The present invention relates to a pump unit that feeds particles in a liquid with the particles dispersed therein to a predetermined area, a method for delivering particles which is carried out using the pump unit, a syringe unit that feeds cells in a suspension with the cells dispersed therein to a microchannel, and a method for delivering cells which is carried out using the syringe unit.
Various apparatuses have been proposed which serve as systems that deliver particles mixed and dispersed in a liquid (see, for example, Documents 1 and 2). Here, by way of example, description will be given of a syringe unit used in an apparatus that introduces a substance into blood-derived cells or stem cells in the field of medicine (see, for example, Patent Document 3). Patent Document 3 shows the substance introducing apparatus for massive continuous processing. A syringe unit installed in the substance introducing apparatus uses a syringe to feed cells into a microchannel.
In general, to introduce a substance into blood-derived cells or stem cells, blood-derived cells or stem cells to be introduced are first extracted from a living organism and subjected to a dispersing treatment using trypsin or the like. The cells are then dispersed in a culture medium. Then, the cells dispersed and suspended in the culture medium are fed into a microchannel via a syringe. The cells are allowed to flow to a predetermined treatment position via the culture medium. The cells reaching the treatment position are captured by a sucking mechanism. A pouring system introduces an agent or the like into any site of each cell.
In the syringe unit described in Patent Document 3, the tip of the syringe internally filled with the culture medium is connected to the microchannel via a tube. The syringe then performs an ejecting operation to feed cells into the microchannel through the tube. Here, when bubbles are mixed in the microchannel filled with the culture medium, the mixed bubbles hinder the delivery of the cells to make the solution feeding through the microchannel unstable, even with the ejecting operation of the syringe. Various factors contribute to mixing the bubbles into the microchannel. The major factor is air entering the tube during syringe replacement when the syringe having ejected the culture medium is replaced with a syringe filled with a culture medium.
At the treatment position, to allow the sucking mechanism to reliably capture the cells, the migration of the cells is monitored on the basis of image analysis via a CCD camera. Monitoring the migration of the cells requires a resolution sufficient for a very small amount of liquid fed. Blood-derived cells have a diameter of about 5 to 20 μm in a suspended condition. Delivery and capture of cells are facilitated provided that the cross section of the microchannel has the minimum size required to contain the cells. Thus, when the cross section of the microchannel is shaped like a substantial square of 50 μm on a side, the cells need to be delivered at 500 μm/sec in order to obtain a sufficient solution feeding resolution. This requires a flow rate of 1.25 nL/sec. Thus, a syringe with a small inner diameter may be used to obtain a sufficient solution feeding resolution.
Patent Document 1: Japanese Utility Model Laid-Open No. 5-13198
Patent Document 2: Japanese Patent Laid-Open No. 2001-258545
Patent Document 3: Japanese Patent Laid-Open No. 2004-166653
However, the use of a syringe with a small inner diameter reduces the amount of liquid ejected during a single operation. The syringe unit described in Patent Document 3 thus requires frequent syringe replacements, resulting in the mixture of a large amount of bubble into the microchannel.
In view of these circumstances, an object of the present invention is to provide a pump unit and a syringe unit which can obtain a sufficient solution feeding resolution while inhibiting the mixture of bubbles, as well as a method for delivering particles which is carried out using the pump unit and a method for delivering cells which is carried out using the syringe unit.
To accomplish the above object, the present invention provides a pump unit that feeds particles in a liquid with the particles dispersed therein to a predetermined area, the pump unit including:
a reservoir that reserves the liquid and that has an opening at a bottom of the reservoir, the opening connected to the predetermined area;
a pump that performs a sucking operation of sucking the liquid through a tip thereof and an ejecting operation of ejecting the sucked liquid from the tip; and
a moving mechanism that moves the pump and the reservoir relative to each other to vary a positional relationship between the tip of the pump and an edge of the opening, between a separating relationship in which the tip of the pump is separated upward from the edge of the opening with the tip staying in the liquid reserved in the reservoir and a pressing relationship in which the tip is pressed against the edge of the opening,
wherein in the separating positional relationship, the pump performs the sucking operation to bring the particles into the pump, and in the pressing positional relationship, the pump performs the ejecting operation to deliver the particles, and
the moving mechanism varies the positional relationship between the separating relationship and the pressing relationship with the tip immersed in the liquid reserved in the reservoir.
