Automated method for direct sampling of immune cells from whole blood or other biological samples in microwell plates

The method uses magnetic beads and controlled vibration to segregate immune cells from RBCs in microwell plates, addressing clogging and data integrity issues, enabling efficient automated sampling.

JP7808091B2Active Publication Date: 2026-01-28SARTORIUS BIOANALYTICAL INSTRUMENTS INC
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Patent Information

Application Number
JP2023514097
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-09-01
Filing Date
2021-07-28
Publication Date
2026-01-28
Estimated Expiration
2041-07-28

AI Technical Summary

Technical Problem

Conventional methods for sampling immune cells from whole blood in microwell plates face challenges such as clogging due to red blood cells (RBCs), difficulty in distinguishing WBCs and RBCs, and labor-intensive RBC lysis that affects data integrity and increases carryover.

Method used

A method involving magnetic beads conjugated to antibodies to bind RBCs, a shaker with a magnetic adapter, and controlled vibration to segregate immune cells from RBCs, allowing automated sampling using a robotic probe.

Benefits of technology

Enables efficient, automated sampling of immune cells while maintaining RBCs on the well walls, reducing contamination and ensuring data integrity by uniformly suspending WBCs for analysis.

✦ Generated by Eureka AI based on patent content.

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Abstract

A method for automated sampling of immune cells from a biological fluid sample, such as whole blood, placed in the wells of a microwell plate. The sample contains red blood cells (RBCs) and magnetic beads designed to bind to the RBCs. The microwell plate is placed in a vibrator having a magnetic adapter with at least one magnet. The magnet attracts and moves the RBCs bound to the magnetic beads to and against a wall (e.g., a bottom or side wall) of the well, causing them to be held against the wall. The vibrator is then operated to vibrate the microwell plate for a period of time in a manner that substantially uniformly or homogenously suspends the immune cells in the biological fluid sample within the well region, while still maintaining retention of the RBCs against the well wall, such that the immune cells are substantially isolated from the RBCs in the well region. During or after vibration, a sample probe is then lowered into the well region to draw in a portion of the sample containing the immune cells.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Non-Provisional Patent Application No. 17 / 009,225, filed September 1, 2020, which is incorporated herein by reference.

[0002] The present disclosure relates to a method for the direct sampling of cells, such as immune cells (lymphocytes, neutrophils, monocytes, and macrophages, or in most cases white blood cells (WBCs)), from a biological fluid sample loaded into the wells of a microwell plate. One particular application for the method is the direct sampling of immune cells from a whole blood sample. The method is also suitable for the direct sampling of immune cells from other biological fluid samples that may contain red blood cells (RBCs), such as cyst fluid samples, amniotic fluid samples, bone marrow samples, or cerebrospinal fluid samples. [Background technology]

[0003] The term "microwell plate" is used to refer to a test device format in the form of a flat plate forming an array of many small individual sample-holding wells, typically 6, 12, 24, 48, 96, 384, or more wells per plate, or in the form of an array of test tubes, typically 40 test tubes in an array. The term is sometimes technically referred to as a "microtiter plate" or "microplate."

[0004] Such microwell plates are typically used in conjunction with a sample processing device that automatically extracts a portion of a sample from one of the wells and automatically introduces the sample to an analytical instrument, such as a flow cytometer, hematology analyzer, cell sorter, mass spectrometer, etc., which performs one or more measurements on the extracted sample.

[0005] Sampling whole blood with a hemocytometer for white blood cell (WBC) analysis is challenging because whole blood tends to clog the small flow channels. Furthermore, WBC and RBC populations are known to be difficult to distinguish in conventional hemocytometers. Therefore, techniques have been developed to remove RBCs from whole blood samples. One method of red blood cell (RBC) lysis uses buffers such as ammonium chloride, which lyses RBCs with minimal impact on white blood cells. Using conventional RBC lysis methods in microplate formats used for whole blood sample processing is labor-intensive, creates RBC debris that can clog the hemocytometer flow cell, highly fouls the hemocytometer, and significantly increases carryover from one sample to another. Furthermore, RBC lysis methods can result in a loss of data integrity because the hypotonic buffers used in lysis are not physiological and may affect normal immune cell activity.

[0006] Another method, conventional gradient centrifugation, can be used for purification of WBCs, and this method is used for samples in test tube format, but is not applicable to microplate format. Summary of the Invention [Problem to be solved by the invention]

[0007] Therefore, there is a need in the art for a method for automated sampling of immune cells from samples containing RBCs or other biological fluid samples in a microwell plate format. [Means for solving the problem]

[0008] In one aspect of the present disclosure, a method is provided for automated sampling of cells, such as immune cells, from a biological fluid sample placed in a well of a microwell plate, the well having a wall (i.e., a bottom wall or a side wall). The sample includes, for example, (1) RBCs and (2) magnetic beads conjugated to antibodies or designed to bind to the RBCs in the sample. The method includes: a) placing the microwell plate in a shaker having a magnetic adapter including a magnet, which causes the RBCs bound to the magnetic beads to be attracted to, moved to, and held against the wall of the well; b) shaking the microwell plate with the shaker for a period of time in a manner that substantially uniformly or homogeneously suspends immune cells in the biological fluid sample within the region of the well, but still maintains retention of the RBCs on the wall of the well, such that the immune cells are segregated from the RBCs in the region of the well; and c) lowering a sample probe into the well in the region of the well to draw a portion of the sample containing the immune cells from the region.

