Methods and apparatus for processing substances

The use of a transfer probe with a convex bottom magnet allows for efficient collection and release of magnetically responsive particles from small liquid volumes, addressing the challenges of processing target substances in reduced volumes and improving processing efficiency.

JP7837271B2Active Publication Date: 2026-03-30LIFE TECH HLDG PTE LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-12-01
Publication Date
2026-03-30

AI Technical Summary

Technical Problem

Existing methods struggle to efficiently process and separate target substances from liquid media using magnetically responsive particles, particularly in small volumes, due to challenges in collecting and releasing particles without significant liquid volume requirements.

Method used

A transfer probe with a permanent magnet having a convex bottom portion is used to collect and release magnetically responsive particles, allowing for operation in reduced liquid volumes by optimizing the magnetic field gradient and vertical positioning.

Benefits of technology

Enables efficient collection and release of magnetically responsive particles from small liquid volumes, reducing sample and reagent consumption, and enhancing processing speed while minimizing waste.

✦ Generated by Eureka AI based on patent content.

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Abstract

The target substance (M1) is collected from the composition (MX1) by using magnetically responsive particles (P1) and a magnetic transfer probe (100). The composition (MX1) can be prepared, for example, by introducing the magnetically responsive particles (P1) into a sample (MX0). The particles (P1) selectively bind to the target substance (M1) in the composition (MX1). The target substance (M1) and particles (P1) are collected from the sample (MX0) by using a magnetic transfer probe (100) including a probe magnet (MAG1). The probe magnet (MAG1) is a permanent magnet including a cylindrical portion (SRFO) and a convex bottom portion (CNX1) adjacent to the cylindrical portion (SRFO). The particle collection region (CR1) of the magnetic transfer probe (100) is located at a low position, allowing the particles (P1) to be collected from a small amount of the prepared composition (MX1).
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Description

[Technical Field]

[0001] Some variations relate to processing compositions by using magnetically responsive particles and by using magnetic transfer probes. [Background technology]

[0002] The composition may include a target substance and a liquid medium. The target substance can be separated from the liquid medium by using magnetically responsive particles. The particles may be configured to selectively bind to the target substance. The particles can be collected and lifted from the container using a magnetic transfer probe. The target substance bound to the particles can be collected together with the particles and separated from the liquid medium. [Overview of the Initiative]

[0003] One objective is to provide a method for processing a composition. Another objective is to provide a method for collecting a target substance. Another objective is to provide a method for transferring a target substance. Another objective is to provide a method for concentrating a target substance. Another objective is to provide a method for purifying a target substance. Another objective is to provide an apparatus for processing a composition. Another objective is to provide an apparatus for collecting a target substance. Another objective is to provide an apparatus for transferring a target substance. Another objective is to provide an apparatus for concentrating a target substance. Another objective is to provide an apparatus for purifying a target substance.

[0004] According to one embodiment, the method described in claim 1 is provided.

[0005] Further embodiments are defined in other claims.

[0006] According to one aspect, a method for processing a composition (MX1) by using a magnetic transfer probe (100), wherein the transfer probe (100) includes a shield (120) and a probe magnet (MAG1) movable inside the shield (120). The method comprises: - providing a first composition (MX1) in a container (VES1), the composition (MX1) including a first liquid (LIQ1) and a plurality of magnetic-responsive particles (P1), the particles (P1) being configured to selectively interact with a target substance (M1); - positioning the transfer probe (100) into the container (VES1) to collect the particles (P1) from the first composition (MX1); - removing the particles (P1) collected with the transfer probe (100) from the container (VES1) by causing relative vertical movement between the transfer probe (100) and the container (VES1); - releasing the collected particles (P1) from the shield (120) to a release position (LOC2) by causing relative vertical movement between the probe magnet (MAG1) and the shield (120). The probe magnet (MAG1) is a permanent magnet including a cylindrical portion (SRF0) and a convex bottom portion (CNX1) adjacent to the cylindrical portion (SRF0). The magnet has a symmetry axis (AX1) which intersects the bottom portion (CNX1) at an intersection point (Q1). The intersection point (Q1) and the circular lower boundary (CIR2) of the cylindrical portion (SRF0) define a reference cone (REF0), and the bottom portion (CNX1) protrudes with respect to the reference cone (REF0). A method is provided.

[0007] The method includes collecting and / or processing magnetic-responsive particles of a composition using a transfer probe. The transfer probe includes a permanent probe magnet. The probe magnet includes a cylindrical portion and a convex bottom portion. A probe magnet having a convex bottom portion can enable operation in a composition of a very small volume. The convex bottom portion of the magnet can be, for example, a hemisphere or a truncated hemisphere.

[0008] The composition can include a liquid component and magnetic responsive particles. The composition can be contained in a container. A transfer probe can be used to collect magnetic particles from the composition contained in the container and / or to release the magnetic responsive particles to a release position. The composition can further include a target substance. The magnetic responsive particles can selectively bind to the target substance so as to selectively collect and / or process the target substance. The method can be used, for example, to collect, concentrate, purify, and / or transfer the target substance.

[0009] The collected particles can optionally be analyzed, for example, by an analytical device. The method can be used, for example, to analyze whether a target substance is contained in a sample. The method can include measuring the amount and / or concentration of the target substance after collecting the target substance by using magnetic responsive particles and a transfer probe.

[0010] The composition can be prepared, for example, by introducing magnetic responsive particles into a sample. The magnetic responsive particles can selectively bind to the target substance of the composition. The target substance and the magnetic responsive particles can be collected simultaneously from the sample.

[0011] The transfer probe can collect magnetic responsive particles into a collection region. Due to the convex bottom portion of the magnet, the maximum distance between the collection region and the lowest point of the probe can be reduced. Due to the convex bottom portion of the magnet, the distance between the collection region and the lowest point of the probe can be reduced.

[0012] The convex bottom portion of the magnet can have a double-curved surface portion, which can result in a high gradient of the magnetic field in the collection region of the transfer probe. The double-curved surface portion can be, for example, a substantially spherical surface portion. The magnetic responsive particles can be mainly attracted to the collection region where the gradient of the magnetic field of the probe has a maximum value.

[0013] Magnetically responsive particles can be attracted by a magnetic field generated by a permanent magnet. The magnetic field can collect the particles in the collection area of ​​a transport probe. The magnitude of the magnetic field generated by the probe magnet can increase as the diameter of the probe magnet increases. Using a probe magnet with a larger diameter can more effectively collect particles. However, using a probe magnet with a larger diameter can make it more difficult to release the collected particles into a small volume of liquid. A convex base portion can make the probe's collection area suitable for operation in small volumes, and the diameter of the probe magnet can be large enough to generate a sufficient magnetic field.

[0014] The vertical position of the collection area can be considerably below the cylindrical portion of the magnet. Using a probe magnet with a convex base portion can easily collect particles from small volumes of liquid and / or release particles into small volumes of liquid.

[0015] The convex shape of the base portion can provide a magnetic field where the maximum gradient is located considerably below the cylindrical portion of the probe magnet. The collecting force that attracts magnetically responsive particles toward the transport probe can be substantially proportional to the magnitude of the magnetic field gradient. The transport probe can primarily collect magnetically responsive particles in the collection region located in the base portion of the transport probe, which is below the cylindrical portion of the probe magnet. The convex shape of the base portion, due to the low vertical position of the particle collection region, can enable the use of the transport probe in a reduced volume of liquid.

[0016] The transfer probe may be suitable for use with small liquid volumes. Magnetically responsive particles can be collected from and / or released into small liquid volumes.

[0017] The particles may be collected from the first composition MX1, and the lower limit of the volume of the first composition MX1 may be, for example, in the range of 5 μl to 50 μl.

[0018] A reduced volume of liquid may enable analysis using a reduced amount of sample. A reduced volume of liquid may enable dispensing a sample in the amount present in several sample wells. A reduced volume of liquid may reduce the consumption of magnetically responsive particles. A reduced volume of liquid may reduce the consumption of reagents and / or reactants. A reduced volume may enable an increase in processing speed. A reduced volume may enable an increase in analysis speed. A reduced volume of liquid may enable a reduction in the amount of waste.