With the pump unit in accordance with the present invention, while the positional relationship is varying between the separating relationship and the pressing relationship, the pump tip is not drawn up from the liquid level of the liquid. Further, the need for syringe replacement is eliminated to prevent the entry of air. This inhibits the mixture of bubbles. Further, even when a syringe with a small inner diameter is used to obtain a sufficient solution feeding resolution, the repetition of an ejecting operation and a sucking operation does not result in the disadvantageous mixture of bubbles because the need for syringe replacement is eliminated to prevent the entry of air. Therefore, the pump unit in accordance with the present invention can provide a sufficient solution feeding resolution while inhibiting the mixture of bubbles.
Further, in the pump unit in accordance with the present invention, the pump can preferably be separated from the pump unit.
This allows the pump to be replaced with a new one after continuous feeding. Furthermore, a maintenance operation such as cleaning of the pump is easy.
Here, the moving mechanism may include urging means that urges the tip of the pump toward the edge of the opening and a cam mechanism that separates the tip of the pump from the edge of the opening against an urging force of the urging means. Alternatively, the moving mechanism may be a piezo actuator.
Further, the pump unit in accordance with the present invention preferably includes removal means that removes particles or bubbles present between the tip of the pump and the edge of the opening in the separating positional relationship.
The removal means may blow a fluid against the tip of the pump.
The removal means can prevent the particles from being sandwiched between the tip of the pump and the edge of the opening when the positional relationship changes from the separating relationship to the pressing relationship. Further, air dissolved into the liquid reserved in the reservoir may appear as bubbles. Removal of the thus appearing bubbles enables the possible mixture of bubbles to be reliably inhibited.
In a preferred aspect of the pump unit in accordance with the present invention, the pump starts the ejecting operation while the positional relationship is being changed from the separating relationship to the pressing relationship by the moving mechanism, to remove particles or bubbles present between the tip and the edge of the opening, or
the moving mechanism moves the pump and the reservoir relative to each other in a horizontal direction in the separating positional relationship, and
the reservoir has a brush member that has upward extending bristles implanted at a bottom thereof so that relative movement of the pump and the reservoir in a horizontal direction causes the brush member to slidably rub against the tip of the pump to remove attachments from the tip.
These aspects can reliably inhibit the sandwiching of particles and the mixture of the bubbles.
Moreover, in the pump unit in accordance with the present invention, the edge of the opening in the reservoir preferably projects upward from a part of the bottom which surrounds the edge. Further, the edge of the opening more preferably has a projecting tip surface that is an upward projecting curved surface.
The projecting edge reduces the area of a part of the edge which is contacted by the pump tip, increasing the contact pressure of the pump tip. This also reduces the possibility of sandwiching the particles between the pump tip and the edge of the opening. The possibility is further reduced when the projecting amount is larger than the diameter of the particle. Moreover, forming the edge into an upward projecting curved surface allows the particles to roll down the projecting tip surface, further reducing the possibility of sandwiching the particles between the pump tip and the edge of the opening.
Furthermore, in the pump unit in accordance with the present invention, the pump preferably repeats the sucking operation and the ejecting operation in the separating positional relationship to disperse particles unevenly distributed in the reservoir.
Long, continuous operation is likely to result in the uneven distribution of the particles, for example, precipitation of the particles at the bottom. With the above arrangement, the entry and exit of the liquid into and from the pump tip stirs the interior of the reservoir to disperse the unevenly distributed particles.
In another preferred aspect, the pump unit in accordance with the present invention includes:
supply means that supplies the liquid to the reservoir;
monitor means that monitors the liquid level of the liquid reserved in the reservoir; and
a control section that, when the monitor means indicates that the liquid level is lower than a predetermined height, causes the supply section to supply the liquid to the reservoir.
According to this aspect, even if long, continuous operation lowers the liquid level of the reservoir, the pump tip is not located above the liquid level. This prevents the possible mixture of bubbles in spite of long, continuous operation.
To accomplish the above object, the present invention provides a syringe unit that feeds cells in a suspension with the cells dispersed therein into a microchannel, the syringe unit including:
a reservoir that reserves the suspension and that has an opening at a bottom of the reservoir, the opening connected to the microchannel;
a syringe that performs a sucking operation of sucking the suspension through a tip thereof and an ejecting operation of ejecting the sucked suspension from the tip; and
a moving mechanism that moves the syringe and the reservoir relative to each other to vary a positional relationship between the tip of the syringe and an edge of the opening, between a separating relationship in which the tip of the syringe is separated upward from the edge of the opening with the tip staying in the suspension reserved in the reservoir and a pressing relationship in which the tip is pressed against the edge of the opening, and
wherein in the separating positional relationship, the syringe performs the sucking operation to bring the cells into the syringe, and in the pressing positional relationship, the syringe performs the ejecting operation to deliver the cells, and
the moving mechanism varies the positional relationship between the separating relationship and the pressing relationship with the tip immersed in the suspension reserved in the reservoir.