[0009] In another aspect, a vibration exciter system is described in the form of a vibration exciter having a top surface configured to vibrate a micro-well plate in a controlled and programmable manner, the vibration exciter including a magnetic adapter cooperating with structure on the vibration exciter to removably fit onto the top surface of the vibration exciter, the magnetic adapter being in the form of a substantially flat structure holding an array of individual magnets, the magnetic adapter configured to fit onto the top surface of the vibration exciter and be sandwiched between the top surface of the vibration exciter and the micro-well plate.

[0010] In one configuration, an array of magnets is positioned on the magnetic adapter so that it aligns with the bottom of the wells of the micro-well plate when the micro-well plate is placed on top of the magnetic adapter.

[0011] In another configuration, the apparatus includes a control system for the vibrator that operates the vibrator to vibrate the microwell plate for a period of time in a manner that substantially uniformly or homogeneously suspends immune cells in the biological fluid sample within the region of the well, but still maintains retention of magnetically bound RBCs to the walls of the well, such that the immune cells are substantially isolated from the RBCs in the region of the well.

[0012] In yet another aspect, a flow cytometer is provided that includes a robotic sampling probe, a vibration exciter having a top surface, and a magnetic adapter designed to cooperate with structure on the vibration exciter so as to be removably fitted to the top surface of the vibration exciter. Furthermore, the magnetic adapter has one or more features for holding a microwell plate disposed thereon. The magnetic adapter can take the form of a substantially flat structure that holds an array of individual magnets and is configured to be sandwiched between the vibration exciter and the microwell plate. The flow cytometer includes a control system for the vibration exciter that is configured to vibrate the microwell plate for a period of time in a manner that substantially uniformly or homogenously suspends cells, such as immune cells, in a biological fluid sample disposed in the wells of the microwell plate. The immune cells are suspended within the wells such that the immune cells are substantially isolated from RBCs in the wells, while still maintaining retention of magnetically bound RBCs to the walls of the wells due to one or more of the magnets. The flow cytometer also includes analytical instrumentation for counting, sorting, or performing other measurements on immune cells drawn from the wells of the microwell plate, and the probe draws the immune cells from the wells and introduces the immune cells into the instrument. [Brief explanation of the drawings]

[0013] [Figure 1A] FIG. 1 is a diagram of a preliminary step of a workflow or method for automatically sampling cells, such as immune cells, from a biological fluid sample containing red blood cells, such as a whole blood sample, in a microwell plate format. [Figure 1B] FIG. 1 is a diagram of a preliminary step of a workflow or method for automatically sampling cells, such as immune cells, from a biological fluid sample containing red blood cells, such as a whole blood sample, in a microwell plate format. [Figure 1C] FIG. 1 is a diagram of a workflow or method for automatically sampling cells, such as immune cells, from a biological fluid sample containing red blood cells, such as a whole blood sample, in a microwell plate format, at a later step. [Figure 1D] FIG. 1 is a diagram of a workflow or method for automatically sampling cells, such as immune cells, from a biological fluid sample containing red blood cells, such as a whole blood sample, in a microwell plate format, at a later step. [Figure 1E] FIG. 1 is a diagram of a workflow or method for automatically sampling cells, such as immune cells, from a biological fluid sample containing red blood cells, such as a whole blood sample, in a microwell plate format, at a later step. [Figure 2] 2 is a diagram of a micro-well plate positioned relative to the shaker according to FIG. 1, showing a magnetic adapter fixed to the shaker and positioned between the shaker and the micro-well plate. FIG. [Figure 3] FIG. 3 is an exploded view of the assembly of FIG. 2. [Figure 4] FIG. 4 is a top view of the magnetic adapter of FIGS. 2 and 3. [Figure 5] FIG. 5 is a side view of the magnetic adapter of FIG. 4. [Figure 6] 1E is a diagram of a sampling probe inserted into one of the wells of the micro-well plate of FIG. 2, drawing a sample from the well according to step E of FIG. 1E. [Figure 7] FIG. 5 is an exploded view of the magnetic adapter of FIG. 4, showing an optional ferromagnetic shield positioned below and immediately adjacent to the bottom surface of the magnetic adapter. [Figure 8] FIG. 8 is a partial cross-sectional view of the assembly of FIG. 7. [Figure 9]FIG. 3 is a diagram of a flow cytometer adapted to process samples, including whole blood samples in a microwell plate format, including the vibrator and magnetic assembly of FIG. 2, and also shows an associated workstation used to display analytical results from the flow cytometer. [Figure 10] FIG. 10 is a perspective view of the flow cytometer of FIG. 9 with the vibrator moved into position inside the flow cytometer for various processing steps to be performed on the microwell plate, also showing the sampling probe coupled to a three-axis robotic motion system that allows all wells to be sampled. [Figure 11] 1D is another perspective view of the flow cytometer of FIG. 9 with the sample probe in position to draw a sample from one of the wells according to step E of FIG. 1E. DETAILED DESCRIPTION OF THE INVENTION

[0014] overview In one aspect of the present disclosure, a method is provided for automated sampling of cells, such as immune cells, from a biological fluid sample containing red blood cells (RBCs) placed in the wells of a microwell plate. In the following description, the fluid sample is described as whole blood, but as noted above, the sample may be other biological fluids containing mixed populations of particles, such as red blood cells, other cell types, or particles not of interest. These fluids may be, for example, amniotic fluid, cerebrospinal fluid, etc.

