Cell image analysis system, cell image analysis device, and cell image analysis method

The cell image analysis system simplifies and accelerates the determination of cellular aging by analyzing pseudopodia length in cell images, bypassing the complexity and time of miRNA extraction.

JP7769966B2Active Publication Date: 2025-11-14CYTO-FACTO INC +1
View PDF 4 Cites 0 Cited by

Patent Information

Application Number
JP2021140369
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-08-30
Publication Date
2025-11-14
Estimated Expiration
2041-08-30

AI Technical Summary

Technical Problem

Existing methods for analyzing cellular aging, such as those based on miRNA extraction from culture supernatants, are complex and time-consuming.

Method used

A cell image analysis system and method that utilize pseudopodia length to determine cellular aging, excluding separated and edge-contacting pseudopodia regions, allowing direct image-based analysis without miRNA extraction.

Benefits of technology

Enables rapid and simple assessment of cellular aging through image processing, eliminating the need for miRNA extraction and associated complexities.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007769966000001
    Figure 0007769966000001
  • Figure 0007769966000002
    Figure 0007769966000002
  • Figure 0007769966000003
    Figure 0007769966000003
Patent Text Reader

Abstract

To provide a cell image analysis system capable of simply and quickly analyzing the degree of aging of cells.SOLUTION: This cell image analysis system 200 includes: a cell image-obtaining unit 11 that obtains a cell image 30 in which cells 90 are shown; a cell region-obtaining unit 12 that obtains cell regions 91 from the cell image 30; a pseudopodium region-obtaining unit 13 that obtains regions 92 of pseudopodia 90b that are elongated regions of the cell regions 91 in the cell image 30; and an aging indicator information-obtaining unit 14 that obtains aging indicator information 24 indicating the degree of aging of the cells 90 on the basis of the lengths of the individual pseudopodia 90b.SELECTED DRAWING: Figure 3
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to a cell image analysis system, a cell image analysis device, and a cell image analysis method, and more particularly to a cell image analysis system, a cell image analysis device, and a cell image analysis method that analyze the degree of cellular aging. [Background technology]

[0002] Conventionally, techniques for analyzing the degree of cellular aging have been disclosed (see, for example, Patent Document 1).

[0003] The above-mentioned Patent Document 1 discloses a technology for analyzing the degree of cellular aging based on miRNA (microRNA) contained in a culture solution in which cells are cultured. Specifically, in the above-mentioned Patent Document 1, miRNA is extracted from the supernatant of the culture solution, and the degree of cellular aging is analyzed based on the amount of miRNA among the extracted miRNAs that is associated with cellular aging. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Patent No. 6694240 Summary of the Invention [Problem to be solved by the invention]

[0005] However, the configuration disclosed in Patent Document 1 requires a complicated process to extract miRNA contained in the supernatant of the culture solution in which cells are cultured. Furthermore, the process of extracting miRNA from the supernatant of the culture solution takes time. Therefore, there is a problem in that analyzing the degree of cellular aging is complicated and increases the time required for the analysis.

[0006] The present invention has been made to solve the above-mentioned problems, and one object of the present invention is to provide a cell image analysis system, a cell image analysis device, and a cell image analysis method that are capable of analyzing the degree of cellular aging simply and quickly. [Means for solving the problem]

[0007] In order to achieve the above object, a cell image analysis system according to a first aspect of the present invention comprises: Able to form pseudopodia The apparatus includes a cell image acquisition unit that acquires a cell image showing a cell, a cell region acquisition unit that acquires a cell region from the cell image, a pseudopodia region acquisition unit that acquires a pseudopodia region, which is an elongated region within the cell region of the cell image, and an aging index information acquisition unit that acquires aging index information indicating the degree of aging of the cell based on the length of each pseudopodia. The pseudopodia region acquisition unit is configured to exclude, from the pseudopodia regions, those regions of the pseudopodia that are separated from the cell body, from the targets for acquiring aging index information. do.

[0008] A cell image analysis device according to a second aspect of the present invention comprises: Able to form pseudopodia The apparatus includes a cell image acquisition unit that acquires a cell image showing a cell, a cell region acquisition unit that acquires a cell region from the cell image, a pseudopodia region acquisition unit that acquires a pseudopodia region, which is an elongated region within the cell region of the cell image, and an aging index information acquisition unit that acquires aging index information indicating the degree of aging of the cell based on the length of each pseudopodia. The pseudopodia region acquisition unit is configured to exclude, from the pseudopodia regions, those regions of the pseudopodia that are separated from the cell body, from the targets for acquiring aging index information. do.

[0009] A cell image analysis method according to a third aspect of the present invention includes: Able to form pseudopodia A step of acquiring a cell image showing a cell, a step of acquiring a cell region from the cell image, a step of acquiring a pseudopodia region from the cell region, and a step of acquiring aging index information indicating the degree of aging of the cell based on the length of each pseudopodia; excluding, from among the pseudopodia regions, those regions of the pseudopodia that have been separated from the cell body, from targets for acquiring aging index information; Equipped with. [Effects of the Invention]

[0010] In the cell image analysis system according to the first aspect, the cell image analysis device according to the second aspect, and the cell image analysis method according to the third aspect, aging index information indicating the degree of cellular aging is obtained based on the length of the pseudopodia shown in the cell image, which differs from a configuration in which the degree of cellular aging is obtained based on the type and amount of miRNA contained in the supernatant of a culture solution in which cells are cultured. This makes it possible to obtain the degree of cellular aging from the cell image without extracting miRNA from the supernatant. As a result, the degree of cellular aging can be analyzed simply and quickly by obtaining the cell image. [Brief explanation of the drawings]

[0011] [Figure 1] 1 is a block diagram showing an image processing system including an image processing device according to an embodiment of the present invention. [Figure 2] FIG. 10 is a diagram showing an example of a cell image. [Figure 3] FIG. 2 is a functional block diagram for explaining functions of a processor of the image processing device. [Figure 4] FIG. 2 is a flowchart for explaining the processing operation of the cell image analyzing apparatus according to the present embodiment. [Figure 5] FIG. 10 is a diagram for explaining details of a process for acquiring a cellular region. [Figure 6] FIG. 10 is a diagram for explaining details of a process for acquiring a pseudopod region. [Figure 7] FIG. 10 is a diagram for explaining the details of the process of removing pseudopodia that have separated from the main body of a cell. [Figure 8] FIG. 10 is a diagram for explaining details of a process for excluding pseudopodia that are in contact with the edge of a cell image. [Figure 9] FIG. 10 is a diagram for explaining details of a process for acquiring aging index information. [Figure 10] FIG. 10 is a diagram for explaining the distribution of pseudopodia lengths. [Figure 11] FIG. 10 is a diagram for explaining details of a process for acquiring a superimposed cell image. [Figure 12] FIG. 10 is a diagram showing an example of displaying aging index information and superimposed cell images on a display unit. [Figure 13] FIG. 10 is a block diagram showing a cell image analyzing device according to a modified example. DETAILED DESCRIPTION OF THE INVENTION

[0012] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Hereinafter, specific embodiments of the present invention will be described with reference to the accompanying drawings.

[0013] The configuration of a cell-image analyzing system 200 including a cell-image analyzing device 100 according to this embodiment and a cell-image analyzing method will be described with reference to FIGS.

[0014] (Image Processing System) The cell image analysis system 200 shown in Figure 1 is a cell image analysis system that allows a user performing cell culture, etc. to capture cell images 30, perform analytical processing on the cell images 30, and view the images after analytical processing, all in one integrated system.

[0015] (Image processing system overview) The cell-image analyzing system 200 includes a cell-image analyzing device 100 , a computer 110 , and an imaging device 120 .

[0016] FIG. 1 shows an example of a cell-image analysis system 200 constructed using a client-server model. A computer 110 functions as a client terminal in the cell-image analysis system 200. A cell-image analysis device 100 functions as a server in the cell-image analysis system 200. The cell-image analysis device 100, the computer 110, and the imaging device 120 are connected to each other via a network 130 so that they can communicate with each other. The cell-image analysis device 100 performs various types of information processing in response to requests (processing requests) from the computer 110 operated by a user. The cell-image analysis device 100 performs analysis processing on a cell image 30 in response to the request, and transmits the analysis results and the image after the analysis to the computer 110. Operations for the cell-image analysis device 100 are accepted, and the analysis results and the image after the analysis performed by the cell-image analysis device 100 are displayed on a GUI (Graphical User Interface) displayed on a display unit 111 of the computer 110.

[0017] The network 130 connects the cell-image analysis device 100, the computer 110, and the imaging device 120 so that they can communicate with each other. The network 130 can be, for example, a local area network (LAN) established within a facility. The network 130 can be, for example, the Internet. When the network 130 is the Internet, the cell-image analysis system 200 can be a system established in the form of cloud computing.

[0018] The computer 110 is a so-called personal computer and includes a processor and a storage unit. A display unit 111 and an input unit 112 are connected to the computer 110. The display unit 111 is, for example, a liquid crystal display device. The display unit 111 may also be an electroluminescence display device, a projector, or a head-mounted display. The input unit 112 is, for example, an input device including a mouse and a keyboard. The input unit 112 may also be a touch panel. One or more computers 110 are provided in the cell image analysis system 200. In this embodiment, the display unit 111 is configured to display aging index information 24, which will be described later.

