Nova Patents
EP2146752B1

Fluorescent light tomography

Abstract

This record has no abstract on file.

EP2146752B1, drawing sheet 1
Sheet 1 of 33

Term

1.5 yearsleft in the term

Expires 4 April 2028.

  1. Priority and filed
  2. Granted
  3. Today
  4. Expires

6 claims: 3 independent, 3 dependent

  1. 1
    A computer-implemented method for obtaining a light distribution located inside an animal (2), the method comprising:obtaining multiple fluorescence images of at least a portion of the animal (202);obtaining a three dimensional representation of a surface portion of the animal (204);dividing the representation of the surface portion into a set of surface elements (302);mapping fluorescence image data from a subset of the multiple fluorescence images to surface elements to create fluorescent light emission data from the surface portion of the animal (206, 306), converting fluorescence light emission data for each one of the surface elements into a photon density just inside the surface;determining a first three-dimensional representation of a fluorescent probe distribution internal to the animal using the photon density (210), wherein said determining includes: modeling autofluorescence and separating the contributions of tissue autofluorescence from the fluorescent light emission data (208, 308), dividing the interior volume of the animal into volume elements (310);modelling internal light propagation from a position of an excitation illumination source to the surface elements (314, 316);determining the three-dimensional representation of a fluorescent probe distribution using the modelled internal light propagation and the photon density (320) and characterised by determining, in an iterative solution process (328), multiple additional three-dimensional representations of a fluorescence probe by varying the subset of fluorescence images;comparing the determined three-dimensional representations (324);and selecting one of the determined three-dimensional representations on the basis of the comparison.
  2. 4
    The computer-implemented method of any preceding claim further comprising modeling the propagation of excitation light from at least one surface element to a volume element (297) in a set of volume elements using a photon diffusion model, wherein tissue in the animal is modeled as homogeneous in the excitation light propagation model, and wherein the three-dimensional representation of the fluorescent probe distribution is approximated by point light sources for a subset of volume elements included in the set of volume elements.
  3. 5
    An imaging system (10) for obtaining a representation of a fluorescent probe distribution located inside an animal (2), the imaging system comprising:an imaging chamber (12) that includes a set of walls (19) enclosing an interior cavity (21), a stage configured to support the animal within the interior cavity, an excitation illumination source (4), and a camera (20);and a processing system (28) including a processor (28a) and memory (28b, 28c), the memory including: instructions for obtaining multiple fluorescence images of at least a portion of the animal (202);instructions for obtaining a three dimensional representation of a surface portion of the animal (204);instructions for dividing the representation of the surface portion into a set of surface elements (302);instructions for mapping fluorescence image data from a subset of the multiple fluorescence images to surface elements to create fluorescent light emission data from the surface portion of the animal (206, 306), instructions for converting fluorescence light emission data for each one of the surface elements into a photon density just inside the surface;instructions for determining a first three-dimensional representation of a fluorescent probe distribution internal to the animal using the photon density (210), wherein said determining includes: modeling autofluorescence and separating the contributions of tissue autofluorescence from the fluorescent light emission data (208, 308), dividing the interior volume of the animal into volume elements (310);modelling internal light propagation from a position of the excitation illumination source to the surface elements (314, 316);determining the three-dimensional representation of a fluorescent probe distribution using the modelled internal light propagation and the photon density (320) and characterised by determining, in an iterative solution process (328), multiple additional three-dimensional representations of a fluorescence probe by varying the subset of fluorescence images;comparing the determined three-dimensional representations (324);and selecting one of the determined three-dimensional representations on the basis of the comparison.