Conditioning Chamber Dual Interface Fluid System
The system addresses the challenge of maintaining controlled atmospheres in membrane investigation systems by using a conditioning chamber with external flow cells and recirculation, enabling efficient and accessible sample collection and monitoring without constant gas supply.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- NEDERLANDSE ORG VOOR TOEGEPAST NATUURWETENSCHAPPELIJK ONDERZOEK TNO
- Filing Date
- 2021-09-07
- Publication Date
- 2026-04-10
AI Technical Summary
Conventional systems for investigating biological and non-biological membranes face challenges in maintaining controlled atmospheres over extended periods without constant gas flushing and are cumbersome due to the need for anaerobic glove boxes, making sample collection and monitoring difficult.
A system comprising a conditioning chamber with a flow cell outside the sealed chamber allows for controlled atmosphere maintenance, recirculation of liquid medium, and external monitoring devices, enabling anaerobic conditions without constant gas supply, and facilitating easy access and sample collection.
The system maintains controlled atmospheres efficiently over extended periods, reduces the need for constant gas flushing, and allows for easy sample collection and monitoring, enhancing accessibility and operational efficiency.
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Abstract
Description
Technical Field
[0001] The present disclosure relates to a system for investigating a sample membrane and the use of this system.
Background Art
[0002] Microfluidic devices can be used to investigate various types of biological and non-biological membranes, such as (epithelial) barriers, (fresh) tissue explants, cell layers, scaffolds, or other membranes. For example, a tissue explant can contain different cell types that can be distinguished from a cell monolayer or bilayer, or a suspension of cells injected into a chip. A barrier placed within a microfluidic chip can also be referred to as a "barrier-on-chip", such as a "gut-on-chip", "intestine-on-chip", "lung-on-chip", "skin-on-chip", etc. For example, a "barrier-on-chip" can enable the study of the conditions and extent to which certain compounds (e.g., mimicking the lumen / apical side of the membrane) flowing through a first channel pass through the barrier and ultimately through a second channel (e.g., mimicking the blood / basolateral side of the membrane). In some implementations, it may be desirable to simulate specific conditions in, for example, the intestine or lung by having an anaerobic liquid flow through one channel while having an aerobic liquid flow through the other channel. In this way, the oxygen content on one side of the epithelial tissue is high, and the oxygen content on the other side is low.
[0003] As background, International Publication No. 2017 / 131839 describes a hypoxic system for culturing diverse microbiota, comprising an anaerobic chamber and at least one microfluidic device removably inserted into the anaerobic chamber. The microfluidic device comprises a first microchannel in which a first level of oxygen is maintained and a second microchannel in which a second level of oxygen is maintained, the second level of oxygen having a higher oxygen concentration than the first level of oxygen. The microfluidic device further comprises a membrane located in the interface region between the first and second microchannels, the membrane further having a plurality of pores through which oxygen flows from the second microchannel to the first microchannel, forming an oxygen gradient within the first microchannel. The system further comprises a culture system provided within the first microchannel and containing oxygen-sensitive anaerobic bacteria.
[0004] There remains a need to further improve existing systems, for example, to make them more accessible and operational over longer periods. [Overview of the Initiative]
[0005] One problem with conventional systems is that it can be difficult to monitor the system and collect high-quality samples over longer periods. For example, conventional systems may require a constant flow of anaerobic (nitrogen) gas. Also, to avoid sample decomposition by oxygen, for example, the entire system needs to be placed in an anaerobic glove box for anaerobic sampling. The inventors have designed a system that can collect and store samples under controlled, for example, anaerobic conditions, even when the system is operated for longer periods, without the need to constantly resupply a controlled gas composition.
[0006] Some aspects of this disclosure can be embodied as a system for investigating membranes, e.g., tissues. The system comprises a conditioning chamber, also referred herein as a sealing chamber. The chamber comprises walls and / or a lid forming a barrier, e.g., an anaerobic box or other airtight container. The barrier is configured to (airtightly) seal the interior of the chamber from the surrounding environment. In this way, a controlled atmosphere, e.g., anaerobic, can be maintained within the chamber. A liquid container can be placed inside the chamber, e.g., a beaker or other open container placed inside the chamber that allows for free exchange of gases. Thus, the liquid container is configured to hold a liquid medium that is in open communication with the controlled atmosphere inside the chamber. A flow cell, e.g., a microfluidic tip, is placed outside the first sealing chamber. The flow cell is typically configured to hold tissues spanning the openings between the flow channels. In other words, each flow through the flow channels is (exclusively) separated by the tissues spanning the openings between them. A first set of liquid ducts, for example, tubes, are set up as one of the flow paths. The ducts are configured to carry the first liquid medium from the first liquid container through a first barrier, for example, a box lid or cover (while maintaining a seal), to the inlet of the first flow path to the flow cell. Thus, a first flow of the first liquid medium can be achieved through the first flow path along the first side of the tissue. At least a portion of the first liquid medium leaving the flow cell through the first flow path is returned to the first liquid container, for example, through the same wall or other wall, including the inside of the first sealing chamber.
[0007] By placing a flow cell outside the sealed chamber, the chamber and / or membrane can be easily accessed. By keeping only a portion of the system inside the sealed chamber, the chamber can be made relatively small, and for example, the atmosphere inside the chamber can be controlled more easily. In addition to the flow cell, other devices for measuring and controlling the atmosphere can also be kept outside the chamber, further improving the accessibility of these devices and reducing size requirements. In this way, the chamber can be made relatively small compared to a system that needs to house all its components, for example, a large glove box. For example, the sealed chamber can be formed by a closed box that can maintain its atmosphere without constant flushing. By keeping the liquid container open inside the sealed chamber, this can allow for free exchange of gases that form a first controlled atmosphere with gases dissolved in the liquid medium. For example, if the controlled atmosphere is anaerobic, this can make the liquid medium anaerobic as well, or keep it anaerobic, by releasing any oxygen dissolved in it into the controlled atmosphere. Furthermore, by recirculating the liquid medium into the container, only a limited supply of medium is required that can be constantly exchanged with the controlled atmosphere. Furthermore, by providing a sample holder within the sealed chamber, it is possible to receive and hold liquid samples under the same controlled atmosphere.
