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Optimization of ultrasound-assisted extraction of protein from the byproduct of the hazelnut oil industry using reverse micelles

Yıl 2024, Cilt: 42 Sayı: 4, 1202 - 1213, 01.08.2024

Öz

In the current research, an ultrasound-assisted extraction (UAE) procedure was established for the protein extracted employing a reverse micelles system (RMS) from the by-product of the hazelnut oil industry. The optimum extraction circumstances in the UAE were identified as a dioctyl sodium sulfosuccinate (AOT) an amount of 0.05 g/mL, a water content of 25.2
(W0), a 0.02 g/mL solid-to-liquid ratio, ultrasound time of 17.52 min, ultrasound cycle 1, and ultrasound power 80% using the response surface approach. Under ideal circumstances, the maximum yield was recorded as 44.84 mg BSA/g of hazelnut meal protein (HMP) for RMS, it had a higher yield obtained by alkaline solution (AS). α-helix, β-turn, and β-sheet structures of HMP increased while the random coil decreased as evidenced by FTIR and SEM images proving that the cell walls were destructed and had more cracks in RMS. Overall, the find-ings indicated that UAE combined with RMS might be an effective approach for extracting protein from HMP and is likely to lead to an alternative evaluation possibility of an industrial by-product.

Kaynakça

  • REFERENCES
  • [1] El-Adawy TA, Taha KM. Characteristics and composition of watermelon, pumpkin, and paprika seed oils and flours. J Agric Food Chem 2001;49:1253–1259. [CrossRef]
  • [2] Bener M, Şen FB, Önem AN, Bekdeşer B, Çelik SE, Lalikoglu M, et al. Microwave-assisted extraction of antioxidant compounds from by-products of Turkish hazelnut (Corylus avellana L.) using natural deep eutectic solvents: Modeling, optimization and phenolic characterization. Food Chem 2022;385:132633. [CrossRef]
  • [3] FAOSTAT. 2020: https://www.fao.org/faostat/en/#data/QCL/visualize.
  • [4] Sen D, Kahveci D. Production of a protein concentrate from Hazelnut meal obtained as a hazelnut oil industry by-product and its application in a functional beverage. Waste Biomass Valori 2020;11:50995107. [CrossRef]
  • [5] Tatar F, Tunç MT, Kahyaoglu T. Turkish Tombul hazelnut (Corylus avellana L.) protein concentrates: Functional and rheological properties. J Food Sci Technol 2015;52:1024–1031. [CrossRef]
  • [6] Aydemir LY, Gökbulut AA, Baran Y, Yemenicioğlu A. Bioactive, functional and edible film-forming properties of isolated hazelnut (Corylus avellana L.) meal proteins. Food Hydrocoll 2014;36:130– 142. [CrossRef]
  • [7] Kumar K, Srivastav S, Sharanagat VS. Ultrasound assisted extraction (UAE) of bioactive compounds from fruit and vegetable processing by-products: A review. Ultrason Sonochem 2021;70:105325. [CrossRef]
  • [8] Rostagno MA, Palma M, Barroso CG. Ultrasound-assisted extraction of soy isoflavones. J Chromatogr A 2003;1012:119–128. [CrossRef]
  • [9] Zhu KX, Sun XH, Zhou HM. Optimization of ultrasound-assisted extraction of defatted wheat germ proteins by reverse micelles. J Cereal Sci 2009;50:266–271. [CrossRef]
  • [10] Lye GJ, Asenjo JA, Pyle DL. Protein extraction using reverse micelles: kinetics of protein partitioning. Chem Eng Sci 1994;49:3195–3204. [CrossRef]
