This invention relates in general to systems for exciting fluorescent materials and more particularly to systems for exciting fluorescent materials in molecular imaging applications.
Molecular imaging systems are known in the art and are commonly used to capture various types or modes of images from an object or specimen being analyzed. The objects or specimens that are imaged may comprise any of a wide range of compositions and objects, as is well-known. Primarily, such imaging systems are configured to extremely low levels of light emitted by the specimen or object under study. The light emitted by the object or specimen may be generated by a bio-luminescence process, a fluorescence process, or by a combination thereof. Such imaging systems may also be capable of capturing reflected light images, in which light reflected by the object is captured by the imaging system camera. Such a reflected light image is often combined with one or more emitted light images to form a single, composite image. Such a composite image allows a user to more easily correlate features and attributes of the emitted light image(s) with physical locations on the specimen or other characteristics that are contained in the reflected light image.
As is known, light emission by fluorescence results from the prior or simultaneous exposure of the fluorescent material to excitation light of suitable wavelength. However, not all fluorescent materials fluoresce or emit light in response to excitation light of the same wavelength. Consequently, the wavelength of the particular excitation light must be selected so that it will excite the particular fluorescent material involved.
Because most molecular imaging systems seek to detect fluorescence from a wide range of fluorescent materials, most such imaging systems are provided with excitation light sources that can be operated to illuminate the fluorescent material with excitation light of the appropriate wavelength. Unfortunately, however, most excitation light sources tend to be expensive and/or difficult to implement in use, and systems are constantly being sought that improve on existing systems.
An excitation light source assembly according to one embodiment of the invention may include a housing defining a central opening therein and a plurality of lamp receptacles surrounding the central opening. The housing is mountable to a support structure having a camera mounted thereto so that a field of view of the camera is substantially unobstructed by the housing. A light source is positioned within each of the plurality of lamp receptacles. A diffuser is positioned adjacent the light source in each of the plurality of lamp receptacles so that each of the diffusers diffuses light produced by each of the light sources. A control system operatively connected to each of the light sources operates selected ones of the light sources to provide a desired excitation illumination to an object within the field of view of the camera.
Also disclosed is an excitation light source assembly that includes a housing and a first connector portion mounted to the housing. A lamp receptacle produces light in a first defined wavelength band. A second connector portion is mounted to the lamp receptacle so that the lamp receptacle can be removably engaged with the first connector portion mounted to the housing. The housing is mountable to a support structure so that a field of view of a camera also mounted to support structure is substantially unobstructed by the housing and by the lamp receptacle.
Another excitation light source assembly includes a base member that defines a central opening therein. A plurality of first connector portions are mounted to the base member at positions located around the central opening. The light source assembly also includes a plurality of lamp receptacles, at least some of which produce light in different wavelength bands. A second connector portion mounted to each of the plurality of lamp receptacles is releasably engagable with a corresponding one of the plurality of first connector portions mounted to the base member. The base member is mountable to a support structure so that the central opening is aligned with a camera mounted to the support structure and so that a field of view of the camera is substantially unobstructed by the base member and the lamp receptacles.
Also disclosed is an assembly that includes a support structure and a camera mounted to the support structure. An excitation light source assembly mounted to the support structure includes a housing that defines a central opening therein and a plurality of lamp receptacles that surround the central opening. The housing is mounted to the support structure so that the central opening is aligned with the camera and so that a field of view of the camera is substantially unobstructed by the housing. At least one narrow-band light source is positioned within at least one of the plurality of lamp receptacles. A diffuser is positioned adjacent the narrow-band light source. A control system operatively connected to each of the narrow-band light sources operates selected ones of the narrow-band light sources to provide a desired excitation illumination to a fluorescent material within the field of view of said camera.
Illustrative and presently preferred exemplary embodiments of the invention are shown in the drawings in which:
One embodiment of an excitation light source assembly 10 is shown in
Some of the lamp receptacles 18 may be provided with one or more diffusers 26 and/or one or more filters 28, as best seen in
In an embodiment where in the excitation light source assembly 10 is to be used in conjunction with a molecular imaging system 12, it will be generally desirable to provide the excitation light source assembly 10 with the capability to generate or produce excitation light or illumination in a variety of individual bands or colors that extend over a comparatively large wavelength range (e.g., from about 430 nanometers (nm) to about 745 nm). However, other embodiments may extend this range to 800 nm or even 900 nm. In the particular embodiment shown and described herein, the excitation light source assembly 10 is capable of producing or generating ten (10) individual illumination bands or colors having comparatively narrow bandwidths (e.g., in the range of about 30-35 nm), although bandwidths having other ranges may also be used. The ten (10) individual illumination bands or colors (i.e., having relatively narrow bandwidths of about 30-35 nm) thus may cover the large wavelength range of from about 430 nm to about 745 nm. In another embodiment, the wavelength range may be extended to about 900 nm by providing one or more additional illumination bands or colors having wavelengths that extend to 900 nm.
