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Lipase-producing Filamentous Fungi from Non-dairy Creamer Industrial Waste

  • Received : 2019.12.23
  • Accepted : 2020.02.17
  • Published : 2020.06.28

Abstract

Lipase-producing fungi have been isolated from environments containing lipids. The non-dairy creamer industrial waste has a high amount of lipids so it is a potential source for the isolation of lipase-producing fungi. However, the study of fungi that secrete lipase from this industrial waste has not been reported. The purpose of this study was to obtain lipase-producing filamentous fungi from non-dairy creamer industrial waste. Mineral salt and potato dextrose agar were used as media for the isolation process. The qualitative screening was conducted using phenol red agar medium and the quantitative screening using broth medium containing glucose and olive oil. Isolates producing the highest amounts of lipase were identified with molecular methods. We found that 5 out of 19 isolated filamentous fungi are lipase producers. Further analysis showed that isolate Ms.11 produced the highest amount of lipase compared to others. Based on ITS sequence Ms.11 was identified as Aspergillus aculeatus. The lipase activity in medium containing 1% glucose + 1% olive oil at pH 7.0 and 30℃ after 96 and 120 h of incubation was 5.13 ± 0.30 U/ml and 5.22 ± 0.59 U/ml, respectively. The optimum lipase activity was found at pH 7.0, 30℃ and using methanol or ethanol in the reaction tube. Lipase was more stable at 20-30℃ and maintained 85% of its activity. It was concluded that isolate Ms.11 is a potential source of lipase that catalyzes transesterification reactions. Further studies are required to optimize lipase production to make the strain suitable for industry purposes.

