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Published on: October 3, 2016
Airborne contamination during blow-fill-seal pharmaceutical production
W Whyte1, W Matheis, M Dean-Netcher
1University of Glasgow, Scotland.
Abstract:
The routes of airborne contamination, during Blow-Fill-Seal (BFS) production, were studied using tracer gas, particles and bacteria. The prevention of airborne contamination, by the air shower at the point of fill, was effective (> 99.2% efficient). However, microbe-carrying particles could gain access, by deposition or air exchange, when the containers were cut open and before they shuttled under the protection of the air shower. The use of SF6 tracer gas demonstrated that when the air shower was not on, 50% of the air within the containers came from the area round the machine. When the air shower was switched on, only about 5% of the air came from the surroundings. Airborne microbial contamination of containers is in proportion to: the number of airborne microbes around the machine, the time the container is open, the neck area and the amount of air left within the container. The likely microbial contamination rate can be calculated from a model incorporating these variables. Microbial contamination of containers during BFS manufacturing is normally very low, but by increasing the naturally occurring bacteria in the air of the production rooms by about 100-fold, it was possible to verify the accuracy of this model. The contamination model agrees well with the observation that microbial contamination levels of between 1 in 10(5) and in 10(7) will be found when small containers (< 10 ml) are filled in conventionally ventilated rooms. To achieve similar contamination rates when filling of larger bottles, it is likely that unidirectional flow, or barrier technology will be required.
Insights
Airborne contamination in Blow-Fill-Seal (BFS) production is reduced by air showers, but microbes can still enter open containers. A model predicts contamination rates based on airborne microbes, open time, and container size.
Area of Science:
- Pharmaceutical Manufacturing
- Microbiology
- Industrial Hygiene
Background:
- Blow-Fill-Seal (BFS) is a sterile manufacturing process.
- Airborne contamination poses a risk to product integrity in BFS.
Purpose of the Study:
- To investigate airborne contamination routes during BFS production.
- To evaluate the efficacy of air showers in preventing contamination.
- To develop a model for predicting microbial contamination rates.
Main Methods:
- Utilized tracer gas (SF6), particles, and bacteria to study contamination.
- Assessed air shower efficiency at the point of fill.
- Developed and validated a contamination model using increased microbial loads.
Main Results:
- Air showers were highly effective (>99.2%) at preventing contamination when active.
- Microbial contamination can occur through deposition or air exchange when containers are open before reaching the air shower.
- SF6 tracer gas showed a significant reduction in surrounding air ingress when the air shower was on (5% vs. 50%).
- A predictive model incorporating airborne microbes, open time, neck area, and fill volume accurately estimated contamination rates.
- Model predictions aligned with observed contamination levels (1 in 10^5 to 10^7) for small containers in conventional rooms.
Conclusions:
- While air showers are effective, open container handling remains a vulnerability in BFS.
- The developed model provides a tool to estimate and manage microbial contamination risks.
- Achieving low contamination rates for larger containers may necessitate advanced technologies like unidirectional flow or barrier systems.
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