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水果和蔬菜采后的紫外线辐射:应用及其对生物活性化合物和微生物生长的功效调节因素

Postharvest Ultraviolet Radiation in Fruit and Vegetables: Applications and Factors Modulating Its Efficacy on Bioactive Compounds and Microbial Growth.

作者信息

Darré Magalí, Vicente Ariel Roberto, Cisneros-Zevallos Luis, Artés-Hernández Francisco

机构信息

LIPA-Laboratorio de Investigación en Productos Agroindustriales, Universidad Nacional de La Plata, Calle 60 y 119 s/n, La Plata CP 1900, Argentina.

Department of Horticultural Sciences, Texas A&M University, College Station, TX 77843, USA.

出版信息

Foods. 2022 Feb 23;11(5):653. doi: 10.3390/foods11050653.

Abstract

Ultraviolet (UV) radiation has been considered a deleterious agent that living organisms must avoid. However, many of the acclimation changes elicited by UV induce a wide range of positive effects in plant physiology through the elicitation of secondary antioxidant metabolites and natural defenses. Therefore, this fact has changed the original UV conception as a germicide and potentially damaging agent, leading to the concept that it is worthy of application in harvested commodities to take advantage of its beneficial responses. Four decades have already passed since postharvest UV radiation applications began to be studied. During this time, UV treatments have been successfully evaluated for different purposes, including the selection of raw materials, the control of postharvest diseases and human pathogens, the elicitation of nutraceutical compounds, the modulation of ripening and senescence, and the induction of cross-stress tolerance. Besides the microbicide use of UV radiation, the effect that has received most attention is the elicitation of bioactive compounds as a defense mechanism. UV treatments have been shown to induce the accumulation of phytochemicals, including ascorbic acid, carotenoids, glucosinolates, and, more frequently, phenolic compounds. The nature and extent of this elicitation have been reported to depend on several factors, including the product type, maturity, cultivar, UV spectral region, dose, intensity, and radiation exposure pattern. Even though in recent years we have greatly increased our understanding of UV technology, some major issues still need to be addressed. These include defining the operational conditions to maximize UV radiation efficacy, reducing treatment times, and ensuring even radiation exposure, especially under realistic processing conditions. This will make UV treatments move beyond their status as an emerging technology and boost their adoption by industry.

摘要

紫外线(UV)辐射一直被视为一种有害因子,生物体必须加以规避。然而,紫外线引发的许多适应性变化通过诱导次生抗氧化代谢产物和天然防御机制,在植物生理学中产生了广泛的积极影响。因此,这一事实改变了紫外线最初作为杀菌剂和潜在破坏剂的概念,引出了一个观点,即它值得应用于收获后的农产品,以利用其有益反应。自开始研究收获后紫外线辐射应用以来,已经过去了四十年。在此期间,针对不同目的,紫外线处理已得到成功评估,包括原材料的选择、收获后病害和人类病原体的控制、营养化合物的诱导、成熟和衰老的调节以及交叉胁迫耐受性的诱导。除了紫外线辐射的杀菌用途外,最受关注的效应是作为一种防御机制诱导生物活性化合物的产生。紫外线处理已被证明能诱导植物化学物质的积累,包括抗坏血酸、类胡萝卜素、芥子油苷,以及更常见的酚类化合物。据报道,这种诱导的性质和程度取决于几个因素,包括产品类型、成熟度、品种、紫外线光谱区域、剂量、强度和辐射暴露模式。尽管近年来我们对紫外线技术的理解有了很大提高,但一些主要问题仍有待解决。这些问题包括确定操作条件以最大化紫外线辐射效果、缩短处理时间以及确保均匀的辐射暴露,尤其是在实际加工条件下。这将使紫外线处理超越其作为新兴技术的地位,并推动其在行业中的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9a8b/8909097/f387b70b4766/foods-11-00653-g001.jpg

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