[0019] The imaging device 120 generates a cell image 30 by capturing an image of a cell 90 (see FIG. 2 ). The imaging device 120 can transmit the generated cell image 30 to the computer 110 and / or the cell-image analysis device 100 via the network 130. The imaging device 120 captures a microscopic image of the cell 90. The imaging device 120 performs imaging using an imaging method such as bright-field observation, dark-field observation, phase-contrast observation, or differential interference observation. One or more types of imaging devices 120 are used depending on the imaging method. The cell-image analysis system 200 may be provided with one or more imaging devices 120.

[0020] The cell-image analyzer 100 includes a processor 10 such as a CPU (Central Processing Unit), an FPGA (Field-Programmable Gate Array), or an ASIC (Application Specific Integrated Circuit). The processor 10 executes a predetermined program 21, thereby performing computational processing as the cell-image analyzer 100.

[0021] The cell-image analyzing device 100 includes a storage unit 20. The storage unit 20 includes a nonvolatile storage device. Examples of the nonvolatile storage device include a hard disk drive and a solid-state drive. The storage unit 20 stores various programs 21 executed by the processor 10. The storage unit 20 also stores image data 22. The image data 22 includes a cell image 30 captured by the imaging device 120 and various processed images (superimposed cell images 80) generated by image processing of the cell image 30. The storage unit 20 also stores a trained model 23 that has been trained to acquire a cell region 91 (see FIG. 5) from the cell image 30. The storage unit 20 also stores aging index information 24 obtained by analyzing the cell image 30. The aging index information 24 is information indicating the degree of aging of a cell 90. Specifically, the aging index information 24 includes a length distribution 24a of pseudopodia 90b (see FIG. 2), which will be described later, and an index value 24b. In this embodiment, among the analysis functions and image processing functions that can be executed by the cell image analysis device 100, in particular, the configuration for acquiring aging index information 24 and the process for generating a superimposed cell image 80 from a cell image 30 will be described.

[0022] In response to a request from the computer 110, the cell-image analyzing device 100 performs analysis and image processing on the cell image 30. As a result of the analysis, the cell-image analyzing device 100 acquires aging index information 24. Furthermore, as a result of the image processing, the cell-image analyzing device 100 generates a superimposed cell image 80. The cell-image analyzing device 100 transmits the acquired aging index information 24 and the generated superimposed cell image 80 to the computer 110. Upon receiving the information, the computer 110 displays the aging index information 24 and the superimposed cell image 80 on the display unit 111.

[0023] <Cell images> 2, the cell image 30 is, for example, a microscope image of cultured cells 90 cultured using a cell culture instrument. The cells 90 shown in the cell image 30 are, for example, adherent cells (non-colony forming), including mesenchymal stem cells, fibroblasts, vascular endothelial cells, squamous cell carcinoma cells, and endometrial cells.

[0024] The cell image 30 shows an image of a cell 90 (cell image) and a background 93. The cell 90 shown in the cell image 30 shown in FIG. 2 includes a main body 90a of the cell 90 and a detailed structure. The detailed structure shown in the example of FIG. 2 is a filopodia 90b in which the cytoplasm protrudes from the main body 90a of the cell 90, and is a filopodia protruding in a thread-like (linear) shape from the main body 90a of the cell 90. In the example shown in FIG. 2, one of the filopodia 90b is surrounded by a rectangular frame 40. Note that the frame 40 is shown for convenience of explaining the filopodia 90b.

[0025] It is known that as the aging of a cell 90 progresses, the length of the pseudopodia 90b increases. The aging of a cell 90 refers to a state in which the cell cycle has stably stopped. Furthermore, the progression of aging refers to the cell cycle approaching a state in which the cell cycle is stably stopped. Therefore, the cell-image analysis device 100 according to this embodiment acquires aging index information 24, which is information indicating the degree of aging of the cell 90, based on the pseudopodia 90b of the cell 90 captured in the cell image 30. Furthermore, the cell-image analysis device 100 according to this embodiment can generate a superimposed cell image 80, which is an image in which the operator can identify the pseudopodia 90b at a glance. The details of the cell-image analysis device 100 are described below. The degree of aging of a cell 90 refers to how close the cell cycle of the cell 90 is to a state in which the cell cycle is stably stopped. In other words, the degree of aging of a cell 90 refers to the degree of progression of cellular aging.

[0026] (Detailed configuration of image processing device) Figure 3 is a block diagram showing an outline of each configuration, including the configuration in which the cell image analysis device 100 acquires aging index information 24 (distribution 24a of the length of pseudopodia 90b and index value 24b), and the configuration in which the superimposed cell image 80 is generated.

[0027] The processor 10 of the cell-image analyzing device 100 includes, as functional blocks, a cell-image acquiring unit 11, a cell-region acquiring unit 12, a pseudopodia-region acquiring unit 13, an aging index information acquiring unit 14, and a superimposed cell-image generating unit 15. In other words, the processor 10 functions as the cell-image acquiring unit 11, the cell-region acquiring unit 12, the pseudopodia-region acquiring unit 13, the aging index information acquiring unit 14, and the superimposed cell-image generating unit 15 by executing a program 21 stored in the storage unit 20.

[0028] The cell image acquisition unit 11 has a function of acquiring a cell image 30 in which a cell 90 is captured. The cell image acquisition unit 11 acquires the cell image 30 to be analyzed by reading the cell image 30 stored in the memory unit 20 (see FIG. 1). The cell image acquisition unit 11 may acquire the cell image 30 transmitted from the imaging device 120 or the computer 110 via the network 130 (see FIG. 1). The cell image acquisition unit 11 outputs the acquired cell image 30 to the cell region acquisition unit 12 and the superimposed cell image generation unit 15.

[0029] The cell region acquisition unit 12 acquires a cell region 91 from the cell image 30. Specifically, the cell region acquisition unit 12 is configured to acquire the cell region 91 based on the cell image 30 and a trained model 23 (see FIG. 1) that has been trained to acquire the cell region 91 (see FIG. 5) by extracting a cytoskeleton region from a teacher image that shows a cell 90. Note that acquiring the cell region 91 means that the cell region acquisition unit 12 identifies pixels (pixel coordinates) that correspond to the cell region 91 in the cell image 30.

[0030] The trained model 23 is generated by training the learning model using a training image of the cell 90 as input data and an image with a labeled cytoskeleton region as output data. The image with a labeled cytoskeleton region is, for example, either an image in which the cell 90 is stained with actin staining to stain the cytoskeleton, or an image in which the operator has labeled the cytoskeleton region of the cell 90 in the cell image 30.

[0031] The pseudopodia region acquiring unit 13 acquires a region 92 (see FIG. 6) of the pseudopodia 90b (see FIG. 2), which is a long and thin region within the cell region 91 of the cell image 30. In this embodiment, the pseudopodia region acquiring unit 13 acquires the region 92 of the pseudopodia 90b based on the cell image 30 and a pseudopodia-removed image 32, which is an image obtained by removing the pseudopodia 90b from the cell image 30. In this embodiment, the pseudopodia region acquiring unit 13 acquires a pseudopodia region image 36 (see FIG. 8) as the region 92 of the pseudopodia 90b. In addition, the pseudopodia region acquiring unit 13 outputs the acquired region 92 of the pseudopodia 90b (pseudopodia region image 36) to the aging index information acquiring unit 14.

[0032] The aging index information acquiring unit 14 acquires aging index information 24 (see FIG. 1 ) indicating the degree of aging of the cell 90 based on the lengths of the individual pseudopodia 90b. Specifically, the aging index information acquiring unit 14 is configured to acquire, as the aging index information 24, at least one of a distribution 24a of the lengths of the pseudopodia 90b and an index value 24b indicating the proportion of the acquired pseudopodia 90b that have a predetermined length or more. In this embodiment, the aging index information acquiring unit 14 acquires both the distribution 24a of the lengths of the pseudopodia 90b and the index value 24b. The aging index information acquiring unit 14 outputs the acquired aging index information 24 (the distribution 24a of the lengths of the pseudopodia 90b and the index value 24b) to the storage unit 20. As a result, the aging index information 24 (the distribution 24a of the lengths of the pseudopodia 90b and the index value 24b) is stored in the storage unit 20. In this embodiment, the aging index information acquiring unit 14 outputs the aging index information 24 (the distribution 24a of the lengths of the pseudopodia 90b and the index value 24b) to the superimposed cell image generating unit 15.

[0033] The superimposed cell image generating unit 15 generates a superimposed cell image 80 from the cell image 30. The superimposed cell image 80 is an image in which a cell region 91 (see FIG. 5) and a region 92 (see FIG. 6) of the pseudopodia 90b (see FIG. 2) are superimposed on the cell image 30, and a marker 70 (see FIG. 11) indicating the length of the pseudopodia 90b is superimposed on the region 92 of the pseudopodia 90b. The superimposed cell image 80 generated by the superimposed cell image generating unit 15 is output to the memory unit 20. As a result, the superimposed cell image 80 is stored in the memory unit 20.

[0034] Furthermore, the aging index information 24 and the superimposed cell image 80 are transmitted to the computer 110 in response to a request and displayed on the display unit 111 .

[0035] (Cell image analysis method) Next, a cell image analysis method of this embodiment will be described. The cell image analysis method of this embodiment is a cell image analysis method for analyzing the degree of aging of a cell 90 shown in a cell image 30. The cell image analysis method can be executed by a cell image analyzer 100 (processor 10).

