Apparatus and method for iterative polymer synthesis
The apparatus addresses the scalability issues in automated polymer synthesis by using solid form building blocks and automated transfer systems, enabling efficient and controlled large-scale synthesis of polymers.
Patent Information
- Application Number
- JP2022527972
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-11-14
- Filing Date
- 2020-11-13
- Publication Date
- 2025-06-06
- Estimated Expiration
- 2040-11-13
AI Technical Summary
Current automated systems for iterative polymer synthesis, such as peptides and nucleic acids, face scalability issues due to the need for manual preparation of amino acid solutions and preactivation reactors, making large-scale fully automated synthesis challenging.
An apparatus that allows for fully automated iterative polymer synthesis by storing building block samples in solid form and transferring them in solid form to a reaction vessel, where dissolution occurs, using a system with automated transfer and injection of solid particles, and a split valve device for precise material transfer.
Enables fully automated synthesis of polymers on an industrial scale, overcoming challenges of clogging, non-quantitative transfer, and explosion risks, while preventing carryover of building blocks and by-product formation.
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Abstract
Description
[Technical field]
[0001] The present invention relates generally to the field of iterative polymer synthesis on an industrial scale. Improved apparatus and methods for the fully automated synthesis of heteropolymers such as peptides and nucleic acids are disclosed. [Background technology]
[0002] Biopolymers such as proteins, peptides, nucleic acids and polysaccharides consist of a large number of monomeric subunits linked in a defined order to form linear or branched polymers. This group of substances, especially peptides and nucleic acids, as well as their artificial derivatives or variants such as peptide nucleic acids and polynucleotide phosphorothioates, are of increasing interest as components of pharmaceuticals, cosmetics and other industrial products. Therefore, fully automated synthetic methods on a large scale are required.
[0003] Chemical synthesis of biopolymers usually proceeds by the repetitive coupling of subunits of a growing molecular chain, which may be anchored to some kind of support structure, e.g. to a specific support that determines its solubility in a particular solvent, or to a molecular tag.
[0004] For example, in solid phase peptide synthesis (SPPS), a peptide anchored by its C-terminus to an insoluble polymeric resin is assembled by stepwise addition of N-protected amino acid derivatives that make up its sequence. Successive cycles of amino acid addition are performed, each usually comprising the steps of: a) cleavage of the N-protecting group from the resin-bound peptide, b) a washing step, c) coupling of the N-protected amino acid, and d) a washing step. Finally, the peptide is cleaved from the support and any remaining protecting groups, e.g., side chain protecting groups, are removed. In the case of alpha amino acids, Nα-protected amino acid derivatives are used, which may contain additional side chain protecting groups. Similar cycles involving coupling and deprotection steps are involved in the synthesis of nucleic acids, e.g., by the phosphoramidite method of DNA synthesis.
[0005] For example, an apparatus used for solid phase peptide synthesis may comprise a first reactor in which an amino acid derivative is preactivated, i.e., incubated in solution with a coupling reagent to generate a reactive amino acid intermediate. The solution containing the preactivated amino acid may then be transferred to a second reactor containing the SPPS resin, where the coupling reaction occurs. Alternatively, the solution containing the amino acid may be added directly from a storage vessel to the SPPS resin in the second reactor, and the coupling reagent may be added in situ. When using a sufficiently activated amino acid derivative, such as an active ester, the addition of a coupling reagent may not be necessary. Similar observations apply to other types of iterative polymer synthesis.
[0006] Automated polymer synthesizers, for example for peptides and nucleic acids, exist and are commercially available. To our knowledge, these systems have in common that they rely on injecting a solution of the building blocks, for example appropriately protected amino acid derivatives, into a pre-activated reactor or into a second reactor, for example an SPPS reactor. What is exempt is the mechanism of the ABI peptide synthesizer, where a solid amino acid derivative sample is provided in a specific cartridge, which is loaded into the synthesizer. The synthesis then involves the addition of solvents and activation reagents into the cartridge and the transfer of the activated amino acid solution to the SPPS reactor. In other words: the amino acid cartridges represent a number of pre-activated reactors.
[0007] Both approaches are limited in their scalability: preparation of large quantities of amino acid solutions requires the construction of storage facilities, and preparation of a large number of subsequently used preactivation reactors is not feasible on an industrial scale. For this reason, SPPS on a large scale is generally performed in a semi-automated manner, where solutions of the appropriate amino acid derivatives are prepared manually by an operator. Summary of the Invention [Problem to be solved by the invention]
[0008] There is a need for an apparatus that allows fully automated iterative polymer synthesis, especially fully automated SPPS, on an industrial scale, for example for the synthesis of 0.5 to 35 moles of polymer, preferably for the synthesis of 0.5 to 10 moles of polymer. Depending on the nature of the polymer, this can correspond to about 100 g to 10 kg or 35 kg of product. [Means for solving the problem]
[0009] The inventors have overcome this need by providing an apparatus suitable for fully automated iterative polymer synthesis, characterized in that the building block samples to be added can be stored in solid form and are added in solid form into the first reaction vessel RV1, where dissolution takes place. This approach involves the automated transfer and injection of solid particles / powders, which is considerably more demanding than the injection of liquids in terms of avoiding clogging, non-quantitative transfer, and explosion risks. In particular, the addition of powders in flammable solvents can entail the risk of electrostatic ignition caused by friction during the transfer process itself. Moreover, the carryover of building blocks from one coupling cycle to the next should be prevented to avoid the formation of by-products. Surprisingly, the inventors have been able to overcome these challenges.
[0010] Generally therefore, the present invention relates to an apparatus suitable for performing iterative polymer synthesis, the apparatus comprising: a) a plurality of movable, closeable storage containers configured to permit transport by automated means and each comprising a transfer port suitable for the transfer of solid materials; b) at least one first reaction vessel RV1 equipped with a transfer port suitable for the transfer of solid material, wherein: the transfer port of the first reaction vessel RV1 is constructed and arranged to be removably docked to the transfer port of each storage vessel, thereby forming a connection between both vessels; and Material can pass through the transfer port when it is in a connected state, but not when it is in an unconnected state; at least one first reaction vessel RV1; c) an automated transport means suitable for moving a defined sequence of individual storage vessels to and from a particular first reaction vessel RV1, where the automated transport means is capable of aligning said transfer ports on the storage vessels with sufficient precision to enable docking of said transfer ports on the first reaction vessel RV1 with each other; and d) at least one control unit CU1 for controlling the operation of said automated vehicle, the docking of said ports, and the opening and closing of ports; Equipped with.
[0011] Preferably, the apparatus is adapted to carry out the method according to the invention.
[0012] A specific building block B may be provided inside each storage vessel, where the building blocks B in different storage vessels may be the same or different, and where the majority of said building blocks B are in solid form. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0013] In the present specification, the expression "iterative polymer synthesis" is used for a process of chemical synthesis in which a series of building blocks (B) are assembled into a polymer chain by repeated cycles of building block addition. A building block often represents a monomeric unit to be added to a growing polymer chain, but may also represent smaller fragments of the polymer to be synthesized, such as dimers, trimers, etc. For example, building blocks used in peptide synthesis may generally include linear or branched di- and tripeptide derivatives, such as pseudoproline dipeptides, as well as derivatives of single amino acids. A building block addition may essentially represent a condensation reaction, such as the formation of a peptide bond or an ester bond, e.g. a phosphoester bond. Cycles of building block addition may differ in details, e.g. with respect to the conditions of building block coupling, but the overall structural elements, e.g. the repeated deprotection and coupling steps, may be common. The polymer chain may take any conceivable shape, e.g. linear, cyclic, and / or branched. The single building blocks used may be the same or different. Specific building blocks in a defined order may be used to build a particular polymer structure. This may be accomplished by defining the order of individual reservoirs (each containing a particular building block therein) that are to be used in subsequent cycles of building block addition to assemble the intended polymer sequence. The building blocks in the individual reservoirs may be the same or different, and are selected independently of one another to allow for the stepwise construction of the intended order. To emphasize this, the reference symbol B may be used with a subscript (B i As used herein, building block B, building block (B), building block B i or building blocks (B i) are synonymous. If the synthesis of a mixture of polymers is intended, the individual reservoirs may contain a mixture of building blocks. Typical examples of iterative polymer synthesis are, inter alia, peptide synthesis (including the synthesis of peptide derivatives and analogues) and polynucleotide synthesis, for example by the phosphoramidite method (including the synthesis of polynucleotide derivatives and analogues). In some embodiments, the iterative polymer synthesis is solid phase peptide synthesis (SPPS), in particular Fmoc-SPPS. In Fmoc-SPPS, the fluorenylmethoxycarbonyl protecting group (Fmoc) is used. The device of the invention is suitable for carrying out automated iterative polymer synthesis, in particular automated peptide synthesis, such as automated solid phase peptide synthesis, for example automated Fmoc-SPPS.
[0014] In the present specification, the expression "polymer" is used for any molecular structure comprising a sequence of two or more monomeric units. This expression therefore explicitly includes the commonly used expression "oligomer". Examples of polymers in the sense of the present application include dipeptides, tripeptides, other peptides, proteins, dinucleotides, trinucleotides, oligonucleotides, and polynucleotides, as well as any derivatives thereof. The polymer to be synthesized may comprise at least 3, at least 5, or at least 10 monomeric units. The polymer to be synthesized may comprise up to 30, up to 50, or up to 100 monomeric units. For example, the polymer to be synthesized may comprise 3-40, 5-40, 10-40, 3-50, 5-50, 10-50, 3-80, 5-80, 10-80, 3-100, 5-100, or 10-100 monomeric units. In the case of peptides, the monomeric units may be separated by two subsequent peptide bonds. The monomeric unit may be an aminoacyl moiety or a derivative or analog thereof. The expression aminoacyl moiety may refer to a moiety of the following general formula I, wherein: [ka] R1 is selected from the group consisting of H, alkyl, aryl, and arylalkyl; R2 is selected from the group consisting of O and S; and R is: linear or branched, substituted or unsubstituted alkylene; linear or branched, substituted or unsubstituted heteroalkylene; substituted or unsubstituted cycloalkylene; linear or branched, substituted or unsubstituted aryl alkylene; linear or branched, substituted or unsubstituted heteroaryl alkylene; substituted or unsubstituted arylene; Substituted or Unsubstituted Heteroarylene is selected from the group consisting of:
[0015] Non-limiting examples of aminoacyl moieties are the entities resulting from the incorporation of any substituted or unsubstituted α-ω amino acid, commonly p-aminobenzoic acid, 4-amino-cyclohexane-carboxylic acid, piperidine-4-carboxylic acid, or 8-amino-3,6-dioxa-octanoic acid (also known as AEEAc), into the peptide chain of any of the amino acids present in naturally occurring peptides and proteins, including proline and hydroxyproline.
[0016] As used herein, the expression "amino acid" refers to an amino acid having at least one deprotonated or protonated carboxyl group (-COO - or -COOH) and at least one amino group which may be protonated, preferably a primary or secondary amino group (-NHR or -NH 2 In the case of nucleic acids, the monomeric units may be nucleotides or derivatives or analogues thereof.
[0017] As will be immediately understood by those skilled in the art, many different types of material transfer ports may be used in accordance with the present invention. The material transfer ports may be suitable for cleaning in place to avoid carryover of building blocks between successive cycles of coupling. The docking of the transfer ports may result in an environmentally tight coupling, i.e., allowing the material to be transferred between the storage vessel and the reaction vessel to be accommodated, to avoid loss of reagents and contamination of the surroundings during filling of the reaction vessel. The material transfer ports or at least their exposed surfaces may be manufactured from materials that are essentially inert to the reagents to which they are exposed. Furthermore, it is preferred to use conductive materials to minimize the risk of electrostatic ignition. In some embodiments, the material transfer ports or their exposed surfaces are manufactured from stainless steel, Hastelloy alloy, or polymer-coated metal. The materials may comply with applicable regulations for the manufacture of pharmaceuticals, cosmetics, and / or food and beverages, i.e., comply with Good Manufacturing Practice (GMP). It will further be understood by those skilled in the art that the inner diameter of the opening of the coupled transfer port will affect the material transfer rate, and the skilled artisan will select this parameter depending on the flow properties of the material to be transferred. For example, an internal diameter of about 10, 15, 20 or 30 cm may be appropriate.
[0018] The expression "solid material" as used herein refers to a chemical reagent in a solid state, for example a building block of a polymer to be synthesized. The solid material may be a powder or granules. The solid material may be in the form of pellets. The solid material may include macroscopic aggregates. The solid material may have the form of a powder or granules (amorphous or crystalline) with a particle size in the micrometer range, for example in the range of 2 to 5000 micrometers, or 20 to 2000 micrometers. Some powders or granules may form macroscopic aggregates. The powders or granules may be free-flowing and / or readily soluble in the reaction solvent.
[0019] In some embodiments, the openings on the storage vessel and the first reaction vessel RV1 may be closed by ball valves, respectively, and the ports may be connectable, for example, by a quick connect device, where the ball valves and the quick connect device are operated by a control unit. The control unit only allows opening after the ports are docked, i.e., after the connection between both ports has been made. For example, to facilitate cleaning and filling of the vessels, the ball valves may be attached to the respective vessels via detachable connections, such as threaded flanges or clamps. In some embodiments, the ball valve on the first reaction vessel RV1 is mounted on a shock absorbing material so that vibrations resulting from the alignment and docking process are not transmitted to the first reaction vessel RV1.
[0020] In some embodiments, the material transfer ports on the storage vessel and the reaction vessel may each comprise one part of a split valve device. In such a device, each port may be closed by a flap. When both parts are positioned close and aligned with each other, they may be releasably docked together, whereby both flaps can be pushed together and moved to open the valve to allow the passage of material. Docking and undocking may be achieved by an automated drive incorporated in the split valve device. In some embodiments, both flaps may be pushed together by applying a vacuum suction to the space enclosed between them. Flap movement may be achieved by an automated drive incorporated in one of the parts of the split valve device. The part of the split valve device with the drive that mediates the docking / undocking and opening and closing of the valve is generally referred to as the active part, and the other part as the passive part of the device. Preferably, the active part of the split valve device is mounted on the first reaction vessel RV1. As used herein, the phrase "operation of the split valve device" may include, among others, docking / undocking the portions of the split valve, locking both portions together, unlocking both portions, built-in flushing procedures for the flaps, and opening and closing the split valve device. At a minimum, the phrase "operation of the split valve device" includes docking / undocking the portions of the split valve and opening and closing the valve.
