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真菌预处理以提高植物化学物质的产量,并使用肉桂(L.)压热水提取物评估α-淀粉酶和α-葡萄糖苷酶的抑制作用。

Fungal pretreatment to enhance the yield of phytochemicals and evaluation of α-amylase and α-glucosidase inhibition using Cinnamomum zeylanicum (L.) quills pressurized water extracts.

机构信息

Department of Chemistry, Faculty of Science, University of Kelaniya, Dalugama, Sri Lanka.

Department of Plant and Molecular Biology, Faculty of Science, University of Kelaniya, Dalugama, Sri Lanka.

出版信息

Lett Appl Microbiol. 2021 Feb;72(2):196-205. doi: 10.1111/lam.13410. Epub 2020 Nov 10.

DOI:10.1111/lam.13410
PMID:33030748
Abstract

Bioactive compounds entrapped in plant materials can be effectively recovered using fungal enzymes. Cinnamomum zeylanicum Sri Wijaya (SW) and Sri Gemunu (SG) accessions and commercially available C. zeylanicum (CC) were subjected to fungal pretreatment and extracted with pressured water (PWE, 0·098 MPa). Thirteen fungal species were isolated and the substrate utilization ability of the species was tested using cellulose, pectin and lignin (indirectly). Total phenolic content (TPC, Folin-Ciocalteu method), proanthocyanidin content (PC, vanillin method) and α-amylase and α-glucosidase inhibitory potential of the extracts were evaluated. The anti-diabetic drug, Acarbose was used as the positive control. Trichoderma harzianum (MH298760) showed the highest cell lysis ability and hence was used for the microbial pretreatment process. Extracts of SW treated with T. harzianum species (Pre-SW) gave the highest percentage yield (4·08% ± 0·15%), significantly potent inhibition (P < 0·05) of α-amylase and α-glucosidase activities (IC 57 ± 8 and 36 ± 8 μg ml respectively), TPC (2·24 ± 0·02 mg gallic acid equivalent g ), and PC (48·2 ± 0·4 mg of catechin equivalent g ) compared to Pre-SG, Pre-CC and nontreated samples. Trichoderma harzianum treatment can enhance the hypoglycaemic properties, PC and TPC of Cinnamon extracts and provide new insights into the recovery of phytochemicals.

摘要

植物材料中包封的生物活性化合物可以使用真菌酶有效地回收。斯里维贾亚(SW)和斯里杰穆努(SG)肉桂属肉桂和市售肉桂(CC)进行真菌预处理并用加压水(PWE,0.098 MPa)提取。分离出 13 种真菌,并用纤维素、果胶和木质素(间接)测试了这些种的底物利用能力。用福林-考尔法(Folin-Ciocalteu method)测定总酚含量(TPC)、原花青素含量(PC)、α-淀粉酶和α-葡萄糖苷酶抑制潜力,并对提取物进行评价。将抗糖尿病药物阿卡波糖用作阳性对照。哈茨木霉(MH298760)显示出最高的细胞裂解能力,因此用于微生物预处理过程。经哈茨木霉处理的 SW 提取物(Pre-SW)的产率最高(4.08%±0.15%),对α-淀粉酶和α-葡萄糖苷酶活性的抑制作用最强(IC 57±8 和 36±8 μg ml 分别),TPC(2.24±0.02 mg 没食子酸当量 g)和 PC(48.2±0.4 mg 儿茶素当量 g)与 Pre-SG、Pre-CC 和未经处理的样品相比。哈茨木霉处理可以增强肉桂提取物的降血糖特性、PC 和 TPC,并为植物化学物质的回收提供新的见解。

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