223
Views
15
CrossRef citations to date
0
Altmetric
Articles

Bioconversion and bioethanol production from agro-residues through fermentation process using mangrove-associated actinobacterium Streptomyces olivaceus (MSU3)

ORCID Icon, ORCID Icon, &
Pages 167-179 | Received 29 Sep 2016, Accepted 12 Feb 2017, Published online: 10 Apr 2017

References

  • Sarkar N, Ghosh SK, Bannerjee S, et al. Bioethanol production from agricultural wastes: an overview. Renew Ener. 2012;37(1):19–27.
  • Abbi M, Kuhad R, Singh A. Fermentation of xylose and rice straw hydrolysate to ethanol by Candida shehatae NCL -350. J Ind Microbiol. 1996;17(1):20–23.
  • Okafor UA, Okochi VI, Onyegeme-Okerenta BM, et al. Xylanase production by Aspergillus niger ANL 301 using agro wastes. Afr J Biotechnol. 2007;6(14):1710–1714.
  • Roncero MB, Torres AL, Colom JF, et al. The effect of xylanase on lignocellulosic components during the biobleaching of wood pulps. Bioresour Technol. 2005;96(1):18–21.
  • Rao RS, Bhadra B, Shivaji S. Isolation and characterization of ethanol producing yeasts from characterization of ethanol producing yeasts from fruits and tree barks. Lett Appl Microbiol. 2008;47(1):19–24.
  • Beg QK, Bhushan B, Kapoor M, et al. Enhanced production of a thermo-stable xylanase from Streptomyces sp QG-11-3 and its application in bioleaching of eucalyptus kraft pulp. Enzyme Microb Technol. 2000;27(7):459–466.
  • Crawford DL, McCoy E. Cellulases of Thermomonspora fusca and Streptomyces thermodiastaticus. Appl Environ Microbiol. 1972;24(1):150–152.
  • Amore A, Pepe O, Ventorino V, et al. Cloning and recombinant expression of cellulase from the cellulolytic strain Streptomyces sp. G12 isolated from compost. Microb Cell Fact. 2012;11:1545–1552.
  • Magarvey NA, Keller JM, Bernan V, et al. Isolation and characterization of novel marine derived actinomycetes taxa rich in bioactive metabolites. Appl Environ Microbiol. 2004;70:7520–7529.
  • RadhaKrishnan M, Balaji S, Balagurunadhan R. Thermo-tolerant actinomycetes from the Himalayan Mountain antagonistic potential characterization and identification of selected strains. Malay J Appl Biol. 2007;36(1):59–65.
  • Thenmozhi R, Victoria J. Optimization and improvement of ethanol production by the microporation of organic wastes. Adv Appl Sci Res. 2013;4(5):119–123.
  • Shirling EB, Gottlieb D. Methods for characterization of Streptomyces species. Int J Syst Evol. 1966;16:312–340.
  • Thompson JD, Gibson TJ, Plewniak F, et al. The clustal windows interface: flexible strategies for multible sequence alignment aided by quality analysis stools. Nucleic Acid Res. 1997;25(24):4876–82.
  • Detroy RW, Cunningham RL, Bothast RJ, et al. Bioconversion of wheat straw cellulose/hemicelluloses to ethanol by Saccharomyces uvarum and Pachysolen tannophilus. Biotechnol Bioeng. 1982;24:1105–1113.
  • Ajeetkumar S, Pushpa A. Saccharification by fungi and ethanol production by bacteria using lingo-cellulosic materials. Int Res J Pharm. 2012;3(5):411–414.
  • Ahmed FM, Rahman SR, Gomes DJ. Saccharification of sugarcane bagasse by enzymatic treatment for bioethanol production. Malay J Microbiol. 2012;8(2):97–103.
  • Miller GL. Use of dinitrosalicylic acid reagent for determination of reducing sugar. Anal Chem. 1959;31(3):426–428.
  • Hossain SM, Anantharaman N, Das M. Bioethanol fermentation from untreated and pretreated lignocellulosic wheat straw using fungi Fusarium oxysporum. Ind J Chem Technol. 2012;19:63–70.
  • Elumalai S, Sakthivel R. GC-MS and FT-IR spectroscopic determination of fatty acid methyl ester of 16 fresh water microalgae, isolated from cement industries of TamilNadu, India. J Algal Biomass Utln. 2013;4(1):50–69.
  • Dizhbite T, Telysheva G, Dobele G, et al. Py-GC/MS for characterization of non hydrolyzed residues from bioethanol production from softwood. J Anal Appl Pyrolysis. 2011;90:126–132.