[0019] The lower limit of the liquid volume at the release point can also be reduced. The lower limit of the liquid volume at the release point may be, for example, in the range of 5 μl to 50 μl. The lower limit of the liquid volume at the release point may be, for example, in the range of 5 μl to 15 μl to provide an increased concentration of collected particles P1 and / or an increased concentration of target substance M1.

[0020] The volume of the first composition MX1 may optionally be substantially larger than the volume of the liquid at the release site, for example, to provide an increased concentration.

[0021] A transport probe may be configured to transport magnetically responsive particles, for example, to manufacture a product. A transport probe may be configured to transport magnetically responsive particles, for example, to purify a substance. A transport probe may be configured to transport magnetically responsive particles for analyzing a sample. The target substance may be collected, for example, to manufacture a pharmaceutical or to produce a chemical for analysis.

[0022] In the following examples, several variations will be described in more detail with reference to the attached drawings. [Brief explanation of the drawing]

[0023] [Figure 1a] As an example, a composition comprising a first liquid and a target substance is shown. [Figure 1b]As an example, a composition comprising a first liquid, a target substance, and magnetically responsive particles is shown. [Figure 1c] As an example, we demonstrate how to collect magnetically responsive particles using a magnetic field. [Figure 2] As an example, the probe magnet, shield, and container are shown in cross-sectional view. [Figure 3a] As an example, a cross-sectional view shows a transfer probe and a certain amount of composition. [Figure 3b] As an example, a cross-sectional view shows how particles are collected on a transport probe. [Figure 3c] As an example, the separation of particles from the first liquid is shown in a cross-sectional view. [Figure 3d] As an example, a cross-sectional view of particles attached to the probe is shown. [Figure 4a] As an example, the probe and the second liquid are shown in a cross-sectional view. [Figure 4b] As an example, a cross-sectional view shows the probe being immersed in a second liquid along with particles. [Figure 4c] As an example, a cross-sectional view shows how particles are released by lifting a magnet relative to the shield. [Figure 4d] As an example, a cross-sectional view shows the lifting of the probe from the second liquid. [Figure 5a] As an example, the positions of the collection area provided by the probe magnet and the collection area provided by the comparison magnet are shown in a cross-sectional view. [Figure 5b] As an example, the positions of the collection area provided by the probe magnet and the collection area provided by the comparison magnet are shown in a cross-sectional view. [Figure 6a] As an example, the magnetic field generated by a probe magnet is shown in a cross-sectional view. [Figure 6b] As an example, the dimensions of the gap between the probe and the container are shown in a cross-sectional view. [Figure 7a] As an example, a probe magnet with a convex base is shown in a three-dimensional diagram. [Figure 7b]As an example, a cross-sectional view of a probe magnet having a convex base is shown. [Figure 8a] As an example, the spatial distribution of the magnetic field generated by the probe magnet is shown in a cross-sectional view. [Figure 8b] As an example, the spatial distribution of the magnetic field generated by the probe magnet is shown in a cross-sectional view. [Figure 8c] As an example, a cross-sectional view shows the spatial distribution of the magnetic field generated by a reference magnet with flat ends. [Figure 9a] As an example, a cross-sectional view of the convex base portion, which is half of the ellipsoid, is shown. [Figure 9b] As an example, the convex base portion, which is a truncated hemisphere, is shown in a cross-sectional view. [Figure 9c] As an example, a cross-sectional view shows a convex base portion having a combination of conical surfaces. [Figure 10] As an example, a cross-sectional view of the device including the transfer probe is shown. [Figures 11a-11d] This demonstrates that the transported particles are released onto a substantially flat surface. [Figures 12a-12b] As an example, a cross-sectional view of a transport probe having a substantially spherical base is shown. [Figure 12c] As an example, the shape of the bottom portion of the containers in Figures 12a and 12b is shown in cross-sectional views. [Figure 12d] As an example, the container shown in Figure 12a is used in conjunction with a transfer probe having a tip, as shown in the cross-sectional view. [Figure 12e] As an example, a cross-sectional view of the transport probe is shown. [Figure 12f] As an example, Figure 12f shows a cross-sectional view of the transfer probe positioned inside the container. [Figure 12g] As an example, a cross-sectional view of the transport probe array and wells, as well as the well array, is shown. [Figure 12h] As an example, a cross-sectional view of the transport probe array and the well array is shown. [Modes for carrying out the invention]

[0024] Referring to Figure 1a, the primary composition MX0 may comprise one or more substances M1, M2, M3 and a liquid medium LIQ1. Composition MX0 may be, for example, a sample comprising one or more substances M1, M2, M3 and liquid LIQ1. Composition MX0 may be a mixture comprising one or more substances M1, M2, M3 and liquid LIQ1. Composition MX0 may comprise the target substance M1.

[0025] Composition MX0 may be, for example, a biological sample. Target substance M1 may consist of, for example, cells (e.g., bacteria or cancer cells), proteins (e.g., antigens or antibodies), enzymes, or nucleic acids.

[0026] Referring to Figure 1b, composition MX1 may comprise a plurality of magnetically responsive particles P1, one or more substances M1, M2, M3, and a liquid medium LIQ1. Composition MX1 can be obtained, for example, by introducing magnetically responsive particles P1 into a primary composition MX0. Composition MX1 may be a mixture comprising magnetically responsive particles P1, one or more substances M1, M2, M3, and a liquid medium LIQ1. Magnetically responsive particles P1 may be added to sample MX0 to form a suspension MX1 containing particles P1 suspended in liquid LIQ1.

[0027] Particle P1 can selectively interact with target substance M1. Particle P1 may be configured to selectively bind to target substance M1 of sample MX0 but not to a second substance M2 of sample MX0. The magnetically responsive particle P1 may contain a binding site A1 for selective binding to target substance M1. Particle P1 may selectively bind to target substance M1 but not to substances M2 and M3. The magnetically responsive particle P1 may also be called, for example, a magnetic bead.

[0028] Magnetically responsive particles P1 can be used to separate a specific target substance M1 from a liquid medium LIQ1. Particles P1 can be coated with a specific reagent A1 that selectively interacts with the target substance M1, for example. Particles P1 can also be coated with an affinity reagent for the target substance M1, for example. Furthermore, the material of particles P1 can be selected to interact intrinsically with the target substance M1. For example, the surface of silica can interact with nucleic acids without additional coating.

[0029] The size of the magnetically responsive particle P1 may be, for example, in the range of 50 nm to 10 μm. The size of the magnetically responsive particle may be, for example, in the range of 0.5 μm to 5 μm. The size of the magnetically responsive particle may be, for example, substantially equal to 1 μm or 2.8 μm. The size of the magnetically responsive particle may be, for example, substantially equal to 3 μm. The material of the magnetically responsive particle P1 may be selected so that the particle P1 can be attracted to a magnet MAG1. The magnetically responsive particle P1 may be, for example, a ferromagnetic particle, a ferrimagnetic particle, or a superparamagnetic particle. The material of the magnetically responsive particle P1 may be selected so that the particle P1 is not a permanent magnet, and the magnetically responsive particle P1 may be magnetizable. A variety of such particles P1 are commercially available.

[0030] Referring to Figure 1c, magnetically responsive particles P1 and the target material M1 bound to particles P1 can be collected from composition MX1 using a magnetic field MF1 generated by a magnet MAG1. Particles P1 can be collected from the composition using a magnetic field MF1 generated by a permanent magnet MAG1. The magnetic field MF1 can move particles P1 toward a collection region CR1 on the surface SRF1. The majority of particles P1 can be collected in the collection region CR1 near the magnet MAG1. Substantially all particles P1 can eventually be collected in the collection region CR1.

[0031] Collecting particles P1 can alter composition MX1 so that it has a concentration zone ZONE1 and a depletion zone ZONE2. The concentration of particles P1 in concentration zone ZONE1 may be substantially higher than the concentration of particles P1 in depletion zone ZONE2. The concentration of particles P1 in depletion zone ZONE2 may be substantially equal to zero, for example. Particles P1 can selectively bind to target substance M1 so that the concentration of target substance M1 in concentration zone ZONE1 may be substantially higher than the concentration of target substance M1 in depletion zone ZONE2.

[0032] A magnetically responsive particle P1 can be moved by a force F1 that is substantially proportional to the gradient of the magnetic field MF1. The magnetically responsive particle P1 can be primarily attracted to a surface region CR1 where the gradient of the magnetic field MF1 is maximum. The region with the maximum gradient can act as a collection region for the particle P1.