In addition to the ability to provide illumination via one or more narrow illumination bands, the excitation light source assembly 10 may also be used to provide broad-band (e.g., white light) illumination, which may be desirable in certain imaging applications.
In the particular embodiment shown and described herein, each individual illumination band or color is generated or produced by light sources 22 provided in lamp receptacles 18 that are located on opposite sides of the central opening 16. As will be described in greater detail below, this arrangement provides for more even illumination than would otherwise be the case if the individual illumination band or color were provided by only a single lamp receptacle 18.
In an application wherein the excitation light source assembly 10 is used in conjunction with a molecular imaging system 12, the housing or main body member 14 of the excitation light source assembly 10 may be mounted to a base member 30 that, in turn, may be mounted to a suitable support structure 32 associated with the imaging system 12. See
The excitation light source assembly 10 may be operatively connected to a control system 40 (
For example, and with reference now to
A significant advantage of the excitation light source assembly of the present invention is that it may be used to illuminate an object or specimen with light in multiple narrow bands or colors, thereby allowing a single excitation light source assembly to be used in imaging applications involving a wide range of fluorescent materials that are excited over a wide range of wavelengths. Moreover, the excitation light of each individual wavelength band or color may be readily increased and decreased in brightness by controlling the number of light sources in each lamp receptacle that are illuminated or activated at any one time. Still further, the ability of the excitation light source assembly to also provide broad-band illumination allows for the ready capture of conventional reflected light images of the object or specimen, which are typically desired in most imaging applications.
Still other advantages are associated with the paring of the lamp receptacles on opposite sides of the central opening, in that such a paring allows for the more even illumination of the object or specimen than would otherwise be the case if the illumination were provided by only a single lamp receptacle.
Still yet other advantages are associated with embodiments having removable lamp receptacles. In such embodiments, the lamp receptacles can be readily removed and replaced in the field, thereby allowing users to conveniently and rapidly tailor the wavelength bands or colors that may be provided by the excitation light source assembly. The present invention also dispenses with the need to provide the illumination via fiber optic bundles, which is expensive and cumbersome. Moreover, such fiber optic bundles must also be carefully selected so that they do not contain materials or elements that themselves would fluoresce in use.
Having briefly described one embodiment of the excitation light source assembly of the present invention, as well as some of its more significant features and advantages, various exemplary embodiments of the excitation light source assembly will now be described in detail. However, before proceeding with the description, it should be noted that while the particular embodiments are shown and described herein as they could be used to provide illumination over certain wavelength ranges and in certain narrow illumination bands or colors having certain bandwidths, the particular wavelength ranges, numbers of illumination bands, as well as the bandwidths of the illumination bands may be varied depending on the any of a wide range of factors, including the requirements of the particular application. Consequently, the present invention should not be regarded as limited to the particular examples, ranges, wavelength bands, and applications shown and described herein.
Referring back now to
The main enclosure 48 of imaging system 12 may be provided with an access door 52 that can be moved vertically between a closed position (shown in
Referring now primarily to
The excitation light source assembly 10 may comprise a housing or main body 14 that defines a central opening 16 therein, as best seen in
Referring now primarily to
The various lamp receptacles 18 may be provided at locations on the main body member 14 so as to provide substantially uniform illumination to the object or specimen 42 provided on the imaging platform or stage 60. In the particular embodiment shown and described herein, the main body member 14 is provided with twenty (20) large diameter lamp receptacles 18, each of which is provided with a plurality of narrow-band light sources 22 and, optionally, diffusers 26, and filters 28. Moreover, and as will be described in further detail below, a given large diameter lamp receptacle 18 (such as receptacle 64), may be matched with a counterpart large diameter receptacle 18 (such as receptacle 64′) on the opposite side of central opening 16. See
As briefly described above, each of the small diameter receptacles 18 may be provided with a single broad-band light source 24. The various small diameter receptacles 18 also may be provided in spaced-apart relation around the central opening 16 of body member 14 in order to provide substantially uniform illumination of the object 42 provided on the stage 60 when the broad-band light sources 24 are energized.
The housing or main body member 14 may be fabricated from any of a wide range of materials, such as metals or plastics, that would be suitable for the intended application. Generally speaking, it will be desirable to use a material that will not fluoresce in response to the illumination provided by the various light sources 20 provided therein, as such fluorescence of the material comprising the main body member 14 will degrade the performance of the imaging system 12. By way of example, in one embodiment, the housing or main body member 14 is fabricated from a polyoxymethylene thermoplastic material, such as Delrin®. Alternatively, other materials may also be used, as would become apparent to persons having ordinary skill in the art after having become familiar with the teachings provided herein. Consequently, the present invention should not be regarded as limited to a main body member 14 that is fabricated from any particular material.
