EP2283709A2

Charged particle cancer therapy patient positioning apparatus

Abstract

This record has no abstract on file.

Term

2.7 yearsto projected expiry

Projected expiry 21 May 2029, counted from filing; an application has no term until it is granted.

  1. Priority and filed
  2. Published
  3. Today
  4. Projected expiry

45 claims: 2 independent, 43 dependent

  1. 1
    Claims of equivalent WO 2009142545 A2 CLAIMS 1. An apparatus for positioning a tumor of a patient for treatment with charged particles, comprising:a patient positioning system, comprising an upper body support, wherein said upper body support comprises a semi-upright patient support surface;and a charged particle irradiation system comprising a charged particle beam path, said charged particle beam path passing within about six inches of said semi-upright patient support surface.
  2. 2
    The apparatus of Claim 1, wherein the charged particles travel along said charged particle beam path to the tumor of the patient.
  3. 3
    The apparatus of Claim 1, wherein said semi-upright patient support surface comprises an about vertical surface.
  4. 4
    The apparatus of Claim 1, wherein said semi-upright patient support surface is reclined from a vertical axis by less than about sixty-five degrees.
  5. 5
    The apparatus of Claim 1, wherein said patient positioning system further comprises at least three of:a motorized torso positioning system;a motorized head positioning system;a motorized arm positioning system;a motorized back positioning system;and a motorized foot positioning system.
  6. 6
    The apparatus of Claim 5, further comprising computer memory for recalling individualized motor positions for any of:said motorized torso positioning system;said motorized head positioning system;said motorized arm positioning system;said motorized back positioning system;and said motorized foot positioning system.
  7. 7
    The apparatus of Claim 6, wherein said charged particle irradiation system comprises control of:beam energy;and beam intensity.
  8. 8
    The apparatus of Claim 1, wherein said patient positioning system further comprises:a rotatable platform, wherein said charged particle beam path passes above a portion of said rotatable platform. 3AM EHHK)LlJ 1 M M JlMCT (πPABMJlO 26)
  9. 9
    The apparatus of Claim 8, wherein said rotatable platform comprises:a lower support structure, said lower support structure holding a portion of said patient positioning system;an upper support structure, said upper support structure holding: a camera;and a video screen.
  10. 10
    The apparatus of Claim 9, wherein said patient positioning system provides respiration instructions on said video screen.
  11. 11
    The apparatus of Claim 1, wherein said patient positioning system reduces movement freedom of the tumor in terms of at least four of:horizontal movement;vertical movement;movement in parallel to said charged particle beam path above a portion of said patient positioning system;yaw;pitch;and roll.
  12. 12
    The apparatus of Claim 1, said charged particle irradiation system comprising:a negative ion source, said negative ion source producing negative ions;an ion beam focusing lens focusing the negative ions;and a converting foil, said converting foil converting the negative ions into the charged particles.
  13. 13
    The apparatus of Claim 1, said charged particle irradiation system further comprising a synchrotron, said synchrotron comprising:a center;straight sections;and turning sections, wherein said charged particle beam path runs;about said center;through said straight sections;and through said turning sections, wherein each of said turning sections comprises a plurality of bending magnets, wherein said circulation beam path comprises a length of less than sixty meters, and wherein a number of said straight sections equals a number of said turning sections.
  14. 14
    The apparatus of Claim 13, wherein said turning sections each comprise at least four 3AM EHHK)LlJ 1 M M JlMCT (πPABMJlO 26) bending magnets, said four bending magnets comprising a total of at least eight edge focusing surfaces, wherein geometry of said edge focusing surfaces focuses the charged particles in said charged particle beam path during use.
  15. 15
    The apparatus of Claim 1, said charged particle irradiation system further comprising a synchrotron, said synchrotron having a center, said apparatus comprising:an extraction material;at least a one kilovolt direct current field applied across a pair of extraction blades;and a deflector, wherein the charged particles pass through said extraction material resulting in a reduced energy charged particle beam, wherein the reduced energy charged particle beam passes between said pair of extraction blades, and wherein the direct current field redirects the reduced energy charged particle beam through said deflector, wherein said deflector yields extracted charged particles.
  16. 16
    The apparatus of Claim 1, further comprising:an X-ray generation source located within forty millimeters of the charged particle beam path, wherein said X-ray source maintains a single static position: (1) during use of said X-ray source and (2) during tumor treatment with the charged particles, wherein X-rays emitted from said X-ray source run substantially in parallel with the charged particle beam path.
  17. 17
    The apparatus of Claim 16, wherein said X-ray generation source comprises a tungsten anode.
  18. 18
