Method for extracting nucleic acid from biological material and apparatus for extracting nucleic acid from biological material

The method and apparatus use a rotating rotor to collect and process nucleic acid-containing sediments from terrestrial environments, addressing the limitations of existing technologies by enabling comprehensive and efficient recovery of nucleic acids from terrestrial organisms.

JP7767935B2Active Publication Date: 2025-11-12KK TOYOTA CHUO KENKYUSHO
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Patent Information

Application Number
JP2022006286
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-01-19
Publication Date
2025-11-12
Estimated Expiration
2042-01-19

AI Technical Summary

Technical Problem

Existing methods for recovering biological nucleic acids from terrestrial organisms are limited in scope and efficiency, particularly in sampling over wide areas and capturing nucleic acids from organisms that live away from water bodies, where they are more resistant to degradation.

Method used

A method and apparatus involving a rotating rotor that contacts the ground surface to collect nucleic acid-containing sediments, which are then processed to extract biological nucleic acids, allowing comprehensive sampling over a wide area and capturing nucleic acids from terrestrial organisms, including those released into the atmosphere.

Benefits of technology

Enables efficient and unbiased recovery of nucleic acids from a wider range of biological species, including those living on the ground and in the atmosphere, with reduced sampling bias and improved stability compared to water-based methods.

✦ Generated by Eureka AI based on patent content.

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Abstract

To collect nucleic acids deriving from organisms living overland in a wide range.SOLUTION: An organism-derived nucleic acid collecting method that collects organism-derived nucleic acids from environments comprises: setting a collection target area in which organism-derived nucleic acids in the environments are collected; adhering a nucleic acid-containing sediment including the organism-derived nucleic acids existing on a land surface to a surface of a rotor, by causing the surface of the rotor to be in contact with the land surface and to rotate in the collection target area; and collecting the nucleic acid-containing sediment from the rotor.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present disclosure relates to a method for extracting biological nucleic acid and an apparatus for extracting biological nucleic acid. [Background technology]

[0002] Methods for investigating or monitoring biological species present in the environment include recovering biological nucleic acids from the environment, analyzing the recovered nucleic acids, and identifying the biological species from which the nucleic acids originate. Biological nucleic acids are nucleic acids that contain the genetic information of an organism and are released from the organism into the environment, and are included in nucleic acids present in the environment, such as environmental DNA. Known methods for recovering and analyzing such biological nucleic acids from the environment include environmental DNA analysis of water samples (environmental water samples) collected from bodies of water such as rivers (see, for example, Patent Documents 1 and 2). Another known method for detecting terrestrial mammals is environmental DNA analysis, which involves combining the results of video analysis from a fixed-point camera with soil samples collected near the camera (e.g., soil samples taken at a depth of 2 cm every 2 m) (see, for example, Non-Patent Document 1). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2017-99376 [Patent Document 2] Japanese Patent Publication No. 2020-92645 [Non-patent literature]

[0004] [Non-Patent Document 1] Kevin Leempoel et al. A comparison of eDNA to camera trapping for assessment of terrestrial mammal diversity. Rroceedings of the Royal Society B. 2020 Jan 15, vol. 287(1918) Summary of the Invention [Problem to be solved by the invention]

[0005] However, when analyzing water samples, only nucleic acids from fish, waterfowl, and animals that live in the water area where the sample was collected, or from animals that visit the water area, can be recovered. Therefore, there has been a need to recover and analyze nucleic acids from biological organisms that live away from water. In particular, because nucleic acids are easily degraded in water, recovering biological nucleic acids from land, where biological nucleic acids exist in a dry state where they are relatively resistant to degradation, is expected to enable comprehensive survey and monitoring of existing biological species. As a method for recovering nucleic acids from terrestrial organisms, when soil is collected as the analysis target, as described in Non-Patent Document 1, it has been difficult to sample over a wide area. Therefore, there has been a need for a technology that can recover nucleic acids from terrestrial organisms over a wide area. [Means for solving the problem]

