IP Library › Granted Patent US 10,751,431
Granted Patent B2
US 10,751,431 · App. 15/191,105 · Granted Aug 25, 2020

Positron emission capsule for image-guided proton therapy

Inventor: Mamdooh Alqathami (Riyadh, SA)
Assignees: National Guard Health Affairs; King Saud bin Abdulaziz University for Health Sciences; King Abdullah International Medical Research Center
A61K51/1262A61B6/032A61B6/037A61K49/0002A61K51/02A61N5/1039A61N5/1071G01R33/481A61B6/12A61B8/0841A61B2090/392A61B2090/3954A61B2090/3966A61B2090/3995A61N2005/1052A61N2005/1054A61N2005/1087
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,751,431
App. No.
15/191,105
Granted
Aug 25, 2020
Kind
B2
Abstract

Multi-modal imaging capsule for image-guided proton beam therapy, consisting of a biocompatible polymer layer, 18 O-enriched water, and a contrast agent. The biocompatible capsule may be inserted near or inside a tumor under the guidance of X-ray, magnetic resonance, or ultrasonography imaging. Upon proton beam irradiation, the capsule emits positrons, allowing the tumor to be imaged and tracked by a PET detector.

Claims (28)

1. A positron emitter capsule comprising:

a biocompatible encapsulating polymer layer;

a volume of 18 O-enriched water, wherein the 18 O-enriched water is encapsulated by the biocompatible encapsulating polymer layer; and

a contrast agent which is active under magnetic resonance imaging (MRI) or X-ray imaging.

2. The positron emitter capsule of claim 1 which has a shortest dimension of 0.8 to 2 mm and a longest dimension of 2 to 20 mm.

3. The positron emitter capsule of claim 1 wherein the contrast agent is a metallic particle with a largest dimension less than 1 μm.

4. The positron emitter capsule of claim 1 wherein the contrast agent is at least one metallic particle or metallic compound selected from the group consisting of barium, bismuth, cobalt, copper, gadolinium, gold, hafnium, iridium, iron, manganese, nickel, palladium, platinum, rhenium, silver, tantalum, thallium, titanium, tin, tungsten, and vanadium.

5. The positron emitter capsule of claim 1 wherein the contrast agent is a metal oxide.

6. The positron emitter capsule of claim 5 wherein the metal oxide is barium oxide, bismuth oxide, cobalt oxide, copper oxide, gadolinium oxide, hafnium oxide, iridium oxide, iron oxide, manganese oxide, nickel oxide, palladium oxide, silver oxide, tantalum oxide, thallium oxide, titanium oxide, tin oxide, tungsten oxide, or vanadium oxide.

7. The positron emitter capsule of claim 1 wherein the contrast agent is located on an external surface of the biocompatible encapsulating polymer layer and/or dispersed within the biocompatible encapsulating polymer layer which covers the 18 O-enriched water.

8. The positron emitter capsule of claim 1 wherein the contrast agent is present in the form of agglomerates having a largest dimension between 50 nm and 2 μm, and the agglomerates are dispersed on an external surface of the biocompatible encapsulating polymer layer or dispersed within the biocompatible encapsulating polymer layer.

9. The positron emitter capsule of claim 1 wherein an external surface of the biocompatible encapsulating polymer layer is corrugated or knurled to limit movement within an organism,

wherein the external surface has a plurality of raised portions having an average spacing in a range of 0.1-100 μm.

10. The positron emitter capsule of claim 1 wherein the biocompatible encapsulating polymer layer comprises at least one polymer selected from the group consisting of a fluoropolymer, a polyarylether ketone, a polyether, a polyester, a polyamide, a polyimide, a polyurethane, a polycarbonate, a polyanhydride, a polyurea, a polyolefin, a polystyrene, a polysulfone, a polysulfide, a polyketone, a poly(methyl acrylate), a polymethacrylamide, a vinyl polymer, and a polysiloxane.

11. The positron emitter capsule of claim 1 further comprising a second stable isotope, present as part of a molecule or compound, wherein the second stable isotope is capable of being proton-activated into a positron-emitting isotope.

12. The positron emitter capsule of claim 11 wherein the second stable isotope is selected from the group consisting of 89 Y, 63 Cu, 65 Cu, 64 Zn, 66 Zn, 67 Zn, 68 Zn, 70 Zn, 69 Ga, 71 Ga, 30 Si, 15 N, 13 C and 11 B.

13. A method of treating a tumor in an organism, comprising:

administering the positron emitter capsule of claim 1 to the organism;

locating the positron emitter capsule with computed tomography (CT), magnetic resonance imaging (MRI), ultrasonography, or X-ray imaging, from a signal produced by the positron emitter capsule;

irradiating the tumor and positron emitter capsule with a proton beam from outside the organism to convert the 18 O-enriched water to an aqueous radioisotope 18 F − fluoride ion within the positron emitter capsule by a photonuclear reaction, whereby the radioisotope 18 F − fluoride ion emits positrons; and

imaging the tumor and tumor environment by measuring the emitted positrons with a positron emission tomography (PET) detector to produce a first set of image and location data.

14. The method of claim 13 , wherein the positron emitter capsule is administered by injecting the positron emitter capsule into the organism, next to or inside the tumor.

15. The method of claim 13 , wherein the positron emitter capsule is administered orally.

16. The method of claim 13 , wherein the positron emission tomography detector is located off-site in relation to the proton beam.

17. The method of claim 13 , further comprising repeating the irradiating to produce a second set of emitted positrons.

18. The method of claim 17 , further comprising imaging the second set of emitted positrons to produce a second set of image and location data.

19. The method of claim 18 , further comprising tracking the movement of the tumor by comparing the first and second set of image and location data.

20. The method of claim 18 , further comprising tracking the movement of the positron emitter capsule by comparing the first and second set of image and location data.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 23, 2016
From: ALQATHAMI, MAMDOOH
To: NATIONAL GUARD HEALTH AFFAIRS; KING SAUD BIN ABDULAZIZ UNIVERSITY FOR HEALTH SCIENCES; KING ABDULLAH INTERNATIONAL MEDICAL RESEARCH CENTER
Reel/Frame 038999/0039 →
Continuity (1)
Related Publication 20170368209A1 · Dec 28, 2017