    The apparatus of Claim 16, wherein use of said X-ray generation source occurs within thirty seconds of subsequent use of said charged particle irradiation system.
  19. 19
    The apparatus of Claim 1, wherein said patient positioning system further comprising:a rotatable platform holding at least a portion of said patient positioning system, wherein said rotatable platform rotates through about three hundred sixty degrees during an irradiation period of the patient, wherein X-rays from said X-ray generation source yield images from greater than four rotation positions of said rotatable platform.
  20. 20
    The apparatus of Claim 1, wherein multi-field images of the tumor are collected by rotating a platform holding at least a portion of said patient positioning system between collection of X-ray images, wherein the X-ray images occur in at least ten rotation positions of 3AM EHHK)LlJ 1 M M JlMCT (πPABMJlO 26) said platform.
  21. 21
    The apparatus of Claim 1, further comprising:a respiration sensor generating a respiration signal, said respiration signal corresponding to a breathing cycle of the patient;a rotatable platform holding the patient, wherein said rotatable platform rotates through at least one hundred eighty degrees during an irradiation period of the patient, wherein an X-ray generation source is timed using said respiration signal to produce X-ray images at a set point in the breathing cycle, wherein said X-ray images represent greater than ten rotation positions of said rotatable platform, and wherein the X-ray images combine to form a three-dimensional image of the tumor.
  22. 22
    The apparatus of Claim 1, wherein said charged particle irradiation system further comprises:a synchrotron comprising multi-axis control, said multi-axis control comprising control of: an energy;and an intensity, wherein said control of said energy and said control of said intensity occurs during extraction.
  23. 23
    The apparatus of Claim 22, further comprising separate control of said energy and said intensity during an extraction phase of said synchrotron.
  24. 24
    The apparatus of Claim 1, wherein said charged particle irradiation system further comprises:a synchrotron;and a rotatable platform, wherein said rotatable platform supports said patient positioning system;wherein said charged particle beam path runs through said synchrotron and terminates above said rotatable platform;wherein said rotatable platform rotates at least ninety degrees during an irradiation period, and wherein said rotatable platform rotates to at least five irradiation positions during said irradiation period.
  25. 25
    The apparatus of Claim 1, wherein said charged particle irradiation system further comprises:3AM EHHK)LlJ 1 MM JlMCT (πPABMJIO 26) horizontal position control of the charged particles;vertical position control of the charged particles;and an X-ray input signal, wherein said X-ray input signal comprises a signal generated by an X-ray source proximate said charged particle beam path, wherein said X-ray input signal is used in: setting position of said horizontal position and setting position of said vertical position.
  26. 26
    The apparatus of Claim 1, said charged particle irradiation system further comprising:an injector, a synchrotron;and a beam transport system, wherein said synchrotron comprises an extraction foil, wherein said charged particle beam path sequentially traverses said injector, said synchrotron, and said beam transport system.
  27. 27
    A method for positioning a tumor of a patient for treatment with charged particles, comprising:positioning the patient with a patient positioning system, said patient positioning system comprising an upper body support, wherein said upper body support comprises a semi-upright patient support surface;irradiating the tumor of the patient with the charged particles from a charged particle system, said charged particle system comprising a charged particle beam path, said charge particle beam path passing within about six inches of said semi-upright patient support surface.
  28. 28
    The method of Claim 27, wherein the charged particles travel along said charged particle beam path to the tumor of the patient.
  29. 29
    The method of Claim 27, wherein said semi-upright patient support surface comprises an about vertical surface.
  30. 30
    The method of Claim 27, wherein said semi-upright patient support surface comprises a reclined position from a vertical axis of less than about sixty-five degrees.
  31. 31
    The method of Claim 27, further comprising the steps of:said patient positioning system semi-restraining movement of the patient using at least three of: a motorized torso positioning system;a motorized head positioning system;a motorized arm positioning system;a motorized back positioning system;and a motorized foot positioning system. 3AM EHHK)LlJ 1 M M JlMCT (πPABMJlO 26)
  32. 32
    The method of Claim 31, further comprising the step of:recalling from a computer memory individualized motor positions for any of: said motorized torso positioning system;said motorized head positioning system;said motorized arm positioning system;said motorized back positioning system;and said motorized foot positioning system.
  33. 33
    The method of Claim 32, further comprising the steps of:after said step of positioning, collected multi-field images of the tumor in the patient;developing a tumor irradiation plan;repositioning the tumor using said patient positioning system;and repeating said step of irradiating in at least four rotation positions.
  34. 34