[0006] The present disclosure can be realized in the following forms. (1) According to one aspect of the present disclosure, there is provided a method for recovering biological nucleic acids from an environment. This method for recovering biological nucleic acids comprises: setting a recovery target area from which biological nucleic acids in the environment are to be recovered; rotating a rotor in the recovery target area while bringing the surface of the rotor into contact with the ground surface, thereby causing nucleic acid-containing sediments present on the ground surface and containing the biological nucleic acids to adhere to the surface of the rotor; and recovering the nucleic acid-containing sediments from the rotor. According to this embodiment of the method for extracting biological nucleic acids, in a designated collection target area, the surface of a rotating body provided in the biological nucleic acid extraction device is rotated while in contact with the ground, causing nucleic acid-containing sediments containing biological nucleic acids present on the ground to adhere to the surface of the rotating body, thereby recovering the nucleic acid-containing sediments. In this way, the simple operation of rotating the rotating body while in contact with the ground to recover nucleic acid-containing sediments on the ground makes it possible to comprehensively sample nucleic acids derived from terrestrial organisms over a wide area in the collection target area. Furthermore, since the nucleic acid-containing sediments recovered from the ground may contain not only nucleic acids derived from organisms living on the ground, but also nucleic acids derived from organisms released into the atmosphere, it is possible to recover nucleic acids derived from a wider range of biological species that inhabit or reside in the collection target area. (2) The method for recovering nucleic acids from organisms described above may further include a step of extracting nucleic acids from the recovered nucleic acid-containing surface sediments. This configuration allows for the extraction of nucleic acids from a wider range of biological species with less bias, with respect to organisms that have inhabited or stayed in the recovery area. (3) According to another aspect of the present disclosure, there is provided an apparatus for recovering biological nucleic acids from the environment, the apparatus for recovering biological nucleic acids comprising: a rotor that rotates while in contact with the ground surface as the apparatus for recovering biological nucleic acids moves, and onto whose surface nucleic acid-containing deposits containing biological nucleic acids present on the ground surface adhere when it comes into contact with the ground; and a recovery unit that recovers the nucleic acid-containing deposits adhered to the surface of the rotor. According to this type of biological nucleic acid recovery device, the surface of the rotating body provided in the biological nucleic acid recovery device is rotated while in contact with the ground, causing nucleic acid-containing sediments containing biological nucleic acids present on the ground to adhere to the surface of the rotating body, and the nucleic acid-containing sediments adhered to the surface of the rotating body are then recovered by the recovery body. In this way, the recovery of nucleic acid-containing sediments on the ground can be achieved simply by rotating the rotating body while in contact with the ground, making it possible to comprehensively sample nucleic acids derived from terrestrial organisms over a wide area. Furthermore, since the nucleic acid-containing sediments recovered from the ground may contain not only nucleic acids derived from organisms living on the ground but also nucleic acids derived from organisms released into the atmosphere, it is possible to recover biological nucleic acids from a wider range of biological species. (4) In the biological nucleic acid recovery device of the above configuration, the recovery body may contact the surface of the rotor to recover the nucleic acid-containing sediment adhering to the surface of the rotor. With this configuration, the nucleic acid-containing sediment can be recovered by bringing the recovery body into contact with the surface of the rotor. (5) In the biological nucleic acid recovery device of the above embodiment, the recovery body may include at least one of a rotor-shaped member, a brush-shaped member, and a duster-shaped member. With this configuration, the recovery body can efficiently recover nucleic acid-containing deposits attached to the surface of the rotor. (6) In the biological nucleic acid recovery device of the above aspect, the recovery body may be detachably attached to the rotor so as to form the surface of the rotor that contacts the ground. With this configuration, nucleic acid-containing sediments can be recovered by attaching the nucleic acid-containing sediments to the surface of the rotor and then removing the recovery body that forms the surface of the rotor. (7) In the biological nucleic acid recovery device of the above embodiment, the recovery body may be formed in a sheet shape. With this configuration, the recovery body can form the surface of the rotor and the recovery body can be easily attached and detached to the rotor, thereby improving the recovery efficiency of biological nucleic acid using the recovery body. (8) In the biological nucleic acid recovery device of the above embodiment, the recovery body may be made of at least one of rubber, resin, and nonwoven fabric, which allows nucleic acid-containing sediments present on the ground surface to adhere well to the recovery body. (9) In the above-described apparatus for extracting biological nucleic acid, the area of ​​the rotator may be 8% or more of the total area of ​​the apparatus for extracting biological nucleic acid when the apparatus is projected vertically. With this configuration, the area of ​​the rotator can be secured, thereby increasing the efficiency of extracting biological nucleic acid using the rotator. (10) The biological nucleic acid recovery device of the above embodiment may further include a connecting member that connects the rotating body to an external autonomously movable vehicle. With this configuration, nucleic acid-containing sediments can be recovered by the rotating body that is provided separately from the autonomously movable vehicle. The present disclosure can be realized in various forms other than those described above, for example, in the form of a method for extracting nucleic acid derived from a living organism, a method for analyzing nucleic acid derived from a living organism, or the like. [Brief explanation of the drawings]

[0007] [Figure 1] 1 is a flowchart showing a method for recovering nucleic acid from a living organism. [Figure 2] FIG. 1 is an explanatory diagram showing how biological nucleic acids are recovered using a biological nucleic acid recovery device. [Figure 3] FIG. 2 is an explanatory diagram showing the operation of recovering biological nucleic acid in the biological nucleic acid recovery device. [Figure 4] 1 is a flowchart showing an example of a method for extracting nucleic acid derived from a living organism. [Figure 5] 10 is a flowchart showing another example of a method for extracting nucleic acid derived from a living organism. [Figure 6] FIG. 1 is an explanatory diagram showing how biological nucleic acids are recovered using a biological nucleic acid recovery device. [Figure 7] FIG. 1 is an explanatory diagram showing how biological nucleic acids are recovered using a biological nucleic acid recovery device. [Figure 8]FIG. 1 is an explanatory diagram showing the analysis results of an environmental DNA sample. DETAILED DESCRIPTION OF THE INVENTION

[0008] A. First embodiment: (A-1) Overview of the method for extracting nucleic acids from living organisms: FIG. 1 is a flowchart illustrating a first embodiment of a method for extracting biological nucleic acids. FIG. 2 is an explanatory diagram illustrating a schematic diagram of a portion of the method for extracting biological nucleic acids shown in FIG. 1 being performed using an apparatus 10 for extracting biological nucleic acids. Here, biological nucleic acids refer to nucleic acids containing the genetic information of an organism and are substances that constitute the organism. The biological nucleic acids to be extracted may be deoxyribonucleic acid (DNA), but biological nucleic acids including ribonucleic acid (RNA) may also be extracted and analyzed. In this embodiment, to extract biological nucleic acids, the apparatus 10 for extracting biological nucleic acids is used to extract nucleic acid-containing sediments containing biological nucleic acids from the earth's surface. Nucleic acid-containing sediments include cells and tissue fragments detached from various organisms, excrement-derived substances, and substances (such as debris) derived from the remains of organisms. Nucleic acid-containing sediments present on the earth's surface include biological nucleic acids derived from various biological species present above the earth's surface (e.g., on the ground, in the air, etc.). Below, an overview of the method for extracting biological nucleic acids is described using FIGS. 1 and 2.

[0009] When collecting biological nucleic acids, researchers who survey and monitor biological species first set a collection target area from which to collect biological nucleic acids (step T100). The collection target area is an area where the biological species that inhabit it are surveyed and monitored, and by collecting and analyzing biological nucleic acids from the set collection target area, it becomes possible to survey and monitor the biological species that inhabit that area.

[0010] Next, the researcher prepares an apparatus for extracting biological nucleic acid (step T110). As shown in FIG. 2(A), the apparatus 10 for extracting biological nucleic acid of this embodiment is a land vehicle equipped with a rotor 12, which is a wheel for traveling. The configuration of the apparatus 10 for extracting biological nucleic acid will be explained in detail later. In FIGS. 2(A) to 2(C), the direction in which the apparatus 10 for extracting biological nucleic acid moves is indicated by an outline arrow.

