The present invention relates to surface plasmon resonance (SPR) sensors, more specifically, to a surface plasmon resonance sensor suited for detecting the interaction of biomolecules such as protein and DNA.
Recently, the surface plasmon resonance sensor is used as the sensor for detecting the presence and the extent of the interaction of the biomolecules.
When the light from the optical system 5 enters the prism 4 so as to be totally reflected at the interface of the metal thin film 3 and the substrate 2, evanescent wave having electric field distribution is produced at the surface of the metal thin film 3. When the wave number and the frequency of the evanescent light match the wave number and the frequency of the surface plasmon, they resonate and the energy of the incident light transforms to the surface plasmon, whereby the reflected light decreases.
The angle of incidence (resonance angle) for the resonance to occur depends on the index of refraction of the surface of the metal thin film 3. The resonance angle changes since the index of refraction of the surface changes when the acceptor 7 immobilized at the metal thin film 3 and the ligand 8 in the sample solution interact. The interaction of the biomolecules is detected by measuring such change of angle.
A local plasmon resonance sensor of irradiating the light with respect to the substrate in which the metal particles instead of the metal thin film are fixed in a film form, and measuring the absorption of the light transmitted through the metal particles to detect the change in the index of refraction in the vicinity of the surface of the metal particles is proposed (patent document 1).
Patent Document: Japanese Patent No. 3452837
However, as the surface plasmon resonance sensor 1 shown
Furthermore, although the local plasmon sensor disclosed in patent document 1 uses the metal particle film instead of the metal thin film to localize the generating electric field in the vicinity of the surface of the metal particles and to reduce the influence of the change in the index of refraction at the liquid solution part, it does not eliminate the influence of the liquid solution part, and thus to what extent the change at the liquid solution part influences the measurement result is not known.
The present invention aims to, in view of the technical problems described above, detect the change in the index of refraction based on the interaction of the molecules at the metal surface and the change in the index of refraction based on the change at the solvent part.
The surface plasmon resonance sensor chip according to the present invention includes a transparent substrate; and a metal layer including concave parts or convex parts on a surface and a flat part positioned between the concave parts or the convex parts, and formed so as to cover the surface of the substrate.
In one aspect of the surface plasmon resonance sensor chip according to the present invention, the substrate is a substrate with a flat surface, and the convex parts are a plurality of metal particles immobilized spaced apart from each other on a metal thin film, which is the flat part.
In another aspect of the surface plasmon resonance sensor chip according to the present invention, the substrate is a substrate with a flat surface, and the concave parts or the convex parts are a plurality of microscopic concave parts and convex parts formed spaced apart from each other on a metal thin film, which is the metal layer, the concave part not passing through the metal thin film.
In another aspect of the surface plasmon resonance sensor chip according to the present invention, a plurality of microscopic convex parts or microscopic concave parts are formed spaced apart from each other on one surface of the substrate, and the metal layer is formed on the one surface of the substrate so as to reflect the shape of the microscopic convex parts or the microscopic concave parts.
In another further aspect of the surface plasmon resonance sensor chip according to the present invention, the material of the metal layer is gold or silver.
A method of manufacturing the surface plasmon resonance sensor chip according to the present invention includes the steps of forming a metal thin film on one surface of a substrate through sputtering or deposition; chemically modifying the surface of the metal thin film; and immersing the chemically modified substrate into a liquid solution of metal particles.
A method of manufacturing the surface plasmon resonance sensor chip according to the present invention includes the steps of immersing one surface of a substrate in a liquid solution of aminosilane coupling agent; immersing the substrate into a liquid solution of metal particles; cleaning the substrate; and forming a metal thin film on the one surface through sputtering or deposition.
The surface plasmon resonance sensor according to the present invention includes a surface plasmon resonance sensor chip according to the present invention; a prism arranged on the side of the chip not formed with the metal layer; a light source for irradiating light on the chip through the prism; and a light detector for measuring the reflectivity of the light by the metal layer.
A method of measurement of biomolecules according to the present invention is a method of measurement of biomolecules of irradiating the light from the optical system to the surface plasmon resonance sensor chip according to the present invention, totally reflecting the light at the interface of the metal layer and the substrate of the chip, and measuring the intensity of reflected light with the light detector; wherein the presence or the extent of interaction of biomolecules is measured from the change in intensity of the reflected light with respect to the change in frequency of the irradiated light.
A method of detecting change in the index of refraction according to the present invention is a method of detecting change in index of refraction of irradiating the light from the optical system to the surface plasmon resonance sensor chip according to the present invention, totally reflecting the light at the interface of the metal layer and the substrate of the chip, and measuring the intensity of reflected light with the light detector; wherein the change in index of refraction based on interaction of molecules at the metal layer surface, and change in index of refraction based on interaction with solvent in the vicinity of the metal layer are respectively detected by measuring the change in the resonance angle of the reflected light.
