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1.
Glycoconj J ; 41(2): 93-118, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38630380

ABSTRACT

Galectin-3 has a variety of important pathophysiological significance in the human body. Much evidence shows that the abnormal expression of galectin-3 is related to the formation and development of many diseases. Pectin is mostly obtained from processed citrus fruits and apples and is a known natural inhibitor of galactin-3. A large number of peels produced each year are discarded, and it is necessary to recycle some of the economically valuable active compounds in these by-products to reduce resource waste and environmental pollution. By binding with galectin-3, pectin can directly reduce the expression level of galectin-3 on the one hand, and regulate the expression level of cytokines by regulating certain signaling pathways on the other hand, to achieve the effect of treating diseases. This paper begins by presenting an overview of the basic structure of pectin, subsequently followed by a description of the structure of galectin-3 and its detrimental impact on human health when expressed abnormally. The health effects of pectin as a galectin-3 inhibitor were then summarized from the perspectives of anticancer, anti-inflammatory, ameliorating fibrotic diseases, and anti-diabetes. Finally, the challenges and prospects of future research on pectin are presented, which provide important references for expanding the application of pectin in the pharmaceutical industry or developing functional dietary supplements.


Subject(s)
Galectin 3 , Pectins , Animals , Humans , Anti-Inflammatory Agents/pharmacology , Anti-Inflammatory Agents/chemistry , Blood Proteins , Galectin 3/metabolism , Galectin 3/antagonists & inhibitors , Galectins/metabolism , Galectins/antagonists & inhibitors , Neoplasms/metabolism , Neoplasms/drug therapy , Pectins/pharmacology , Pectins/chemistry
2.
Int J Biol Macromol ; 266(Pt 1): 131164, 2024 May.
Article in English | MEDLINE | ID: mdl-38547940

ABSTRACT

The biological potency of pectin is intricately intertwined with its intricate molecular architecture. The fine structure of pectin is influenced by the extraction method, while the specific impact of these methods on the fine structure and the affected attributes thereof remains enigmatic. This study delves into the profound analysis of eight distinct extraction methods influence on the structure and biological activity of citrus peel pectin. The findings demonstrate that citric acid ultrasound-assisted microwave extraction yields pectin (PectinCA-US/MV) with higher viscosity and a dense, rigid chain. Pectin extracted with acetic acid ultrasound (PectinAA-US) and citric acid ultrasound (PectinCA-US) exhibits elevated galacturonic acid (GalA) levels and reduced D-galactose (Gal) content, enhancing antioxidant activity. Eight pectin-chitosan (CS) hydrogels, especially PectinCA-US/MV-CS, demonstrate commendable thermal stability, rheological properties, self-healing capability, and swelling behavior. This study characterizes citrus peel pectin properties from different extraction methods, laying a foundation for its application in food, pharmaceuticals, and industry.


Subject(s)
Antioxidants , Citrus , Hexuronic Acids , Microwaves , Pectins , Pectins/chemistry , Pectins/isolation & purification , Pectins/pharmacology , Antioxidants/chemistry , Antioxidants/pharmacology , Citrus/chemistry , Viscosity , Hydrogels/chemistry , Citric Acid/chemistry , Chitosan/chemistry , Rheology , Ultrasonic Waves
3.
Crit Rev Food Sci Nutr ; : 1-30, 2023 Aug 31.
Article in English | MEDLINE | ID: mdl-37651130

ABSTRACT

Natural products of plant origin are of high interest and widely used, especially in the food industry, due to their low toxicity and wide range of bioactive properties. Compared to other plant components, the safety of polysaccharides has been generally recognized. As dietary fibers, plant-derived polysaccharides are mostly degraded in the intestine by polysaccharide-degrading enzymes secreted by gut microbiota, and have potential prebiotic activity in both non-disease and disease states, which should not be overlooked, especially in terms of their involvement in the treatment of intestinal diseases and the promotion of intestinal health. This review elucidates the regulatory effects of plant-derived polysaccharides on gut microbiota and summarizes the mechanisms involved in targeting gut microbiota for the treatment of intestinal diseases. Further, the structure-activity relationships between different structural types of plant-derived polysaccharides and the occurrence of their prebiotic activity are further explored. Finally, the practical applications of plant-derived polysaccharides in food production and food packaging are summarized and discussed, providing important references for expanding the application of plant-derived polysaccharides in the food industry or developing functional dietary supplements.

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