[0033] Referring to Figure 2, the apparatus 500 may include a transfer probe 100 and containers VES1 and / or VES2. The transfer probe 100 may include a shield 120 and a permanent magnet MAG1 movable within the shield 120. The magnet MAG1 may be an elongated rod that can move up and down relative to the shield 120. The probe magnet MAG1 can move up and down within the hollow shield 120. The shield 120 may be hollow and may have a closed bottom portion 125. The bottom portion 125 may be, for example, a tapered portion. The bottom portion 125 may be, for example, a tapered portion with a tip TIP1.

[0034] The bottom portion of the shield 120 may have an outer surface SRF11. The outer surface SRF11 may include, for example, a tapered bottom portion 125 (Figures 2, 12d, and 12e). The outer surface (SRF11) of the shield 120 and the inner bottom surfaces (SRF3) of the containers VES1 and VES2 may be substantially axially symmetric.

[0035] Furthermore, the bottom portion 125 may be, for example, substantially spherical (Figure 12a). The outer surface SRF 11 may have, for example, a substantially spherical shape (Figure 12a).

[0036] The magnet MAG1 may include a cylindrical portion SRF0 and a convex bottom portion CNX1 adjacent to the cylindrical portion SRF0. The convex bottom portion CNX1 may be made of the same permanent magnet material as the cylindrical portion SRF0. The convex bottom portion CNX1 and the adjacent cylindrical portion SRF0 may together form, for example, a single body.

[0037] The probe magnet MAG1 has a diameter D 120 , , 120 , MAG1 , 120 and a length L MAG1 The probe magnet MAG1 may have a substantially cylindrical surface portion SRF0 and a convex bottom portion CNX1 adjacent to the cylindrical portion SRF0. The bottom portion CNX1 may have a height h1. The cylindrical portion SRF0 may have a circular lower boundary CIR2. The symbol SRF1 indicates the surface of the bottom portion CNX1. The probe magnet MAG1 may be axially symmetric with respect to a vertical axis of symmetry AX1.

[0038] The diameter D of the probe magnet MAG1 MAG1 may be, for example, in the range of 1 mm to 8 mm, preferably in the range of 3 to 5 mm. The diameter D of the probe magnet MAG1 MAG1 may be substantially equal to, for example, 1.6 mm, 3 mm, 4 mm, or 7.6 mm. The probe magnet MAG1 may have, for example, a hemispherical bottom portion CNX1. The height h1 of the bottom portion CNX1 may be, for example, in the range of 40% to 60% of the diameter D MAG1 .

[0039] The magnet MAG1 may be long enough so that the upper pole of the magnet MAG1 is kept above the surface of the liquid LIQ1. The ratio of the length L MAG1 to the diameter D MAG1 may be, for example, 2.0 or more, preferably 4.0 or more. The thickness s of the wall of the shield 120 120 may be, for example, in the range of 1% to 20% of the diameter D MAG1 . The thickness s of the wall of the shield 120 120 may be, for example, in the range of 0.3 mm to 0.5 mm. The shield 120 may have an outer diameter D 120 .

[0040] The material of the shield 120 may be selected so that the shield 120 does not alter the magnetic field of the magnet MAG1. The relative permeability of the material of the shield 120 may be substantially equal to 1. The material of the shield 120 may be, for example, a polymer or glass. The material of the shield 120 may be, for example, polypropylene, polyethylene, or polycarbonate.

[0041] The bottom portion 125 of the shield 120 may optionally have a tapered surface SRF11 having, for example, a tip 1. The tapered portion 125 of the surface SRF11 may have a apex angle β1 and a taper angle γ1.

[0042] The apex angle β1 of the tapered portion 125 of the shield 120 is, for example, in the range of 80° to 100°, advantageously in the range of 85° to 95°, and preferably substantially equal to 90°.

[0043] The taper angle γ1 of the collection region CR1 may be in the range of, for example, 40° to 50°, for example, when used with a hemispherical bottom portion CNX1 to facilitate operation in small liquid volumes. The taper angle γ1 of the surface SRF11 in the collection region CR1 may be in the range of, for example, 40° to 50°, for example, when used with a substantially hemispherical bottom portion CNX1. The tapered bottom portion 125 may comprise, for example, an annular collection region CR1. Particles P1 may adhere to the annular collection region CR1 as a concentrated ring, for example.

[0044] This method may include collecting particles P1 from a first container VES1 and / or releasing particles P1 into a second container VES2. Containers VES1 and / or VES2 may have an inner (bottom) surface SRF3.

[0045] The shape of the inner surface SRF3 of containers VES1 and / or VES2 may substantially correspond to, for example, the shape of the outer surface SRF11 of shield 120.

[0046] The inner surface SRF3 of the container may have, for example, a tapered portion. The tapered portion may have a taper angle γ3. The taper angle γ3 of the container may be selected to substantially correspond to the taper angle γ1 of the shield. For example, the taper angle γ3 may be in the range of γ1 to γ1+5°.

[0047] The material of container VES1 may be selected so as not to alter the magnetic field of magnet MAG1. The relative permeability of the materials of containers VES1 and VES2 may be substantially equal to 1. The material of containers VES1 and / or VES2 may be a polymer, for example, polypropylene, polyethylene, or polycarbonate.

[0048] Containers VES1 and VES2 may optionally have a central portion VB3 adjacent to the tapered portion of the container. Containers VES1 and VES2 may optionally have a central concave portion REC1 adjacent to the tapered portion of the container (Figure 12c).

[0049] Containers VES1 and VES2 may, for example, be sample wells. Containers VES1 and VES2 may, for example, be wells of a microwell plate. A microwell plate may also be called, for example, a microtitration plate, a sample plate, or a well plate. A microwell plate may also be called, for example, a microtitration plate. Containers VES1 and VES2 may, for example, be wells of a microwell plate. A well plate may contain an array of wells. A well plate may contain, for example, 24, 96, or 384 wells.

[0050] In one embodiment, particles can be lifted simultaneously from several wells of a microwell plate by using an array of transfer probes 100.

[0051] The magnet MAG1 has, for example, a hemispherical bottom portion CNX1. The minimum volume of liquid in container VES1 or VES2 may be, for example, in the range of 5 μl to 20 μl. (1 μl = 0.000001 liters = 10 -12 m3 ).

[0052] Magnet MAG1 may be a single component or a combination of several permanent magnets. The symbols S and N refer to the magnetic poles of magnet MAG1. The north pole (N) of magnet MAG1 may be above or below the south pole (S).

[0053] Referring to Figure 3a, container VES1 can contain a certain amount of composition MX1. Composition MX1 can be obtained, for example, by introducing magnetically responsive particles P1 into a sample MX0. Magnet MAG1 can be moved to the lowest position relative to shield 120. Moving the permanent magnet MAG1 to a lower position relative to shield 120 can effectively activate the magnetic field of collection region CR1. Moving the permanent magnet MAG1 to a lower position relative to shield 120 can move the maximum value of the magnetic field gradient of magnet MAG1 to a position where particles P1 are effectively attracted to collection region CR1.

[0054] The collection region CR1 may be located, for example, in the tapered portion of the shield 120. The collection region CR1 may also be located, for example, in the spherical portion of the shield 120 (Figure 12a).

[0055] Referring to Figure 3b, the lower end of the transfer probe 100 can be inserted into the container VES1. The lower end of the probe 100 can be immersed in the composition MX1 to collect particles P1. The magnetic field of the probe can attract the particles P1 of composition MX1 mainly to the collection region CR1 of the probe 100. The collected particles P1 may surround the collection region CR1 as, for example, an annular deposit of material. The particles P1 may adhere as, for example, a concentrated ring on the collection region CR1. The annular particle collection region CR1 may surround the bottom end of the shield 120 of the probe 100. The convex bottom portion CNX1 of the magnet MAG1 may provide the annular particle collection region CR1 located below the cylindrical portion SRF0 of the magnet MAG1.

[0056] The magnetic field of probe 100 can convert composition MX1 into an altered composition having a concentration zone and a depletion zone. The conversion can occur rapidly. Substantially all particles P1 can ultimately be collected in the collection region CR1.