[0015] The methodology is shown in Figures 1A-1E and consists of pre-steps shown in Figures 1A and 1B and post-steps shown in Figures 1C, 1D, and 1E. The process will be further explained in conjunction with Figures 2 and 3. It will be understood from the following description that the process shown for a single well 10 of microwell plate 100 (Figure 2) is performed for all of the wells loaded with sample 12 (e.g., whole blood).

[0016] In step A (FIG. 1A), a user-specified treatment and / or staining cocktail (reagents) is added to the sample 12. Such reagents may include marker beads for well identification (well ID) for samples with low numbers of white blood cells (WBCs), in-well counting beads to facilitate WBC counting, staining reagents, or possibly others.

[0017] In step B (FIG. 1B), magnetic beads 14 conjugated to antibodies or designed to bind to RBCs 15 in the sample are added to the sample 12. An example of such beads is anti-human CD235 antibody-coated magnetic beads. The antibody coated on the magnetic beads is not limited to antibodies against the CD235 molecule, but can also be other antibodies against molecules that are specifically expressed in RBCs but not in WBCs. Furthermore, the moiety molecules coated on the beads are not limited to antibodies, but can also be other molecules such as antibody fragments, affimas, and antigens that can specifically bind to molecules that are expressed only in RBCs but not in WBCs.

[0018] Steps A and B can be performed at a lab bench prior to insertion of the microwell plate 100 (FIG. 2) into an analytical instrument. After step B, the microwell plate 100 can be incubated for a period of time, e.g., between 1 minute and 2 hours, to allow the magnetic beads 14 to conjugate to the RBCs 15; the incubation period is flexible and can be optimized by the user.

[0019] In step C (FIG. 1C), magnetic separation of RBCs 15 from WBCs 17 in sample 12 is performed. Specifically, microwell plate 100 is placed on top of a microtiter plate shaker 104, such as a BioShake 3000, which has a magnetic adapter 102 including a magnet 120 fitted or positioned on top of shaker 104. Magnet 120 attracts magnetic beads 14, causing RBCs 15 bound to magnetic beads 14 to be attracted to bottom wall 16 or side wall 19 of well 10, move to bottom wall 16 or side wall 19 of well 10, and be held against wall 16 (or wall 19, depending on the location of the magnet). This action separates WBCs 17 into a layer above the RBCs 15 bound to bottom wall 16 of well 10. The magnetic adapter 102 is placed on top of the microtiter plate shaker and is designed to be removed from or inserted into the top surface of the shaker 104 by a user without the use of special tools. Thus, the adapter 102 is sandwiched between the top of the shaker 104 and the microwell plate 100. No shaking is performed in step C, or optionally, only very slight shaking can be performed in step C, which can bind the magnetic beads 14 to the RBCs 15 and, depending on the location of the magnet, cause the magnetic beads 14 to attract the RBCs 15 to the side walls 19 and / or bottom wall 16 of the wells 10. In embodiments where a magnet is positioned below the microwell plate, the RBCs are attracted to the bottom wall 16, as shown in FIG. 1C.

[0020] In step D (FIG. 1D), after the RBCs 15 have settled to the well bottom 16 as shown in FIG. 1D, the vibrator 104 is turned on and vibrates at a specified speed (revolutions per minute, rpm) within a specific range to only substantially uniformly or homogeneously resuspend the WBCs 17 in the upper liquid layer (mostly serum and plasma), while the RBCs 15 remain firmly attached to the well bottom 16 thanks to the attraction of the conjugated magnetic beads 14 to the magnet. Stated differently, in this step, the vibrator 104 vibrates the microwell plate 100 for a period of time in a manner that substantially uniformly or homogeneously suspends and distributes the immune cells 17 (WBCs) in the biological fluid sample within the region of the well (designated by numeral 18), but still maintains retention of the RBCs to the bottom wall 16 and / or side wall 19 ( FIG. 1C ) of the well 10, so as to substantially isolate the immune cells 17 (WBCs) from the RBCs in region 18. The manner (i.e., speed) at which the vibration is performed is described in some detail below, and the details may vary depending on the strength of binding of the beads 14 to the RBCs 15, the design of the vibrator 104 itself, the design of the microwell plate 100, the volume of liquid in each well, and can be determined empirically for the particular magnetic beads and a given vibrator. After some predetermined period of time, e.g., 10 seconds, the vibrator 104 is turned off.

[0021] In step E (FIG. 1E), immediately after vibration has ceased, or optionally while vibration is ongoing, software with a specific sampling protocol governing the operation of the sampling probe 200 automatically guides the sample probe 200 to insert its tip into the top liquid layer (region 18) and to acquire a specific amount of WBCs 17 without contaminating the RBCs 15 still magnetically held to the well bottom 16. This acquisition is performed by controlling the sampling height position of the sample probe 200. Thus, in this step, the sample probe 200 is lowered into the well 10 in region 18 of the well where the WBCs 17 are substantially uniformly or homogeneously suspended. A portion of the sample containing immune cells is then drawn from region 18. This is shown in FIG. 6.

[0022] After drawing the WBC sample 17, the sample can be processed in an analytical instrument, such as a flow cytometer, to which the probe 200 belongs. The sample is introduced into the analytical instrument, such as a sample introduction port, which delivers the sample to further analytical instrumentation that performs measurements on the sample.

