Improved cytometry for tissue characterization and screening

The optical imaging system with low numerical aperture lenses and microfluidic channels addresses the limitations of traditional methods by enabling high-resolution, spatially preserved imaging of entire tissue samples for multiple probes, enhancing throughput and sample usability.

JP7827683B2Active Publication Date: 2026-03-10FIVE PRIME THERAPEUTICS INC
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-12-20
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

Existing methods for characterizing molecular expression on cells or tissues face trade-offs between throughput, parallelization, and preservation of spatial information, with traditional techniques like immunofluorescence and immunohistochemistry limited by the number of probes and requiring sample division, while flow cytometry loses spatial information and renders the tissue unusable for further analysis.

Method used

An optical imaging system with a low numerical aperture lens assembly and a sensor array, combined with microfluidic channels, allows for simultaneous characterization of large tissue sections with an unlimited number of probes and preserves sample integrity for downstream analysis.

Benefits of technology

The system enables high-resolution imaging of entire tissue samples without segmentation, maintaining spatial information and sample integrity, facilitating both qualitative and quantitative analysis with improved throughput and parallelization.

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Abstract

To provide an imaging system and a method.SOLUTION: An optical imaging system comprises: a frame which is designed to provide mechanical connection of a first stage and a second stage; a sample holding region arranged on the first stage; a lens unit; and a sensor array. The lens unit is arranged between the first stage and the second stage, and is designed to receive light from the sample in the sample holding region on the first stage. The lens unit has a numerical aperture of less than 0.1. The sensor array is connected to the second stage and is designed to receive light which passes through the lens unit.SELECTED DRAWING: Figure 8
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Description

[Technical Field]

[0001] FIELD OF THE INVENTION Embodiments of the present invention relate to imaging systems and methods, and more particularly to imaging systems that facilitate the analysis and characterization of biological samples, including cells and tissues. [Background technology]

[0002] The ability to probe and characterize the expression of molecules on the surface of cells, either by themselves or in the context of tissues, is essential for researchers' ability to analyze the molecular mechanisms underlying human biology and monitor changes associated with pathology and therapeutic interventions. In these analyses, it is important to gather information about both the types and numbers of molecules expressed on the cell surface and the spatial relationships between cells with different expression profiles. For example, in the context of cancer, spatial information can provide clues about which cells are eliciting an immune response and which structural subgroups are particularly sensitive or resistant to treatment.

[0003] However, state-of-the-art methods for performing such characterization suffer from trade-offs between throughput, parallelization, and preservation of spatial information. For example, traditional immunofluorescence (IF) and immunohistochemistry (IHC) maintain tissues in a state close to physiological representation but are limited by the number of spectrally distinct fluorescent probes available and the number of times the tissue can be probed. As a result, a single tissue section can only be probed for the expression of 5–7 molecules of interest. Flow cytometry, on the other hand, offers the ability to probe 15–18 molecules of interest. Recent developments in the field, such as Cytometry by Time of Flight (CyTOF), utilize heavy metal ion-tagged antibodies, which can increase the number of molecules probed to approximately 100. However, with both methods, analysis is performed at the single-cell level, necessitating the division of the original sample, resulting in the loss of important spatial information. Not only this, but once the analysis is performed, the tissue becomes unusable for other downstream analyses, such as RNA sequencing, which could potentially provide parallel information. Summary of the Invention [Means for solving the problem]

[0004] In the embodiments presented herein, new imaging techniques are presented to provide a characterization method that preserves spatial information, simultaneously characterizes large tissue sections, has a theoretically unlimited number of surface molecules that can be probed, and preserves sample integrity for downstream analysis.

[0005] In one embodiment, the optical imaging system includes a frame designed to provide a mechanical coupling between a first stage and a second stage, a sample holding area disposed on the first stage, a lens assembly, and a sensor array. The lens assembly is disposed between the first stage and the second stage and is designed to receive light from a sample at the sample holding area of ​​the first stage. The lens assembly has a numerical aperture of less than 0.1. The sensor array is coupled to the second stage and is designed to receive light passing through the lens assembly.

[0006] In another embodiment, a method for acquiring a fluorescence image of a sample includes placing the sample on a sample-holding area on a stage and placing a substrate including a plurality of microfluidic channels over the sample. The method further includes flowing a solution through the plurality of microfluidic channels such that the solution contacts the sample, and receiving light emitted by the sample with a lens arrangement disposed below the stage. The lens arrangement has a numerical aperture of less than 0.1. The method also includes detecting the light emitted by the sample with a detector disposed optically downstream from the lens arrangement.

[0007] In another embodiment, an optical imaging system includes a frame designed to provide a mechanical coupling between a first stage and a second stage, a sample holding area disposed on the first stage, a substrate disposed on a sample disposed on the sample holding area, a lens device, and a sensor array. The substrate includes a plurality of microfluidic channels. The lens device is disposed between the first stage and the second stage and is designed to receive light from the sample in the sample holding area of ​​the first stage. The lens device has a numerical aperture of less than 0.1. The sensor array is coupled to the second stage and is designed to receive light passing through the lens device.

[0008] In another embodiment, a method for detecting a binding reaction includes sequentially filling a first channel with probe solutions, each of which contains a fluorescently tagged probe molecule. The probe solutions are substantially separated from one another within the first channel. The method further includes flowing the probe solutions through the first channel and into a second channel positioned above the sample, such that the probe solutions contact the sample when present in the second channel. The method includes receiving light emitted by the fluorescently tagged probe molecules present in the sample using a lens arrangement positioned below the sample, and detecting the light emitted by the fluorescently tagged probe molecules with a detector positioned optically downstream from the lens arrangement.