  • Nithya B, Ponmurugan P, Fredimoses M. 16S rRNA phylogenetic analysis of actinomycetes isolated from Eastern Ghats and marine mangrove associated with antibacterial and anti-cancerous activities. Afr J Biotechnol. 2012;11(60):12379–12388.
  • Rajkumar J, Sivakumar K, Thangaradjou T. Characterization of actinobacterial population in the sea grasses rhizosphere soils of the Gulf of Mannar biosphere reserve India. Res J Microbiol. 2016;11(1):1–10.
  • Rashad FM, Abd El-Nasser NH, Dawoud IE, et al. Isolation and characterization of antibiotic/antitumor producing Streptomyces. Res J Pharm Bio Chem Sci. 2015;6(2):1917–1929.
  • Omar M, Mourad B, Ibrahim B, et al. Identification and preliminary characterization of non-polyene antibiotics secreted by new strain of actinomycete isolated from sebkha of Kenadsa, Algeria. Asian Pac J Trop Biomed. 2015;5(6):438–445.
  • Jensen PR, Dwight R, Fenical A. The distribution of actinomycetes in near-shore tropical marine sediments. Appl Environ Microbiol. 1991;57(4):1102–1108.
  • Latif F, Rajoka M. Production of ethanol and xylitol from corn cobs by yeasts. Bioresour Technol. 2001;77:57–63.
  • Vijayakumar R, Muthukumar C, Thajuddin N, et al. Studies on the diversity of actinomycetes in the pall strait region of Bay of Bengal, India. The society for actinomycetes Japan. Actinomycetol. 2007;21:59–65.
  • Peela S, Kurada VB, Terli R. Studies on antagonistic marine actinomycetes from the Bay of Bengal. World J Microbiol Biotechnol. 2005;21(4):583–585.
  • Anderson AS, Wellington EMH. The taxonomy of Streptomyces and related genera. Int J Syst Evol Microbiol. 2001;51:797–814.
  • Augustine SK, Bhavsar SP, Baserisalehi M, et al. Isolation, characterization and optimization of antifungal activity of an actinomycetes of soil origin. Indian J Exp Biol. 2004;42:928–932.
  • Hamza AA, Ali HA, Clark BR, et al. Isolation and characterization of actinomycin D producing Streptomyces sp from Sudanese soil. Afr J Biotechnol. 2013;12(19):2624–2632.
  • Omran R. Corrosive lesions at concrete infrastructure as promising source for isolating bioactive actinobacteria. Am J Life Sci. 2015;3(4):247–256.
  • Goodfellow M, Willam ST, Mordarski M. Actinomycetes in biotechnology. London: Academic Press; 1988. p. 44.
  • Rifaat HM, Nagieb ZA, Ahmed YM. Production of xylanase by Streptomyces sp and their bleaching effect on rice straw pulp. Appl Ecol Environ Res. 2005;4(1):151–160.
  • Mangamuri UK, Muvva V, Poda S, et al. Isolation, identification and molecular characterizationof rare actinomycetes from mangrove ecosystem of Nizampatnam. Malay J Microbiol. 2012;8(2):83–91.
  • Aly MM, Tork S, Al-Garni SM, et al. Production and characterization of phytase from Streptomyces luteogriseus R10 isolated from decaying wood samples. Int J Agric Biol. 2015;17(3):515–522.
  • Yin H, Cao L, Xie M, et al. Bacterial diversity based on 16S rDNA and gyrB genes at Yinshan mine, China. Syst Appl Microbiol. 2008;31:302–311.
  • Saritha M, Arora A, Singh S, et al. Streptomyces griseorubens mediated delignification of paddy straw for improved enzymatic saccharification yields. Bioresour Technol. 2013;135:12–17.
  • Saritha M, Kalavathy R, Danielle Julie C, et al. Insights into biological identification of rice straw by Trametes hirsute and Myrothecium roridum and comparison of saccharification yields with dilute acid pretreatment. Biomas Bioener. 2015;76:54–60.
  • Amore A, Parameswaran B, Kumar R, et al. Application of a new xylanase activity from Bacillus amyloliquefaciens XR44A. J Chem Technol Biotechnol. 2014;90:573–581.
  • Wan C, Li Y. Microbial pretreatment of corn stover with Ceriporiopsis subvermispora for enzymatic hydrolysis and ethanol production. Bioresour Technol. 2010;101:6398–6403.
  • Zhang X, Xu C, Wang H. Pretreatment of bamboo residues with Coriolus versicolor for enzymatic hydrolysis. J Biosci Bioeng. 2007;104(2):149–151.