[0023] Shaker and magnetic adapter design 2-5, the vibrator 104 can take the form of any of the commercially available devices designed to shake or agitate microwell plates, such as the vibrators mentioned above, vibrators from companies such as Qlnstruments, ThermoFisher, SigmaAldrich, Southwest Science, and others. The vibrator 104 is typically designed with eccentric or orbital rotation to induce a vortex action within the wells and is programmably controlled to rotate at a predetermined or user-specified speed. For example, the eccentric offset can be 2 mm, and the optimal speed and duration of rotation is determined to achieve a desired uniform distribution of WBCs 17 in the upper region 18 of the wells without release of RBCs 15 from the bottom of the wells, e.g., 250 rpm for 10 seconds.

[0024] Referring to FIG. 3 , the magnetic adapter 102 can take the form of a substantially flat structure, as shown holding individual magnets 120, one for each well 10 of the microwell plate 100. Alternatively, the magnets 120 in the adapter plate 102 can be configured with two or more magnets per well, two or more wells per magnet, or groups of magnets. A configuration with exactly one magnet per well is not required; it is only required that the magnets generate a substantially uniform magnetic field. The magnetic adapter 102 is configured to fit onto the top surface 106 of the shaker 104 and be sandwiched between the top surface 106 and the microwell plate 100, as shown in FIG. 2 , where the magnets 120 hold the RBCs 15 against the bottom walls of the wells. The adapter plate 102 includes corner features 114 designed to hold the corners 116 of the microwell plate 100 and prevent the plate from dislodging from the shaker 104 during shaking. Additionally, corner features 114 can be designed to guide micro-well plate 100 into the correct location when a user places it on adapter 102. Adapter 102 is designed to be easily attached to and removed from vibration exciter 104 manually, without the use of tools. This can be achieved, for example, by a resilient gripping skirt 110 extending downward from adapter 102 that fits into recesses 112 on the front and rear sides of vibration exciter 104. Alignment pins 108 protrude from the top surface of vibration exciter 104 and serve to fit into corresponding recesses in adapter plate 102, snugly gripping the adapter plate as shown in FIG. 2 . Depending on the embodiment, alignment pins 108 can grip and hold adapter plate 102, micro-well plate 100, or both in place.

[0025] The positioning pins 108 can be computer-controlled to move to and from a gripping position to grip the adapter plate 102. This feature can be important when the shaker 104 is used in an automated mode. In this mode, software can automatically loosen or tighten the positioning pins 108 when the robotic arm removes the micro-well plate 100 from the shaker 104 and / or when a new micro-well plate is placed on the shaker. When the magnetic adapter design includes a magnetic shield 302 (see discussion of Figures 7 and 8), the existing gripping / positioning pins 108 in some shakers (such as the BioShake 3000) are not long enough to reach the micro-well plate and hold it in place. One solution to this is to add additional flexible gripping features (not shown) to the magnetic adapter. These flexible gripping features interact with existing gripping / positioning pins 108 on the BioShake 3000 such that when the BioShake 3000's positioning pins 108 close, the flexible gripping features push to grip the micro-well plate. Then, when the BioShake 3000's positioning pins 108 loosen, the flexible gripping features on the magnetic adapter also loosen, releasing the micro-well plate. Of course, these solutions are applicable to other shaker designs, and in fact, the specific form factor and design of the magnetic adapter 102 of FIG. 3 can be varied to suit the shaker surface shape, positioning pins, and gripping device at issue, and the specific configuration of the micro-well plate 100.

[0026] One possible configuration of the adapter plate 102 and magnets 120 is shown in an exploded view in FIG. 7. The adapter plate 102 has an array of recessed pockets 300, each of which receives and holds one of the magnets 120. The arrangement of the array of pockets 300 (and therefore magnets 120) is designed so that each magnet is positioned directly below a sample well in a standard-format microwell plate. While FIG. 7 shows a 96-well plate, the same design considerations would apply to microwell plates with different numbers of wells, such as a 384-well plate. Alternatively, the magnets 120 in the adapter plate 102 can be configured with two or more magnets per well, two or more wells per magnet, or groups of magnets. A configuration with exactly one magnet per well is not required; it is only required that the magnets generate a substantially uniform magnetic field.

[0027] The vibration exciter 104 is typically configured with an in-situ sensor, which may take the form of, for example, a Hall-effect sensor. The presence of a magnet in the adapter plate 102 immediately above the vibration exciter 104 generates a magnetic field that can interfere with the operation of the in-situ sensor in the vibration exciter. To remedy this, in an optional embodiment, a ferromagnetic shield 302 (FIGS. 7 and 8) in the form of a thin, flat plate of ferromagnetic material, such as stainless steel or mu-metal, is positioned below the adapter plate 102, as shown in FIGS. 7 and 8, so that the operation of the in-situ sensor is not adversely affected when the adapter plate 102 and shield 302 are placed on the vibration exciter 104. The shield 302 can be attached or secured to the bottom surface of the magnetic adapter plate 102 in any suitable manner. The shield 302 redirects the magnetic field lines, reducing the strength of the magnetic field at the location of the in-situ sensor. The thickness and material of the shield are not particularly important, provided that the shield is made of a ferromagnetic material. However, increasing the separation distance between the vibration exciter 104 and the magnet 120 and adding a shield 302 below the magnet 120 can make the vibration exciter work properly.

