Optimisation of Some Conditions for the Biodegradation of Low-Density Polyethylene Strips by Fungi Isolated from Parts of North Central Nigeria
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Keywords

LDPE Biodegradation
Optimum conditions
Fungi
Weight Loss

How to Cite

Optimisation of Some Conditions for the Biodegradation of Low-Density Polyethylene Strips by Fungi Isolated from Parts of North Central Nigeria. (2024). International Journal of Latest Technology in Engineering Management & Applied Science, 13(8), 35-42. https://doi.org/10.51583/IJLTEMAS.2024.130804

Abstract

Abstract: Some optimum conditions (Incubation time, pH and Temperature) were studied for selected fungal isolates – Aspergillus flavus, Aspergillus niger, Fusarium chlamydosporium, Trichoderma sp. Mucour indicus, Rhizopus miehei, Basidobolus ranarum, and Microsporum nanum, to biodegrade low-density polyethylene (LDPE) waste by using Mineral Salts Medium (MSM) containing 0.500g LDPE strips (1cm by 5cm each) using changes in pH of the media and weight loss of the strips as indicators for ability of these microorganisms to degrade LDPE. The results revealed that four of the eight fungal isolates, Aspergillus flavus, Aspergillus niger, Fusarium chlamydosporium and Trichoderma sp. showed high ability to degrade the LDPE strips after 8 weeks of incubation in Mineral Salts Medium at pH7.05 and 30oC.  There was noticeable variation in pH of the media with time of incubation with the highest change recorded for Aspergillus flavus (3.00±0.01), Aspergillus niger (3.02±0.01) and Rhizopus miehei (3.10±0.01) when compared with the control (without fungi) which remained at PH 7.05±0.02 during the 8-week incubation period.  The weight loss of the LDPE recorded for Aspergillus flavus was 19.40±0.14 %, Aspergillus niger 19.40±0.18%, Fusarium chlamydosporium, 12.60±0.10% and 10.60±0.02% for Trichoderma sp. respectively. The weight loss of the LDPE strips was time dependent with the highest weight loss recorded after 8 weeks for all isolates. The optimum pH of 7.5 was recorded for LDPE degradation by Aspergillus flavus, Aspergillus niger, Fusarium chlamydosporium and Basidobolus ranarum while optimum pH of 6.5 was recorded for Trichoderma sp., Mucour indicus, Rhizopus miehei and Microsporum nanum.  All the fungal isolates showed optimum LDPE degradation activity at 34oC except Fusarium chlamydosporium, Trichoderma sp., Mucour indicus and Rhizopus miehei which optimized activity at 32oC.

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References

D’Alessandro, N. (2014) 22 facts about plastic pollution. https://www.ecowatch.com/22-facts-about.plastic-pollution and 10-things-we-can-do-about-it.188,885971

Raaman, N., Rajitha, N., Jayshree, A., & Jegadeesh, R. (2012). Biodegradation of plastic by Aspergillus sp. isolated from polythene polluted sites around Chennai. Journal Acad Industrial Research, 1(6):313–316

Das, M P. & Kumar, S. (2014). Microbial Deterioration of Low Density Polyethene by Aspergillus and Fusarium sp. International Journal of Chemical Research 6 (1). 299-305

Olorunfemi, F. B. (2011). Landfill development and current practices in Lagos metropolis, Nigeria. Journal of Geography and Regional planning 4(12) 656-663

Olugbode, M. (2021). Nigeria’s Waste Management policy yields little gains. www.thisdaylive.com/ index. php/ 2021/05/16/fg-unveils-national -policies on- solid-waste-management Accessed 23 August, 2023 at 10.20pm

Kumari, K., Anand, R. C., & Narula, N. (2009). Microbial degradation of polyethylene (PE), The South Pacific Journal of Natural Science, 27, 66-70

Hardiyanti, E., Primiani, C., & Pujiati. N. (2017). – Characteristics of plastic waste degrading endogenous fungi isolates [karakteristik isolat kapang endogenus pendegradasi limbah plastik]. Proceedings of the SIMBIOSIS II National Seminar, Madiun, 378–388

Awasthi, M.K., Selvam, A., Lai, K.M., & Wong, J.W. (2017). Critical evaluation of post-consumption food waste composting employing thermophilic bacterial consortium. Bioresources Technology, 245. 665-672

Kyaw, B. M., Champakalakshmi, R., Sakharkar, M. S., Lim, C. S., & Sakharkar, K. R. (2012). Biodegradation of Low Density Polythene (LDPE) by Pseudomonas Species. Indian Journal of Microbiology, 52(3), 411-419.