    The method of Claim 33, further comprising the step of:after said step of repositioning, verifying position of the tumor.
  35. 35
    The method of Claim 27, further comprising the step of:timing delivery of the charged particles to the tumor using a respiration monitor.
  36. 36
    The method of Claim 27, further comprising the steps of:varying intensity of the charged particles dependent upon efficiency of delivery of energy of the charged particles within the tumor versus delivery of energy of the charged particles to healthy tissue of the patient.
  37. 37
    The method of Claim 27, further comprising the steps of:holding the patient with a rotatable platform, said rotatable platform holding at least a portion of said patient positioning system;rotating the patient on said rotatable platform delivering the charged particles to the tumor of the patient from a synchrotron of said charged particle system during said step of rotating the patient;and distributing ingress energy of the charged particles to at least ten areas about the tumor.
  38. 38
    The method of Claim 27, further comprising the step of:generating a respiration signal with a respiration sensor, said respiration signal corresponding to a breathing cycle of the patient;and timing delivery of the charged particles to the tumor at a set point in said breathing cycle using said respiration signal.
  39. 39
    The method of Claim 27, further comprising the steps of:independently controlling: a horizontal position of the charged particles;and 3AM EHHK)LlJ 1 M M JlMCT (πPABMJlO 26) a vertical position of the charged particles;rotating the patient to at least ten rotation positions of a rotatable platform, said rotatable platform holding at least a portion of said patient positioning system;and delivering the charged particles at a set point in a breathing cycle of the patient and in coordination with said step of rotating during said at least ten rotation positions of said rotatable platform.
  40. 40
    The method of Claim 27, further comprising the steps of:rotating a rotatable platform through at least one hundred eighty degrees during an irradiation period of the patient, said rotatable platform holding at least a portion of said patient positioning system;and controlling both an energy and an intensity of the charged particles along in greater than four rotation positions of said rotatable platform.
  41. 41
    The method of Claim 27, further comprising the steps of:controlling a magnetic field in a bending magnet of a synchrotron in said charged particle system, said bending magnet comprising: a tapered iron based core adjacent a gap, said core comprising a surface polish of less than about ten microns roughness;and a focusing geometry comprising: a first cross-sectional distance of said iron based core forming an edge of said gap, a second cross-sectional distance of said iron based core not in contact with said gap, wherein said second cross-sectional distance is at least fifty percent larger than said first cross-sectional distance, said first cross-sectional distance running parallel said second cross-sectional distance.
  42. 42
    The method of Claim 27, further comprising the steps of:controlling an energy of the charged particle using an accelerator in said charged particle system, said accelerator comprising: a set of at least ten coils;a set of at least ten wire loops;and a set of at least ten microcircuits, each of said microcircuits integrated to one of said loops, wherein each of said loops completes at least one turn about at least one of said coils;and using a radio-frequency synthesizer, sending a low voltage signal to each of said microcircuits, each of said microcircuits amplifying said low voltage signal yielding an acceleration voltage.
  43. 43
    The method of Claim 27, further comprising the step of:3AM EHHK)LlJ 1 M M JlMCT (πPABMJlO 26) monitoring both a horizontal position of the charged particles and a vertical position of the charged particles in said charged particle beam path using a coating on a foil, said coating comprising a layer yielding a localized photometric signal when struck by the charged particles.
  44. 44
    The method of Claim 27, further comprising the step of:increasing an intensity of the charged particles when targeting a distal portion of the tumor, wherein said distal portion of said tumor changes with rotation of the patient on a platform rotating to as least ten distinct rotational positions in a period of less than one minute during irradiation of the tumor by the charged particles, said platform holding the patient.
  45. 45
    The method of Claim 27, further comprising the steps of:horizontally controlling the charged particles;vertically controlling the charged particles;and providing an X-ray input signal, wherein said X-ray input signal comprises a signal generated by an X-ray source proximate the charged particle beam;wherein both said step of horizontally controlling and said step of vertically controlling use said X-ray input signal. 46. The method of Claim 27, further comprising the step of: collecting multi-field X-rays of the tumor using an X-ray generation source located within forty millimeters of the charged particle beam path, wherein said X-ray source maintains a single static position: (1) during use of said X-ray source and (2) during tumor treatment with the charged particles, wherein X-rays emitted from said X-ray source run substantially in parallel with the charged particle beam path. 3AM EHHK)LlJ 1 M M JlMCT (πPABMJlO 26)
Independent claims45