[0008] Other or further embodiments of the present disclosure can be embodied as methods of using the system. In some embodiments, use includes providing a liquid medium in a liquid container inside a chamber, providing tissue into cells connected via a liquid duct to recirculate the liquid medium through one of the cell's flow channels, establishing a controlled atmosphere inside the chamber, waiting for gases in the liquid medium to be replaced with the controlled atmosphere, and allowing the liquid medium to flow through the flow channels via the liquid duct. Preferably, the controlled atmosphere is established by connecting an atmosphere controller to a valve of the first sealed chamber. Advantageously, the atmosphere control device can be disconnected after establishing the controlled atmosphere while the first liquid medium flows into the flow cell. Thus, constant refresh of the atmosphere, for example, by a nitrogen flow, is not required.
[0009] These and other features, aspects, and advantages of the apparatus, systems, and methods of this disclosure will be better understood from the following description, the appended claims, and the appended drawings. [Brief explanation of the drawing]
[0010] [Figure 1] Figure 1 illustrates a system for examining a membrane. [Figure 2A] Figure 2A shows a photograph of the system's prototype setup. [Figure 2B] Figure 2B shows a photograph of the system's prototype setup. [Figure 3A] Figure 3A shows a preferred flow cell for arranging the tissue. [Figure 3B] Figure B shows a preferred flow cell for arranging the tissue. [Figure 4A] Various measurements are shown. [Figure 4B] Various measurements are shown. [Figure 4C] Various measurements are shown. [Figure 5A] Various measurements are shown. [Figure 5B]Various measurements are shown. [Figure 6A] Various measurements are shown. [Figure 6B] Various measurements are shown. [Modes for carrying out the invention]
[0011] The terms used to describe specific embodiments are not intended to limit the invention. Where used herein, the singular forms “a,” “an,” and “the” are intended to include the plural forms unless the context clearly indicates otherwise. The terms “and / or” include any and all combinations of one or more of the enumerated items relating to the invention. The terms “comprises” and / or “comprising” are to be understood as identifying the presence of a described feature but not excluding the presence or addition of one or more other features. Where a particular step of a method is referred to as following another step, it is to be further understood that, unless otherwise specified, the other step may be followed directly or one or more intermediate steps may be performed before the particular step is carried out. Similarly, where a connection between a structure or component is described, it is to be understood that, unless otherwise specified, this connection may be established directly or through an intermediate structure or component.
[0012] In some embodiments, this teaching can be used to provide a gas-controlled chamber that allows the creation of a dual interface for a perfusion system. This chamber can be used, for example, to replicate the physiological conditions of the intestine, where the oxygen levels in the lumen, food, and bacteria are low or completely anaerobic on the side facing blood. However, the gas mixture in the gas-controlled chamber can be modified to form various interfaces within any (microfluidic) perfusion system. In some setups, the chamber contains an anaerobic medium connected by tubing to a microfluidic tip. The tip holds ex vivo intestinal tissue facing the anaerobic medium (coming from the gas-controlled chamber) on its luminal side and a normal aerobic medium (coming from a reservoir placed in a normal laboratory environment) on its blood-facing side. In a peristaltic pump, both the anaerobic and aerobic medium are recirculated through the tip and reservoir. By using a flow distributor, selector, or other flow controller ("splitter") that can split the recirculating medium on different collection tubes, it is not necessary to disconnect and open the system in an anaerobic glove box to collect samples, or to collect anaerobic samples in an aerobic environment that comes into contact with oxygen. The chamber may also have a pressure sensor and pressure regulator, and a connection to a flexible reservoir such as a balloon or urine bag, to address pressure differences that may occur, for example, when placing the gas-controlled chamber in an incubator from room temperature to 37 degrees. Fresh anaerobic air can be injected as needed via another connection. Furthermore, an oxygen sensor may be integrated into or connected to the chamber to monitor the oxygen level in the chamber, but can also accurately monitor the oxygen level in the medium reservoir. This oxygen sensor may also be placed elsewhere in the microfluidic circuit.
[0013] Using recirculation instead of unidirectional perfusion may be more cost-effective. Continuous flushing with nitrogen is not required. Furthermore, since the gas control chamber can be completely closed, any gas mixture can be supplied to the chamber using a machine that controls the injection of the gas composition. Multiple possibilities can be provided for connecting the pre-conditioned fluid in the gas control chamber to the outside environment. It is not necessary to transport the system to an anaerobic glove box for sample collection. For example, the system described herein can provide the possibility of anaerobic sample collection within the setup itself, without bringing it to an anaerobic glove box or collecting samples in an aerobic environment, and thus without "contaminating" them with oxygen. The system can also provide, for example, controlled monitoring of oxygen levels within the chamber and different compartments of the chamber (e.g., a media reservoir). The system can also provide a method for sensing and regulating the pressure difference inside and outside the gas control chamber.
