, McKenna LF, Lakshman DK, Meyer SLF, Kon H, de Souza JG, Lydon J, Baker CJ, Chung S (2007) Suppression of damping-off of cucumber caused by Pythium ultimum with live cells and extracts of Serratia marcescens. Soil Biol Biochem 39:2275–2288
CAS
Article
Google Scholar
Roberts DP, Lakshman DK, Maul JE, McKenna LF, Buyer JS, Fan B (2014) Control of damping-off of organic and conventional cucumber with extracts from a plant-associated bacterium rivals a seed treatment pesticide. Crop Protect 65:86–94
Article
Google Scholar
Rossi CC, Santos-Gandelman JF, Barros EM, Alvarez VM, Laport MS (2016) Staphylococcus haemolyticus as a potential producer of biosurfactants with antimicrobial, anti-adhesive and synergistic properties. Lett Appl Microbiol A63:215–221
Article
CAS
Google Scholar
Rutledge PJ, Challis GL (2015) Discovery of microbial natural products by activation of silent biosynthetic gene clusters. Nature Rev Microbiol 13:509–523
CAS
Article
Google Scholar
Shemyakin MM, Vinogradova EI, Feignina MY, Aldanova NA, Loginova NF, Ryabova ID, Pavlenko IA (1965) The structure-antimicrobial relation for valinomycin depsipeptides. Experientia 21:548–552
CAS
PubMed
Article
Google Scholar
Someya N, Nakajima M, Hiryae K, Hibi T, Akutsu K (2001) Synergistic antifungal activity of chitinolytic enzymes and prodigiosin produced by biocontrol bacterium, Serratia marcescens strain B2 against gray mold pathogen, Botrytis cinerea. J Gen Plant Pathol 67:312–317
CAS
Article
Google Scholar
Sotirova A, Avramova T, Stoitsova S, Lazarkevich I, Lubenets V, Karpenko E, Galabova D (2012) The importance of rhamnolipid-biosurfactant-induced changes in bacterial membrane lipids of Bacillus subtilis for antimicrobial activity of thiosulfonates. Curr Microbiol 65:534–541
CAS
PubMed
Article
Google Scholar
Strobel GA, Morrison SL, Cassella M (2005) Protecting plants from oomycete pathogens by treatment with compositions containing serratamolide and oocyin from Serratia marcescens. US Patent US6926892
Su C, Xiang Z, Liu Y, Zhao X, Sun Y, Li Z, Li L, Chang F, Chen T, Wen X, Zhou Y, Zhao F (2016) Analysis of the genomic sequences and metabolites of Serratia surfactantfaciens sp. nov. YD25T that simultaneously produces prodigiosin and serrawettin W2. BMC Genomics 17:865. https://doi.org/10.1186/s12864-016-3171-7
Suryawanshi RK, Patil CD, Koli SH, Hallsworth JE, Patil SV (2017) Antimicrobial activity of prodigiosin is attributable to plasma-membrane damage. Nat Prod Res 31:572–577
CAS
PubMed
Article
Google Scholar
Taylor RJ, Salas B, Secor GA, Rivera V, Gudmestad NC (2002) Sensitivity of North American isolates of Phytophthora erythroseptica and Pythium ultimum to mefenoxam (metalaxyl). Plant Dis 86:797–802
CAS
PubMed
Article
Google Scholar
Thies S, Santiago-Schübel B, Kovačić F, Rosenau F, Hausmann R, Jaeger K-E (2014) Heterologous production of the lipopeptide biosurfactant serrawettin W1 in Escherichia coli. J Biotechnol 181:27–30
CAS
PubMed
Article
Google Scholar
Tsuji RF, Yamamotoa M, Nakamura N, Kataoka T, Magae J, Nagai K, Yamasaki M (1990) Selective immunosuppression of prodigiosin 25-C and FK506 in the murine immune system. J Antibiotics (Tokyo) 43:1293–1301
CAS
Article
Google Scholar
Tsuji RF, Magae J, Yamashita M, Nagai K, Yamasaki M (1992) Immunomodulating properties of prodigiosin 25-C, an antibiotic which preferentially suppresses induction of cytotoxic T cells. J Antibiotics (Tokyo) 45:1295–1302
CAS
Article
Google Scholar
Wang F, Luo H, Song G, Liu C, Wang J, Xu J, Su X, Ma X-Y (2013) Prodigiosin found in Serratia marcescens Y2 initiates phototoxicity in the cytomembrane. Electron J Biotechnol 16:7–7
Google Scholar
Williams RP, Quadri SM (1980) The pigments of Serratia. In: Von Graevenitz A, Runin SJ (eds) The genus Serratia. CRC Press, Boca Raton
Google Scholar
Williamson NR, Fineran PC, Ogawa W, Woodley LR, Salmond GPC (2008) Integrated regulation involving quorum sensing, a two-component system, a GGDEF/EAL domain protein and a post-transcriptional regulator controls swarming and RhlA-dependent surfactant biosynthesis in Serratia. Environ Microbiol 10:1202–1217
CAS
PubMed
Article
Google Scholar
Yin X (2014) Formulations combinng ramoplanin and rhamnolipids for combating bacterial infection. US Patent US201402925