With reference now primarily to
The various light sources 20, e.g., comprising narrow-band light sources 22 and broad-band light sources 24, may be mounted to a circuit board 64 which, in turn, may be mounted or affixed to the main body 14, as best seen in
Each narrow-band light source 22 is suitable for producing excitation light having a wavelength band or color that comprises at least the wavelength or wavelengths required to excite or activate fluorescence in the particular material or specimen 42 to be imaged or studied. In addition, because it will be desirable to use the imaging system 12 to image a wide range of fluorescent materials, various ones of which may require excitation light having different colors or wavelength bands, in one embodiment, each of the larger diameter lamp receptacles 18 defined by the housing 14 will hold at least one, and preferably three (in one embodiment), narrow-band light source 22 that emits light having wavelengths (i.e., a wavelength band) that is slightly different from the wavelengths produced by the other narrow-band light sources 22 provided in others of the larger diameter lamp receptacles 18. Stated another way, the various lamp receptacles 18 may emit light of different colors. In this manner, then, the single housing 14 of excitation light source assembly 10 can be used to produce excitation light having wavelengths across any desired wavelength range.
In addition, and as was also mentioned above, each of the larger diameter lamp receptacles 18 (e.g., lamp receptacle 64,
In the particular embodiment shown and described herein, the excitation light source assembly 10 is capable of emitting excitation light in a plurality of individual bands or colors over a wavelength range from about 430 nm to about 745 nm. Therefore, it will be generally desirable to use for each light source 20 a comparatively narrow-band light source 22 that emits light having wavelengths over a fairly narrow-band. By way of example, narrow-band light sources 22 having bandwidths in the range of about 30-35 nm can be used to advantage in the present invention. If such narrow-band light sources 22 are used, ten (10) such narrow-band light sources 22, properly selected, will be sufficient to cover the exemplary wavelength range. In accordance with this objective, then, the main body member 14 is provided with twenty (20) large diameter receptacles 18 that are arranged in ten pairs of two on opposite sides of the central opening 16. The corresponding receptacle pairs (e.g., 64 and 64′,
Alternatively, another embodiment of the invention may produce light having a wavelength of 800 nm by providing one or more light sources 22 capable of producing light having wavelengths of around 800 nm. In still another embodiment, the range could be extended to wavelengths of 900 nm or even longer by providing the excitation light source assembly 10 with light sources 22 capable of producing light having wavelengths of around 900 nm.
Each narrow-band light source 22 may comprise a light emitting diode (LED) that emits light in the desired wavelength band, and ideally, with the desired bandwidth (e.g., of about 30-35 nm). Light emitting diodes having such narrow bandwidths (e.g., about 30-35 nm) along the desired wavelength range (e.g., 430 nm to about 745 nm) are readily commercially available and can be used as the narrow-band sources 22. However, it should be noted that suitable LEDs that emit or produce light in each of the desired wavelength bands may not be available. If so, it may be necessary to use broader-band LEDs, i.e., that emit light having wavelengths outside the desired wavelength range. If so, such LEDs or broad-band light sources may be used in combination with a filter element 28 to filter or remove the undesired wavelengths, as will be described in greater detail below.
Regardless of the particular light source 22 that may be used, it is also generally preferred, but not required, to provide a diffuser 26 within each lamp receptacle 18. the diffuser 26 may be provided at any convenient position within lamp receptacle 18. In one embodiment, diffuser 26 is located at a position immediately adjacent the light source 20, as best seen in
The diffuser 26 may comprise any of a wide range of optical diffusers that are now known in the art or that may be developed in the future that are or would be suitable for the particular application. However, because optical diffusers are well-known in the art and could be readily provided by persons having ordinary skill in the art after having become familiar with the teachings provided herein, the particular diffusers that may be used in one embodiment of the invention will not be described in further detail herein.