[0014] The present invention is described more fully below with reference to the accompanying drawings illustrating embodiments of the invention. In the drawings, absolute and relative sizes of systems, components, layers, and areas may be exaggerated for clarity. Embodiments may be described with reference to schematic and / or cross-sectional views of idealized embodiments and intermediate structures of the invention, as in some cases. In this specification and drawings, similar numbers refer to similar elements throughout. Relative terms and their derivatives should be interpreted as referring to orientations as described therein or as shown in the drawings discussed. These relative terms are for explanatory convenience and do not require that the system be constructed or operated in a particular direction unless otherwise specified.
[0015] Figure 1 shows system 100 for investigating membrane T.
[0016] In some embodiments, the system comprises a first sealed chamber 10 with first barriers 10b, 10t, such as walls and / or lids, forming an anaerobic box or other airtight container. Preferably, the first sealed chamber 10 is configured to (airtight) seal the interior of the first sealed chamber 10 from the surrounding environment E. In this way, a first controlled atmosphere 10a can be maintained inside the first sealed chamber 10.
[0017] In some embodiments, a first liquid container 11 is housed inside the first sealed chamber 10 and is, for example, a beaker or other open container disposed within the chamber and allowing for free exchange of gas. For example, the first liquid container 11 holds a first liquid medium M1 that communicates with the first controlled atmosphere 10a within the first sealed chamber 10.
[0018] In some embodiments, a flow cell 30, such as a microfluidic cell, is disposed outside the first sealed chamber 10. Preferably, the flow cell 30 comprises at least a first flow path 31 and a second flow path 32. In one embodiment, a clamp structure 33 or other interface is configured to hold a membrane T spanning an opening between the flow paths 31, 32. Thus, each flow through the flow paths 31, 32 is separated by a membrane T spanning the opening between them.
[0019] In some embodiments, a first set of liquid ducts L13, L31, such as tubes, are connected to the first flow path 31. For example, the liquid ducts are configured to carry a first liquid medium M1 from a first liquid container 11, through first barriers 10b, 10t (while maintaining a seal), such as a lid or cover of a box, to an inlet of a flow cell 30 in the first flow path 31. In this way, the ducts can facilitate a first flow of the first liquid medium M1 through the first flow path 31 along the first side of the membrane T. In a preferred embodiment, at least a portion of the first liquid medium M1' exiting the flow cell 30 from the first flow path 31 is configured to return to the first liquid container 11 through the same wall 10t or another wall, including the inside of the first sealing chamber 10, for example.
[0020] In some embodiments, the system includes a second liquid container 21 configured to hold a second liquid medium M2. Typically, the second liquid medium M2 has a different composition than the first liquid medium M1. For example, the second liquid medium M2 has different (amounts of) solutes, such as oxygen, or other components such as nutrients, pharmaceuticals, etc. In some cases, the medium itself may be formed by, for example, a different solvent.
[0021] In some embodiments, a second set of liquid ducts L23, L32 are connected to the second flow path 32 and are configured to carry the second liquid medium M2 from a second liquid container 12 to an inlet of the second flow path 33, and to pass a second flow of the second liquid medium M2 through the second flow path 32 along the second side of the membrane T. Preferably, the second set of liquid ducts L23, L32 are further configured to return at least a portion of the second liquid medium M2' exiting the second flow path 32 from the flow cell 30 to the second liquid container 21. In other words, at least a portion of the second liquid medium can also be recycled. Alternatively, a portion or all of the first and / or second liquid medium can be discarded after crossing the flow cell 30.
[0022] For example, as shown in the figure, the first flow path through the first set of liquid ducts L13, L31 has a first flow path length that returns to the first flow path 11 through the first flow path 31, and the second flow path length that returns to the second liquid container 21 through the second flow path 32 that passes through the second set of liquid ducts L23, L32 has a second flow path length. In a preferred embodiment, the first and second path lengths are essentially the same, for example, within 10 percent, preferably within 5 percent, or less, i.e., substantially the same (within the measurement tolerance). By providing similar path lengths (and similar or the same liquid ducts), the flow can be similar on both sides of the tissue. This can prevent, for example, pressure or other differences between flows that could affect tissue measurements.
[0023] In some embodiments, the system comprises or is coupled to a pump 40 positioned in the paths of a first and / or second set of liquid ducts. For example, the pump 40 is configured to control the respective flows through the respective channels 31, 32 of the flow cell 30. Typical flows may be set to, for example, 1 to 100 milliliters per hour. Other flow rates may also be used, for example, depending on the flow cell 30 and the sample under study. In some embodiments, the same pump is used to control the respective flows in the liquid ducts of both sets. Alternatively, separate pumps may be used. For example, one or more pumps may be used to set the same or different flow rates in the respective channels 31, 32. In some embodiments, for example, as shown, the pump 40 is positioned along the respective liquid ducts L31, L32 in the flow paths after the respective outlets of the flow cell 30 returning to the respective liquid containers 11, 12. For example, the pump is positioned between the flow cell 30 and the flow distributors 15, 25 (described in more detail below). Alternatively, the pump may be positioned elsewhere, for example, in the respective liquid ducts L13, L23 in the flow paths before the flow cell. Preferably, the pump is a peristaltic pump, also known as a roller pump. For example, the fluid is contained in a flexible tube that forms at least part of each liquid duct. The flexible tube can be mounted inside a pump casing. In a circular pump casing, the flexible tube can be compressed using a rotor having a number of “rollers,” “shoes,” “wipers,” or “lobes” mounted on the outer circumference of the rotor. As the rotor rotates, the portion of the tube under compression is pinched and closed, thereby forcing the fluid to be pumped to move through the tube. In addition, the tube opens to its natural state after the passage of the fluid flow has been guided to the pump. Typically, there are two or more rollers or wipers that occlude the tube and trap the body of the fluid between them. Linear peristaltic pumps can also be used.
