This is an outdated version published on 05-08-2024. Read the most recent version.
Forthcoming

Study of optimal nutritional conditions for Arbutin production from Bacillus subtilis NN2M

Authors

DOI:

https://doi.org/10.14719/pst.4093

Keywords:

glycosides, arbutin, production bacterium, carbon source, nitrogen source

Abstract

Arbutin is a combination of D-glucose and hydroquinone. Among the positive effects of arbutin are its antioxidant properties, antimicrobial properties and anti-inflammatory properties. Arbutin is one of the most important active compounds used to inhibit the enzyme tyrosinase, which causes enzymatic browning in many foods. Microbial fermentation has emerged as an up-and-coming technique for the production of arbutin in recent years. The aim of the study was the biological production of arbutin from Bacillus subtilis NN2M isolates. The isolates were confirmed and identified by Vitek and 16S rRNA and the nutritional conditions for production were improved to reach optimal conditions. To determine the best nutritional conditions for arbutin production, several conditions were studied, including the carbon source and its concentration, the nitrogen source and its concentration and the hydroquinone concentration. The results showed that the highest output of the active compound arbutin when using Molasses as a carbon source arbutin concentration was 23.34µg/mL. We also found the best concentration of the optimal carbon source, 4 % (w\v) arbutin concentration, was 27.62 µg/mL; furthermore, while using several nitrogen sources for producing arbutin, peptone was determined to be the optimum source, the concentration of arbutin was 47.3 µg/mL, the nitrogen source optimal Concentration was 2 % (w\v) arbutin concentration was 59.46 µg/mL, the optimum concentrations of hydroquinone was 2 % (w\v) arbutin concentration was 79.1 µg/mL.

Downloads

Download data is not yet available.

References

Johnson JB, Mani JS, Broszczak D, Prasad SS, Ekanayake CP, Strappe P, et al. Hitting the sweet spot: A systematic review of the bioactivity and health benefits of phenolic glycosides from medicinally used plants. Phytotherapy Research. 2021;35(7):3484-508.

Evans W, Evans D. Chapter 18-Basic metabolic pathways and the origin of secondary metabolites. Trease and Evans' Pharmacognosy (Sixteenth Edition): WB Saunders. 2009:148-67.

Theilmann MC, Goh YJ, Nielsen KF, Klaenhammer TR, Barrangou R, Abou Hachem M. Lactobacillus acidophilus metabolizes dietary plant glucosides and externalizes their bioactive phytochemicals. MBio. 2017;8(6):10.1128/mbio. 01421-17.

Maher R, AL-Bayyar A. ACTIVE COMPOUNDS DETECTION IN AQUEOUS EXTRACT OF GANODERMA APPLANATUM LOCAL ISOLATE. Iraqi Journal of Agricultural Sciences. 2023;54(5):1273-8.

Al-Badri SR, Al-Janabi NM. Lipid Peroxidation and Nitric Oxide Scavenging Activity of the tricin extracted from rice bran. Journal of Biotechnology Research Center. 2023;17(1):17-26.

Hussein SAAA, Abdul-Rahman SM. Effectiveness of Polyphenols Extracted from Local Olive Leaves an Antioxidant.

Carmen P, Vlase L, Tamas M. Natural resources containing arbutin. Determination of arbutin in the leaves of Bergenia crassifolia (L.) Fritsch. acclimated in Romania. Notulae Botanicae Horti Agrobotanici Cluj-Napoca. 2009;37(1):129-32.

Xu WH, Liang Q, Zhang YJ, Zhao P. Naturally occurring arbutin derivatives and their bioactivities. Chemistry & biodiversity. 2015;12(1):54-81.

Saeedi M, Khezri K, Seyed Zakaryaei A, Mohammadamini H. A comprehensive review of the therapeutic potential of ??arbutin. Phytotherapy Research. 2021;35(8):4136-54.

Ibrahim SK, Saleh NM. Study of the optimal nutritional conditions for the production of kojic acid from the local isolation of the Aspergillus oryzae. 2018.

Hadeel S, Khalida A. Sesame oil extraction and antioxidant activity of Lignans from locally cultivated sesame seeds (Sesame indicum L.). Iraqi Journal of Agricultural Sciences. 2018;47(2).

Shahaboddin M-E, Pouramir M, Moghadamnia A-A, Parsian H, Lakzaei M, Mir H. Pyrus biossieriana Buhse leaf extract: An antioxidant, antihyperglycaemic and antihyperlipidemic agent. Food chemistry. 2011;126(4):1730-3.

Yousefi F, Mahjoub S, Pouramir M, Khadir F. Hypoglycemic activity of Pyrus biossieriana Buhse leaf extract and arbutin: Inhibitory effects on alpha amylase and alpha glucosidase. Caspian Journal of Internal Medicine. 2013;4(4):763.

