• 文献检索
  • 文档翻译
  • 深度研究
  • 学术资讯
  • Suppr Zotero 插件Zotero 插件
  • 邀请有礼
  • 套餐&价格
  • 历史记录
应用&插件
Suppr Zotero 插件Zotero 插件浏览器插件Mac 客户端Windows 客户端微信小程序
定价
高级版会员购买积分包购买API积分包
服务
文献检索文档翻译深度研究API 文档MCP 服务
关于我们
关于 Suppr公司介绍联系我们用户协议隐私条款
关注我们

Suppr 超能文献

核心技术专利:CN118964589B侵权必究
粤ICP备2023148730 号-1Suppr @ 2026

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验

柑橘类水果中游离和结合酚类物质的概况及其在生物系统中的作用:含量以及抗氧化、抗糖尿病和抗高血压特性。

Profiles of free and bound phenolics extracted from Citrus fruits and their roles in biological systems: content, and antioxidant, anti-diabetic and anti-hypertensive properties.

作者信息

Alu'datt Muhammad H, Rababah Taha, Alhamad Mohammad N, Al-Mahasneh Majdi A, Ereifej Khalil, Al-Karaki Ghazi, Al-Duais Mohammed, Andrade Juan E, Tranchant Carole C, Kubow Stan, Ghozlan Kawther A

机构信息

Faculty of Agriculture, Jordan University of Science and Technology, Irbid, P.O. Box 3030, 22110, Jordan.

出版信息

Food Funct. 2017 Sep 20;8(9):3187-3197. doi: 10.1039/c7fo00212b.

DOI:10.1039/c7fo00212b
PMID:28805834
Abstract

This study of selected plants of the Rutaceae family was carried out to investigate their phenolic content, antioxidant activity, and the in vitro inhibitory potential of extracted phenolics towards enzymes relevant for hyperglycemia and hypertension. The phenolic content, antioxidant activity and phenolic extract-mediated inhibitory activities for α-glucosidase and α-amylase were evaluated by spectrophotometry. The content of individual phenolics and the angiotensin I-converting enzyme (ACE) inhibitory activity of the phenolic extracts were evaluated by LC/MS-MS and RP-HPLC methods, respectively. A higher percentage of free phenolic content was seen for all the selected plants of the Rutaceae family (85.43-92.82% of the total phenolic content) than of the bound form (7.18-14.57% of total phenolic content). The major predominant bound phenolic in lemon and red blood orange was hesperidin. The major predominant bound phenolic in pummelo, shamouti and clementine was ferulic acid. The highest ACE and α-glucosidase inhibitory activity of the extracted phenolics from lemon was associated with free phenolic extracts obtained at 30 °C with values of 100% inhibition. Red blood orange free phenolic extract (30 °C) elicited the highest α-amylase inhibition activity (32.3%). In contrast, extracted bound phenolics after acid and base hydrolysis from all selected plants from the Citrus species were shown to induce activation of the ACE and α-amylase enzymes.

摘要

本研究对芸香科的选定植物进行了考察,以研究其酚类含量、抗氧化活性以及提取的酚类物质对与高血糖和高血压相关酶的体外抑制潜力。通过分光光度法评估酚类含量、抗氧化活性以及酚类提取物对α-葡萄糖苷酶和α-淀粉酶的抑制活性。分别采用液相色谱/质谱联用(LC/MS-MS)和反相高效液相色谱(RP-HPLC)方法评估酚类提取物中各酚类物质的含量及其对血管紧张素I转换酶(ACE)的抑制活性。芸香科所有选定植物的游离酚类含量百分比(占总酚类含量的85.43 - 92.82%)高于结合态(占总酚类含量的7.18 - 14.57%)。柠檬和血橙中主要的结合酚类物质是橙皮苷。柚子、沙莫蒂橙和克莱门氏小柑橘中主要的结合酚类物质是阿魏酸。柠檬提取物中酚类物质对ACE和α-葡萄糖苷酶的抑制活性最高,与在30℃下获得的游离酚类提取物相关,其抑制率达100%。血橙游离酚类提取物(30℃)对α-淀粉酶的抑制活性最高(32.3%)。相反,柑橘属所有选定植物经酸碱水解后的结合酚类提取物均显示会诱导ACE和α-淀粉酶的激活。

