Methods for reducing microbial contamination
A chemical disinfection method using solvent vaporization within container systems addresses the challenge of sterilizing complex, enclosed spaces with sensitive contents by minimizing wall heating and ensuring thorough pathogen reduction and process control.
Patent Information
- Application Number
- JP2020536228
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2017-12-27
- Filing Date
- 2018-12-17
- Publication Date
- 2025-12-15
- Estimated Expiration
- 2038-12-17
AI Technical Summary
Existing methods for sterilizing complex, enclosed spaces within container systems with sensitive contents are inadequate due to temperature sensitivity, shadowing effects, and the need for complex shielding, making thermal and radiation treatments ineffective.
A chemical disinfection method using a disinfecting solvent introduced into the space, which is heated by energy sources to vaporize and distribute within the space, allowing for chemical alteration and decomposition of the solvent without significantly heating the container walls, using microwave or radio frequency dielectric heating.
Achieves effective sterilization of complex geometries with minimal impact on contents, ensuring thorough coverage of hard-to-reach areas and allowing for real-time monitoring and control of the sterilization process.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for reducing microbial contamination within an enclosed space formed by at least two interconnected components. [Background technology]
[0002] In the context of the present invention, "microbial contamination," or "pathogens" for short, refers to contamination, also referred to as bioburden in English, particularly by bacteria, yeasts, fungi, and viruses. When forming containers, especially plastic containers, for food, cosmetics, or for medical purposes (especially parenteral), or artificial nutrition, the microbiological quality of the space within the container or container system before filling and / or use is crucial. This requires reducing microbial contamination. As described in Patent Document 1, in the prior art, when forming empty, closed containers for pharmaceutical purposes, sterilization of the empty container interior is achieved by autoclaving or by radiation sterilization. To avoid ozone formation during radiation sterilization, the container must be filled with an inert gas, such as nitrogen or argon. This method presupposes a container material with stable radiation or a sufficiently stable temperature for autoclaving.
[0003] Even glass requires chemical stability through the addition of cerium oxide (Patent Document 2). This method is not suitable for container systems in which at least part of the system already contains sensitive materials and other parts are left unfilled. Such container systems include, for example, multi-chamber containers such as double-chamber syringes, or even infusion bottles with attached caps. Containers of this type, formed according to the known Blow-Fill-Seal (BFS) method, are described in detail in the standard DIN ISO 15759.
[0004] In these container systems, it is necessary to reliably sterilize the enclosed, empty, complexly shaped gap (referred to here as "space" for short) between the head of a filled infusion bottle and its cap without adversely affecting the temperature-sensitive contents inside the bottle, such as an amino acid solution. In such cases, conventional terminal sterilization, typically performed by autoclaving at temperatures exceeding 100°C for standard infusion solutions such as 0.9% saline solution, is impossible. Radiation sterilization of the empty space using electron beam or gamma radiation requires extremely complex and expensive shielding of the filled container to prevent damage to the contents by irradiation. Thermal treatment of the empty space, e.g., with infrared radiation, laser radiation, or the like, to achieve significant thermal microbial reduction is impossible due to the poor temperature stability of commonly used container materials, such as low-density polyethylene or polypropylene. Due to the complex geometry of the enclosed space and the resulting shadowing effects, direct irradiation with light or light pulses is generally inadequate to reliably reach all surfaces for microbial reduction. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] DE 19812057(A1) [Patent Document 2] European Patent Application Publication No. 0858975(A1) Summary of the Invention [Problem to be solved by the invention]
[0006] In view of these problems, the object of the present invention is to provide a simple and rapid method that makes it possible to significantly reduce the number of microbiological contaminants on the inner surfaces of microbiologically tight enclosed spaces with complex geometries and small volumes, and preferably to sterilize spaces of a container system, in particular spaces adjacent to spaces filled with liquids or solids. [Means for solving the problem]
[0007] According to the present invention, this problem is solved by the method set forth in claim 1. According to this method, so-called "chemical disinfection" is performed, in which a disinfecting solvent is introduced into the space. In the simplest case, if the solvent is introduced before the space is closed, the disinfecting effect is brought about in the space by the solvent without the need for additional external energy supply.
[0008] Enhanced germicidal action can occur when the solvent is exposed to the action of an energy source within the space.
[0009] A disinfecting fluid can be introduced into the space, particularly preferably as a solvent.