  • [11] He S, Shi J, Walid E, Ma Y, Xue SJ. Extraction and purification of a lectin from small black kidney bean (Phaseolus vulgaris) using a reversed micellar system. Process Biochem 2013;48:746–752. [CrossRef]
  • [12] Liu F, Wang X, Zhao X, Hu H, Chen F, Sun Y. Surface properties of walnut protein from AOT reverse micelles. Int J Food Sci Technol 2014;49:626–633. [CrossRef]
  • [13] Li F, Raza A, Wang YW, Xu XQ, Chen GH. Optimization of surfactant-mediated, ultrasonic-assisted extraction of antioxidant polyphenols from rattan tea (Ampelopsis grossedentata) using response surface methodology. Pharmacogn Mag 2017;13:446–453. [CrossRef]
  • [14] Leser ME, Mrkoci K, Luisi PL, Reverse micelles in protein separation: the use of silica for the back‐transfer process. Biotechnol Bioeng 1993;41:489–492. [CrossRef]
  • [15] Chuo SC, Mohd-Setapar SH, Mohamad-Aziz SN, Starov VM. A new method of extraction of amoxicillin using mixed reverse micelles. Colloids Surf A Physicochem Eng Asp 2014;460:137–144. [CrossRef]
  • [16] Liu L, Xi J. Mechanochemical-assisted extraction of protein from watermelon seeds with surfactant. LWT 2021;142:111025. [CrossRef]
  • [17] Naoe K, Noda K, Kawagoe M, Imai M. Higher order structure of proteins solubilized in AOT reverse micelles. Colloids Surf B Biointerfaces 2004;38:179–185. [CrossRef]
  • [18] Chen X, Ru Y, Chen F, Wang X, Zhao X, Ao Q. FTIR spectroscopic characterization of soy proteins obtained through AOT reverse micelles. Food Hydrocoll 2013;31:435–437. [CrossRef]
  • [19] Sun XH, Zhu KX, Zhou HM. Protein extraction from defatted wheat germ by reverse micelles: Optimization of the forward extraction. J Cereal Sci 2008;48:829–835. [CrossRef]
  • [20] Bradford MM. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem 1976;72:248–254. [CrossRef]
  • [21] Wani AA, Sogi DS, Grover L, Saxena DC. Effect of temperature, alkali concentration, mixing time and meal/solvent ratio on the extraction of watermelon seed proteins - A response surface approach. Biosyst Eng 2006;94:67–73. [CrossRef]
  • [22] Chen J, Chen F, Wang X, Zhao X, Ao Q. The forward and backward transport processes in the AOT/hexane reversed micellar extraction of soybean protein. J Food Sci Technol 2014;51:2851– 2856.
  • [23] Sun XH, Zhu KX, Zhou HM. Optimization of a novel backward extraction of defatted wheat germ protein from reverse micelles. Innov Food Sci Emerg Technol 2009;10:328–333. [CrossRef]
  • [24] Zhao X, Liu H, Zhang X, Zhu H, Ao Q. Surface structure and volatile characteristic of peanut proteins obtained through AOT reverse micelles. Colloids Surf B Biointerfaces 2019;173:860–868. [CrossRef]
  • [25] Lye GJ, Asenjo JA, Pyle DL. Extraction of lysozyme and ribonuclease-a using reverse micelles: Limits to protein solubilization. Biotechnol Bioeng 1995;47:509–519. [CrossRef]
  • [26] Wolbert RB, Hilhorst R, Voskuilen G, Nachtegaal H, Dekker M, Riet KVT, et al. Protein transfer from an aqueous phase into reversed micelles. Eur J Biochem 1989;184:627–633.
  • [27] Cöklen KE, Hatton TA. Protein extraction using reverse micelles. Biotechnol Progress 1985;1:69–74. [CrossRef]
  • [28] Ichikawa S, Imai M, Shimizu M. Solubilizing water involved in protein extraction using reversed micelles. Biotechnol Bioeng 1992;39:20–26. [CrossRef]