To accomplish the above object, the present invention provides a method for delivering particles, the method including:
a first step of reserving a liquid with the particles dispersed therein in a reservoir having an opening at a bottom thereof, the opening connected to a predetermined area;
a second step of, while a positional relationship between an edge of the opening and a tip of a pump that performs a sucking operation of sucking the liquid into an interior through a tip thereof and an ejecting operation of ejecting the sucked liquid from the tip toward an exterior is a separating relationship in which the tip of the pump is separated upward from the edge of the opening with the tip staying in the liquid reserved in the reservoir, causing the pump to perform the sucking operation to take the particles into the pump;
a third step of changing the positional relationship from the separating relationship to a pressing relationship in which the tip of the pump is pressed against the edge of the opening, with the tip of the pump immersed in the liquid reserved in the reservoir;
a fourth step of, in the pressing positional relationship, causing the pump to perform the ejecting operation to carry out the second step to deliver the particles taken into the pump; and
a fifth step of changing the positional relationship from the pressing relationship to the separating relationship with the tip of the pump immersed in the liquid reserved in the reservoir,
wherein performing the second to fifth steps is repeated.
The method for delivering particles according to the present invention prevents the pump tip from being drawn up from the liquid level of the liquid. Further, syringe replacement is not carried out, preventing the entry of air. This inhibits the mixture of bubbles. Further, even when a syringe with a small inner diameter is used to obtain a sufficient solution feeding resolution, the repetition of the second to fifth steps does not result in the disadvantageous mixture of bubbles because the need for syringe replacement is eliminated to prevent the entry of air. Therefore, the method for delivering particles in accordance with the present invention can provide a sufficient solution feeding resolution while inhibiting the mixture of bubbles.
To accomplish the above object, the present invention provides a method for delivering cells, the method including:
a first step of reserving a suspension with the cells dispersed therein in a reservoir having an opening at a bottom thereof, the opening connected to a microchannel area;
a second step of, while a positional relationship between an edge of the opening and a tip of a syringe that performs a sucking operation of sucking the suspension into an interior through a tip thereof and an ejecting operation of ejecting the sucked suspension from the tip toward an exterior is a separating relationship in which the tip of the syringe is separated upward from the edge of the opening with the tip staying in the suspension reserved in the reservoir, causing the syringe to perform the sucking operation to take the cells into the syringe;
a third step of changing the positional relationship from the separating relationship to a pressing relationship in which the tip of the syringe is pressed against the edge of the opening, with the tip of the syringe immersed in the suspension reserved in the reservoir;
a fourth step of, in the pressing positional relationship, causing the syringe to perform the ejecting operation to carry out the second step to deliver the cells taken into the syringe; and
a fifth step of changing the positional relationship from the pressing relationship to the separating relationship with the tip of the syringe immersed in the suspension reserved in the reservoir,
wherein performing the second to fifth steps is repeated.
According to the present invention, the present invention provides a pump unit and a syringe unit which can obtain a sufficient solution feeding resolution while inhibiting the mixture of bubbles, as well as a method for delivering particles which is carried out using the pump unit and a method for delivering cells which is carried out using the syringe unit.
Embodiments of the present invention will be described with reference to the drawings.
First, description will be given of a syringe unit that is an embodiment of a pump unit in accordance with the present invention.
The substance introducing apparatus 1 shown in
The syringe unit 10 is installed upstream of the microchannel 32. The syringe unit 10 includes a reserving well 11, a syringe 12, and a moving mechanism 13. Further, the syringe 12 includes a linear moving mechanism that moves linearly in a vertical direction to perform a sucking operation and an ejecting operation.
Now, the syringe unit 10 will be described in detail with reference to
The reserving well 11 is provided in an area of the channel plate 30 which is located upstream of the microchannel 32. An opening 111 connecting to the microchannel 32 is formed at a bottom 11a of the reserving well 11. A suspension S with cells C dispersed therein is reserved in the reserving well 11.