[0024] In some embodiments, the system includes a second sealing chamber 20. For example, the second sealing chamber 20 includes a second barrier configured to seal the interior of the second sealing chamber 20 from the ambient environment E. Thus, a second controlled atmosphere 20a can be maintained inside the second sealing chamber 20. In other or further embodiments, a second liquid container 21 is housed inside the second sealing chamber 20. For example, the second liquid container 21 holds a second liquid medium M2 in communication with the second controlled atmosphere 20a within the second sealing chamber 20. In other words, the system may include a plurality of sealing chambers that may be similar or identical. For example, each channel 31, 32 of the flow cell 30 may be connected to its respective sealing chambers 10, 20 using its respective liquid containers 11, 21 containing their respective liquid mediums M1, M2 to exchange with their respective controlled atmospheres 10a, 20a. Typically, the atmospheres within each chamber are controlled to have different atmospheres. For example, the first controlled atmosphere may have a relatively low anaerobic oxygen content, while the second controlled atmosphere may have a relatively high or normal aerobic oxygen content.
[0025] Instead of sealing the second liquid container 21 within its respective sealing chamber 20, the second liquid container 21 or at least its sealing can be omitted. For example, the second liquid container 21 can remain in open communication with the ambient environment E. For example, if the ambient environment E is aerobic, the second liquid medium M2 can be made aerobic by exchanging oxygen from the environment with the second liquid medium M2. A closed container holding the second liquid medium M2 can also be envisioned, with or without recirculation flow. Alternatively, the second liquid container 21 may also be housed within the same first sealing chamber 10 as the first liquid container 11. For example, both the first liquid medium M1 and the second liquid medium M2 can be exposed to the same first controlled atmosphere 10a. For example, both liquids M1 and M2 are kept under the same atmospheric conditions, but their, for example, non-gase content may differ in some other way that may be unrelated to these conditions.
[0026] In some embodiments, the system includes a first flow distributor 15 or divider / splitter connected to a first pair of liquid ducts L13, L31 between a first flow path 31 and a first sealing chamber 10. Preferably, the first flow distributor 15 is configured to selectively and / or controllably direct the inflow of the first liquid medium M1' at the inlet port 15a of the first flow distributor 15 to one or more outlet flows at each of the outlet ports 15b of the first flow distributor 15. In a preferred embodiment, at least one of the outlet ports 15b is connected to a liquid duct through a first barrier 10b, 10t to direct at least a portion of the first liquid medium M1' back to the first liquid container 11. For example, each outlet port is provided with one or more controllable valves 15v for opening and closing each outlet flow. For example, the valves can be formed by releasable clamps on tubes forming ducts into the container. Other types of valves may also be conceivable.
[0027] In some embodiments, the first sealing chamber 10 includes one or more sample containers 12 configured to receive and hold liquid samples of a first liquid medium M1 (separate from the first liquid container 11). For example, at least one of the outlet ports 15b of the first flow distributor 15 is connected to a liquid duct through the first barrier 10b, 10t to (selectively) direct at least a portion of the first liquid medium M1' into each of the one or more sample containers 12. For example, each valve 15v at the outlet 15b of the first flow distributor 15 can be operated to control the flow into the first liquid container 11 and / or into one or more of the sample containers 12. Advantageously, the sample containers 12 can be held in a first controlled atmosphere 10a, which can prevent degradation of each sample taken from the flow of the first liquid medium M1 that has passed through the first flow path 31. By providing multiple sample containers 12a to 12d inside the first sealing chamber 10, different samples of the first liquid medium M1 can be taken, for example, at different times. Similarly, the second liquid medium M2 can also be sampled. For example, a second flow distributor 25 is connected to a second set of liquid ducts L23, L32 and configured to selectively direct the flow of the second liquid medium M2 into the second liquid container 21 and / or into one or more sample containers 22. Depending on the desired conditions, the sample containers 22 may be sealed together with the second liquid container 21 in the second sealing chamber 20, or they may simply be held in the ambient environment E.
[0028] Naturally, the ducts passing through the barriers of each sealed chamber are configured to prevent gas exchange with the surrounding environment E within the controlled atmosphere (contained within the chamber by the barriers). In other words, each duct forms an airtight connection with the respective barrier of the sealed chamber. For example, a liquid duct is configured to exclusively allow the liquid medium inside the duct to pass through the barrier while preventing leakage of the surrounding environment E. Other sealed ducts may also be used, as described below.
[0029] In some embodiments, the system includes a pressure control system 16 configured to maintain a controlled pressure in a first controlled atmosphere 10a within a first sealing chamber 10. Preferably, the pressure control system 16 is configured to maintain the same pressure inside the first sealing chamber 10 as the ambient environment E. For example, the first controlled atmosphere 10a inside the first sealing chamber 10 is maintained at the same or similar pressure (e.g., measured in bar or pascal) as the ambient environment E inside the first sealing chamber 10, for example, within ±5%, preferably within ±2%, more preferably within ±1%, or less than the ambient air pressure. This can mitigate external atmosphere leakage into the chamber, and vice versa, and can also mitigate uneven pressure on a sample film, for example. The pressure control system can be relatively simple and may include, for example, a flexible barrier surface (preferably having minimal elasticity) that can relay pressure from the environment to the inside of the container without gas exchange. For example, a flexible bag can be connected to the controlled atmosphere 10a inside the sealing chamber 10 via a duct. Alternatively, the walls of the first sealing chamber may be formed of a flexible sheet that can move freely to compensate for any pressure difference, but is impermeable to gas in order to maintain a controlled atmosphere 10a.