[0009] The accompanying drawings, which are incorporated in and form a part of this specification, illustrate embodiments of the invention and, together with the description, further serve to explain the principles of the invention and to enable one skilled in the relevant art to make and use the invention. The present invention provides, for example, the following. (Item 1) a frame configured to provide a mechanical connection between the first stage and the second stage; a sample holding area disposed on the first stage; a lens arrangement disposed between the first stage and the second stage, the lens arrangement configured to receive light from a sample in the sample holding area of ​​the first stage, the lens arrangement having a numerical aperture of less than 0.1; a sensor array coupled to the second stage and configured to receive light passing through the lens arrangement. (Item 2) Item 10. The optical imaging system of item 1, wherein the lens arrangement includes a telecentric lens. (Item 3) 3. The optical imaging system of claim 1, further comprising a housing coupled to the second stage and configured to house the lens arrangement. (Item 4) The housing may include a bandpass filter, a longpass filter, or a polarizing filter. Item 4. The optical imaging system of item 3, further comprising one or more of: (Item 5) 5. The optical imaging system of claim 3 or 4, wherein the housing includes an opening along a side of the housing such that light received at the opening is directed toward the sample holding area. (Item 6) Item 6. The optical imaging system of item 5, wherein the housing includes an angled filter configured to reflect the light received at the opening and to pass the light received from the sample. (Item 7) 10. The optical imaging system of claim 1, wherein the lens arrangement comprises a plurality of lenses. (Item 8) 10. The optical imaging system of claim 1, wherein the sensor array comprises a CMOS sensor array. (Item 9) 10. The optical imaging system of any one of the preceding claims, further comprising a light source configured to provide excitation light toward the sample holding area. (Item 10) 10. The optical imaging system of claim 1, wherein the first stage includes one or more of a bandpass filter, a longpass filter, or a polarizing filter positioned below the sample holding area. (Item 11) 1. A method for acquiring a fluorescence image of a sample, the method comprising: placing the sample on a sample holding area on a stage; disposing a substrate comprising a plurality of microfluidic channels over the sample; flowing a solution containing fluorescently tagged probe molecules through the plurality of microfluidic channels such that the solution contacts the sample; receiving fluorescent light from the fluorescently tagged probe molecules bound to the sample using a lens arrangement positioned below the stage, the lens arrangement receiving the fluorescent light having a numerical aperture of less than 0.1; detecting the light emitted by fluorescence from the fluorescently tagged probe molecules with a detector positioned optically downstream from the lens arrangement. (Item 12) Item 12. The method of claim 11, further comprising disposing a prism block on the substrate. (Item 13) Item 13. The method of item 12, further comprising directing excitation light through the prism block onto the sample holding area. (Item 14) 14. The method of any one of items 11 to 13, wherein the flowing comprises flowing the solution at a substantially constant flow rate through a plurality of microfluidic channels. (Item 15) 15. The method according to any one of items 11 to 14, wherein the detecting comprises detecting the light emitted by fluorescence from the tagged biomolecule with a CMOS sensor array. (Item 16) 16. The method of any one of items 11 to 15, further comprising filtering the light received by the lens apparatus using at least one of a bandpass filter, a longpass filter, or a polarizing filter. (Item 17) Items 11 to 16, wherein the flowing includes flowing the solution via applied pressure. 10. The method according to any one of the preceding claims. (Item 18) 18. The method of any one of items 11 to 17, wherein the lens arrangement comprises a telecentric lens. (Item 19) 19. The method of any one of items 11 to 18, further comprising directing excitation light through the lens device to the sample holding area. (Item 20) a frame configured to provide a mechanical connection between the first stage and the second stage; a sample holding area disposed on the first stage; a substrate disposed on the sample placed in the sample holding area, the substrate including a plurality of microfluidic channels; a lens arrangement disposed between the first stage and the second stage, the lens arrangement configured to receive light from the sample in the sample holding area of ​​the first stage, the lens arrangement having a numerical aperture less than 0.1; a sensor array coupled to the second stage and configured to receive light passing through the lens arrangement. (Item 21) 21. The optical imaging system of claim 20, wherein the plurality of microfluidic channels comprises a plurality of parallel microfluidic channels having lengths oriented in a first direction, wherein the width of each of the plurality of parallel microfluidic channels increases with increasing distance from a central channel of the plurality of parallel microfluidic channels along a second direction perpendicular to the first direction. (Item 22) 22. The optical imaging system of claim 20 or 21, wherein the plurality of microfluidic channels comprises a network of branching microfluidic channels, wherein the network of branching microfluidic channels comprises a plurality of microfluidic channels terminating in one fluidic channel having a width spanning the width of at least one of the network of branching microfluidic channels. (Item 23) 1. A method for detecting a cell binding reaction, said method comprising: sequentially loading a plurality of probe solutions into a first channel, wherein each of the plurality of probe solutions comprises a fluorescently tagged probe molecule, and the plurality of probe solutions are substantially separated from one another within the first channel; sequentially flowing the plurality of probe solutions through the first channel positioned above a sample into the second channel such that the plurality of probe solutions contact the sample when present in the second channel; receiving light emitted by the fluorescently tagged probe molecules present in the sample using a lens arrangement positioned below the sample; detecting the light emitted by fluorescence from the fluorescently tagged probe molecules with a detector positioned optically downstream from the lens arrangement. (Item 24) 24. The method of claim 23, wherein the flowing comprises flowing the plurality of probe solutions through a plurality of microfluidic channels at a substantially constant flow rate. (Item 25) 25. The method of claim 23 or 24, wherein the detecting comprises detecting the light emitted by fluorescence from the tagged biomolecule with a CMOS sensor array. (Item 26) 26. The method of any one of items 23 to 25, further comprising filtering the light received by the lens apparatus using at least one of a bandpass filter, a longpass filter, or a polarizing filter. (Item 27) 27. The method of any one of items 23 to 26, wherein the flowing comprises flowing the plurality of probe solutions via applied pressure. (Item 28) 28. The method of any one of items 23 to 27, wherein the lens arrangement comprises a telecentric lens. (Item 29) 29. The method according to any one of items 23 to 28, wherein the sample is a diseased tissue sample. (Item 30) 30. The method according to any one of items 23 to 29, wherein the sample is a biopsy tissue sample. (Item 31) 31. The method of any one of items 23 to 30, wherein the fluorescently tagged probe molecules in one or more of the plurality of probe solutions comprise an antibody. (Item 32) 32. The method of any one of items 23 to 31, wherein the fluorescently tagged probe molecules in one or more of the plurality of probe solutions comprise a protein. (Item 33) 33. The method of any one of items 23 to 32, wherein the fluorescently tagged probe molecules in one or more of the plurality of probe solutions comprise DNA. (Item 34) 34. The method of any one of items 23 to 33, wherein the fluorescently tagged probe molecules in one or more of the plurality of probe solutions comprise RNA. (Item 35) 35. The method of any one of items 23 to 34, wherein the fluorescently tagged probe molecules in one or more of the plurality of probe solutions comprise an enzyme. (Item 36) 36. The method of any one of items 23 to 35, wherein the fluorescently tagged probe molecules in one or more of the plurality of probe solutions comprise cells. (Item 37) 37. The method according to any one of items 23 to 36, wherein the fluorescently tagged probe molecules in a given probe solution among the plurality of probe solutions are identical. [Brief explanation of the drawings]

