The present invention relates to the pharmaceutical industry, in particular to a new container for sterilizing flexible bags for pharmaceutical use. More specifically, the present invention discloses a “nest” type container for sterilizing flexible bags containing products derived from human plasma for therapeutic use.
Recently in the pharmaceutical industry in general and, in particular, in the industry of products obtained from human plasma, proof exists that plastic containers, in particular flexible plastic bags, are also useful as final packaging for hemoderivatives for several reasons: they are easy to shape, giving them great versatility and adaptability in their design, are rupture-resistant, ergonomic, and, due to their low density and weight, provide important costs savings regarding transportation and logistics. Furthermore, they are flexible and easy to handle. Therefore, they are in demand in the public health sector.
Another advantage of flexible plastic bags is that they are compatible with sterilization by radiation, either by means of gamma rays or electron beam (E-beam). Currently there are solutions for hemoderivatives commercialized in plastic bags (e.g. Flexbumin®, a 20% solution of human plasma albumin, traded by Baxalta Spain S.L.) available on the market.
Usually, said flexible plastic bags are sterilized prior to the filling thereof by means of irradiation with gamma rays or electron beam (E-beam). Sterilization by radiation as ionising radiation is commonly used in hospitals for sanitary devices (e.g. catheters, surgical items, and critical care tools). Gamma irradiation is the most popular form of sterilization by radiation and is typically used when the materials are sensitive to the high temperature of the autoclave.
In addition, it is increasingly common for rigid containers, also known as “nest” containers, to be used for sterilizing surgical material, syringes, or vials. These containers are cost-effective, reusable, easy to transport and to clean, and are very effective in the sterilization process. However, these known containers are not suitable for sterilizing bags, due to the lack of rigidity and the fragility thereof.
For instance, the document of European Patent EP 3269409B1 discloses a container for sterilizing syringes and the PCT application WO 2017/139385 A1 discloses a device for facilitating the correct position of syringes and a product inspection path. Although the two documents disclose containers for sterilizing syringes, it is not possible to incorporate flexible bags in said containers for the sterilization of said bags.
In addition, the document of Spanish Patent ES 2248768T3 discloses a packaging intended to be used to transport sterile objects or objects to be sterilized, comprising a box intended to receive the sterile objects or objects to be sterilized and a cover sheet of selectively airtight material, which sheet is fixed above the box such that it will seal the latter in an airtight manner. This packaging is not suitable for flexible bags either.
Therefore, there exists the need provide “nest” type containers for sterilizing and transporting flexible plastic bags for pharmaceutical use, in particular flexible plastic bags that will contain human plasma by-products. The use of this type of containers for sterilizing and transporting flexible plastic bags is not known to the inventors of the present invention.
Surprisingly, the inventors of the present invention have developed a “nest” type container suitable for sterilizing and transporting flexible plastic bags, which, in addition to the above advantages of these types of containers, allows said bags to be fastened by the plug region of said bags and is suitable for being filled both manually and automatically.
Therefore, in a first aspect, the present invention discloses a “nest” type container for sterilizing flexible bags for pharmaceutical use, comprising:
Preferably, said upper structure is also the cap for hermetically sealing the lower receptacle.
Preferably, the container of the present invention can accommodate between 1 and 250 flexible bags, more preferably between 1 and 180 flexible bags.
It is obvious to the skilled person that the shape of the container of the present invention can be any one suitable for sterilization. Preferably, said container has the shape of a rectangular parallelepipedon.
It is also clear that the material for producing said container can be any material suitable for sterilization, such as plastics material. Preferably, said container is made from high-density polyethylene (HDPE).
Preferably, said support element of the flexible bags are bars with a T and/or L-shaped cross-section which are attached to the upper flat structure of the container of the present invention in an undetachable manner.
It is also preferable for said fastening element to be a semi-circle-shaped notch in said support elements. Said semi-circle must have a diameter greater than the port of the flexible bag but must be smaller than the diameter of the flange of the cap of said bag.
The invention will be explained below with reference to the figures, by way of explanatory, non-restrictive example, of various embodiments of the device of the present invention, in which:
As seen in
In addition,
Finally, the present invention discloses a method for filling the container for the above-described sterilization of flexible bags, characterized in that it comprises the following steps:
Preferably, the new flexible bags are placed in such a way that the first row of bags in the fastening elements located in the support elements which are furthest from the insertion region of said bag is filled.
Preferably, the rows are alternately formed in order to place the highest number of bags possible inside the container of the present invention.
The sterilization in step (e) may be carried out through any suitable method by an expert in the field. Preferably, said sterilization is carried out by using gamma rays or electron beam (E-beam).
It is also preferable for the upper flat structure to be, at the same time, the cap of the lower receptacle of the container of the present invention and to be suitable for hermetically sealing the same.
The method for sterilizing bags of the present invention may be carried out manually by an operator or automatically, for example using a robotic arm for the placement of the bags in the fastening elements of the support elements.
For this, the robotic arm may perform a horizontal movement parallel to the floor in order to insert the port-plug structure of the flexible bag through the slot formed by the support elements of said flexible bags (step a) and a small vertical movement relative to the floor in order to place said bag in the fastening elements (step b) of the container of the present invention.
Number | Date | Country | Kind |
---|---|---|---|
19382291 | Apr 2019 | EP | regional |
Number | Name | Date | Kind |
---|---|---|---|
3596430 | Parish | Aug 1971 | A |
3780738 | Deaton | Dec 1973 | A |
3872868 | Kline | Mar 1975 | A |
4415085 | Clarke | Nov 1983 | A |
4470264 | Morris | Sep 1984 | A |
4565073 | Lavender | Jan 1986 | A |
5882602 | Savage | Mar 1999 | A |
5922278 | Chapman | Jul 1999 | A |
6419088 | Barrois | Jul 2002 | B1 |
10588990 | Tamarindo | Mar 2020 | B2 |
10661929 | Gebbink | May 2020 | B2 |
20030136697 | Nix | Jul 2003 | A1 |
20100307956 | Lepot | Dec 2010 | A1 |
20150095047 | Burrows | Apr 2015 | A1 |
20150113919 | Provitera | Apr 2015 | A1 |
20160153691 | Mean | Jun 2016 | A1 |
20180126066 | Narvekar | May 2018 | A1 |
20180134423 | Narvekar et al. | May 2018 | A1 |
20210015706 | Wabel | Jan 2021 | A1 |
Number | Date | Country |
---|---|---|
201703501 | Apr 2018 | CL |
2917640 | Jul 2007 | CN |
10 2004 032306 | Feb 2006 | DE |
102015012861 | Apr 2017 | DE |
0171550 | Feb 1986 | EP |
0732097 | Sep 1996 | EP |
2266522 | Dec 2010 | EP |
3269409 | Feb 2019 | EP |
2248768 | Mar 2006 | ES |
2482566 | Nov 1981 | FR |
2759985 | Aug 1998 | FR |
2018-089171 | Jun 2018 | JP |
WO 2000005146 | Feb 2000 | WO |
2017139385 | Aug 2017 | WO |
Entry |
---|
Partial European Search Report in corresponding European Patent Application No. 19382291 dated Oct. 18, 2019. |
Number | Date | Country | |
---|---|---|---|
20200324008 A1 | Oct 2020 | US |