[0030] In some embodiments, the system includes an atmospheric control valve 13 passing through first barriers 10b, 10t, and is configured to (removably) connect an atmospheric controller (not shown) to the first seal 10 in order to establish a first controlled atmosphere 10a inside the first seal 10. For example, the atmospheric control valve 13 includes a snap-shut connection or a screw connection for removable connection of the atmospheric control device.
[0031] In one embodiment, when an atmospheric control device is connected to an atmospheric control valve 13, the atmospheric control valve 13 is configured to open the exchange ducts through the first barriers 10b, 10t in order for the atmospheric control device to initially establish a first controlled atmosphere 10a. In another or further embodiment, when the atmospheric control device is disconnected from the atmospheric control valve 13, the atmospheric control valve 13 is configured to close the exchange ducts to maintain the first controlled atmosphere 10a in the absence of the atmospheric control device.
[0032] In some embodiments, the system includes an atmosphere controller configured to establish and / or maintain a first controlled atmosphere 10a within a first sealed chamber 10. An example of such an atmosphere controller is commercially available as “Anoxomat® III,” which can be purchased from “Advanced Instruments.” For example, the controller can be used to supply a gas mixture and form the sealed chamber. For example, “A-box” (available from “Kentron Microbiology”) can be used with a snapshot coupling to connect the atmosphere controller. The inventors have adapted a box to serve the current purpose of a sealed chamber by designing an adapted lid with airtight holes to accommodate pipes such as liquid / gas ducts and sensor fibers. For example, the chamber may be adapted to have multiple fittings to accommodate high-pressure connections (which are standard) through the walls (lid) of the chamber. In some embodiments, a second sealed chamber 20 may be connected to a similar or other atmosphere controller to establish the same or a different controlled atmosphere 20a. Alternatively, the second sealed chamber 20 may remain in open communication with the ambient environment E or may be omitted entirely.
[0033] In principle, the first sealing chamber 10 can be sufficiently sealed to maintain the atmosphere after the controller is disconnected. If necessary, the atmosphere can be replenished by the same controller or other means. In some embodiments, the system includes an atmosphere (re)supply unit 17 configured to supply and / or replenish the first controlled atmosphere 10a in the first sealing chamber 10. For example, the atmosphere supply unit 17 may include a supply of controlled atmosphere 10a that can be supplied to the first sealing chamber 10. The atmosphere supply unit 17 can advantageously be combined with a pressure control system 16 so that the supply of excess gas does not preferably change the pressure in the first sealing chamber 10.
[0034] In some embodiments, the system is configured to measure, for example, pressure and / or oxygen, report its readings, and optionally connect to one or more sensors for feedback and control, for example, coupled to one or more reservoirs. For example, the system includes a sensor 18 configured to measure a first liquid medium M1 in, for example, a first liquid container 11. For example, the sensor is configured to measure the concentration of oxygen and / or other substances in the first liquid medium M1. Advantageously, this can be combined with an air supply unit 17, which can, for example, supply excess gas into the first sealing chamber 10 in response to the measurement. For example, if the oxygen content of the first liquid medium M1 is measured to be too high, the air supply unit 17 can be used to supply nitrogen (without oxygen) into the sealing chamber 10. Other sensors or further sensors can also be provided in a similar manner. For example, a pressure sensor may include a pressure sensing element held in a first controlled atmosphere 10a. Advantageously, most of the sensors can be located outside the seal chamber 10, for example, providing only the measuring fiber or other wires through barriers 10b, 10t (while maintaining the seal of the controlled atmosphere 10a).
[0035] Furthermore, other or further means may be provided to maintain a controlled atmosphere inside the sealed chamber. For example, an anaerobic atmosphere can be established and / or maintained by providing oxygen-binding or absorbing material inside the chamber. As understood, such means may be particularly effective if the volume of the chamber is relatively small.
[0036] In preferred embodiments, the first sealing chamber 10 has a capacity (maximum internal volume) of less than 100 liters, less than 50 liters, less than 20 liters, less than 10 liters, or even less than 5 liters. The smaller the internal volume of the chamber, the easier it may be to establish and / or maintain a controlled atmosphere. It should be noted that some or most of the internal volume within the chamber may be taken in by the liquid container along with the liquid medium and / or sample holder. Therefore, the actual amount of air to be controlled may be even less. For example, the chamber may have a maximum internal dimension of less than 50 centimeters, less than 30 centimeters, or even less than 20 centimeters.
[0037] In some embodiments, the system includes a first waste container W1 connected to each outlet port 15b of the first flow distributor 15 and configured to selectively accept at least a portion of the first liquid medium M1'. Preferably, the first waste container W1 is located outside the first sealing chamber 10. For example, the waste container can be used to capture initial or other flows of the first liquid medium M1 that do not need to be recirculated and can be discarded. For example, the initial flow may contain oxygen or contaminants that may initially be present in the first flow path 31 and / or the first set of liquid ducts L13, L31. Therefore, the first waste container W1 is preferably not kept inside the first sealing chamber 10 and may contaminate the first controlled atmosphere 10a and / or occupy unnecessary space. Similarly, the second flow distributor 25 can also be connected to a second waste container W2 that can be kept in the ambient environment E. Optionally, the same waste container can be used for both flows.