[0010] [Figure 1] 1 illustrates a three-dimensional view of an optical inspection system, according to one embodiment. [Figure 2] 1 illustrates a cross-sectional view of an optical inspection system, according to one embodiment. [Figure 3] 3 illustrates a housing with a lens arrangement as used in FIG. 2, according to one embodiment. [Figure 4] 1 illustrates a cross-sectional view of an optical inspection system according to another embodiment. [Figure 5] 5 shows a housing with a lens arrangement as used in FIG. 4 according to another embodiment. [Figure 6] FIG. 1 shows a top view of a microfluidic device, according to one embodiment. [Figure 7] 1 shows a top view of another microfluidic device, according to one embodiment. [Figure 8] 1 illustrates a testing procedure using a microfluidic device, according to one embodiment. [Figure 9A] 1A and 1B show exemplary fluorescence measurements according to one embodiment. [Figure 9B] 1A and 1B show exemplary fluorescence measurements according to one embodiment. [Figure 10] 1 illustrates a method for acquiring a fluorescent image of a sample, according to one embodiment. [Figure 11] 1 illustrates another method for acquiring a fluorescent image of a sample, according to one embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0011] Embodiments of the present invention will be described with reference to the accompanying drawings, in which it will be understood that the drawings are not drawn to scale and that any specific geometries or dimensions used in the drawings are used only to provide illustrative embodiments of the present invention.

[0012] While specific configurations and arrangements are described, it should be understood that this is done for illustrative purposes only. Those skilled in the relevant art will recognize that other configurations and arrangements can be used without departing from the spirit and scope of the present invention. Those skilled in the relevant art will appreciate that the present invention can be used in a variety of applications and is not limited to any one particular application.

[0013] References herein to "one embodiment," "embodiment," "exemplary embodiment," and the like indicate that the described embodiment may include a particular feature, structure, or characteristic, but note that not all embodiments necessarily include the particular feature, structure, or characteristic. Moreover, such phrases do not necessarily refer to the same embodiment. Furthermore, when a particular feature, structure, or characteristic is described in connection with an embodiment, it is believed to be within the knowledge of one skilled in the art to achieve such feature, structure, or characteristic in connection with other embodiments, whether or not explicitly described.

[0014] Traditional microscopic imaging techniques for applications such as IF and IHC use high-magnification optical systems that achieve single-cell resolution, sacrificing throughput for high resolution. In these traditional systems, tissues are operationally divided into 30–40 small fragments that fit within the limited field of view of the high-resolution microscope, and each fragment must be imaged by itself. As a result, a single tissue can take 30 minutes to 2 hours to image, even after laborious fixation, embedding, and labeling processes (which themselves can take hours or days). After imaging, further image processing is performed to reconstruct a tissue image from these 30–40 fragments.

[0015] In contrast, embodiments herein relate to optical imaging systems that can be used to acquire images of a sample, where the images are characterized as having a relatively wide field of view without sacrificing resolution. Thus, the entire tissue sample can be imaged in the same field of view (without the need to segment the sample) while maintaining sufficient resolution for both qualitative and quantitative analysis. The sample can include a diseased or biopsied tissue sample. In some instances, the entire area of ​​the sample fits within a single image, eliminating the need to take multiple images at different points on the sample.

[0016] FIG. 1 illustrates an optical imaging system 100, according to one embodiment. The optical imaging system 100 includes an upper stage 104 supported by a frame 102. In one embodiment, the frame 102 also provides a mechanical coupling between the upper stage 104 and a lower stage 106. The frame 102 may include any number of support posts, as shown in FIG. 1, or other structurally shaped or angled members for supporting the upper stage 104 at a given distance above the lower stage 106. The lower stage 106 may provide a stable base for the optical imaging system 100 and may also be coupled to a detection element, as described in more detail herein. In one embodiment, the upper stage 104 may be designed to move along the Z direction.

[0017] According to one embodiment, the upper stage 104 includes a sample holding area 108. The sample holding area 108 can be located at or near the center of the upper stage 104. The sample holding area 108 can be an opening through the bottom surface of the upper stage 104 so that light can pass through the opening from below or above the upper stage 104. The sample holding area 108 can include a transparent block disposed over or within the opening. The transparent block can be substantially transparent to all wavelengths of light used during a given cytometry process. In some embodiments, the sample holding area 108 can include a recess in the bottom surface of the upper stage 104, including a bottom edge for supporting a glass slide or other sample-containing substrate disposed in the recess. The sample holding area 108 can further include one or more polarizing filters, bandpass filters, or longpass filters to attenuate excitation light but pass fluorescence from the sample.