[0021] Examples of split valves include split butterfly valves and split cone valves. Such split valve devices are known in the art, for example from WO2010 / 092395, WO2010 / 145804 and EP1213244. Commercial sources include, among others, Mueller, Sterivalves SRL, GEA Group, MO Industries, Visval and Chargepoint Technology Ltd. Due to their design (see, for example, Chimica Oggi (2003), 21(3 / 4), 78-79), split valve devices are suitable for containing materials to be transferred between storage and reaction vessels, so as to avoid loss of reagents and contamination of the surroundings during filling of the reaction vessels. Parts of the split valve device may be attached to the respective vessels via detachable connections, such as threaded flanges or clamps. This allows the split valve to be removed, for example for cleaning purposes or to dispense solid chemical reagents into the storage vessel. In some embodiments, the active portion of the split valve device is mounted on shock absorbing material so that vibrations resulting from the alignment and docking process are not transmitted to the first reaction vessel RV1. The accuracy of alignment required for the active and passive portions of the split valve device to dock will depend on the specifications of the particular split valve device used. For example, the portions may need to be aligned with no deviation from ideal positioning by more than about 10-15 mm.
[0022] Thus, in some embodiments, the present invention relates to an apparatus suitable for performing iterative polymer synthesis, the apparatus comprising: a) a plurality of movable, closable storage containers configured to permit transport by automated means and each comprising a passive portion of a split valve device suitable for the transfer of solid materials; b) at least one first reaction vessel RV1, comprising said active part of a split valve device; c) an automated transport means suitable for moving a defined sequence of individual storage vessels to and from a particular first reaction vessel RV1, where the automated transport means is capable of aligning said passive part of the split valve device with sufficient precision to enable docking thereof with said active part of the split valve device and with each other; and d) at least one control unit CU1 for controlling the operation of the automated vehicle and of the split valve device; Equipped with.
[0023] It will be appreciated by those skilled in the art that any automated transport means suitable for transporting the individual storage vessels in a defined sequence to and from a particular first reaction vessel RV1 and positioning them with sufficient precision to allow docking of the vessel ports can be used, in other words, the automated transport means aligns the ports of both vessels with the precision required by the docking mechanism of the ports.
[0024] In some embodiments, the automated transport means comprises or essentially consists of a conveyor device. For example, a conveyor device may be used that moves a storage vessel along a defined path, for example along a rail installed above the first reaction vessel RV1 (see, for example, FIG. 2a). As a further example, a conveyor wheel may be used that moves a particular storage vessel to a docking position on top of the first reaction vessel RV1 by rotating about the central axis of the wheel and moving the storage vessel downwards (see, for example, FIG. 2b).
[0025] In some embodiments (see, for example, FIG. 2c), the automated vehicle comprises or essentially consists of a robot, e.g. a robotic arm. The robot or robotic arm may be equipped with a gripping device. Such robotic arms are routinely used in industry and are readily available from commercial sources, such as, for example, Fanuc, Kuka, ABB, or Staeubli. Preferably, the robotic arm allows movement in three-dimensional space and can rotate along each of the three axes of movement. The robotic arm may be fixed in place or movable along a guide. Preferably, the robot or robotic arm comprises a programmable logic controller (PLC), which may be part of the control unit CU1 and is controlled by process control software installed in a remote management computer.
[0026] The automated transport means, e.g. a robotic arm, is preferably suitable for working in areas at risk of explosion, e.g. according to the ATEX specifications of the European Union. A person skilled in the art will routinely select an automated transport means of suitable dimensions, suitable for lifting the weight of the filled storage vessel and capable of transporting the filled storage vessel with suitable precision to the transfer port of the first reaction vessel RV1. For example, the automated transport means, e.g. a robotic arm, may be suitable for handling weights of 1 kg to 500 kg, e.g. 10, 25, 50, 75, or 100 kg, and for positioning the weights within 10 to 15 mm from their ideal position. Preferably, the automated transport means further comprises an optical device, such as a camera or scanner, for recognizing a particular storage vessel by its machine-readable tag. The automated transport means may handle more than one first reaction vessel RV1. For example, in this case the automated transport means may comprise a programmable logic controller (PLC), which may be part of the control unit CU1, and is controlled by more than one process control software installed in one or more remote management computers.
[0027] Gripping devices for transport devices, e.g. for robotic arms, are readily available. Preferably, the gripping device is a mechanical device, which grips the storage container by direct impact on the container, e.g. on a protrusion of the container wall or on a gripper plate mounted on the container. In some embodiments, parallel grippers or central grippers with three or four fingers are used for this purpose. The gripping device may be operated with a pneumatic or electrical drive. In other embodiments, the gripping device may apply an attractive force, such as a vacuum suction or a magnetic field, to the storage container. In some embodiments, the gripping device allows for detachable gripping and / or is suitable for lifting weights from 1 kg to 500 kg, e.g. up to 10, 25, 50, 75 or 100 kg.
[0028] In some embodiments, the automated transport vehicle consists essentially of a robot arm equipped with a detachable gripping device, such as a parallel gripper or a three-fingered central gripper. For example, the automated transport vehicle can be movable in three-dimensional space and rotate along each of three axes of movement, and consist essentially of a robot arm equipped with a detachable gripping device, such as a parallel gripper or a three-fingered central gripper.
[0029] Those skilled in the art appreciate the fact that many different shapes allow an automated transport means to pick up and transport the storage container, and that the particular shape depends on the transport means selected as well as the exact movements that need to be performed during transport. In some embodiments, the housing of the storage container may exhibit a constriction (such as a neck) so that the automated transport means may engage with the container. In some embodiments, the container may exhibit a protrusion or hook with which the automated transport means may engage. In some embodiments, the container may comprise a gripping plate with which a gripping device may engage. The use of a gripping plate may be advantageous when the container needs to be turned upside down by the transport means and / or when additional elements such as solvent lines or washing devices need to be moved by the transport means.
[0030] In some embodiments, the automated transport means can move a storage vessel with its material transfer port to a docking position above the material transfer port of the reaction vessel, and the docking / undocking of both ports is accomplished by a drive incorporated in the ports. This may be the case, for example, when using two part material transfer ports of a split valve device. Alternatively, the automated transport means can move the storage vessel to a docking position and accomplish the docking / undocking. This may be the case, for example, when using ball valves on each vessel and connecting the ports by a quick connect device.
[0031] As used herein, the expression "operation of the automated transport means" includes, inter alia, the selection of a particular storage container, engagement of the storage container, transport of the storage container to and away from a particular first reaction container RV1, and alignment of the storage container at a particular position on the first reaction container RV1.
[0032] In this specification, the expression "storage vessel" is used for a container inside which a material of interest can be stored under appropriate conditions. A person skilled in the art will define the appropriate conditions depending on the situation, for example to maintain the integrity of the material or process safety according to the specifications of a given process.
[0033] The storage vessel may be configured to allow transport by automated means and includes a transfer port suitable for the transfer of solid materials, where the material transfer port includes: the transfer port can be removably docked to a corresponding transfer port of a reaction vessel according to the invention, thereby forming a connection between both vessels; and Material can pass through the transfer port when it is connected, but cannot pass through when it is disconnected. The system is constructed and arranged as follows.
[0034] Preferably, the transfer port is the passive portion of a split valve device, such as a split butterfly valve.
[0035] The storage vessel may further comprise a liquid inlet and / or one or more machine-readable identification tags. In some embodiments, the invention may relate to a mobile, closeable storage vessel for use in an apparatus according to the invention, the storage vessel configured to allow transport by an automated transport means and comprising a machine-readable tag, a liquid inlet connectable to a mobile solvent line, and a passive portion of a split valve device suitable for the transfer of solid materials. A mobile, closeable storage vessel for use in an apparatus according to the invention may comprise a gripper plate, a machine-readable tag, a liquid inlet connectable to a mobile solvent line, and a passive portion of a split valve device suitable for the transfer of solid materials. Preferably, the machine-readable tag is a barcode, a QR code, or an alphanumeric character container label.
[0036] Preferably, the liquid inlet is positioned to allow purging of the storage vessel with a solvent. For example, the liquid inlet may be positioned opposite the material transfer port, for example opposite the passive part of the split valve device. In some embodiments, the liquid inlet of the storage vessel feeds into a spray nozzle or spray ball inside the storage vessel. Preferably, the spray nozzle or ball is positioned at the top of the storage vessel, opposite the passive part of the split valve device. The solvent line may be movable and may be temporarily connected with the liquid inlet of the vessel. Preferably, the liquid inlet of the vessel comprises a part of a quick connect device, which corresponds to the part of the quick connect device mounted on the solvent line. Preferably, the flow through the movable solvent line is regulated by devices such as valves and / or pumps under the control of the control unit CU1. The addition of solvent to the storage vessel may contribute to the integrity of the material transfer from the storage vessel to the first reaction vessel RV1 by rinsing the interior surfaces of the storage vessel and / or by dissolving or suspending solid materials to be transferred.
[0037] Thus, in some embodiments, the invention relates to an apparatus for performing iterative polymer synthesis as described above, where each of the storage vessels comprises a liquid inlet that allows connection to a (preferably mobile) solvent line, preferably via a quick connect device. In some embodiments, the invention relates to an apparatus for performing iterative polymer synthesis as described above, where each of the storage vessels comprises a machine-readable tag and a liquid inlet that allows connection to a mobile solvent line, preferably via a quick connect device. In some embodiments, the invention relates to an apparatus for performing iterative polymer synthesis as described above, where each of the storage vessels comprises a gripper plate, a machine-readable tag and a liquid inlet that allows connection to a mobile solvent line. Preferably, the mobile solvent line may be reversibly connected to the liquid inlet of the storage vessel. The connection may be established by an automated transport means. For example, a robotic arm as detailed above could move the solvent line to the liquid inlet, keep it in place, and remove it after the solvent flow has terminated.
[0038] In some embodiments, the storage vessel may be further adapted to contain a protective gas. For example, the vessel may be equipped with a controllable valve that can be connected to a vacuum source and a second controllable valve can be used to connect to a source of an inert gas such as nitrogen. For automatic inerting, the storage vessel may further be equipped with an electronic or mechanical pressure control device and the valve can be operated automatically. For manual inerting, the storage vessel may be equipped with a pressure gauge and a manually controlled valve. The reaction vessel may further be equipped with sensors for monitoring important parameters such as, for example, temperature, humidity, or oxygen content within the vessel.
[0039] The storage vessel may be made of any suitable material, for example, metal, enamel, or polymers such as polypropylene, polyethylene, polyvinyl chloride, polystyrene, and polyetheretherketone. Preferably, a material is selected that is essentially inert to the reagents to which it is exposed. Preferably, the material complies with applicable regulations for the manufacture of pharmaceuticals, cosmetics, and / or food and beverages, i.e., conforms to Good Manufacturing Practice (GMP). Furthermore, conductive materials may be used to minimize the risk of electrostatic ignition. In some embodiments, the storage vessel is made of stainless steel or Hastelloy alloy or metal coated with a conductive polymer. The dimensions of the storage vessel may be selected according to the intended scale of synthesis. In some embodiments, the storage vessel has an internal volume of about 1 to 200 liters, for example about 1, 5, 10, 15, 20, 25, 30, 35, 40, 45, 50, 100, 150, or 200 l. In some embodiments, the storage vessel has an internal volume of about 10 to 40 liters.
[0040] In the present specification, the expressions "reaction vessel" or "reactor" are used for a vessel suitable for taking in a reagent of interest and having at least one liquid outlet. A reaction vessel may therefore be used in the narrower sense of the term for carrying out a chemical reaction, i.e. a reaction in which a covalent chemical bond between atoms is created and / or broken. However, a reaction vessel may also be used merely for dissolving and / or mixing a reagent of interest. A reaction vessel may be shaped to allow efficient mixing of its contents and rinsing of its walls. A reaction vessel is normally closed, i.e. suitable to avoid unintentional release of its contents. A reaction vessel may comprise further inlets and outlets for materials, preferably for liquids. Such inlets are normally equipped with valves, which are closed unless materials are intentionally introduced into or removed from the reaction vessel. Preferably, the transport of materials through the further inlets and outlets is driven and controlled by automatic devices (e.g. pumps and valves) regulated by the control unit CU1.
[0041] As used herein, the designation RV1 is used to describe a first reaction vessel having a material transfer port, e.g., an active part of a split valve device, which may be coupled to a material transfer port on a storage vessel, e.g., a passive part of a split valve. Preferably, the first reaction vessel RV1 is a batch reactor. As detailed below, the designation RV2 is used herein to describe a second reaction vessel, which is coupled to the first reaction vessel RV1 such that liquid can flow from the first reaction vessel RV1 to the second reaction vessel RV2. If no reference sign is used, the expression "reaction vessel" as used herein may refer to the first reaction vessel RV1 and / or the second reaction vessel RV2.
[0042] The reaction vessels RV1 and / or RV2 are preferably adapted for operation under a protective atmosphere. For example, the reaction vessels may be equipped with a first controllable valve that can be connected to a vacuum source, a second controllable valve that can be connected to a source of inert gas such as nitrogen, and an electronic or mechanical pressure control device. Preferably, the valves can be operated automatically and are under the control of the control unit CU1.
[0043] The reaction vessel may be made of any suitable material, for example, metal, glass, enamel, or polymers such as polypropylene, polyethylene, polyvinyl chloride, polystyrene, and polyetheretherketone. Preferably, a material is selected that is essentially inert to the reagents to which it is exposed. Furthermore, conductive materials may be used to minimize the risk of electrostatic ignition. In some embodiments, the storage vessel is made of stainless steel or Hastelloy alloy or metal coated with a conductive polymer. The size and dimensions of the reaction vessel may be selected according to the intended scale of synthesis. For example, reactors having an internal volume of 10, 30, 50, 75, 150, 200, 250, 300, 500, 750, or 1000 liters may be used. In some embodiments of the present invention, the internal volume of the first reaction vessel RV1 is about 30-250 liters, preferably about 40-200 liters, and most preferably about 50-150 liters. As used herein, the expression "about" indicates that a deviation of plus or minus 10% from the given value is possible.
