ION IMPLANTATION OF NEUTRON CAPTURE ELEMENTS INTO NANODIAMOND PARTICLES TO FORM COMPOSITION FOR NEUTRON CAPTURE THERAPY USAGE
20170326236 · 2017-11-16
Inventors
Cpc classification
A61K41/0095
HUMAN NECESSITIES
A61K31/704
HUMAN NECESSITIES
A61K47/6929
HUMAN NECESSITIES
A61K41/009
HUMAN NECESSITIES
A61P35/00
HUMAN NECESSITIES
International classification
A61K41/00
HUMAN NECESSITIES
Abstract
A composition for neutron capture therapy and a method of preparing the same are provided. The composition includes at least one nanodiamond particle and at least one neutron capture element, in which the at least one neutron capture element is embedded into the at least one nanodiamond particle by using an ion implantation system.
Claims
1. A composition for neutron capture therapy, comprising: at least one nanodiamond particle and at least one neutron capture element, wherein the at least one neutron capture element is embedded into the at least one nanodiamond particle by using an ion implantation system.
2. The composition for neutron capture therapy as claimed in claim 1, wherein the at least one neutron capture element comprises boron-10 or gadolinium-157.
3. The composition for neutron capture therapy as claimed in claim 1, wherein the ion implantation system comprising: an ion source assembly, for generating ions; an extraction assembly, for extracting the ions from the ion source assembly to form an ion beam; an analyzing magnet, for selecting the at least one neutron capture element from the ion beam; and an end station, for supporting a workpiece which holds the at least one nanodiamond particle and located in a path of the ion beam such that the at least one neutron capture element is implanted into the workpiece thereby to embed the at least one neutron capture element into the at least one nanodiamond particle.
4. The composition for neutron capture therapy as claimed in claim 1, wherein the ion implantation system comprising a plasma immersion ion implantation.
5. The composition for neutron capture therapy as claimed in claim 1, further comprising at least one chemotherapeutic drug, wherein the at least one chemotherapeutic drug is conjugated with the at least one nanodiamond particle embedded with the at least one neutron capture element.
6. The composition for neutron capture therapy as claimed in claim 5, wherein the at least one chemotherapeutic drug is selected from the group consisting of doxorubicin and daunorubicin.
7. The composition for neutron capture therapy as claimed in claim 1, further comprising at least one neutron capture therapy drug coupled with the at least one nanodiamond particle embedded with the at least one neutron capture element for targeted delivery of the composition to tumor cells.
8. The composition for neutron capture therapy as claimed in claim 7, wherein the at least one neutron capture therapy drug is selected from the group consisting of BPA, BSH, and BSH-3R.
9. The composition for neutron capture therapy as claimed in claim 1, further comprising at least one drug delivery agent connected with the at least one nanodiamond particle embedded with the at least one neutron capture element to deliver the at least one nanodiamond particle embedded with the at least one neutron capture element to tumor cells for performing neutron capture therapy.
10. A method of preparing a composition for neutron capture therapy, comprising providing a workpiece which holds at least one nanodiamond particle; disposing the workpiece on an ion implantation system; and embedding at least one neutron capture element into the at least one nanodiamond particle by using the ion implantation system.
11. The method of preparing a composition for neutron capture therapy as claimed in claim 10, wherein the at least one neutron capture element comprises boron-10 or gadolinium-157.
12. The method of preparing a composition for neutron capture therapy as claimed in claim 10, wherein the step of embedding at least one neutron capture element into the at least one nanodiamond particle by using the ion implantation system comprises: generating ions by an ion source assembly of the ion implantation system; extracting the ions from the ion source assembly to form an ion beam by an extraction assembly of the ion implantation system; selecting the at least one neutron capture element from the ion beam by an analyzing magnet of the ion implantation system; and implanting the at least one neutron capture element into the workpiece so as to embed the at least one neutron capture element into the at least one nanodiamond particle.
13. The method of preparing a composition for neutron capture therapy as claimed in claim 12, wherein the workpiece is disposed and supported by an end station of the ion implantation system, and the end station is located at a path of the ion beam.