  • [29] Geow CH, Tan MC, Yeap SP, Chin NL. Application of osmotic dehydration and ultrasound to enhance hazelnut oil extraction. Food Anal Methods 2021;14:411–421. [CrossRef]
  • [30] Wei F, Gao GZ, Wang XF, Dong XY, Li PP, Hua W, et al. Quantitative determination of oil content in small quantity of oilseed rape by ultrasound-assisted extraction combined with gas chromatography. Ultrason Sonochem 2008;15:938–942. [CrossRef]
  • [31] Xu Y, Zhang H, Xu X, Wang X. Numerical analysis and surrogate model optimization of air-cooled battery modules using double-layer heat spreading plates. Int J Heat Mass Transf 2021;176:121380. [CrossRef]
  • [32] Quanhong L. Caili F. Application of response surface methodology for extraction optimization of germinant pumpkin seeds protein. Food Chem 2005;92:701–706.
  • [33] Tao Y, Zhang Z, Sun DW. Experimental and modeling studies of ultrasound-assisted release of phenolics from oak chips into model wine. Ultrason Sonochem 2014;21:1839–1848. [CrossRef]
  • [34] Guo Z, Chen F, Yang H, Liu K, Zhang L. Kinetics of protein extraction in reverse micelle. Int J Food Prop 2015;18:1707–1718. [CrossRef] [35] Leser ME, Luisi PL, Paimieri S. The use of reverse micelles for the simultaneous extraction of oil and proteins from vegetable meal. Biotechnol Bioeng 1989;34:1140–1146. [CrossRef]
  • [36] Wang Z, Li H, Liang M, Yang L. Glutelin and prolamin, different components of rice protein, exert differently in vitro antioxidant activities. J Cereal Sci 2016;72:108–116.
  • [37] Zhao X, Zhu H, Zhang B, Chen J, Ao Q, Wang X. XRD, SEM, and XPS analysis of soybean protein powders obtained through extraction involving reverse micelles. J Am Oil Chem Soc 2015;92:975– 983. [CrossRef]
  • [38] Zhang Y, Yang R, Zhang W, Hu Z, Zhao W. Structural characterization and physicochemical properties of protein extracted from soybean meal assisted by steam flash-explosion with dilute acid soaking. Food Chem 2017;219:48–53. [CrossRef]
  • [39] Carbonaro M. Nucara A. Secondary structure of food proteins by Fourier transform spectroscopy in the mid-infrared region. Amino Acids 2010;38:679–690. [CrossRef]
  • [40] Baltacıoğlu H, Bayındırlı A, Severcan F. Secondary structure and conformational change of mushroom polyphenol oxidase during thermosonication treatment by using FTIR spectroscopy. Food Chem 2017;214:507–514. [CrossRef]
  • [41] Güler G, Vorob'ev MM, Vogel V, Mäntele W. Proteolytically-induced changes of secondary structural protein conformation of bovine serum albumin monitored by Fourier transform infrared (FT-IR) and UV-circular dichroism spectroscopy. Spectrochim Acta A Mol Biomol Spectrosc 2016;161:8–18. [CrossRef]
  • [42] Zhang L, Pan Z, Shen K, Cai X, Zheng B, Miao S. Influence of ultrasound-assisted alkali treatment on the structural properties and functionalities of rice protein. J Cereal Sci 2018;79:204–209. [CrossRef]
  • [43] Jayaramudu T, Raghavendra GM, Varaprasad K, Sadiku R, Raju KM. Development of novel biodegradable Au nanocomposite hydrogels based on wheat: For inactivation of bacteria. Carbohydr Polym 2013;92:2193–2200. [CrossRef]
  • [44] Zhao X, Chen F, Xue W, Lee L. FTIR spectra studies on the secondary structures of 7S and 11S globulins from soybean proteins using AOT reverse micellar extraction. Food Hydrocol 2008;22:568–575. [CrossRef]
Yıl 2024, Cilt: 42 Sayı: 4, 1202 - 1213, 01.08.2024