Keywords

References

  1. Abdelmonaem M, Hatem B, Imen G, Jeannette BH. 2010. Classification of EC 3.1.1.3 bacterial true lipases using phylogenetic analysis. Afr. J. Biotechnol. 9: 8243-8247. https://doi.org/10.5897/AJB10.721
  2. Singh AK, Mukhopadhyay M. 2012. Overview of fungal lipase: A review. Appl. Biochem. Biotechnol. 166: 486-520. https://doi.org/10.1007/s12010-011-9444-3
  3. Ponnarasy G, Khan MdMR, Kalam MdA, Mahmud MS. 2014. Light induced esterification of oleic acid catalyzed by Pseudomonas Cepacia Lipase. Int. J. Environ. Sci. Dev. 5: 344-346. https://doi.org/10.7763/IJESD.2014.V5.506
  4. Hassan MHj, Kalam MdA. 2013. An Overview of biofuel as a renewable energy source: development and challenges. Procedia Eng. 56: 39-53. https://doi.org/10.1016/j.proeng.2013.03.087
  5. Gupta R, Gupta N, Rathi P. 2004. Bacterial lipases: an overview of production, purification and biochemical properties. Appl. Microbiol. Biotechnol. 64: 763-781. https://doi.org/10.1007/s00253-004-1568-8
  6. Shreya, Sharma AK, Sharma V, Saxena J. 2018. Isolation and screening of lipolytic soil fungi. Int. J. Pharm. Biol. Sci. 8: 391-396.
  7. Berto P, Belingheri L, Dehorter B. 1997. Production and purification of a novel extracellular lipase from Alternaria brassicicola. Biotechnol. Lett. 19: 533-536. https://doi.org/10.1023/A:1018333219304
  8. Gopinath SCB, Hilda A, Anbu P. 2005. Extracellular enzymatic activity profiles in fungi isolated from oil-rich environments. Mycoscience 46: 119-126. https://doi.org/10.1007/S10267-004-0221-9
  9. Sadati R, Barghi A, Larki RA. 2015. Isolation and screening of lipolytic fungi from coastal waters of the southern caspian sea (North of Iran). Jundishapur J. Microbiol. 8: 1-7.
  10. Rihani A, Tichati L, Soumati B. 2018. Isolation and identification of lipase- producing fungi from local olive oil manufacture in East of Algeria. Chem Chem. Eng. Biotechnol. Food Ind. 19: 13-22.
  11. Nwuche CO, Ogbonna JC. 2011. Isolation of lipase producing fungi from palm oil Mill effluent (POME) dump sites at Nsukka. Braz. Arch Biol. Technol. 54: 113-116. https://doi.org/10.1590/S1516-89132011000100015
  12. Sharma R, Chisti Y, Banerjee UC. 2001. Production, purification, characterization, and applications of lipases. Biotechnol. Adv. 19: 627-662. https://doi.org/10.1016/S0734-9750(01)00086-6
  13. Rosida DF, Mulyani T, Septalia LR. 2016. A comparative study of non-dairy cream based on the type of leguminosae protein source in terms of physico chemical properties and organoleptic. Agric. Agric. Sci. Procedia. 9: 431-439. https://doi.org/10.1016/j.aaspro.2016.02.160
  14. Lee LP, Karbul HM, Citartan M, Gopinath SCB, Lakshmipriya T, Tang T-H. 2015. Lipase-Secreting Bacillus Species in an oil-contaminated habitat: promising strains to alleviate oil pollution. BioMed. Res. Int. 2015: 1-9.
  15. Gohel V, Singh A, Vimal M, Ashwini P. 2006. Bioprospecting and antifungal potential of chitinolytic microorganisms. Afr. J. Biotechnol. 5: 54-72.
  16. Adham NZ, Ahmed EM. 2009. Extracellular lipase of Aspergillus niger NRRL3; production, partial purification and properties. Indian J. Microbiol. 49: 77-83. https://doi.org/10.1007/s12088-009-0004-2
  17. Lima LGR, Gonçalves MMM, Couri S, Melo VF, Sant'Ana GCF, Costa ACA da. 2019. Lipase production by Aspergillus niger C by submerged fermentation. Braz. Arch Biol Technol. 62: 1-14.
  18. Kwon DY, Rhee JS. 1986. A simple and rapid colorimetric method for determination of free fatty acids for lipase assay. J. Am. Oil Chem. Soc. 63: 89-92. https://doi.org/10.1007/BF02676129
  19. Ilmi M, Hidayat C, Hastuti P, Heeres HJ, van der Maarel MJEC. 2017. Utilisation of Jatropha press cake as substrate in biomass and lipase production from Aspergillus niger 65I6 and Rhizomucor miehei CBS 360.62. Biocatal. Agric. Biotechnol. 9: 103-107. https://doi.org/10.1016/j.bcab.2016.12.004
  20. Arya A, Kumar A, Jha J. 2018. Understanding Enzymes: An Introductory Text. Drawing Pin Publishing, New Delhi, India.
  21. Lowry OH, Rosebrough NJ, Farr AL, Randall RJ. 1951. Protein measurement with the Folin phenol reagent. J. Biol. Chem. 193: 265-276.
  22. Raja HA, Miller AN, Pearce CJ, Oberlies NH. 2017. Fungal identification using molecular tools: A primer for the natural products research community. J. Nat. Prod. 80: 756-770. https://doi.org/10.1021/acs.jnatprod.6b01085
  23. Mahmoud AGY, Zaher EHF. 2015. Why nuclear ribosomal internal transcribed spacer (ITS) has been selected as the DNA barcode for fungi? Adv. Genet. Eng. 04: 1-2.
  24. Begerow D, Nilsson H, Unterseher M, Maier W. 2010. Current state and perspectives of fungal DNA barcoding and rapid identification procedures. Appl. Microbiol. Biotechnol. 87: 99-108. https://doi.org/10.1007/s00253-010-2585-4
  25. Silva DM, Batista LR, Rezende EF, Fungaro MHP, Sartori D, Alves E. 2011. Identification of fungi of the genus Aspergillus section nigri using polyphasic taxonomy. Braz. J. Microbiol. 42: 761-73. https://doi.org/10.1590/S1517-83822011000200044
  26. Molina G, Contesini FJ, de Melo RR, Sato HH, Pastore GM. 2016. $\beta$-Glucosidase from Aspergillus. pp. 155-169. New and Future Developments in Microbial Biotechnology and Bioengineering.
  27. Yin Z, Fan B, Roberts D, Chen S, Shi F, Buyer J, et al. 2017. Enhancement of maize growth and alteration of the rhizosphere microbial community by phosphate-solubilizing fungus Aspergillus aculeatus P93. J. Agric. Biotechnol. 2: 1-10.