[0044] The control unit CU1 controls at least the operation of the automated transport means, the docking and undocking of the material transfer port (e.g., part of the split valve device) connecting the storage vessel to the reaction vessel, and the opening and closing of the solid material transfer port (e.g., of the split valve device). The control unit CU1 may comprise several devices, which form various hierarchical levels of control, as in the case of a supervisory control and data acquisition (SCADA) control system configuration. For example, the control unit may comprise one or more remote management computers, which collect data from and send control commands to one or more peripheral devices, as well as one or more user interfaces, such as remote terminal units (RTUs), programmable logic controllers (PLCs) and GUI panels. The PLCs and supervisory SCADA software may receive inputs from field sensors, such as temperature, pressure, level, weight, position, or concentration sensors, among others. The one or more SCADA supervisory computing platforms may further interact with a manufacturing execution system (MES), which in turn interacts with an enterprise resource planning (ERP) system. Additionally, one or more SCADA monitoring computing platforms and MES may perform logging tasks by storing certain process parameters and alarms. For example, one or more SCADA monitoring computing platforms and MES may communicate with specialized databases. In some embodiments, the control unit comprises at least one SCADA system, at least one PLC with sensors and actors that control the operation of the automated vehicle, and at least one PLC with sensors and actors that control the docking / undocking and opening and closing of transfer ports (e.g., split valve devices) and all other unit operations involving RV1 and / or RV2.
[0045] The control unit may be configured to comprise a set of commands that cause the execution of all steps of the methods disclosed herein. For example, it may be configured to comprise a set of commands that cause the execution of steps 1)-11) or steps i)-xi). Additionally or alternatively, the control unit may be configured to comprise a complete set of commands for executing y synthesis cycles of the methods disclosed herein, for example y repetitions of steps 2)-11) or iii)-xi). Such a set of commands may be composed of modules for deprotection, coupling, capping and washing steps, where each module comprises specific commands and alarm rules. For each synthesis cycle, i.e. for each repetition of steps 2)-11) or iii)-xi) of the methods disclosed herein, the commands may be specifically adapted to achieve optimal process efficiency. For example, the temperature, duration of the coupling or deprotection steps and the reagents used may be specifically adapted for each synthesis cycle. Similarly, the number and intensity of washing steps may be modified.
[0046] As will be described in more detail below, in some embodiments, the control unit CU1 may further control one or more elements selected from a list including: means for regulating the flow of building block solutions from one reaction vessel to another, injection of additional chemicals into the reaction vessels, flow of protective gas (e.g. nitrogen) into the reaction vessels, mixing devices for the reaction vessels, solvent flow into the reaction vessels and into storage vessels, devices for controlling temperature and pressure inside the reaction vessels, means for cleaning active parts of split valve devices located on the vessels, and vibrators for facilitating the transfer of solid materials into the reaction vessels.
[0047] In some embodiments, the apparatus may be designed such that dissolution of the building blocks, optional activation of the building blocks, and their coupling to the growing polymer can occur inside the first reaction vessel RV1. In this case, the first reaction vessel RV1 may be equipped with further inlets for materials (e.g., activating reagents, additives, capping reagents, quenching agents, and solvents), mixing devices, and means for separating the growing polymer chains from the remaining components of the reaction mixture. In some embodiments, the apparatus may be designed such that the first reaction vessel RV1 can be used to dissolve and optionally pre-activate the building blocks before transferring the building block solution to the second reaction vessel RV2, where chemical coupling of the building blocks to the growing polymer occurs (see, for example, FIG. 3).
[0048] Thus, in some embodiments, the device comprises: e) at least one second reaction vessel RV2 coupled to at least one of the one or more reaction vessels RV1; f) a device, controlled by a control unit CU1, for generating and / or controlling a flow of liquid from said first reaction vessel RV1 to said connected second reaction vessel RV2. The device may further include:
[0049] The first reaction vessel RV1 may be equipped with further inlets and mixing devices for materials (e.g., activating reagents and additives); and the second reaction vessel RV2 may be equipped with further inlets for materials (e.g., activating reagents, additives, capping reagents, quenching agents, and solvents), mixing devices, and means for separating the growing polymer chains from the remaining components of the reaction mixture.
[0050] The above specifications for the first reactor RV1 - especially those relating to inactivation, materials and the volume of RV1 - are equally applicable to the second reactor RV2. In general, the volumes of the reactors RV1 and RV2 are similar within the same apparatus. Preferably, the second reactor RV2 is a batch reactor. However, in some embodiments of the invention, the second reactor RV2 can be a solid phase reactor column.
[0051] The flow of liquid between both reaction vessels RV1 and RV2 may be achieved by any means, such as by vacuum suction, nitrogen pressure, gravity, or by pump means, which may be controlled by adjusting the respective means and / or by valve means.
[0052] Depending on the envisaged synthesis route, it may be advantageous to integrate more than one reaction vessel RV1 in the device according to the invention. For example, two first reaction vessels RV1 can be connected to a single second reaction vessel RV2. This then allows to separately prepare two building blocks to be used in the coupling reaction in the second reaction vessel RV2. Alternatively, one first reaction vessel RV1 may be washed between preparation of building blocks to be used in the subsequent coupling step in the second reaction vessel RV2. Such a setup is particularly useful when the coupling step takes less time than the time of the building block preparation. Additionally (see FIG. 6 for an example) or alternatively, one first reaction vessel RV1 may be connected to more than one second reaction vessel RV2. Such a setup is particularly useful when the same building block is used in parallel in both reaction vessels. Thus, in some embodiments, the device comprises n first reaction vessels RV1 and m second reaction vessels RV2, where n and m are integers independently selected from the range of 1 to 10.
[0053] In some embodiments, the apparatus comprises one first reaction vessel RV1 and one second reaction vessel RV2 (see FIG. 5). In some embodiments, the apparatus comprises up to six, for example 2, 3, 4, 5, or 6, first reaction vessels RV1 and up to six, for example 2, 3, 4, 5, or 6, second reaction vessels RV2, where each first reaction vessel RV1 is connected to exactly one second reaction vessel RV2, and a single automated transport means is used to load solid material into all first reaction vessels RV1 independently of each other (see FIG. 4 for an example). In some embodiments, the apparatus may comprise: 2, 3, 4, 5, or up to six first reaction vessels RV1; 2, 3, 4, 5, or up to six second reaction vessels RV2; or up to six first reaction vessels RV1 and up to six second reaction vessels RV2.
[0054] The apparatus comprises n first reaction vessels RV1 n and / or m second reaction vessels RV2 m where n and m are integers greater than 1 and equal to or less than 10, these reaction vessels and their associated devices (e.g., solvent lines, sensors, temperature and pressure controllers, etc.) may be regulated by the same control unit CU1 or by several independent control units CU1 to CUx, where x is an integer greater than 1. In the latter case, the independent control units may each have the architecture described above for CU1.
[0055] In order to control the amount and concentration of building blocks in the first reaction vessel RV1 within a narrow interval, it is preferable to achieve near-quantitative or quantitative transfer of solid material from the storage vessel to the first reaction vessel RV1. Therefore, depending on the properties of the solid material to be transferred from the storage vessel into the reaction vessel, it may be advantageous to use an agitator to facilitate the material transfer between both vessels. The agitator may be permanently or temporarily positioned around the transfer port or on the storage vessel. In one embodiment, the agitator is permanently fixed to the active part of the split valve device on the first reaction vessel RV1. In one embodiment, to avoid vibration of the first reaction vessel RV1, the active part of the split valve device to which the agitator is attached may be mounted on a shock absorbing material. Preferably, the agitator is suitable for working in areas with explosion risk, for example according to the ATEX specifications of the European Union. In some embodiments, the agitator may be a pulsating agitator. The agitator may be selected from the group consisting of pneumatic, electric, or hydraulic agitators. Alternatively, or in addition, to facilitate the transfer of solid material from the reservoir to the first reaction vessel RV1, it may be advantageous to provide the reservoir with a liquid inlet as discussed above. This allows the reservoir to be rinsed with a suitable liquid, for example a solvent. Preferably, the control unit CU1 manages the operation of the vibrator and the injection of liquid into the reservoir.
[0056] In some embodiments, the apparatus may further comprise a device M for monitoring the degree of material transfer from the storage vessel to the first reaction vessel RV1. As used herein, the expressions "device for monitoring the degree of material transfer", "device M for monitoring the degree of material transfer" and "device M" are synonymous and relate to a device that measures for a parameter that varies as a function of material transfer from the storage vessel to the reaction vessel. As will be appreciated by those skilled in the art, many different measuring devices may be used for this purpose. In some embodiments, device M may be a weighing scale, which is used to determine the weight or weight difference of either the storage vessel or the reaction vessel after material transfer. In some embodiments, device M may be an optical sensor, for example a visible / ultraviolet probe, which is used to determine the concentration of the transferred material in the solution provided in the first reaction vessel RV1. The amount of transferred material may then be inferred, for example, based on either a known volume of added solvent or a determination of the volume of the solution using a level probe. Preferably, the control unit CU1 receives a signal from device M.
[0057] As previously explained, the reaction vessels RV1 and / or RV2 may include a mixing device according to some embodiments. The skilled person will routinely select the mixing device depending on the materials to be mixed, for example with regard to the physical robustness of the support used. For example, an agitator with a rotating impeller may be used. Such a rotating impeller may be a turbulent mixer that generates an axial, mixed or radial flow of liquid inside the reaction vessel. Known rotating impellers include marine propellers, pitched blade turbines, flat blade turbines and flat blade paddles. The use of baffle blades may help to improve mixing. Alternatively or additionally, mixing may be achieved by bubbling a gas through the liquid. Alternatively or additionally, mixing may be achieved by liquid circulation, for example with a pump circulating. The skilled person will usually select the mixing means to achieve an efficient distribution of the substances in the reaction medium while avoiding foaming. When using solid supports in the reaction vessel, the vessel and the agitator blades are preferably designed to minimize shear forces. Preferably, the mixing device may be under the control of the control unit CU1.
[0058] In some embodiments, the reaction vessels RV1 and / or RV2 include a means for separating the growing polymer chains from the reaction mixture in the reactor. The skilled person will immediately understand that the choice of this means depends on the synthetic task at hand. For example, if solid-phase synthesis is performed on macroscopic particles (e.g., gel-like polymer beads) as solid supports, these particles need to be separated from the surrounding liquid phase. For synthetic approaches that rely on the use of solubility-modifying molecular tags, such as molecular hiving, the precipitate may need to be separated from the liquid. These tasks can be easily achieved by filtration. A frit or filter tissue incorporated at the bottom of the reactor may allow the liquid to be drained from the reactor while leaving the solid support or tag inside with the growing polymer chains. Other synthetic approaches may rely on the use of solubility-modifying molecular tags to partition between the liquid phases. The separation of the two liquid phases can be achieved by combining a controllable liquid outlet, which is positioned at either the bottom or the side of the reactor, together with a sensor, e.g., an optical or conductivity sensor, for detecting the phase boundary. Preferably, the discharge of liquid from the reactor is controlled by a control unit CU1, which may regulate the liquid outlet of the reactor and the pressure inside the reactor in case of working under inert gas. Furthermore, for synthesis approaches relying on molecular separation in the liquid phase, ultrafiltration or nanofiltration membranes may be used to leave the growing polymer chains inside the reactor while washing away the remaining components of the reaction mixture.
[0059] Thus, in some embodiments, the means for separating the growing polymer chains from the remaining components of the reaction mixture correspond to a filter, such as a fritted glass disc or a disposable filter tissue. The filter may be made, for example, of a polymer such as polypropylene, stainless steel (or a similar alloy), glass (such as a sintered funnel), or a similar material, and the pore size is selected depending on the size of the solid particles to be separated. For example, pore sizes in the range of 20 to 50 micrometers, for example about 25, 30, 35, 40, or 45 micrometers, may be used. In some embodiments, the means for separating the growing polymer chains from the remaining components of the reaction mixture comprise a controllable discharge valve, a conductivity sensor, and a control element that manages the state of the discharge valve depending, inter alia, on the signal obtained from the conductivity sensor. As an alternative to the conductivity sensor, an optical sensor may be used. In some embodiments, the means for separating the growing polymer chains from the remaining components of the reaction mixture may correspond to an ultrafiltration or nanofiltration membrane.
[0060] To determine and control certain reaction parameters, the reaction vessels may further comprise one or more elements independently selected for each reaction vessel from the group consisting of temperature sensors, pressure sensors, level sensors, turbidity sensors, optical sensors, conductivity sensors, impedance sensors, heating devices (e.g., microwave systems), cooling devices, mixing devices, liquid ports, means for rinsing the inner walls of the reaction vessel, and means for separating the growing polymer chains from the remaining components of the reaction mixture. The reaction vessels may be jacketed reactors.
[0061] Preferably, the apparatus disclosed herein is designed to avoid carryover of reagents between successive coupling steps, which may include the use of means for washing the active part of the split valve on the first reaction vessel RV1, as well as the use of means for rinsing the inner walls of reaction vessels RV1 and / or RV2.
[0062] In principle, cleaning of the active part of the split valve device can be achieved by connecting an empty storage vessel to the first reaction vessel RV1 to be cleaned and starting the flow of solvent through the split valve device into the reaction vessel RV1 via the liquid inlet of the storage vessel. Preferably, the apparatus can comprise a cleaning device for the active part of the split valve device of the first reaction vessel RV1, where the operation of the cleaning device is controlled by the control unit CU1. In some embodiments, said cleaning device comprises at least one nozzle connected to the passive part of the split valve device and to the solvent line. Thus, the cleaning device can be connected to the active part of the split valve device to open the valve and clean its surface with the solvent flow from the nozzle. Such cleaning devices are commercially available. They can be placed in the first reaction vessel RV1 by an automated transport means, and their placement and function can be controlled by the control unit CU1 as well. In some embodiments, the cleaning device and the storage vessel each comprise a gripping plate. Alternatively, commercially available split valve devices can comprise an integrated cleaning device, for example similar to the solivalve® technology. The functioning of the integrated cleaning device can likewise be controlled by the control unit CU1.
