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Extraction of Xylanases from Media Based on three Agricolous Co-products by An Aqueous Two-phase System

Ourdia Nouara Kernou, Kamelia Kerdouche, Pr. Nawel Boucherba, Pr. Khodir Madani

Abstract


Jonesia denitrificans BN13 grows very well on a medium made out of agricultural byproducts like orange peel, esparto grass, and retam; the relative enzyme activity of these three substrates was 0.662, 0.711, and 0.835 U/ml, respectively First time xylanases were effectively extracted utilising aqueous two-phase system (ATPS) that had 3.5% PEG, 14% KH2PO4/K2HPO4, and 9% KI, The inclusion of cells resulted in much improved output from the system, which is based on the technology's ability to work on the basis of the assumption that proteins may be selectively partitioned between the two aqueous phases. In the culture medium that is based on orange peel, a yield of 72% of the enzyme activity is found in the upper phase with a partition coefficient of 2.75 and a purification factor of 1.38. In the medium that is based on alfa, 57.5% of the enzyme activity is located in the lower phase with a partition coefficient of 0.67 and a purification factor of 1.78. In the medium that is based on retam, a yield of 82% of the enzyme activity.


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Beck, S.; Choi, P.; Mushrif, S.H. Physico-chemical interactions within lignocellulosic biomass and their importance in developing solvent based deconstruction methods. Reaction Chemistry Engineering 2022, 7, 2471–2487.

Puls, J.; Stork, G.; Schuseil, J. Reactions of isolated cellulases, hemicellulases and ligninases with fibrous materials and isolated components of wood. Papier 1993.

Bhardwaj, N.; Kumar, B.; Verma, P. A detailed overview of xylanases: an emerging biomolecule for current and future prospective. Bioresources Bioprocessing 2019, 6, 1–36.

Ersayin Yasinok, A.; Biran, S.; Kocabas, A.; Bakir, U. Xylanase from a soil isolate, Bacillus pumilus: gene isolation, enzyme production, purification, characterization and one-step separation by aqueous-two-phase system. World Journal of Microbiology Biotechnology 2010, 26, 1641–1652.

ALBERTSSON‐WIKLAND, K.; WESTPHAL, O.; WESTGREN, U. Daily subcutaneous administration of human growth hormone in growth hormone deficient children. Acta Pædiatrica 1986, 75, 89–97.

Albertsson, P.-Å.; Johansson, G.; Tjerneld, F. Aqueous two-phase separations. Separation processes in Biotechnology 2020, 287–328.

Rito-Palomares, M. Practical application of aqueous two-phase partition to process development for the recovery of biological products. Journal of Chromatography B 2004, 807, 3–11.

Gaikaiwari, R.; Shendye, A.; Kulkarni, N.; Rao, M. Two-phase separation of xylanases from alkalophilic thermophilic Bacillus using a poly (ethylene glycol)-K {sub 2} HPO {sub 4} system. Biotechnology applied biochemistry 1996, 23.

Zhu, L.; Lu, Y.; Sun, Z.; Han, J.; Tan, Z. The application of an aqueous two-phase system combined with ultrasonic cell disruption extraction and HPLC in the simultaneous separation and analysis of solanine and Solanum nigrum polysaccharide from Solanum nigrum unripe fruit. Food chemistry 2020, 304, 125383.

Torres‐Acosta, M.A.; Mayolo‐Deloisa, K.; González‐Valdez, J.; Rito‐Palomares, M. Aqueous Two‐Phase Systems at Large Scale: Challenges and Opportunities. Biotechnology Journal 2019, 14, 1800117.

Ersayin Yasinok, A.; Biran, S.; Kocabas, A.; Bakir, U. Xylanase from a soil isolate, Bacillus pumilus: gene isolation, enzyme production, purification, characterization and one-step separation by aqueous-two-phase system. World Journal of Microbiology Biotechnology applied biochemistry 2010, 26, 1641–1652.

Munawar, A.; Ong, Y.; Schirhagl, R.; Tahir, M.A.; Khan, W.S.; Bajwa, S.Z. Nanosensors for diagnosis with optical, electric and mechanical transducers. RSC advances 2019, 9, 6793–6803.

Vernau, J.; Kula, M.-R. Extraction of proteins from biological raw material using aqueous polyethylene glycol-citrate phase systems. Biotechnology applied biochemistry 1990, 12, 397–404.

Yang, S.; Yan, Q.; Jiang, Z.; Li, L.; Tian, H.; Wang, Y. High-level of xylanase production by the thermophilic Paecilomyces themophila J18 on wheat straw in solid-state fermentation. Bioresource Technology 2006, 97, 1794–1800.

Boucherba, N.; Benallaoua, S.; Legin, E.; Hebal, H.; Duchiron, F. Production and partial characterization of xylanase produced by Jonesia denitrificans isolated in Algerian soil. Process Biochemistry 2011, 46, 519–525.