[0057] Referring to Figures 3c and 3d, the magnetically responsive particle P1 can be lifted away from the liquid LIQ1 of composition MX1 by lifting the probe 100. After the particle P1 is collected by the probe 100, the probe 100 can be lifted away from the container VES1 while keeping the magnet MAG1 in its low position, thereby ensuring that the particle P1 remains firmly attached to the probe 100. The probe magnet MAG1 can remain in a low position during the lift to keep the particle P1 firmly attached to the collection area CR1. The particle P1 can be lifted together with the probe 100. The particle P1 can be separated from the liquid LIQ1 by lifting the probe 100. If composition MX1 contains a target substance M1, the target substance M1 bound to the particle P1 can be substantially separated from the liquid LIQ1 by lifting the probe 100. The target substance M1 bound to the particle P1 can be lifted away from the container VES1. The probe 100 can be lifted by moving the probe 100 upward and / or by moving the container VES1 downward. The method may include causing relative vertical movement between the probes 100 to remove the collected particles P1 from the container together with the probes 100. Causing vertical movement may include moving the probes upward and / or moving the container downward.

[0058] After removal from container VES1, the particles P1 may optionally be washed, for example, by temporarily immersing probe 100 in a washing solution. Washing may be performed such that, for example, the end of probe 100 is placed in the washing solution and magnet MAG1 is lifted, thereby releasing the particles P1 into the washing solution. After washing, the particles P1 may be collected again by probe 100 or by a different probe 100.

[0059] Even after the probe 100 is lifted from the container VES1, a small amount of liquid LIQ1 may remain attached to the particle P1 and / or the probe 100. The volume of liquid LIQ1 attached to particle P1 may be less than 1 μl. The attached liquid LIQ1 may be optionally evaporated if necessary.

[0060] When particle P1 is collected, magnet MAG1 can be maintained in its lower position, thereby causing particle P1 to adhere to the lower end of shield 120. When particle P1 is released, magnet MAG1 can be raised to its upper position, in which position magnet MAG1 no longer holds particle P1 attached to shield 120.

[0061] Referring to Figures 4a to 4d, magnetically responsive particles P1 temporarily attached to the probe 100 can be transported to and released at the release location LOC2. The bottom end of the probe 100 can be positioned at the release location LOC2. The probe 100 can be moved to contact the release surface and / or container at the release location LOC2. Subsequently, in order to temporarily reduce the magnitude of the magnetic field in the collection region CR1 of the probe 100, the magnet MAG1 of the probe 100 can be moved upward relative to the shield 120 of the probe 100. Lifting the magnet MAG1 upward relative to the shield 120 can effectively neutralize the magnetic field in the collection region CR1. This method may include causing a relative vertical movement between the magnet MAG1 and the shield 120 to release the collected particles P1 from the shield 120. Causing a vertical movement may include moving the magnet upward and / or moving the shield downward.

[0062] A second container VES2 or sample plate PLA2 (Figure 11a) may be configured to act as the release position LOC2. The (second) container VES2 may contain a certain amount of the (second) liquid LIQ2. The method may include releasing particles P1 from the probe 100 into the liquid LIQ2 in the container VES2.

[0063] Liquid LIQ2 may facilitate the release of particles P1 from probe 100, and / or, liquid LIQ2 may provide a suitable chemical environment for the target substance M1 supported by particles P1. When particles are brought into contact with liquid LIQ2, the surface tension of liquid LIQ2 may facilitate the release of particles P1 from probe 100.

[0064] The emission of particle P1 can be selectively facilitated by using an auxiliary emission magnet MAG2, which may be located below the emission position LOC2 (Figures 11a-11d). However, the low vertical position of the collection region CR1 may allow particle P1 to be emitted into liquid LIQ2 even without using the auxiliary emission magnet MAG2.

[0065] Figures 5a and 5b show the effect of the convex bottom portion CNX1 on the vertical position of the collection area CR1 when compared with the reference magnet MAG0.

[0066] Referring to Figure 5a, the convex bottom portion CNX1 of magnet MAG1 may provide a lower vertical position H1 of the collection area CR1 compared to the vertical position Ho of the collection area of ​​a comparative cylindrical magnet MAG0 having a flat end. This lower position may allow for a reduction in the volume of liquid LIQ2 contained in container VES2.

[0067] H1 may indicate the vertical position of the collection area CR1 provided by the convex bottom portion CNX1 relative to the bottom of the container VES2. H0 may indicate the vertical position of the collection area provided by the reference magnet MAG0 relative to the bottom of the container. ΔH 01 This may indicate a difference H0-H1. Relative difference ΔH 01 / H0 may depend on the shape of the convex bottom portion CNX1. Relative difference ΔH 01 / H0 can be, for example, within the range of 10% to 60%. The shape of the convex bottom portion CNX1 is relative to ΔH 01 / H0 can be selected such that it falls within the range of, for example, 30% to 60%.

[0068] Table 1 shows, as an example, the minimum volume V of liquid LIQ2 in the second container VES2 when using a probe magnet MAG1 having a hemispherical convex portion CNX1. 2,MIN This shows the minimum volume V for magnets with diameters of 1.6 mm, 3 mm, 4 mm, and 7.6 mm. 2,MIN This is shown. [Table 1]

[0069] Table 1 also shows, for comparison, the minimum volume of liquid LIQ2 in the second container VES2 for various diameters of a reference probe magnet MAG0 having a flat bottom. Based on Table 1, it can be recognized that a magnet with a hemispherical bottom portion may allow particles P1 to be released into a substantially smaller volume of liquid LIQ2 compared to a reference magnet of the same diameter. Table 1 also shows, as an example, the maximum volume of composition MX1 in the first container VES1. The volume of liquid LIQ2 in the second container VES2 may be substantially smaller than, for example, the volume of composition MX1 in the first container VES1, in order to concentrate substance (M1) from composition MX1. The minimum volume of composition MX1 in the first container VES1 may be greater than, for example, the minimum volume of liquid LIQ2 in the second container VES2, in order to concentrate substance (M1) from composition MX1. Table 1 also shows, as an example, the maximum volume of liquid LIQ2 in the second container VES2.

[0070] Referring to Figure 5b, the convex bottom portion CNX1 of magnet MAG1 can provide a lowered position H1 of the collection area CR1, even when compared to the vertical position H0 of the collection area of ​​a comparative magnet MAG0 which has a conical bottom with a sharp tip.

[0071] When using the comparative magnet MAG0 shown in Figure 5a or Figure 5b, the magnetically responsive particles P1 are typically attracted to the annular collection region located at the bottom of the cylindrical portion of the comparative magnet MAG0. The magnetically responsive particles P1 typically do not adhere to the sharp tip of the conical portion of the comparative permanent magnet MAG0 shown in Figure 5b.

[0072] The comparative magnet MAG0 in Figure 5a or Figure 5b may form two separate collection regions. The comparative magnet MAG0 may also collect particles into the two collection regions. The upper annular collection region may be located slightly above the bottom of the cylindrical portion of the magnet MAG0, and the lower annular collection region may be located slightly below the bottom of the cylindrical portion of the magnet MAG0. Position H 0L This may indicate the perpendicular position of the lower annular collection region of the comparative magnet MAG0 relative to the bottom of the container. Relative difference ΔH 01 / H 0L This may depend on the shape of the convex bottom portion CNX1. The shape of the convex bottom portion CNX1 is relative to ΔH 01 / H 0L However, it can be selected to be within the range of, for example, 10% to 60%. The shape of the convex bottom portion CNX1 is relative to the difference ΔH 01 / H 0L However, it can be selected to fall within a range of, for example, 30% to 60%.

[0073] Figure 6a shows, as an example, the magnetic field MF1 generated by a probe magnet MAG1 having a convex bottom portion CNX.

[0074] Referring to Figure 6b, the shapes of the containers VES1 and / or VES2 can be optionally selected to correspond to the shape of the outer surface of the probe 100. The internal shape of the containers can substantially correspond to the external shape of the shield 120 of the probe 100.