[0038] In some embodiments, the system 100 described herein can be used as follows: A first liquid container 11 in a first sealing chamber 10 is provided with a first liquid medium M1. A flow 30 connected via a first pair of liquid ducts L13, L31 is provided with a membrane T for recirculating the first liquid medium M1 through a first flow path 31 of the flow. A first control atmosphere 10a may be established in the first sealing chamber 10, and there may be a waiting period for the gas in the first liquid medium M1 to be exchanged with the first control atmosphere 10a. After this, the first liquid medium M1 can flow through the first flow path 31 of the flow cell 30 via the first pair of liquid ducts L13, L31. Preferably, the first control atmosphere 10a is established by connecting an atmospheric control device to an atmospheric control valve 13 of the first sealing chamber 10. For example, the atmospheric control device is disconnected after the first control atmosphere 10a has been established and while the first liquid medium M1 is flowing into the flow cell 30. In some embodiments, the first control atmosphere 10a is anaerobic and has an oxygen concentration of, for example, less than 1 percent, preferably less than half a percent, or even less than one-tenth of a percent, for example, 0.05%. In one embodiment, the oxygen concentration in the first liquid medium M1 is measured while the first liquid medium M1 is flowing through the flow cell 30. For example, if the oxygen concentration is measured to be higher than a predetermined threshold, a further supply of anaerobic air is injected into the first sealing chamber 10. Other uses of the apparatus can also be envisioned.
[0039] The system described herein can be used, for example, to measure, test, and / or analyze the permeability of substances through a membrane. For example, the membrane includes (epithelial) barriers, (fresh) tissue explants, cell layers, scaffolds, or other membranes. For example, the tissue explant may include cell monolayers or bilayers, or different cell types that can be distinguished from a suspension of cells injected into a chip. When in use, the membrane is placed at the cavity opening between channels 31, 32. For example, substances can be placed in at least one of the fluid flows, for example, in different amounts. In some embodiments, the content of each substance in the first and / or second reservoir flows is measured and / or monitored to determine the exchange of substances through the membrane. For example, the substance may include nutrients, pharmaceuticals, etc. For example, the membrane includes tissue samples, scaffolds, for example, 3D structures having cells, or other membranes, for example, plastic or polyester.
[0040] Figures 2A and 2B show photographs of a prototype setup of the system described herein. Figure 2A shows a sealed first chamber 10 and an open second chamber 20. In this case, two flow cells 30 containing ex vivo intestinal tissue are connected via their respective tubes and peristaltic pumps 40. Figure 2B shows further detail of the first chamber 10, including a lid 10t sealed to a box below it. In addition to a gas valve 13, the lid has several sealing openings to allow ducts and fibers to pass through it. For example, a flow distributor 15 as shown is connected to a number of sample containers in the chamber 10. Each flow to one of the sample holders can be selected by opening one of the fluid valves 15v in each of them.
[0041] Figure 3A shows a perspective view of a flow cell 30 (microfluidic device) closed by a cap 35. In one embodiment, for example as shown, the flow cell 30 has a housing that forms at least two channels 31, 32. Three or more channels may also be conceivable (not shown). In the illustrated embodiment, the flow cell 30 is translucent, and therefore the channels 31, 32 and their possible contents are visible through the housing 38. This allows for easy viewing of the flow inside the housing without opening the cap. Other materials, such as opaque materials, may also be used. Preferably, the housing 38 is essentially made of a material such as plastic. In a preferred embodiment, for example, the device is manufactured by 3D printing, as shown here. For example, the device is made from a printable (cured) material. Other manufacturing methods and materials may also be conceivable.
[0042] In one embodiment, the present disclosure provides a flow cell 30 for analyzing the permeability of a substance through a (sample) membrane T, for example, a tissue. For example, the substance is placed in each fluid flow. Typically, the flow cell 30 comprises a housing 38 having channels 31, 32. In some embodiments, a first channel 31 is configured to allow a first fluid flow through the housing 38 between a first input connector 31a and a first output connector 31b. In other or further embodiments, a second channel 12 is configured to allow a second fluid flow through the housing 38 between a second input connector 32a and a second output connector 32b.
[0043] In a preferred embodiment, the device includes an access cavity extending from the outside into the housing 38, through a first flow path 11 into a second flow path 12. Thus, the cavity can be used to access the inside of the housing 38 in order to position a membrane T over the cavity opening 33. Most preferably, the cavity opening 33 forms an (exclusive) fluid interconnection between the overlapping regions of the flow paths 31 and 32. In a preferred embodiment, the access cavity can be opened and closed by a cap 35. Most preferably, the cap 35 can be reversibly removed to access the cavity and, for example, to position or replace a membrane T. For example, the cap 35 and / or housing may include an elastic material such as rubber between the seal and the housing. Other elastic structures may also be used, or the cap may be screwed into the housing.
[0044] Figure 3B shows a cutaway / exploded view of a flow cell 30 with various components. In a preferred embodiment, the flow cell 30 includes a clamping ring 34. In one embodiment, for example, as shown, the clamping ring 34 includes a connecting structure. For example, the connecting structure is configured to engage with a corresponding connecting structure in the housing within the access cavity. Thus, the clamping ring 34 can be used to hold the sample film T in place over the cavity opening 33. Typically, when the film T is in use, it is exposed to the respective fluids flowing through the channels 31, 32 on either side of the film T. In a preferred embodiment, the opening is circular, but other shapes can also be envisioned. Typically, a sealing ring 36 is configured to contact the film T (during use).
[0045] In one embodiment, the housing 38 extends with the cavity seat, forming a platform around the cavity opening 33 between the overlapping regions of the flow channels 31 and 32, and directly or indirectly holding the membrane T between the cavity seat and the clamp ring 34. For example, the membrane T can be placed directly on the cavity seat. For example, the clamp ring 34 can directly clamp the membrane T. Preferably, a seal ring 36 is placed on one or both sides of the membrane T. In one embodiment, for example as shown, at least one seal ring 36 is placed between the membrane T and the clamp ring 34 when in use. This can improve sealing and / or prevent the clamp ring from damaging (e.g., cutting) the membrane T. Also, other or further structures can be placed between the clamp ring 34 and the membrane T, and / or between the membrane T and the cavity seat. For example, a mesh can be provided to help further support the membrane T. In some embodiments, for example, as shown, the membrane T is placed between the seal ring 36 and the cavity seat. Also, other or further configurations can be envisioned. In one embodiment, the cavity opening 33 on one side of the membrane T and the ring opening through the clamp ring 34 on the other side of the membrane T are configured to expose the membrane T to the respective fluid flows in the channels 31 and 32 when in use.
