Department of Organic Chemistry, Universitat de València, Doctor Moliner 50, 46100, Burjassot, València, Spain.
Institute of Agrochemistry and Food Technology (IATA), Spanish National Research Council (CSIC), Agustí Escardino 7, 46980, Paterna, València, Spain.
Sci Rep. 2021 Dec 6;11(1):23438. doi: 10.1038/s41598-021-02916-6.
Mycotoxins represent a major concern for human and animal health because of their harmful effects and high occurrence in food and feed. Rapid immunoanalytical methods greatly contribute to strengthening the safety of our food supply by efficiently monitoring chemical contaminants, so high-affinity and specific antibodies have been generated for almost all internationally regulated mycotoxins. The only exception is patulin, a mycotoxin mainly produced by Penicillium expansum for which such a target has not yet been achieved. Accordingly, no point-of-need tests commonly used in food immunodiagnostics are commercially available for patulin. In the present study, three functionalized derivatives conforming to generally accepted rules in hapten design were firstly tested to generate suitable antibodies for the sensitive immunodetection of patulin. However, these conventional bioconjugates were unable to elicit the desired immune response, so an alternative strategy that takes advantage of the high electrophilic reactivity of patulin was explored. Patulin was reacted with 4-bromothiophenol, and the obtained adduct was used to produce antibodies with nanomolar affinity values. These results demonstrated for the first time that targeting the adduct resulting from the reaction of patulin with a thiol-containing compound is a promising approach for developing user-friendly immunoanalytical techniques for this elusive mycotoxin.
真菌毒素因其有害影响和在食品及饲料中的高发生率而对人类和动物健康构成重大威胁。快速免疫分析方法通过有效监测化学污染物,为加强我们的食品安全做出了巨大贡献,因此几乎所有国际监管的真菌毒素都产生了高亲和力和特异性抗体。唯一的例外是棒曲霉素,一种主要由扩展青霉产生的真菌毒素,目前尚未针对这种毒素实现这一目标。因此,没有用于食品免疫诊断的现场即时检测的方法在商业上可用于棒曲霉素。在本研究中,首先测试了三个符合半抗原设计普遍接受规则的功能化衍生物,以产生适合于棒曲霉素的灵敏免疫检测的合适抗体。然而,这些常规的生物缀合物未能引起所需的免疫反应,因此探索了一种利用棒曲霉素高亲电反应性的替代策略。棒曲霉素与 4-溴噻酚反应,然后用所得加合物产生具有纳摩尔亲和力值的抗体。这些结果首次证明,针对棒曲霉素与含巯基化合物反应生成的加合物进行靶向是开发针对这种难以捉摸的真菌毒素的用户友好型免疫分析技术的一种有前途的方法。