[0063] Preferably, the reaction vessels RV1 and / or RV2 may comprise a liquid inlet allowing connection to a solvent line. The liquid inlet may direct a solvent flow through a means for rinsing the inner walls of the reaction vessel. The means for rinsing the inner walls of the reaction vessel may be a spray ball or nozzle, which is positioned at the top of the reaction vessel and is connected to the liquid inlet. Rotating or fixed spray balls or nozzles may be used. Alternatively, or in addition, the means for rinsing the inner walls of the reaction vessel may comprise a liquid line directing a flow against the walls of the vessel. The liquid inlet may be permanently or removably connected to the solvent line. The solvent line may be movable and may be temporarily connected to the liquid inlet of the vessel. Preferably, the liquid inlet of the vessel comprises a flange, a clamp, or a part of a quick connect device, which corresponds to a flange, a clamp, or a part of a quick connect device mounted on the solvent line. Preferably, the solvent line further comprises a valve and / or a pump, which regulates the solvent flow through the solvent line and is operated by the control unit CU1. The means for rinsing the inner walls of the reaction vessel may be configured to rinse undissolved particles of building blocks into the liquid contained in the bottom of the reaction vessel and / or to remove traces of the used reaction mixture from the reaction vessel. This may help to avoid carryover from one coupling cycle to the next and thus a source of by-product formation. The washing liquid discharged from the reaction vessel may be monitored by an optical sensor, e.g. a flow cell or an ultraviolet / visible probe, in order to control the rinsing or washing process.
[0064] Depending on the setup of the device, in some embodiments, the washing liquid can be collected at least partially inside the first reaction vessel RV1. This option is particularly interesting when the coupling of building blocks onto the growing polymer chain takes place inside the first reaction vessel RV1. In this case, the washing process, i.e. rinsing the active parts of the split valve device of the first reaction vessel RV1 and rinsing undissolved particles of building blocks into the liquid contained at the bottom of the reaction vessel, can perform the dual function of washing and solvent addition of the first reaction vessel RV1. In this case, the solvent used for washing is also used for dissolving the building blocks and carrying out the coupling reaction. After the coupling reaction has ended, rinsing the inner walls of the first reaction vessel RV1 from traces of the coupling reaction can perform the dual function of rinsing the vessel and the solid support. Similarly, in some embodiments in which the device according to the invention comprises a second reaction vessel RV2 connected to the first reaction vessel RV1, the washing liquid can be collected at least partially inside the second reaction vessel RV2. Additionally or alternatively, the apparatus may further comprise waste lines allowing liquid to be drained from the first reaction vessel RV1 and from the line connecting the first reaction vessel RV1 with the second reaction vessel RV2 without passing the liquid through RV2 (see FIG. 5 for an example). In this way, washing of the first reaction vessel RV1 can proceed independently of the coupling reaction taking place in the second reaction vessel RV2.
[0065] In some embodiments E1, the invention relates to an apparatus suitable for performing iterative polymer synthesis, the apparatus comprising: a) a plurality of movable, closable storage vessels configured to allow transport by automated means and each comprising a passive portion of a split valve device suitable for the transfer of solid materials, and a liquid inlet allowing connection to a solvent line, preferably wherein said inlet feeds into a means for rinsing the interior walls of the storage vessel; b) at least one first reaction vessel RV1 adapted for operation under a protective atmosphere and equipped with the active part of said split valve device, a liquid inlet supplying a means for rinsing the inner walls of the first reaction vessel RV1, and a mixing device; c) an automated transport means suitable for moving a defined sequence of individual storage vessels to and from a particular first reaction vessel RV1, where the automated transport means is capable of aligning said passive part of the split valve device with sufficient precision to enable docking thereof with said active part of the split valve device and with each other; and d) at least one control unit CU1, which controls the operation of the automated transport means and the operation of the split valve device, the solvent flow to the liquid inlet of the storage vessel, the liquid flow to the liquid inlet of the first reaction vessel RV1, and the inert gas flow through the first reaction vessel RV1; Equipped with.
[0066] In some embodiments E2, the present invention relates to an apparatus suitable for performing iterative polymer synthesis, the apparatus comprising: a) a plurality of movable, closable storage vessels configured to allow transport by automated means and each comprising a passive portion of a split valve device suitable for the transfer of solid materials, and a liquid inlet allowing connection to a solvent line, preferably wherein said inlet feeds into a means for rinsing the interior walls of the storage vessel; b) at least one first reaction vessel RV1 adapted for operation under a protective atmosphere and equipped with the active part of said split valve device, a liquid inlet supplying a means for rinsing the inner walls of the first reaction vessel RV1, and a mixing device; c) a cleaning device for the active part of the split valve device of the first reaction vessel RV1; c) an automated transport means suitable for moving a defined sequence of individual storage vessels to and from a particular first reaction vessel RV1, where the automated transport means is capable of aligning said passive part of the split valve device with sufficient precision to enable docking thereof with said active part of the split valve device and with each other; and d) at least one control unit CU1, which controls the operation of the automated transport means and the operation of the split valve device, the solvent flow to the liquid inlet of the storage vessel, the liquid flow to the liquid inlet of the first reaction vessel RV1, the washing device, and the inert gas flow through the first reaction vessel RV1; Equipped with.
[0067] In some embodiments E3, the invention relates to an apparatus suitable for performing iterative polymer synthesis, the apparatus comprising: a) a plurality of movable, closable storage vessels configured to allow transport by automated means and each comprising a passive portion of a split valve device suitable for the transfer of solid materials, and a liquid inlet allowing connection to a solvent line, preferably wherein said inlet feeds into a means for rinsing the interior walls of the storage vessel; b) at least one first reaction vessel RV1 adapted for operation under a protective atmosphere and equipped with the active part of said split valve device, a liquid inlet supplying a means for rinsing the inner walls of the first reaction vessel RV1, and a mixing device; c) an automated transport means suitable for moving a defined sequence of individual storage vessels to and from a particular first reaction vessel RV1, where the automated transport means is capable of aligning said passive part of the split valve device with sufficient precision to enable docking thereof with said active part of the split valve device and with each other; d) a vibrator to facilitate material transfer from the storage vessel to the first reaction vessel RV1; and e) at least one control unit CU1, which controls the operation of the automated transport means, and the operation of the split valve device, the solvent flow to the liquid inlet of the storage vessel, the liquid flow to the liquid inlet of the first reaction vessel RV1, the inert gas flow through the first reaction vessel RV1, and the operation of the vibrator; Equipped with.
[0068] In some embodiments E4, the invention relates to an apparatus suitable for performing iterative polymer synthesis, the apparatus comprising: a) a plurality of movable, closable storage vessels configured to allow transport by automated means and each comprising a passive portion of a split valve device suitable for the transfer of solid materials, and a liquid inlet allowing connection to a solvent line, preferably wherein said inlet feeds into a means for rinsing the interior walls of the storage vessel; b) at least one first reaction vessel RV1 adapted for operation under a protective atmosphere and equipped with the active part of said split valve device, a liquid inlet supplying a means for rinsing the inner walls of the first reaction vessel RV1, and a mixing device; c) a cleaning device for the active part of the split valve device of the first reaction vessel RV1; d) an automated transport means suitable for moving a defined sequence of individual storage vessels to and from a particular first reaction vessel RV1, where the automated transport means is capable of aligning said passive part of the split valve device with sufficient precision to enable docking thereof with said active part of the split valve device and with each other; e) a vibrator to facilitate material transfer from the storage vessel to the first reaction vessel RV1; and f) at least one control unit CU1, which controls the operation of the automated transport means, and the operation of the split valve device, the solvent flow to the liquid inlet of the storage vessel, the liquid flow to the liquid inlet of the first reaction vessel RV1, the inert gas flow through the first reaction vessel RV1, and the operation of the cleaning device and the vibrator; Equipped with.
[0069] In some embodiments E5, the invention relates to an apparatus suitable for performing iterative polymer synthesis, the apparatus comprising: a) a plurality of movable, closable storage vessels configured to allow transport by automated means and each comprising a passive portion of a split valve device suitable for the transfer of solid materials, and a liquid inlet allowing connection to a solvent line, preferably wherein said inlet feeds into a means for rinsing the interior walls of the storage vessel; b) at least one first reaction vessel RV1 adapted for operation under a protective atmosphere and equipped with the active part of said split valve device, a liquid inlet supplying a means for rinsing the inner walls of the first reaction vessel RV1, and a mixing device; c) an automated transport means suitable for moving a defined sequence of individual storage vessels to and from a particular first reaction vessel RV1, where the automated transport means is capable of aligning said passive part of the split valve device with sufficient precision to enable docking thereof with said active part of the split valve device and with each other; d) a vibrator to facilitate material transfer from the storage vessel to the first reaction vessel RV1; e) a device M for monitoring the degree of material transfer between the storage vessel and the first reaction vessel RV1, preferably a gravimeter; and f) at least one control unit CU1 which receives data from said device M and controls the operation of the automated transport means, the operation of the split valve device, the solvent flow to the liquid inlet of the storage vessel, the liquid flow to the liquid inlet of the first reaction vessel RV1, the inert gas flow through the first reaction vessel RV1, and the operation of the vibrator; Equipped with.
[0070] In some embodiments E6, the invention relates to an apparatus suitable for performing iterative polymer synthesis, the apparatus comprising: a) a plurality of movable, closable storage vessels configured to allow transport by automated means and each comprising a gripper plate and a passive part of a split valve device suitable for the transfer of solid materials, and a liquid inlet allowing connection to a solvent line, preferably wherein said inlet feeds a means for rinsing the interior walls of the storage vessel; b) at least one first reaction vessel RV1 adapted for operation under a protective atmosphere and equipped with the active part of said split valve device, a liquid inlet supplying a means for rinsing the inner walls of the first reaction vessel RV1, and a mixing device; c) a cleaning device for the active part of the split valve device of the first reaction vessel RV1; c) an automated transport means comprising a gripping device capable of engaging with a gripper plate of the storage vessel and suitable for moving a defined sequence of individual storage vessels to and from a specific first reaction vessel RV1, wherein the automated transport means is capable of aligning said passive part of the split valve device with sufficient precision to enable docking thereof with said active part of the split valve device and with each other; and d) at least one control unit CU1, which controls the operation of the automated transport means, the operation of the gripping device, and the operation of the split valve device, the solvent flow to the liquid inlet of the storage vessel, the liquid flow to the liquid inlet of the first reaction vessel RV1, the washing device, and the inert gas flow through the first reaction vessel RV1; Equipped with.
[0071] In some embodiments E7, the invention relates to an apparatus suitable for performing iterative polymer synthesis, the apparatus comprising: a) a plurality of movable, closable storage vessels, each comprising a gripper plate, a passive part of a split valve device suitable for the transfer of solid materials, and a liquid inlet allowing connection to a solvent line, preferably wherein said inlet feeds a means for rinsing the inner walls of the storage vessel; b) at least one first reaction vessel RV1 adapted for operation under a protective atmosphere and equipped with the active part of said split valve device, a liquid inlet supplying a means for rinsing the inner walls of the first reaction vessel RV1, and a mixing device; c) an automated transport means comprising a gripping device capable of engaging with a gripper plate of a storage vessel and suitable for moving a defined sequence of individual storage vessels to and from a particular first reaction vessel RV1, wherein the automated transport means is capable of aligning said passive part of the split valve device with sufficient precision to enable docking thereof with said active part of the split valve device and with each other; d) a vibrator to facilitate material transfer from the storage vessel to the first reaction vessel RV1; e) a device M for monitoring the degree of material transfer between the storage vessel and the first reaction vessel RV1, preferably a gravimeter; and f) at least one control unit CU1 which receives data from said device M and controls the operation of the automated transport means, the operation of the gripping device and the operation of the split valve device, the solvent flow to the liquid inlet of the storage vessel, the liquid flow to the liquid inlet of the first reaction vessel RV1, the inert gas flow through the first reaction vessel RV1, and the operation of the vibrator. Equipped with.
[0072] In some embodiments E8, the invention relates to an apparatus suitable for performing iterative polymer synthesis, the apparatus comprising: a) a plurality of movable, closable storage vessels, each comprising a gripper plate, a passive part of a split valve device suitable for the transfer of solid materials, and a liquid inlet allowing connection to a solvent line, preferably wherein said inlet feeds a means for rinsing the inner walls of the storage vessel; b) at least one first reaction vessel RV1 adapted for operation under a protective atmosphere and equipped with the active part of said split valve device, a liquid inlet supplying a means for rinsing the inner walls of the first reaction vessel RV1, and a mixing device; c) a robotic arm equipped with a gripping device capable of engaging with a gripper plate of a storage vessel, the robotic arm being suitable for moving a defined sequence of individual storage vessels to and from a specific first reaction vessel RV1, the robotic arm being capable of aligning said passive part of the split valve device with sufficient precision to enable their docking with said active part of the split valve device and with each other; d) a vibrator to facilitate material transfer from the storage vessel to the first reaction vessel RV1; e) a device M for monitoring the degree of material transfer between the storage vessel and the first reaction vessel RV1, preferably a gravimeter; and f) at least one control unit CU1 which receives data from said device M and controls the operation of the robot arm, the operation of the gripping device, and the operation of the split valve device, the solvent flow to the liquid inlet of the reservoir, the liquid flow to the liquid inlet of the first reaction vessel RV1, the inert gas flow through the first reaction vessel RV1, and the operation of the vibrator. Equipped with.
[0073] In some embodiments E9, the invention relates to an apparatus suitable for performing iterative polymer synthesis, the apparatus comprising: a) a plurality of movable, closable storage vessels, each comprising a gripper plate, a passive part of a split valve device suitable for the transfer of solid materials, and a liquid inlet allowing connection to a solvent line, preferably wherein said inlet feeds a means for rinsing the inner walls of the storage vessel; b) at least one first reaction vessel RV1 adapted for operation under a protective atmosphere and equipped with the active part of said split valve device, a liquid inlet supplying a means for rinsing the inner walls of the first reaction vessel RV1, and a mixing device; c) a cleaning device for an active part of the split valve device of the first reaction vessel RV1, optionally wherein the cleaning device comprises a gripper plate; d) a robotic arm equipped with a gripping device capable of engaging with a gripper plate of a storage vessel, the robotic arm being suitable for moving a defined sequence of individual storage vessels to and from a specific first reaction vessel RV1, the robotic arm being capable of aligning said passive part of the split valve device with sufficient precision to enable their docking with said active part of the split valve device and with each other; e) a vibrator to facilitate material transfer from the storage vessel to the first reaction vessel RV1; f) a device M for monitoring the degree of material transfer between the storage vessel and the first reaction vessel RV1, preferably a gravimeter; and g) at least one control unit CU1 which receives data from said device M and controls the operation of the robot arm, the operation of the gripping device, the operation of the split valve device and the operation of the washing device, the solvent flow to the liquid inlet of the storage vessel, the liquid flow to the liquid inlet of the first reaction vessel RV1, the inert gas flow through the first reaction vessel RV1, and the operation of the vibrator. Equipped with.