[0028] (Example) Flow cytometry by direct sampling of immune cells from whole blood samples in microwell plates (Figure 1, Figures 9-11) Examples of systems in which the present method may be implemented are shown in FIGS. 9-11. FIG. 9 is a diagram of a flow cytometer 400 adapted to process samples, including whole blood samples, in a microwell plate format 100, which includes the exciter 104 and magnetic adapter 102 assembly of FIG. 2. The instrument shown is the assignee's iQue® 3 flow cytometer, although the principles discussed in this example will apply to other analytical devices or flow cytometers. FIG. 9 also shows an associated workstation 410 used to display analytical results from the flow cytometer. The workstation 410 may include an interface to allow a user to specify the particular workflow and processing steps to be performed for a given microwell plate and associated sample loaded into the microwell plate 100, such as initiating the "whole blood sample module" described below. The flow cytometer may also include a supply of reagents, buffers, wash solutions, etc. 402. The flow cytometer 400 includes a loading station 404 where the microwell plate 100 is placed on the shaker 104, a clear plastic partition 412 mounted on a hinge that opens to allow access to the interior of the flow cytometer, and a rinsing station 406 (FIG. 10).

[0029] 10 is a perspective view of the flow cytometer 400 of FIG. 9 , showing the transparent partition 412 moved to an open position and the vibrator 104 moved into the interior of the flow cytometer 400 adjacent to the rinse station 406, where various processing steps may be performed on the micro-well plate 100. FIG. 10 also shows the sampling probe 200 coupled to a three-axis robotic motion system 414. The motion system 414 is under programmable control for movement in the X, Y, and Z directions, allowing all wells in the micro-well plate 100 to be sampled by the sampling probe 200.

[0030] Flow cytometer 400 also includes analytical instrumentation for performing flow cytometry on immune cells drawn from the wells of microwell plate 100 positioned after the panel of the flow cytometer shown in Figure 10, which is conventional and therefore will not be described in detail herein for the sake of brevity. Probe 200 draws immune cells from the wells and introduces the immune cells into the analytical instrumentation.

[0031] FIG. 11 is another perspective view of the flow cytometer of FIG. 9 with sample probe 200 in position to draw a sample from one of the wells in microwell plate 100 according to step E of FIGS. 1E and 6.

[0032] The flow cytometer 400 includes a loading station 404 (FIG. 9) where a user places the micro-well plate 100 on the shaker 104 (with the magnetic adapter 102 positioned on top of the shaker 104, as shown in FIG. 2). The shaker 104, as seen in FIG. 10, is coupled to a motor-driven electromechanical system that moves the shaker 104 from the loading station 404 (FIG. 9) through an opening in a transparent partition 412 and into the interior of the flow cytometer.

[0033] According to the method of FIG. 1, steps A and B of FIGS. 1A and 1B, respectively, are typically performed offline, such as at a laboratory bench. After step B, referring to FIG. 9, microwell plate 100 is then placed on shaker 104 at loading station 404. Thanks to magnetic adapter 102 sandwiched between shaker 104 and microwell plate 100, RBCs are pulled to the bottom of the wells of the microwell plate as the microwell plate is placed on the magnetic adapter, in accordance with step C of FIG. 1C. During or immediately after performing step C, which may be, for example, 30 seconds, 60 seconds, or 90 seconds in duration, the shaker is moved from loading station 404 of FIG. 9 into the interior of the flow cytometer at the position shown in FIGS. 10 and 11.

[0034] In step D of Figure 1D, the vibrator 104 is activated for a period of time while the RBCs remain held against the bottom and / or side walls to substantially uniformly or homogenously suspend the immune cells in the sample at the top of the well in region 18 (Figure 1D). This vibration step can be performed by the vibrator 104 at the loading station 404 of Figure 9 or at the sample acquisition position shown in Figure 10.

[0035] In step E of FIG. 1E, the vibrator 104 is stopped, and immediately thereafter, the sample probe 200 is lowered into the first well of the microwell plate, as shown in FIG. 11, to draw in a sample containing substantially only immune cells according to FIG. 6. The sample probe is moved in the X, Y, and Z directions by a robotic motion system to sample any and / or all of the wells of the microwell plate 100 that hold the sample in the same manner. After the sample is acquired by the probe 200 using force from a peristaltic or vacuum pump (not shown), it is delivered to analytical instrumentation (not shown) in the flow cytometer 400, which performs flow cytometry in a conventional manner. For example, the flow cytometer 400 of FIG. 9 may be configured in a manner described in U.S. Patent Nos. 10,048,191, 9,897,531, 9,797,917, and 6,890,487.

[0036] Software Operation 1D and 1E in the flow cytometers of FIG. 9-11 are managed by software operating within the flow cytometer 400 and processing unit, which controls the operation of the shaker 104, sample probe 200, and associated three-axis robotic motion system 414. These operations are designed to process whole blood samples and are within a mode or module of the flow cytometer referred to below as the "whole blood sample module" or "whole blood sample mode." Parameters for this mode can be accessed by the workstation 410 of FIG. 9 and configured by the user, or can be pre-set instructions that are automatically implemented when the user selects the whole blood sample module for processing a given micro-well plate.

[0037] Module detection and RBC withdrawal In Figure 10, prior to sample collection, the probe (Figure 10, item 200) extending from the sampling head 411 (Figure 10) is lowered until it contacts the magnetic adapter 102. When the probe 200 senses a difference in deck height (due to the presence of the magnetic adapter 102 on top of the exciter), software in the flow cytometer is activated to alert the user that the system is operating in the whole blood sample module or whole blood sample mode. A predetermined wait period for RBC withdrawal is automatically included in step C of Figure 1C in this mode. If the user selects the whole blood sample module and the probe does not detect the magnetic adapter 102, execution will halt with a warning informing the user of the error condition.

[0038] Automatically optimized excitation The software for the flow cytometer automatically employs a specific whole blood sample module (mode of operation) with a specific sample acquisition template, so that the software then sets a specific excitation speed to suspend only the WBCs and not the RBCs, which remain bound to the bottom or side walls of the well.