14. The method of preparing a composition for neutron capture therapy as claimed in claim 10, wherein the ion implantation system comprises a plasma immersion ion implantation.
15. The method of preparing a composition for neutron capture therapy as claimed in claim 10, further comprising conjugating at least one chemotherapeutic drug with the at least one nanodiamond particle embedded with the at least one neutron capture element.
16. The method of preparing a composition for neutron capture therapy as claimed in claim 15, wherein the at least one chemotherapeutic drug is selected from the group consisting of doxorubicin and daunorubicin.
17. The method of preparing a composition for neutron capture therapy as claimed in claim 10, further comprising coupling at least one neutron capture therapy drug to the at least one nanodiamond particle embedded with the at least one neutron capture element for targeted delivery of the composition to tumor cells.
18. The method of preparing a composition for neutron capture therapy as claimed in claim 17, wherein the at least one neutron capture therapy drug is selected from the group consisting of BPA, BSH, and BSH-3R.
19. The method of preparing a composition for neutron capture therapy as claimed in claim 10, further comprising connecting at least one drug delivery agent with the at least one nanodiamond particle embedded with the at least one neutron capture element to deliver the at least one nanodiamond particle embedded with the at least one neutron capture element to tumor cells for performing neutron capture therapy.
20. A method of performing neutron capture therapy in a subject, comprising administering a composition comprising at least one nanodiamond particle and at least one neutron capture element to the subject, wherein the at least one neutron capture element is embedded into the at least one nanodiamond particle by using an ion implantation system.
21. A composition for neutron capture therapy, comprising: at least one nanodiamond particle; at least one neutron capture element, wherein the at least one neutron capture element is embedded into the at least one nanodiamond particle; and an agent for facilitating the treatment of tumor cells being connected with the nanodiamond particle embedded with the at least one neutron capture element.
22. The composition for neutron capture therapy as claimed in claim 21, wherein the agent is chemotherapeutic drug.
23. The composition for neutron capture therapy as claimed in claim 22, wherein the chemotherapeutic drug is selected from the group consisting of doxorubicin and daunorubicin.
24. The composition for neutron capture therapy as claimed in claim 21, wherein the agent is neutron capture therapy drug for targeted delivery of the composition to the tumor cells.
25. The composition for neutron capture therapy as claimed in claim 24, wherein the neutron capture therapy drug is selected from the group consisting of BPA, BSH, and BSH-3R.
26. The composition for neutron capture therapy as claimed in claim 21, wherein the agent is a drug delivery agent to deliver the at least one nanodiamond particle embedded with the at least one neutron capture element to the tumor cells for performing neutron capture therapy.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] In order to illustrate the technical solutions in the embodiments of the present invention or in the prior art more clearly, the following briefly introduces the accompanying drawings required for describing the embodiments or the prior art. The accompanying drawings in the following description are merely some embodiments of the present invention, and persons of ordinary skill in the art may still derive other drawings from these accompanying drawings without creative effort.
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DETAILED DESCRIPTION OF THE INVENTION
[0039] Please refer to the accompanying drawings, similar parts are denoted with the same reference numerals. The following description is based on the particular embodiments of the present invention, and they should not be construed as limiting the invention to the other embodiments which are not discussed in detail herein.
[0040] Please refer to
[0041] The neutron capture elements 220 are selected from atoms having a high neutron capture cross section to capture neutrons, such as boron-10, gadolinium-157, etc., so the composition 200 is suitable for use in NCT, where the nanodiamond particles 210 serve as a carrier for in vivo delivery of the neutron capture elements 220. Be it known that malignant brain tumor, glioblastoma multiforme (GBM) is a difficult tumor to treat and cure. The median survival time is less than 15 months after various therapies including surgical tumor resection, radiotherapy, and chemotherapy. Therefore, the present invention provides a new method of performing NCT in a subject including human being.