[0075] The tip 1 of the shield 120 may optionally be brought into contact with the bottom surface of the container VES1 or VES2 such that a gap GAP3 with width g3 remains between the shield 120 and the container. The gap GAP3 may also be called, for example, a void. The width g3 of the wet gap GAP3 between the shield 120 and the container VES1 and / or VES2 may be in the range of, for example, 0.05 mm to 0.2 mm. The width g3 of the gap GAP3 may be measured in a direction perpendicular to the outer surface of the shield 120. Using a small gap width may allow for a reduction in the minimum volume of liquid LIQ1 or LIQ2. A non-zero width g3 of the gap GAP3 may also reduce the risk of compressing particles P1 between the collection area CR1 and the container VES1. Thus, the gap may reduce the risk of damage to particles P1 adhering to the collection area CR1.

[0076] The shape of the container VES1 may be selected such that the gap is larger at a vertical position above the nominal upper level SRF4 of the liquid, thereby ensuring that only the bottom portion of the shield 120 is wet during operation. The width g0 of the gap may be, for example, 1.0 mm larger than the nominal upper level SRF4 of the liquid LIQ1.

[0077] Here, the shape of the convex bottom portion CNX is considered with reference to Figures 7a and 7b. The cylindrical portion SRF0 of the magnet MAG1 may have a circular lower boundary CIR2. The axis of symmetry AX1 of the magnet MAG1 may intersect the bottom portion CNX1 at point Q1. The boundary CIR2 and the intersection point Q1 may define a conical reference plane REF0. The surface SRF1 of the convex bottom portion CNX1 of the magnet MAG1 may protrude by a distance e3 from the conical reference plane REF0.

[0078] Symbol a1 may indicate the radius of the cylindrical portion SRF0. Diameter D of magnet MAG1. MAG1 L0 can be equal to twice the radius a1. The symbol a1 may represent the height of the bottom portion CNX1 of the magnet MAG1. L0 may represent the diagonal length of the conical reference plane REF0. L0 may represent the distance between the intersection Q1 and the circular boundary CIR2.

[0079] The surface SRF1 of the convex bottom portion CNX1 may have a circular protruding region CIR3 having a maximum protruding distance e3 with respect to the conical reference plane REF0. The distance e3 may be, for example, 10% or more of the radius a1 of the cylindrical portion. The circular region CIR3 may have a radius r3. The radius r3 may be, for example, within the range of 10% to 90% of the radius a1 of the cylindrical portion SRF0.

[0080] The vertical reference plane PLANE1 may include the symmetry axis AX1 of the magnet MAG1. The symbol CRV1 may indicate the intersection curve between the vertical reference plane PLANE1 and the surface SRF1 of the magnet MAG1. The vertical reference plane PLANE1 may intersect the boundary CIR2 at points Q2 and Q2'. The vertical reference plane PLANE1 may intersect the circular region CIR3 at points Q3 and Q3'. The protruding distance e3 may be equal to the distance of the point Q3 from the line defined by the points Q1 and Q2.

[0081] The intersection curve CRV1 may have a radius r1. The bottom portion CNX1 may be, for example, a hemispherical portion. In that case, the radius r1 may be equal to the radius a1 when Z < h1.

[0082] The intersection curve CRV1 may have a radius r1(Z) that depends on the vertical position Z. For example, the surface SRF1 of the bottom portion CNX1 may be, for example, a semi-elliptical surface.

[0083] SX, SY, and SZ indicate orthogonal directions. The direction SZ may be substantially parallel to the symmetry axis AX1 of the magnet MAG1. The direction SZ may be a substantially perpendicular direction. The direction SZ may be substantially anti-parallel (i.e., in the opposite direction) to the direction of gravity. Movement upward may mean movement in the direction SZ, and movement downward may mean movement in the opposite direction -SZ.

[0084] FIG. 8a shows, as an example, the spatial distribution of the magnitude of the magnetic field MF1 generated by the permanent magnet MAG1 having a hemispherical bottom portion CNX1. B MAXSRF00 indicates the maximum value of the magnetic field generated on the surface SRF00 of the shield 120 of the probe 100. SRF1 indicates the surface of the convex bottom portion of the magnet MAG1. SRF11 indicates the bottom surface of the shield 120. SRF0 indicates the cylindrical surface portion of the magnet MAG1. SRF00 indicates the cylindrical surface portion of the shield 120.

[0085] It can be observed that the maximum gradient of the magnetic field is located below point Q2, i.e., below the boundary CIR2 of the cylindrical portion SRF0.

[0086] The double-curved shape of the convex portion CNX1 can provide a collection region CR1 where the magnetic field has the greatest gradient. The curve CRV1 defining the shape of the axisymmetric convex portion CNX1 can be curved such that it has a finite radius of curvature in the vicinity of the collection region CR1. In other words, the curve CRV1 can be curved in the vicinity of the collection region CR1. The double-curved convex portion CNX1 can induce and generate a magnetic field such that the magnitude of the magnetic field has a large gradient in the collection region CR1.

[0087] Most of the particles P1 can be deposited on the outer surface of the shield 120 in a collection region CR1 that substantially coincides with the maximum gradient of the magnetic field.

[0088] The interaction with the magnetic field can generate an attractive force F1 that can pull particle P1 toward the shield 120 of probe 100.

[0089] The moving particle P1 may occasionally collide with the cylindrical portion SRF00 of the shield located above the boundary (Q2, CIR2). Subsequently, the lateral component of the magnetic force F1 may move the particle P1 downward from the cylindrical portion SRF00 to the collection region CR1 located at the bottom portion SRF11.

[0090] The cylindrical portion SRF0 of the magnet MAG1 can be smoothly joined to the bottom portion SRF1 of the magnet MAG1 to facilitate the movement of particles P1 from the cylindrical portion SRF00 to the bottom portion SRF11. The cylindrical portion SRF0 can be smoothly joined to the bottom portion SRF1 without a shoulder between the cylindrical portion SRF0 and SRF1. The cylindrical portion SRF0 can be smoothly joined to the bottom portion SRF1 without an edge between the portion SRF0 and SRF1. The radius of curvature of the intersecting curve CRV1 can be greater than 10% of the radius a1 of the magnet MAG1 at all vertical positions z of the curve CRV1 within the range of 50% to 150% of h1. Point Q1 is located at vertical position Z=0.

[0091] In one embodiment, the cylindrical portion SRF00 of the shield 120 may optionally be smoothly joined to the bottom portion SRF11 of the shield 120 without edges, to facilitate the movement of particles P1 from the cylindrical portion SRF00 to the bottom portion SRF11. The minimum radius of curvature r2(z) of the surface (SRF11, SRF00) of the shield (120) may be greater than 10% of the radius (a1) of the probe magnet (MAG1) at a vertical position (z) that is, for example, within the range of 50% to 150% of the height (h1) of the convex bottom portion (CNX1). The radius of curvature r2(z) may refer to the radius of curvature r2(z) of the outer surface of the shield 120 in a vertical plane (PLANE1). In the case of a hemispherical bottom portion CNX1, the minimum radius r2(z) is, for example, the outer diameter D of the shield 120. 120 It is practically equal to 50% of the time.

[0092] Referring to Figure 8b, the edge at the boundary CIR2 between the cylindrical portion SRF0 and the bottom portion SRF1 can affect the direction of the magnetic force F1. Near the edge, the magnetic force F1 can be nearly perpendicular to the surface SRF00. The lateral perpendicular component of the magnetic force F1 near the edge shown in Figure 6b can be weaker than in the situation in Figure 6a where the bottom portion SRF1 is smoothly joined to the cylindrical portion SRF0. Furthermore, the edge of the shield 120 between the surface portion SRF00 and SRF11 can hinder the movement of particles P1 from portion SRF00 to portion SRF11.

[0093] Figure 8c is a comparative example showing the spatial distribution of the magnitude of the magnetic field MF1 generated by a reference (permanent) magnet MAG0 having a flat bottom. For example, the maximum gradient of the reference magnet MAG0 may be located at a higher position compared to the probes shown in Figures 8a and 8b. The collection area CR0 provided by using the reference magnet MAG0 may be located at a higher position compared to, for example, the collection area CR1 of the probes shown in Figures 8a and 8b.

[0094] Referring to Figure 9a, the radius of curvature r1(z) of the surface of the convex bottom portion CNX1 of magnet MAG1 at a may depend as a function of the vertical position z. The boundary CIR2 of the cylindrical portion SRF0 is at the vertical position POS(Z=h1). The boundary CIR2 intersects the curve CRV1 at point Q2.

