The present application for patent of invention aims to provide a process for obtaining porous hollow fibers or fibers with molecularly imprinted spheres therein and a modular device made by the resulting fibers.
To carry out the hemopurification processes, devices formed by natural polymer matrices are known such as starch, cellulose, cellulose triacetate, that the material which they are formed offer advantages of biocompatible, non-toxic neutral matrices. However, they have the limitation that devices formed by them lack a mechanical stability with a continuous flow passing through it.
Devices are also known formed by synthetic matrices as polyether oxide, polysulfones, SPAN-80, polymethyl methacrylate, polyacrylonitrile; provide devices with a higher mechanical stability than devices formed by natural matrices. However, their hydrophilicity to the molecules of the blood proteins is limited.
As examples of synthetic devices it can mention:
That disclosed in JP2006230459A2 entitled POLYSULFONE HOLLOW FIBER MEMBRANE BUNDLE HAVING PERMSELECTIVITY AND BLOOD PURIFIER. This module of porous polysulfone Membranes provides Permeo-selectivity and containing polyvinylpyrrolidone (PVP). The present invention proposes to provide a process for obtaining hollow fibers with molecularly imprinted spheres embedded therein, comprising a natural matrix such as molecularly imprinted spheres with a synthetic matrix in the form of hollow porous fibers. The present invention has a modular device formed by the resulting fibers, wherein said fibers allow to have a higher mechanical stability than those of commercially available synthetic fibers, because in its interior comprises molecularly imprinted spheres, whereby it is possible to have a higher stability thereof to the passage of fluid; added to this, the conformation described allows to increase the internal surface area, thus achieving a higher retention of molecules of interest. As compared to patent JP2006230459A2, it is only given by a single module.
In the present invention, the modular device formed by hollow porous fibers embedded with molecularly imprinted spheres has structural stability and gives a superior support to the fibers, from the membrane embedded with spheres.
The present patent application provides a process for obtaining porous hollow fibers with and molecularly imprinted spheres embedded therein, for filtering and/or separation of macromolecules suspended in liquids, the process is represented in block diagram in
The doping solution contains a plurality of molecularly imprinted microspheres dissolved in a solvent such as: n-methyl pyrrolidone, concentrated or dilute acetone between 1-2 M and possible combinations between them.
The pore-forming solution comprising Polyethersulfone (PES) and polyether glycol (PEG) dissolved in a ratio ranging from 1:2 to 1:3.
Each of the solutions is stored independently and its inflow in the extruder die (5) is regulated by pumps (6) so that it reaches the ideal operating conditions of temperature in the range of 40° C.-70° C. and 20-30 Pascal of pressure for extrusion conditions on the die. The inflow is preferred in the range of 3-5 mL/sec,
In
It is important to note that the resulting hollow porous fibers increase the purification of a particular sample, because they have the capacity to retain a molecule of interest, because this increases the internal surface, and this encourages a higher fluid contact and thus an increased retention of said molecule.
Further, the microspheres embedded in the fibers will provide rigidity to the fiber, which resists passage of a fluid without suffering folds.
It is important to note that elongation and tensile strength tests of the fibers were determined with and without embedded microspheres. See Table 1.
The tests of elongation and tension of the fibers with molecularly imprinted spheres embedded were carried out using samples (50×10 mm) in LTS-500N-S20 tensile and compression test machine (Minebea, Kanagawa, Japan) which is a universal measuring machine equipped with a cell of 2.5 kN. The strips 50 mm length and 10 mm wide were cut from the principal samples with a cutter. A sample set, for those having molecularly imprinted spheres and do not, and each set was repeated 3 times. Only samples in which the cutting was made near the length measurement were considered for calculation of tensile strength. The value of the tensile strength (N/mm2) and the elongation (%) were calculated using the following equations:
With the results obtained, it is shown that the fibers with embedded micro spheres give a higher stability to the fibers, which increases their deformation capability and prevents the fracture thereof during the passage of the sample.
With the resulting hollow fibers with the above described process, a filtering Module (12) formed by:
A first filter (9) closing the upper end of a cylindrical container (10) that in its interior comprises a plurality of parallel hollow porous fibers and arranged longitudinally, and closing the lower end of the container is a second filter (11).
Particularly, the first filter (9) has a higher pore size than the pore size of the second filter (11), so that by passing a solution containing macromolecules suspended by the module (12), the larger macromolecules than the pore size of the filter are retained, and the smaller ones pass, being retained those having a size that matches the pores of the fibers and the size of the imprints of the spheres, and the smaller ones are released and leave the second filter (11) whose pore size is less than the pore size of the hollow fiber and molecularly imprinted spheres embedded therein. In another preference, the pore size of the first (9) and second filter (11) of the same module (12) may be the same, and since that the modules (12) are coupled together, the second filter (11) of a Module corresponds to the first filter (9) of a Module that follows it.
Note that the size of the pores of the hollow fibers and the size of the sphere imprints are coincident, because through these is that they retain a particular macromolecule whose size coincides with the pore size of the hollow fibers.
Note that the first (9) and second filter (11) has the same diameter and close the ends of the cylindrical container (10). Both the first filter (9) and second filter (11) have an input, through which the sample supplies uniformly to the filter and passes the cylindrical container (10).
The cylindrical container (10), has a plurality of hollow porous fibers (13) arranged in parallel and vertically to its axis, obtained as described above.
The resulting fibers in the above described process, are attachable together to form a modular device (14), all modules (13) optionally having of the same device the same characteristics or the pore sizes of the second filters gradually decrease as the number of modules increases that forms the device.
The method of operating the filtering modular device (14) comprises:
Number | Date | Country | Kind |
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MX/A/2012/013984 | Nov 2012 | MX | national |
This patent application is a national phase filing under section 371 of PCT/MX2013/000152, filed Nov. 28, 2013, which claims the priority of Mexican patent application MX/a/2012/013984, filed Nov. 30, 2012, each of which is incorporated herein by reference in its entirety.
Filing Document | Filing Date | Country | Kind |
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PCT/MX2013/000152 | 11/28/2013 | WO | 00 |