[0010] Preferably, the fluid is at least partially transitioned from a liquid phase to a gaseous phase by heating with an energy source.
[0011] The energy supply allows the fluid to at least partially vaporize, resulting in a distribution of fluid and fluid vapor within the space to be sterilized.
[0012] If the energy for heating is introduced in the form of radiation pulses, particularly rapid evaporation and homogeneous distribution of the fluid and fluid vapor is obtained.
[0013] Preferably, the energy supply and fluid are selected such that the fluid is at least partially chemically altered or decomposed during the time it resides in the space.
[0014] The fluid can be held in the space for a residence time that allows the concentration of the fluid or its decomposition products to at least partially decrease by permeation from the space. Preferably, the time course of the change in the concentration of the fluid and / or its decomposition products in the space is tracked by a spectroscopy method. For this purpose, preferably an infrared spectroscopy, particularly preferably a laser absorption spectroscopy, is used.
[0015] Particularly preferably, evaporation of the fluid is achieved by direct dielectric heating of the fluid without substantial heating of the walls that define the space. This can be achieved by radio waves in the frequency range of 5 MHz to 50 MHz or by microwave dielectric heating, which can be in the frequency range of 500 MHz to 30 GHz, preferably 950 MHz, 2450 MHz, or 5800 MHz. Direct dielectric heating of the fluid allows its direct evaporation and subsequent condensation on the cooler walls that define the space. This process (evaporation, distribution, and recondensation) can then be repeated as desired with other radiation pulses.
[0016] Particularly preferably, the fluids provided are aqueous and / or alcoholic solutions containing chlorine, ozone and / or peroxide, preferably hydrogen peroxide, which are very easily heated directly by microwave radiation and vaporized, while solutions containing ozone or hydrogen peroxide are chemically decomposed into the harmless substances water and oxygen.
[0017] Likewise, preservatives can be used as fluids, preferably fluids which contain at least one alcoholic active substance, particularly preferably ethanol and / or isopropanol.
[0018] The space-forming components can include a cap and a head of the container, preferably a container for medical purposes. These components can be made essentially from at least one plastic, preferably a polyolefin, particularly preferably polypropylene or low-density polyethylene. These materials are not heated or are only slightly heated by radio or microwave radiation, and therefore provide an excellent condensation surface for the fluid vapor.
[0019] The filled container in question can be preferably formed by the BFS method, and the filled container can have a top membrane with at least one recess. Containers of this type, optionally formed in multiple layers by coextrusion techniques, can be formed as shown in DE 10 2013 012 809 A1.
[0020] The present invention will be described in detail below with reference to the drawings. [Brief explanation of the drawings]
[0021] [Figure 1] FIG. 1 is a partial perspective view of a prior art infusion container showing a neck collar to which a cap can be attached. [Figure 2] FIG. 2 is a simplified longitudinal cross-sectional view showing a cap that can be attached to the container of FIG. [Figure 3] FIG. 3 is a simplified longitudinal cross-sectional view of the neck collar of the container of FIG. 1 together with the cap of FIG. 2 which can be attached thereto. DETAILED DESCRIPTION OF THE INVENTION
[0022] With reference to the accompanying drawings, the chemical sterilization method according to the present invention will be described on the example of a plastic infusion bottle with a tightly fitted plastic cap, formed according to the per se known BFS method. An aqueous hydrogen peroxide solution is used as the sterilizing agent. The present invention also applies to the other container systems mentioned above, together with other solvents and sterilizing agents, such as known disinfectants (antiseptics), also mentioned above. The filled container, formed according to the BFS method and designated by the reference numeral 1 in FIG. 1, has a neck collar 2 on the container neck 3, and above that, a head membrane 8 forming a tight container closure, which can be pierced for the injection process, as described in DIN ISO 15759.
[0023] FIG. 2 shows a cap 4 made of a hard plastic material, also made in accordance with DIN ISO 15759, which can be tightly welded to the neck collar 2 of the container 1 along a weld point 7 at the head edge, for example, by Miller welding, as shown in FIG. 3 . The cap 4 can also be tightly joined to the container 1 by injection molding. As shown in FIGS. 2 and 3 , an elastomeric element 5 is provided in the upper open area of the cap 4 at a location that can be pierced by a cannula or protrusion for the injection process, which seals the system during use. The elastomeric element 5 is made of an elastomer suitable for material-bond welding with the material of the cap 4, as described, for example, in German Patent Application No. 102017000048.4, which represents the prior art and was subsequently published. As shown in FIG. 3, when the cap 4 is connected to the neck collar 2, a closed space 6 is formed within the cap, which space extends along the inside of the cylindrical side wall 10 of the cap 4 and along the head membrane 8, forming a gap having a relatively small volume, which gap is chemically sterilized by the method of the present invention.
