Method for producing amino acid crystals and method for producing protein crystals
10138269 ยท 2018-11-27
Assignee
Inventors
Cpc classification
C30B7/00
CHEMISTRY; METALLURGY
C07C229/08
CHEMISTRY; METALLURGY
C07C229/08
CHEMISTRY; METALLURGY
International classification
C03B7/00
CHEMISTRY; METALLURGY
C07C229/08
CHEMISTRY; METALLURGY
Abstract
A method for producing a crystalline amino acid involves a step of irradiating a saturated solution of an amino acid with an optical vortex and depositing a crystalline amino acid in the saturated solution of amino acid. It is desirable that the amino acid is at least one of alanine, arginine, asparagine, asparagine acid, cysteine, glutamine, glutamine acid, glycine, histidine, isoleucine, leucine, lysine, methionine, phenylalanine, proline, serine, threonine, tryptophan, tyrosine, valine, and derivatives thereof.
Claims
1. A method for producing a single crystalline amino acid comprising: a step of irradiating a saturated solution of an amino acid with a circularly polarized optical vortex, and depositing the crystalline amino acid in said saturated solution of amino acid.
2. The method for producing the single crystalline amino acid according to claim 1, wherein said amino acid comprises at least one member selected from the group consisting of alanine, arginine, asparagine, asparagine acid, cysteine, glutamine, glutamine acid, glycine, histidine, isoleucine, leucine, lysine, methionine, phenylalanine, proline, serine, threonine, tryptophan, tyrosine, valine, and derivatives thereof.
3. A method for producing a single crystal protein, comprising: a step of irradiating a saturated solution of protein with a circularly polarized optical vortex, and depositing the crystal protein in said saturated solution of protein.
4. The method for producing the single crystalline amino acid according to claim 1, wherein the range of energy of said circularly polarized optical vortex is from 1-1.5 W.
5. The method for producing the single crystal protein according to claim 3, wherein the range of energy of said circularly polarized optical vortex is from 1-1.5 W.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
BEST MODE FOR CARRYING OUT THE PRESENT INVENTION
(4) Hereinafter, embodiments and examples of the present invention are described with reference to the drawings. However, the present invention can be accomplished with different embodiments and is not limited to the embodiments or examples described below.
(5) A method for producing a crystalline amino acid of this embodiment comprises a step of irradiating a saturated solution of an amino acid with a circular polarized optical vortex, and depositing a crystalline amino acid in the saturated solution of the amino acid.
(6) In this embodiment, as mentioned-above, optical vortex means a light wave which has a characteristic such as angular momentum caused from phase singularity (orbital angular momentum) and doughnut-type intensity distribution.
(7) It is desirable that the way for generating the optical vortex is to use an optical vortex laser device (hereafter referred as to the laser device) which is as shown in
(8) Here,
(9) As shown in this figure, the laser device 1 has a laser source 2 which emits laser light B1, an optical vortex generating unit 3 which generates optical vortex B2 based on the laser light B1 which is emitted from the laser source 2, a quarter wave plate 4 which generates a circular polarized optical vortex B3 based on the optical vortex B2 which is generated by the optical vortex generating unit 3, and a light condensing unit 5 which concentrates the circular polarized optical vortex.
(10) In this embodiment, as described above, the laser source 2 emits a laser light B2.
(11) It is desirable that the laser source 2 is a solid state laser such as a YAG laser, a dye laser, a gas laser such as a HeNe laser, or a semiconductor laser such as a LD laser. But it is not limited to that.
(12) However, it is desirable that the range of the wavelength of the laser light which the laser light source 2 emits is the range that the object to be irradiated can occur a photoisomerization reaction. Further, it is desirable that the range of the wavelength of the light is in from ultraviolet region to infrared region. Specifically, it is more desirable that the wavelength is from 350 nm to 1.3 m. It is adjustable by selecting appropriate material.
(13) Moreover, in this embodiment, it is desirable that the laser source 2 is a continuous oscillating laser light source which can emit continuous wave laser light.
(14) By using continuous wave laser light, it is possible to keep irradiating an optical vortex to a polymer.
(15) Incidentally, it is possible to use a pulsed laser. However, in this case, it is desirable that the repetition frequency is sufficiently high so that the photoisomerization can be maintained.
(16) Moreover, in this embodiment, the optical vortex generating unit 3 is used for generating an optical vortex B2 from the laser light B1 which is emitted from the laser source 2.
(17) It is desirable that the optical vortex generation unit 3 is a phase plate, a spatial phase modulator, or a multimode area fiber amplifier, but is not limited to those.
(18) Moreover, it is desirable that the optical vortex generation unit 3 is integrated with the laser source 2 and generates the optical vortex directly.
(19) It is more desirable that the optical vortex is a coherent optical vortex.
(20) In this embodiment, the quarter wave plate 4 is used for changing the optical vortex into circular polarized light B3.
(21) If the optical vortex laser generating unit 3 can generate circular polarized light, the quarter wave plate 4 can be omitted.
(22) In this embodiment, by the quarter wave plate 4, it is possible to form a crystalline amino acid in a saturated solution of the amino acid.
(23) Moreover, in this embodiment, the light condensing unit 5 is used for concentrating the light and irradiating the light on the surface of a saturated solution of the amino acid.