[0046] Figures 4A-4C show the oxygen concentration (O2%) as time (T in hours [h]). Figure 4A shows the oxygen concentration in the air forming the atmosphere 10a of the sealed chamber, and Figure 4B shows the oxygen concentration in the liquid medium M1 contained in the sealed chamber. After the "Anoxomat" procedure to make the gas control chamber anaerobic, the air has an oxygen concentration of less than 0.20%, which decreases even more rapidly (e.g., with the help of a catalyst in the chamber that captures oxygen). After the procedure, the medium M1 is still oxygen-rich, which rapidly decreases to a level of less than 0.20% over the next 12 hours. The oxygen-rich air in the medium diffuses together with the anaerobic air in the chamber.
[0047] Figure 4C shows the oxygen percentage measured in the anaerobic medium inside the anaerobic apparatus during control experiments using tubing and empty tips. After 24 hours of making the gas-controlled chamber and the culture medium inside the chamber anaerobic, it was connected to tubing, microfluidic tips (without intestinal tissue), and a peristaltic pump. The system was run at 2 ml / hr for 72 hours. Except for a slight initial rise in oxygen levels due to air aspiration from the splitter (likely a result of the pressure inside the box and insufficient connection of the piping inside the splitter, which was later improved), the anaerobic medium in the chamber remained anaerobic for 72 hours.
[0048] Following these so-called "dry" experiments (which did not involve intestinal tissue or other biological materials connected to the system), experiments using intestinal tissue attached to a microfluidic chip were also conducted. From these initial experiments, it was observed that the system could be sensitive to pressure differences inside and outside the chamber. For example, pressure differences between the gas-controlled chamber and atmospheric pressure can cause problems in the microfluidic chip (tissue damage reflected by leakage of large fluorescent molecules through the tissue and crossflow from the apical to the lateral-bottom medium, and vice versa). Therefore, it is preferable to use means to sense and / or regulate atmospheric pressure.
[0049] Figures 5A and 5B show the pressure difference observed inside the system compared to atmospheric pressure in two different experiments. Figure 5A shows the difference in cm measured using a hydrostatic physical test. Figure 5B shows the difference measured using an external reservoir. The chamber was at atmospheric pressure after the anoxomat procedure, but the pressure increased when placed in a 37-degree incubator, but later decreased again, for example, as the catalyst consumed the last bit of oxygen. While at low pressure, the system can be flushed out of the medium or kept at room temperature. The pressure difference can be adjusted by a flexible air reservoir and by injecting air, for example, via a syringe. It was observed that recirculation and sampling of the starting medium in the chamber by using different splitter outlets did not cause further pressure differences (points 5, 6, and 7 in Figure 5B).
[0050] One objective of this prototype system is to expose the intestinal membrane to strictly anaerobic bacteria residing in the gut and to study host-microbe interactions. Since these bacteria only survive in strictly anaerobic environments (some already die at oxygen levels >0.5%), we conducted experiments to evaluate whether anaerobic bacterial strains could survive in our system (intestinal tissue, no medium with bacteria passing through a tube at 2 ml / hour). Two different media, Williams E and SIEM, were tested. Bacteria cultured in SIEM medium survived and showed growth over 24 hours, while bacteria cultured in Williams E died (Table 1). As shown in Figures 6A and 6B, oxygen levels remained low in both Williams E and SIEM.
[0051] [Table 1]
[0052] In interpreting the attached claims, it should be understood that the word “including” does not exclude the existence of other elements or actions other than those enumerated in the given claims; the words “a” or “an” preceding an element do not exclude the existence of multiple such elements; any reference numerals in the claims do not limit their scope; several “means” may be represented by the same or different items or implemented structures or functions; any of the disclosed devices or parts thereof may be combined together or into further parts unless otherwise specified. Where one claim refers to another, this may indicate a synergistic benefit achieved by the combination of their respective features. However, the mere fact that certain means are described in different claims does not mean that combinations of these means cannot also be used to their advantage. Thus, this embodiment may, in principle, include all combinations of actions of the claims, which may refer to any preceding claim unless each claim is explicitly excluded by context.