[0036] The cell image analysis method of this embodiment includes at least the following steps. (1) Step of acquiring a cell image 30 showing a cell 90 (2) Step of acquiring a cell region 91 from a cell image 30 (3) A step of obtaining a region 92 of the pseudopodia 90b in the cell region 91 (4) A step of acquiring aging index information 24 indicating the degree of aging of the cell 90 based on the length of each pseudopodia 90b.

[0037] Step (1) of acquiring a cell image 30 is performed by the cell image acquisition unit 11. Step (2) of acquiring a cell region 91 is performed by the cell region acquisition unit 12. Step (3) of acquiring a region 92 of the pseudopodia 90b is performed by the pseudopodia region acquisition unit 13. Step (4) of acquiring aging index information 24 is performed by the aging index information acquisition unit 14. The cell image analysis method of this embodiment further includes a process of excluding pseudopodia 90b that have separated from the main body 90a of the cell 90 by the pseudopodia region acquisition unit 13, a process of excluding pseudopodia 90b that are in contact with the end of the cell image 30 by the pseudopodia region acquisition unit 13, and a process of generating a superimposed cell image 80 by the superimposed cell image generation unit 15.

[0038] Next, the flow of processing by the cell image analyzer 100 will be described in detail with reference to FIGS.

[0039] Image acquisition In step S1, the cell image acquisition unit 11 (see FIG. 3) acquires the cell image 30 from the storage unit 20, the imaging device 120, or the computer 110. The process of step S1 is the process of step (1) above.

[0040] <Acquisition of cell regions> In step S2, the cell region acquisition unit 12 (see FIG. 3) performs a process (step (2) above) of acquiring a cell region 91 (see FIG. 5) from the cell image 30 acquired in step S1. The process of acquiring the cell region 91 will be described in detail with reference to FIG. 5.

[0041] In step S2a, the cell region acquisition unit 12 inputs the cell image 30 to the trained model 23. The trained model 23 to which the cell image 30 has been input outputs a probability value that each pixel of the cell image 30 is a cell region 91. The trained model 23 outputs one probability value for each pixel.

[0042] In step S2b, the cell region acquiring unit 12 acquires a cell region 91. Specifically, the cell region acquiring unit 12 acquires a cell region image 31 based on the probability value of being a cell region 91 output from the trained model 23. In this embodiment, the cell region acquiring unit 12 acquires the distribution of the probability value of being a cell region 91 as the cell region image 31. Note that in the cell region image 31, the area other than the cell region 91 is set as the background 93.

[0043] In step S2c, the cellular region acquisition unit 12 stores the cellular region 91 in the storage unit 20. Specifically, the cellular region acquisition unit 12 stores the acquired cellular region image 31 in the storage unit 20, thereby storing the cellular region 91.

[0044] The cell region image 31 is an image in which the cell region 91 and the background 93 are displayed so as to be distinguishable from each other. Specifically, the cell region image 31 is an image in which the cell region 91 is colored. In the present embodiment, the cell region image 31 is an image in which the cell region 91 is colored in blue, for example. For convenience, FIG. 5 shows an example in which the cell region 91 is hatched to display the cell region 91 so as to be distinguishable from the background 93.

[0045] <Acquisition of pseudopodial regions> 4, the pseudopodia region acquisition unit 13 executes the process (step (3) above) of acquiring the region 92 of the pseudopodia 90b from the cell region 91 acquired by the cell region acquisition unit 12. The process of acquiring the region 92 of the pseudopodia 90b will be described in detail with reference to FIG. 6.

[0046] Step S3 of acquiring the region 92 of the pseudopodia 90b includes step S3a of acquiring the cell region image 31, step S3b of performing a contraction process on the cell region image 31, step S3c of performing an expansion process on the cell region image 31a after the contraction process, step S3d of acquiring the region 92 of the pseudopodia 90b based on the cell region image 31 and the pseudopodia-removed image 32, step S3e of performing a noise removal process on the pseudopodia region image 33, and step S3f of storing the pseudopodia region image 33 after the noise removal process.

[0047] In step S3a, the pseudopod region acquisition unit 13 acquires the cell region image 31. In this embodiment, the pseudopod region acquisition unit 13 acquires the cell region image 31 from the storage unit 20.

[0048] In step S3b, the pseudopodia region acquisition unit 13 performs a contraction process on the cell region image 31. The contraction process is a process in which the center of a kernel set to a predetermined kernel size is placed at a pixel of interest, and the pixel value of the pixel of interest is replaced with the smallest pixel value among the pixel values ​​of the pixels included in the kernel.

[0049] In this embodiment, the pseudopodia region acquisition unit 13 executes the contraction process a predetermined number of times to acquire a cell region image 31a after the contraction process.

[0050] In the cell region image 31a after the contraction process, the pixel values ​​are replaced with pixel values ​​of the background 93 by the contraction process, so that the edge of the cell 90 becomes equal to the pixel values ​​of the background 93. Therefore, the filopodia 90b disappear by performing the contraction process. Note that, although the filopodia 90b disappear by performing the contraction process, the entire area other than the filopodia 90b (the main body 90a of the cell 90) also becomes smaller. Therefore, the cell region 91 shown in the cell region image 31a after the contraction process is smaller than the cell region 91 shown in the cell region image 31 before the contraction process. Furthermore, the kernel size is set depending on the size of the filopodia 90b to be erased from the cell region image 31. In this embodiment, the kernel size is, for example, 3×3 px (pixels). Furthermore, the number of times the contraction process is performed is also set depending on the size of the filopodia 90b to be erased from the cell region image 31. In other words, the kernel size and the number of times the contraction process is performed are set depending on the size of the cell 90 shown in the cell image 30. In this embodiment, the pseudopodia region acquisition unit 13 executes the contraction process, for example, four times. Note that the size of the cell 90 depicted in the cell image 30 varies depending on the magnification at which the cell image 30 is photographed. Therefore, the kernel size and the number of times the contraction process is performed are set for the cell image 30, depending on the size of the cell 90 depicted in the cell image 30 and the magnification at which the cell image 30 is photographed.

[0051] In step S3c, the pseudopodia region acquisition unit 13 performs an expansion process on the cell region image 31a after the contraction process, thereby acquiring a pseudopodia-removed image 32. The pseudopodia-removed image 32 shows a cell region 91 from which the regions 92 of the pseudopodia 90b have been removed. Therefore, the pseudopodia region acquisition unit 13 can identify the pixels of the cell region 91 from which the regions 92 of the pseudopodia 90b have been removed, from the cell region 91 shown in the cell region image 31. That is, in this embodiment, the pseudopodia region acquisition unit 13 performs a contraction process and an expansion process on the cell image 30 (cell region image 31), thereby acquiring the pseudopodia-removed image 32. The pseudopodia-removed image 32 is an image from which the pseudopodia 90b have been removed from the cell region 91.

[0052] The expansion process is the opposite of the contraction process. That is, the expansion process replaces the pixel value of the pixel of interest with the maximum pixel value among the pixel values ​​included in a kernel set to a predetermined kernel size. Each time the expansion process is performed, the cell region 91 becomes larger. In this embodiment, the pseudopodia region acquisition unit 13 performs the expansion process the same number of times as the contraction process. In this embodiment, the pseudopodia region acquisition unit 13 performs the expansion process four times, for example. As a result, the cell region 91 in the pseudopodia-removed image 32 returns to the size of the cell region 91 in the cell region image 31. By performing the expansion process, the shape of the main body 90a of the cell 90 is restored, but the pseudopodia 90b that disappeared by the contraction process remains. Therefore, by performing the contraction process and the expansion process, a pseudopodia-removed image 32 in which the region 92 of the pseudopodia 90b has been removed can be obtained.

[0053] In step S3d, the pseudopodia region acquisition unit 13 acquires the region 92 of the pseudopodia 90b. In this embodiment, the pseudopodia region acquisition unit 13 is configured to acquire the region 92 of the pseudopodia 90b based on the difference between the cell image 30 and the pseudopodia-removed image 32. Specifically, the pseudopodia region acquisition unit 13 acquires the pseudopodia region image 33 in which the region 92 of the pseudopodia 90b appears by subtracting the pseudopodia-removed image 32 from the cell region 91 (cell region image 31) acquired from the cell image 30. Specifically, the pseudopodia region acquisition unit 13 acquires the pseudopodia region image 33 in which only the region 92 of the pseudopodia 90b appears by subtracting the pixel value of the corresponding pixel in the pseudopodia-removed image 32 from the pixel value of each pixel in the cell region image 31.

[0054] In step S3e, the pseudopod region acquisition unit 13 performs noise removal processing on the pseudopod region image 33. The noise removal processing includes binarization processing, small cell region removal processing, and closing processing.

[0055] By performing the binarization process, it becomes possible to extract the region where the pixel value is equal to or greater than the threshold value as the region 92 of the pseudopodia 90b, and therefore it is possible to prevent the region 92 of the pseudopodia 90b from being left out of extraction.

[0056] The process of removing small cell regions is a process of removing cell regions 91 whose area is equal to or smaller than a predetermined size. 2 ) or smaller. This removes noise contained in the candidate regions for the regions 92 of the pseudopodia 90b extracted by the binarization process, thereby preventing noise from being extracted as the regions 92 of the pseudopodia 90b.

[0057] The closing process is a process that performs a contraction process on the white areas in the image after an expansion process on the white areas. The closing process can connect short, disconnected linear segments or fill holes (black areas) that exist locally inside the cell image without changing the size of the cell image (white areas).