[0011] Next, the researcher moves the biological nucleic acid recovery device 10 in the recovery target area set in step T100 while keeping the rotator 12 in contact with the ground surface (step T120). As shown in Figures 2(B) and 2(C), when the biological nucleic acid recovery device 10 is moved, the rotator 12 rotates and moves while in contact with the ground surface 20 as the biological nucleic acid recovery device 10 moves. As a result, the rotator 12 is pressed against the ground surface 20, and nucleic acid-containing deposits 22 present on the ground surface 20 adhere to the surface of the rotator 12. It is desirable that the location within the recovery target area over which the biological nucleic acid recovery device 10 moves is a flat ground surface 20, such as a paved road, so that the contact area between the rotator 12 and the ground surface 20 is large. However, the device may travel on various types of ground surfaces, such as bare soil or surfaces covered with vegetation such as grass. In addition to the above-mentioned ground surface conditions, the state in which nucleic acid-containing deposits adhere to the rotator 12 is affected, for example, by weather. Specifically, for example, after rain, the state of nucleic acid-containing sediments on the ground surface may change due to the nucleic acid-containing sediments being washed away and disappearing, or different biological species than those present during sunny weather appearing on the ground surface. When, for example, biological species in a target recovery area are repeatedly monitored by analyzing the recovered biological nucleic acids, it is desirable to standardize the conditions for recovering nucleic acid-containing sediments in the target recovery area.

[0012] After starting the operation of attaching nucleic acid-containing deposits to the surface of the rotator 12 in step T120, if the investigator determines in step T130 that the operation of biological nucleic acid recovery within the recovery target area is not complete (step T130; NO), the investigator continues the operation of step T120. For example, the operation of biological nucleic acid recovery can be determined to be complete when the distance traveled when moving the biological nucleic acid recovery device 10 within the recovery target area or the travel time of the biological nucleic acid recovery device 10 reaches a predetermined reference value. Alternatively, a pattern for the movement of the biological nucleic acid recovery device 10 within the recovery target area can be set in advance, and the operation of biological nucleic acid recovery can be determined to be complete when the movement according to this pattern is completed. By increasing the travel distance of the biological nucleic acid recovery device 10 and increasing the number of contact opportunities between the rotator 12 and the ground surface 20, the amount of biological nucleic acid adhering to the rotator 12 can be increased.

[0013] In step T130, when it is determined that the operation of collecting biological nucleic acids within the collection target area has been completed (step T130; YES), the investigator collects the biological nucleic acids from the rotor 12 (step T140). The operation of collecting the nucleic acid-containing sediment from the rotor 12 and obtaining the biological nucleic acids from the nucleic acid-containing sediment will be described in detail later.

[0014] (A-2) Configuration of biological nucleic acid recovery device: 3 is an explanatory diagram showing the operation of recovering biological nucleic acid attached to the rotator 12 in the biological nucleic acid recovery device 10 of the first embodiment. As shown in FIG. 3, the biological nucleic acid recovery device 10 includes a recovery unit 30 in addition to the rotator 12 as a configuration related to the recovery of biological nucleic acid. Note that the recovery unit 30 is not shown in FIG. 2 described above. Below, the overall configuration of the biological nucleic acid recovery device 10 will be described, and the configuration related to the recovery of biological nucleic acid using the rotator 12 and the recovery unit 30 will be sequentially described.

[0015] As described above, the biological nucleic acid recovery device 10 used in the biological nucleic acid recovery method of this embodiment is a land vehicle equipped with a rotator 12, which is a wheel for traveling. In FIG. 2, the biological nucleic acid recovery device 10 is depicted as a four-wheeled vehicle having four wheels, which are the rotator 12, but it may also have a different configuration, such as a tricycle, a two-wheeled vehicle, or a unicycle. The biological nucleic acid recovery device 10 may be a self-propelled vehicle equipped with a power source for moving the biological nucleic acid recovery device 10, such as an electric motor or an internal combustion engine, or may be a non-self-propelled device that can be moved by external power such as human power. Hereinafter, both self-propelled and non-self-propelled devices will be referred to as a "vehicle."

[0016] Such a biological nucleic acid recovery device 10 may be a manned device with a driver on board who drives the device for transportation, or may be an unmanned device that can be driven automatically or remotely operated. In the case of an unmanned device that can be driven automatically or remotely operated, the entire biological nucleic acid recovery device 10 can be made smaller. This makes it possible to recover biological nucleic acids by entering narrow spaces that are difficult for a manned device to enter. Furthermore, the biological nucleic acid recovery device 10 may be configured as a dedicated device for recovering biological nucleic acids, or may have as its basic structure a mobile object such as a general-purpose vehicle or a self-propelled vehicle for various purposes such as agricultural or construction use.

[0017] The larger the area of ​​the rotating body 12 provided in the biological nucleic acid recovery apparatus 10 that comes into contact with the ground surface 20, the more the amount of nucleic acid recovered per operation of recovering biological nucleic acid shown in Figure 1, i.e., the amount of information that can be obtained as nucleic acids, can be increased. Therefore, from the perspective of increasing the amount of nucleic acid recovered, the area of ​​the rotating body 12 relative to the overall area of ​​the biological nucleic acid recovery apparatus 10 when viewed projected vertically may be 1% or more, preferably 8% or more, more preferably 10% or more, and even more preferably 20% or more. In particular, when the biological nucleic acid recovery apparatus 10 is configured as a dedicated machine for recovering biological nucleic acids, it is easy to make the area of ​​the rotating body 12 relative to the overall area of ​​the biological nucleic acid recovery apparatus 10 relatively large.

[0018] The rotor 12 may be made of any material that can be used as a wheel for propelling the biological nucleic acid recovery device 10 and that can adhere nucleic acid-containing sediments when pressed against the ground surface 20. When the rotor 12 is reused to recover biological nucleic acids, the rotor 12 may be made of a material that can withstand repeated treatments to prevent residual biological nucleic acids that adhered during previous use, specifically, treatments such as washing the rotor 12 and nucleic acid removal treatments using chlorine bleach or a nucleic acid decomposing agent. The rotor 12 may have a base made of, for example, stainless steel or silicone resin, and at least the surface that comes into contact with the ground surface may be made of rubber or resin.

[0019] The recovery body 30 shown in Fig. 3 described above is a member that comes into contact with the surface of the rotator 12 to recover nucleic acid-containing sediments adhered to the surface of the rotator 12. The recovery body 30 is provided near the rotator 12 and is held at a position spaced apart from the surface of the rotator 12 while the biological nucleic acid recovery apparatus 10 moves to perform the operation of adhering nucleic acid-containing sediments to the rotator 12. After the operation of adhering nucleic acid-containing sediments to the rotator 12 is completed, the recovery body 30 is moved so as to be pressed against the surface of the rotator 12 in step T140 of Fig. 1.