[0074] In another embodiment E10, the device according to any of the above embodiments E1 to E9 comprises: at least one second reaction vessel RV2, connected to at least one of the one or more first reaction vessels RV1, adapted for operation under a protective atmosphere and equipped with a mixing device and a liquid inlet, preferably wherein said inlet is connected to a solvent line and supplies means for rinsing the inner walls of the second reaction vessel RV2; controllable means for achieving and / or controlling liquid flow from said first reactor vessel RV1 to said coupled second reactor vessel RV2; and wherein Control unit CU1 further controls means for achieving liquid flow to the liquid inlet of second reaction vessel RV2, inert gas flow through second reaction vessel RV2, and liquid flow from said first reaction vessel RV1 to said second reaction vessel RV2.
[0075] In another embodiment E11, the apparatus according to the above embodiments E1 to E9 comprises: at least one second reaction vessel RV2 connected to at least one of the one or more first reaction vessels RV1, adapted for operation under a protective atmosphere and equipped with a mixing device and a liquid inlet supplying means for rinsing the inner walls of the second reaction vessel RV2; controllable means for achieving and / or controlling liquid flow from said first reactor vessel RV1 to said coupled second reactor vessel RV2; a waste line allowing liquid to be discharged from the first reaction vessel RV1 and from the line connecting the first reaction vessel RV1 to the second reaction vessel RV2 without the liquid passing through the second reaction vessel RV2; At least one control unit CU1 further controls the solvent flow to the liquid inlet of the second reaction vessel RV2, the inert gas flow through the second reaction vessel RV2, a washing device for the active part of the split valve device, and means for achieving and / or controlling the liquid flow from said first reaction vessel RV1 to said second reaction vessel RV2.
[0076] In each of the above embodiments E1 to E11, the reaction vessel RV1 and / or RV2 may further comprise a means for separating the support with the growing polymer chains from the remaining components of the reaction mixture. In particular, the reaction vessel RV1 and / or RV2 may comprise a frit or filter tissue incorporated in the bottom of the reactor.
[0077] Each of the above embodiments E1 to E11 may be characterized in that the device is adapted to carry out the method of the invention.
[0078] In each of the above embodiments E1 to E11, reaction vessel RV1 and / or RV2 may further comprise an additional liquid inlet for the introduction of a liquid reagent into the reaction vessel.
[0079] The present invention further relates to a method for iterative polymer synthesis comprising the use of an apparatus or a storage vessel according to the present invention.
[0080] The explanations and definitions given above with respect to the apparatus of the present invention are equally applicable with respect to the method of the present invention, and vice versa. Preferably, the method of iterative polymer synthesis is carried out in an automated manner.
[0081] As previously explained, the devices of the invention may be particularly advantageous in that they may enable the steps of a repetitive polymer synthesis to be performed in an automated manner. The expression "in an automated manner" as used herein describes a process that is routinely carried out without human intervention and without permanent human control of the process. This may mean that the steps of the synthesis process are managed by a control unit, for example, the steps of the synthesis are under the control of the control unit CU1, as detailed above. However, the device and / or the control unit may be configured to allow or require human intervention under certain circumstances. This may occur, for example, in the case of unexpected events, such as when process parameters are outside certain predefined ranges. Alarm rules may be defined to handle such events. Furthermore, it may be advantageous to be able to carry out a certain number of coupling cycles in an automated manner, while certain critical steps are carried out under human control and / or with human intervention.
[0082] As used herein, the expressions "coupling cycle", "cycle of building block addition", "cycle of iterative polymer synthesis process" and "synthesis cycle" are synonymous and relate to the steps required to extend a polymer chain by one building block during synthesis. Typically, a synthesis cycle includes at least one step of preparing the polymer chain for coupling and a step of coupling a building block to the polymer chain. The preparation step may include separation, washing, removal of protecting groups, and washing of the polymer chain.
[0083] The steps of the method detailed herein may be performed in the exact order listed below. However, those skilled in the art will appreciate the fact that in some cases the order of steps may be different. As used herein, the phrase "the following steps 1-x are performed" refers to a process in which each of steps 1-x is performed, but not necessarily in the order shown. For example, it will be immediately apparent to those skilled in the art that the following steps 1)-10) and i)-x) do not have to be performed in the order shown. Furthermore, one or more single steps may be repeated several times throughout the sequence of steps. For example, steps v) and vi) may occur simultaneously, and / or step 9) may occur several times before and during step 10).
[0084] In some embodiments, the present invention relates to a method for iterative polymer synthesis, the method comprising the following steps 1) to 10): 1) providing a plurality of mobile, closable storage vessels (1), configured to allow transport by automated means (3) and each equipped with a first transfer port (26) suitable for the transfer of solid material, wherein each storage vessel (1) contains a defined amount of a building block B in solid form to be used in one cycle of an iterative polymer synthesis process; 2) using an automated transport means (3) to transfer a particular storage vessel (1) selected from said plurality of y storage vessels (1) to a first reaction vessel RV1 (4), said reaction vessel comprising a second transfer port (27) suitable for the transfer of solid material, wherein: said first transfer port (26) of each storage vessel is constructed and arranged to be removably docked to said second transfer port (27) of the first reaction vessel RV1 (4) thereby forming a connection between both vessels; and Material can pass through the transfer ports (26, 27) when they are connected, but not when they are disconnected; The above process; 3) aligning and docking a first transfer port (26) on the storage vessel (1) with a second port (27) on the first reaction vessel RV1 (4); 4) opening the docked transfer ports (26, 27) and transferring building block B from the storage vessel into the first reaction vessel RV1 (4); 5) dissolving said building block B by adding a suitable solvent, thereby forming a solution of building block B inside first reaction vessel RV1 (4); 6) The solution obtained in step 5) is transferred to a second reaction vessel RV2 (10) containing a carrier to which molecule C is tethered, thereby forming building block B i obtaining a reaction mixture containing the carrier having molecule C; 7) washing the first reaction vessel RV1 (4), including the transfer port (27), by rinsing with a solvent that may be the same or different from the solvent used in step 5); 8) Building Block B i incubating the reaction mixture obtained in step 6) under conditions that allow the formation of a chemical bond between and molecule C, and thus form molecule C' extended by one building block unit; 9) retaining the support bearing the extended molecule C' inside the second reaction vessel RV2 (10) while purging liquid containing by-products of the coupling reaction and residual educts from the second reaction vessel RV2 (10); 10) preparing the carrier with the extended molecule C' for the next synthesis cycle in which the extended molecule C' is used as molecule C; and 11) undocking and removing the empty storage vessel from the first reaction vessel RV1 (4); Including, wherein at least steps 2) to 11) are performed at least once in an automated manner.
[0085] In another embodiment, the present invention relates to a method of iterative polymer synthesis, wherein the above steps 1) to 10) are performed at least once in an automated manner.
[0086] In a further embodiment, the present invention relates to a method for iterative polymer synthesis, the method comprising the following steps i) to x): i) providing a plurality of mobile, closable storage vessels (1), configured to allow transport by automated means (3) and each equipped with a first transfer port (26) suitable for the transfer of solid material, wherein each storage vessel (1) contains a defined amount of a building block B in solid form to be used in one cycle of an iterative polymer synthesis process; ii) providing a first reaction vessel RV1 (4), said reaction vessel containing a carrier to which molecule C is tethered and equipped with a second transfer port (27) suitable for the transfer of solid material, wherein: said first transfer port (26) of each storage vessel is constructed and arranged to be removably docked to said second transfer port (27) of the first reaction vessel RV1 (4) thereby forming a connection between both vessels; and Material can pass through the transfer ports (26, 27) when they are connected, but not when they are disconnected; The above process; iii) using an automated transport means (3) to transfer a specific storage container (1) selected from the plurality of storage containers (1) to the first reaction container RV1 (4) containing the carrier having the molecule C; iv) aligning and docking a first transfer port (26) of said storage vessel (1) with a second transfer port (27) of said first reaction vessel RV1 (4); v) opening the docked transfer ports (26, 27) and transferring the amount of building block B from the storage vessel into the first reaction vessel RV1 (4); vi) dissolving said building block B by adding a suitable solvent, thereby forming a reaction mixture containing building block B and the carrier having molecule C inside the first reaction vessel RV1 (4); vii) incubating the reaction mixture obtained in step vi) under conditions allowing the formation of a chemical bond between building block B and molecule C, forming molecule C' extended by one building block unit; viii) retaining the support bearing the extended molecule C' inside the first reaction vessel RV1(4) while purging liquid containing by-products of the coupling reaction and residual educts from the first reaction vessel RV1(4); ix) rinsing the first reaction vessel RV1 (4), including the second transfer port (27), with a solvent which may be the same or different from the solvent used in step vi); x) preparing a carrier having an extended molecule C' for a next coupling using the extended molecule C' as molecule C; and xi) undocking and removing the empty storage vessel from the first reaction vessel RV1 (4); Including, wherein at least steps iii) to xi) are performed at least once in an automated manner.
[0087] In steps 1) and i) of the method according to the invention, a plurality of storage containers may be provided by dispensing a defined amount of building block B in solid form into each of the storage containers (1) and making them accessible to an automated transport means. This may be done in an automated manner by loading the prepared storage containers to a specific location using a transport means. As mentioned above, the specific building block B in each container is independently selected. It may be the same or different from the specific building block B in any of the other containers.
[0088] In step ii) of the method according to the invention, the first reaction vessel RV1 containing the carrier to which molecule C is tethered can be provided by dispensing a defined amount of said carrier into the reaction vessel and by conditioning said carrier, which can be done in an automated manner by carrying out a washing routine.
[0089] In yet a further embodiment, the present invention relates to a method of iterative polymer synthesis, wherein steps i) to x) above are carried out at least once in an automated manner.
[0090] Another embodiment is the method according to the following steps 1) to 10): 1) providing a plurality of mobile, closable storage vessels (1), configured to allow transport by automated means (3) and each equipped with a first transfer port (26) suitable for the transfer of solid material, wherein each storage vessel (1) contains a defined amount of a building block B in solid form to be used in one cycle of an iterative polymer synthesis process; 2) using an automated transport means (3) to transfer a particular storage vessel (1) selected from said plurality of y storage vessels (1) to a first reaction vessel RV1 (4), said reaction vessel comprising a second transfer port (27) suitable for the transfer of solid material, wherein: said first transfer port (26) of each storage vessel is constructed and arranged to be removably docked to said second transfer port (27) of the first reaction vessel RV1 (4) thereby forming a connection between both vessels; and Material can pass through the transfer ports (26, 27) when they are connected, but not when they are disconnected; The above process; 3) aligning and docking a first transfer port (26) on the storage vessel (1) with a second port (27) on the first reaction vessel RV1 (4); 4) opening the docked transfer ports (26, 27) and transferring building block B from the storage vessel into the first reaction vessel RV1 (4); 5) dissolving said building block B by adding a suitable solvent, thereby forming a solution of building block B inside first reaction vessel RV1 (4); 6) The solution obtained in step 5) is transferred to a second reaction vessel RV2 (10) containing a carrier to which molecule C is tethered, thereby forming building block B i obtaining a reaction mixture containing the carrier having molecule C; 7) washing the first reaction vessel RV1 (4), including the transfer port (27), by rinsing with a solvent that may be the same or different from the solvent used in step 5); 8) Building Block B i incubating the reaction mixture obtained in step 6) under conditions allowing the formation of a chemical bond between and molecule C, forming molecule C' extended by one building block unit; 9) retaining the support bearing the extended molecule C' inside the second reaction vessel RV2 (10) while purging liquid containing by-products of the coupling reaction and residual educts from the second reaction vessel RV2 (10); and 10) preparing the support carrying the extended molecule C' for the next synthesis cycle in which the extended molecule C' is used as molecule C; Including, wherein at least steps 2) to 11) are carried out at least once in an automated manner; It is a method of iterative polymer synthesis.
[0091] Another embodiment is the method comprising the steps of: i) providing a plurality of mobile, closable storage vessels (1), configured to allow transport by automated means (3) and each equipped with a first transfer port (26) suitable for the transfer of solid material, wherein each storage vessel (1) contains a defined amount of a building block B in solid form to be used in one cycle of an iterative polymer synthesis process; ii) providing a first reaction vessel RV1 (4), said reaction vessel containing a carrier to which molecule C is tethered and equipped with a second transfer port (27) suitable for the transfer of solid material, wherein: said first transfer port (26) of each storage vessel is constructed and arranged to be removably docked to said second transfer port (27) of the first reaction vessel RV1 (4) thereby forming a connection between both vessels; and Material can pass through the transfer ports (26, 27) when they are connected, but not when they are disconnected; The above process; iii) using an automated transport means (3) to transfer a specific storage container (1) selected from the plurality of storage containers (1) to the first reaction container RV1 (4) containing the carrier having the molecule C; iv) aligning and docking a first transfer port (26) of said storage vessel (1) with a second transfer port (27) of said first reaction vessel RV1 (4); v) opening the docked transfer ports (26, 27) and transferring the amount of building block B from the storage vessel into the first reaction vessel RV1 (4); vi) dissolving said building block B by adding a suitable solvent, thereby forming a reaction mixture containing building block B and the carrier having molecule C inside the first reaction vessel RV1 (4); vii) incubating the reaction mixture obtained in step vi) under conditions allowing the formation of a chemical bond between building block B and molecule C, forming molecule C' extended by one building block unit; viii) retaining the support bearing the extended molecule C' inside the first reaction vessel RV1(4) while purging liquid containing by-products of the coupling reaction and residual educts from the first reaction vessel RV1(4); ix) rinsing the first reaction vessel RV1 (4), including the second transfer port (27), with a solvent that may be the same or different from the solvent used in step vi); and x) preparing the carrier carrying the extended molecule C' for a next coupling using the extended molecule C' as molecule C; Including, wherein at least steps iii) to x) are a method of iterative polymer synthesis carried out at least once in an automated manner.