The surface plasmon resonance sensor of the present invention has the metal layer formed on one surface of the prism configured by a flat part formed into a thin film, and convex parts made up of metal particles and the like arranged spaced apart from each other, where the resonance angles arising from the flat part and the convex parts are respectively obtained when the light is entered into the metal layer of such configuration. The change in the index of refraction based on the interaction of the biomolecules at the metal surface, and the change in the index of refraction based on the change at the solvent part are respectively detected by using such features.
The preferred embodiment of the present invention will now be described with reference to the drawings.
The metal layer 103 is configured by a flat part 109 formed into a thin film, and metal particles 110 arranged spaced apart from each other in the present embodiment, where the flat part 109 is exposed between the adjacent metal particles 110. The thickness of the flat part 109 is preferably between 20 and 60 nm, and the diameter of the metal particles 110 is preferably between 20 and 150 nm. The metal layer 103 is typically made of gold or silver but is not limited thereto. The acceptor 107 such as an antibody is immobilized at the surface of the metal layer 103. The metal layer 103 contacts the sample solution 111 containing ligand 8 such as an antigen, and the ligand 108 interacts with the acceptor 107 at the surface of the metal layer 103.
In such configuration, the evanescent wave is produced at the surface of the metal layer 103 when the light from the optical system 5 enters the prism 104 so as to be totally reflected at the interface of the metal layer 103 and the substrate 102. When the wave number and the frequency of the evanescent light, and the wave number and the frequency of the surface plasmon match, they resonate and the reflected light decreases. The reflectivity of the reflected light is measured by the light detector 106.
The electric field of the surface plasmon excited at the surface of the metal layer 103 will now be described.
When both the localization mode and the propagation mode exist as in the present embodiment, the mode of the surface plasmon becomes a hybrid mode (a-d, c-b) expressed by the dispersion function as shown in
However, two resonance peaks (A, B) are obtained, as shown in
Furthermore, one resonance peak (A. B) is respectively obtained, as shown in
As shown in
Specifically, since the change Δλ1 in the resonance peak is determined by the change Δn1 in the index of refraction in the vicinity of the metal film and the change Δn2 in the index of refraction of the solvent part, if the thickness of the metal particle layer is known, the change λ1 in the resonance peak can be expressed as:
Δλ1=F(Δn1,Δn2) (1).
Similarly, since the change Δλ2 in the resonance peak is determined by the changes Δn1 and Δn2 in the index of refraction, the change Δλ2 in the resonance peak can be expressed as:
Δλ2=G(Δn1,Δn2) (2).
The functions F and G are experimentally obtained in advance. The changes Δn1, Δn2 in the index of refraction can be obtained from the changes Δλ1, Δλ2 in the wavelength by solving the equations (1) and (2) since the changes Δλ1 and Δλ2 in the wavelengths can be measured in the hybrid mode.
The method of manufacturing the metal layer 103 used in the present embodiment will now be described.
The first manufacturing method includes a step of cleaning the substrate made of glass or resin, a step of forming a gold thin film on the substrate through deposition or sputtering, a step of forming a monolayer of dithiol (e.g., 1, 10-decandithiol) on the metal thin film, and a step of immersing the substrate into a liquid solution of gold particles. According to this manufacturing method, the gold particles are immobilized at the gold thin film by way of dithiol.
The second manufacturing method includes a step of cleaning the substrate made of glass or resin, a step of immersing one surface of the substrate into the liquid solution of aminosilane coupling agent (e.g., 3-aminopropyltrimethoxysilane), a step of immersing the relevant surface into the liquid solution of gold particles, a step of cleaning the substrate, and a step of forming a metal thin film on the relevant surface through sputtering or deposition. In the present manufacturing method, the gold particles are first immobilized on the substrate, and then the flat part 109 made of gold thin film is formed between the gold particles.
The shape and the arranging distance of the microscopic concave and convex parts are not limited to those shown in
The substrate 102 formed with microscopic concave and convex parts on the surface used in the present embodiment may be formed or copied by taking the shape of the biomolecules such as metal particles or proteins.
The surface plasmon resonance sensor according to the present invention is obviously effective in detecting the presence and the extent of interaction in the antigen-antibody reaction, but is also applicable in analyzing various biochemical reactions.
Number | Date | Country | Kind |
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2004-036424 | Feb 2004 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP05/02045 | 2/10/2005 | WO | 7/2/2007 |