[0018] According to one embodiment, a housing 110 is disposed between the first stage 104 and the second stage 106. The housing 110 can be coupled to the second stage 106 and can house various optical elements designed to collect light from a sample placed in the sample holding area 108. For example, fluorescent light generated by a sample placed in the sample holding area 108 can be collected by the optical elements within the housing 110.

[0019] According to one embodiment, the housing 110 includes a lens assembly that receives light from the sample. The lens assembly is designed with a very low numerical aperture so that light can only enter from a narrow range of angles. This helps significantly improve resolution by filtering out scattered light and other noise sources that enter the lens assembly. The low numerical aperture limits light entry to only light propagating in the z direction or only at small angles from the z direction. In one embodiment, the lens assembly within the housing 110 has a numerical aperture of less than 0.1. In other embodiments, the lens assembly within the housing 110 has a numerical aperture of less than 0.05, less than 0.01, or less than 0.001. In one embodiment, the lens assembly within the housing 110 does not change the magnification of the collected image (i.e., the lens assembly has a magnification of 1x). In one embodiment, the lens assembly includes a telecentric lens. Further discussion regarding lens assembly is provided in conjunction with Figures 3A and 3B.

[0020] In one embodiment, the housing 110 includes an opening 112 along a side of the housing 110. Light can be directed into the opening 112 to provide excitation light toward the sample in the sample holding area 108. For example, an optical fiber can be coupled into the opening 112 to direct the excitation light into the opening 112. The excitation light can be used to cause the sample in the sample holding area 108 to fluoresce.

[0021] In some embodiments, the lower stage 106 includes a removable element 114 that can be designed to easily slide in and out. The housing 110 can be coupled to this removable element 114 to provide a mechanism for aligning the housing 110 below the sample holding area 108 (and thus aligning the lens arrangement therein).

[0022] 2 shows a side view of various elements of the optical imaging system 100, according to one embodiment. In one example, the sample holding area 108 supports a sample 204. The sample 204 may be placed on a glass slide or other support substrate before being placed on the sample holding area 108. In some embodiments, the sample 204 is a tissue sample.

[0023] In some embodiments, the upper stage 104 includes an optical filter 202 positioned below the sample holding area 108. The optical filter 202 may include one or more of a polarizing filter, a bandpass filter, or a longpass filter. The optical filter 202 may be included when excitation light from the illumination source 210 is directed toward the sample holding area 108 from above. For example, the illumination source 210 may be a blue laser or blue LED, where the blue light excites fluorophores in the sample 204 to emit higher wavelength light (e.g., green light). In this scenario, the optical filter 202 may be used to substantially block the passage of blue light while allowing the green light to pass. For example, a bandpass filter may pass only a band around the green light portion of the electromagnetic spectrum (e.g., approximately 530±30 nm), or a longpass filter may pass only wavelengths above a certain threshold (e.g., greater than 500 nm). Thus, an image of the sample 204 will be formed primarily from the sample's fluorescence rather than noise (e.g., blue excitation light). Other excitation and fluorophore wavelengths can be used with the optical filter 202 adjusted accordingly to substantially block the passage of excitation light while passing fluorescent light.

[0024] In one embodiment, a substrate 206 having one or more microfluidic channels is disposed on the sample 204. The substrate 206 can be a glass substrate with one or more microfluidic channels etched into the glass substrate. In another embodiment, the substrate 206 is a polymeric material, such as polydimethylsiloxane (PDMS), molded to form one or more microfluidic channels. The substrate 206 may also include inlet and outlet ports (not shown) for flowing fluid through the one or more microfluidic channels. One exemplary arrangement of microfluidic channels in the substrate 206 is shown in FIG. 6.

[0025] One or more microfluidic channels can be provided to deliver fluid onto the sample 204. Thus, the fluid can contact the sample 204 as it flows through the one or more microfluidic channels. Tagged probe molecules (e.g., tagged with various fluorophores) in a buffer solution can be delivered through the one or more microfluidic channels to bind to the surface of specific cells or cell types in the sample 204. The tagged probe molecules can be cell-binding agents that interact with molecules on or within the surface of cells. The tagged probe molecules can include antibodies, proteins, DNA, RNA, enzymes, or cells, to name a few. According to one embodiment, the bond that occurs between the tagged probe molecules and the sample 204 is not a covalent bond but a weak bond based on the equilibrium constant of the binding environment. Because the bond is weak, the flow of the solution through the one or more microfluidic channels eventually washes away the bound probe molecules. This mechanism allows multiple probe molecules to be introduced onto the sample 204 one after the other while constantly imaging the sample 204 for binding reactions occurring between any of the tagged probe molecules and the sample 204. Introduction of multiple tagged probe molecules is discussed in more detail below with reference to Figure 7. Various wash buffers may also be delivered through one or more microfluidic channels. In one embodiment, fluids are delivered through one or more microfluidic channels using pressure-driven flow.

[0026] In some embodiments, the substrate 206 can be plasma bonded using oxygen plasma to a glass slide or other type of glass substrate below the sample 204. For additional leak protection, a top substrate 208 can be provided on top of the substrate 206 to apply downward pressure to further seal one or more microfluidic channels. In some embodiments, the top substrate 208 can include one or more screws (not shown) for fastening the top substrate 208 downwardly toward the upper stage 104.

[0027] An optional prism block 209 may be provided on the substrate 206. The prism block 209 may be used to reduce the amount of excitation light that propagates through the sample holding region 108 towards the housing 110.