[0092] Preferably, in any one of the methods detailed herein, the first transfer port (26) comprises a passive part (2) of a split valve device suitable for the transfer of solid materials, and the second transfer port (27) comprises an active part (5) of said split valve device, i.e., the first transfer port (26) may be designed as the passive part (2) of a split valve device suitable for the transfer of solid materials, and the second transfer port (27) may be designed as the active part (5) of said split valve device.
[0093] Therefore, in some embodiments, the present invention provides a method for producing a pharmaceutical composition comprising the steps of: 1) providing a plurality of mobile, closable storage vessels (1), configured to allow transport by automated means (3) and each equipped with a passive part (2) of a split valve device suitable for the transfer of solid materials, wherein each storage vessel (1) contains a defined amount of a building block B in solid form to be used in one cycle of a repetitive polymer synthesis process; 2) using an automated transport means (3) to transfer a particular storage vessel (1) selected from said plurality of y storage vessels (1) to a first reaction vessel RV1 (4), said reaction vessel comprising an active part (5) of a split valve device; 3) aligning and docking the passive portion (2) of the split valve device on said storage vessel (1) with the active portion (5) of the split valve device on said first reaction vessel RV1 (4); 4) opening the split valve device (2,5) and transferring building block B from the storage vessel into the first reaction vessel RV1 (4); 5) dissolving said building block B by adding a suitable solvent, thereby forming a solution of building block B inside first reaction vessel RV1 (4); 6) The solution obtained in step 5) is transferred to a second reaction vessel RV2 (10) containing a carrier to which molecule C is tethered, thereby forming building block B i obtaining a reaction mixture containing the carrier having molecule C; 7) washing the first reaction vessel RV1 (4), including the active part (5) of the split valve device, by rinsing with a solvent which may be the same or different from the solvent used in step 5); 8) Building Block B i incubating the reaction mixture obtained in step 6) under conditions allowing the formation of a chemical bond between and molecule C, forming molecule C' extended by one building block unit; 9) retaining the support bearing the extended molecule C' inside the second reaction vessel RV2 (10) while purging liquid containing by-products of the coupling reaction and residual educts from the second reaction vessel RV2 (10); 10) preparing the carrier with the extended molecule C' for the next synthesis cycle in which the extended molecule C' is used as molecule C; and 11) undocking and removing the empty storage vessel from said first reaction vessel RV1 (4) using the automated transport vehicle (3); Including, wherein at least steps 2) to 11) are carried out at least once in an automated manner; It relates to a method for iterative polymer synthesis.
[0094] In another embodiment, the present invention relates to a method for producing a method for manufacturing a semiconductor device comprising the steps of: i) providing a plurality of mobile, closable storage vessels (1), configured to allow transport by automated means (3) and each equipped with a passive part (2) of a split valve device suitable for the transfer of solid materials, wherein each storage vessel (1) contains a defined amount of a building block B in solid form to be used in one cycle of a repetitive polymer synthesis process; ii) providing a first reaction vessel RV1 (4) containing a carrier having tethered molecule C and equipped with an active part of a split valve device (5); iii) using an automated transport means (3) to transfer a specific storage container (1) selected from the plurality of storage containers (1) to the first reaction container RV1 (4) containing the carrier having the molecule C; iv) aligning and docking the passive part (2) of the split valve device of said storage vessel (1) with the active part (5) of the split valve device of said first reaction vessel RV1 (4); v) opening a split valve device (2,5) and transferring said amount of building block B from said storage vessel into said first reaction vessel RV1 (4); vi) dissolving said building block B by adding a suitable solvent, thereby forming a reaction mixture containing building block B and the carrier having molecule C inside the first reaction vessel RV1 (4); vii) incubating the reaction mixture obtained in step vi) under conditions allowing the formation of a chemical bond between building block B and molecule C, forming molecule C' extended by one building block unit; viii) retaining the support bearing the extended molecule C' inside the first reaction vessel RV1(4) while purging liquid containing by-products of the coupling reaction and residual educts from the first reaction vessel RV1(4); ix) rinsing the first reaction vessel RV1 (4), including the active part (5) of the split valve device, with a solvent that may be the same or different from the solvent used in step vi); and x) preparing the carrier carrying the extended molecule C' for a next coupling using the extended molecule C' as molecule C; xi) undocking and removing the empty storage vessel from said first reaction vessel RV1 (4) using an automated transport vehicle; Including, wherein at least steps iii) to xi) are carried out at least once in an automated manner; A method for iterative polymer synthesis is provided.
[0095] In some embodiments, the present invention relates to a method for iterative polymer synthesis, comprising the following steps 1)-10): 1) providing a plurality of movable, closable storage vessels configured to allow transport by automated means and each equipped with a passive part of a split valve device suitable for the transfer of solid materials, each of the storage vessels containing a defined amount of a building block B in solid form to be used in one cycle of the repetitive polymer synthesis process; 2) using an automated transport means to transfer a particular storage vessel selected from the plurality of storage vessels to a first reaction vessel RV1, the reaction vessel comprising an active portion of a split valve device; 3) aligning and docking a passive portion of a split valve device on said storage vessel with an active portion of a split valve device on said first reaction vessel RV1; 4) opening a split valve device and transferring building block B from the storage vessel into the first reaction vessel RV1; 5) dissolving said building block B by adding a suitable solvent, thereby forming a solution of building block B inside first reaction vessel RV1; optionally adding one or more activating reagents to said building block B inside first reaction vessel RV1; 6) transferring the solution obtained in step 5) to a second reaction vessel RV2 containing the carrier to which the molecule C is tethered, thereby obtaining a reaction mixture containing the building block B and the carrier carrying the molecule C; 7) washing the first reaction vessel RV1 including the active parts of the split valve device by rinsing with a solvent which may be the same or different from the solvent used in step 5); 8) incubating the reaction mixture obtained in step 6) under conditions that allow the formation of a chemical bond between the building block B and the molecule C, forming a molecule C' extended by one building block unit; optionally, adding one or more activating reagents to said second reaction vessel RV2; 9) retaining the carrier having the extended molecule C' inside the second reaction vessel RV2 while purging liquid containing residual educts and by-products of the coupling reaction from the second reaction vessel RV2; 10) conditioning the carrier with the extended molecule C' for a next coupling using the extended molecule C' as molecule C; is performed at least once in an automated manner.
[0096] In a further embodiment, the present invention relates to a method for iterative polymer synthesis comprising the following steps i) to x): i) providing a plurality of mobile, closable storage vessels configured to allow transport by automated means and each equipped with a passive part of a split valve device suitable for the transfer of solid materials, each of the storage vessels containing a defined amount of a building block B in solid form to be used in one cycle of the repetitive polymer synthesis process; ii) providing a first reaction vessel RV1 equipped with the active part of a split valve device and containing a support having tethered molecule C; iii) using an automated transport means to transfer a specific storage vessel selected from the plurality of storage vessels to the first reaction vessel RV1 containing the carrier having molecule C; iv) aligning and docking a passive portion of a split valve device of said storage vessel with an active portion of a split valve device of said first reaction vessel RV1; v) opening a split valve device and transferring said amount of building block B from said storage vessel into said first reaction vessel RV1; vi) dissolving said building block B by adding a suitable solvent, thereby forming a reaction mixture containing building block B and a carrier having molecule C inside a first reaction vessel RV1; optionally adding one or more activating reagents to the contents of said first reaction vessel RV1; vii) incubating the reaction mixture obtained in step vi) under conditions allowing the formation of a chemical bond between building block B and molecule C, forming molecule C' extended by one building block unit; optionally adding one or more activating reagents to the contents of said first reaction vessel RV1; viii) retaining the carrier carrying the extended molecule C' inside the first reaction vessel RV1 while purging liquid containing by-products of the coupling reaction and residual educts from the first reaction vessel RV1; ix) rinsing the first reaction vessel RV1, including the active part of the split valve device, with a solvent which may be the same or different from the solvent used in step vi); x) preparing the carrier carrying the extended molecule C' for a next coupling using the extended molecule C' as molecule C; is performed at least once in an automated manner.
[0097] In a preferred embodiment of the above method, the plurality of movable, closable storage containers (1) comprises at least y of said movable, closable storage containers (1), where each of the y storage containers (1) contains a defined amount of a solid state building block B to be used in one cycle of the repetitive polymer synthesis process. iwhere y is an integer equal to or greater than 2 and i is a subscript ranging from 1 to y, and where y synthesis cycles are performed comprising steps 2) through 10) or iii) through x), respectively. The integer y may be equal to or greater than 3, 4, 5, 6, 8, 10, 12, 14, 16, 18, 20, 25, 30, 40, 50, or 60. In some embodiments, steps 2) through 10) or iii) through x) above are performed in an automated manner for at least two subsequent cycles of building block addition. In some embodiments, steps 2) through 7) or iii) through vii) above are performed in an automated manner for the majority of cycles of building block addition. In some embodiments, steps 2)-7) or iii)-vii) above are performed in an automated manner for each cycle of building block addition. In some embodiments, steps 2)-7) or iii)-vii) above are performed in an automated manner for all but one cycle of building block addition.
[0098] As explained above, the expression "building block" as used herein refers to a unit to be added to a polymer chain. The reference sign building block "B" has been added for ease of reading and to emphasize that the building block contained in each reservoir is specifically selected and may be the same or different from the building blocks in other reservoirs ("B i The building blocks B contained in each storage container may have a subscript i (as in iBy determining the identity of and the order in which specific reservoirs are used in the synthesis process, the sequence of the polymer to be synthesized can be determined. As used herein, the phrase "sequence of the polymer to be synthesized" can be used to refer to the order of the monomeric building blocks that make up the polymer. For example, the sequence of a peptide is generally represented by listing the amino acid residues, and the peptide is constructed from the N-terminus to the C-terminus. The building block can include a protecting group that prevents unintended side reactions of some of its functional groups. The building block can be capable of reacting with the molecule C without the addition of an additional activating reagent, as in the case of an active ester. In the case of peptide synthesis, the building block B can be an amino acid derivative. The derivative can include an N-protecting group, such as tert.butyloxycarbonyl (Boc), 9-fluorenylmethyloxycarbonyl (Fmoc), or allyloxycarbonyl (Alloc) amino protecting group, and can further exhibit appropriate side chain protecting groups. In some embodiments, the building block B can be an amino acid derivative, preferably an N-protected amino acid derivative. Suitable Fmoc amino acid derivatives for use with some embodiments of the present invention include, for example, the standard compounds Fmoc-Ala-OH, Fmoc-Arg(Pbf)-OH, Fmoc-Arg(Pmc)-OH, Fmoc-Asn(Trt)-OH, Fmoc-Asn(Mtt)-OH, Fmoc-Asp(OtBu)-OH, Fmoc-Asp(OMpe)-OH, Fmoc-Cys(Trt)-OH, Fmoc-Cys(Mmt)-OH, Fmoc-Gly-OH, Fmoc-Gl ...Asp(OtBu)-OH, Fmoc-Asp(OMpe)-OH, Fmoc-Asp(OMpe)-OH, Fmoc-Asp(OMpe)-OH, Fmoc-Asp(OMpe)-OH, Fmoc-Asp(OMpe)-OH, F These include c-Gln(Trt)-OH, Fmoc-Glu(OtBu)-OH, Fmoc-His(1-Trt)-OH, Fmoc-Ile-OH, Fmoc-Leu-OH, Fmoc-Lys(Boc)-OH, Fmoc-Met-OH, Fmoc-Phe-OH, Fmoc-Pro-OH, Fmoc-Ser(tBu)-OH, Fmoc-Thr(tBu)-OH, Fmoc-Trp(Boc)-OH, Fmoc-Tyr(tBu)-OH, and Fmoc-Val-OH, which are commercially available from a variety of sources.It should be noted that the use of non-natural amino acid derivatives, such as Aib (α-aminoisobutyric acid), Nle (norleucine), Orn (ornithine), or substituted or unsubstituted aw amino acid derivatives in general, are also encompassed by some embodiments of the methods of the invention. Depending on the synthetic strategy selected, peptide derivatives such as pseudoproline dipeptide derivatives, di- or tripeptide derivatives, or branched dipeptide derivatives may be used in place of single amino acid derivatives. As used herein, the expression "amino acid derivatives" encompasses all of the above building blocks.
[0099] According to the invention, at least a part of the building blocks B can be transferred in solid form, i.e. as powder or granules, from the storage vessel into the first reaction vessel RV1. As detailed above, this can be achieved through a suitable port, for example through a split valve device, so that no material is lost and does not contaminate the outside. The material transfer can be assisted by mechanical means, such as a vibrator applied to the port or storage vessel, and can be improved by subsequent rinsing of the storage vessel with a solvent from a suitable liquid inlet, for example by spraying the solvent into the storage vessel. It may be advantageous to control the degree / completion of the material transfer via a measuring device M, such as a weighing scale or an optical probe. For example, an automated transport means can be used to transfer each storage vessel to a weighing scale before step 2) or before step iii) to determine the first weight, and to return the storage vessel to the weighing scale after step 4) or after step v) to determine the second weight. The difference in weight indicates the mass of building blocks transferred to the reaction vessel. In another embodiment, the concentration of the building blocks B can be measured directly inside the first reaction vessel RV1 by using an optical sensor. In the case of peptide synthesis, the majority of the building blocks used are in a solid state at ambient temperature. However, the present application can be used with liquid building blocks as well. In this case, one or more reservoirs containing said liquid building blocks are added to the above-mentioned plurality of reservoirs containing building blocks in a solid state.
[0100] For example, the solvent used to dissolve building block B in step 5) or step vi) of the method of the invention may be compatible with the coupling reaction. Preferably, the solvent itself does not react with either the building blocks, molecules C or C', or any other reagents present in the coupling reaction. Preferably, building block B is readily soluble in the solvent used. For example, building block B may be soluble in the solvent at room temperature at a concentration of at least 50 mg / ml, at least 100 mg / ml, or at least 200 mg / ml. In some embodiments, the solvent used is selected from the group consisting of N-methylpyrrolidone (NMP), dimethylformamide (DMF), N-butyl-pyrrolidone (NBP), dimethylisosorbide (DMI), gamma-valerolactone (GVL), dihydrolevo-glucosenone (Cyrene), dimethylsulfoxide (DMSO), tetrahydropyran (THP), tetrahydrofuran (THF), 2-methyltetrahydrofuran (Me-THF), 1,3-dioxolane, ethyl acetate (EtOAc), dichloromethane, acetonitrile, and toluene. The solvent can be injected into the storage vessel and / or into the first reaction vessel RV1 and / or into the second reaction vessel RV2 through a suitable inlet located either in the reaction vessel or the storage vessel or in a washing device connected thereto. The dissolution of the building blocks can be facilitated by a mixing means.
