Sains Malaysiana 48(12)(2019): 2633–2640

http://dx.doi.org/10.17576/jsm-2019-4812-04

 

Preliminary Characterization of Exopolysaccharides Produced by Abortiporus biennis in Submerged Fermentation

(Pencirian Awal Eksopolisakarida yang Dihasilkan oleh Abortiporus biennis dalam Fermentasi Tenggelam)

 

ZHANGDE LONG1, HONG LIU1, JIGANG LI1, JIANSHENG SUN1, YUN XUE1, ZHIZHONG HU1, ZAN SU1, CHUNPING XU2 & JING-KUN YAN3*

 

1Technical Center of China Tobacco Guangxi Industrial Co. Ltd, Nanning, Guangxi, 530001, China

 

2College of Food and Biology Engineering, Zhengzhou University of Light Industry, Zhengzhou, 450016, China

 

3School of Food & Biological Engineering, Jiangsu University, Zhenjiang, 212013, China

 

Received: 23 December 2018/Accepted: 8 October 2019

 

ABSTRACT

Abortiporus biennis is a rare edible and medicinal mushroom that is valuable in traditional Chinese medicine. Exopolysaccharides (EPSs) as valuable metabolites have been harvested from fermentation broths of A. biennis. However, studies on preliminary characterisations and bioactivities of A. biennis EPSs are lacking. In this study, therefore, the production, characteristics and bioactivity of EPSs produced by A. biennis in submerged fermentation were investigated. An EPS-1 was isolated and purified from the culture broth of A. biennis using a Sepharose CL-6B column chromatography. The molecular weight, monosaccharide composition, structural characteristics, chain conformation and thermal property of EPS-1 were determined by gel-filtration chromatography, gas chromatography-mass spectroscopy, Fourier-transform infrared spectroscopy, Congo red test and thermogravimetric analysis, respectively. The in vitro antioxidant and immunoregulation activities of the EPS-1 were evaluated by adopting DPPH and hydroxyl radical-scavenging assays, and analysing NO production in macrophage RAW 264.7 cells, respectively. Results showed that the culture medium containing 30 g/L lactose and 3.0 g/L tryptone had the most suitable carbon and nitrogen sources, respectively, for EPS production in A. biennis. The maximum EPS production (18.29 g/L) was obtained after 6 days of cultivation in a 5 L stirred-tank reactor under the most suitable culture medium. After purification, EPS-1 with 85.4% yield and 96.1% carbohydrate content was obtained from the culture broth of A. biennis. EPS-1 was characterised as a neutral heteropolysaccharide with a molecular weight of 22.07 kDa and is composed of glucose, mannose and galactose at a molar ratio of 3.3:2.0:1.0. EPS-1 with a relatively high thermal stability existed as a random coil conformation in the aqueous medium and possessed prominent radical-scavenging ability and macrophage stimulation activity in vitro. Therefore, EPS-1 could be explored as a functional ingredient with potential applications in food, medical and cosmetic industries.

Keywords: Abortiporus biennis; bioactivity; exopolysaccharides; preliminary characterisation; submerged fermentation

 

ABSTRAK

Abortiporus biennis adalah cendawan yang boleh dimakan dan boleh digunakan dalam ubatan yang sangat berharga dalam perubatan tradisi Cina. Eksopolisakarida (EPS) sebagai metabolit berharga telah dituai daripada kaldu fermentasi A. biennis. Walau bagaimanapun, kajian mengenai pencirian awal dan bioaktiviti A. biennis EPS adalah agak kurang. Oleh itu, dalam kajian ini, pengeluaran, ciri-ciri dan bioaktiviti EPS yang dihasilkan oleh A. biennis dalam fermentasi tenggelam telah dilakukan. EPS-1 telah dipencilkan dan ditulenkan daripada kultur kaldu A. biennis menggunakan kromatografi turus Sepharose CL-6B. Berat molekul, komposisi monosakarida, ciri struktur, penyesuaian rantai dan harta termal EPS-1 ditentukan menggunakan kromatografi penapisan gel, kromatografi gas-spektroskopi jisim, spektroskopi infra merah Fourier-tertransformasi, ujian Congo merah dan analisis termogravimetrik. Aktiviti antioksidan in vitro dan pengaturan imuno EPS-1 masing-masing ditentukan menggunakan asai DPPH dan hidroksil radikal skaveng serta menganalisis pengeluaran NO dalam sel makrofaj RAW 264.7. Hasil kajian menunjukkan bahawa kultur media yang mengandungi 30 g/L laktosa dan 3.0 g/L tripton mempunyai sumber karbon dan nitrogen yang paling sesuai untuk pengeluaran EPS dalam A. biennis. Pengeluaran EPS maksimum (18.29 g/L) diperoleh selepas penuaian selama 6 hari dalam reaktor tangki pengaduk 5L menggunakan kultur media yang paling sesuai. Selepas penulenan, EPS-1 dengan hasil sebanyak 85.4% dan kandungan karbohidrat sebanyak 96.1% telah diperoleh daripada kultur kaldu A. biennis. EPS-1 dicirikan sebagai heteropolisakarida neutral dengan berat molekul 22.07 kDa dan terdiri daripada glukosa, mannosa dan galaktosa pada nisbah molar 3.3:2.0:1.0. EPS-1 dengan kestabilan termal yang agak tinggi wujud dalam konformasi gegelung rawak dalam media akuas dan mempunyai keupayaan radikal skaveng yang menonjol serta aktiviti rangsangan makrofaj in vitro. Oleh itu, EPS-1 boleh diterokai sebagai bahan berfungsi dengan potensi aplikasi dalam industri makanan, perubatan dan kosmetik.