[0028] The housing 110 is positioned below the sample holding area 108 to collect light from the sample 204. In one embodiment, the housing 110 includes a lens arrangement and possibly other optical elements to direct the received light toward the detector 212. The detector 212 can be a sensor array, such as a CMOS sensor array. In one embodiment, the detector 212 can be coupled to the lower stage 106. The detector 212 can be, for example, a 5 μm 2 The sensor array may have a pixel size of less than 100 μm. Each pixel may have a size of, for example, about 2.2 μm by 2.2 μm. The sensor array may have a total diagonal distance of, for example, less than 8 mm. In one embodiment, the field of view provided by the lens arrangement within housing 110 is approximately equal to the total footprint of the sensor array if no magnification is imposed by the lens arrangement. Thus, a sensor array with a diagonal distance of 7.33 mm provides an image with a similar field of view of about 7.33 mm along the diagonal.

[0029] 3 shows a view inside housing 110 as used in the arrangement shown in FIG. 2, according to one embodiment. Housing 110 contains lens assembly 302, which includes multiple lenses 304. Multiple lenses 304 can include any number and type of lenses arranged such that lens assembly 302 has a very small numerical aperture (e.g., a numerical aperture less than 0.1). In one embodiment, multiple lenses 304 include telecentric lenses. Examples of telecentric lenses include both bilaterally telecentric lenses and image-side telecentric lenses.

[0030] In some embodiments, the housing 110 includes an optical filter 306. The optical filter 306 may be similar to the optical filter 202 disposed below the sample holding area 108. Thus, the optical filter 306 may include one or more of a polarizing filter, a bandpass filter, or a longpass filter. In some configurations, it may not be necessary to include both the optical filter 202 and the optical filter 306. Thus, in some embodiments, only the optical filter 306 is used without the optical filter 202, and in some other embodiments, only the optical filter 202 is used without the optical filter 306.

[0031] FIG. 4 shows another view of various elements of optical imaging system 100, according to another embodiment. Many of the same elements shown in FIG. 2 are repeated again in FIG. 4, and therefore their description will not be repeated here. This embodiment uses housing 110 with opening 112 along its side to introduce excitation light. Because the excitation light is provided through opening 112 and directed onto sample holding area 108 from below, illumination source 210, prism block 209, and optical filter 202, as shown in FIG. 2, are not required in this embodiment.

[0032] FIG. 5 shows a view inside the housing 110 as used in the arrangement shown in FIG. 4 , according to one embodiment. Excitation light 502 is provided into the housing 110 through the opening 112. The excitation light 502 is received by an angled filter 506 designed to reflect wavelengths below a threshold and pass wavelengths above a threshold. According to one embodiment, the excitation light 502 is reflected from the angled filter 506, passes through the lens arrangement 302, and is directed toward the sample holding area 108. Light 504 received from the sample is then collected through the lens arrangement 302 and returned into the housing 110, where it passes through the angled filter 506. In some embodiments, the excitation light 502 and light 504 received from the sample do not interact with the same angled filter 506, but instead travel along different optical paths within the housing 110.

[0033] The light 504 received from the sample may include desired fluorescence and / or excitation light 502 mixed with undesired noise from the surrounding environment. Similar to the embodiment shown in Figure 3, an optical filter 306 may be provided to remove any sources of noise from the light 504.

[0034] 6 shows a top view of a flow cell 600 having microfluidic channels patterned therein, according to one embodiment. The flow cell 600 may be an example of the substrate 206 described above in connection with FIG. 2. The flow cell 600 may be positioned over a sample (e.g., a tissue sample) to deliver fluid to a portion of the sample exposed below the microfluidic channels of the flow cell 600.

[0035] According to one embodiment, flow cell 600 includes two fluid inlet / outlet (I / O) ports 602 and multiple parallel microfluidic channels 604 between I / O ports 602. The multiple parallel microfluidic channels 604 can be molded using known soft lithography techniques if flow cell 600 is a polymeric material. In another example, if flow cell 600 is a more rigid material such as glass or silicon, the multiple parallel microfluidic channels 604 are etched.

[0036] Fluid can be pressure-driven into one I / O port 602, causing the fluid to flow through each of the multiple microfluidic channels 604 before exiting the opposite I / O port 602. Each of the multiple microfluidic channels 604 can be characterized as having a length l and a width w. According to one embodiment, the length l of each of the multiple microfluidic channels 604 is substantially the same, but the width w of each channel increases as the channel moves away from the central channel 606. For example, the central channel 606 can have the smallest width w, while each of the end microfluidic channels has the largest width w. By varying the width of the microfluidic channels in this pattern, fluid flows through each of the multiple microfluidic channels 604 at substantially the same flow rate. The width of each of the multiple microfluidic channels 604 can be determined to achieve the same flow rate through each of the channels. This determination can depend on the viscosity of the fluid and the amount of pressure applied to the fluid as it enters the I / O port 602.

[0037] Fluid can flow between the I / O ports 602 using a syringe pump or pressurized air source. Other forms of fluid transport are possible, including integrated pumps, capillary action, or electroosmotic flow. As described above, the sample to be imaged can form the bottom surface of each of the multiple microfluidic channels 604, such that fluid flowing through the multiple microfluidic channels 604 flows directly over the sample. By controlling the flow of fluid through the multiple microfluidic channels 604, fewer analytes (compared to non-microfluidic devices) are used in a given experiment with the sample 204. Additionally, other microfluidic designs utilizing multiple separated channels can be used to controllably introduce different fluids to different portions of the same sample 204.

[0038] 7 shows a top view of another flow cell 700 having microfluidic channels patterned therein, according to one embodiment. Flow cell 700 may be an example of substrate 206 described above in connection with FIG. 2. Flow cell 700 may be positioned over a sample (e.g., a tissue sample) to deliver fluid to a portion of the sample exposed below the microfluidic channels of flow cell 700.