[0024] In the exemplary method described herein, a small volume (approximately 0.01-0.3 ml) of aqueous hydrogen peroxide solution is dispensed onto the head membrane 8, e.g., by dripping or spraying, after which the cap 8 is tightly coupled to the neck collar 2, thereby sealing the space 6. Alternatively, the fluid can be sprayed onto the inner surface of the cap 4. Direct heating of the introduced fluid is achieved by microwave radiation. This has the advantage that the fluid is directly heated, while the walls of the space 6 are only slightly heated (if at all), and therefore the radiation itself only indirectly contributes to the reduction of the pathogen count. Preferred frequencies of microwave radiation in the frequency range of 500 MHz to 30 GHz result in at least partial evaporation of the fluid and therefore a homogeneous distribution within the space 6. The volume increase during evaporation leads to an overpressure in the space 6 and, therefore, to pressure-based overheating of the hydrogen peroxide. On the one hand, this results in the chemical decomposition of hydrogen peroxide into harmless water and oxygen, and on the other hand, it ensures that difficult-to-access surfaces such as undercuts, slots, cannulas, etc. can be reached.
[0025] Preferably, microwave pulses are used that result in a continuous, pulsating, at least partial condensation of hydrogen peroxide and repeated microcondensation, a preferred mode of condensation that produces the smallest droplets invisible to the naked eye. Thermal decomposition of hydrogen peroxide into hydrogen and oxygen is also initiated. In contrast to known methods of sterilizing isolators with gaseous hydrogen peroxide, great care must be taken to prevent decomposition from occurring in the vaporizer.
[0026] Another advantage of the method according to the present invention is that no carrier gas is required to transport the gaseous hydrogen peroxide; instead, the gaseous hydrogen peroxide is generated directly in the space 6 to be sterilized and at least partially decomposed there. It was also confirmed that the sensitive contents in the container 1 were not appreciably damaged. It is assumed that the hydrogen peroxide is already largely decomposed before it can significantly penetrate into the contents. This type of container material is preferred due to the low adsorption and permeation of hydrogen peroxide into polyolefins, especially low-density polyolefins. Similarly, multilayer containers, such as those described in DE 10347908 A1, can also be used; however, their barrier layer—made of, for example, ethylene-vinyl alcohol copolymer (EVOH) or a cycloolefin copolymer such as cycloolefin copolymer COC (trade name Topas) or cycloolefin copolymer COP (trade name Zeonor)—does not minimize the penetration of sterilizing agents, particularly oxygen or alcohol, through the cap 4 into the interior of the container 1. Container head pieces with recesses in the head membrane, as shown in detail in, for example, DE 10 2013 012 809 A1, can also be used to advantage.
[0027] The advantages of the method according to the invention are that the fluid can be very easily dosed gravimetrically or volumetrically via the liquid phase, and that the sterilization conditions can be easily adapted to the volume of the space 6, the geometry of the container system, and its pathogen load via the amount and concentration of the hydrogen peroxide solution (e.g., 3-35%) introduced into the space 6, and that they can be controlled in a closed loop via the length, intensity, and pulse shape of the microwaves. It has been shown that a higher pathogen reduction is achieved with more short microwave irradiation cycles than with fewer longer microwave irradiation cycles. Furthermore, it has been shown that a higher hydrogen peroxide concentration in the gas phase effectively increases the pathogen reduction, and that the use of an ethanol-aqueous hydrogen peroxide solution improves wetting of the surface to be sterilized, thereby increasing the pathogen reduction.