相似文献

1
Profiles of free and bound phenolics extracted from Citrus fruits and their roles in biological systems: content, and antioxidant, anti-diabetic and anti-hypertensive properties.柑橘类水果中游离和结合酚类物质的概况及其在生物系统中的作用:含量以及抗氧化、抗糖尿病和抗高血压特性。
Food Funct. 2017 Sep 20;8(9):3187-3197. doi: 10.1039/c7fo00212b.
2
Phenolic profiles, antioxidant, antiproliferative, and hypoglycemic activities of Ehretia macrophyla Wall. (EMW) fruit.大花龙葵果实的酚类成分分析、抗氧化、抗增殖和降血糖活性。
J Food Sci. 2020 Jul;85(7):2177-2185. doi: 10.1111/1750-3841.15185. Epub 2020 Jun 11.
3
Shaddock peels (Citrus maxima) phenolic extracts inhibit α-amylase, α-glucosidase and angiotensin I-converting enzyme activities: a nutraceutical approach to diabetes management.柚子皮(柑橘)酚类提取物抑制α-淀粉酶、α-葡萄糖苷酶和血管紧张素I转换酶活性:糖尿病管理的营养保健方法。
Diabetes Metab Syndr. 2011 Jul-Sep;5(3):148-52. doi: 10.1016/j.dsx.2012.02.008. Epub 2012 Mar 15.
4
Inhibitory potentials of phenolic-rich extracts from Bridelia ferruginea on two key carbohydrate-metabolizing enzymes and Fe-induced pancreatic oxidative stress.富含多酚的鹧鸪麻提取物对两种关键糖代谢酶的抑制作用及铁诱导的胰腺氧化应激。
J Integr Med. 2018 May;16(3):192-198. doi: 10.1016/j.joim.2018.04.006. Epub 2018 Apr 18.
5
Potential of Chilean native corn (Zea mays L.) accessions as natural sources of phenolic antioxidants and in vitro bioactivity for hyperglycemia and hypertension management.智利本地玉米(Zea mays L.)种质作为酚类抗氧化剂的天然来源以及在体外对高血糖和高血压管理的生物活性的潜力。
J Agric Food Chem. 2013 Nov 20;61(46):10995-1007. doi: 10.1021/jf403237p. Epub 2013 Nov 12.
6
Antioxidant, α-Amylase and α-Glucosidase Inhibitory Activities and Potential Constituents of Bark.树皮的抗氧化、α-淀粉酶和α-葡萄糖苷酶抑制活性及潜在成分。
Molecules. 2019 Feb 9;24(3):605. doi: 10.3390/molecules24030605.
7
Soybean phenolic-rich extracts inhibit key-enzymes linked to type 2 diabetes (α-amylase and α-glucosidase) and hypertension (angiotensin I converting enzyme) in vitro.富含酚类的大豆提取物在体外可抑制与2型糖尿病(α-淀粉酶和α-葡萄糖苷酶)及高血压(血管紧张素I转化酶)相关的关键酶。
Exp Toxicol Pathol. 2013 Mar;65(3):305-9. doi: 10.1016/j.etp.2011.09.005. Epub 2011 Oct 17.
8
Antioxidant, Antidiabetic, and Antihypertensive Properties of Echinacea purpurea Flower Extract and Caffeic Acid Derivatives Using In Vitro Models.使用体外模型研究紫锥菊花朵提取物和咖啡酸衍生物的抗氧化、抗糖尿病及抗高血压特性
J Med Food. 2017 Feb;20(2):171-179. doi: 10.1089/jmf.2016.3790. Epub 2017 Jan 6.
9
Chickpea (Cicer arietinum L.) Lectin Exhibit Inhibition of ACE-I, α-amylase and α-glucosidase Activity.鹰嘴豆(Cicer arietinum L.)凝集素对血管紧张素转换酶-1、α-淀粉酶和α-葡萄糖苷酶活性具有抑制作用。
Protein Pept Lett. 2019;26(7):494-501. doi: 10.2174/0929866526666190327130037.
10
Standardized Emblica officinalis fruit extract inhibited the activities of α-amylase, α-glucosidase, and dipeptidyl peptidase-4 and displayed antioxidant potential.标准化余甘子果提取物抑制α-淀粉酶、α-葡萄糖苷酶和二肽基肽酶-4 的活性,并显示出抗氧化潜力。
J Sci Food Agric. 2020 Jan 30;100(2):509-516. doi: 10.1002/jsfa.10020. Epub 2019 Nov 13.