[0039] According to one embodiment, fluid enters flow cell 700 through inlet port 702 and flows through inlet channel 704 connected to inlet port 702. According to one embodiment, fluid flows from inlet channel 704 through branched fluid network 706. As shown in FIG. 7 , branched fluid network 706 branches at three levels, forming two branched fluid channels at each branch point, going from one starting channel to eight ending channels. Branched fluid network 706 can include any total number of branched channels, and any number of branched channels can be used at each branch point.

[0040] According to one embodiment, the branch channels of the branched fluid network 706 terminate in the same large fluid channel 708. The large fluid channel 708 may have a width that spans substantially the entire width of the branched fluid network 706. The large fluid channel 708 may be between about 15 mm and 25 mm in width and between about 20 mm and 30 mm in length. As fluid passes through the large fluid channel 708, it flows through an outlet channel 710 connected to a fluid outlet 712. According to one embodiment, the branched fluid network 706 spreads the fluid flowing through the inlet channel 704 evenly along the width of the large fluid channel 708 so that the fluid flows evenly across the large fluid channel 708.

[0041] In some embodiments, the flow cell 600 or the flow cell 700 can be positioned above the sample 204 to deliver fluid to the sample 204. The flow cell 700 can be positioned so that the sample 204 is beneath a large fluidic channel 708. In some embodiments, the fluid flowed through the channels of either the flow cell 600 or the flow cell 700 includes a buffer solution containing fluorescently tagged probe molecules. The fluorescently tagged probe molecules can bind to binding partners present on or in the sample 204. The binding partners can be present on or within specific cells or cell types found in the sample 204. The fluorescently tagged probe molecules can include cell binding agents that interact with molecules on or within the surface of cells. The fluorescently tagged probe molecules can include, for example, fluorescently tagged antibodies, proteins, DNA, RNA, cells, aptamers, or tissue fragments. A wash buffer can also be flowed through the channels of either the flow cell 600 or the flow cell 700 to remove non-specifically bound molecules from the channels and the surface of the sample 204.

[0042] FIG. 8 illustrates an example of flowing multiple tagged probe molecules through fluidic channels over a tissue sample, according to some embodiments. Fluidic device 800 includes a channel layer 802 in which fluidic channels 812 can be patterned. In one example, channel layer 802 is a glass layer, and fluidic channels 812 are etched into the glass layer. In another example, channel layer 802 is a polymer layer (e.g., PDMS), and fluidic channels 812 are molded or patterned in the polymer layer. Channel layer 802 can have a channel design similar to either flow cell 600 or flow cell 700, according to some embodiments. Fluidic device 800 can further include a sample layer 804 containing sample 805 to be experimented on. Sample layer 804 can be a glass slide or any other transparent material. Sample 805 can be a tissue sample (e.g., a tissue sample obtained during a biopsy of a human or animal subject). In another example, sample 805 represents an ordered array of biological elements. For example, the sample 805 can be an array of DNA sequences, RNA sequences, proteins, enzymes, ligands, antibodies, or any combination thereof. The fluidic device can further include a filter layer 806 designed to filter the excitation light and pass light 816 emitted by fluorescence from the tagged probe molecules.

[0043] Fluidic channel 812 can represent any design of fluidic channel for introducing fluid over sample 805, and its illustration in Figure 8 is not intended to be limiting. For example, fluidic channel 812 can include a single channel passing over sample 805, multiple parallel channels passing over sample 805, or other more complex configurations that may include branching channels and fluidic valves. Fluidic channel 812 can be a microfluidic channel if it includes dimensions that are less than a millimeter.

[0044] According to one embodiment, multiple tagged probe molecules can be delivered one after the other in a serial arrangement through fluidic channel 812 as they each pass over sample 805. A series of probe solutions 808-1 to 808-n can be introduced sequentially through inlet channel 810, resulting in a series of solution plugs adjacent to one another. A solution plug can be a defined volume of a particular solution confined within a channel. In another example, each probe solution 808-1 to 808-n can be substantially isolated from adjacent probe solutions using air pockets or buffers. In either case, probe solutions 808-1 to 808-n are separated from one another by inlet channel 810 or fluidic channel 812. When probe solutions 808-1 to 808-n are introduced sequentially as a series of solution plugs, adjacent probe solutions can be substantially separated by a liquid interface. According to one embodiment, diffusion can occur between adjacent solutions across the liquid interface, but no further mixing occurs between the solutions as they flow through at least inlet channel 810 and fluidic channel 812. The formation of liquid interfaces and lack of substantial mixing between solutions can occur due to the small geometries of microfluidic channels, which provide laminar flow of solutions through the microfluidic channels.

[0045] Each of the probe solutions 808-1 to 808-n may contain a population of identical probe molecules, which may differ between different probe solutions 808-1 to 808-n.

[0046] In the example shown in FIG. 8 , probe solution 808-1 is first introduced onto sample 805 for a period of time based on various factors. These factors may include the dimensions of fluidic channel 812, the flow rate of the solutions, and the fill volume of probe solution 808-1. One skilled in the art would understand how to adjust one or more of these factors to affect the period of time the probe solution resides on the sample. After probe solution 808-1 has finished flowing over sample 805, it exits outlet channel 814 and is followed immediately thereafter, or after a set period of time, by probe solution 808-2, and so on, until each of probe solutions 808-1 through 808-n has been introduced onto sample 805.

[0047] Fluorescence 816 from the tagged probe molecules is collected as the molecules flow over the sample 805. Figures 9A and 9B show examples of fluorescence signals collected over time for a scenario in which no binding occurs (A) and a scenario in which binding occurs (B). For clarity, Figures 9A and 9B do not include collected excitation light, which will be present to some extent in the measured light signal. Furthermore, the relative peak sizes and widths are shown for illustrative purposes only and should not be considered limiting.