[0058] In step S3f, the pseudopod region acquisition unit 13 stores the region 92 of the pseudopod 90b after noise removal in the storage unit 20. Specifically, the pseudopod region acquisition unit 13 stores the acquired pseudopod region image 33a after noise removal.

[0059] Note that although the sizes of the images shown in Figures 5 to 9, 11, and 12 are different, this is merely for the sake of convenience, and the actual size of the images is not changed in this embodiment.

[0060] <Removal of pseudopodia that have separated from the cell body> In step S4 of Fig. 4, the pseudopodia region acquisition unit 13 (see Fig. 3) executes a process of excluding, from the acquisition target of the aging index information 24, the region 92 (see Fig. 2) of the pseudopodia 90b (see Fig. 2), which is a region 92 of the pseudopodia 90b that has separated from the main body 90a (see Fig. 2) of the cell 90 (see Fig. 2). The process of the pseudopodia region acquisition unit 13 excluding the region 92 of the pseudopodia 90b that has separated from the main body 90a of the cell 90 will be described in detail with reference to Fig. 7.

[0061] Step S4 of excluding the region 92 of the pseudopodia 90b separated from the main body 90a of the cell 90 includes step S4a of acquiring the cell region image 31, step S4b of acquiring the pseudopodia region image 33a with noise removed, step S4c of acquiring the pseudopodia 90b separated from the main body 90a of the cell 90, step S4d of excluding the pseudopodia 90b separated from the main body 90a of the cell 90, and step S4e of storing the pseudopodia region image 35 excluding the pseudopodia 90b separated from the main body 90a of the cell 90.

[0062] In step S4a, the pseudopod region acquisition unit 13 acquires the cell region 91. Specifically, the pseudopod region acquisition unit 13 acquires the cell region image 31 from the storage unit 20.

[0063] In step S4b, the pseudopodial region acquisition unit 13 acquires the pseudopodial region image 33a from the storage unit 20. The pseudopodial region image 33a shows only the region 92 of the pseudopodial 90b after noise removal. Therefore, the pseudopodial region acquisition unit 13 can identify the region 92 of the pseudopodial 90b after noise removal based on the pseudopodial region image 33a. Note that either the process of step S4a or the process of step S4b can be performed first.

[0064] In step S4c, the pseudopodia region acquisition unit 13 acquires pseudopodia 90b separated from the main body 90a of the cell 90 (see FIG. 2). Specifically, the pseudopodia region acquisition unit 13 acquires the regions 92 of the pseudopodia 90b whose proportion of the region 92 of the pseudopodia 90b in the cell region 91 is equal to or greater than a predetermined size as the pseudopodia 90b separated from the main body 90a of the cell 90. In this embodiment, as shown in image 34, the pseudopodia region acquisition unit 13 acquires, for each cell region 91, an area 91a of the cell region 91 and an area 92a of the region 92 of the pseudopodia 90b. The pseudopodia region acquisition unit 13 acquires the ratio between the area 91a of the cell region 91 and the area 92a of the region 92 of the pseudopodia 90b. The pseudopodia region acquisition unit 13 identifies pseudopodia 90b in which the ratio of the area 91a of the cell region 91 to the area 92a of the pseudopodia 90b region 92 is equal to or greater than a predetermined size as being pseudopodia 90b that has separated from the main body 90a of the cell 90. Note that image 34 is an image for explaining the process by which the pseudopodia region acquisition unit 13 identifies pseudopodia 90b that has separated from the main body 90a of the cell 90, and is not an image that is generated.

[0065] In step S4d, the pseudopodia region acquisition unit 13 excludes the region 92 of the pseudopodia 90b separated from the main body 90a of the cell 90 from the acquisition target of the aging index information 24. In this embodiment, the pseudopodia region acquisition unit 13 removes the region 92 of the pseudopodia 90b separated from the main body 90a of the cell 90 from the pseudopodia region image 33a, thereby acquiring the pseudopodia region image 35 after the exclusion process. Specifically, the pseudopodia region acquisition unit 13 replaces the pixel values ​​of the region 92 of the pseudopodia 90b separated from the main body 90a of the cell 90 with 0 (zero), thereby excluding the region 92 of the pseudopodia 90b separated from the main body 90a of the cell 90 from the pseudopodia region image 33a.

[0066] In step S4e, the pseudopodia region acquisition unit 13 stores in the memory unit 20 the region 92 of the pseudopodia 90b remaining after excluding the pseudopodia 90b separated from the main body 90a of the cell 90. Specifically, the pseudopodia region acquisition unit 13 stores in the memory unit 20 a pseudopodia region image 35.

[0067] (Exclusion of pseudopodia that contact the edge of the cell image) In step S5 of Fig. 4, the pseudopodia region acquisition unit 13 executes a process of excluding, from the region 92 of the pseudopodia 90b, the pseudopodia 90b that contacts the edge of the cell image 30 from the targets for acquiring the aging index information 24. The process of excluding the pseudopodia 90b that contacts the edge of the cell image 30 will be described in detail with reference to Fig. 8.

[0068] Step S5 of excluding pseudopodia 90b that are in contact with the edge of the cell image 30 includes step S5a of acquiring a pseudopodia region image 35 excluding pseudopodia 90b that have separated from the main body 90a of the cell 90, step S5b of acquiring pseudopodia 90b that are in contact with the edge of the cell image 30, step S5c of excluding pseudopodia 90b that are in contact with the edge of the cell image 30, and step S5d of storing a pseudopodia region image 36 excluding pseudopodia 90b that are in contact with the edge of the cell image 30.

[0069] In step S5a, the pseudopodial region acquiring unit 13 acquires the pseudopodial region image 35. Specifically, the pseudopodial region acquiring unit 13 reads the pseudopodial region image 35 stored in the storage unit 20.

[0070] In step S5b, the pseudopodia region acquisition unit 13 acquires pseudopodia 90b that contact the edge of the cell image 30. In this embodiment, the pseudopodia region acquisition unit 13 acquires pseudopodia 90b that contact the edge of the pseudopodia region image 35, excluding pseudopodia 90b that have separated from the main body 90a of the cell 90. The pseudopodia region acquisition unit 13 acquires, for example, pixels whose pixel values ​​are not 0 (zero) from among the pixels on the outermost periphery of the pseudopodia region image 35. The pseudopodia region acquisition unit 13 identifies the region 92 of the pseudopodia 90b that includes the outermost pixels whose pixel values ​​are not 0 (zero) as the pseudopodia 90b that contact the edge of the cell image 30. Note that the configuration in which the pseudopodia region acquisition unit 13 acquires the pseudopodia 90b that contact the edge of the cell image 30 may be configured using a known method other than the configuration described above.

[0071] In this embodiment, the pseudopodia region acquisition unit 13 acquires the region 92 of the pseudopodia 90b enclosed by the frame line 41 from among the region 92 of the pseudopodia 90b shown in the pseudopodia region image 35 as the pseudopodia 90b that contacts the edge of the pseudopodia region image 35.

[0072] In step S5c, the pseudopodia region acquiring unit 13 excludes the pseudopodia 90b that contact the edge of the cell image 30. Specifically, the pseudopodia region acquiring unit 13 excludes the pseudopodia 90b that contact the edge of the cell image 30 by removing the pseudopodia 90b that contacts the pseudopodia region image 35 acquired in step S5b from the pseudopodia region image 35. Specifically, the pseudopodia region acquiring unit 13 excludes the pseudopodia 90b that contacts the edge of the cell image 30 by replacing the pixel values ​​of the regions 92 of the pseudopodia 90b that contact the edge of the cell image 30 with 0 (zero). In this embodiment, the pseudopodia region acquiring unit 13 acquires the pseudopodia region image 36 from which the pseudopodia 90b that contacts the edge of the cell image 30 have been excluded.

[0073] In step S5d, the pseudopodia region acquisition unit 13 stores the region 92 of the pseudopodia 90b excluding the pseudopodia 90b that contact the edge of the cell image 30. Specifically, the pseudopodia region acquisition unit 13 stores the pseudopodia region image 36 in the storage unit 20, thereby storing the region 92 of the pseudopodia 90b excluding the pseudopodia 90b that contact the edge of the cell image 30.

[0074] <Acquisition of aging index information> In step S6 of FIG. 4, the aging index information acquisition unit 14 (see FIG. 3) executes a process (step (4) above) of acquiring aging index information 24 indicating the degree of aging of the cell 90 based on the length of each pseudopodia 90b. In this embodiment, the aging index information acquisition unit 14 acquires the aging index information 24 based on the pseudopodia 90b whose length is equal to or longer than a predetermined length. The process of acquiring the aging index information 24 by the aging index information acquisition unit 14 will be described in detail with reference to FIG. 9.

[0075] Step S6 of acquiring aging index information 24 includes step S6a of acquiring a pseudopodia region image 36 excluding pseudopodia 90b that are in contact with the edge of the cell image 30, step S6b of acquiring a minimum circumscribing rectangle 71 for each pseudopodia 90b that appears in the pseudopodia region image 36, step S6c of acquiring the longitudinal length of the pseudopodia 90b region, step S6d of acquiring aging index information 24, and step S6e of storing the aging index information 24.

[0076] In step S6a, the aging index information acquisition unit 14 acquires a region 92 of the pseudopodia 90b excluding the pseudopodia 90b that contact the edge of the cell image 30. Specifically, the aging index information acquisition unit 14 identifies the region 92 of the pseudopodia 90b excluding the pseudopodia 90b that contact the edge of the cell image 30, based on the pseudopodia region image 36 read from the storage unit 20.