As mentioned above, the light output characteristics of the various light sources 20 (e.g., LEDs) that may be utilized in the excitation light source assembly 10 may be such that it may be required, or at least desirable, to further limit the wavelength range of excitation light produced by each light source 20. This may be the case regardless of whether the particular light source 20 involved is a narrow-band light source 22. Accordingly, in one embodiment, each of the large diameter lamp receptacles 18 (e.g., containing or housing the narrow-band light sources 22) may also be provided with a filter element 28. Filter element 28 may remove or filter undesired wavelengths produced by the light source 20, regardless of whether the light source 20 comprises a narrow-band light source 22. In the particular embodiment shown and described herein, each such filter may be positioned adjacent the diffuser 26, as best seen in
In the particular embodiment shown and described herein, each filter element 28 may comprise a “notch” type filter having a relatively narrow wavelength bandpass range of about 30 nm around the desired center wavelength or color. Such notch type filters are available over a wide range of wavelengths or colors. In one embodiment of the invention, a separate notch filter 28 is provided for each light source 22, and the notch filter wavelength is selected as appropriate for the particular light source 22 with which it is paired. Thus, when individually activated, each light source/filter combination will emit excitation light having a bandwidth of about 30 nm at a desired color or wavelength band within the desired overall wavelength range (e.g., from about 430 nm to about 745 nm).
Referring now primarily to
Each of the various light sources 20, i.e., comprising narrow-band sources 22 and broad-band sources 24, provided in the various lamp receptacles 18 defined by the housing 14 may be operatively connected to a control system 40 (
The excitation light source 10 may be operated as follows to capture a fluorescent image of a specimen 42, for example a cactus pad and flowers. Once the specimen 42 has been properly positioned on the platform or stage 60 and the imaging system 12 otherwise prepared for operation, the control system 40 may operate selected ones of the various light sources 20 (e.g., narrow-band light sources 22 and broad-band light sources 24) to illuminate the specimen 42 with a desired wavelength band or color. Camera 36 may then capture an image of fluorescing material in the object or specimen 42. As described earlier, different fluorescent materials in the specimen 42 may be excited or activated by illuminating the specimen 42 with light of various colors or wavelength bands. In addition, different fluorescent materials in the specimen 42 may fluoresce or emit light of different wavelengths even when illuminated with light of the same color or wavelength band. Images of the specimen 42 produced by light emitted in such different wavelengths may be captured by using an appropriate filter in conjunction with the camera 36.
For example, and with reference now to
Other variations and configurations are possible for the excitation light source according to the present invention. For example, a second embodiment 110 of an excitation light source assembly according to the teachings of the present invention is illustrated in
The second embodiment 110 may comprise a base member 130 to which are mounted a plurality of main bodies 114. In the particular embodiment illustrated in
With reference now primarily to
In the particular embodiment shown and described herein, each main body 114 has an angled base portion 121 so that the each lamp receptacle 118 is angled inward, toward the central axis 151 of the housing 114, by an angle θ, as best seen in
The base member 130 and each of the main bodies 114 may be fabricated from any of a wide range of materials (e.g., metals and plastics) that would be suitable for the intended application. By way of example, in one embodiment the base member 130 may comprise aluminum. Each of the main bodies 114 may be fabricated from a polyoxymethylene thermoplastic material, such as Delrin®. Alternatively, other materials may also be used.
Connector assembly 117 and its mating portion 119 may comprise any of a wide range of connector assemblies that are now known in the art or that may be developed in the future that are, or would be, suitable for the particular application. However, by way of example, in one embodiment, connector assembly 117 and its mating portion 119 may comprise a type “FGG” connector assembly available from LEMO USA, Inc. of Rohnert Park, Calif. Alternatively, other types of connectors may be used.
Referring now to
The upper and lower barrel sections 123 and 125 may be fabricated from any of a wide range of materials, such as metals or plastics, that would be suitable for the intended application. Consequently, the present invention should not be regarded as limited to any particular material. However, by way of example, in one embodiment, the upper and lower barrel sections 123 and 125 are fabricated from aluminum. The aluminum may be provided with a suitable non-reflective coating.
Still other variations are possible. For example, and with reference now to
Referring now to
The C-shaped housing 214 of the excitation light source assembly 210 allows each of the lamp receptacles 218 provided therein to be conveniently angled (i.e., by an angle θ with respect to the central axis 251 of housing 214), so that light from the light sources 222 may be directed to a desired area within the field of view 38 of camera 36.
The housing 214 for the excitation light source assembly 210 may be fabricated from any of a wide range of materials, such as metals or plastics, that would be suitable for the intended application. Consequently, the present invention should not be regarded as limited to housings made from any particular materials. However, by way of example, in one embodiment, the housing is fabricated as a single piece from any of a polyoxymethylene thermoplastic material, e.g., Delrin®.
Having herein set forth preferred embodiments of the present invention, it is anticipated that suitable modifications can be made thereto which will nonetheless remain within the scope of the invention. The invention shall therefore only be construed in accordance with the following claims:
This application claims the benefit of U.S. Provisional Patent Application No. 61/379,282, filed on Sep. 1, 2010, which is hereby incorporated herein by reference for all that it discloses.
Number | Date | Country | |
---|---|---|---|
61379282 | Sep 2010 | US |