[0028] Experiments demonstrating pathogen reduction were conducted using a bioindicator containing the fungus Geobacillus stearothermophilus. 0.02–0.2 ml of a 35% aqueous H2O2 solution was applied to the head membranes (8) of various diameters (20–30 mm) of filled 250 ml infusion bottles made of LDPE, and HDPE caps (4) were welded onto them. The volume of the space (6) thus formed averaged approximately 1–3 ml. Sterilization experiments were conducted in a microwave chamber with an adjustable microwave power output of 0.6–6 kW and a MW transmission frequency of 2450 MHz. The incident light was parallel to the head membrane (8) and therefore perpendicular to the longitudinal axis of the container (1). The filled area of the container (1) was additionally shielded by a fine-mesh wire net.
[0029] Surprisingly, significant pathogen reduction was achieved even in narrow gaps of a few millimeters wide, especially between the head membrane 8 and the cap 4, and between the container head and the cylindrical portion 10 of the cap 4. This was all the more successful the higher the frequency of microconcentration and therefore the number of irradiation cycles and the resulting number of pressure pulses.
[0030] The method according to the invention further allows for simple and straightforward verification of the tight installation of the injection cap 4, for example by spectroscopy. For this purpose, the content of hydrogen peroxide in the gas phase and / or the oxygen content in the space 6 can be determined non-destructively. For example, a laser absorption spectrometer with a typical wavelength in the infrared region between 760 nm and 2000 nm is suitable for this purpose. Alternatively, the concentration of gaseous hydrogen peroxide can be followed and measured by photofragmentation-laser-induced fluorescence (PF-LIF).
[0031] Typically, only a small power output is sufficient to generate microwave pulses, and microwave frequencies of 896 MHz / 915 MHz / 922 MHz (L-band), 2450 MHz (S-band), or 5.8 GHz (C-band) are preferably used. When using radio waves (frequency range 5-50 MHz), higher power output is required due to weaker coupling, but there is less interference, which essentially reduces the so-called hot spots that cannot always be avoided when using microwaves. [Configuration 1] A method for reducing microbial contamination within an enclosed space (6) formed by at least two interconnected components (1, 4) by introducing a disinfectant into the space (6). [Configuration 2] 2. The method according to claim 1, wherein the disinfectant inside the space (6) is exposed to the action of an energy source. [Configuration 3] 3. The method according to claim 1 or 2, characterized in that a germicidal fluid, preferably a liquid, is introduced into the space (6) as the germicidal agent. [Configuration 4] 4. The method according to any one of the preceding aspects, characterized in that the fluid is at least partially transformed from a liquid phase to a gaseous phase, preferably by heating with an energy source. [Configuration 5] 5. The method according to any one of the configurations 1 to 4, characterized in that the fluid in the space (6) is partially evaporated and condensed at least once, and preferably evaporated and recondensed multiple times. [Configuration 6] 6. The method according to any one of the preceding aspects, wherein the energy for heating is introduced in the form of radiation, preferably in the form of radiation pulses. [Configuration 7] 7. The method according to any one of aspects 1 to 6, wherein the radiation directly heats substantially only the fluid. [Configuration 8] 8. The method according to any one of the preceding aspects 1 to 7, characterized in that the fluid is at least partially chemically altered and / or degraded during the time it resides in said space (6). [Configuration 9] 9. The method according to any one of the preceding claims, characterized in that the fluid is kept in said space (6) for a predetermined residence time, said residence time allowing at least partial reduction of the concentration of the fluid and / or its degradation products by permeation from said space (6). [Configuration 10] 10. The method according to any one of the preceding aspects, characterized in that the evolution of the change in concentration of the fluid and / or its degradation products in the space (6) is followed by non-destructive, preferably spectroscopic, measurements. [Configuration 11] 11. The method according to any one of aspects 1 to 10, wherein the fluid is evaporated by dielectric heating using radio waves in the frequency range of 5 MHz to 50 MHz. [Configuration 12] 12. The method according to any one of the preceding aspects, characterized in that the fluid is evaporated by dielectric heating with microwaves in the frequency range of 500 MHz to 30 GHz, preferably with frequencies of 915 MHz or 2450 MHz or 5800 MHz. [Configuration 13] 13. The method according to any one of aspects 1 to 12, wherein a solution containing chlorine, ozone or peroxide, preferably hydrogen peroxide, is provided as the fluid. [Configuration 14] 14. The method according to any one of the preceding aspects 1 to 13, characterized in that as fluid a solution is provided which comprises water and / or at least one alcohol as solvent, preferably water and ethanol. [Configuration 15] 15. The method according to any one of the preceding aspects, characterized in that the preservative is provided as a fluid, preferably comprising at least one alcoholic active substance, particularly preferably ethanol and / or isopropanol. [Configuration 16] 16. The method according to any one of the preceding aspects 1 to 15, characterized in that the cap (4) and the head (2) of the container (1), preferably a filled container (1) for medical purposes, are provided as components forming the space (6). [Configuration 17] 17. The method according to any one of the preceding claims, characterized in that the components (2, 4) are substantially made of at least one plastic, preferably polyolefin, particularly preferably polypropylene and / or polyethylene. [Configuration 18] 18. The method according to any one of the aspects 1 to 17, characterized in that the filled container (1) is formed according to the BFS method. [Configuration 19] 19. The method according to any one of the preceding aspects 1 to 18, characterized in that the filled container (1) has a head membrane (8) with at least one recess. [Configuration 20] 20. The method according to any one of the preceding claims, characterized in that the filled container (1) is a multi-layer container, preferably having at least one layer comprising an ethylene vinyl alcohol copolymer or a cycloolefin polymer or a cycloolefin copolymer.