Claims
1. A system (100) for investigating a membrane (T), A first sealing chamber (10) having first barriers (10b, 10t) configured to seal the inside of the first sealing chamber (10) from the surrounding environment (E) in order to maintain a first controlled atmosphere (10a) inside the first sealing chamber (10), A first liquid container (11) is housed inside the first sealing chamber (10), and the first liquid container (11) is configured to hold a first liquid medium (M1) that is in open communication with the first controlled atmosphere (10a) inside the first sealing chamber (10), A flow cell (30) positioned outside the first sealing chamber (10), the flow cell (30) comprising a first flow path (31), a second flow path (32), and a clamp structure (33) configured to hold the membrane (T) stretched over the opening between the flow paths (31, 32), wherein the membrane (T) is configured to separate the flows through the flow paths (31, 32) on either side of the opening, A first set of liquid ducts (L13, L31) is connected to the first flow path (31) and configured to carry the first liquid medium (M1) from the first liquid container (11), carry the first liquid medium (M1') through the first barrier (10b, 10t) to the inlet of the first flow path (31) to the flow cell (30), and carry back at least a portion of the first liquid medium (M1') exiting the first flow path (31) from the flow cell (30) to the first liquid container (11), A first flow distributor (15) is connected to the first set of liquid ducts (L13, L31) between the first flow path (31) and the first sealing chamber (10), and is configured to selectively direct the inflow of the first liquid medium (M1') at the inlet port (15a) of the first flow distributor (15) to the respective outlet flows at the respective outlet ports (15b) of the first flow distributor (15). Equipped with, At least one of the outlet ports (15b) is connected to a liquid duct through the first barrier (10b, 10t) for directing at least a portion of the first liquid medium (M1') back into the first liquid container (11), The first sealing chamber (10) further comprises one or more sample containers (12) configured to receive and hold a liquid sample of the first liquid medium (M1), separate from the first liquid container (11), and located in the first controlled atmosphere (10a) inside the first sealing chamber (10), wherein at least one of the outlet ports (15b) of the first flow distributor (15) is connected to a liquid duct through the first barrier (10b, 10t) for directing at least a portion of the first liquid medium (M1') into each of the sample containers (12) of the one or more sample containers (12). system.
2. The system according to claim 1, wherein the first sealing chamber (10) has a capacity of less than 5 liters.
3. A second liquid container (21) configured to hold a second liquid medium (M2), A second set of liquid ducts (L23, L32) connected to the second flow path (32) and configured to transport the second liquid medium (M2) from the second liquid container (12) to the inlet of the second flow path (33) to the flow cell (30), Equipped with, The second set of liquid ducts (L23, L32) is further configured to return at least a portion of the second liquid medium (M2') exiting the second flow path (32) from the flow cell (30) to the second liquid container (21). The system according to claim 1 or claim 2.
4. A second sealing chamber (20) comprising a second barrier configured to seal the interior of the second sealing chamber (20) from the ambient environment (E) to maintain a second controlled atmosphere (20a) inside the second sealing chamber (20), The second liquid container (21) is housed inside the second sealing chamber (20). The second liquid container (21) is configured to hold the second liquid medium (M2) inside the second sealing chamber (20) in open communication with the second control atmosphere (20a). The system according to any one of claims 1 to 3.
5. The first flow path, which passes through the first set of liquid ducts (L13, L31) from the first liquid container (11) through the first flow path (31) and returns to the first liquid container (11), has a first path length. The second flow path, which passes through the second set of liquid ducts (L23, L32) that return from the second liquid container (21) through the second flow path (32) to the second liquid container (21), has a second path length. The lengths of the first and second paths are the same, with a difference of no more than 10 percent between them. The system according to claim 4.
6. The system includes a peristaltic pump (40) positioned in the path of the first set of liquid ducts and / or the second set of liquid ducts, configured to control the respective flow through each of the flow channels (31, 32) of the flow cell (30), The system according to any one of claims 1 to 5.
7. The system includes a pressure control system (16) configured to maintain the controlled pressure of the first controlled atmosphere (10a) inside the first sealing chamber (10) at the same pressure as the ambient environment (E), The system according to any one of claims 1 to 6.
8. The atmospheric control device is configured to connect to the first sealing chamber (10) in order to establish and / or maintain a first controlled atmosphere (10a) inside the first sealing chamber (10) through the first barrier (10b, 10t), Equipped with an atmospheric control valve (13), The system according to any one of claims 1 to 7.
9. The system according to any one of claims 1 to 8, further comprising an atmosphere controller configured to establish and / or maintain the first controlled atmosphere (10a) inside the first sealing chamber (10).
10. When the atmospheric control device is connected to the atmospheric control valve (13), the atmospheric control valve (13) is configured to open the exchange duct through the first barrier (10b, 10t) in order to first establish the first controlled atmosphere (10a) by the atmospheric control device. The system according to claim 8 or claim 9.
11. When the atmospheric control device is disconnected from the atmospheric control valve (13), the atmospheric control valve (13) is configured to close the replacement duct for maintaining the first controlled atmosphere (10a) in the absence of the atmospheric control device. The system as described in claim 10.
12. A sensor (18) configured to measure the concentration of oxygen in the first liquid medium (M1) in the first liquid container (11), The system includes an air resupply unit (17) configured to supply and / or replenish anaerobic air inside the first sealing chamber (10) based on whether the measured concentration exceeds a threshold, The system according to any one of claims 1 to 11.
13. The first waste container (W1) is connected to each outlet port (15b) of the first flow distributor (15) and is configured to selectively accept at least a portion of the first liquid medium (M1'), The first waste container (W1) is positioned outside the first sealing chamber (10). The system according to any one of claims 1 to 12.
14. To provide a first liquid medium (M1) in a first liquid container (11) inside a first sealing chamber (10), A membrane (T) is provided within a flow cell (30) connected via a first set of liquid ducts (L13, L31), and the first liquid medium (M1) is recirculated through a first flow path (31) of the flow cell. To establish a first controlled atmosphere (10a) inside the first sealing chamber (10), Waiting for the gas in the first liquid medium (M1) to be replaced by the first controlled atmosphere (10a), The first liquid medium (M1) flows through the first set of liquid ducts (L13, L31) through the first flow path (31) of the flow cell (30). Use of the system according to any one of claims 1 to 13, including:
15. The first controlled atmosphere (10a) is established by connecting the atmospheric control device to the atmospheric control valve (13) of the first sealing chamber (10). After the atmospheric control device establishes the first controlled atmosphere (10a), the first liquid medium (M1) is flowed into the flow cell (30) and then separated from the first sealing chamber (10). The use described in claim 14.
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