(24) It is desirable that the light condensing unit 5 contains a microscope objective lens, and is not limited to that as long as it is possible for the circular optical vortex to be irradiated efficiently. Then, the beam diameter can be adjusted by the microscope objective lens.
(25) Moreover, in this embodiment, it is desirable that the laser device has an observation unit 6.
(26) Further, it is desirable that the observation unit 6 has a beam splitter 61, which splits the optical vortex condensed by the light condensing unit 5 into two lights, and an imaging unit 62, which observes the light reflected from the saturated solution of the amino acid but is not limited to that.
(27) It is desirable that the imaging unit 62 is a CCD camera. Further, it is desirable that image processing is performed by using the CCD camera and a data processing apparatus such as a personal computer, connected to each other.
(28) Moreover, in this embodiment, amino acid means an organic compound which has an amino group and a carboxyl group, and it includes a compound and a derivative of it, which constitutes a protein of a living organism.
(29) An example of an amino acid which constitutes a protein of a living organism is alanine, arginine, asparagine, asparagine acid, cysteine, glutamine, glutamine acid, glycine, histidine, isoleucine, leucine, lysine, methionine, phenylalanine, proline, serine, threonine, tryptophan, tyrosine, or valine, but is not limited to these.
(30) Moreover, in this embodiment, saturated solution of amino acid means a solution in which the amino acid is dissolved up to its solubility level.
(31) In the case that many amino acids can be dissolved in the solution, it is necessary that at least one amino acid is dissolved in a saturated state but it is desirable that all of the amino acids are dissolved in a saturated state.
(32) Further, pure water is desirable as a solvent for dissolving the amino acid. However, it is not limited as long as it can dissolve the amino acid.
(33) Moreover, in this embodiment, it is desirable that the energy of the optical vortex is within an appropriate range. Because if the energy of the optical vortex is too small, a crystalline amino acid cannot be formed, and if it is too high, the crystallinity of the crystalline amino acid may be lower.
(34) The desirable range of the energy of the optical vortex is from 1 W to 1.5 W, but it is not limited that and it is adjustable according to material.
(35) Moreover, in this embodiment, the irradiation time of the optical vortex is adjustable so long as the crystal can be formed.
(36) Especially, in this embodiment, it is possible to form a crystal with a high single crystallinity in a very short time such as about a few tens of seconds.
(37) In this embodiment, it is possible to form the crystalline amino acid in a saturated solution of the amino acid by irradiating the optical vortex into the saturated solution. Specifically, it is possible to form the crystalline amino acid with a high crystallinity (single crystal, crystal structure).
(38) The working mechanism of forming the crystalline amino acid in the solution is not currently clear.
(39) However it is thought that a core can be formed by radiating the optical vortex, the orbital motion of the core makes the concentration in the solution uniform, and the crystallinity of the crystalline amino acid can dramatically be higher.
(40) As a result from the above, by the embodiment of the present invention, it is possible to provide a new application of an optical vortex.
(41) Further, the crystalline amino acid has a high single crystallinity, and it is possible to produce the crystal much faster than known arts.
(42) Then, it is expected to produce a great benefit in the fields of medicine, chemistry, feed, and food.
(43) Further, in this embodiment, the amino acid was described as an example. But a protein can be used as an example the same as the amino acid.
(44) When a protein is used, each amino acid in the above description is to be read as protein.
(45) Further, in the case of a protein, for example, lysozyme is desirable.
(46) Furthermore, the crystallization with a high crystallinity of an organic compound, which shows a non-linearity, such as N,N-diethylaminosulfur trifluoride (DAST) is expected.
Example
(47) The effect of the present invention was confirmed by the experiment below. The detail will be described as below.
(48) (Glycine Saturated Deuterium Oxide Solution)
(49) Nd:YVO.sub.4 laser whose center wavelength is 1064 nm, spiral phase plate (SPP), quarter wave plate and an objective lens (NA-0.65) were used in the optical system shown in
(50) Then, the light was irradiated to a saturated deuterium oxide solution in which glycine was dissolved up to its solubility limit via the components.
(51) The diameter of the laser spot which was radiated to the amino acid saturated deuterium oxide solution was (Ppm.
(52) The direction of the circular-polarized light and the wave surface of the optical vortex was set in the same direction.
(53) The total angular momentum (J=1+s) of the circularly-polarized optical vortex, which is the sum of the orbital angular momentum
(54) (l=1 or 1) and the spin angular momentum (s=1 or 1), was changeable.
(55) Then, a crystalline amino acid was produced in the saturated amino acid deuterium oxide solution.
(56) The result is shown in
(57) As a result, a crystalline amino acid deposition immediately began after irradiating with the optical vortex. Then, an alpha-type crystal of glycine, whose size is 1 mm1 mm, was obtained in about a few tens of seconds from the start of irradiation.
(58) The plane direction mosaic was 0.5, and a crystal with a very high crystallinity was obtained.
Comparison Example
(59) Generating a crystalline amino acid was tried in the same condition with the above example of glycine except for using a linear polarized Gaussian beam laser light.
(60) The result is shown in
(61) In this result, the amino acid was educed, but it was polycrystalline.
INDUSTRIAL APPLICABILITY
(62) The present invention is industrially applicable as a method for producing a crystalline amino acid and a protein crystal.