Öz

Kaynakça

  • REFERENCES
  • [1] El-Adawy TA, Taha KM. Characteristics and composition of watermelon, pumpkin, and paprika seed oils and flours. J Agric Food Chem 2001;49:1253–1259. [CrossRef]
  • [2] Bener M, Şen FB, Önem AN, Bekdeşer B, Çelik SE, Lalikoglu M, et al. Microwave-assisted extraction of antioxidant compounds from by-products of Turkish hazelnut (Corylus avellana L.) using natural deep eutectic solvents: Modeling, optimization and phenolic characterization. Food Chem 2022;385:132633. [CrossRef]
  • [3] FAOSTAT. 2020: https://www.fao.org/faostat/en/#data/QCL/visualize.
  • [4] Sen D, Kahveci D. Production of a protein concentrate from Hazelnut meal obtained as a hazelnut oil industry by-product and its application in a functional beverage. Waste Biomass Valori 2020;11:50995107. [CrossRef]
  • [5] Tatar F, Tunç MT, Kahyaoglu T. Turkish Tombul hazelnut (Corylus avellana L.) protein concentrates: Functional and rheological properties. J Food Sci Technol 2015;52:1024–1031. [CrossRef]
  • [6] Aydemir LY, Gökbulut AA, Baran Y, Yemenicioğlu A. Bioactive, functional and edible film-forming properties of isolated hazelnut (Corylus avellana L.) meal proteins. Food Hydrocoll 2014;36:130– 142. [CrossRef]
  • [7] Kumar K, Srivastav S, Sharanagat VS. Ultrasound assisted extraction (UAE) of bioactive compounds from fruit and vegetable processing by-products: A review. Ultrason Sonochem 2021;70:105325. [CrossRef]
  • [8] Rostagno MA, Palma M, Barroso CG. Ultrasound-assisted extraction of soy isoflavones. J Chromatogr A 2003;1012:119–128. [CrossRef]
  • [9] Zhu KX, Sun XH, Zhou HM. Optimization of ultrasound-assisted extraction of defatted wheat germ proteins by reverse micelles. J Cereal Sci 2009;50:266–271. [CrossRef]
  • [10] Lye GJ, Asenjo JA, Pyle DL. Protein extraction using reverse micelles: kinetics of protein partitioning. Chem Eng Sci 1994;49:3195–3204. [CrossRef]
  • [11] He S, Shi J, Walid E, Ma Y, Xue SJ. Extraction and purification of a lectin from small black kidney bean (Phaseolus vulgaris) using a reversed micellar system. Process Biochem 2013;48:746–752. [CrossRef]
  • [12] Liu F, Wang X, Zhao X, Hu H, Chen F, Sun Y. Surface properties of walnut protein from AOT reverse micelles. Int J Food Sci Technol 2014;49:626–633. [CrossRef]
  • [13] Li F, Raza A, Wang YW, Xu XQ, Chen GH. Optimization of surfactant-mediated, ultrasonic-assisted extraction of antioxidant polyphenols from rattan tea (Ampelopsis grossedentata) using response surface methodology. Pharmacogn Mag 2017;13:446–453. [CrossRef]
  • [14] Leser ME, Mrkoci K, Luisi PL, Reverse micelles in protein separation: the use of silica for the back‐transfer process. Biotechnol Bioeng 1993;41:489–492. [CrossRef]
  • [15] Chuo SC, Mohd-Setapar SH, Mohamad-Aziz SN, Starov VM. A new method of extraction of amoxicillin using mixed reverse micelles. Colloids Surf A Physicochem Eng Asp 2014;460:137–144. [CrossRef]
  • [16] Liu L, Xi J. Mechanochemical-assisted extraction of protein from watermelon seeds with surfactant. LWT 2021;142:111025. [CrossRef]
  • [17] Naoe K, Noda K, Kawagoe M, Imai M. Higher order structure of proteins solubilized in AOT reverse micelles. Colloids Surf B Biointerfaces 2004;38:179–185. [CrossRef]
  • [18] Chen X, Ru Y, Chen F, Wang X, Zhao X, Ao Q. FTIR spectroscopic characterization of soy proteins obtained through AOT reverse micelles. Food Hydrocoll 2013;31:435–437. [CrossRef]
  • [19] Sun XH, Zhu KX, Zhou HM. Protein extraction from defatted wheat germ by reverse micelles: Optimization of the forward extraction. J Cereal Sci 2008;48:829–835. [CrossRef]
  • [20] Bradford MM. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem 1976;72:248–254. [CrossRef]
  • [21] Wani AA, Sogi DS, Grover L, Saxena DC. Effect of temperature, alkali concentration, mixing time and meal/solvent ratio on the extraction of watermelon seed proteins - A response surface approach. Biosyst Eng 2006;94:67–73. [CrossRef]
  • [22] Chen J, Chen F, Wang X, Zhao X, Ao Q. The forward and backward transport processes in the AOT/hexane reversed micellar extraction of soybean protein. J Food Sci Technol 2014;51:2851– 2856.
  • [23] Sun XH, Zhu KX, Zhou HM. Optimization of a novel backward extraction of defatted wheat germ protein from reverse micelles. Innov Food Sci Emerg Technol 2009;10:328–333. [CrossRef]
  • [24] Zhao X, Liu H, Zhang X, Zhu H, Ao Q. Surface structure and volatile characteristic of peanut proteins obtained through AOT reverse micelles. Colloids Surf B Biointerfaces 2019;173:860–868. [CrossRef]