[0077] In step S6b, the pseudopod region acquisition unit 13 acquires a minimum circumscribing rectangle 71 for each pseudopod 90b shown in the pseudopod region image 35, as shown in image 37. The minimum circumscribing rectangle 71 is the rectangle that circumscribing the pseudopod 90b and has the smallest area. In this embodiment, the pseudopod region acquisition unit 13 acquires the minimum circumscribing rectangle 71 through calculation processing. There is no restriction on the method by which the pseudopod region acquisition unit 13 acquires the minimum circumscribing rectangle 71. Note that image 37 is an image for explaining the configuration for acquiring the minimum circumscribing rectangle 71, and is not an image that is generated.

[0078] In step S6c, the aging index information acquisition unit 14 acquires the length of the pseudopodia 90b by acquiring the longitudinal length of the region 92 of the pseudopodia 90b. In this embodiment, the aging index information acquisition unit 14 acquires the longitudinal length of the region 92 of the pseudopodia 90b by acquiring the length L of the long side of the minimum circumscribing rectangle 71 of the region 92 of the pseudopodia 90b. The aging index information acquisition unit 14 acquires the length L of the long side of the minimum circumscribing rectangle 71 for each of the regions 92 of all pseudopodia 90b. In this embodiment, the aging index information acquisition unit 14 calculates the length L of the long side of the minimum circumscribing rectangle 71 in μm, not in px (pixels), using information on the imaging magnification of the cell image 30.

[0079] In step S6d, the aging index information acquiring unit 14 acquires the aging index information 24. In this embodiment, the aging index information acquiring unit 14 acquires, as the aging index information 24, a distribution 24a of the lengths of the pseudopodia 90b (see FIG. 1 ) and an index value 24b indicating the proportion of the acquired pseudopodia 90b that have a predetermined length or more.

[0080] Here, the region 92 of the pseudopodia 90b acquired by the pseudopodia region acquisition unit 13 may include not only the region 92 of the actual pseudopodia 90b but also regions other than the pseudopodia 90b, such as areas that appear thinner due to overlapping cells 90. If the aging index information 24 is acquired in a state in which regions other than the pseudopodia 90b are included, the accuracy of the aging index information 24 will decrease. Therefore, in this embodiment, the aging index information acquisition unit 14 acquires the aging index information 24 using pseudopodia 90b having a predetermined length or more. The predetermined length is, for example, 40 μm.

[0081] In this embodiment, the aging index information acquiring unit 14 acquires the index value 24b based on the following formula. Index value = number of long pseudopodia / (number of pseudopodia of a given length or longer) × 100 Here, the number of long pseudopodia refers to pseudopodia 90b with a length of 100 μm or more. Furthermore, the number of pseudopodia with a predetermined length or more refers to the number of pseudopodia 90b with a predetermined length or more among the pseudopodia 90b captured in the pseudopodia region image 36. That is, the number of pseudopodia with a predetermined length or more can be obtained by adding the number of pseudopodia 90b with a length of 40 μm or more but less than 100 μm to the number of pseudopodia 90b with a length of 100 μm or more. The length of long pseudopodia 90b may be other than 100 μm. The length of long pseudopodia 90b is experimentally determined based on the type of cell 90 and the culture environment of the cell 90. In this embodiment, as an example, cells 90 with a pseudopodia 90b with a length of 100 μm or more are considered to be aging cells 90.

[0082] In this embodiment, the aging index information acquiring unit 14 acquires, as the index value 24b, the ratio of pseudopodia 90b having a length of 100 μm or more to pseudopodia 90b having a length of 40 μm or more among the pseudopodia 90b captured in the pseudopodia region image 36.

[0083] In step S6e, the aging index information acquisition unit 14 stores the distribution 24a of the lengths of the pseudopodia 90b and the index value 24b in the storage unit 20. The aging index information acquisition unit 14 also stores the image 37 with the minimum circumscribing rectangle 71 superimposed thereon in the storage unit 20.

[0084] FIG. 10 is an example of a distribution 24a of the lengths of the pseudopodia 90b (see FIG. 2). The distribution 24a of the lengths of the pseudopodia 90b is a histogram (frequency distribution) in which the horizontal axis indicates the length of the pseudopodia 90b and the vertical axis indicates the proportion (the abundance ratio of each length of the pseudopodia 90b). As the aging of the cell 90 (see FIG. 2) progresses, the proportion of the pseudopodia 90b with a length of 100 μm or more increases. In other words, by checking the distribution 24a of the lengths of the pseudopodia 90b, the degree of aging of the cell 90 can be visually grasped.

[0085] <Generation process of superimposed cell images> 4, the superimposed cell image generating unit 15 executes a process of generating a superimposed cell image 80 based on the cell image 30 and the length of the pseudopodia 90b. The process of generating the superimposed cell image 80 will be described in detail with reference to FIG.

[0086] In this embodiment, the steps of generating the superimposed cell image 80 include step S7a of acquiring the cell image 30, step S7b of acquiring the cell region 91, step S7c of acquiring the length of the pseudopodia 90b, step S7d of changing the display mode of the minimum circumscribing rectangle 71, step S7e of generating the superimposed cell image 80, and step S7f of storing the superimposed cell image 80.

[0087] In step S7a, the superimposed cell image generating unit 15 acquires the cell image 30. Specifically, the superimposed cell image generating unit 15 acquires the cell image 30 from the storage unit 20.

[0088] In step S7b, the superimposed cell image generating unit 15 acquires the cell region 91. Specifically, the superimposed cell image generating unit 15 acquires the cell region 91 by acquiring the cell region image 31 from the storage unit 20.

[0089] In step S7c, the superimposed cell image generating unit 15 obtains the length of the pseudopodia 90b. Specifically, the superimposed cell image generating unit 15 obtains the image 37 in which the minimum circumscribing rectangle 71 is superimposed from the memory unit 20. The superimposed cell image generating unit 15 obtains the length of the long side of the minimum circumscribing rectangle 71 in the image 37, thereby obtaining the length of the pseudopodia 90b.

[0090] In step S7d, the superimposed cell image generating unit 15 changes the display mode of the minimum circumscribing rectangle 71. In this embodiment, the superimposed cell image generating unit 15 changes the display mode of the minimum circumscribing rectangle 71 depending on the length of the region 92 of the pseudopodia 90b. Specifically, the superimposed cell image generating unit 15 changes the display mode of the pseudopodia 90b whose length is equal to or greater than a predetermined length from that of the pseudopodia 90b whose length is less than the predetermined length.

[0091] In step S7e, the superimposed cell image generating unit 15 generates a superimposed cell image 80 by superimposing the cell region 91, the region 92 of the pseudopodia 90b, and minimum circumscribing rectangles 71 with different display modes on the cell image 30. That is, in this embodiment, the superimposed cell image generating unit 15 is configured to superimpose the minimum circumscribing rectangles 71 with different display modes as markers 70. Specifically, in the superimposed cell image 80, the display modes of the markers 70 superimposed on pseudopodia 90b with a length of 40 μm or more, the markers 70 superimposed on pseudopodia 90b with a length of 60 μm or more, and the markers 70 superimposed on pseudopodia 90b with a length of 100 μm or more are different.

[0092] The superimposed cell image generating unit 15 changes the display mode of the marker 70 by changing the line color of the marker 70 depending on the length of the pseudopodia 90b. For example, the superimposed cell image generating unit 15 superimposes a green marker 70 on a pseudopodia 90b whose length is 40 μm or more. The superimposed cell image generating unit 15 also superimposes a blue marker 70 on a pseudopodia 90b whose length is 60 μm or more. The superimposed cell image generating unit 15 also superimposes a red marker 70 on a pseudopodia 90b whose length is 100 μm or more. This allows the operator to grasp the length of the pseudopodia 90b by checking the minimum circumscribing rectangle 71. In the example shown in FIG. 11, as shown in legend 41, the green marker 70 is illustrated with a solid line, the blue marker 70 is illustrated with a dashed line, and the red marker 70 is illustrated with a thick line. In addition, in the example shown in FIG. 11, for convenience, the markers 70 are not superimposed on all pseudopodia 90b, but in reality, for pseudopodia 90b with a length of 40 μm or more, the markers 70 according to the length are superimposed.

[0093] Furthermore, the superimposed cell image generating unit 15 superimposes the cell region 91 and the pseudopodia 90b region 92 on the cell image 30 in different display modes. For example, the superimposed cell image generating unit 15 displays the cell region 91 in blue and the pseudopodia 90b region 92 in green. Therefore, the operator can distinguish the cell region 91 from the pseudopodia 90b region 92 in the superimposed cell image 80. In the example shown in FIG. 11, the difference in color between the cell region 91 and the pseudopodia 90b region 92 is illustrated by applying different hatching, as shown in legend 42.

[0094] In step S7f, the superimposed cell image generating unit 15 stores the superimposed cell image 80 in the storage unit 20.

[0095] <Storage and output of aging index information and superimposed cell images> In step S8 of FIG. 4, the processor 10 transmits the aging index information 24 and the superimposed cell image 80 to the computer 110 via the network 130.