Gawande, P.; Kamat, M. Purification of Aspergillus sp xylanase by precipitation with an anionic polymer Eudragit S100. Process Biochemistry 1999, 34, 577–580.

Wang, S.-L.; Yen, Y.-H.; Shih, L.; Chang, A.C.; Chang, W.-T.; Wu, W.-C.; Chai, Y.-D. Production of xylanases from rice bran by Streptomyces actuosus A-151. Enzyme Microbial Technology 2003, 33, 917–925.

Bailey, M.J.; Biely, P.; Poutanen, K. Interlaboratory testing of methods for assay of xylanase activity. Journal of biotechnology 1992, 23, 257–270.

Bradford, M.M. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Analytical biochemistry 1976, 72, 248–254.

Hebert, E. Reactions competitives lors de l'alkylation du dihydroanthracenyl-cuprate de lithium par le tosylate de 2-octyle optiquement actif. Tetrahedron Letters 1982, 23, 415–416.

Techapun, C.; Charoenrat, T.; Poosaran, N.; Watanabe, M.; Sasak, K. Thermostable and alkaline-tolerant cellulase-free xylanase produced by thermotolerant Streptomyces sp. Ab106. Journal of Bioscience Bioengineering 2002, 93, 431–433.

Geweely, N.S. Purification and characterization of acido-thermophilic xylanase from aspergillus terrus. Australian Journal of Basic Applied Sciences 2011, 5, 214–219.

Royer, J.; Nakas, J. Xylanase production by Trichoderma longibrachiatum. Enzyme Microbial Technology 1989, 11, 405–10.

Gupta, P.; Christopher, S.A. Particulate matter air quality assessment using integrated surface, satellite, and meteorological products: 2. A neural network approach. Journal of Geophysical Research: Atmospheres 2009, 114.

do Rosario Freixo, M.; Karmali, A.; Frazão, C.; Arteiro, J.M. Production of laccase and xylanase from Coriolus versicolor grown on tomato pomace and their chromatographic behaviour on immobilized metal chelates. Process Biochemistry 2008, 43, 1265–1274.

Seyis, I.; Aksoz, N. Effect of carbon and nitrogen sources on xylanase production by Trichoderma harzianum 1073 D3. International Biodeterioration Biodegradation 2005, 55, 115–119.

Knob, A.; Carmona, E.C. Xylanase production by Penicillium sclerotiorum and its characterization. World Appl Sci J 2008, 4, 277–283.

Fang, Z.; Ouyang, Z.; Zheng, H.; Wang, X.; Hu, L. Culturable airborne bacteria in outdoor environments in Beijing, China. Microbial Ecology 2007, 54, 487–496.

Ellouze, M.; Buss Da Silva, N.; Rouzeau-Szynalski, K.; Coisne, L.; Cantergiani, F.; Baranyi, J. Modeling Bacillus cereus growth and cereulide formation in cereal-, dairy-, meat-, vegetable-based food and culture medium. Frontiers in microbiology 2021, 12, 639546.

Bakri, Y.; Jawhar, M.; Arabi, M.I.E. Improvement of xylanase production by Cochliobolus sativus in submerged culture. Food Technology Biotechnology applied biochemistry 2008, 46, 116.

Kulkarni, N.; Shendye, A.; Rao, M. Molecular and biotechnological aspects of xylanases. FEMS microbiology reviews 1999, 23, 411–456.

Jain, A.; Johri, B. Partitioning of an extracellular xylanase produced by a thermophilic fungus Melanocarpus albomyces IIS-68 in an aqueous two-phase system. Bioresource technology 1999, 67, 205–207.

Bim, M.A.; Franco, T.T. Extraction in aqueous two-phase systems of alkaline xylanase produced by Bacillus pumilus and its application in kraft pulp bleaching. Journal of Chromatography B: Biomedical Sciences Applications 2000, 743, 349–356.

Duarte, M.C.T.; da Silva, E.C.; Ponezi, A.N.; Portugal, E.P.; Vicente, J.R.; Davanzo, E. Xylan-hydrolyzing enzyme system from Bacillus pumilus CBMAI 0008 and its effects on Eucalyptus grandis kraft pulp for pulp bleaching improvement. Bioresource technology 2003, 88, 9–15.

C Madhusudhan, M.; R Bharathi, T.; S Prakash, H. Isolation and purification of bioactive metabolites from fungal endophytes–a review. Current Biochemical Engineering 2015, 2, 111–117.

Li, X.; Lian, Z.; Dong, B.; Xu, Y.; Yong, Q.; Yu, S. Extractive bioconversion of xylan for production of xylobiose and xylotriose using a PEG6000/sodium citrate aqueous two-phase system. Korean Journal of Chemical Engineering 2011, 28, 1897–1901.

Yang, Y.; Iji, P.; Kocher, A.; Mikkelsen, L.; Choct, M. Effects of xylanase on growth and gut development of broiler chickens given a wheat-based diet. Asian-Australasian Journal of Animal Sciences 2008, 21, 1659–1664.


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