Li H, Jeong Y-M, Kim SY, Kim M-K, Kim D-S. Arbutin inhibits TCCSUP human bladder cancer cell proliferation via up-regulation of p21. Die Pharmazie-An International Journal of Pharmaceutical Sciences. 2011;66(4):306-9.

Nawarak J, Huang-Liu R, Kao S-H, Liao H-H, Sinchaikul S, Chen S-T, et al. Proteomics analysis of A375 human malignant melanoma cells in response to arbutin treatment. Biochimica et Biophysica Acta (BBA)-Proteins and Proteomics. 2009;1794(2):159-67.

Ahmadian SR, Ghasemi-Kasman M, Pouramir M, Sadeghi F. Arbutin attenuates cognitive impairment and inflammatory response in pentylenetetrazol-induced kindling model of epilepsy. Neuropharmacology. 2019;146:117-27.

Lee H-J, Kim K-W. Anti-inflammatory effects of arbutin in lipopolysaccharide-stimulated BV2 microglial cells. Inflammation Research. 2012;61:817-25.

Pe?ivová J, Nosá? R, Sviteková K, Ma?i?ková T. Arbutin and decrease of potentially toxic substances generated in human blood neutrophils. Interdisciplinary Toxicology. 2014;7(4):195-200.

Ye J, Guan M, Lu Y, Zhang D, Li C, Zhou C. Arbutin attenuates LPS-induced lung injury via Sirt1/Nrf2/NF-?Bp65 pathway. Pulmonary pharmacology & therapeutics. 2019;54:53-9.

Shu P, Wang Y, Zhang L. The Effect of ?-Arbutin on UVB-Induced Damage and Its Underlying Mechanism. Molecules. 2024;29(9):1921.

Bhalla M, Mittal R, Kumar M, Kushwah AS. Pharmacological Aspects of a Bioactive Compound Arbutin: A Comprehensive Review. Biointerface Res Appl Chem. 2022;13:119.

Couteau C, Coiffard L. Overview of skin whitening agents: Drugs and cosmetic products. Cosmetics. 2016;3(3):27.

Hazman Ö, Sar?ova A, Bozkurt MF, Ci?erci ?H. The anticarcinogen activity of ?-arbutin on MCF-7 cells: Stimulation of apoptosis through estrogen receptor-? signal pathway, inflammation and genotoxicity. Molecular and Cellular Biochemistry. 2021;476(1):349-60.

Cui T, Nakamura K, Ma L, Li J-Z, Kayahara H. Analyses of arbutin and chlorogenic acid, the major phenolic constituents in oriental pear. Journal of agricultural and food chemistry. 2005;53(10):3882-7.

T?mová L, Dole?ková I, Hendrychová H, Kašparová M. Arbutin content and tyrosinase activity of Bergenia extracts. Natural Product Communications. 2017;12(4):1934578X1701200422.

Cho J-Y, Park KY, Lee KH, Lee HJ, Lee S-H, Cho JA, et al. Recovery of arbutin in high purity from fruit peels of pear (Pyrus pyrifolia Nakai). Food science and biotechnology. 2011;20:801-7.

Lee B-D, Eun J-B. Optimum extraction conditions for arbutin from Asian pear peel by supercritical fluid extraction (SFE) using Box-Behnken design. J Med Plants Res. 2012;6:2348-64.

Ebrahim-Tabar F, Nazari A, Pouramir M, Ashrafpour M, Pourabdolhossein F. Arbutin improves functional recovery and attenuates glial activation in lysolecethin-induced demyelination model in rat optic chiasm. Molecular Neurobiology. 2020;57:3228-42.

Ding Y, Kong D, Zhou T, Yang N-d, Xin C, Xu J, et al. ?-Arbutin protects against Parkinson’s disease-associated mitochondrial dysfunction in vitro and in vivo. Neuromolecular Medicine. 2020;22:56-67.

Ma J, Chen S, Li Y, Wu X, Song Z. Arbutin improves gut development and serum lipids via Lactobacillus intestinalis. Frontiers in Nutrition. 2022;9:948573.

Dastan Z, Pouramir M, Ghasemi-Kasman M, Ghasemzadeh Z, Dadgar M, Gol M, et al. Arbutin reduces cognitive deficit and oxidative stress in animal model of Alzheimer's disease. International Journal of Neuroscience. 2019;129(11):1145-53.

Polouliakh N, Ludwig V, Meguro A, Kawagoe T, Heeb O, Mizuki N. Alpha-arbutin promotes wound healing by lowering ROS and upregulating insulin/IGF-1 pathway in human dermal fibroblast. Frontiers in physiology. 2020;11:586843.