The syringe 12 has a syringe barrel 122 and a syringe plunger 123 in addition to the linear moving mechanism 121. As shown in
The syringe unit 10 in accordance with the present embodiment can consecutively perform a sucking operation and an ejecting operation. It is unnecessary to replace the syringe plunger 123 and syringe barrel 122 with new ones during a continuous process. However, if the syringe plunger 123 and syringe barrel 122 need to be replaced with new ones after the continuous process has been finished, the replacement can be easily carried out because both the syringe plunger 123 and syringe barrel 122 are releasably attached. Further, the syringe can be removed for maintenance such as a treatment for sterilizing the syringe. This offers improved operability.
Moreover, the syringe barrel 122 has a small inner diameter (for example, 0.5 to 1.0 mm) to provide a sufficient solution feeding resolution.
The moving mechanisms 13 are provided on the respective sides of the lower frame 142. However,
As shown in
Now, description will be given of a variation of the moving mechanism 13 shown in
The moving mechanism 13 shown in
Both moving mechanisms described above moves the syringe 12 up and down to vary the positional relationship between the separating relationship and the pressing relationship. However, the positional relationship may be varied between the separating relationship and the pressing relationship by moving the reserving well 11 up and down. That is, the moving mechanism has only to vary the positional relationship between the separating relationship and the pressing relationship by moving the syringe 12 and the reserving well 11 relative to each other.
Moreover, the syringe unit 10 in the present embodiment has removal means for removing, in the separating positional relationship, cells and bubbles present between the tip 1221 of the syringe barrel 122 and the edge 112 of the opening 111 in the reserving well 11.
The moving mechanism 13 in this case can also move the syringe 12 in the horizontal direction (see an arrow in
Subsequently, description will be given of a procedure of introducing an agent or the like into cells using the substance introducing apparatus 1, shown in
In the flowchart shown in
In the substance introducing process, first, in step S12, a suspension with the cells C dispersed therein is dropped into the reserving well 11 (this corresponds to an example of a first step in accordance with the present invention). Then, as in the case of step S5, the syringe 12 is raised by several hundred μm (step S13) to change the positional relationship to the separating relationship with the tip 1221 of the syringe barrel 122 immersed in the culture medium reserved in the reserving well 11. Then, with the separating relationship maintained, the culture medium is sprayed as in the case of step S6 (step S14). The process then proceeds to step S15. In step S14, cells and bubbles resulting from air dissolved in the suspension reserved in the reserving well 11 are removed from between the tip 1221 of the syringe barrel 122 and the edge 112 of the opening 111. In step S15, in the separating relationship, the syringe 12 is caused to perform a sucking operation to take the cells C into the interior 1222 of the syringe barrel 122 (this corresponds to an example of a second step in accordance with the present invention). In step S16 following step S15, as in the case of step S8, the positional relationship is returned to the pressing relationship, shown in
In the procedure of the introduction of a substance into cells described above, the tip 1221 of the syringe barrel 122 is not drawn up from the liquid level of the suspension during steps S5 to S20. Thus, the need for syringe replacement is eliminated to prevent the entry of air. This inhibits bubbles from mixing into the microchannel 32. Further, even when the syringe has a small inner diameter to obtain a sufficient solution feeding resolution, the repetition of steps S13 to S20 does not result in the disadvantageous mixture of bubbles because the need for syringe replacement is eliminated to prevent the entry of air.
Now, description will be given of an applied example of the syringe unit in accordance with the present embodiment.
In the syringe unit 10 in accordance with the present embodiment, in step S6 or S14, shown in
The syringe 12 shown in
This more reliably inhibits the sandwiching of the cells C and the mixture of the bubbles B into the microchannel 32.
The sandwiching of the cells can also be prevented by projecting the edge of the opening in the reserving well upward from an area of the bottom surrounding the edge.
The edge 112 of the opening 111 in the reserving well 11 shown in
The edge 112 of the opening 111 in the reserving well 11 shown in
During a long, continuous process, the uneven distribution of the cells C, for example, the precipitation of the cells C at the bottom 11a, is likely to occur in the reserving well 11. Thus, description will be given of an applied example in which the unevenly distributed cells C are dispersed.
The syringe 12 shown in
Finally, description will be given of the syringe unit 10 in which step S12, shown in
The reserving well 11 provided in the syringe unit 10 shown in
As described above, the syringe unit 10 in accordance with the present embodiment can provide a sufficient solution feeding resolution while inhibiting bubbles from mixing into the microchannel 32. The present invention is not limited to the delivery of cells in the medical field but is applicable to various fields.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2005/004180 | 3/10/2005 | WO | 00 | 8/31/2007 |