Improvements in and Relating to Sterilisation of Fluid-Guiding Elements for Bioprocessing Applications
20220265877 ยท 2022-08-25
Inventors
Cpc classification
A61M39/18
HUMAN NECESSITIES
C12M29/00
CHEMISTRY; METALLURGY
C12M31/00
CHEMISTRY; METALLURGY
A61M2039/167
HUMAN NECESSITIES
C12M37/00
CHEMISTRY; METALLURGY
A61M39/16
HUMAN NECESSITIES
A61L2202/11
HUMAN NECESSITIES
International classification
Abstract
Disclosed is an ultra-violet (UV) light sterilisable fluid-guiding element (100, 200, 300, 400, 500) configurable to form a part of a normally closed bioprocessing fluid system, at least a portion of the element being formed from a material which is transmissive to UV light, said at least one portion of the element including one or more surfaces (134) configured to contact and guide fluids within the closed system. The element further includes at least one UV light emitting diode (LED) (154) mounted in, on, or adjacent the at least one portion and has sufficient light output to sterilise at least the one or more surfaces (134).
Claims
1. An ultra-violet light sterilisable fluid-guiding element for bioprocessing applications which is configurable to form a part of a normally closed fluid system, at least a portion of the element being formed from a material which is transmissive to UV light, said at least one portion of the element including one or more surfaces configured to contact and guide fluids within the closed system in use, the element further including at least one UV light emitting diode mounted in, on, or adjacent the at least one portion and having sufficient light output to sterilise at least the one or more surfaces.
2. The fluid-guiding element of claim 1, wherein the LED emits light of a wavelength of about 100 to about 280 nanometres, for example 260 nanometres.
3. The fluid-guiding element of claim 1 or 2, wherein the material transmits 5% or more of the UV light per mm light propagation distance, preferably more than about 10% per mm, more preferably more than about 20% per mm.
4. The fluid-guiding element of claim 1, wherein the material is glass, for example a quartz glass, or is a polypropylene or a polymethyl methacrylate, or a polydimethylsiloxane, or a polyimide for example fluorinated PI, or a combination of said materials.
5. The fluid-guiding element of claim 1, wherein said fluid-guiding element is one or more of: of a fluid connector, a tube coupler, a removeable fluid transfer port, a valve, a fluid sampling interface, a removable sensor port, a bung, or an element at a location where it is possible for microorganisms to cross from an outside environment into the normally closed fluid system, or an element at a location where conventional pre-sterilising is ineffective.
6. The fluid-guiding element of claim 1, wherein the element includes a body having said one or more surfaces configured to contact and guide fluids and the body supports a circuit for operating the at least one LED.
7. The fluid-guiding element of claim 6, wherein the circuit is provided within an extension of the body.
8. The fluid-guiding element of claim 6, wherein the circuit comprises a push to make switch, a UV LED, a battery, and a current limiting resistor.
9. The fluid-guiding element of claim 6, wherein an external surface of the body includes a highly reflective region for back-reflecting UV light.
10. The fluid-guiding element of claim 6, further including a shroud for support said circuit, the shroud optionally having a reflective surface adjacent the body for back-reflecting UV light.
11. The fluid-guiding element of any preceding claim comprising a body or a housing that is configured to reflect UV light into at least one void which could harbour microorganisms.
12. A method for maintaining the sterility of a generally closed fluid system for bioprocessing applications, the method including the steps of: a) opening the fluid system at a fluid-guiding element which has at least a portion of the element making contact with the fluid; b) closing the fluid system at the element; and c) sterilising the portion of the element by means of UV light transmitted to the portion making fluid contact by propagation through the element, before and/or during and/or after closing.
13. The method of claim 12 wherein said UV light is light from an LED having an output wavelength of about 100 to about 280 nanometres, for example 260 nanometres.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The invention can be put into effect in numerous ways, illustrative non-limiting embodiments of which are described below with reference to the drawings, wherein:
[0017]
[0018]
[0019]
[0020]
DETAILED DESCRIPTION
[0021] The invention, together with its objects and the advantages thereof, may be understood better by reference to the following description taken in conjunction with the accompanying drawings, in which like reference numerals identify like elements in the Figures.
[0022] Referring to
[0023] In this embodiment a sterilising UV LED circuit 150 is provided, in an extension 140 of the housing 130 which includes a push to make switch 152, a UV LED 154, a battery 156, and a current limiting resistor 158. The LED provides, on demand, UV sterilising light, which can reflect internally throughout the housing 130 across the area shown as hatched lines, even into any voids or tight joints, for example the void 138 at the external surface of the barb, which could harbour microorganisms.
[0024] In use the fluid contacting surfaces 134 and 110 of the coupling can be sterilised prior to coupling with another similar coupling, and/or after making that coupling. If the joined tubes 120 or equivalent parts are made transparent also, then UV light will propagate by internal reflection also along the tubes, at least for a little distance, so they will be partially sterilised also. In a refinement, an outer surface 144 of the body 130 has UV light reflective properties, for example a polished and metal plated surface or an internally mirrored surface, to better reflect light back toward the fluid contacting surfaces 134.
[0025] In various alternative embodiments, UV LED circuitry may be provided that is remotely controllable, contactlessly powered and/or transistor switch operated. Such UV LED circuitry may be provided for multiple bioprocessing system components and centrally operated, e.g. by a remote computer system. This can thereby enable the provision of an automated bioprocessing system which can be operated in a co-ordinated manner to improve sterilisation efficiency.
[0026]
[0027]
[0028] With reference additionally to
[0029]
[0030]
[0031] It will be apparent that other arrangements similar to those mentioned above could be used such that fluid-guiding element can be sterilised by UV light for its subsequent use in a generally closed fluid system.
[0032] Whilst it is possible for the sterilisation to be performed with weakly UV transmissive materials, i.e. those materials that do not transmit light particularly well, or absorb UV light, provided at least 5% UV light is transmitted per mm (5%/mm) thickness of the element, then effective sterilising can be assured.
[0033] Materials useful for transmitting UV light are numerous, for example glass, for example quartz glass is suitable. However, for disposable products which are typically used in bioprocess and medical applications, a plastic would be more economical. In this regard, it is also typical to gamma pre-sterilise the plastics components before use, which for some plastics reduces their UV light transmission properties. Suitable plastics are: polypropylene (PP), although UV degradation over time is an issue; polymethyl methacrylate (PMMA), which is not particularly UV transmissive to light at wavelengths shorter than 250 nm, but at around 260 nm wavelength it's transmissive properties are acceptable, i.e. about 50%/mm; polydimethylsiloxane (PDMS), although it is not easy to injection mould; Polyimide (PI) for example fluorinated PI, which is stable and transmits all UV light when made colourless.
[0034] Where less transmissive materials are employed, or where faster sterilisation is required, then more than one LED can be used, for example a ring of LEDs can be used in any of the embodiment described above.
[0035] Although exemplary embodiments have been described and illustrated, it will be apparent to the skilled addressee that additions, omissions and modifications are possible to those embodiments without departing from the scope of the invention claimed. For example the circuits 150,250, 350,450 and 550, are intended, for convenience, to have a local power supply, for example from a battery. That arrangement suits disposable type fluid-guiding elements such as disposable fluid couplings, but where reusable elements are required, a remote power source could be used, for example a plug-in dc supply. Only the embodiment of