[0039] Regarding the vibration speed range, the BioShake 3000 vibration speed range is between 100 rpm and 1500 rpm to keep the WBCs homogeneously distributed in the clear apical liquid in the sample well while keeping the intact layer of RBCs pulled down by the magnetic beads. Above 1500 rpm, the RBCs with the attached magnetic beads begin to rise into the clear apical liquid containing the WBCs. This maximum speed can be experimentally determined, for example, by observing the color of the apical liquid, which changes color from yellow to reddish as the speed increases. For example, once above 1500 rpm, the color of the apical liquid begins to change from yellowish to reddish or completely red.

[0040] Furthermore, the vibration speed range is related to the magnetic or paramagnetic bead material placed in the biological fluid sample and the strength of the magnetic field. The reagent with magnetic beads used for the proof-of-concept in this disclosure was EasySep RBC Depletion Reagent (StemCell Tech, Cat. #18170), which contains nanomagnetic beads (iron oxide, Fe3O4) with an estimated size between 20 and 500 nm (diameter). The magnetic beads were conjugated with an anti-human CD235 antibody to bind to the CD235 molecule, which is expressed only on the cell surface of human RBCs. Once a magnetic field was present below the well (due to the magnet in the adapter plate), the RBCs bound to the magnetic beads were pulled down to the bottom of the well.

[0041] Generally, the optimum excitation speed may also be determined by the eccentricity or amplitude of the exciter itself, so the optimum speed of rotation of the exciter may also depend on this factor.

[0042] Automatic acquisition The software of a flow cytometer operating in whole blood sample mode guides the sampling probe so that the tip of the probe descends into the top liquid layer of the well, where the WBCs are substantially uniformly or homogeneously suspended, without contacting or disturbing the RBCs at the bottom of the well. See Figures 6 and 1E. The sampling time and speed are limited to a specific range to avoid RBC contamination of the probe. Sampling occurs immediately after the vibration is stopped or during vibration, with sampling times ranging from 0.5 seconds to 5 minutes per well.

[0043] Automated Analysis After the sample probe 200 samples the wells of the microwell plate, the sample is introduced into the flow cytometer instrument itself, which is part of the instrument 400 of FIG. 9. After passage of the WBC sample through the flow cytometer instrument, analysis software for the instrument performs automated data analysis. In one possible configuration, this analysis includes automated bead-based sample well identification and immune cell count normalization. The details of the data analysis are not particularly relevant to this disclosure and algorithms known in the art and described in the patent and technical literature can be used.

[0044] Further details of the flow cytometer and sampling device of Figures 9-11 are described in U.S. Patent Nos. 10,048,191, 9,897,531, 9,797,917, and 6,890,487, the contents of which are incorporated herein by reference.

[0045] Additional optional features The whole blood sample module software ensures that the magnetic adapter 102 is correctly placed on the vibrator 104, and when this is confirmed, locks the vibration and sample collection protocol to the appropriate values. Additional washes can be automated in the software sample collection protocol. The module can also enable specific automated analysis if marker or counting beads are present. Additionally, the module can detect RBC contamination in the sample, signifying a potential problem with the assay.

[0046] In one configuration, it is possible to provide a pierceable seal or membrane (e.g., Excel Scientific X-Pierce plate seal) that covers the wells of a microwell plate, increasing biosafety by preventing accidental contamination and spillage. This is particularly important for blood samples that may potentially carry unknown pathogens. The seal is applied to the microwell plate after reagents such as dyes and magnetic beads have been added to the sample, but before the plate is placed on the shaker and magnetic adapter.

[0047] In other configurations, in-well marker beads can be provided. Such beads can be used for sample well identification (well ID) for samples with low numbers of WBCs due to certain conditions. In-well counting beads can also be provided. Such beads allow for accurate calculation of WBC concentration based on counting of the in-well counting beads. Such beads can be added offline on the bench in a preliminary step A, or can be part of the reagents present in rinse station 406 of FIG. 10 and introduced immediately before the shaking operation (step D, FIG. 1D).

[0048] Certain assay microwell plates have been considered for use with whole blood samples, particularly those having smaller volumes than are typical for 96-well plates. For example, plates from Greiner, Cat. No. 675101, in a 96-well format with a well area approximately half the normal well area can be used. This well shape increases the top layer height with the same volume of sample for easy probe access, minimizes sample / reagent usage, and reduces the risk of RBC contamination of the sample.

[0049] Alternative Embodiments 1. As described in conjunction with FIG. 1, the primary method for isolating immune cells is negative selection of RBCs by magnetically attracting RBCs bound to magnetic beads to the bottom of the wells, with magnets positioned adjacent to the bottom of the wells of the assay plate. An alternative location for the magnet is the gap between adjacent wells, so that the magnetic field can attract the magnetic bead-bound cells to the sidewalls of the assay wells (item 19 in FIG. 1C). In this configuration, the form factor and design of the magnetic adapter 102 is such that the magnetic adapter includes features that protrude into the space formed in the bottom of the microwell plate 100, such that the incorporated magnets are adjacent to the sidewalls of the wells instead of the bottom.