[0096] The display unit 111 displays at least one of the length distribution 24a of the pseudopodia 90b and the index value 24b. In this embodiment, as shown in Fig. 12, the display unit 111 displays both the length distribution 24a of the pseudopodia 90b and the index value 24b on a display screen 111a. In this embodiment, the display unit 111 also displays a superimposed cell image 80 together with the length distribution 24a of the pseudopodia 90b and the index value 24b.

[0097] This completes the cell image analysis method performed by the cell image analyzer 100 of this embodiment.

[0098] (Effects of this embodiment) In this embodiment, the following effects can be obtained.

[0099] In this embodiment, as described above, the cell image analysis system 200 includes a cell image acquisition unit 11 that acquires a cell image 30 containing a cell 90, a cell area acquisition unit 12 that acquires a cell area 91 from the cell image 30, a pseudopodia area acquisition unit 13 that acquires an area 92 of pseudopodia 90b, which is an elongated area within the cell area 91 of the cell image 30, and an aging index information acquisition unit 14 that acquires aging index information 24 indicating the degree of aging of the cell 90 based on the length of each pseudopodia 90b.

[0100] This makes it possible to obtain aging index information 24 indicating the degree of aging of cell 90 based on the length of pseudopodia 90b shown in cell image 30. Therefore, unlike configurations in which the degree of aging of cell 90 is obtained based on the type and amount of miRNA contained in the supernatant of a culture solution in which cell 90 is cultured, the degree of aging of cell 90 can be obtained from cell image 30 without extracting miRNA from the supernatant. As a result, by obtaining cell image 30, the degree of aging of cell 90 can be analyzed simply and quickly.

[0101] Furthermore, in this embodiment, as described above, the cell image analysis device 100 includes a cell image acquisition unit 11 that acquires a cell image 30 containing a cell 90, a cell area acquisition unit 12 that acquires a cell area 91 from the cell image 30, a pseudopodia area acquisition unit 13 that acquires an area 92 of pseudopodia 90b, which is an elongated area within the cell area 91 of the cell image 30, and an aging index information acquisition unit 14 that acquires aging index information 24 indicating the degree of aging of the cell 90 based on the length of each pseudopodia 90b.

[0102] This makes it possible to provide a cell-image analyzer 100 that can analyze the degree of aging of cells 90 simply and quickly, similar to the cell-image analyzing system 200 described above.

[0103] Furthermore, in this embodiment, as described above, the cell image analysis method includes the steps of acquiring a cell image 30 containing a cell 90, acquiring a cell region 91 from the cell image 30, acquiring a region 92 of pseudopodia 90b within the cell region 91, and acquiring aging index information 24 indicating the degree of aging of the cell 90 based on the length of each pseudopodia 90b.

[0104] This makes it possible to provide a cell image analysis method that can analyze the degree of aging of the cells 90 simply and quickly, similar to the cell image analysis system 200 described above.

[0105] Furthermore, in the above embodiment, the following additional effects can be obtained by configuring as follows.

[0106] That is, as described above, this embodiment further includes a display unit 111 that displays the aging index information 24. As a result, the aging index information 24 is displayed on the display unit 111, and the aging index information 24 can be presented to the operator. As a result, the operator can easily grasp the degree of aging of the cell 90 depicted in the cell image 30 by visually checking the aging index information 24.

[0107] Furthermore, in this embodiment, as described above, the aging index information acquisition unit 14 is configured to acquire the aging index information 24 based on the pseudopodia 90b whose length is equal to or greater than a predetermined length. Thus, by acquiring the aging index information 24 based on the pseudopodia 90b whose length is equal to or greater than the predetermined length, it is possible to exclude, from the pseudopodia 90b from which the aging index information 24 is acquired, portions of cells 90 that overlap and appear elongated, portions of cells 90 that have separated from the main body 90a of the cells 90, dead cells 90, and the like. As a result, it is possible to prevent a decrease in the accuracy of the aging index information 24.

[0108] Furthermore, in this embodiment, as described above, the aging index information acquisition unit 14 is configured to acquire at least one of the distribution 24a of the lengths of the pseudopodia 90b and an index value 24b indicating the proportion of the acquired pseudopodia 90b that are equal to or longer than a predetermined length, and the display unit 111 is configured to display at least one of the distribution 24a of the lengths of the pseudopodia 90b and the index value 24b. Thus, when the distribution 24a of the lengths of the pseudopodia 90b is displayed on the display unit 111, the operator can visually grasp the degree of aging of the cell 90 based on the distribution 24a of the lengths of the pseudopodia 90b. Furthermore, when the index value 24b is displayed on the display unit 111, the operator can quantitatively grasp the degree of aging through numerical values.

[0109] Furthermore, in this embodiment, as described above, the aging index information acquirer 14 is configured to acquire the length of the pseudopodia 90b by acquiring the longitudinal length of the region 92 of the pseudopodia 90b. As a result, even if it is difficult to acquire the length of the pseudopodia 90b by image processing, for example, because the pseudopodia 90b is wavy, the longitudinal length of the region 92 of the pseudopodia 90b can be acquired as the length of the pseudopodia 90b.

[0110] Furthermore, in this embodiment, as described above, the aging index information acquirer 14 is configured to acquire the length of the longitudinal direction of the region 92 of the pseudopodia 90b by acquiring the length of the long side of the minimum circumscribing rectangle 71 of the region 92 of the pseudopodia 90b. Thus, by acquiring the minimum circumscribing rectangle 71, the longitudinal direction length of the region 92 of the pseudopodia 90b can be easily acquired.

[0111] Furthermore, in this embodiment, as described above, the pseudopodia region acquisition unit 13 is configured to acquire the pseudopodia-removed image 32 in which the pseudopodia 90b have been removed from the cell region 91, and to acquire the region 92 of the pseudopodia 90b based on the difference between the cell image 30 and the pseudopodia-removed image 32. In this way, by acquiring the cell image 30 and the pseudopodia-removed image 32, the region 92 of the pseudopodia 90b can be easily acquired.

[0112] Furthermore, in this embodiment, as described above, the pseudopodia region acquisition unit 13 is configured to acquire the pseudopodia-removed image 32 by performing contraction processing and expansion processing on the cell image 30. This allows for easy removal of elongated regions from the image by performing contraction processing, which can remove narrow portions from the image, and expansion processing, which returns the image shrunk by the contraction processing to its original size. As a result, pseudopodia 90b, which are elongated regions extending from the cell image 30, can be easily removed.

[0113] Furthermore, in this embodiment, as described above, the pseudopodia region acquisition unit 13 is configured to exclude, among the regions 92 of the pseudopodia 90b, the regions 92 of the pseudopodia 90b that have separated from the main body 90a of the cell 90 from the acquisition target of the aging index information 24. This makes it possible to acquire the aging index information 24 using the pseudopodia 90b that are connected to the main body 90a of the cell 90. As a result, it is possible to acquire the aging index information 24 based on the pseudopodia 90b of the living cell 90, thereby preventing a decrease in the accuracy of the aging index information 24.

[0114] Furthermore, in this embodiment, as described above, the pseudopodia region acquisition unit 13 is configured to exclude, from the acquisition target of the aging index information 24, the pseudopodia region 92, of which the proportion of the pseudopodia region 92 in the cell region 91 is equal to or greater than a predetermined size. Here, the pseudopodia 90b that has separated from the main body 90a of the cell 90 has a high proportion of the pseudopodia 90b in the cell region 91. Therefore, by excluding, from the acquisition target of the aging index information 24, the pseudopodia 90b that has separated from the main body 90a of the cell 90, of which the proportion of the pseudopodia region 92 in the cell region 91 is equal to or greater than a predetermined size, the pseudopodia 90b that has separated from the main body 90a of the cell 90 can be easily excluded from the acquisition target of the aging index information 24.

[0115] Furthermore, in this embodiment, as described above, the pseudopodia region acquisition unit 13 is configured to exclude, from the region 92 of the pseudopodia 90b, the pseudopodia 90b that contacts the edge of the cell image 30 from the acquisition target of the aging index information 24. This makes it possible to exclude, from the acquisition target of the aging index information 24, the pseudopodia 90b whose length cannot be accurately acquired due to contact with the edge of the cell image 30. As a result, it is possible to prevent a decrease in the accuracy of the aging index information 24 due to the pseudopodia 90b whose length cannot be accurately acquired.

[0116] Furthermore, in this embodiment, as described above, the cell region acquisition unit 12 is configured to acquire the cell region 91 based on the trained model 23, which has been trained to acquire the cell region 91 by extracting a cytoskeleton region from a teacher image showing a cell 90, and the cell image 30. This makes it possible to acquire the cell region 91 using the trained model 23, thereby reducing the burden on the operator compared to a configuration in which the operator acquires the cell region 91 visually.

[0117] Furthermore, this embodiment further includes a superimposed cell image generator 15 that superimposes the cell region 91 and the region 92 of the pseudopodia 90b on the cell image 30 as described above, and generates a superimposed cell image 80 in which the region 92 of the pseudopodia 90b is superimposed with a marker 70 indicating the length of the pseudopodia 90b. This allows the cell region 91 and the region 92 of the pseudopodia 90b in the cell image 30 to be easily recognized at a glance by checking the superimposed cell image 80. Furthermore, since the marker 70 indicating the length of the pseudopodia 90b is superimposed on the superimposed cell image 80, the length of the pseudopodia 90b can be easily recognized at a glance.

[0118] In addition, in this embodiment, as described above, the superimposed cell image generating unit 15 is configured to superimpose markers 70 with different display modes depending on the length of the pseudopodia 90b region 92. This makes it possible to easily grasp the difference in the length of the pseudopodia 90b based on the display mode of the markers 70.