引用本文的文献

1
Bioactivity of Encapsulated Lemon Peel Phenolics as Affected by Maltodextrin and Foam Mat Drying.麦芽糊精和泡沫垫干燥对包封柠檬皮酚类物质生物活性的影响
Food Sci Nutr. 2025 Jul 14;13(7):e70595. doi: 10.1002/fsn3.70595. eCollection 2025 Jul.
2
MLKL as an emerging machinery for modulating organelle dynamics: regulatory mechanisms, pathophysiological significance, and targeted therapeutics.混合谱系激酶结构域样蛋白(MLKL)作为一种调节细胞器动态变化的新兴机制:调控机制、病理生理学意义及靶向治疗
Front Pharmacol. 2025 Feb 25;16:1512968. doi: 10.3389/fphar.2025.1512968. eCollection 2025.
3
The Impact of Cooking on Antioxidant and Enzyme Activities in Ruichang Yam Polyphenols.
烹饪对瑞昌山药多酚抗氧化及酶活性的影响
Foods. 2024 Dec 25;14(1):14. doi: 10.3390/foods14010014.
4
Recovery, Bioactivity, and Utilization of Bioactive Phenolic Compounds in Peel.果皮中生物活性酚类化合物的回收、生物活性及利用
Food Sci Nutr. 2024 Nov 7;12(12):9974-9997. doi: 10.1002/fsn3.4570. eCollection 2024 Dec.
5
Antioxidant and Biological Activity of Mexican Madroño Fruit ().墨西哥马德罗尼奥果实的抗氧化及生物活性( )。
Foods. 2024 Sep 20;13(18):2982. doi: 10.3390/foods13182982.
6
Metabolic profile and bioactivity of the peel of Zhoupigan ( cv. Manau Gan), a special citrus variety in China, based on GC-MS, UPLC-ESI-MS/MS analysis, and assay.基于气相色谱-质谱联用(GC-MS)、超高效液相色谱-电喷雾串联质谱(UPLC-ESI-MS/MS)分析及活性测定,对中国特色柑橘品种琯溪蜜柚(品种:麻阳柑)果皮的代谢谱及生物活性进行研究。
Food Chem X. 2024 Aug 6;23:101719. doi: 10.1016/j.fochx.2024.101719. eCollection 2024 Oct 30.
7
Effect of Various Fruit Extracts on Angiotensin I-Converting Enzyme (ACE) and Kallikrein (KLK) Activities.各种水果提取物对血管紧张素转化酶(ACE)和激肽释放酶(KLK)活性的影响。
Plant Foods Hum Nutr. 2024 Dec;79(4):860-866. doi: 10.1007/s11130-024-01223-5. Epub 2024 Aug 24.
8
Mechanistic study on vasodilatory and antihypertensive effects of hesperetin: ex vivo and in vivo approaches.橙皮苷舒张血管和降压作用的机制研究:离体和在体方法。
Hypertens Res. 2024 Sep;47(9):2416-2434. doi: 10.1038/s41440-024-01652-4. Epub 2024 Jun 24.
9
Computational and Experimental Approaches Exploring the Role of Hesperetin in Improving Autophagy in Rat Diabetic Retinopathy.探索橙皮素在改善大鼠糖尿病性视网膜病变自噬中作用的计算和实验方法
Biomedicines. 2024 Mar 1;12(3):552. doi: 10.3390/biomedicines12030552.
10
Ultrasonic-Assisted and Microwave-Assisted Extraction of Phenolics and Terpenoids from (Kurz) Merr Roots Using Natural Deep Eutectic Solvents.使用天然低共熔溶剂从(库尔茨)梅里尔根中超声辅助和微波辅助提取酚类和萜类化合物
ACS Omega. 2023 Jul 31;8(32):29704-29716. doi: 10.1021/acsomega.3c03929. eCollection 2023 Aug 15.