[0020] In the biological nucleic acid recovery device 10 shown in FIG. 3 , the recovery body 30 is provided at the tip of an arm 32 that can be rotated to any position around a rotation axis 31 provided on the biological nucleic acid recovery device 10. For example, the arm 32 can be rotated by a predetermined angle using a motor or the like to press the recovery body 30 against the rotor 12 and hold the recovery body 30 in that position. Alternatively, the recovery body 30 can be suspended by being fixed to the tip of a chain-like member above the rotor 12. In this case, for example, the member suspending the recovery body 30 can be moved vertically to bring the recovery body 30 into contact with the upper part of the rotor 12, and the recovery body 30 can be pressed against the rotor 12 by its own weight. By further moving the biological nucleic acid recovery device 10 with the recovery body 30 pressed against the rotor 12 in this manner, the rotor 12 will rotate, and nucleic acid-containing sediments adhering to the surface of the rotor 12 will be recovered by the recovery body 30.

[0021] The shape of the collector 30 may be any shape that allows it to contact the rotor 12 and recover nucleic acid-containing deposits adhering to the surface of the rotor 12. However, increasing the surface area in contact with the rotor 12 can increase the amount of nucleic acid-containing deposits recovered from the rotor 12 to the collector 30. From the viewpoint of ensuring a sufficient surface area in contact with the rotor 12, the collector 30 can be, for example, a rotor-shaped member. FIG. 3 illustrates a case in which the collector 30 is configured as a rotor-shaped member. The collector 30 as a rotor-shaped member shown in FIG. 3 is formed in a cylindrical shape, and a rotation axis 33 is provided at the tip of an arm 32 so as to overlap with the central axis of the cylindrical collector 30. When the side of the cylindrical collector 30 is pressed against the rotor 12, the collector 30 also rotates in conjunction with the rotation of the rotor 12, and nucleic acid-containing deposits are transferred from the surface of the rotor 12 to the collector 30 and recovered. In this way, the use of a rotor-shaped collector 30 enables efficient recovery of nucleic acid-containing deposits.

[0022] The collection body 30 may also be a brush-like member. By pressing the bristles of the collection body 30, which is a brush-like member, against the rotor 12, the nucleic acid-containing deposits can be efficiently collected by the collection body 30. Alternatively, the collection body 30 may be a duster-like member. Specifically, the collection body 30 may be a member formed by bundling an elongated cloth member or an elongated resin or rubber sheet member at its base. This ensures a large total area of ​​the members constituting the collection body 30, allowing the collection body 30 to efficiently collect nucleic acid-containing deposits. The collection body 30 may have a shape different from that described above, as long as it can collect nucleic acid-containing deposits attached to the surface of the rotor 12 by contacting the collection body 30 with the surface of the rotor 12.

[0023] When rotating the rotor 12 while pressing the collector 30 against it, the longer the travel distance of the biological nucleic acid recovery device 10 accompanying the rotation of the rotor 12, the greater the amount of nucleic acid-containing sediment recovered by the collector 30. Note that while Figure 3 shows a state in which the collector 30 is disposed on one of the multiple rotors 12, it is sufficient to provide a collector 30 on all wheels used as rotors 12 for recovering nucleic acid-containing sediments. Furthermore, multiple collectors 30 may be provided on one rotor 12.

[0024] (A-3) Extraction and analysis of biological nucleic acids: The following describes an outline of the operation of extracting biological nucleic acids from nucleic acid-containing sediments collected by the collection body 30, and the analysis using the same.

[0025] Fig. 4 is a flowchart showing an example of a method for extracting biological nucleic acids. Fig. 4 shows a case where a relatively small collection body 30 is used, and nucleic acids are extracted directly from the collection body 30. When extracting biological nucleic acids, first, a collection body 30 having nucleic acid-containing sediments attached thereto is prepared (step T200). This collection body 30 is obtained by collecting nucleic acid-containing sediments from the rotator 12 in step T140 of Fig. 1.

[0026] Thereafter, the collected body 30 is disrupted and suspended in a liquid (step T210). The liquid used here may be a lysis buffer that dissolves cells and tissues. The collected body 30 may be disrupted by adding, for example, ceramic beads to the collected body 30 and stirring the mixture. By disrupting the collected body 30 in this manner, the nucleic acid-containing sediments adhering to the collected body 30 are detached from the collected body 30, and the biological nucleic acids in the nucleic acid-containing sediments are eluted into the suspension of the disrupted collected body 30.

[0027] Thereafter, the biological nucleic acids are extracted from the suspension into which the biological nucleic acids have been eluted (step T220). The biological nucleic acids can be extracted, for example, by centrifuging the suspension, recovering the supernatant containing the dissolved biological nucleic acids, selecting an appropriate column to remove impurities, and then purifying the biological nucleic acids using a column capable of adsorbing nucleic acids. Examples of the impurities include substances that inhibit the reaction involved in the PCR step described below. The nucleic acid extraction steps shown as steps T210 and T220 are well-known methods, and may involve using, for example, a commercially available soil DNA extraction kit.

[0028] Fig. 5 is a flowchart showing another example of a method for extracting biological nucleic acids. Fig. 5 shows a case where a relatively large collection body 30 is used, and prior to nucleic acid extraction, a procedure for concentrating nucleic acid-containing deposits attached to the collection body 30 is performed. When extracting biological nucleic acids, first, a collection body 30 to which nucleic acid-containing deposits are attached is prepared (step T300), similar to step T200.

[0029] The prepared collection body 30 is then washed in a liquid (step T310). The liquid used here may be a nuclease-free buffer or nuclease-free water that does not contain nuclease-degrading enzymes. By washing the collection body 30 in such a liquid, the nucleic acid-containing sediments are detached from the collection body 30 and transferred into the liquid, forming a suspension. The suspension containing the nucleic acid-containing sediments is then filtered to obtain a residue containing the nucleic acid-containing sediments, and the nucleic acid-containing sediments are concentrated on the filter (step T320). The pore size of the filter used here may be appropriately selected so as to efficiently recover the nucleic acid-containing sediments contained in the substances attached to the collection body 30. The pore size of the filter used to concentrate the nucleic acid-containing sediments is, for example, preferably 0.22 to 10 μm, and more preferably 0.22 to 5 μm. During filtration, filtration efficiency can be improved by, for example, applying negative pressure using a vacuum pump or applying pressure using a pump.