[0050] 2. A second alternative method for separating cells is by using hollow or buoyant particles conjugated to a molecule of interest, such as an antibody or Affima, that can bind and suspend any particular cell population to the top surface of the liquid sample in the assay well. For example, it may be possible to suspend RBCs to the top of the well and sample WBCs from the lower or middle region of the well to draw them into the probe. In accordance with this design, a method for sampling immune cells in a liquid sample containing a mixture of red blood cells and immune cells may include the steps of: (A) introducing hollow or buoyant particles designed to bind to RBCs into the sample; (B) introducing the liquid sample into an assay well of a microwell plate either before or after step (A); (C) suspending the RBCs to the top surface of the liquid sample in the assay by virtue of the binding of the RBCs to the hollow or buoyant particles, the top surface being located above the lower and middle regions of the assay well containing the WBCs; and (D) drawing the WBCs from the lower or middle region of the assay well with a sampling probe.

[0051] 3. A third alternative method for separating cells in microwell plates is to use gradient centrifugation to form multiple liquid layers in the sample in the microwells, with each layer containing a different cell population.

[0052] 4. For all of the different cell separation methods above, after cell separation, a sampling probe is lowered to the specific layer containing the cell / particle population of interest to obtain a sample. The sampling probe may be lowered to a specific location in the well to sample only one layer, or it may be lowered to multiple locations in the same well to sample different layers.

[0053] 5. The sample probe can be a single probe that descends to one or more locations to obtain one or more layers. An alternative method is to use multiple probes that descend to one or more locations to obtain samples from one or more layers.

[0054] 6. The methods of the present disclosure may be applied to any detection system, such as, for example, a hematology analyzer, a cell sorter, a mass spectrometer, or a DNA / RNA analyzer. Thus, the methodology of Figures 1A-1E is not limited to flow cytometers. Thus, the instruments shown in Figures 9-11 are provided by way of example and not limitation.

[0055] Further consideration One application of the disclosed method is in miniaturized "clinical trials in a petri dish" applications, extending the capabilities of flow cytometers to directly acquire and analyze whole blood samples in a miniaturized format for immunology, immuno-oncology, immunotoxicity, drug profiling studies, and similar research efforts. The disclosed method can be applied to any sampling of one or more particles of interest or other non-target particles from mixed samples of RBC-containing liquids, such as liquid biopsies, cerebrospinal fluid (CSF), chorionic villus samples (CVS), amniotic fluid (AF), cyst fluid samples, and bone marrow samples. The mixed samples may be pre-stained with antibodies and other dyes, or pre-mixed with different functional beads, such as Sartorius / Intellicyt QBeads, for simultaneous measurement of cytokines, growth factors, chemokines, hormones, and other biological factors or particles. [Explanation of symbols]

[0056] 10 well, 12 sample, 14 magnetic beads, 15 RBC, 16 bottom wall, 17 WBC, immune cells, 18 well area, 19 side wall, 100 microwell plate format, 102 magnetic adapter plate, 104 microtiter plate shaker, 106 upper surface, 108 gripping / locating pins, 110 gripping skirt, 114 corner feature, 116 corner, 120 magnet, 200 sampling probe, sample probe, 300 pocket, 302 ferromagnetic shield, 400 flow cytometer, instrument, 402 reagents, buffers, wash solutions, 404 loading station, 406 rinsing station, 410 workstation, 411 sampling head, 412 clear plastic divider, 414 three-axis robotic motion system

Claims

1. 1. A method for automatically sampling immune cells from a biological fluid sample placed in a well of a microwell plate, comprising: the well has a wall; the biological fluid sample comprises (1) red blood cells (RBCs); and (2) magnetic beads designed to bind to the RBCs in the sample; The method comprises: a) placing the microwell plate in a shaker having a magnetic adapter containing at least one magnet, the magnet holding the RBCs bound to the magnetic beads against the walls of the wells; b) vibrating the microwell plate with the vibrator for a period of time in a manner to substantially uniformly suspend the immune cells in the biological fluid sample within the area of ​​the well, thereby substantially segregating the immune cells from the RBCs held against the walls of the well; c) lowering a sample probe into the well at the region of the well to draw a portion of the sample containing the immune cells from the region; A method comprising:

2. 10. The method of claim 1, wherein the magnetic adapter comprises a structure that holds individual magnets, one for each well of the micro-well plate, the magnetic adapter is configured to fit over a top surface of the shaker and be sandwiched between the top surface and the micro-well plate, and the magnets hold the RBCs to a bottom or side wall of the well.

3. The method of claim 1 or 2, wherein the biological fluid comprises whole blood.

4. 3. The method of claim 1 or 2, wherein the biological fluid comprises a cyst fluid sample, amniotic fluid, a bone marrow sample, a cerebrospinal fluid sample, a liquid biopsy, or a chorionic villus sample.

5. the sample probe is part of a flow cytometer; 5. The method of claim 1, further comprising the step d) of introducing the portion of the sample containing the immune cells into the flow cytometer.

6. the vibration exciter further comprises an in-situ sensor; The method of claim 1 , further comprising the step of shielding the in-situ sensor from a magnetic field created by the magnet.

7. 7. The method of claim 1, wherein the step of vibrating comprises operating the vibrator in eccentric rotation at a speed between 100 rpm and 1500 rpm.

8. 8. The method of any one of claims 1 to 7, wherein the magnetic beads comprise magnetic or paramagnetic beads with an estimated size between 1 nm and 50 μm that are conjugated to specific molecules that bind to molecules expressed in the RBCs that are not immune cells.

9. 9. The method according to claim 1, wherein in steps a) and c) the vibrator is in a non-vibrating state.

10. 10. The method of claim 1, wherein the magnetic adapter including at least one magnet is integrated into the vibration exciter.

11. 11. The method of any one of claims 1 to 10, further comprising the step of placing a pierceable seal over the micro-well plate prior to performing step a).