[0095] The surface SRF1 of the bottom portion CNX1 may be, for example, a semi-ellipsoid.

[0096] The height h1 of the base portion CNX1 may be less than the radius a1 of the cylindrical portion SRF0. The surface SRF1 of the base portion CNX1 may be, for example, part of a flattened ellipsoid.

[0097] The height h1 of the base portion CNX1 may be greater than the radius a1 of the cylindrical portion SRF0. The surface SRF1 of the base portion CNX1 may be, for example, part of an elongated ellipsoid.

[0098] Referring to Figure 9b, the surface SRF1 of the base portion CNX1 may be a truncated hemisphere. α1 may represent the angular dimension (angular height) of the spherical portion of the base portion CNX1. In the case of a truncated hemisphere, the height h1 may be, for example, 30% or more of the radius a1 (and less than 100% of the radius a1).

[0099] Referring to Figure 9c, the surface SRF1 of the bottom portion CNX1 can be a combination of conical surfaces SRF1a and SRF1b. α k This may indicate the cone angle of the first cone surface SRF1a. α k+1This may represent the cone angle of the second cone surface SRF1b. Cone angle (α k+1 ,α k ) decreases with increasing vertical coordinate z, resulting in a conical shape.

[0100] The surface SRF1 of the base portion CNX1 may be, for example, a combination of a spherical surface and a conical surface. Alternatively, the surface SRF1 of the base portion CNX1 may be, for example, a truncated cone surface.

[0101] The surface SRF1 of the bottom portion CNX1 can be, for example, a hemisphere, a truncated hemisphere, a truncated cone, a combination of cone portions, a semiellipsoid, a flattened semiellipsoid, a flattened semiellipsoid, a truncated semiellipsoid, a parabolic surface, or a truncated parabolic surface.

[0102] Referring to Figure 10, the apparatus 500 is - A support (SUP1) for holding a container (VES1) for containing a composition (MX1) comprising a target substance (M1), a first liquid (LIQ1), and magnetically responsive particles (P1), - A transport probe (100) including a shield (120) and a probe magnet (MAG1) that is movable inside the shield (120), - A first actuator (ACU1) to cause relative movement of the probe magnet (MAG1) with respect to the shield (120), - A second actuator (ACU2) to cause relative movement of the shield (120) relative to the container (VES1), The apparatus (500) may include, -By introducing the bottom end of the transfer probe (100) into the container (VES1), magnetically responsive particles (P1) are collected on the transfer probe (100). -By moving the transfer probe (100) and / or moving the container (VES1), the magnetically responsive particle (P1) is lifted out of the container (VES1) together with the transfer probe (100). - Position the transfer probe (100) at the discharge position (LOC2, VES2), -The probe magnet (MAG1) is configured to move relative to the shield (120) to emit magnetically responsive particles (P1) from the probe (100) to the emission locations (LOC2, VES2).

[0103] Container VES1 or VES2 may have an inner surface SRF3. Liquid LIQ1 or samples MX0, MX1, MX2 may have an upper surface SRF4.

[0104] The collected particles may be analyzed selectively. The collected particles may then be analyzed, for example, by using analytical instruments. The method may include, for example, detecting and / or measuring a target substance M1 transported by using a magnetic probe 100. The method may include, for example, measuring the amount or concentration of a target substance M1 transported by using a magnetic probe 100. The method may include, for example, detecting and / or measuring magnetic particles P1 transported by using a magnetic probe 100. The method may include, for example, detecting and / or measuring parameters related to a target substance M1 transported by using a magnetic probe 100. The method may include, for example, determining whether a sample MX0 contains a target substance M1.

[0105] The apparatus 500 may be configured to collect a target substance M1 from a mixture MX1 in order to produce a product. The apparatus 500 may be configured to increase the concentration of the target substance M1 in order to produce a product. The apparatus 500 may be configured to process the target substance M1 in order to produce a product. The product may be, for example, a pharmaceutical product.

[0106] The volume of liquid LIQ2 may be substantially smaller than the volume of liquid LIQ1 of the original sample MX0. The method may include increasing the concentration of the target substance M1 by collecting particles P1 from sample MX0 and transferring the collected particles P1 to the release site LOC2. The concentration ratio of the method may mean the ratio of the concentration of the target substance M1 in the second liquid LIQ2 at the release site LOC2 to the concentration of the target substance M1 in the first liquid LIQ1 of composition MX1 in the first container VES1. The concentration ratio may be, for example, greater than 2, greater than 10, or greater than 100.

[0107] The apparatus 500 may be configured to separate cells. The apparatus 500 may be configured to separate biomolecules. The apparatus 500 may be configured to concentrate biomolecules.

[0108] A second actuator ACU2 may be configured to cause relative movement between the probe 100 and the container VES1 and / or VES2. For example, actuator ACU2 may move the probe 100 relative to the container, and / or actuator ACU2 may move the container relative to the probe 100.

[0109] The actuator ACU2 may be configured to cause relative movement between the shield 120 and the container VES1 and / or VES2. For example, the actuator ACU2 may move the shield 120 relative to the container, and / or the actuator ACU2 may move the container relative to the shield 120.

[0110] For example, the actuator ACU2 may be configured to bring the bottoms of the containers VES1 and / or VES2 into contact with the shield 120.

[0111] For example, the second actuator ACU2 may be configured to bring the bottoms of the containers VES1 and / or VES2 closer to the shield 120.

[0112] The apparatus 500 may optionally be configured to cause relative movement between the probe and the container so that the gap width g3 between the shield 120 and the container is kept larger than a predetermined limit value in order to minimize or prevent particle fragmentation.

[0113] The device 500 may optionally include, for example, an elastic element to allow the shield 120 to press into contact with the containers VES1 and / or VES2 without damaging one or more parts of the device. The device 500 may optionally include, for example, a force sensor and a control system, which may be configured to keep the operating force of the second actuator ACU2 below a predetermined limit value to allow the shield 120 to press into contact with the containers without damaging one or more parts of the device.

[0114] The emission of particle P1 can be optionally facilitated, for example, by vibrating probe 100. Particle P1 can be emitted from probe 100 to emission position LOC2, for example, by vibrating shield. The apparatus may include, for example, a vibration transducer for causing transient vibrations of shield.

[0115] The apparatus 500 may optionally include actuators ACU2 and ACU3 for moving the probe 100 from the first container VES1 to the second container VES2. The apparatus 500 may optionally include actuators ACU2 and ACU3 for causing relative movement of the probe 100 with respect to the first container VES1 and relative movement of the probe 100 with respect to the second container VES2. For example, actuators ACU2 and ACU3 may move the probe 100 laterally with respect to the containers VES1 and VES2. For example, actuators ACU2 and ACU3 may move the containers VES1 and / or VES2 laterally with respect to the probe 100. Actuators ACU2 and ACU3 may include, for example, a rotating support for causing relative lateral movement of the containers VES1 and VES2 with respect to the probe 100.

[0116] The apparatus 500 may include a support section SUP1 for holding one or more containers (VES1, VES2). The support section SUP1 may be configured to hold, for example, a well plate containing an array of wells. The support section SUP1 may be, for example, a tray for holding the well plate. Actuators (e.g., ACU2 and / or ACU3) may be configured to cause relative movement between the probe 100 and the containers (VES1, VES2) by causing relative movement between the probe 100 and the support section 100. The support section SUP1 may be stationary, or the actuators (e.g., ACU2 and / or ACU3) may be configured to move the support section SUP1, for example, vertically. The apparatus 500 may further include one or more containers (VES1, VES2). The containers (VES1, VES2) may be consumables and / or replaceable parts. The containers (VES1, VES2) may be replaced, for example, to ensure that their inner surfaces are clean.

[0117] Referring to Figures 11a to 11d, the apparatus may optionally include one or more auxiliary magnets MAG2 to facilitate the emission of particles P1 from probe 100 to emission position LOC2. In a situation where the magnetic field of probe 100 is temporarily reduced, particles P1 may be attracted from probe 100 to emission position LOC2 by the magnetic force generated by the auxiliary magnets MAG2.

