传感器类型
表面等离子共振(SPR)生物传感器
检测对象
奥卡达酸(okadaic acid, OA)、膝沟藻毒素-1(dinophysistoxin-1, DTX-1)、膝沟藻毒素-2(dinophysistoxin-2, DTX-2);样品基质为贻贝/贝类组织提取物及缓冲液标准
检测原理
该SPR免疫生物传感器采用竞争法。CM5芯片羧基经EDC/NHS活化后,用1 M乙二胺胺化,再以乙醇胺封闭残余NHS酯;随后OA-NHS衍生物共价固定于氨基表面,形成捕获层。检测时,样品中的QUB-OA-7单克隆抗体与芯片固定OA结合;若样品中存在OA、DTX-1或DTX-2,则毒素与芯片固定OA竞争结合抗体,使芯片表面结合的抗体量减少。SPR实时监测界面质量/折射率变化,响应单位RU随毒素浓度升高而降低,抑制率随浓度增加而升高。方法不依赖酶或荧光标记放大,主要依靠高亲和单克隆抗体和SPR实时光学读出。
检测灵敏度
IC50 (buffer, QUB-OA-7): OA 4.8 ng/ml;DTX-1 4.9 ng/ml;DTX-2 8 ng/ml;IC50 (matrix, QUB-OA-7): OA 80 ng/ml;DTX-1 89 ng/ml;DTX-2 113 ng/ml。
效应效果
与ELISA相比,SPR生物传感器筛选415个杂交瘤上清时检出17个阳性,无假阳性或假阴性;直接ELISA和间接ELISA分别漏检或误判部分克隆,且各需约500 µg OA制备偶联物,生物传感器全程仅用50 µg OA。单条CM5通道可完成超过600个分析循环而无性能下降。QUB-OA-7在缓冲液中对DTX-1交叉反应100%、对DTX-2为60%,与TEF(OA 1、DTX-1 1、DTX-2 0.6)一致;基质中为DTX-1 90%、DTX-2 71%。初步贻贝基质研究显示三种毒素均可在低于欧盟160 µg OA当量/kg贝肉限值水平被检测。
传感器的构成
- 基底/换能器:CM5传感器芯片(羧甲基化表面,SPR光学换能器)
- 活化层:EDC/NHS(1-乙基-3-(3-二甲基氨基丙基)碳二亚胺盐酸盐/N-羟基丁二酰亚胺,活化芯片羧基)
- 胺化层:1 M乙二胺(pH 8.5,将NHS酯转化为氨基表面)
- 封闭层:1 M乙醇胺盐酸盐(pH 8.5,封闭残余NHS酯)
- 捕获层:OA-NHS衍生物(奥卡达酸NHS酯共价固定于氨基表面,用于捕获抗体)
- 识别元件:QUB-OA-7单克隆抗体(抗OA MAb,溶液相结合芯片OA并交叉识别DTX-1/DTX-2)
中文摘要
奥卡达酸(OA)及其结构类似物膝沟藻毒素-1(DTX-1)和DTX-2是脂溶性海洋生物毒素,可在贝类中富集并引起腹泻性贝类中毒。现行法定参考方法为小鼠生物测定法,但存在伦理争议,且灵敏度和特异性有限。替代方法应快速、稳健、经济、特异且灵敏。已有免疫检测方法灵敏度较好,但通常不能同时检测所有贡献污染的OA类毒素,也不能按各毒素的相对毒性进行折算。本研究以OA-BTG免疫原免疫小鼠,制备抗OA单克隆抗体,并建立自动化SPR生物传感器筛选方法,与ELISA比较。筛选设计旨在提高获得可识别全部OA类毒素抗体的概率。结果获得一种独特单克隆抗体QUB-OA-7,其不仅与DTX-1和DTX-2交叉反应,而且在缓冲液中的交叉反应谱与OA类毒素的内在毒性当量因子一致。初步基质研究也支持该结果,表明该抗体是开发OA类毒素免疫化学检测方法的优良候选。
英文摘要
Okadaic acid (OA) and structurally related toxins dinophysistoxin-1 (DTX-1), and DTX-2, are lipophilic marine biotoxins. The current reference method for the analysis of these toxins is the mouse bioassay (MBA). This method is under increasing criticism both from an ethical point of view and because of its limited sensitivity and specificity. Alternative replacement methods must be rapid, robust, cost effective, specific and sensitive. Although published immuno-based detection techniques have good sensitivities, they are restricted in their use because of their inability to: (i) detect all of the OA toxins that contribute to contamination; and (ii) factor in the relative toxicities of each contaminant. Monoclonal antibodies (MAbs) were produced to OA and an automated biosensor screening assay developed and compared with ELISA techniques. The screening assay was designed to increase the probability of identifying a MAb capable of detecting all OA toxins. The result was the generation of a unique MAb which not only cross-reacted with both DTX-1 and DTX-2 but had a cross-reactivity profile in buffer that reflected exactly the intrinsic toxic potency of the OA group of toxins. Preliminary matrix studies reflected these results. This antibody is an excellent candidate for the development of a range of functional immunochemical-based detection assays for this group of toxins.