[0119] Furthermore, in this embodiment, as described above, the superimposed cell image generating unit 15 is configured to superimpose a marker 70 in a different display manner on the pseudopodia 90b whose length is equal to or greater than a predetermined length and on the pseudopodia 90b whose length is less than the predetermined length. This makes it easy to identify the pseudopodia 90b from which the aging index information 24 is to be obtained.

[0120] [Variations] The embodiments disclosed herein should be considered to be illustrative and not restrictive in all respects. The scope of the present invention is defined by the claims rather than the above description of the embodiments, and further includes all modifications (variations) within the meaning and scope of the claims.

[0121] For example, in the above embodiment, the cell-image analyzing device 100 functions as a server of the cell-image analyzing system 200 constructed in a client-server model. However, the present invention is not limited to this. In the present invention, the cell-image analyzing device 100 may be configured as an independent computer, as shown in FIG. 13 . In the example of FIG. 13 , the cell-image analyzing device 100 is configured by a computer 300 including a processor 210 and a storage unit 220. A display unit 230 and an input unit 240 are connected to the computer 300. The computer 300 is communicatively connected to the imaging device 120. The processor 210 of the computer 300 includes, as functional blocks, the cell-image acquiring unit 11, the cell region acquiring unit 12, the pseudopodia region acquiring unit 13, the aging index information acquiring unit 14, and the superimposed cell image generating unit 15 shown in the above embodiment (see FIG. 3 ).

[0122] Furthermore, in the above embodiment and the modified example shown in FIG. 13, an example has been shown in which all image processing (processing as the cell image acquisition unit 11, cell region acquisition unit 12, pseudopodia region acquisition unit 13, aging index information acquisition unit 14, and superimposed cell image generation unit 15) is performed by a single processor 10 (210), but the present invention is not limited to this. Each image processing for the cell image 30 may be shared and performed by multiple processors. Each process may be performed by a separate processor. The multiple processors may be provided in separate computers. In other words, the cell image analysis device 100 may be configured with multiple computers that perform image processing.

[0123] Furthermore, in the above embodiment, an example of a configuration in which the cell-image analyzing system 200 includes the display unit 111 has been described, but the present invention is not limited to this. For example, the cell-image analyzing system 200 does not have to include the display unit 111. When the cell-image analyzing system 200 does not include the display unit 111, the processor 10 may be configured to output the aging index information 24 and the superimposed cell image 80 to an external display device.

[0124] Furthermore, in the above embodiment, an example of a configuration in which the aging index information acquisition unit 14 acquires the aging index information 24 based on pseudopodia 90b having a predetermined length or more has been described. However, the present invention is not limited to this. For example, the aging index information acquisition unit 14 may be configured to acquire the aging index information 24 using all pseudopodia 90b acquired by the pseudopodia region acquisition unit 13. However, the pseudopodia region acquisition unit 13 may acquire a region that is not actually a pseudopodia 90b due to overlapping of cells 90. In other words, the pseudopodia region acquisition unit 13 may acquire a region 92 of pseudopodia 90b that includes something other than pseudopodia 90b. Therefore, if the aging index information acquisition unit 14 acquires the aging index information 24 using all pseudopodia 90b, the accuracy of the aging index information 24 may be reduced. Therefore, it is preferable that the aging index information acquisition unit 14 acquires the aging index information 24 based on pseudopodia 90b having a predetermined length or more.

[0125] Furthermore, in the above embodiment, an example of a configuration in which the aging index information acquisition unit 14 acquires the length of the long side of the minimum circumscribing rectangle 71 as the length of the pseudopodia 90b has been described, but the present invention is not limited to this. For example, the aging index information acquisition unit 14 may be configured to acquire the actual length of the pseudopodia 90b. However, if the aging index information acquisition unit 14 is configured to acquire the actual length of the pseudopodia 90b, the process of acquiring the length of the pseudopodia 90b becomes complicated. Therefore, it is preferable that the aging index information acquisition unit 14 be configured to acquire the length of the long side of the minimum circumscribing rectangle 71 as the length of the pseudopodia 90b.

[0126] In the above embodiment, an example of a configuration has been shown in which the pseudopodia region acquisition unit 13 acquires the regions 92 of the pseudopodia 90b by subtracting the cell image 30 from the pseudopodia-removed image 32, but the present invention is not limited to this. As long as it is possible to acquire the regions 92 of the pseudopodia 90b, the method by which the pseudopodia region acquisition unit 13 acquires the regions 92 of the pseudopodia 90b is not important.

[0127] In the above embodiment, an example of a configuration has been shown in which the pseudopodia region acquisition unit 13 acquires the regions 92 of the pseudopodia 90b by performing contraction processing and expansion processing on the cell image 30, but the present invention is not limited to this. As long as it is possible to acquire the regions 92 of the pseudopodia 90b, the method by which the pseudopodia region acquisition unit 13 acquires the regions 92 of the pseudopodia 90b is not important.

[0128] In the above embodiment, an example of a configuration in which the pseudopodial region acquisition unit 13 executes the contraction process and the expansion process four times each has been shown, but the present invention is not limited to this. The number of times that the pseudopodial region acquisition unit 13 executes the contraction process and the expansion process can be set to any number depending on the thickness of the pseudopod 90b to be removed in the pseudopodial-removed image 32.

[0129] Furthermore, in the above embodiment, an example of a configuration in which the pseudopodia region acquisition unit 13 excludes pseudopodia 90b that have separated from the main body 90a of the cell 90 has been described, but the present invention is not limited to this. For example, the pseudopodia region acquisition unit 13 does not have to exclude pseudopodia 90b that have separated from the main body 90a of the cell 90. However, if the pseudopodia region acquisition unit 13 does not exclude pseudopodia 90b that have separated from the main body 90a of the cell 90, the pseudopodia 90b of dead cells 90 and / or elongated portions of overlapping cells 90 will be included in the pseudopodia 90b obtained from the aging index information 24. This reduces the accuracy of the aging index information 24. Therefore, it is preferable that the pseudopodia region acquisition unit 13 be configured to exclude pseudopodia 90b that have separated from the main body 90a of the cell 90.

[0130] Furthermore, in the above embodiment, an example of a configuration in which the pseudopodia region acquisition unit 13 excludes pseudopodia 90b that contact the edge of the cell image 30 has been described. However, the present invention is not limited to this. For example, the pseudopodia region acquisition unit 13 does not have to exclude pseudopodia 90b that contact the edge of the cell image 30. However, if the pseudopodia 90b contacts the edge of the cell image 30, it becomes difficult to accurately determine the shape of the minimum circumscribing rectangle 71. This makes it difficult to accurately acquire the length of the pseudopodia 90b. Therefore, if the pseudopodia region acquisition unit 13 does not exclude pseudopodia 90b that contact the edge of the cell image 30, pseudopodia 90b with inaccurate lengths will be included in the pseudopodia 90b used to acquire the aging index information 24. This reduces the accuracy of the aging index information 24. Therefore, it is preferable that the pseudopodia region acquisition unit 13 be configured to exclude pseudopodia 90b that contact the edge of the cell image 30.

[0131] Furthermore, in the above embodiment, an example of a configuration in which the cell image analysis system 200 (cell image analyzer 100) includes a superimposed cell image generation unit 15 has been described, but the present invention is not limited to this. For example, the cell image analysis system 200 (cell image analyzer 100) does not have to include the superimposed cell image generation unit 15. However, if the cell image analysis system 200 (cell image analyzer 100) does not include the superimposed cell image generation unit 15, the superimposed cell image 80 cannot be acquired. Therefore, it is preferable that the cell image analysis system 200 (cell image analyzer 100) includes the superimposed cell image generation unit 15.

[0132] Furthermore, in the above embodiment, an example of a configuration in which the superimposed cell image generating unit 15 changes the display mode of the marker 70 depending on the length of the pseudopodia 90b has been described, but the present invention is not limited to this. For example, the superimposed cell image generating unit 15 does not have to change the display mode of the marker 70 depending on the length of the pseudopodia 90b. However, if the superimposed cell image generating unit 15 does not change the display mode of the marker 70 depending on the length of the pseudopodia 90b, it will be difficult for the operator to grasp the difference in the length of the pseudopodia 90b at a glance. Therefore, it is preferable that the superimposed cell image generating unit 15 be configured to change the display mode of the marker 70 depending on the length of the pseudopodia 90b.

[0133] In the above embodiment, the display unit 111 displays the length distribution 24a of the pseudopodia 90b, the index value 24b, and the superimposed cell image 80. However, the present invention is not limited to this. For example, the display unit 111 does not need to display the length distribution 24a of the pseudopodia 90b, the index value 24b, or the superimposed cell image 80 as long as it displays at least one of the length distribution 24a of the pseudopodia 90b and the index value 24b.

[0134] [Aspect] It will be appreciated by those skilled in the art that the exemplary embodiments described above are examples of the following aspects.

[0135] (Item 1) a cell image acquisition unit that acquires a cell image showing a cell; a cell region acquisition unit that acquires a cell region from the cell image; a pseudopodia region acquisition unit that acquires a pseudopodia region, which is an elongated region, of the cell region of the cell image; A cell image analysis system comprising: an aging index information acquisition unit that acquires aging index information indicating the degree of aging of the cell based on the length of each of the pseudopodia.