[0118] Particle P1 may be attracted from the shield 120 toward the emission position LOC2 by one or more auxiliary emission magnets MAG2 positioned below the emission position LOC2. The auxiliary magnets MAG2 may be permanent magnets or electromagnets.

[0119] The probe 100 can be moved and may come into contact with the emission surface and / or container at the emission position LOC2. The probe magnet MAG1 can be moved upward, thereby attracting the particle P1 by the emission magnet MAG2 and forming a concentrated spot on the emission position LOC2.

[0120] The convex bottom portion CNX of the magnet MAG1 can facilitate the release of particles P1 into a thin layer of liquid film LIQ2.

[0121] The release position LOC2 can also be implemented, for example, by using a plate PLA2. The collected particles P1 can be released onto the release surface SRF2. The collected particles P1 can be released onto the release surface SRF2 of a plate PLA2, for example. The plate PLA2 can be, for example, a microscope slide or a growth substrate. The plate PLA2 can be, for example, a glass plate. A portion of the growth substrate can be used as the release position LOC2. The growth substrate can be, for example, a Petri dish. The growth substrate can be, for example, an agar substrate. This method can be used, for example, to study the growth of fungi or bacteria.

[0122] The apparatus 500 may be configured to perform the method automatically. The method may also be applied manually or semi-automatically.

[0123] The probe magnet MAG1 may include, for example, a rare earth magnetic material. The probe magnet MAG1 may include, for example, a neodymium magnetic alloy or a samarium-cobalt magnetic alloy.

[0124] Using permanent magnets to generate a collection magnetic field may offer one or more of the following technical advantages compared to electromagnets: - Smaller size due to the elimination of the need for an electromagnet coil. - A high and stable magnetic field, - Reduced energy consumption, - There is no heat generated by the current in the electromagnet's coil. - The emission of electromagnetic waves from the coil can be avoided.

[0125] The sheath 120 may optionally have a substantially constant thickness. The bottom of the shield 120 of the transfer probe 100 may have a substantially constant thickness, for example, to facilitate the manufacture of the shield 120 and / or to reduce the amount of material required to manufacture the shield 120.

[0126] Referring to Figures 12a and 12b, the shield 120 of the transport probe 100 may have, for example, a spherical outer surface SRF 11. The collection area CR1 provided by the spherical bottom surface SRF 11 may also include the central portion of the surface SRF 11. Some particles P1 may also be attracted to the position of the surface SRF 11 close to the axis AX1 of the magnet MAG 1. However, the transport probe 100 with the spherical outer surface SRF 11 may also be capable of collecting particles P1 from small volumes and / or releasing particles P1 into small volumes.

[0127] The bottom surface SRF3 of containers VES1 and / or VES2 may have a tapered shape, for example. The bottom surface SRF3 of containers VES1 and / or VES2 may have a tapered shape, for example, to reduce the amount of liquid LIQ1, LIQ2 required to collect and / or release particles P1 using probe 100. The bottom surface SRF3 of containers VES1 and / or VES2 may have a tapered shape, for example, to guide liquid LIQ1, LIQ2 into the central portion of containers VES1 and / or VES2 in a funnel shape.

[0128] Figure 12c shows, as an example, the shape of the bottom of the container shown in Figures 12a, 12b, and 12f. The tapered bottom surface SRF3 in Figure 12d can funnel-like guide liquids LIQ1 and LIQ2 into the central concave portion REC1 of the container. The bottom surface SRF3 may include the concave portion REC1. The taper angle of the bottom surface SRF3 of the container may depend on the radial position to provide the concave portion REC1. The tapered bottom surface SRF3 of Figure 12d may allow operation with small amounts of liquids LIQ1 and LIQ2. The tapered bottom surface SRF3 of the container has a first radial position r 31 In the first taper angle γ 31 It has a second radial position r32 In this case, the second different taper angle γ 32 It may have the first taper angle γ 31 This can be, for example, within the range of 40° to 60°, and the second taper angle γ 32 For example, (γ 11 +1°)~(γ 11 The first taper angle γ may be within the range of +20°. 31 This can be, for example, within the range of 50° to 55°, and the second taper angle γ 32 For example, (γ 31 +5°)~(γ 31 The first radial position r may be within the range of +10°. 31 This could be, for example, the 25% position of the radius a1 of magnet MAG1. The second radial position r 32 This could be, for example, the 50% position of the radius a1 of magnet MAG1. The bottom of the container may have an axis of symmetry AX0. Radial position r 31 , r 32 This can be defined with respect to axis AX0.

[0129] Referring to Figure 12d, a transfer probe 100 equipped with a tip TIP1 may also be used with the container in Figure 12a. The tip TIP1 of the shield 120 can facilitate, for example, the collection of particles P1 from composition MX1. The tip TIP1 of the shield 120 can facilitate, for example, the release of the collected particles P1 into liquid LIQ2. The tip can facilitate collection, for example, when composition MX1 has high viscosity. The tip can facilitate release, for example, when liquid LIQ2 has high viscosity. The tip TIP1 can cause a stirring effect, for example, in composition MX1 and / or liquid LIQ2. The tip TIP1 can also reduce the risk of damaging the particles P1. The tip TIP1 can optionally ensure that a gap GAP3 remains between the collection area CR1 and the bottom surface SRF3 of the container.

[0130] Referring to Figures 12e and 12f, the outer diameter D of the shield 120 120 For example, the diameter D of magnet MAG1. MAG1 It can be within the range of 105% to 200%. Diameter D of magnet MAG1 MAG1For example, to ensure that the particle P1 is attracted to the bottom portion 125 of the shield 120, and / or to further reduce the minimum amount of liquid (LIQ1, LIQ2) required to transport the particle P1 using the probe 100, the diameter D of the shield 120 120 It could be even smaller in practical terms. Outer diameter D of shield 120 120 For example, the diameter D of magnet MAG1. MAG1 It could be within the range of 120% to 200%.

[0131] The shield 120 may include a bottom portion 125. The shield 120 may include a tapered bottom portion 125. The shield 120 may include a tapered bottom portion 125 with a tip 1. The shield 120 may optionally include a centering portion 128 for defining the lateral position of the shield 120 relative to the magnet MAG1. The outer diameter D of the centering portion 128 128 The outer diameter D of the shield 120 is 120 The following is possible: Outer diameter D of the centering portion 128 128 The outer diameter D of the shield 120 is 120 It may be substantially smaller than that. The shield 120 may optionally include, for example, an annular projection 127 between the bottom portion 125 and the centering portion 128.

[0132] Referring to Figure 12g, the apparatus 500 may include an array of transfer probes 100a, 100b, 100c, and 100d. Each probe may include a magnet (MAG1a, MAG1b, MAG1c, MAG1d) and a shielding section (120a, 120b, 120c, and 120d). These magnets may be connected to a common support section 150. The shielding sections may be connected to each other, for example, by a joint 122. The shielding sections (120a, 120b, 120c, and 120d) and the joint 122 together may form an array of shields. The array of shields may also be called, for example, a comb. The apparatus 500 may also include an array of container sections VES1a, VES1b, VES1c, and VES1d. These container sections may also be called wells. The wells VES1a, VES1b, VES1c, and VES1d together may constitute, for example, a well plate. Each container portion may contain a composition (MX1). Each container portion may contain different compositions (MX1). The apparatus may be configured to move the transfer probes 100a, 100b, 100c, and 100d simultaneously with respect to the wells, and / or the apparatus may be configured to move the wells VES1a, VES1b, VES1c, and VES1d simultaneously with respect to the transfer probes. The apparatus may be configured to process multiple compositions (MX1) contained in the wells VES1a, VES1b, VES1c, and VES1d simultaneously. The magnets, shields, and / or the shape of the wells may be selected as disclosed above with reference to, for example, Figures 2 to 12f.