[0101] As used herein, the term "support" refers to any macroscopic or molecular structure to which a molecule C can be tethered and which allows the separation of molecule C from a liquid phase. This term therefore encompasses the terms "resin" and "resin", which can be understood in the broadest sense as a particulate structure that can be used for solid-phase synthesis, in particular solid-phase peptide synthesis (SPPS). The terms "resin", "solid support" and "solid phase" are used interchangeably herein. Furthermore, the term "support" encompasses any molecular tag that allows the separation of the tag to which molecule C is tethered from the liquid phase. A typical example of this latter type of support is the Molecular Hiving TMBased on the foregoing, it will be apparent to one of skill in the art that the term "support" as used herein refers to a population of entities, such as a population of bead-like particles or a population of molecular tags, and is used in the singular for ease of reading only.
[0102] As used herein, the expression "molecule C" refers to a growing polymer chain, which is tethered to a support. Typically, molecule C corresponds to the first building block of a polymer chain at the start of the synthesis, and grows by one building block unit, e.g., one monomer unit, in each synthesis cycle. Molecule C may contain additional (side chain) protecting groups, which may be removed at the end of the synthesis. "Molecule C" is referred to in the singular form for the purposes of readability, but the skilled artisan will understand that this expression refers to a population of synthesis products, most of which exhibit the same chemical structure. Molecule C may be tethered to a support in any way. It may be attached via a covalent bond or via a non-covalent bond mediated, for example, by ionic interactions, van der Waals bonds, or hydrogen bridges. Molecule C may be tethered to a support via an affinity tag. In SPPS, a common method of tethering a growing peptide chain to a support (also known as a resin) is via a chemical bond between the C-terminal carboxyl group and the support. Alternatively, the peptide may be attached to the resin via the side chain of a (preferably terminal) amino acid.
[0103] SPPS is generally performed in gel phase rather than on a solid support. Suitable resins can be based on polystyrene, polystyrene-PEG composites, PEG, PEGA, crosslinked ethoxylate acrylate (CLEAR), polyamides, polydimethylacrylamide, or any other support with the desired physical and chemical properties. Resins based on beaded polystyrene with 1% divinylbenzene typically have a size distribution of 200-400 mesh or 100-200 mesh, among the supports that are routinely used. Polystyrene-based 4-alkoxybenzyl alcohol (Wang) resin, diphenyldiazomethane (PDDM) resin, 4-(2',4'-dimethoxyphenyl-Fmoc-aminomethyl)-phenoxymethyl-polystyrene (Rink) resin, 2-methoxy-4-alkoxybenzyl alcohol (Sasrin) resin, 2-chlorotrityl chloride (CTC), and CTC-amidomethyl resins are particularly suitable and are commercially available from sources such as Sigma-Aldrich, Bachem, and EMD Millipore. However, any other resin suitable for SPPS may be used. The resin is typically swollen in a suitable solvent for use in SPPS. In some embodiments, in step 7) or step ii) of the method according to the present invention, the support having molecule C may be provided as a discharged cake or as a slurry of swollen beads inside the reaction vessel; or as a solution of the support having molecule C in a suitable solvent.
[0104] In some embodiments, the method includes adding an activating reagent and / or additive to the first reaction vessel RV1 and / or reaction vessel RV2 that facilitates the coupling reaction. For example, the activating reagent and / or additive can be added after step 5) and / or during step 8) of the above method. As a further example, the activating reagent and / or additive can be added after step vi) and / or during step vii) of the above method. For peptide synthesis, common activation reagents and additives include, among others: N,N'-diisopropylcarbodiimide (DIC) with either OxymaPure® or hydroxybenzotriazole (HOBt); (benzotriazolyl)tetramethyluronium tetrafluoroborate (TBTU) or DEPBT and one or more bases, preferably N,N-diisopropylethanolamine (DIPEA); (7-azabenzotriazolyl)tetramethyluronium tetrafluoroborate (TATU) and DIPEA; (benzotriazol-1-yl)tetramethyluronium hexafluorophosphate (HBTU) and DIPEA; and O-(7-azabenzotriazolyl)-tetramethyluronium hexafluorophosphate (HATU) and DIPEA. These reagents can be pumped into the reaction vessels RV1 and / or RV2 in the form of liquid stock solutions, preferably via automated pumps. -Alternatively, these reagents may be added in solid form from additional storage vessels via material transfer ports of reaction vessels RV1 and / or RV2. The skilled artisan will appreciate that for each synthesis cycle, different activation reagents and additives may be used and that a wide range of incubation times (e.g., from a few minutes to a few hours) and temperatures (e.g., from 15 to 90°C) may be suitable for the coupling reaction to occur. The skilled artisan will optimize and select the specific coupling conditions depending on the task at hand. The skilled artisan will immediately appreciate that, depending on the synthesis strategy selected, the coupling reaction may occur in suspension, emulsion, or homogeneous solution.
[0105] In step 7), washing of the first reaction vessel RV1 may be performed. Preferably, this step includes a thorough rinsing with a solvent and removal of traces of building blocks from the transfer port, as detailed above with respect to the apparatus for performing iterative polymer synthesis. As detailed above with respect to the apparatus, rinsing of the transfer port of the first reaction vessel may occur either by solvent injected into an empty storage vessel or by using a washing device. The washing device may be transferred to the transfer port to be washed using an automated transport means. The washing of the first reaction vessel RV1 may be performed in parallel with step 8). In some embodiments in which the chain extension reaction takes place inside the first reaction vessel RV1, step ix), i.e. the washing of the first reaction vessel RV1, including the active part of the split valve device, with a solvent may also include removal of traces of building blocks from the transfer port, as detailed above with respect to the apparatus for performing iterative polymer synthesis. In such an embodiment, the washing liquid also contacts the extended molecule C' and / or the (yet) not extended molecule C with the support.
[0106] Step 10) or x) of the method, i.e. the step of conditioning the support with an extended molecule C', may comprise rinsing the support with the extended molecule C' to remove any reagents or to reduce the concentration of any reagents used in the previous round of building block addition. Optionally, step 10) or x) of the method may comprise capping of unreacted molecules C, for example by acylation. The addition of capping reagents to the reaction vessel containing the molecule C, and the subsequent removal of these reagents from the reaction vessel, may be accomplished in an automated manner by valves and pumps under the control of the control unit CU1. In general, the step of conditioning the support with an extended molecule C' may further comprise removing protecting groups from the molecule C' to prepare it for the next round of building block addition. For example, in the case of Fmoc SPPS, the Fmoc group may be cleaved by treatment with a base. Well-known bases for this purpose include, for example, secondary amines such as piperidine and 4-methylpiperidine. Suitable solvents include, for example, DMF, NMP, dimethylsulfoxide, dichloromethane, tetrahydrofuran, acetonitrile, toluol, and mixtures thereof. Those skilled in the art will appreciate that a wide range of incubation times (e.g., from a few minutes to a few hours) and temperatures (e.g., from 15 to 90° C.) can be used. After removal of the protecting groups, the support bearing the extended deprotected molecule C′ can be separated from the cleavage reagent and rinsed again with solvent. Again, the addition of the cleavage reagent to the reaction vessel containing molecule C′, and the subsequent removal of these reagents from the reaction vessel, can be accomplished in an automated manner by valves and pumps under the control of control unit CU1.
[0107] Step 11) or step xi) may be performed at various times in the synthesis cycle, for example step 11) may be performed after step 4) or step xi) may be performed after step v), or step 11 may be performed after step 10) or step xi) may be performed after step x) if the solvent for the rinsing step is introduced via a liquid inlet of the storage vessel.
[0108] Transfer of storage containers to and from reaction vessel RV1, as well as alignment, docking and undocking of ports, are performed by automated transport means and / or elements provided in the port itself, as described above with respect to the apparatus of the present application.
[0109] After the end of chain elongation, the synthesized polymer can be removed from the support, for example, by cleavage of a chemical bond. At the same time, or as a consequence, any other protecting groups contained in the synthesized polymer can be removed. These steps can likewise be carried out using the device according to the present application, either in an automated manner or under human control. In the case of peptides, this can include, for example, incubating the peptide-resin conjugate in a cleavage cocktail comprising an aqueous solution of trifluoroacetic acid and a scavenger. The polymer can then be separated from the support (for example, by collecting the liquid that flows out from the resin), optionally modified (for example, by the introduction of a disulfide bond), isolated, and optionally subjected to further purification steps.
[0110] The following figures and examples, including the experiments performed and results achieved, are provided for illustrative purposes only and should not be construed as limiting the scope of the claims. It should be noted that the embodiments described throughout this document can be widely combined with each other. EXAMPLES
[0111] Example 1: Fluidity and solubility of amino acid derivatives The flowability of 15 samples of amino acid powders was tested. The flowability of each powder in the unconfined state was evaluated by powder flow analysis in a rotating drum ("revolution analyzer"), by testing the mass flow through a funnel and by determining the angle of repose. The latter two measurements were performed according to chapter 1174 of the United States Pharmacopeia. The flowability of the samples in the confined state was analyzed by measurements with an annular shear cell and by using the Evolution Powder Tester device by PS Prozesstechnik GmbH, Basel. In these tests, the samples were first compacted using different pre-consolidation forces.
[0112] In the tests without confinement, Fmoc-Cys(Trt)-OH and Fmoc-Met-OH consistently stood out as good fluidity, and the fluidity parameters for Fmoc-Gly-OH were similarly good. On the other hand, poor fluidity parameters were determined for Fmoc-Ala-OH and Fmoc-Pro-OH. Interestingly, in the tests with confinement, Fmoc-Cys(Trt)-OH and Fmoc-Pro-OH consistently stood out as good fluidity. Intermediate values were determined for Fmoc-Ala-OH, whereas Fmoc-Gly-OH and Fmoc-Lys(Boc)-OH consistently stood out as poor fluidity. This may indicate that Fmoc-Gly-OH may lose its fluidity upon compression. On the other hand, compression may have destroyed the masses in the Fmoc-Pro-OH sample, thereby increasing its fluidity.
[0113] The concentrations of the same amino acids in saturated solutions of dimethylformamide at room temperature were determined by analytical reversed-phase ultra-high pressure liquid chromatography and ranged from less than 200 mg / ml for Fmoc-Pro-OH to more than about 400 mg / ml for Fmoc-Ala-OH to more than 600 mg / ml for Fmoc-Gly-OH.
[0114] Example 2: Transport of Amino Acid Derivative Powder Through a Split Valve Device Fmoc-Ala-OH and Fmoc-Gly-OH were chosen as test substances due to their poor fluidity as revealed by previous experiments.
[0115] 2 kg of amino acid derivative powder was filled into a 25 l storage vessel made of stainless steel. The storage vessel was closed by a DN100 split valve device, i.e. the passive part of the split valve device with an inner opening of approximately 10 cm. The active part of the split valve device was docked and a transparent bag was attached to it. The split valve device was manually opened and the powder flow was observed visually through the transparent bag. A pulsatile vibrator was used on the active part of the split valve device to promote the powder flow. The powder transfer was completed within a maximum time of 5 minutes. The valve was opened and a visual inspection was performed. White powder residues were observed on the walls of the vessel and the valve, as well as on the valve flaps.
[0116] Approximately 20 liters of dimethylformamide was then rinsed through a fixed spray ball, which was located inside the reservoir opposite the split valve device and connected to the solvent line. Visual inspection was repeated after rinsing. No residue was observed.
[0117] These findings demonstrate that powder transfer can be achieved in a reasonable period of time and that efficient rinsing of the split valve device is possible, and therefore can be considered as a proof of concept for the present invention.