  28. de Oliveira RL, da Silva OS, Converti A, Porto TS. 2018. Thermodynamic and kinetic studies on pectinase extracted from Aspergillus aculeatus: Free and immobilized enzyme entrapped in alginate beads. Int. J. Biol. Macromol. 115: 1088-1093. https://doi.org/10.1016/j.ijbiomac.2018.04.154
  29. Suwannarangsee S, Arnthong J, Eurwilaichitr L, Champreda V. 2014. Production and characterization of multi-polysaccharide degrading enzymes from Aspergillus aculeatus BCC199 for saccharification of agricultural residues. J. Microbiol. Biotechnol. 24: 1427-1437. https://doi.org/10.4014/jmb.1406.06050
  30. Boonmee A. 2012. Hydrolysis of various thai agricultural biomasses using the crude enzyme from Aspergillus aculeatus iizuka FR60 isolated from soil. Braz. J. Microbiol. 43: 456-466. https://doi.org/10.1590/S1517-83822012000200005
  31. Roy M, Kumar R, Ramteke A, Sit N. 2018. Identification of lipase producing fungus isolated from dairy waste contaminated soil and optimization of culture conditions for lipase production by the isolated fungus. J. Microbiol. Biotechnol. Food Sci. 8: 698-704. https://doi.org/10.15414/jmbfs.2018.8.1.698-704
  32. Armas JC, Mendoza JCD, Hernandez JLM. 2008. Mucor griseocyanus lipase: production, characterization and study of some catalytic properties of the Immobilized Enzyme. Food Technol. Biotechnol. 46: 195-201.
  33. Silva OBW, Mitidieri S, Schrank A, Vainstein MH. 2005. Production and extraction of an extracellular lipase from the entomopathogenic fungus Metarhizium anisopliae. Process Biochem. 40: 321-326. https://doi.org/10.1016/j.procbio.2004.01.005
  34. El-Ghonemy DH, El-Gamal M, Tantawy AE, Ali TH. 2017. Extracellular alkaline lipase from a novel fungus Curvularia sp. DHE 5: optimization of physicochemical parameters, partial purification and characterization. Food Technol. Biotechnol. 55: 206-217.
  35. Rajeswari T, Palaniswamy M, Rose BS, Shyni PM, Padmapriya B. 2011. Biosynthesis of novel alkaline lipase production from Penicillum Chrysogenum suitable for detergent formulation. Res. J. Pharm. Biol. Chem. Sci. 2: 128-141.
  36. Rajan A, Nair AJ. 2011. A comparative study on alkaline lipase production by a newly isolated Aspergillus fumigatus MTCC 9657 in submerged and solid-state fermentation using economically and industrially feasible substrate. Turk. J. Biol. 569-574.
  37. Salihu A, Alam Z. 2012. Production and applications of microbial lipases: A review. Sci. Res. Essays. 7: 2667-777.
  38. Ayinla ZA, Ademakinwa AN, Agboola FK. 2017. Studies on the optimization of lipase production by Rhizopus sp. ZAC3 isolated from the contaminated soil of a palm oil processing shed. J. Appl. Biol. Biotechnol. 5: 30-37.
  39. Wang X, Xia K, Yang X, Tang C. 2019. Growth strategy of microbes on mixed carbon sources. Nat. Commun. 10: 1279. https://doi.org/10.1038/s41467-019-09261-3
  40. Chu D, Barnes DJ. 2016. The lag-phase during diauxic growth is a trade-off between fast adaptation and high growth rate. Sci. Rep. 6: 25191. https://doi.org/10.1038/srep25191
  41. Robinson PK. 2015. Enzymes: principles and biotechnological applications. Essays Biochem. 59: 1-41. https://doi.org/10.1042/bse0590001
  42. Ibrahim CO, Hayashi M, Nagai S. 1987. Purification and some properties of a thermostable lipase from Humicola lanuginosa No. 3. Agric. Biol. Chem. 51: 37-45. https://doi.org/10.1271/bbb1961.51.37
  43. Falony G, Armas JC, Mendoza JCD, Hernandez JLM. 2006. Production of extracellular lipase from Aspergillus niger by solid-state fermentation. Food Technol. Biotechnol. 44: 235-240.
  44. Mahadik ND, Puntambekar US, Bastawde KB, Khire JM, Gokhale DV. 2002. Production of acidic lipase by Aspergillus niger in solid state fermentation. Process Biochem. 38: 715-721. https://doi.org/10.1016/S0032-9592(02)00194-2
  45. Kishore D, Kundu S, Kayastha AM. 2012. Thermal, chemical and pH induced denaturation of a multimeric $\beta$-Galactosidase reveals multiple unfolding pathways. PLoS One. 7: e50380. https://doi.org/10.1371/journal.pone.0050380
  46. Pera LM, Romero CM, Baigori MD, Castro GR. 2006. Catalytic properties of lipase extracts from Aspergillus niger. Food Technol. Biotechnol. 44: 247-252.
  47. Rodrigues RC, Volpato G, Wada K, Ayub MAZ. 2008. Enzymatic synthesis of biodiesel from transesterification reactions of vegetable oils and short chain alcohols. J. Am. Oil Chem. Soc. 85: 925-930. https://doi.org/10.1007/s11746-008-1284-0
  48. Bernardes OL, Bevilaqua JV, Leal MCMR, Freire DMG, Langone MAP. 2007. Biodiesel fuel production by the transesterification reaction of soybean oil using immobilized lipase. Appl. Biochem. Biotechnol. 7: 105-114.
  49. Lotti M, Pleiss J, Valero F, Ferrer P. 2015. Effects of methanol on lipases: Molecular, kinetic and process issues in the production of biodiesel. Biotechnol. J. 10: 22-30. https://doi.org/10.1002/biot.201400158
  50. Herkovits TT, Gadegbeku B, Jaillet H. 1970. On the structural stability and solvent denaturation of proteins. J. Biol. Chem. 245: 2588-2598.
  51. Romero CM, Pera LM, Loto F, Vallejos C, Castro G, Baigori MD. 2012. Purification of an organic solvent-tolerant lipase from Aspergillus niger MYA 135 and its application in ester synthesis. Biocatal. Agric. Biotechnol. 1: 25-31. https://doi.org/10.1016/j.bcab.2011.08.013

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