[0133] Referring to Figure 12h, the apparatus 500 may include an array of transport probes 100a, 100b, 100c, and 100d. Each probe may include a magnet (MAG1a, MAG1b, MAG1c, MAG1d) and a sheath (120a, 120b, 120c, 120d). Each magnet (MAG1a, MAG1b, MAG1c, MAG1d) may have a convex bottom portion (CNX1). These magnets may be connected to a common support 150. These magnets may be oriented so that their north and south poles are reversed. For example, in a situation where a second probe magnet MAG1b is adjacent to a first probe magnet MAG1a, the orientation of the poles (N,S) of the second probe magnet MAG1b may be reversed with respect to the orientation of the poles (S,N) of the first probe magnet MAG1a. For example, the magnetic dipole moment of the first probe magnet (e.g., MAG1a) of the array may have a first direction (e.g., downward), and the magnetic dipole moment of at least the second probe magnet (e.g., MAG1b) of the array may have a second opposite direction (e.g., upward). These magnets may be oriented such that the orientation of at least one magnet is reversed. This can reduce the composite magnetic far-field surrounding the array of magnets and / or equalize and increase the composite magnetic near-field between the bottom ends of adjacent magnets (MAG1a, MAG1b). This can equalize and / or increase the particle collection efficiency of adjacent probes 100. Thus, a smaller (average) amount of liquid may be used to release the particles. The apparatus 500 in Figure 12h may otherwise correspond to the apparatus 500 in Figure 12g, where at least one magnet of the array may have a magnetic orientation reversed with respect to at least one second magnet of the array.

[0134] It will be apparent to those skilled in the art that modifications and variations of the devices and methods according to the present invention are recognizable. The figures are schematic. The specific embodiments described above with reference to the accompanying drawings are merely illustrative and are not intended to limit the scope of the invention as defined by the accompanying claims.

Claims

1. A method for processing a composition (MX1) using a magnetic transfer probe (100), wherein the transfer probe (100) includes a shield (120) and a probe magnet (MAG1) that is movable inside the shield (120), The aforementioned method, - To provide a first composition (MX1) in a container (VES1), wherein the composition (MX1) comprises a first liquid (LIQ1) and a plurality of magnetically responsive particles (P1), and the particles (P1) are configured to selectively interact with a target substance (M1), - Positioning the transfer probe (100) inside the container (VES1) to collect the particles (P1) from the first composition (MX1), - By causing relative vertical movement between the transfer probe (100) and the container (VES1), the collected particles (P1) are removed from the container (VES1) together with the transfer probe (100). - Including the release of the collected particles (P1) from the shield (120) to the release position (LOC2) by causing a relative vertical movement between the probe magnet (MAG1) and the shield (120), The probe magnet (MAG1) is a permanent magnet comprising a cylindrical portion (SRF0) and a convex bottom portion (CNX1) adjacent to the cylindrical portion (SRF0), wherein the magnet has an axis of symmetry (AX1), the axis of symmetry (AX1) intersects with the bottom portion (CNX1) at an intersection (Q1), the intersection (Q1) and the circular lower boundary (CIR2) of the cylindrical portion (SRF0) define a reference cone (REF0), and the bottom portion (CNX1) protrudes relative to the reference cone (REF0). The material of the shield (120) is selected so as not to alter the magnetic field of the probe magnet (MAG1). The shield (120) has a tapered portion (125) that provides an annular collection region (CR1), The collected particles (P1) are attached to the annular collection region (CR1) as a concentrated ring. The container (VES1) has a tapered bottom surface (SRF3).

2. The surface (SRF1) of the convex bottom portion (CNX1) is at the maximum distance (e) from the reference cone (REF0) in the circular region (CIR3). 3 ) has the maximum distance (e 3 ) is the radius (a) of the cylindrical portion (SRF0) 1 The method according to claim 1, wherein 10% or more of )

3. The surface (SRF1) of the convex bottom portion (CNX1) is at the maximum distance (e) from the reference cone (REF0) in the circular region (CIR3). 3 ) has the radius (r) of the circular region (CIR3) 3 ) is the radius (a) of the cylindrical portion (SRF0) 1 The method according to claim 1 or 2, wherein the range is 10% to 90%.

4. The surface (SRF1) of the convex bottom portion (CNX1) is at the maximum distance (e) from the reference cone (REF0) in the circular region (CIR3). 3 ) has, and the vertical position of the circular region (CIR3) is the height (h) of the convex bottom portion (CNX1). 1 The method according to any one of claims 1 to 3, wherein the amount is within the range of 10% to 90%.

5. The radius (a) of the cylindrical portion (SRF0) 1 The ratio of the height (h) of the convex bottom portion (CNX1) to 1 is within the range of 0.5 to 2.

0. The method according to any one of claims 1 to 4.

6. The radius (a) of the cylindrical portion (SRF0) 1 The height (h) of the convex bottom portion (CNX1) relative to ) 1 The method according to any one of claims 1 to 4, wherein the ratio of ) is in the range of 0.7 to 1.

5.

7. The method according to any one of claims 1 to 6, wherein the convex bottom portion (CNX1) is a hemisphere or a truncated hemisphere.

8. The convex bottom portion (CNX1) is a semi-spheroid, truncated semi-spheroid, truncated cone, or has a different taper angle (α k , α k+1 The method according to any one of claims 1 to 7, which is a combination of two or more conical portions having )

9. The diameter (D) of the probe magnet (MAG1) MAG1 The method according to any one of claims 1 to 8, wherein the length is in the range of 1 mm to 8 mm.

10. The method according to any one of claims 1 to 8, comprising releasing the collected particles (P1) from the shield (120) into a liquid (LIQ2) in a second container (VES2), wherein the volume of the liquid (LIQ2) in the second container (VES2) is in the range of 5 μl to 50 μl.

11. The method according to any one of claims 1 to 8, comprising releasing the collected particles (P1) from the shield (120) into a liquid (LIQ2) in a second container (VES2), wherein the volume of the liquid (LIQ2) in the second container (VES2) is in the range of 5 μl to 15 μl.

12. The method according to any one of claims 1 to 11, comprising releasing the collected particles (P1) from the shield (120) onto the surface (SRF2).

13. The method according to any one of claims 1 to 12, wherein the particles are ferromagnetic particles, ferrimagnetic particles, or superparamagnetic particles, and the size of the particles is in the range of 50 nm to 10 μm.

14. Apparatus (500), - A support (SUP1) for holding a container (VES1) for containing a composition (MX1) comprising a first liquid (LIQ1) and magnetically responsive particles (P1), - A transport probe (100) including a shield (120) and a probe magnet (MAG1) that is movable inside the shield (120), - A first actuator (ACU1) for causing relative vertical movement between the probe magnet (MAG1) and the shield (120), - A second actuator (ACU2) for causing relative vertical movement between the transfer probe (100) and the container (VES1), The apparatus (500) includes, - Position the transfer probe (100) into the container (VES1) to collect the particles (P1) from the first composition (MX1), - By moving the transfer probe (100) upward and / or by moving the container (VES1) downward, the collected particles (P1) together with the transfer probe (100) are removed from the container (VES1), and - The system is configured to release the collected particles (P1) from the shield (120) to the release position (LOC2) by moving the probe magnet (MAG1) upward relative to the shield (120) and / or by moving the shield (120) downward relative to the probe magnet (MAG1). The probe magnet (MAG1) is a permanent magnet comprising a cylindrical portion (SRF0) and a convex bottom portion (CNX1) adjacent to the cylindrical portion (SRF0), wherein the magnet has an axis of symmetry (AX1), the axis of symmetry (AX1) intersects with the bottom portion (CNX1) at an intersection (Q1), the intersection (Q1) and the circular lower boundary (CIR2) of the cylindrical portion (SRF0) define a reference cone (REF0), and the bottom portion (CNX1) protrudes relative to the reference cone (REF0). The material of the shield (120) is selected so as not to alter the magnetic field of the probe magnet (MAG1). The shield (120) has a tapered portion (125) that provides an annular collection region (CR1), The transfer probe (100) is configured to collect the particles (P1) such that the collected particles (P1) adhere to the annular collection region (CR1) as a concentrated ring. The container (VES1) is a device (500) having a tapered bottom surface (SRF3).

15. The apparatus (500) according to claim 14, wherein the convex bottom portion (CNX1) is a hemisphere or a truncated hemisphere.

16. The diameter (D) of the probe magnet (MAG1) MAG1 The apparatus (500) according to claim 14 or 15, wherein the diameter is in the range of 1 mm to 8 mm.

17. The apparatus (500) according to any one of claims 14 to 16, comprising an array of probe magnets (MAG1a, MAG1b), wherein at least one magnet (MAG1a) of the array has an inverted magnetic orientation with respect to at least one second magnet (MAG1b) of the array.

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