[0030] The substances adhering to the collection body 30 may also include unwanted substances that are difficult to use as targets for extracting biological nucleic acids. Therefore, in order to improve the efficiency of concentrating the nucleic acid-containing sediments by the above-mentioned filtration and the efficiency of the subsequent nucleic acid extraction, the unwanted substances may be removed prior to the filtration for concentrating the nucleic acid-containing sediments. To remove the unwanted substances, the suspension may be filtered prior to concentrating the nucleic acid-containing sediments using a filter with a coarser mesh (e.g., a pore size of approximately 100 μm) than the filter used for concentrating the nucleic acid-containing sediments. The resulting filtrate may then be subjected to filtration for concentrating the nucleic acid-containing sediments. Examples of the unwanted substances include relatively large plant fragments such as leaves, dead organisms such as insects, and stones.

[0031] After obtaining the filter with concentrated nucleic acid-containing sediments in step T320, the filter is then crushed and suspended in a liquid (step T330). This step T330 is the same as step T210 in FIG. 4. As a result, the nucleic acid-containing sediments concentrated on the filter are peeled off from the filter, and the biological nucleic acids in the nucleic acid-containing sediments are eluted into the suspension resulting from the crushed filter. The biological nucleic acids are then extracted from the suspension into which the biological nucleic acids have been eluted (step T340). Step T340 is the same as step T220 in FIG. 4.

[0032] The extracted biological nucleic acids can be analyzed by various known methods. For example, species-specific analyses, such as quantitative PCR (qPCR), can be performed to determine the presence or absence of a specific biological species or quantify its abundance. By selecting appropriate primers and performing PCR with a focus on a specific group of biological species, such as birds or mammals, analysis can be narrowed down to that specific group. Furthermore, by selecting appropriate primers and performing PCR, it is possible to identify a wider range of biological species at once. Furthermore, by comparing the base sequence obtained using a next-generation sequencer or the like with a database, comprehensive analysis can be performed to identify the biological species, or haplotype analysis within the same species can be performed. In this way, information on organisms inhabiting or residing in the target collection area can be obtained.

[0033] According to the method for extracting biological nucleic acids and the apparatus for extracting biological nucleic acids 10 of this embodiment configured as described above, in a designated collection target area, the rotating body 12 provided in the apparatus for extracting biological nucleic acids 10 is rotated while the surface of the rotating body 12 is in contact with the ground surface 20, thereby causing nucleic acid-containing sediments 22 containing biological nucleic acids present on the ground surface 20 to adhere to the surface of the rotating body 12. The surface of the rotating body 12 is then contacted with the collecting body 30, and the nucleic acid-containing sediments 22 attached to the rotating body 12 are collected by the collecting body 30. In this way, since the rotating body is rotated while in contact with the ground surface to collect nucleic acid-containing sediments on the ground, it is possible to comprehensively sample nucleic acids derived from terrestrial organisms from a wider area in the collection target area. Specifically, because nucleic acid-containing sediments are collected using the rotating body 12, bias in the locations from which samples are actually collected can be reduced within the collection target area. For example, when soil is the object to be collected, sample collection locations are generally dispersed within the recovery area, but when nucleic acid-containing sediments 22 are collected using the rotor 12 as in this embodiment, sampling can be performed from a wider, continuously spreading area within the recovery area, making it possible to comprehensively conduct surveys, monitoring, and other analyses of the biological species inhabiting the recovery area.

[0034] Furthermore, in this embodiment, nucleic acid-containing sediments recovered from the earth's surface 20 may contain not only nucleic acids derived from organisms living on the surface, but also nucleic acids derived from organisms released into the atmosphere. This is because substances containing nucleic acids of a certain weight, such as biological tissues and excrement, tend to accumulate on the surface. Therefore, this embodiment enables the analysis of various biological species present above the surface. For example, when sampling from soil, the obtained nucleic acids are likely to be limited to nucleic acids derived from organisms living in the sampled soil. However, this embodiment makes it possible to recover nucleic acids derived from a wider range of biological species that inhabit or reside in the recovery target area. In particular, this embodiment samples nucleic acid-containing sediments from a dry terrestrial environment, which allows for sampling from an environment in which nucleic acids are more likely to exist stably than, for example, when sampling from aquatic areas, thereby improving the efficiency of recovering biological nucleic acids.

[0035] In the first embodiment described above, the biological nucleic acid recovery device 10 includes the recovery unit 30 in addition to the rotator 12. However, the biological nucleic acid recovery method may be performed with a different configuration. Specifically, a mobile unit without the recovery unit 30 may be used as the biological nucleic acid recovery device. The nucleic acid-containing sediment 22 may be attached to the rotator 12 of the mobile unit. Then, step T140 in FIG. 1 may be performed by manually recovering the nucleic acid-containing sediment 22 from the rotator 12 of the mobile unit to the recovery unit using a recovery member prepared separately from the mobile unit. In this case, the recovery member for manually recovering the nucleic acid-containing sediment 22 from the rotator 12 may be, for example, a rotator-shaped member, a brush-shaped member, or a duster-shaped member, as exemplified by the recovery unit 30 included in the biological nucleic acid recovery device 10 in the first embodiment. Alternatively, a swab-shaped member may be used, as long as it is capable of recovering the nucleic acid-containing sediment from the surface of the rotator 12.

[0036] B. Second embodiment: Fig. 6 is an explanatory diagram that schematically shows how the biological nucleic acid recovery method shown in Fig. 1 is performed using the biological nucleic acid recovery device 110 of the second embodiment. Below, the operation of recovering biological nucleic acid using the biological nucleic acid recovery device 110 will be described based on Fig. 6 and Fig. 1.

[0037] 1 has the same configuration as the biological nucleic acid recovery device 10 of the first embodiment, except that it has a rotor 112 instead of the rotor 12, and a recovery unit 14 included in the rotor 112 instead of the recovery unit 30. In the second embodiment, when the rotors included in the biological nucleic acid recovery device 110 are not to be distinguished, they are collectively referred to as rotor 112, and when they are to be distinguished, they are distinguished as rotors 112a, 112b, etc.