[0136] (Item 2) Item 2. The cell image analysis system according to item 1, further comprising a display unit that displays the aging index information.

[0137] (Item 3) Item 3. The cell image analysis system according to item 2, wherein the aging index information acquisition unit is configured to acquire the aging index information based on the pseudopodia whose length is equal to or longer than a predetermined length.

[0138] (Item 4) the aging index information acquisition unit is configured to acquire at least one of an index value indicating a distribution of the lengths of the pseudopodia and a proportion of the acquired pseudopodia having a predetermined length or more; 4. The cell image analysis system according to item 3, wherein the display unit is configured to display at least one of the distribution of the pseudopodia lengths and the index value.

[0139] (Item 5) The cell image analysis system according to any one of items 1 to 4, wherein the aging index information acquisition unit is configured to acquire the length of the pseudopodia by acquiring the longitudinal length of the pseudopodia region.

[0140] (Item 6) Item 6. The cell image analysis system according to item 5, wherein the aging index information acquisition unit is configured to acquire the longitudinal length of the pseudopodia region by acquiring the length of the long side of the smallest circumscribing rectangle of the pseudopodia region.

[0141] (Item 7) The cell image analysis system according to any one of items 1 to 6, wherein the pseudopodia region acquisition unit is configured to acquire a pseudopodia-removed image in which the pseudopodia have been removed from the cell region, and to acquire the region of the pseudopodia based on the difference between the cell image and the pseudopodia-removed image.

[0142] (Item 8) 8. The cell image analysis system according to item 7, wherein the pseudopodia region acquisition unit is configured to acquire the pseudopodia-removed image by performing contraction processing and expansion processing on the cell image.

[0143] (Item 9) The cell image analysis system according to any one of items 1 to 8, wherein the pseudopodia region acquisition unit is configured to exclude, from the pseudopodia regions, the pseudopodia regions that are separated from the main body of the cell from the targets for acquiring the aging index information.

[0144] (Item 10) Item 10. The cell image analysis system according to Item 9, wherein the pseudopodia region acquisition unit is configured to exclude, from the acquisition of the aging index information, any pseudopodia region in which the proportion of the pseudopodia region in the cell region is equal to or greater than a predetermined size.

[0145] (Item 11) The cell image analysis system according to any one of items 1 to 10, wherein the pseudopodia region acquisition unit is configured to exclude, from the pseudopodia region, the pseudopodia that are in contact with the edge of the cell image from the targets for acquiring the aging index information.

[0146] (Item 12) 12. The cell image analysis system according to any one of items 1 to 11, wherein the cell area acquisition unit is configured to acquire the cell area based on the cell image and a trained model that has been trained to acquire the cell area by extracting a cytoskeleton area from a teacher image that shows the cell.

[0147] (Item 13) 13. The cell image analysis system according to any one of items 1 to 12, further comprising a superimposed cell image generation unit that superimposes the cell region and the pseudopodia region on the cell image and generates a superimposed cell image in which a label indicating the length of the pseudopodia is superimposed on the pseudopodia region.

[0148] (Item 14) Item 14. The cell image analysis system according to Item 13, wherein the superimposed cell image generation unit is configured to superimpose the markers in different display modes depending on the length of the pseudopodia region.

[0149] (Item 15) Item 15. The cell image analysis system according to item 14, wherein the superimposed cell image generation unit is configured to superimpose the marker in a different display manner on the pseudopodia whose length is equal to or greater than a predetermined length from the marker in the pseudopodia whose length is less than the predetermined length.

[0150] (Item 16) a cell image acquisition unit that acquires a cell image showing a cell; a cell region acquisition unit that acquires a cell region from the cell image; a pseudopodia region acquisition unit that acquires a pseudopodia region, which is an elongated region, of the cell region of the cell image; A cell image analysis device comprising: an aging index information acquisition unit that acquires aging index information indicating the degree of aging of the cell based on the length of each of the pseudopodia.

[0151] (Item 17) acquiring a cell image showing the cell; acquiring a cell region from the cell image; acquiring a pseudopodia region from the cell region; A cell image analysis method comprising a step of acquiring aging index information indicating the degree of aging of the cell based on the length of each of the pseudopodia. [Explanation of symbols]

[0152] 11 Cell image acquisition unit 12 Cell area acquisition department 13 Pseudopodia area acquisition part 14 Aging index information acquisition unit 15. Superimposed cell image generation unit 23 Pre-trained models 24 Aging index information 24a Distribution of pseudopod length 24b Indicative meaning 30 Cell Images 70 signs 71 Minimum circumscribed rectangle 80 superimposed cell images 90 cells 90a Cell body 90b pseudopodia 91 cell area 92 Pseudopodial Region 100 cell image analysis device 200 Cell Image Analysis System L is the length of the longest side of the minimum bounding rectangle

Claims

1. A cell image acquisition unit that acquires a cell image showing a cell capable of forming pseudopodia; a cell region acquisition unit that acquires a cell region from the cell image; a pseudopodia region acquisition unit that acquires the pseudopodia region, which is an elongated region within the cell region of the cell image; an aging index information acquisition unit that acquires aging index information indicating the degree of aging of the cell based on the length of each of the pseudopodia; A cell image analysis system, wherein the pseudopodia region acquisition unit is configured to exclude, from the pseudopodia region, the pseudopodia region that is separated from the main body of the cell from the targets for acquiring the aging index information.

2. The cell image analyzing system according to claim 1 , further comprising a display unit that displays the aging index information.

3. The cell image analysis system according to claim 2 , wherein the aging index information acquisition unit is configured to acquire the aging index information based on the pseudopodia having a length equal to or greater than a predetermined length.

4. the aging index information acquisition unit is configured to acquire at least one of an index value indicating a distribution of the lengths of the pseudopodia and a proportion of the acquired pseudopodia having a predetermined length or more; The cell image analyzing system according to claim 3 , wherein the display unit is configured to display at least one of the distribution of the lengths of the pseudopodia and the index value.

5. A cell image analysis system according to any one of claims 1 to 4, wherein the aging index information acquisition unit is configured to acquire the length of the pseudopodia by acquiring the longitudinal length of the pseudopodia region.

6. The cell image analysis system of claim 5, wherein the aging index information acquisition unit is configured to acquire the longitudinal length of the pseudopodia region by acquiring the length of the long side of the smallest circumscribing rectangle of the pseudopodia region.

7. The cell image analysis system of any one of claims 1 to 6, wherein the pseudopodia region acquisition unit is configured to acquire a pseudopodia-removed image in which the pseudopodia have been removed from the cell region, and to acquire the pseudopodia region based on the difference between the cell image and the pseudopodia-removed image.

8. The cell image analyzing system according to claim 7 , wherein the pseudopodia region acquiring unit is configured to acquire the pseudopodia-removed image by performing a contraction process and an expansion process on the cell image.

9. The cell image analysis system of claim 1, wherein the pseudopodia region acquisition unit is configured to exclude from the acquisition of the aging index information any pseudopodia region in which the proportion of the pseudopodia region in the cell region is equal to or greater than a predetermined size.

10. The cell image analysis system according to any one of claims 1 to 9, wherein the pseudopodia region acquisition unit is configured to exclude the pseudopodia in the pseudopodia region that are in contact with the edge of the cell image from the targets for acquiring the aging index information.

11. The cell image analysis system according to any one of claims 1 to 10, wherein the cell area acquisition unit is configured to acquire the cell area based on the cell image and a trained model that has been trained to acquire the cell area by extracting a cytoskeleton area from a teacher image containing the cell.

12. A cell image analysis system according to any one of claims 1 to 11, further comprising a superimposed cell image generation unit that superimposes the cell region and the pseudopodia region on the cell image and generates a superimposed cell image in which a label indicating the length of the pseudopodia is superimposed on the pseudopodia region.

13. The cell image analyzing system according to claim 12 , wherein the superimposed cell image generating unit is configured to superimpose the markers in different display modes depending on the length of the pseudopodia region.

14. The cell image analysis system of claim 13, wherein the superimposed cell image generation unit is configured to superimpose the marker with a different display mode for pseudopodia whose length is equal to or greater than a predetermined length than for pseudopodia whose length is less than the predetermined length.

15. A cell image acquisition unit that acquires a cell image showing a cell capable of forming pseudopodia; a cell region acquisition unit that acquires a cell region from the cell image; a pseudopodia region acquisition unit that acquires the pseudopodia region, which is an elongated region within the cell region of the cell image; an aging index information acquisition unit that acquires aging index information indicating the degree of aging of the cell based on the length of each of the pseudopodia; The pseudopodia region acquisition unit is configured to exclude, from the pseudopodia region, the pseudopodia region that is separated from the main body of the cell from the targets for acquiring the aging index information.

16. A step of acquiring a cell image showing a cell capable of forming pseudopodia; acquiring a cell region from the cell image; acquiring a region of the pseudopodia from the cell region; obtaining senescence index information indicating the degree of senescence of the cells based on the length of each of the pseudopodia; and excluding, from the target for obtaining the aging index information, the pseudopodia region that is separated from the main body of the cell.

Citation Information

Patent Citations

  • Method for assessing cell quality and cell quality determination kit

    JP6694240B2

  • Cell image analysis device, cell image analysis system, learning data generation method, learning model generation method, learning data generation program, and learning data production method

    WO2019180848A1

  • Method for correcting teacher label image, method for preparing learned model, and image analysis device

    WO2020031243A1

  • Cell analysis device

    WO2020188813A1