This application claims priority to Taiwanese Application No. 101111706, filed on Apr. 2, 2012.
1. Field of the Invention
The invention relates to a detecting technique, and more particularly to a device and a method for detecting existence of target biomolecules in a specimen.
2. Description of the Related Art
The specimen is first introduced to the multi-mode optical fiber 14 followed by a washing process. If the target biomolecules 12 exist in the specimen, the target biomolecules 12 are bound with the capture antibodies 11. Then, a suspension with antibody complexes 13 is introduced to the multi-mode optical fiber 14 followed by another washing process. Each of the antibody complexes 13 is composed of a metal nanoparticle 131 (e.g., gold nanoparticle) and antibodies 132 that are labeled with fluorescence molecules 133, that are coated on the metal nanoparticle 131, and that are capable of binding with the target biomolecules 12, so that the nanoparticles 131 with the labeled antibodies 132 are immobilized on the multi-mode optical fiber 14 when the target biomolecules 12 exist in the specimen.
In
In the aforesaid method, detection sensitivity may be limited due to the following reason: intensity fluctuation of the second incident beam 202 may result in noise in the fluorescence signal. In addition, the use of the multi-mode optical fiber 14 disfavors high-throughput detection.
Therefore, an object of the present invention is to provide a detecting device that may have better efficiency to excite fluorescence molecules and better detection sensitivity.
According to one aspect of the present invention, a detecting device is adapted for detecting existence of target biomolecules in a specimen with use of antibody complexes. Each of the antibody complexes is composed of a metal nanoparticle and antibodies that are labeled with fluorescence molecules, that are bound to the metal nanoparticle, and that are capable of binding with the target biomolecules. The detecting device comprises:
a capture member coated with capture antibodies that are capable of binding with the target biomolecules;
wherein, when the target biomolecules exist in the specimen, the target biomolecules are bound with the capture antibodies and the antibodies of the antibody complexes so that the antibody complexes are immobilized on the capture member;
a light emitting unit operable to emit a first incident beam directed to the capture member for exciting the fluorescence molecules to generate a fluorescence signal,
wherein the first incident beam is one of a beam with an intensity modulated using an optical chopper, and a beam composed of two mutually correlated parallel linearly-polarized beam components having different frequencies,
wherein a localized surface plasmon field of the metal nanoparticle is excited by the first incident beam to enhance excitation of the fluorescence molecules when the antibody complexes are immobilized on the capture member; and
a signal processing unit disposed to receive the fluorescence signal and operable to determine existence of the target biomolecules in the specimen based upon receipt of the fluorescence signal.
Another object of the present invention is to provide a detection method that may have better efficiency to excite fluorescence molecules and better detection sensitivity.
According to another aspect of the present invention, a method is adapted for detecting existence of target biomolecules in a specimen with use of antibody complexes. Each of the antibody complexes is composed of a metal nanoparticle and antibodies that are labeled with fluorescence molecules, that are bound to the metal nanoparticle, and that are capable of binding with the target biomolecules. The method comprises:
a) introducing the specimen to a capture member coated with capture antibodies that are capable of binding with the target biomolecules, followed by a washing process and introducing the antibody complexes to the capture member;
wherein, when the target biomolecules exist in the specimen, the target biomolecules are bound with the capture antibodies and the antibodies of the antibody complexes so that the antibody complexes are immobilized on the capture member;
b) washing the capture member for removing the unbound antibody complexes and the unbound target biomolecules to result in a treated specimen;
c) using a light emitting unit to emit a first incident beam directed to the capture member for exciting the fluorescence molecules to generate a fluorescence signal,
wherein the first incident beam is one of a beam with an intensity modulated using an optical chopper, and a beam composed of two mutually correlated parallel linearly-polarized beam components having different frequencies,
wherein a localized surface plasmon field of the metal nanoparticle is excited by the first incident beam to enhance excitation of the fluorescence molecules when the antibody complexes are immobilized on the capture member; and
d) using a signal processing unit to receive the fluorescence signal and to determine existence of the target biomolecules in the specimen based upon receipt of the fluorescence signal.
Other features and advantages of the present invention will become apparent in the following detailed description of the preferred embodiments with reference to the accompanying drawings, of which:
Referring to
The specimen is first introduced to the microtiter plate followed by a washing process. If the target biomolecules 12 exist in the specimen, the target biomolecules 12 are bound with the capture antibodies 11. Then, a suspension with antibody complexes 13 is introduced to the microtiter plate followed by another washing process. Each of the antibody complexes 13 is composed of a metal nanoparticle 131 (e.g., gold nanoparticle) and antibodies 132 that are labeled with fluorescence molecules 133, that are coated on the metal nanoparticle 131, and that are capable of binding with the target biomolecules 12, so that the nanoparticles 131 with the labeled antibodies 132 are immobilized on the well surfaces of the wells 81 of the microtiter plate when the target biomolecules 12 exist in the specimen. On the other hand, when the target biomolecules 12 do not exist in the specimen, the nanoparticles 131 with the labeled antibodies 132 will be removed from the microtiter plate during the washing process.
Referring to
In order to enhance differentiation between the fluorescence signal and stray light in the background, the intensity of the first incident beam 303 is preferable to be modulated periodically to generate the periodic fluorescence signal.