  • [25] Lye GJ, Asenjo JA, Pyle DL. Extraction of lysozyme and ribonuclease-a using reverse micelles: Limits to protein solubilization. Biotechnol Bioeng 1995;47:509–519. [CrossRef]
  • [26] Wolbert RB, Hilhorst R, Voskuilen G, Nachtegaal H, Dekker M, Riet KVT, et al. Protein transfer from an aqueous phase into reversed micelles. Eur J Biochem 1989;184:627–633.
  • [27] Cöklen KE, Hatton TA. Protein extraction using reverse micelles. Biotechnol Progress 1985;1:69–74. [CrossRef]
  • [28] Ichikawa S, Imai M, Shimizu M. Solubilizing water involved in protein extraction using reversed micelles. Biotechnol Bioeng 1992;39:20–26. [CrossRef]
  • [29] Geow CH, Tan MC, Yeap SP, Chin NL. Application of osmotic dehydration and ultrasound to enhance hazelnut oil extraction. Food Anal Methods 2021;14:411–421. [CrossRef]
  • [30] Wei F, Gao GZ, Wang XF, Dong XY, Li PP, Hua W, et al. Quantitative determination of oil content in small quantity of oilseed rape by ultrasound-assisted extraction combined with gas chromatography. Ultrason Sonochem 2008;15:938–942. [CrossRef]
  • [31] Xu Y, Zhang H, Xu X, Wang X. Numerical analysis and surrogate model optimization of air-cooled battery modules using double-layer heat spreading plates. Int J Heat Mass Transf 2021;176:121380. [CrossRef]
  • [32] Quanhong L. Caili F. Application of response surface methodology for extraction optimization of germinant pumpkin seeds protein. Food Chem 2005;92:701–706.
  • [33] Tao Y, Zhang Z, Sun DW. Experimental and modeling studies of ultrasound-assisted release of phenolics from oak chips into model wine. Ultrason Sonochem 2014;21:1839–1848. [CrossRef]
  • [34] Guo Z, Chen F, Yang H, Liu K, Zhang L. Kinetics of protein extraction in reverse micelle. Int J Food Prop 2015;18:1707–1718. [CrossRef] [35] Leser ME, Luisi PL, Paimieri S. The use of reverse micelles for the simultaneous extraction of oil and proteins from vegetable meal. Biotechnol Bioeng 1989;34:1140–1146. [CrossRef]
  • [36] Wang Z, Li H, Liang M, Yang L. Glutelin and prolamin, different components of rice protein, exert differently in vitro antioxidant activities. J Cereal Sci 2016;72:108–116.
  • [37] Zhao X, Zhu H, Zhang B, Chen J, Ao Q, Wang X. XRD, SEM, and XPS analysis of soybean protein powders obtained through extraction involving reverse micelles. J Am Oil Chem Soc 2015;92:975– 983. [CrossRef]
  • [38] Zhang Y, Yang R, Zhang W, Hu Z, Zhao W. Structural characterization and physicochemical properties of protein extracted from soybean meal assisted by steam flash-explosion with dilute acid soaking. Food Chem 2017;219:48–53. [CrossRef]
  • [39] Carbonaro M. Nucara A. Secondary structure of food proteins by Fourier transform spectroscopy in the mid-infrared region. Amino Acids 2010;38:679–690. [CrossRef]
  • [40] Baltacıoğlu H, Bayındırlı A, Severcan F. Secondary structure and conformational change of mushroom polyphenol oxidase during thermosonication treatment by using FTIR spectroscopy. Food Chem 2017;214:507–514. [CrossRef]
  • [41] Güler G, Vorob'ev MM, Vogel V, Mäntele W. Proteolytically-induced changes of secondary structural protein conformation of bovine serum albumin monitored by Fourier transform infrared (FT-IR) and UV-circular dichroism spectroscopy. Spectrochim Acta A Mol Biomol Spectrosc 2016;161:8–18. [CrossRef]
  • [42] Zhang L, Pan Z, Shen K, Cai X, Zheng B, Miao S. Influence of ultrasound-assisted alkali treatment on the structural properties and functionalities of rice protein. J Cereal Sci 2018;79:204–209. [CrossRef]
  • [43] Jayaramudu T, Raghavendra GM, Varaprasad K, Sadiku R, Raju KM. Development of novel biodegradable Au nanocomposite hydrogels based on wheat: For inactivation of bacteria. Carbohydr Polym 2013;92:2193–2200. [CrossRef]
  • [44] Zhao X, Chen F, Xue W, Lee L. FTIR spectra studies on the secondary structures of 7S and 11S globulins from soybean proteins using AOT reverse micellar extraction. Food Hydrocol 2008;22:568–575. [CrossRef]
Toplam 44 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Klinik Kimya
Bölüm Research Articles
Yazarlar

Elif Meltem İşçimen 0000-0002-9849-6352

Mehmet Hayta 0000-0001-6239-8630

Yayımlanma Tarihi 1 Ağustos 2024
Gönderilme Tarihi 25 Ocak 2023
Yayımlandığı Sayı Yıl 2024 Cilt: 42 Sayı: 4

Kaynak Göster

Vancouver İşçimen EM, Hayta M. Optimization of ultrasound-assisted extraction of protein from the byproduct of the hazelnut oil industry using reverse micelles. SIGMA. 2024;42(4):1202-13.

IMPORTANT NOTE: JOURNAL SUBMISSION LINK https://eds.yildiz.edu.tr/sigma/