12. 12. The method of claim 1, wherein the sample further comprises in-well marker beads or in-well counting beads.

13. a vibrator having a top surface configured to vibrate a plate containing multiple wells in a controlled and programmable manner; a magnetic adapter cooperating with structure on the vibration exciter to be removably fitted to the top surface of the vibration exciter, the magnetic adapter comprising structure for holding an array of one or more magnets, the magnetic adapter being configured to fit on the top surface of the vibration exciter and be sandwiched between the top surface of the vibration exciter and the plate; These are combined to provide and a sample collection probe robotically controlled to move in X, Y, and Z directions relative to the plate, the sample collection probe drawing a sample containing immune cells from the well and introducing the immune cells into an analytical instrument.

14. 14. The system of claim 13, wherein the magnet is positioned on the magnetic adapter so as to align with a bottom portion of the well when the plate is placed on top of the magnetic adapter.

15. 14. The system of claim 13, further comprising a control system for the vibrator, the control system operating the vibrator to vibrate the plate for a period of time in a manner that substantially uniformly suspends immune cells in the biological fluid sample within the region of the well.

16. 16. The system of claim 15, wherein the control system is configured to operate the vibration exciter in eccentric rotation at a speed between 100 rpm and 1500 rpm.

17. The system of claim 13 , wherein the analytical instrument comprises a flow cytometer.

18. 18. The system of claim 13, further comprising a ferromagnetic shield positioned between the top surface of the vibration exciter and the magnetic adapter.

19. 19. The system of any one of claims 13 to 18, wherein the magnetic adapter comprises an array of individual magnets, one for each well of the plate.

20. 19. The system of claim 13, wherein the magnetic adapter is configured to position the magnet in space adjacent to a sidewall of the well of the micro-well plate.

21. a robotic sampling probe; a vibrator having an upper surface; a magnetic adapter configured to be disposed on the top surface of the vibration exciter, the magnetic adapter having one or more features for holding a microwell plate disposed thereon, the microwell plate having a plurality of wells with biological fluid samples, the magnetic adapter comprising structure for holding one or more magnets that cooperates with structure on the vibration exciter to be removably fitted to the top surface of the vibration exciter, the magnetic adapter configured to be sandwiched between the vibration exciter and the microwell plate; a control system configured to vibrate the vibrator associated with the microwell plate for a period of time in a manner to substantially uniformly suspend immune cells within the regions of the wells of the microplate, wherein the immune cells within the regions of the wells are substantially isolated from red blood cells that are magnetically bound to the walls of the wells; and analytical instrumentation for performing one or more measurements on immune cells drawn from the wells of the microwell plate, wherein the probe draws the immune cells from the wells and introduces the immune cells into the instrument; A flow cytometer comprising:

22. 22. The flow cytometer of claim 21, wherein the biological fluid sample comprises whole blood.

23. 23. The flow cytometer of claim 21 or 22, wherein the biological fluid sample comprises a cyst fluid sample, amniotic fluid, a bone marrow sample, a cerebrospinal fluid sample, a liquid biopsy, or a chorionic villus sample.

24. 24. The flow cytometer of claim 21, wherein the vibration exciter further comprises an in-situ sensor, and wherein the vibration exciter further comprises a shield positioned between the vibration exciter and the magnetic adapter to shield the in-situ sensor from a magnetic field created by the magnet.

25. 25. A flow cytometer according to any one of claims 21 to 24, wherein the control system operates the vibrator in eccentric rotation at a speed between 100 rpm and 1500 rpm.

26. 26. The flow cytometer of claim 25, wherein the red blood cells are conjugated to a specific molecule that binds to a molecule expressed on the cell surface of the red blood cells but not on the cell surface of the immune cells, and are bound to magnetic beads with an estimated size between 1 nm and 50 μm.

27. 27. The flow cytometer of any one of claims 21 to 26, wherein the sampling probe draws a sample from the well of the microwell plate after the shaking of the microwell plate while the immune cells are substantially uniformly suspended in the region of the well.

28. 28. The flow cytometer of claim 27, wherein the drawing of the sample from the well occurs with a sampling time between 0.5 seconds and 5 minutes per well.

29. 26. The flow cytometer of any one of claims 21 to 25, further comprising one or more reagents for the biological fluid sample, the one or more reagents comprising magnetic beads conjugated to antibodies designed to selectively bind to the surface of RBCs.

30. 14. A method for sampling immune cells in a liquid sample containing a mixture of red blood cells and immune cells using the vibrator system of claim 13, comprising: (A) introducing hollow particles into the liquid sample, the hollow particles being designed to bind to the red blood cells; (B) either before or after step (A), introducing the liquid sample into an assay well of a microwell plate; (C) suspending the red blood cells to the top surface of the liquid sample in the assay, the top surface being located above the lower and middle regions of the assay well containing the immune cells; (D) drawing immune cells from the lower and / or middle regions of the assay well with a sampling probe; A method comprising:

31. 31. The method of claim 30, wherein the sampling probe draws immune cells from both the middle and lower layers of the assay well.

32. 31. The method of claim 30, wherein step (D) comprises drawing immune cells from the lower region of the assay well with a first sampling probe and drawing immune cells from the middle region of the assay well with a second sampling probe.

33. 31. The method of claim 30, wherein the liquid sample comprises whole blood.

Citation Information

Patent Citations

  • Magnetic immunodiagnostic method and kit for demonstrating antibody / antigen complexes in red blood cell blood typing and phenotyping.

    JP2013531259A