Kata kunci: Abortiporus biennis; bioaktiviti; eksopolisakarida; fermentasi tenggelam; pencirian awal

REFERENCES

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

Bitter, T. & Muir, H.M. 1962. A modified uronic acid carbazole reaction. Analytical Biochemistry 4(4): 330-334.

Bogdan, C. 2001. Nitric oxide and the immune response. Nature Immunology 2: 907-916.

Cao, J., Zhang, H.J. & Xu, C.P. 2014. Culture characterization of exopolysaccharides with antioxidant activity produced by Pycnoporus sanguineus in stirred-tank and airlift reactors. Journal of the Taiwan Institute of Chemical Engineers 45: 2075-2080.

Chen, L., Wang, Z., Zhang, B., Ge, M., Ng, H., Niu, Y. & Liu, L. 2019. Production, structure and morphology of exopolysaccharides yielded by submerged fermentation of Antrodia cinnamomea. Carbohydrate Polymers 205: 271- 278.

Ding, Z., Chen, Y., Xu, Z., Peng, L., Xu, G., Gu, Z., Zhang, L., Shi, G. & Zhang, K. 2014. Production and characterization of laccase from Pleurotus ferulae in submerged fermentation. Annals of Microbiology 64(1): 121-129.

Dubois, M., Gilles, K.A., Hamilton, J.K., Rebers, P.A. & Smith, F. 1956. Calorimetric method for determination of sugars and related substances. Analytical Chemistry 28(3): 350-366.

Fontana, R.C., Polidoro, T.A. & Silveira, M.M. 2009. Comparison od stirred tank and airlift bioreactors in the production of polygalacturonases by Aspergillus oryzae. Bioresoure Technology 100(19): 4493-4498.

Grąz, M., Jarosz-Wilkolazka, A. & Pawlikowska-Pawlęga, B. 2009. Abortiporus biennis tolerance to insoluble metal oxides: Oxalate secretion, oxalate oxidase activtiy, and myceilal morphology. Biometals 22: 401-410.

He, P.X., Pan, L.G., He, X.S. & Xu, C.P. 2014. Optimization of culture conditions for laccase production from Abortiporus biennis in a pilot-scale bioreactor. Archives of Biological Sciencens Belgrade 66(4): 1567-1574.

He, P., Geng, L., Wang, Z., Mao, D., Wang, J. & Xu, C. 2012. Fermentation optimization, characterization and bioactivtiy of exopolysaccharides from Funalia trogii. Carbohydrate Polymers 89(1): 17-23.

Hu, Q.M., Mei, Y.X. & Liang, Y.X. 2013. Immune activties of polysaccharides isolated in vitro purified from Phellinus linteus. Food Science and Technology 38: 142-145.

Jaszek, M., Grzywnowicz, K., Malarczyk, E. & Leonowicz, A. 2006. Enhanced extracellular laccase activity as a part of the system of white rot fungi: Trametes versicolor and Abortiporus biennis to paraquat-caused oxidative stress conditions. Pesticide Biochemistry and Physiology 85(3): 147-154.

Jing, Y., Cui, X., Chen, Z., Huang, L., Song, L., Liu, T., Lv, W. & Yu, R. 2014. Elucidation and biological activties of a new polysaccharide from cultured Cordyceps militaris. Carbohydrate Polymers 102: 288-296.

Meng, F., Liu, X., Jia, L., Song, Z., Deng, P. & Fan, K. 2010. Optimization for the production of exopolysaccharides from Morchella esculenta SO-02 in submerged culture and its antixodiant activties in vitro. Carbohydrate Polymers 79(3): 700-704.

Nathan, C. 1992. Nitric oxide as a secretory product of mammalian cells. The Journal of the Federation of American Societies for Experimental Biology 6(12): 3051-3064.

Xing, R.G., Liu, S., Guo, Z.Y. & Yu, H.H. 2005. Relevance of molecular weight of chitosan and its derivatives and their antixodiant activties in vitro. Bioorganic and Medicinal Chemistry 13(5): 1573-1577.

Zhang, W.J. 1999. Biochemical Techniques in Complex Carbohydrates. 2nd ed. Hangzhou: Zhejiang University Press.

Zhang, G.Q., Tian, T., Liu, Y.P., Wang, H.X. & Chen, Q.J. 2011. A laccase with anti-proliferative activtiy against tumor cells from a white root fungus Abortiporus biennis. Process Biochemistry 46(12): 2336-2340.

Zheng, J.Q., Mao, X.J., Geng, L.J., Yang, G.M. & Xu, C.P. 2014. Production optimization, preliminary characterization and bioactivtiy of exopolysaccharides from Incutis tamaricis (Pat.) Fiasson & Niemela. Journal of the Taiwan Institute of Chemical Engineerings 45: 725-733.

 

*Corresponding author; email: jkyan_27@163.com

 

 

 

 

 

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