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将大麦蛋白开发成用于包封疏水性生物活性成分的肽纳米胶束。

Development of barley proteins into peptides nanomicelles for encapsulation of hydrophobic bioactive ingredient.

作者信息

Song Hongdong, Duan Longhuan, Ren Shaoxia, Wang Xinyue, Feng Zhongyang, Shen Jianhua, Wang Chengtao, Guan Xiao

机构信息

School of Health Science and Engineering, University of Shanghai for Science and Technology, Shanghai, China.

National Grain Industry (Urban Grain and Oil Security) Technology Innovation Center, Shanghai, China.

出版信息

J Sci Food Agric. 2025 Jan 30;105(2):1356-1364. doi: 10.1002/jsfa.13925. Epub 2024 Sep 23.

Abstract

BACKGROUND

As natural polymer materials, barley proteins have been utilized to fabricate nanocarriers to encapsulate and delivery hydrophobic bioactive ingredients. However, as a result of the high proportion of hydrophobic amino acids and structural rigidity, barley protein-based nanocarriers tend to aggregate easily and have a low loading capacity, which greatly limits their application. In the present study, barley proteins were enzymolyzed to fabricate nanomicelles and then applied to encapsulate hydrophobic bioactive ingredient.

RESULTS

Self-assembled barley peptides could be obtained by controllable enzymolysis of barley proteins. The obtained barley peptides could self-assemble into nanomicelles (BPNMs) with a diameter of approximately 90 nm when the concentration was > 2.1 μg mL. Hydrophobic interaction, disulfide bonds and hydrogen bonds were involved in maintaining the structure of BPNMs. Six self-assembled peptides (QQPFPQ, QTPLPQ, QLPQIPE, QPFPQQPQLPH, QPFPQQPPFGL and QPFPQQPPFWQQQ) were identified and they were characterized by alternating arrangement of hydrophobic amino acids and hydrophilic amino acids. Moreover, BPNMs were utilized to encapsulate hydrophobic bioactive ingredient quercetin. When quercetin was encapsulated by BPNMs, its water solubility was significantly increased, being approximately 30-fold higher than free quercetin. Meanwhile, encapsulation of BPNMs could greatly increase quercetin stability. The interaction between BPNMs and quercetin occurred spontaneously, mainly driven by van der Waals forces and hydrogen bonds.

CONCLUSION

In the present study, BPNMs were successfully developed and could be used as a promising delivery system to improve the water solubility and stability of hydrophobic bioactive ingredients. © 2024 Society of Chemical Industry.

摘要

背景

作为天然高分子材料,大麦蛋白已被用于制备纳米载体以包封和递送疏水性生物活性成分。然而,由于疏水性氨基酸比例高且结构刚性大,基于大麦蛋白的纳米载体容易聚集且负载量低,这极大地限制了它们的应用。在本研究中,对大麦蛋白进行酶解以制备纳米胶束,然后将其用于包封疏水性生物活性成分。

结果

通过对大麦蛋白进行可控酶解可获得自组装大麦肽。当浓度>2.1μg/mL时,所获得的大麦肽可自组装成直径约为90nm的纳米胶束(BPNMs)。疏水相互作用、二硫键和氢键参与维持BPNMs的结构。鉴定出六种自组装肽(QQPFPQ、QTPLPQ、QLPQIPE、QPFPQQPQLPH、QPFPQQPPFGL和QPFPQQPPFWQQQ),其特征为疏水性氨基酸和亲水性氨基酸交替排列。此外,BPNMs被用于包封疏水性生物活性成分槲皮素。当槲皮素被BPNMs包封时,其水溶性显著增加,比游离槲皮素高约30倍。同时,BPNMs的包封可大大提高槲皮素的稳定性。BPNMs与槲皮素之间的相互作用自发发生,主要由范德华力和氢键驱动。

结论

在本研究中,成功开发了BPNMs,其可作为一种有前景的递送系统来提高疏水性生物活性成分的水溶性和稳定性。©2024化学工业协会。

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