[0038] The biological nucleic acid recovery device 110 is a land vehicle equipped with rotating bodies 112, which are wheels for running that rotate while in contact with the ground surface as the biological nucleic acid recovery device 110 moves. The biological nucleic acid recovery device 110 may have a four-wheeled vehicle as shown in FIG. 6, or may have a different configuration such as a tricycle, a two-wheeled vehicle, or a unicycle. The biological nucleic acid recovery device 110 may be a self-propelled vehicle or a non-self-propelled vehicle. The biological nucleic acid recovery device 110 may be a manned device or an unmanned device.

[0039] As shown in Figure 6(A), the rotating body 112 included in the biological nucleic acid recovery device 110 includes a rotating body base 113 and a recovery body 14. The rotating body base 113 rotates on the ground surface as the biological nucleic acid recovery device 112 moves. The recovery body 14 is detachably disposed on the rotating body base 113 so as to cover the surface of the rotating body base 113 facing the ground surface, and is a member to which nucleic acid-containing deposits 22 containing biological nucleic acids present on the ground surface are attached when the recovery body 14 comes into contact with the ground surface as the rotating body base 113 rotates. Figure 6(A) shows the rotating body 112a before the recovery body 14 is attached to the rotating body base 113, and the rotating body 112b after the recovery body 14 has been attached to the rotating body base 113. The collector 14 may have any shape as long as it can cover the surface of the rotator base 113 facing the ground. For example, as shown in FIG. 6(A), the collector 14 can be configured as a sheet-like member that is wrapped around the side of the rotator base 113 facing the ground. In this case, by wrapping the collector 14 around the entire circumference of the side of the rotator base 113 that can come into contact with the ground, or by wrapping the collector 14 so as to cover the entire side of the rotator base 113 that can come into contact with the ground, it is possible to ensure a larger area of ​​the collector 14 from which biological nucleic acids can be collected. The collector 14 may have a shape other than a sheet, for example, it may be in the form of a film that covers the surface of the rotator base 113. Alternatively, the collector 14 may be formed from a cylindrical sponge member (foamed resin) and placed over the rotator base 113 so as to cover the side of the rotator base 113.

[0040] The material constituting the collection body 14 can be, for example, at least one of rubber, resin, and nonwoven fabric. When the collection body 14 is made of a material that easily becomes charged, the static electricity generated in the collection body 14 can be used to increase the efficiency with which nucleic acid-containing sediments adhere to the surface of the collection body 14. When the collection body 14 is made of a resin or rubber whose surface has relatively high adhesiveness, the adhesiveness can be used to increase the efficiency with which nucleic acid-containing sediments adhere to the surface of the collection body 14. It is desirable that the material constituting the collection body 14 is a material that is not easily altered by, for example, moisture contained in soil when the collection body 14 comes into contact with the earth's surface 20 to collect nucleic acid-containing sediments. Furthermore, an adhesive substance may be further disposed on the surface of the collection body 14 to increase the efficiency with which nucleic acid-containing sediments adhere to the surface of the collection body 14.

[0041] The thickness of the sheet-like member that is the collection body 14 is desirably formed thinly from the viewpoint of ensuring flexibility that allows it to be wound around the rotator base 113, and is desirably formed thickly from the viewpoint of ensuring strength that can withstand the action of rotating the rotator 112 while wound around the rotator base 113 and depositing nucleic acid-containing sediments. The thickness of the collection body 14 may be set appropriately taking into consideration the flexibility and strength of the material that constitutes the collection body 14. The thickness of the collection body 14 can be, for example, 1 mm or less.

[0042] The collector 14 has an attachment part 15 at its end for attaching and fixing to the rotor base 113 (see FIG. 6(A)). The attachment part 15 may be configured in various ways as long as it allows the collector 14 to be attached and detached to the rotor base 113 and does not interfere with the operation of rotating the rotor 12 with the collector 14 wrapped around the rotor base 113 to deposit nucleic acid-containing deposits. For example, the attachment part 15 may be provided with an adhesive, and the ends of the collector 14 may be bonded together using the adhesive. Alternatively, the attachment part 15 may be a mounting fixture provided separately from the collector 14 that covers the surface of the rotor base 113. The attachment part 15 may be a member intended for single use. However, when the attachment part 15 is reused, the attachment part 15 may be made of a material that can be repeatedly treated to prevent biological nucleic acids adhering during previous use from remaining, specifically, by cleaning the attachment part 15 or by repeatedly treating the attachment part 15 with nucleic acid removal using chlorine bleach, a nucleic acid decomposing agent, or the like. The attachment part 15 can be made of, for example, stainless steel, resin, etc. Furthermore, when the attachment part 15 is reused, in order to facilitate the process of suppressing the residual biological nucleic acid attached during the previous use, it is desirable to give the attachment part 15 a simpler shape that makes it easy to immerse the attachment part 15 in a liquid and perform the above-mentioned process, for example, a clip shape that clamps and fixes the ends of the recovery body 14 together with the rotator base 113.

[0043] The rotor base 113 may be made of any material that does not interfere with its use as a wheel for running the biological nucleic acid recovery device 110. When the rotor base 113 is reused, it may be made of any material that allows repeated use of the aforementioned treatment for suppressing residual biological nucleic acid that adhered during previous use. The rotor base 113 may be made of, for example, stainless steel or a resin material such as silicone resin. However, the rotor base 113 may also be a single-use component.

[0044] When recovering biological nucleic acids using the above-described biological nucleic acid recovery device 110, the biological nucleic acid recovery device 110 is prepared in step T110 of Fig. 1, and then the biological nucleic acid recovery device 110 is moved within the recovery target area in step T120, whereupon nucleic acid-containing deposits 22 adhere to the surface of the recovery body 14 provided on the rotor 112 (see Fig. 6(B)). Then, when it is determined in step T130 that the recovery operation is complete, in step T140, the recovery body 14 is removed from the rotor base 113 and the biological nucleic acids are recovered. Fig. 6(C) shows the state of the rotor 112a after the recovery body 14 has been removed, and the state of the rotor 112b before the recovery body 14 has been removed.