[0048] If no binding occurs, the probe solution flows over the sample 805, and the fluorescent tag only briefly resides on the optical collection region (because it does not bind to any portion of the sample 805). Therefore, the resulting fluorescent signal appears as a single sharp peak centered at the peak emission wavelength of the fluorophore. However, if the probe molecules in the probe solution exhibit some degree of binding to any portion of the sample 805, the fluorescent tag will remain on the optical collection region for a longer period of time. This manifests as a more elongated fluorescent signal over time, as shown in Figure 9B. The slow decay of the collected fluorescent signal occurs because the fluorescently tagged probe molecules are slowly washed away from their binding locations as the fluid in the channel continues to flow. The decay rate of the fluorescent signal can be affected by the solution flow rate or the amount of probe solution loaded.

[0049] In some embodiments, the properties of the fluorescent signal collected from the probe molecules can be analyzed to determine whether binding occurs, which can be used to determine whether a particular cell type or biological entity is present in sample 805. In some embodiments, the properties of the fluorescent signal collected from the probe molecules can be analyzed to determine the concentration or total number of target molecules (e.g., molecules that bind to the probe molecules) present in sample 805. In some embodiments, multiple emission peaks can be present simultaneously, corresponding to different fluorophores on different probe molecules.

[0050] 10 illustrates a flowchart of a method 1000 for acquiring a fluorescence image of a sample, according to one embodiment. Various steps of the method 1000 can be performed using embodiments of the optical imaging system 100 described herein. It should be understood that other steps may occur between those shown, but have been omitted for clarity and brevity. Such steps may involve conventional sample preparation techniques, as would be well understood by one of ordinary skill in the art.

[0051] Method 1000 begins at step 1002, where a tissue sample is placed on a sample holding area. At least a portion of the sample holding area can be transparent to substantially all wavelengths of light used during a given cytometry process. In some embodiments, the tissue sample is first placed on a glass slide (or similar transparent substrate) before being placed on the holding area. The glass slide can fit into a recess in the sample holding area.

[0052] Method 1000 continues at step 1004, where a substrate with microfluidic channel(s) is placed over the sample. The substrate can be a glass substrate with the microfluidic channel(s) etched into the glass substrate. In another embodiment, the substrate is a polymer material such as PDMS molded to form the microfluidic channel(s). Other components can also be added onto the substrate. For example, a transparent prism block can be placed on the substrate to direct excitation light toward the prism block. The prism block can be included to reduce the amount of excitation light received by a downstream lens arrangement.

[0053] The method 1000 continues at step 1006, where the fluid flows through a microfluidic channel(s) in the substrate. In the case of a substrate including multiple microfluidic channels, the fluid can flow at substantially the same flow rate through each of the multiple parallel microfluidic channels. The flow rate can be determined based on the geometry of the microfluidic channel(s). The flow of the fluid can be controlled via applied pressure provided by a syringe pump or pressurized air.

[0054] Method 1000 continues at step 1008, where, according to one embodiment, fluorescent light from tagged probe molecules present in the sample (e.g., bound to or passing through the sample) is received by a lens device positioned below the sample holding area. The lens device may be characterized as having a very small numerical aperture (e.g., a numerical aperture less than 0.1). In other embodiments, the numerical aperture of the lens device is less than 0.05, less than 0.01, or less than 0.001. In one example, the lens device includes a telecentric lens. In some embodiments, excitation light is directed toward the sample holding area through the lens device, while fluorescent light from the sample is collected through the lens device. The lens device may be positioned within a housing.

[0055] Method 1000 continues at step 1010, where light received by the lens arrangement is detected using a sensor array. The sensor array may include a CMOS array of detectors. In one embodiment, the field of view provided by the lens arrangement is approximately equal to the total footprint of the sensor array, if no magnification is imposed by the lens arrangement. Thus, the physical size of the sensor array in such an embodiment is approximately equal to the field of view of the captured image. For example, a sensor array with a diagonal distance of 7.33 mm provides an image with a similar field of view along the diagonal, approximately 7.33 mm. In some embodiments, the light received by the lens arrangement is filtered before being received by the sensor array. The filtering may be performed by one or more of a bandpass filter, a longpass filter, or a polarizing filter. In some embodiments, the filtering of the light is performed before the light is received by the lens arrangement.

[0056] In some embodiments, the light received by the sensor array can be used to form an image of the sample. This image can provide details of areas of the sample that have been stained with tagged probe molecules (e.g., fluorescently tagged probe molecules). The image can also provide details of areas of the sample where binding has occurred between the sample and the fluorescently tagged probe molecules. The intensity of the fluorescent areas in the image can be used to indicate the degree of binding that has occurred. For example, an image displaying bright areas of the sample can indicate a high level of binding between the fluorescently tagged probe molecules and the sample in those bright areas.

[0057] In some embodiments, the light received by the sensor array includes any fluorescence generated from fluorescently tagged probe molecules in the sample. This intensity of the received fluorescence can be used to calculate the concentration of fluorescently tagged probe molecules present in the sample. Such experiments can be performed, for example, to determine the relative concentration of a particular cell type, or a particular protein on the outer surface of a cell, or any other biomolecule present in the sample. In some embodiments, light is received from the entire sample, thereby generating a single image of the entire sample area.

[0058] 11 shows a flowchart of a method 1100 for analyzing multiple tagged probe molecules at high throughput, according to one embodiment. Various steps of method 1100 can be performed using embodiments of optical imaging system 100 and / or fluidic device 800 described herein. It should be understood that other steps may occur between the steps shown here but have been omitted for clarity and brevity. Such steps may involve conventional sample preparation techniques, as would be well understood by one of ordinary skill in the art.

[0059] Method 1100 begins at step 1102, where a tissue sample is placed on a sample holding area, followed by step 1104, where a substrate having microfluidic channels is placed over the sample. These steps are similar to steps 1002 and 1004 already described in connection with method 1000, and therefore their description will not be repeated here.

