真菌毒素的生物解毒及其在植物育种、饲料和食品生产中的应用。

P Karlovsky
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引用次数: 295

摘要

真菌毒素的酶灭活是农产品去污和保护作物免受真菌代谢物植物毒性作用的一种有吸引力的策略。本文综述了微生物和植物对真菌毒素的生物解毒及其实际应用研究进展。一些霉菌毒素在青贮和其他发酵过程中被解毒(黄曲霉毒素、交替醇、霉酚酸、展霉素、PR毒素),而其他霉菌毒素则转化为有毒产物或在发酵过程中完好无损。植物可以解毒呋喃虫毒素、镰刀酸、hc毒素、赭曲霉毒素A和草酸盐,但脱氧雪腐镰刀菌醇的降解尚未得到证实。脊椎动物和无脊椎动物消化道的微生物群对黄曲霉毒素、赭曲霉毒素A、草酸盐和毛霉烯具有解毒活性。一些产毒真菌能够在适当的条件下降解或转化它们自己的产物。通过筛选和富集培养技术,从复杂的微生物种群中分离出了解毒细菌和真菌的纯培养物。一些负责解毒活动的基因已被克隆并在异源寄主中表达。综述了黄曲霉毒素、车曲霉素、伏马菌素、镰刀酸、赭曲霉毒素A、草酸、展霉素、霉霉烯和玉米赤霉烯酮的纯培养解毒研究进展。最后,总结了这些结果在食品和饲料生产以及植物育种中的应用现状,并对未来的发展进行了展望。
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Biological detoxification of fungal toxins and its use in plant breeding, feed and food production.

Enzymatic inactivation of fungal toxins is an attractive strategy for the decontamination of agricultural commodities and for the protection of crops from phytotoxic effects of fungal metabolites. This review summarizes research on the biological detoxification of fungal toxins by microorganisms and plants and its practical applications. Some mycotoxins are detoxified during ensiling and other fermentation processes (aflatoxins, alternariol, mycophenolic acid, patulin, PR toxin) while others are transformed into toxic products or survive fermentation unchanged. Plants can detoxify fomannoxin, fusaric acid, HC-toxin, ochratoxin A and oxalate but the degradation of deoxynivalenol has yet to be proven. Microflora of the digestive tract of vertebrates and invertebrates exhibit detoxification activities towards aflatoxins, ochratoxin A, oxalate and trichothecenes. Some toxin-producing fungi are able to degrade or transform their own products under suitable conditions. Pure cultures of bacteria and fungi which detoxify mycotoxins have been isolated from complex microbial populations by screening and enrichment culture techniques. Genes responsible for some of the detoxification activities have been cloned and expressed in heterologous hosts. The detoxification of aflatoxins, cercosporin, fumonisins, fusaric acid, ochratoxin A, oxalic acid, patulin, trichothecenes and zearalenone by pure cultures is reviewed. Finally, current application of these results in food and feed production and plant breeding is summarized and expected future developments are outlined.

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Erratum: Alfonso D, Johnson HA, Colman-Saizarbitoria T, Presley CP, McCabe GP, McLaughlin JL (1996): SARs of annonaceous acetogenins in rat liver mitochondria. Nat Toxins 4:181-188. Advances in detection methods for fungal and algal toxins. HPLC/MS analysis of fusarium mycotoxins, fumonisins and deoxynivalenol. Neuronal binding of tetanus toxin compared to its ganglioside binding fragment (H(c)). A new type sandwich immunoassay for microcystin: production of monoclonal antibodies specific to the immune complex formed by microcystin and an anti-microcystin monoclonal antibody.
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