EP2247918A2

3d imaging of live cells with ultraviolet radiation

Abstract

This record has no abstract on file.

Term

Projected expiry 3 February 2029.

  1. Priority
  2. Filed
  3. Published
  4. Today
  5. Projected expiry

102 claims: 4 independent, 98 dependent

  1. 1
    Claims of equivalent WO 2009105331 A2 Claims What is claimed is:1. A method for 3D imaging of a biological object (1 ) in an optical tomography system (1 1 ) comprising: moving a biological object (1 ) relative to a microscope objective (18) to present varying angles of view;illuminating the biological object (1 ) with radiation having a spectral bandwidth limited to wavelengths between 150 nm and 390 nm;sensing radiation transmitted through the biological object (1 ) and the microscope objective (18) with an ultraviolet camera (48);forming a plurality of pseudoprojection images of the biological object (1 ) from the sensed radiation;and reconstructing the plurality of pseudoprojection images to form a 3D image.
  2. 30
    An optical tomography system (1 1 ) for acquiring 3D images comprising:at least one optical illumination source (29) for producing light having a spectral bandwidth with wavelengths between 150 nm and 390 nm;an objective lens (18) having a depth of field, the objective lens (18) being located to receive the light;an axial translation mechanism (34) coupled to translate the objective lens (18) through a scanning range so as to extend the depth of field;transport means adapted to present a plurality of differing views of a specimen when present in the scanning range;an ultraviolet sensor for sensing light transmitted through the objective lens (18);an image processor (40) coupled to receive data from the sensor;and a reconstruction module (42) coupled to the image processor (40), where the reconstruction module (42) processes the data to form a 3D image of the cell.
  3. 65
    A system for 3D imaging of live cells in an optical tomography system (1 1 ) comprising:a microfluidics cartridge (400) including a tube (22) positioned relative to a microscope objective (18), a conduit loop (502) having a first port coupled to an entrance valve (96), a second port coupled to an exit valve (124), a semipermeable membrane portion (104), a rotating portion (22) and an imaging window (1 16);where the rotating portion (22) is mounted between a first fitting (92) and a second fitting (92), where the first fitting (92) couples the rotating portion (22) to the entrance valve (96) and the second fitting (92) couples the rotating portion (22) to the exit valve (124);a rotation mechanism (20) attached to the rotating portion (22);a microscope objective (18) located to view objects (1 ) through the imaging window (1 16);an axial translation mechanism (34) coupled to the microscope objective (18);a second conduit (504) interfacing with the semi-permeable membrane (104), where the second conduit (504) carries nutrients into the conduit loop (502) and waste products out of the conduit loop (502);at least one radiation source (29) positioned to illuminate the imaging window (1 16) including a biological object (1 ) held therein, where the at least one radiation source (29) generates radiation having a spectral bandwidth limited to wavelengths between 150 nm and 390 nm;at least one sensor positioned to sense radiation transmitted through the biological object (1 ) and the microscope objective (18);an image processor (40) coupled to receive data from the sensor;and a reconstruction module (42) coupled to the image processor (40), where the reconstruction module (42) processes the data to form a 3D image of the biological object (1 ).
  4. 97
    An optical tomography method including separate imaging stages along the same pathway (25) comprising:transporting a plurality of biological objects (1 ) along a pathway (25) to a first stage (61 1 );illuminating at least one object (1 ) of the plurality of objects (1 ) with visible light at the first stage (61 1 ) to produce a diffraction pattern;sensing the diffraction pattern;analyzing the diffraction pattern to produce a diffraction analysis (602);illuminating (604) the at least one object (1 ) with visible light at a second stage (612);sensing visible light emanating from the at least one object (1 ) to produce a first plurality of pseudoprojection images;illuminating the at least one object with DUV light at a first wavelength at a third stage (613);sensing the DUV light at a first wavelength emanating from the at least one object (1 ) to produce a second plurality of pseudoprojection images;illuminating the at least one object with DUV light at a second wavelength at a fourth stage (614);sensing the DUV light at a second wavelength emanating from the at least one object (1 ) to produce a third plurality of pseudoprojection images;sorting the at least one object (1 ) responsively to the first, second and third pluralities of pseudoprojection images and the diffraction analysis (602).