[0060] Method 1100 continues at step 1106, where a series of solutions containing tagged probe molecules are loaded into channels connected to the microfluidic channel(s). The probe solutions can be loaded sequentially into syringes or plastic tubing that ultimately leads to the microfluidic channel(s). The probe solutions can be loaded such that, when flowed together through the channel, each probe solution contacts adjacent probe solutions in the channel (e.g., forms a liquid interface). In another embodiment, the probe solutions can be loaded such that there is a space between each probe solution in the channel. The space may be filled with air or another solution, such as a buffer solution.

[0061] Method 1100 continues at step 1108, where fluorescently tagged probe molecules are flowed over the tissue sample. The flow can be pressure-driven, and the probe molecules can flow continuously over the tissue sample. The flow rate can be adjusted to vary the time each probe solution resides on the tissue sample. The residence time of a given probe solution on the sample can be on the order of seconds (e.g., between 10 and 30 seconds). High-throughput detection of multiple binding activities can be achieved by sequentially flowing any number of fluorescently tagged probe molecules across the tissue sample.

[0062] Method 1100 continues at step 1110, where fluorescent light from tagged probe molecules present in the sample is received by a lens arrangement positioned below the sample holding area. Method 1100 then continues at step 1112, where the light received by the lens arrangement is detected using a sensor array. These steps are similar to steps 1008 and 1010, already described in connection with method 1000, and therefore their description will not be repeated here.

[0063] lastly It is understood that the Detailed Description section, and not the Summary and Abstract sections, is intended to be used to interpret the claims. The Summary and Abstract sections may set forth one or more, but not all, example embodiments of the invention as contemplated by the inventor(s), and therefore are not intended to limit the scope of the invention and the appended claims in any way.

[0064] The embodiments of the present invention have been described above using functional building blocks that illustrate the implementation of specific functions and relationships thereof. The boundaries of these functional building blocks have been arbitrarily defined herein for convenience of description. Alternative boundaries may be defined as long as the specific functions and relationships thereof are appropriately performed.

[0065] The foregoing description of specific embodiments will fully disclose the general features of the present invention such that others, by applying knowledge within the purview of those skilled in the art, may readily modify and / or adapt such specific embodiments for various applications without undue experimentation and without departing from the general concepts of the present invention. Such adaptations and modifications are therefore intended to be within the meaning and range of equivalents of the disclosed embodiments, based on the teaching and guidance presented herein. It is to be understood that the phraseology or terminology used herein is for the purpose of description and not of limitation, as would be understood by one of ordinary skill in the art in light of the teaching and guidance.

[0066] The breadth and scope of the present invention should not be limited by any of the above-described exemplary embodiments, but should be defined only in accordance with the following claims and their equivalents.

Claims

1. 1. An optical imaging system comprising: a first stage having a sample holding area; a frame configured to provide a mechanical coupling between the first stage and the second stage, the first stage configured to support a substrate comprising a plurality of microfluidic channels such that, in operation, the sample holding area holding a sample is located below the substrate supported by the first stage and a solution containing fluorescently tagged probe molecules contacts the sample as the solution flows through the plurality of microfluidic channels; one or more lenses disposed between the first stage and the second stage, the one or more lenses configured to receive light from the sample in the first stage, the one or more lenses providing a numerical aperture less than 0.1; a sensor array coupled to the second stage and configured to receive light passing through the one or more lenses, the sensor array configured to receive light passing through the one or more lenses and detect fluorescence emitted from the fluorescently tagged probe molecules; and An optical imaging system comprising:

2. The optical imaging system of claim 1 , wherein the one or more lenses include a telecentric lens.

3. The optical imaging system of claim 1 , further comprising a housing coupled to the second stage and configured to house the one or more lenses.

4. The optical imaging system of claim 3 , wherein the housing further comprises one or more of a bandpass filter, a longpass filter, or a polarizing filter.

5. The optical imaging system of claim 3 , wherein the housing includes an opening along a side of the housing such that light received at the opening is directed toward the sample holding area.

6. The optical imaging system of claim 5 , wherein the housing includes an angled filter configured to reflect the light received at the opening and to pass the light received from the sample.

7. The optical imaging system of claim 1 , wherein the one or more lenses comprise a plurality of lenses.

8. The optical imaging system of claim 1 , wherein the sensor array comprises a complementary metal oxide semiconductor (CMOS) sensor array.

9. The optical imaging system of claim 1 , further comprising a light source configured to provide excitation light toward the sample holding area.

10. The optical imaging system of claim 1 , wherein the first stage includes one or more of a bandpass filter, a longpass filter, or a polarizing filter positioned below the sample holding area.

11. 10. A method for acquiring a fluorescence image of a sample using the optical imaging system of claim 1, the method comprising: placing the sample on the sample holding area; placing the substrate on the sample; flowing the solution through the plurality of microfluidic channels such that the solution contacts the sample; using the one or more lenses to receive the fluorescent light emitted from the fluorescently tagged probe molecules bound to the sample; detecting the fluorescence emitted from the fluorescently tagged probe molecules at the sensor array; A method comprising:

12. The method of claim 11 , further comprising disposing a prism block on the substrate.

13. The method of claim 12 , further comprising directing excitation light through the prism block onto the sample holding area.

14. The method of claim 11 , wherein the flowing comprises flowing the solution through the plurality of microfluidic channels at a substantially constant flow rate.

15. The method of claim 11 , wherein the detecting comprises detecting the fluorescence emitted from the fluorescently tagged probe molecules in a CMOS sensor array.

16. The method of claim 11 , further comprising filtering the light received by the one or more lenses using at least one of a bandpass filter, a longpass filter, or a polarizing filter.

17. The method of claim 11 , wherein the flowing comprises flowing the solution via applied pressure.

18. The method of claim 11 , wherein the one or more lenses include a telecentric lens.

19. The method of claim 11 , further comprising directing excitation light through the one or more lenses onto the sample holding area.

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