DEVICE AND METHOD FOR IDENTIFYING MYCOTOXINS
The invention relates to an apparatus and a process for detection of mycotoxins and to kits suitable for carrying out said process.
1 . A process for rapid detection of mycotoxins, comprising the following steps:
a) providing a thin-film waveguide comprising a first optically transparent wave-guiding layer (a) on top of a second optically transparent layer (b), with (b) having a lower refractive index than (a), to which waveguide specific and/or affinity binding partners are immobilized as a chemical or biochemical recognition element for mycotoxins and/or a binding partner in a spatially separated manner,
b) applying a mycotoxin(s)-containing sample and binding partners to the immobilized binding partners on said thin-film waveguide,
c) detecting a signal in the evanescent field due to the interaction of the binding partners immobilized on the thin-film waveguide with the mycotoxins from the sample and/or with the binding partners, and
d) determining the amount of mycotoxin(s) present in the sample.
2 . The process as claimed in claim 1 , which further comprises applying to the thin-film waveguide mono- or multilayers of organophosphoric acids of the following formula (I)
R—OPO 3 H 2 (I)
and/or organophosphonic acids of the following formula (II)
R—PO 3 H 2 (II)
and/or their salts, where
R is a C 10 to C 24 alkyl.
3 . The process as claimed in claim 2 , wherein the organophosphoric acids, organophosphonic acids and/or their salts are selected from the group consisting of organophosphoric acids, organophosphonic acids, organophosphates and organophosphonates, with R being unbranched C 10 to C 20 alkyl.
4 . The process as claimed in claim 1 , wherein the thin-film waveguide comprises an optically transparent wave-guiding layer (a) comprising oxides selected from the group consisting of TiO 2 , ZnO, Nb 2 O 5 , Ta 2 O 5 , HfO 2 and ZrO 2 .
5 . The process as claimed in claim 1 , wherein the binding partners are selected from the group consisting of anti-mycotoxin antibodies, anti-mycotoxin-antibody conjugates, mycotoxins, mycotoxin conjugates, fragments of anti-mycotoxin antibodies, mycotoxin-binding peptides, mycotoxin-binding anticalins mycotoxin-binding aptamers, mycotoxin-binding spiegelmers and mycotoxin-binding imprinted polymers.
6 . The process as claimed in claim 1 , wherein a labeling element is bound to mycotoxins by means of a protein.
7 . The process as claimed in claim 1 , wherein the sample is a food item for humans or animals or an extract of said food items or products which has been extracted with a solvent or solvent mixture.
8 . The process as claimed in claim 1 , which further comprises incubating the sample with the immobilized binding partners as chemical or biochemical recognition element and/or the binding partners less than 15 minutes before detection of the signal.
9 . The process as claimed in claim 1 , wherein the mycotoxins are selected from the group consisting of aflatoxins, ochratoxins, ergot alkaloids, patulin and fusarium toxins.
10 . The process as claimed in claim 1 , which further comprises detecting the mycotoxins in cereal extract even in the range from 0.1 pM to 100 nM mycotoxin.
11 . The process as claimed in claim 1 , wherein the detection is carried out by way of an immunoassay.
12 . An apparatus for carrying out a process for rapid detection of mycotoxins, the apparatus comprising a thin-film waveguide comprising a first optical transparent wave-guiding layer (a) on top of a second optical transparent layer (b), with (b) having a lower refractive index than (a).
13 . The apparatus as claimed in claim 12 , wherein the optically transparent layer (b) of the thin-film waveguide comprising a first optically transparent wave-guiding layer (a) on top of a second optically transparent layer (b), with (b) having a lower refractive index than (a), is made from silicates or from a transparent plastic.
14 . The apparatus as claimed in claim 12 , wherein the optically transparent wave-guiding layer (a) has a thickness in the range from 40 nm to 1000 nm.
15 . The apparatus as claimed in claim 12 , wherein excitation light is coupled into the optically transparent wave-guiding layer (a) by using one or more grating structures.
16 . The apparatus as claimed in claim 15 , wherein the grating structures usable for coupling in excitation light have a period in the range from 200 nm to 1000 nm.
17 . The apparatus as claimed in claim 15 , wherein the grating has a modulation transfer factor in the range from 3 nm to 60 nm.
18 . The apparatus as claimed in claim 15 , wherein the excitation light has a wavelength in the range from 300 nm to 1100 nm.
19 . The apparatus as claimed in claim 12 , which further comprises applied to the thin-film waveguide mono- or multilayers of organophosphoric acids of the following formula (I)
R—OPO 3 H 2 (I)
and/or organophosphonic acids of the following formula (II)
R—PO 3 H 2 (II)
and/or their salts, where
R is a C 10 to C 24 alkyl.
20 . The apparatus as claimed in claim 12 , wherein recognition elements are applied to the thin-film waveguide by way of up to 100 000 measurement fields in a two-dimensional arrangement.
21 . The apparatus as claimed in claim 20 , wherein more than 10 measurement fields per square centimeter are applied to the thin-film waveguide.
22 . A kit for rapid detection of mycotoxins, wherein the kit comprises at least one thin-film waveguide comprising a first optically transparent wave-guiding layer (a) on top of a second optically transparent layer (b), with (b) having a lower refractive index than (a), to which waveguide specific and/or affinity binding partners are immobilized as a chemical or biochemical recognition element for mycotoxins and/or a binding partner in a spatially separated manner.
23 . The kit as claimed in claim 22 , which comprises a.
24 . (canceled)