Enhancement of nuclease P1 production by Penicillium citrinum YL104 immobilized on activated carbon filter sponge

2014 ◽  
Vol 99 (3) ◽  
pp. 1145-1153 ◽  
Author(s):  
Nan Zhao ◽  
Hengfei Ren ◽  
Zhenjian Li ◽  
Ting Zhao ◽  
Xinchi Shi ◽  
...  
2021 ◽  
pp. 107815522110306
Author(s):  
Galit Levin ◽  
Paul JM Sessink

Purpose The purpose of this study was to test the efficacy of ChemfortTM, an air filtration closed-system drug transfer device to prevent release of chemotherapy drug vapors and aerosols under extreme conditions. The air cleaning system is based on the adsorption of drug vapors by an activated carbon filter in the Vial Adaptor before the air is released out of the drug vial. The functionality of the carbon filter was also tested at the end of device’s shelf life, and after a contact period with drug vapors for 7 days. Cyclophosphamide and 5-fluorouracil were the chemotherapy drugs tested. Methods The Vial Adaptor was attached to a drug vial and both were placed in a glass vessel. A needle was punctured through the vessel stopper and the Vial Adaptor septum to allow nitrogen gas to flow into the vial and to exit the vial via the air filter into the glass vessel which was connected to a cold trap. Potential contaminated surfaces in the trap system were wiped or rinsed to collect the escaped drug. Samples were analyzed using liquid chromatography tandem mass spectrometry. Results Cyclophosphamide and 5-fluorouracil were detected on most surfaces inside the trap system for all Vial Adaptors without an activated carbon filter. Contamination did not differ between the Vial Adaptors with and without membrane filter indicating no effect of the membrane filter. The results show no release of either drug for the Vial Adaptors with an activated carbon filter even after 3 years of simulated aging and 7 days of exposure to drug vapors. Conclusions Validation of air cleaning CSTDs is important to secure vapor and aerosol containment of chemotherapy and other hazardous drugs. The presented test method has proven to be appropriate for the validation of ChemfortTM Vial Adaptors. No release of cyclophosphamide and 5- fluorouracil was found even for Vial Adaptors after 3 years of simulated aging and 7 days of exposure to drug vapors.


2020 ◽  
Vol 326 (3) ◽  
pp. 1559-1568
Author(s):  
Bianca Geraldo ◽  
Leandro Goulart de Araujo ◽  
Roberto Vicente ◽  
Maria Helena Tirollo Taddei ◽  
Sandra Maria Cheberle ◽  
...  

2011 ◽  
Vol 183-185 ◽  
pp. 1123-1127
Author(s):  
Pei Chao Jian ◽  
Zhao Hui Zhang ◽  
Yu Feng Zhang ◽  
Qin Zhang

Activated carbon filter is often used as the pretreatment process of nanofiltration or reverse osmosis membrane system, especially when the content of organics and free chlorine in influent water is high. However, a lot of microorganisms often rapidly reproduce in the activated carbon filter after continuous operation, resulting in a large number of bacteria in the effluent. So when the activated carbon filter was used as pretreatment of membrane systems, membrane fouling caused by biological contamination often occurred. The objective of this paper was to discuss how to effectively control the activated carbon biological contamination. Three different control methods—water backwashing, hot alkali treatment and ultrasound treatment were compared. Results showed that ultrasound treatment was the most effective. A relatively high removal efficiency of biomass (above 90%) was obtained when 40 kHz ultrasound was applied at 90 W for 20 min. Bacterial count in the effluent can be decreased from 3.90×104CFU•mL-1 to 8.5×103CFU•mL-1. After 3 days of continuous operation, bacteria count increased from 8.5×103CFU•mL-1 to 4.06×104CFU•mL-1. After ultrasound treatment, the removal efficiency of CODCr increased from -386.3% to 73.8%.


2012 ◽  
Vol 61 (4) ◽  
pp. 228-239 ◽  
Author(s):  
Wen-Chao Yin ◽  
Jin-Song Zhang ◽  
Li-Jun Liu ◽  
Yan Zhao ◽  
Tuo Li ◽  
...  

2017 ◽  
Vol 9 (9) ◽  
pp. 1533 ◽  
Author(s):  
Angus Shiue ◽  
Shih-Cheng Hu ◽  
Shu-Mei Chang ◽  
Tzu-Yu Ko ◽  
Arson Hsieh ◽  
...  

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