Claims
1. 1. A method for reducing microbial contamination in an enclosed space (6), comprising: providing a filled container (1) comprising a container body having a head (2) and a cap (4) attached to said head (2), said head (2) and said cap (4) forming said space (6) between said head (2) and said cap (4); a step of dispensing a liquid disinfectant onto the head membrane (8) forming a tight container closure above the neck (3) of the container or onto the inner surface of the cap (4) before the formation of the space (6) in order to reduce microbial contamination within the space (6), and at least partially changing from the liquid phase to the gaseous phase after the formation of the space (6); Equipped with The space (6) comprises a gap between the head membrane (8) and the cap (4).
2. 2. The method according to claim 1, characterized in that the disinfectant inside the space (6) is subjected to the action of an energy source.
3. 3. The method of claim 1, wherein the sterilant is converted to a gaseous phase by heating with an energy source.
4. 4. The method according to any one of claims 1 to 3, characterized in that the disinfectant in the space (6) is partially evaporated and condensed at least once.
5. 5. The method according to claim 1, wherein the energy for heating the sterilizing agent is introduced in the form of radiation.
6. 6. The method of claim 5, wherein the radiation directly heats substantially only the sterilant.
7. 7. The method according to any one of claims 1 to 6, characterized in that the disinfectant is at least partially chemically altered and / or degraded during the residence time in the space (6).
8. 8. The method according to any one of claims 1 to 7, characterized in that the disinfectant is kept in the space (6) for a predetermined residence time, the residence time allowing an at least partial reduction of the concentration of the disinfectant and / or its degradation products by evaporation from the space (6).
9. 9. The method according to claim 1, wherein the progress of the change in the concentration of the disinfectant and / or its degradation products in the space (6) is followed by non-destructive measurements.
10. 10. The method according to any one of claims 1 to 9, wherein the disinfectant is vaporized by dielectric heating by radio waves in the frequency range of 5 MHz to 50 MHz.
11. 10. The method according to any one of claims 1 to 9, wherein the disinfectant is evaporated by dielectric heating with microwaves having a frequency in the frequency range of 500 MHz to 30 GHz.
12. 12. The method according to any one of claims 1 to 11, wherein a solution containing chlorine, ozone or peroxide is provided as the disinfectant.
13. 13. The method according to any one of claims 1 to 12, characterized in that as the disinfectant a solution is provided which comprises water and / or at least one alcohol as solvent.
14. 14. The method according to any one of the preceding claims, characterized in that the disinfectant is provided as a fluid containing at least one alcoholic active substance.
15. 15. The method according to any one of claims 1 to 14, characterized in that the cap (4) and the head (2) as a neck collar of the filled container (1) are provided as components forming a space (6).
16. 16. A method according to any one of the preceding claims, characterized in that the head (2) and the cap (4) are substantially made of at least one plastic.
17. 17. A method according to any one of the preceding claims, characterized in that the filled container (1) is formed according to the BFS method.
18. 18. Method according to any one of the preceding claims, characterized in that the filled container (1) has a head membrane (8) with at least one recess.
19. 19. The method according to any one of the preceding claims, characterized in that the filled container (1) is a multi-layer container, with at least one layer comprising an ethylene vinyl alcohol copolymer or a cycloolefin polymer or a cycloolefin copolymer.
Citation Information
Patent Citations
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