[0045] The operation of recovering and extracting biological nucleic acids from the collection body 14 can be performed by a method similar to that shown in Figure 5. In this case, if the collection body 14 is made of rubber or resin, nucleic acid-containing deposits will not penetrate into the interior of the collection body 14, unlike when the collection body 14 is made of nonwoven fabric or the like. Therefore, instead of washing the collection body 14 in liquid in step T310 according to the method shown in Figure 5, the surface of the collection body 14 may be wiped with a member similar to the collection body 30 of the first embodiment or another member such as a cotton swab-like member (swab-shaped member), and the nucleic acid-containing deposits may be recovered from the collection body 14 by the other member. In this case, biological nucleic acids may be extracted from the other member by the method shown in Figure 4 or Figure 5. It is desirable that the collection body 14 be used only once; however, for example, when nucleic acid-containing deposits are collected by wiping using a collection body 14 that does not allow nucleic acid-containing deposits to enter the interior of the collection body 14 as described above, the collection body 14 may be made of a material that can be treated to reduce the residual biological nucleic acids as described above, so that the collection body 14 can be reused.

[0046] Even when using the biological nucleic acid recovery device 110 of the second embodiment, since a biological nucleic acid recovery device equipped with a rotating body is used to recover nucleic acid-containing deposits from the ground surface, the same effects as those of the first embodiment can be obtained.

[0047] C. Third embodiment: 7 is an explanatory diagram showing the operation of recovering nucleic acid-containing deposits on the ground surface using the third embodiment of the apparatus for recovering biological nucleic acid 210. The apparatus for recovering biological nucleic acid 210 of the third embodiment is provided outside the apparatus for recovering biological nucleic acid 210 and is attached to a vehicle 50 that is capable of autonomously traveling on the ground, and includes a rotor 40 that rotates while in contact with the ground surface 20 as the vehicle 50 moves, and onto whose surface nucleic acid-containing deposits that contain biological nucleic acid present on the ground surface 20 adhere.

[0048] The mobile body 50 is a land mobile body similar to the apparatus 10 for recovering biological nucleic acid of the first embodiment and the apparatus 110 for recovering biological nucleic acid of the second embodiment, and various aspects can be adopted as described in the first and second embodiments. In the first and second embodiments, the wheels for running the mobile body were used as rotating bodies for recovering nucleic acid-containing sediments, but the rotating body 40 provided in the apparatus 210 for recovering biological nucleic acid of the third embodiment is a separate member from the wheels for running the mobile body 50 to which the apparatus 210 for recovering biological nucleic acid is attached.

[0049] The biological nucleic acid recovery device 210 shown in FIG. 7 includes a rotating body 40 to the surface of which nucleic acid-containing deposits present on the ground surface 20 adhere, as well as a connecting member 42 that connects the rotating body 40 and the running body 50. The connecting member 42 in this embodiment is configured as an arm-shaped member. One end of the connecting member 42 is attached to a rotating shaft 41 provided on the running body 50, and the connecting member 42 is rotatable around the rotating shaft 41. The rotating body 40 is provided on the other end of the connecting member 42. Note that the connecting member 42 may have a shape other than the arm-shaped member shown in FIG. 7, as long as it is capable of connecting the rotating body 40 and the running body 50.

[0050] When the biological nucleic acid recovery device 210 attached to the running body 50 is not being used to recover nucleic acid-containing deposits, the connecting member 42 can be engaged with the running body 50, for example, using an engagement portion (not shown) so that the rotating body 40 is maintained apart from the ground surface 20. When recovery of nucleic acid-containing deposits using the biological nucleic acid recovery device 210 is to begin, the engagement state by the engagement portion can be released and the rotating body 40 can be dropped to the ground surface 20. In FIG. 7(A), the downward arrow indicates the rotating body 40 falling downward as the connecting member 42 rotates around the rotation axis 41. As a result, as the running body 50 moves, the rotating body 40 rotates while contacting the ground surface 20, and as a result, nucleic acid-containing deposits present on the ground surface 20 adhere to the surface of the rotating body 40. In addition, the switching mechanism for switching between a state in which the rotating body 40 is in contact with the ground surface 20 and a state in which it is not in contact with the ground surface 20 before and after starting the operation of recovering nucleic acid-containing deposits may be a mechanism different from that shown in Figure 7.

[0051] By providing such a switching mechanism, it becomes possible to easily perform a switching operation in which, for example, when the traveling body 50 travels through a location where it is not appropriate to perform the operation of recovering nucleic acid-containing sediments using the rotating body 40, the rotating body 40 is held away from the ground surface 20, and when it travels through a location where the operation is appropriate, the rotating body 40 is brought into contact with the ground surface 20. Note that the biological nucleic acid recovery device 210 may be attached to the traveling body 50 each time an operation of recovering nucleic acid-containing sediments is performed.

[0052] In FIG. 7, the rotating body 40 included in the biological nucleic acid recovery device 210 is attached to the rear of the running body 50 in the direction of travel, but it may also be attached to the front of the running body. It is also possible to attach the rotating body 40 to the side of the running body 50, i.e., to protrude in the width direction of the running body 50. However, in such a case, the increased width of the running body 50 may limit the space the running body 50 can enter. Furthermore, the stability of the running body 50 and its rotation may be reduced, which may result in a decrease in the recovery efficiency of nucleic acid-containing deposits. Therefore, it is desirable to attach the connecting member 42 to the running body 40 so that it protrudes in front of or behind the running body 50, or to attach the rotating body 40 so that the connecting member 42 is located inside the outer periphery of the running body 50 when viewed vertically.

[0053] In addition, in the biological nucleic acid recovery device 210, the force pressing the rotating body 40 against the ground surface 20 may be obtained by the weight of the rotating body 40 itself, or the force pressing the rotating body 40 against the ground surface 20 may be applied by the connecting member 42.