Intensity of the first incident beam 303 may be modulated periodically in several ways. The intensity waveform of the first incident beam 303 generated from the optical chopper 22 as shown in
In order to raise measurement sensitivity, the first incident beam 303 may be generated to be a beam composed of two mutually correlated parallel linearly-polarized beam components having different frequencies and propagating along a same optical path as shown in
The light emitting unit 6 includes a light source 3, a polarization converter 4, and a light guide 7. The light source 3 is used to generate coherent first and second polarized beams 301, 302 that have different frequencies and mutually orthogonal polarization directions and that propagate along a same optical path. In this embodiment, the light source 3 includes a laser source 31, a polarization beam combiner 34, and an electro-optic modulator 32. The polarization beam combiner 34 includes a half-wave plate 341 and a first linear polarizer 342. The laser source 31 is operable to continuously emit a linearly-polarized laser beam with a constant angular frequency ω0, and the linearly-polarized laser beam passes through the polarization beam combiner 34 to reach the electro-optic modulator 32. The electro-optic modulator 32 is driven by a high-voltage signal with a frequency ω to modulate the linearly-polarized laser beam, so as to generate the first and second polarized beams 301, 302 that respectively have angular frequencies ω0+ω/2 and ω0−ω/2, and to generate a reference electrical signal 305 with the frequency ω. The Jones vectors of the electric field E0 of the first and second polarized beams 301, 302 are described by:
where A0 is an amplitude of the electric field. The first and second polarized beams 301, 302 then pass through the polarization converter 4 for generating the first incident beam 303. In this embodiment, the polarization converter 4 includes a second linear polarizer 41 for adjusting polarization directions of the first and second polarized lights 301, 302 to be mutually parallel, and a beam splitter 42 for splitting the beam through the second linear polarizer 41 into the first incident beam 303 and a second incident beam 304. The light guide 7 is used for directing the first incident beam 303 to the well 81 of the microtiter plate in this embodiment. The light guide 7 may be an optical fiber or a waveguide.
Since the first incident beam 303 is composed of two beams having different frequencies, the excited fluorescence signal thus has an intensity modulated in a harmonic wave with a single frequency due to the optical heterodyne. The fluorescence signal then propagates to the signal processing unit 5 through an optical filter 9. The optical filter 9 allows propagation of the fluorescence signal to the signal processing unit 5, and prevents stray light, which may result from reflection or transmission of the first incident beam 303 by the microtiter plate, from reaching the signal processing unit 5, thereby reducing background noise. In
The signal processing unit 5 includes a first light processor having a first lock-in amplifier 52 and a first light detector 54, a second light processor having a second lock-in amplifier 53 and a second light detector 55, and a signal processor 51. The first light detector 54 is used for receiving the fluorescence signal and is operable to generate a first converted electrical signal based upon receipt of the fluorescence signal. The first lock-in amplifier 52 is coupled to the first light detector 54 and the electro-optic modulator 32 to respectively receive the first converted electrical signal and the reference electrical signal 305, and extracts a first electrical signal with less noise from the first converted electrical signal using the reference electrical signal 305 as reference. The second light detector 55 receives and converts the second incident light 304 into a second converted electrical signal. The second lock-in amplifier 53 is coupled to the second light detector 55 and the electro-optic modulator 32 to respectively receive the second converted electrical signal and the reference electrical signal 305, and extracts a second electrical signal with less noise from the second converted electrical signal using the reference electrical signal 305 as reference. The signal processor 51 is coupled to the first and second lock-in amplifiers 52, 53 to respectively receive the first and second electrical signals therefrom, and is operable to determine existence of the target biomolecules 12 in the specimen according to an amplitude ratio of the first and second electrical signals.
It should be noted that, in the first preferred embodiment, the signal processing unit 5 may receive the fluorescence signal at an open side of the microtiter plate to perform a reflective detection as shown in
Referring to
Referring to
Step 71: The specimen is introduced to the capture member 8 coated with the capture antibodies 11 that are capable of binding with the target biomolecules 12, followed by a washing process and introducing the antibody complexes 13 to the capture member 8.
Step 72: The capture member 8 is washed for removing the unbound antibody complexes 13 and the unbound target biomolecules 12 to result in a treated specimen that is immobilized on the surface of the capture member 8. When the target biomolecules 12 exist in the specimen, the treated specimen is formed with the bound capture antibodies 11, the target biomolecules 12, and the antibody complexes 13. On the other hand, the capture antibodies 11 are included in the treated specimen without binding with the target biomolecules 12 and the antibody complexes 13 when the target biomolecules 12 do not exist in the specimen.
Step 73: As shown in
Step 74: The signal processing unit 5 is used to receive the fluorescence signal and to determine existence of the target biomolecules 12 in the specimen based upon receipt of the fluorescence signal.
Referring to
To sum up, according to this invention, the first incident beam 303 is directed to the specimen on the capture member 8 not only to excite the fluorescence molecules but also the localized surface plasmon field of the metal nanoparticles 131, resulting in better efficiency of fluorescence excitation compared to that using the evanescent wave in the prior art. In addition, the intensity of the fluorescence signal is modulated in a harmonic wave with a single frequency by use of the beam composed of polarized beam components with two frequencies, so that the lock-in amplifiers 52, 53 may be used to raise sensitivity of detection.
While the present invention has been described in connection with what are considered the most practical and preferred embodiments, it is understood that this invention is not limited to the disclosed embodiments but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
Number | Date | Country | Kind |
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101111706 | Apr 2012 | TW | national |