Nadi S, Elahi M, Moradi S, Banaei A, Gh A, Abedi-Firouzjah R. Radioprotective effect of arbutin in megavoltage therapeutic X-irradiated mice using liver enzymes assessment. Journal of biomedical physics & engineering. 2019;9(5):533.

Liu C-Q, Deng L, Zhang P, Zhang S-R, Liu L, Xu T, et al. Screening of high ?-arbutin producing strains and production of ?-arbutin by fermentation. World Journal of Microbiology and Biotechnology. 2013;29:1391-8.

Barsoom B, Abdelsamad A, Adib N. Indirect spectrophotometric determination of arbutin, whitening agent through oxidation by periodate and complexation with ferric chloride. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy. 2006;64(4):844-52.

Cary N. Statistical analysis system, User's guide. Statistical. Version 9. SAS Inst Inc USA. 2012.

Jurica K, Gobin I, Kremer D, ?epo DV, Grubeši? RJ, Kara?onji IB, et al. Arbutin and its metabolite hydroquinone as the main factors in the antimicrobial effect of strawberry tree (Arbutus unedo L.) leaves. Journal of Herbal Medicine. 2017;8:17-23.

Zhou L, Fu X, Jiang L, Wang L, Bai S, Jiao Y, et al. Arbutin increases Caenorhabditis elegans longevity and stress resistance. PeerJ. 2017;5:e4170.

Shang Y, Wei W, Zhang P, Ye B-C. Engineering Yarrowia lipolytica for enhanced production of arbutin. Journal of agricultural and food chemistry. 2020;68(5):1364-72.

Ahmaed AS, Salih NM, Shaker RM, Salih HH. Effect of Dietary Supplementation with Ginger and Curcuma on the Immune Response and Certain Egg Quality Traits of White Leghorn Hens. Advances in Environmental Biology. 2018;12(5):6-10.

Kurosu J, Sato T, Yoshida K, Tsugane T, Shimura S, Kirimura K, et al. Enzymatic synthesis of ?-arbutin by ?-anomer-selective glucosylation of hydroquinone using lyophilized cells of Xanthomonas campestris WU-9701. Journal of bioscience and bioengineering. 2002;93(3):328-30.

Saraphanchotiwitthaya A, Sripalakit P. Production of ?-arbutin from Hydroquinone by Bacillus subtilis TISTR 1248 and Xanthomonas campestris TISTR 2065. Chiang Mai Univ J Nat Sci. 2020;19:972-82.

Al-Tememi HF, Al-Janabi NM, editors. Phenols and Flavonoids as an Indicator for Selecting the most Suitable Solvent for Resveratrol Flavonoid Extraction. IOP Conference Series: Earth and Environmental Science; 2023: IOP Publishing.

Agarwal N, Rai AK, Singh SP. Biotransformation of hydroquinone into ?-arbutin by transglucosylation activity of a metagenomic amylosucrase. 3 Biotech. 2021;11(8):362.

Zainab A. Mezher and Nidhal M. Salih. Effect of the nutritional conditions and pH for producing Kojic acid from theisolation local of Aspergillus Flavus WJF81. Journal of Modern Science and Heritage. 2017; 5 (3), 345-354.

Ramalingam K, Nandhi P, Murugan R, Venkatesan R. Physical and chemical characterization of alkaline protease from Bacillus subtilis vbc7 using agro waste as substrate: Characterization of alkaline protease. Journal of microbiology, biotechnology and food sciences. 2022;12(3):e5301-e.

Ibrahim, Samira K., and Nidhal M. Saleh. "Study of the optimal nutritional conditions for the production of kojic acid from the local isolation of the Aspergillus oryzae." (2018): 1801-1808.

Alqarghuli Israa Obaid Jiyad.Protein isolate production Pumpkin seeds and their decomposers and their use in microbial and walburger food media Doctoral thesis. College of Agricultural Engineering Sciences / University of Baghdad, 2020.

Ali, Anwar Hassan. Production of gallic acid from a local isolate Using agricultural and food waste. Master's thesis, College of Agricultural Engineering Sciences, University of Baghdad.2019.

Yu S, Wang Y, Tian Y, Xu W, Bai Y, Zhang T, et al. Highly efficient biosynthesis of ?-arbutin from hydroquinone by an amylosucrase from Cellulomonas carboniz. Process Biochemistry. 2018;68:93-9.

Published

05-08-2024

Versions

How to Cite

1.
Noor MI, Nidhal MS. Study of optimal nutritional conditions for Arbutin production from Bacillus subtilis NN2M. Plant Sci. Today [Internet]. 2024 Aug. 5 [cited 2024 Nov. 23];. Available from: https://horizonepublishing.com/journals/index.php/PST/article/view/4093

Issue

Section

Research Articles