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http://dx.doi.org/10.4014/mbl.1801.01005

Reduction of Hydrogen Sulphide in Chicken Manure by Immobilized Sulphur Oxidising Bacteria Isolated from Hot Spring  

Hidayat, M.Y. (Department of Animal Science, Faculty of Agriculture, Universiti Putra Malaysia)
Saud, H.M. (Department of Agriculture Technology, Faculty of Agriculture, Universiti Putra Malaysia)
Samsudin, A.A. (Department of Animal Science, Faculty of Agriculture, Universiti Putra Malaysia)
Publication Information
Microbiology and Biotechnology Letters / v.47, no.1, 2019 , pp. 116-124 More about this Journal
Abstract
The rapid development of the poultry industry has led to the production of large amounts of manure, which produce substances like hydrogen sulfide ($H_2S$) that contribute to odor pollution. $H_2S$ is a highly undesirable gas component and its removal from the environment is therefore necessary. Sulfur-oxidizing bacteria (SOB) are widely known to remove contaminating $H_2S$ due to their ability to oxidize reduced sulfur compounds. In this study, three potential SOB (designated AH18, AH25, and AH28) that were previously isolated from a hot spring in Malaysia were identified by 16S rRNA gene analysis. Laboratory-scale biological deodorization experiments were conducted to test the performance of the three isolates-in the form of pure or mixed cultures, with the cells immobilized onto alginate as a carrier-in reducing the $H_2S$ from chicken manure. On the basis of 16S rRNA phylogenetic analysis, isolate AH18 was identified as Pseudomonas sp., whereas isolates AH25 and AH28 were identified as Achromobacter sp. The most active deodorizing isolate was AH18, with an $H_2S$ reduction rate of 74.7% (p < 0.05). Meanwhile, the reduction rates for isolates AH25 and AH28 were 54.2% and 60.8% (p > 0.05), respectively. However, the $H_2S$ removal performance was enhanced in the mixed culture, with a reduction rate of 81.9% (p < 0.05). In conclusion, the three potential SOB isolates were capable of reducing the $H_2S$ from chicken manure in the form of a pure culture immobilized on alginate, and the reduction performance was enhanced in the mixed culture.
Keywords
Sulphur oxidising bacteria; Pseudomonas sp.; hydrogen sulphide reduction; odour removal; poultry manure;
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