[0042] Please refer
[0043] Furthermore, since the nanodiamond particles 210 has a large loading capacity for synthetizing with various types of compounds/drugs due to its large surface area to volume ratio, it is advantageous to modify and utilize nanodiamond surface functional properties to conjugate with therapeutic agents for a specific purpose or multiple purposes usage, such as to deliver a drug with localized distribution to tumor cells, limited diffusion to increase uptakes in tumor cells, image capability to locate tumor cells precisely, and increased drug retention period for tumor treatment. Moreover, the nanodiamond particles 210 embedded with the neutron capture elements 220 also can be synthetized with a fluorescent agent and/or ferrocene particles for labeling and tracking tumor cells. In addition, the surface of the nanodiamond particles 210 embedded with the neutron capture elements 220 can be modified to form bonds with folate moieties to effectively target tumor cell which usually is over-expressed with folate receptors than normal cell. So that the tumor cells targeted by the nanodiamond particles 210 containing the embedded neutron capture element 220 bonded with folate moieties can have high death rate after thermal neutron irradiation.
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[0046] Since the combination of the neutron capture elements 520 embedded in the nanodiamond particle 510 and the additional neutron capture elements 540, contained in the neutron capture therapy drugs 530 synthesized and attached to the surface of the nanodiamond particle 510 allows the composition to provide extra neutron capture therapy enhancement. It should be noted that the neutron capture elements 520 in the nanodiamond 510 can be a different kind of element or same kind of element to the neutron capture element 540 contained in the neutron capture therapy drugs 530. In this preferred embodiment, the total uptake of neutron capture element concentration is increased when compared to traditional neutron capture therapy drug delivery system and therefore enhances the neutron capture therapy effect.
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[0048] Accordingly, the present invention discloses that the neutron capture elements embedded into the nanodiamond particles by ion implantation can be used for NCT or provide additional neutron capture therapy to destroy tumor cell more effectively. The nanodiamond particles, contain the neutron capture elements through ion implantation, can be prepared and form compositions to be delivered to specific tumor cells with a high uptake concentration at tumor cells. The high concentration of the nanodiamond particles which contain neutron capture elements at the tumor cells can destroy tumor cells via neutron irradiation.
[0049] Please refer to
[0050] In this embodiment, the neutron capture element, .sup.10B as an example, can be introduced through feeding the feed material of BF.sub.3 gas to the ion source assembly 720 of the ion implantation system 700. Inside the ion source assembly 720, many different ionized electrical charge particles can be formed, e.g. .sup.10B.sup.+ 11B.sup.+, BF.sup.+, BF.sub.2.sup.+ . . . etc. Once they obtain energy through the extraction system 724 and enter the analyzing magnet 730, only .sup.10B.sup.+ will be selected through the analyzing magnet 730 by setting and separated from other undesired ions through different bending radius. This ion beam 760 including .sup.10B.sup.+ particles enter the end station 740 and bombard the workpiece 750, which holds nanodiamond particles. The .sup.10B.sup.+ particles embedded into the nanodiamond particles can be used to prepare a composition for neutron capture therapy.
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[0052] In summary, in the present invention, the composition comprises neutron capture elements embedded into nanodiamond particles by using ion implantation for treating tumor cells through NCT. The amount of neutron capture elements embedded into each nanodiamond particle can be controlled through ion implantation dose to result a higher amount of neutron capture elements in the composition than the conventional NCT drug. The uptake of neutron capture elements containing in the composition by the tumor cells according to the present invention can be significantly increased, thereby achieving the delivery of a high concentration of neutron capture elements to the tumor cells while keeping the concentration of the neutron capture elements relatively low in the surrounding normal cells. Furthermore, the composition is prepared by synthesizing nanodiamond particles embedded with neutron capture elements with a targeting drug agent and such nanodiamond therapeutic agent is delivered to tumor cells for NCT, thereby enhancing NCT effect.
[0053] The above descriptions are merely preferable embodiments of the present invention, but are not intended to limit the scope of the present invention. Any modification or replacement made by those skilled in the art without departing from the spirit and principle of the present invention should fall within the protection scope of the present invention. Therefore, the protection scope of the present invention is subject to the appended claims.