  • Premalatha N, Gopal NO, Arul Jose P, et al. Optimization of cellulase production by Enhydrobacter sp. ACCA2 and its application in biomass saccharification. Front Microbiol. 2015;6:1–11.
  • Liguori R, Ionata E, Marcolongo L, et al. Optimization of Arundo donax saccharification by (Hemi) cellulolytic enzymes from Pleurotus ostreatus. Bio Med Res Int. 2015;1–14.
  • Bhattacharya A, Ganguly A, Das S, et al. Fungal isolates from local environment:isolation, screening and application for the production of ethanol from water hyacinth. Int J Emer Technol Adv Eng. 2013;3(3):58–65.
  • Tabah B, Pulidindi IN, Gedanken A. Study on fermentation kinetics for accelerated production of bioethanol from glucose, sucrose and molasses. J Bioprocess Biotech. 2015;5(6):1–7.
  • Jerry O, Aleke K, Chika E, et al. Bioethanol production from corncob hydrolysed by cellulase of Aspergillus niger using Zymomonas mobilis and Saccharomyces cerevisiae isolated from palm wine. Int J Curr Res Biosci Plant Biol. 2016;3(1):39–45.
  • Wang Y, Liu S. Kinetic modeling of ethanol batch fermentation by Escherichia coli FBWHR using hot water sugar maple wood extract hydrolyzate as substrate. Energies. 2014;7:8411–8426.
  • El-Sayed WMM, Ibrahim HAH, Abdul-Raoul UM, et al. Evaluation of bioethanol production from Ulva lactuca by Saccharomyces cerevisiae. J Biotechnol Biomater. 2016;6(2):1–10.
  • Kshirsagar SD, Saratale GD, Saratale RG, et al. An isolated Amycolatopsis sp. GDS for cellulase and xylanase production using agricultural waste biomass. J Appl Miocrobiol. 2016;120(1):112–125.
  • Mariam I, Manzoor K, Ali S, et al. Enhanced production of ethanol from free and immobilized Saccharomyces cerevisiae under stationary culture. Pak J Bot. 2009;41:821–833.
  • Huang C, He J, Li X, et al. Facilitating the enzymatic saccharification of pulped bamboo residues by degrading the remained xylan and lignin carbohydrate complexes. Bioresour Technol. 2015;192:471–477.
  • Adiguzel AO, Tuncer M. Hydrolysis of pretreated lignocellulosic wastes by Streptomyces sp. AOA40 isolated from Mersin for total reducing sugars. Int J Adv Biotec Res. 2015;6(3):372–382.
  • Magdy M, Mohamed A, Abdei-Ghang TM, et al. Bio-refinery of industrial potato wastes to ethanol by solid state fermentation. Res J Agri Biol Sci. 2011;7(1):126–134.
  • Davis L, Jeon Y, Svenson C, et al. Evaluation of wheat stillage for ethanol production by recombinant Zymomonas mobilis. Biomass Bioener. 2005;29:49–59.
  • Patel SJ, Onkarappa R, Shobaha KS. Comparative study of ethanol production from microbial pretreated agricultural residues. JAppl Sci Environ Manage. 2007;11(4):137–141.
  • Sindhu V, Kanchana CN, Vasanthi NS, et al. Design and development of novel bioreactor for the production of ethanol from low cost pretreated rice straw. IOSR J Engi. 2012;2(6):1424–1428.
  • Bak JS, Ko JK, Choi IG, et al. Fungal pretreatment of lignocelluloses by Phanerochaete chrysosporium to produce ethanol from rice straw. Biotechnol Bioeng. 2009;104(1):471–482.
  • Ke J, Laskar DD, Chen S. Biodegradation of hardwood lignocellulosics by the western poplar clearwing borer, Paranthrene robiniae (Hy-Edwards). Biomacromol. 2011;12(5):1610–1620.
  • Du M, Huang S, Wang J. The volatiles from fermentation product of Tuber formosanum. Open J Forestry. 2014;4:426–429.
  • Reddy LV, Reddy OVS. Production, optimization and characterization of wine from mango (Mangifera indica Linn). Natural Product Radian. 2009;8(4):426–435.
  • Bhatt N, Dharmesh A, Thakor P. Production of xylanase by Aspergillus flavus (FPDN1) on pearl millet bran: Optimization of culture conditions and application in bioethanol production. Int J Res Chem Environ. 2012;2(3):204–210.
  • Muralidhar T, Chethan C, Kavya S, et al. Induced mutational studies on Saccharomyces cerevisiae for bioethanol production from fruit waste. Int J Res Eng Technol. 2014;3(3):274–279.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.