Webb, H. K., Arnott, J., Crawford, R. J., & Ivanova, E. P. (2012). Plastic degradation and its environmental implications with special reference to poly (ethylene terephthalate). Polymers, 5(1),1-18.

Kumar, R.V., Kanna, G.R., & Elumalai, S. (2017). Biodegradation of Polyethene by Green Photosynthetic Microalgae. Journal of Bioremediation & Biodegradation 8: 381.

Kim, M. (2003). Evaluation of degradability of hydroxypropylated potato starch/polyethylene blend films. Carbohydr Polym. 54 (2):173–181.

Upreti, M. C., & Srivastava, R. C. (2003). A potential Aspergillus species for biodegradation of polymeric materials. Curr Sci. 84(11):1399–1402

Arutchelvi, J., Sudhakar, M., Arkartka, A., Doble, M., Bhaduri, S., & Uppara, P.V. (2008). Biodegradation of Polyethylene and Polypropylene, Indian Journal of biotechnology 7, 9-22

Kang, B.R., Kim, S.B., Song, H. A., & Lee, T. K. (2019). Accelerating the biodegradation of high-density polyethylene (HDPE) using Bjerkandera adusta TBB-03 and lignocellulose substrates. Microorganisms 7, 1–11

Kim, D.V., & Rhee, Y. H. (2003). Biodegradation of microbial synthetic polyesters by fungi. Appl. Micro. Biotech, 61, 300-308

Anbuselvi, V. (2014). Isolation & Characterization of Polyethene Degradng Bacteria from Polyethene dumped Garbage. International Journal of Science Research, 25(2), 205-206.

Makut, M.D., Ogu, C.J., Okey-Ndeche, N. F.& Obiekezie, S.O. (2023). Optimum conditions for the biodegradation of waste low-density polyethylene strips by bacteria isolated from parts of north central Nigeria. Open Access Research Journal of Science and Technology. https://doi.org/10.53022/oarjst.2023.8.2.0039

Kyaw, B.M & Champakalakshmi, R. (2012). Biodegradation of Low Density Polyethene (LDPE) by Pseudomonas species. Indian Journal of Microbiology 52(3):411–419

Tadros, R. M., Noureddini, H., & Timm, D. C. (1999). Biodegradation of thermoplastic and thermosetting polyesters from –protected glutamic acid. Journal of Applied Polymer Science, 74(14): 3513-3521

Kathiresan, K. (2003). Polythene and plastic degrading microbes from mangrove soil. Reversed Biological Tropical, 51:629–633

Arutchelvi, J. (2008). Biodegradation of polyethene and Polypropyene. Industrial Journal of Biotechnology 7:9-22

Hadad, D., Geresh, S., & Sivan, A. (2005). Biodegradation of polyethylene by the thermophilic bacterium Brevibacillus borstelensis. J. Appl. Microbiol, 98(5):1093–1100

Abdel-Shafy, H. I & Mansour, M.S.M. (2019). Microbial Degradation of Hydrocarbons in the Environment: An Overview. In: Microbial Action on Hydrocarbons. Springer Nature Pte Ltd Singapore, 353-386

Al-Jailawi, M.H., Ameen, R.S., & Al-Saraf, A.A. (2015). Polyethylene degradation by Psuedomonas putida S3A. International Journal of Advanced Research in Biological Sciences 2(1): 90-97

Hima C. S., Hitha, C.S., Varier, D., Pramod, T. & Bharathi, S. (2014). In-vitro and in-situ studies for increased biodegradation of LDPE plastic waste from the dumping sites of Bangalore city. Int. J. of Comp. Res. Biol. Sci. 1, 18-25

Ali, S.A., Zakarya, S & Khaled, S. (2022). Screening and Optimization of the Biodegradation Potential for Low-Density Polyethylene (LDPE) films by Fusarium equiseti and Bravibacillus parabrevis. Biosciences Biotechnology Research Asia, 19(1):215-229

Hussein, A.A., Khudhari, S. H., & Al-Mayaly, I. K. (2015). Optimum conditions for LDPE strips Biodegradation by local Bacterial Isolates. J. Int. Environmental Application & Science Vol 10 (4): 399-407

Gajendiran, A Krishnamoorthy, S., & Abraham, J. (2016). Microbial degradation of Low-Density Polyethylene (LDPE) by Aspergillus clavatus strain jask1 isolated from landfill soil. Biotechnology 3(6)56

Bishnoi, K., Sain, U., Kumar, R., Singh, R., & Bishnoi, N.R. (2009). Distribution and cbiodegradation of polycyclic aromatic hydrocarbons in contaminated sites of Hisar (India). Indian J. Exper. Biol, 3, 210-217

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