[0118] List of reference symbols 1. Storage container 2 Passive part of the split valve device 3 Automated transportation 4. First Reaction Vessel RV1 5 Active part of the split valve device 6 Liquid connection lines 7 Control unit CU1 8 liquid inlet 9 Mobile Solvent Lines 10 Second reaction vessel RV2 11 Fluid Line 12 Discharge pipe 13 Waste Line 14 Mixed Devices 15 Separation means 16 Sensors 17 Cleaning Devices 18 Device for monitoring material transfer M 19 Heating / Cooling Devices 20 Devices for controlling liquid flow 21 Connection to protective gas supply 22 Connection to vacuum source 23 Pressure control device 24 Grasping Device 25 Gripper plate 26 First solid material transfer port 27 Second solid material transfer port 28 Rinsing means 29 Liquid Port [Brief description of the drawings]
[0119] [Figure 1]Figure 1 shows a basic arrangement of some embodiments according to the invention. From a number of said storage vessels, an automated transport means (3) selects a storage vessel (1) equipped with a passive part (2) of a split valve device. The automated transport means (3) transfers said storage vessel (1) to a first reaction vessel RV1 (4) and aligns the passive part (2) of the split valve device with the active part (5) of said split valve device on the first reaction vessel RV1. The active and passive parts (2, 5) of the split valve device are docked and the valves are opened to allow the transfer of solid material from the storage vessel (1) into the first reaction vessel RV1 (4). After transfer, the split valve device is closed and undocked and the storage vessel (1) is transported away from the first reaction vessel RV1 (4). Liquid can be added to the first reaction vessel RV1 (4) via liquid line (11) and is discharged via line (6). A device (20) for controlling the liquid flow is integrated into the liquid line (6). The device (20) for controlling the liquid flow is constructed, for example, as a valve. The operation of the automated vehicle (3), the docking / undocking of the split valve device and the opening and closing of the split valve device are controlled by a control unit CU1 (7). [Diagram 2] 2 shows various embodiments of the automated transport means (3): a) the automated transport means (3) comprises a conveyor system, where the individual storage containers (1) are transported along rails to and from a docking position above the first reaction vessel RV1 (4); b) the automated transport means (3) comprises a "carousel-type" conveyor system, where the individual storage containers (1) are transported by rotation of wheels to and from a docking position above the first reaction vessel RV1 (4); c) the automated transport means (3) comprises a robotic arm, which engages with the individual storage containers (1) via a gripping device (24) and transfers them to and from a docking position above the first reaction vessel RV1 (4). [Diagram 3]Figure 3 shows an embodiment of the device according to the invention, comprising one first reaction vessel RV1 (4) connected to a second reaction vessel RV2 (10) via a liquid connection line (6). A device (20) for controlling the liquid flow is integrated into the liquid connection line (6). The reservoir (1) with the passive part of the split valve device (2), the automated transport means (3) and the first reaction vessel RV1 (4) with the active part of the split valve device (5) are as described with reference to figure 1. A cleaning device (17) makes it possible to clean the active part (5) of the split valve device on the first reaction vessel RV1 (4). The first reaction vessel RV1 (4) and the second reaction vessel RV2 (10) each comprise a connection (21) to a source of protective gas, a pressure control device (23) and a connection (22) to a vacuum source. Various liquid lines (11) make it possible to add solvents and liquid reagents. The liquid flow from the first reaction vessel (4) to the second reaction vessel RV2 (10) can be driven by any suitable means, for example by overpressure applied to the first reaction vessel RV1 (4), by gravity, by a vacuum applied to the second reaction vessel RV2 (10), or by a pump [not shown]. The liquid can be discharged from the second reaction vessel RV2 (10) via a discharge pipe (12), in which a device (20) for controlling the liquid flow is incorporated. The control unit CU1 (7) controls at least the operation of the operation of the automated transport means (3), the docking / undocking of the split valve device, the opening and closing of the split valve device, the device (20) for controlling the liquid flow, and the washing device (17). The control unit CU1 (7) can further control the injection of solvents and reagents via the liquid line (11), the setting of the pressure control device (23), the flow of protective gas into the reaction vessels RV1 and RV2, and / or the vacuum suction applied to the reaction vessels RV1 and RV2. [Figure 4]Figure 4 shows an embodiment of an apparatus according to the invention, comprising three separate synthesis lines, each including one first reaction vessel RV1 (4) connected to a second reaction vessel RV2 (10). A single automated transport means (3) allows a selected storage vessel (1) to be moved to a selected first reaction vessel RV1 for docking and material transfer. The other elements of the drawing are as described with reference to Figure 3. This embodiment of the apparatus thus allows three independent and different synthesis reactions to be carried out in parallel. [Diagram 5]Figure 5 shows another embodiment of the device according to the invention. Each storage vessel (1) is provided with a liquid inlet (8) which feeds the rinsing means (28) in the storage vessel (1). A mobile solvent line (9) can be connected to the liquid inlet (8) of any storage vessel (1). Furthermore, a liquid line (11) is connected to the liquid inlet (8) which feeds the rinsing means inside the first reaction vessel RV1 (4) and inside the second reaction vessel RV2 (10), respectively. A further liquid port (29) is provided on the first reaction vessel RV1 (4). This can allow connection to incoming or outgoing lines. Both reaction vessels (4, 10) further comprise a mixing device (14) - for example an agitator -, sensors (16) - for example temperature sensors, pressure sensors, level sensors, turbidity sensors, optical sensors, conductivity sensors, impedance sensors, and heating / cooling devices (19); the second reaction vessel RV2 (10) further comprises a separation means (15) installed in the lower part of the vessel. This separation means (15) may allow to separate the supports with the growing polymer chains from the remaining components of the reaction mixture by retaining them inside the second reaction vessel RV2 (10) while discharging the majority of the other components via the discharge pipe (12). A washing device (17), which in this embodiment comprises the passive part (2) of the split valve device, allows to wash the active part (5) of the split valve device on the first reaction vessel RV1 (4). The liquid used for the washing process may be discharged via a waste line (13). A monitoring device (18) - for example a weigh scale - makes it possible to verify whether the material transfer from the storage vessel (1) to the first reaction vessel RV1 (4) is sufficiently completed or not. The other elements of the drawing are as described with reference to FIG. [Figure 6]Figure 6 shows an embodiment of the device according to the invention with two first reaction vessels RV1 (4) respectively connected to two second reaction vessels RV2 (10). A single automated transport means (3) allows moving a selected storage vessel (1) to a selected first reaction vessel RV1 (4) for docking and material transfer. The other elements of the drawing are as described with reference to Figure 3. This embodiment of the device thus allows two independent and different synthesis reactions to be carried out in parallel. Moreover, the two first reaction vessels RV1 (4) can be used in parallel to produce building block solutions that are added to the same second reaction vessel RV2 (10). [Figure 7] FIG. 7 shows another embodiment of the device according to the invention, which comprises a plurality of storage vessels (1), each with a first solid material transfer port (26) and an optional gripper plate (25). The automated transport means (3) selects a storage vessel (1), transfers it to the first reaction vessel RV1 (4) and aligns the first solid material transfer port (26) of the storage vessel with the second solid material transfer port (27) on the first reaction vessel RV1 (4). The solid material transfer ports (26, 27) are docked together and then opened to allow the passage of solid material from the storage vessel (1) to the first reaction vessel RV1 (4). After transfer, the solid material transfer ports (26, 27) are closed to undock the vessel and transport the storage vessel (1) away from the first reaction vessel RV1 (4). Liquid can be drained from the first reaction vessel RV1 (4) via the liquid connection line (6). A device (20) for controlling the liquid flow is integrated into the liquid connection line (6). The operation of the automated transport means (3), the docking / undocking of the solid material transfer ports (26, 27) and the opening and closing of the solid material transfer ports (26, 27) are controlled by a control unit CU1 (7). In the illustrated embodiment, the first reaction vessel RV1 (4) further comprises an optional mixing device (14) and an optional separating means (15) located in the lower part of the vessel.
Claims
1. The following steps 1) to 11): 1) providing a plurality of mobile, closable storage vessels (1), configured to allow transport by automated means (3) and each equipped with a first transfer port (26) suitable for the transfer of solid material, wherein each storage vessel (1) contains a defined amount of a building block B in solid form to be used in one cycle of an iterative polymer synthesis process; 2) using an automated transport means (3) to transfer a particular storage vessel (1) selected from said plurality of storage vessels (1) to a first reaction vessel RV1 (4), said reaction vessel comprising a second transfer port (27) suitable for the transfer of solid material, wherein: said first transfer port (26) of each storage vessel is constructed and arranged to be removably docked to said second transfer port (27) of the first reaction vessel RV1 (4) thereby forming a connection between both vessels; and Material can pass through the transfer ports (26, 27) when they are connected, but not when they are disconnected; The above process; 3) aligning and docking a first transfer port (26) on the storage vessel (1) with a second port (27) on the first reaction vessel RV1 (4); 4) opening the docked transfer ports (26, 27) and transferring building block B from the storage vessel into the first reaction vessel RV1 (4); 5) dissolving said building block B by adding a suitable solvent, thereby forming a solution of building block B inside first reaction vessel RV1 (4); 6) transferring the solution obtained in step 5) to a second reaction vessel RV2 (10) containing a carrier to which molecule C is tethered, thereby obtaining a reaction mixture containing building block Bi and a carrier carrying molecule C; 7) washing the first reaction vessel RV1 (4), including the transfer port (27), by rinsing with a solvent which may be the same or different from the solvent used in step 5); 8) carrying out step 6 under conditions that allow the formation of a chemical bond between the building block Bi and the molecule C, forming a molecule C' extended by one building block unit; incubating the reaction mixture obtained in 9) retaining the support bearing the extended molecule C' inside the second reaction vessel RV2 (10) while purging liquid containing by-products of the coupling reaction and residual educts from the second reaction vessel RV2 (10); 10) preparing the carrier with the extended molecule C' for the next synthesis cycle in which the extended molecule C' is used as molecule C; and 11) undocking and removing the empty storage vessel from said first reaction vessel RV1 (4) using an automated transport vehicle (3); 1. A method for iterative polymer synthesis comprising: The above method, wherein at least steps 2) through 11) are performed at least once in an automated manner.
2. The following steps i) to xi): i) providing a plurality of mobile, closable storage vessels (1), configured to allow transport by automated means (3) and each equipped with a first transfer port (26) suitable for the transfer of solid material, wherein each storage vessel (1) contains a defined amount of a building block B in solid form to be used in one cycle of an iterative polymer synthesis process; ii) providing a first reaction vessel RV1 (4), said reaction vessel containing a carrier to which molecule C is tethered and equipped with a second transfer port (27) suitable for the transfer of solid material, wherein: said first transfer port (26) of each storage vessel is constructed and arranged to be removably docked to said second transfer port (27) of the first reaction vessel RV1 (4) thereby forming a connection between both vessels; and Material can pass through the transfer ports (26, 27) when they are connected, but not when they are disconnected; The above process; iii) using an automated transport means (3) to transfer a specific storage vessel (1) selected from the plurality of storage vessels (1) to the first reaction vessel RV1 (4) containing the carrier having the molecule C; iv) aligning and docking the first transfer port (26) of said storage vessel (1) with the second transfer port (27) of the first reaction vessel RV1 (4); v) opening the docked transfer port (26, 27) and transferring the amount of building block B from the storage vessel into the first reaction vessel RV1 (4); vi) dissolving said building block B by adding a suitable solvent, thereby forming a reaction mixture containing building block B and the carrier carrying molecule C inside first reaction vessel RV1 (4); vii) incubating the reaction mixture obtained in step vi) under conditions allowing the formation of a chemical bond between building block B and molecule C, forming molecule C' extended by one building block unit; viii) retaining the support bearing the extended molecule C' inside the first reaction vessel RV1(4) while purging liquid containing by-products of the coupling reaction and residual educts from the first reaction vessel RV1(4); ix) rinsing the first reaction vessel RV1 (4), including the second transfer port (27), with a solvent which may be the same or different from the solvent used in step vi); x) preparing the carrier with the extended molecule C' for the next coupling using the extended molecule C' as molecule C; and xi) undocking and removing the empty storage vessel from said first reaction vessel RV1 (4) using an automated transport vehicle (3); 1. A method for iterative polymer synthesis comprising: The above method, wherein at least steps iii) to xi) are performed at least once in an automated manner.
3. 3. The method according to claim 1 or 2, wherein the first transfer port (26) comprises a passive part (2) of a split valve device suitable for the transfer of solid material, and the second transfer port (27) comprises an active part (5) of said split valve device.
4. The plurality of movable closable storage containers (1) includes at least y movable closable storage containers (1), where each of the y storage containers (1) contains a defined amount of a building block B in solid form to be used in one cycle of the repetitive polymer synthesis process. i where y is an integer equal to or greater than 2, and i ranges from 1 to y. The method of any one of claims 1 to 3, wherein y is a range of subscripts and wherein y synthesis cycles are performed, each comprising steps 2) to 11) or iii) to xi).
5. The method according to any one of claims 1 to 4, further comprising the step of adding an activating reagent to the solution of step 5) or to the solution of step vi) in at least one synthesis cycle.
6. 6. The method according to any one of claims 1 to 5, further comprising the step of determining, using a device M, the amount of building block B transferred from the storage vessel (1) into the first reaction vessel RV1 (4).
7. 1. An apparatus suitable for performing iterative polymer synthesis comprising: a) a plurality of movable, closable storage containers (1), configured to allow transport by automated means (3) and each comprising a first transfer port (26) suitable for the transfer of solid materials and a liquid inlet (8) allowing connection to a mobile solvent line (9); b) at least one first reaction vessel RV1 (4) equipped with a second transfer port (27) suitable for the transfer of solid material and a liquid inlet (8) allowing connection to a liquid line (11), wherein: said first transfer port (26) of each storage vessel is constructed and arranged to be removably docked to said second transfer port (27) of the first reaction vessel RV1 (4) thereby forming a connection between both vessels; and Material can pass through the transfer ports (26, 27) when they are connected, but not when they are disconnected; at least one first reaction vessel RV1 (4); c) an automated transport means (3) suitable for moving a defined sequence of individual storage vessels (1) to and from a specific first reaction vessel RV1 (4), where the automated transport means (3) is capable of aligning said transfer ports (26) on the storage vessels (1) with said transfer ports (27) on the first reaction vessel RV1 (4) with sufficient precision to enable their docking with each other; and d) at least one control unit CU1 (7) for controlling the operation of said automated vehicle (3), the docking of said ports (26, 27) and the opening and closing of said ports; Equipped with Apparatus, characterized in that it is adapted to carry out the method according to any one of claims 1 to 6.
8. 8. The apparatus according to claim 7, wherein the first transfer port (26) comprises a passive part (2) of a split valve device suitable for the transfer of solid material and the second transfer port (27) comprises an active part (5) of said split valve device.
9. 9. Apparatus according to claim 7 or 8, wherein the automated transport means comprises a robot or a conveyor device.
10. An apparatus according to any one of claims 7 to 9, wherein the automated transport means comprises a robotic arm equipped with a gripping device (24).
11. Apparatus according to any one of claims 7 to 10, further comprising a device M (18) for monitoring the extent of material transfer from the storage vessel to the first reaction vessel RV1 (4).
12. 12. Apparatus according to any one of claims 7 to 11, further comprising at least one cleaning device (17) for the active part (5) of the split valve device of the first reaction vessel RV1 (4), wherein the operation of the cleaning device is controlled by a control unit CU1 (7).
13. e) at least one second reaction vessel RV2 (10) connected to at least one of the one or more first reaction vessels RV1 (4); f) a device (20) for controlling liquid flow from said first reaction vessel RV1 (4) into said connected second reaction vessel RV2 (10), said device (20) being controlled by a control unit CU1 (7); The apparatus of any one of claims 7 to 12, further comprising:
14. 14. The apparatus according to claim 13, further comprising a waste line (13) allowing liquid to flow out of the first reaction vessel RV1 (4) and from the liquid connection line (6) connecting the first reaction vessel RV1 (4) to the second reaction vessel RV2 (10) without passing through the second reaction vessel RV2 (10).
15. 15. The apparatus of claim 13 or 14, comprising n first reaction vessels RV1 (4) and m second reaction vessels RV2 (10), where n and m are integers independently selected from the range of 1 to 10.
16. 16. Apparatus according to any one of claims 7 to 15, comprising at least one reaction vessel RV1 (4) or RV2 (10), said reaction vessel further comprising one or more elements independently selected for each reaction vessel from the group consisting of a sensor (16), a heating and / or cooling device (19), a mixing device (14), a liquid line (11), a liquid port (29), a means for rinsing the inner walls of the reaction vessel (28) and a means for separating the supports with the growing polymer chains from the remaining components of the reaction mixture (15).
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