[0054] The rotating body 40 in the biological nucleic acid recovery device 210 may have a configuration similar to that of the rotating body 12 of the first embodiment, and nucleic acid-containing sediments may be directly attached to the surface of the rotating body 40. The surface of the rotating body 40 may then be wiped with a member similar to that of the recovery body 30 of the first embodiment or another member, such as a cotton swab-like member, to recover the nucleic acid-containing sediments from the other member. The biological nucleic acid recovery device 210 may also be provided with a recovery body similar to the recovery body 30 of the first embodiment, and nucleic acid-containing sediments may be recovered from the surface of the rotating body 40 using such a recovery body. Alternatively, the rotating body 40 may include a rotating body base 113 and a recovery body 14, similar to the rotating body 112 of the second embodiment. The nucleic acid-containing sediments may be attached to the recovery body 14 as the traveling body 50 travels, and the recovery body 14 may then be removed from the rotating body 40 to recover the nucleic acid-containing sediments. In this case, the materials constituting the rotor 40, the collector 30, the rotor base 113, or the collector 14 can be selected in the same manner as in the first and second embodiments. Then, by the method shown in Figure 4 or Figure 5, nucleic acid-containing deposits can be collected from the components corresponding to the above-mentioned collector 30 or collector 14, and biological nucleic acids can be extracted.

[0055] Even when using such a biological nucleic acid recovery device 210 of the third embodiment, since a biological nucleic acid recovery device equipped with a rotating body is used to recover nucleic acid-containing deposits from the ground surface, the same effects as those of the first embodiment can be obtained. [Example]

[0056] Biological nucleic acids were recovered from the environment using the disclosed method for recovering biological nucleic acids, and biological species were identified from the resulting biological nucleic acids. Specifically, two 20-km sections in Aichi Prefecture were designated as recovery target areas. Biological nucleic acids were recovered in each recovery target area in April 2021 and June 2021. Here, a biological nucleic acid recovery device 10 (shown in FIG. 2 ) equipped with a rubber rotor 12 was moved through each of the 20-km sections, and nucleic acid-containing deposits were allowed to adhere to the surface of the rotor 12. The nucleic acid-containing deposits adhered to the rotor 12 were then recovered by pressing a recovery member made of synthetic fiber against the rotor 12. Biological nucleic acids were extracted from the recovery member according to the method shown in FIG. 4. In step T140, DNA was extracted from the recovery member using a commercially available DNA extraction kit for soil samples (NucleoSpin Soil, Takara Bio Inc.) (NucleoSpin is a registered trademark).

[0057] The nucleic acid extract obtained using the above kit was used as an environmental DNA sample from the target area, and the 12S rRNA sequence was amplified by PCR using specified primers (existing avian universal primers). The Kapa Hifi PCR Kit (KAPABIOSYSTEMS) was used for amplification, and PCR was performed four times. Further PCR was performed to add indexes for sequence analysis, and the PCR products were bead-purified. The sequence was then obtained using a next-generation sequencer. The sequencer used was the Illumina iSeq100 (Illumina, Inc.) (iSeq is a registered trademark).

[0058] Figure 8 is an explanatory diagram showing the analysis results of the above-mentioned environmental DNA samples. The biological species of the obtained sequences were extracted using the MiFish Pipeline, a pipeline for DNA analysis. Further, a BLAST homology search was performed on the obtained sequences to attempt species identification. Figure 8 lists only the biological species with a homology of 97% or more to the database. Figure 8 also shows the results of species identification at the genus level. As shown in Figure 8, the method for recovering biological nucleic acids disclosed herein confirmed that a wide variety of terrestrial birds inhabit or have stayed there. Similar results were also obtained, showing that a greater number of bird species inhabited the two relatively nearby recovery areas in spring (April) than in summer (June).

[0059] The present disclosure is not limited to the above-described embodiments, and can be realized in various configurations without departing from the spirit thereof. For example, the technical features in the embodiments corresponding to the technical features in each aspect described in the Summary of the Invention section can be appropriately replaced or combined to solve some or all of the above-described problems or achieve some or all of the above-described effects. Furthermore, if a technical feature is not described as essential in this specification, it can be appropriately deleted. [Explanation of symbols]

[0060] 10,110,210...Biological nucleic acid recovery device 12, 112a, 112b, 40...rotating body 14,30...Recovered body 15...Mounting part 20…ground surface 22...Nucleic acid-containing sediment 30...Recovered body 31...Rotation axis 32...Arm 33...Rotation axis 41...Rotation axis 42...Connecting member 50...Running body 113...rotating body base

Claims

1. A method for recovering biological nucleic acid from the environment, comprising: A collection target area is set as a target for collecting biological nucleic acids in the environment, In the recovery area, a rotating body is rotated while the surface of the rotating body is in contact with the ground surface, thereby causing nucleic acid-containing sediments containing the biological nucleic acid present on the ground surface to adhere to the surface of the rotating body; The nucleic acid-containing deposits adhering to the surface of the rotor are collected using a collection body made of cloth or nonwoven fabric. A method for recovering nucleic acids from living organisms.

2. The method for extracting nucleic acid from a living organism according to claim 1, further comprising: and extracting nucleic acids from the collected nucleic acid-containing surface sediments. A method for recovering nucleic acids from living organisms.

3. An apparatus for recovering biological nucleic acids from an environment, comprising: a rotating body that rotates while contacting the ground surface as the biological nucleic acid recovery device moves, and on whose surface nucleic acid-containing sediments containing biological nucleic acids present on the ground surface adhere when it comes into contact with the ground surface; a collection body made of cloth or nonwoven fabric for collecting the nucleic acid-containing deposits attached to the surface of the rotor; An apparatus for recovering nucleic acids derived from living organisms.

4. The biological nucleic acid recovery device according to claim 3, The collection body contacts the surface of the rotating body to collect the nucleic acid-containing deposits attached to the surface of the rotating body. Biological nucleic acid recovery device.

5. The biological nucleic acid recovery device according to claim 4, The collection body includes at least one of a rotating member, a brush member, and a duster member. Biological nucleic acid recovery device.

6. The biological nucleic acid recovery device according to claim 3, The collection body is detachably provided on the rotating body so as to form a surface of the rotating body that contacts the ground surface. Biological nucleic acid recovery device.

7. The biological nucleic acid recovery device according to claim 6, The collection body is formed in a sheet shape. Biological nucleic acid recovery device.

8. The biological nucleic acid recovery device according to any one of claims 3 to 7, When the biological nucleic acid isolation device is viewed in a vertical projection, the area of ​​the rotor is 8% or more of the area of ​​the entire biological nucleic acid isolation device. Biological nucleic acid recovery device.

9. The biological nucleic acid recovery device according to any one of claims 3 to 8, further comprising: A connecting member is provided to connect the rotating body to an external autonomously movable body. Biological nucleic acid recovery device.

Citation Information

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