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Unlabelled: In recent years, 3D printing has emerged in the field of chemical engineering as a powerful manufacturing technique to rapidly design and produce tailor-made reaction equipment. In fact, reactors with complex internal geometries can be easily fabricated, optimized and interchanged in order to respond to precise process needs, such as improved mixing and increased surface area. These advantages make them interesting especially for catalytic applications, since customized structured bed reactors can be easily produced. 3D printing applications are not limited to reactor design, it is also possible to realize functional low cost alternatives to analytical equipment that can be used to increase the level of process understanding while keeping the investment costs low. In this work, in-house designed ceramic structured inserts printed via vat photopolymerization (VPP) are presented and characterized. The flow behavior inside these inserts was determined with residence time distribution (RTD) experiments enabled by in-house designed and 3D printed inline photometric flow cells. As a proof of concept, these structured inserts were fitted in an HPLC column to serve as solid inorganic supports for the immobilization of the enzyme Phenolic acid Decarboxylase (PAD), which catalyzes the decarboxylation of cinnamic acids. The conversion of coumaric acid to vinylphenol was chosen as a model system to prove the implementation of these engineered inserts in a continuous biocatalytic application with high product yield and process stability. The setup was further automated in order to quickly identify the optimum operating conditions via a Design of Experiments (DoE) approach. The use of a systematic optimization, together with the adaptability of 3D printed equipment to the process requirements, render the presented approach highly promising for a more feasible implementation of biocatalysts in continuous industrial processes. Graphical abstract.
Supplementary Information: The online version contains supplementary material available at 10.1007/s41981-021-00163-4.
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http://dx.doi.org/10.1007/s41981-021-00163-4 | DOI Listing |
Health Place
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Edith Cowan University, School of Medical and Health Sciences, 270 Joondalup Dr, Joondalup, WA, 6027, Perth, Western Australia, Australia; Edith Cowan University, Nutrition and Health Innovation Research Institute, 270 Joondalup Dr, Joondalup, WA, 6027, Perth, Western Australia, Australia. Electroni
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Technical University of Munich, Germany, TUM Campus Straubing for Biotechnology and Sustainability, Bioprocess Engineering, Uferstraße 53, D-94315 Straubing, Germany.
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View Article and Find Full Text PDFNat Protoc
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Pharmacomicrobiomics Research Center and College of Pharmacy, Hanyang University, Ansan, Republic of Korea.
Metabolism is a fundamental process that shapes the pharmacological and toxicological profiles of drugs, making metabolite identification and analysis critical in drug development and biological research. Global Natural Products Social Networking (GNPS) is a community-driven infrastructure for mass spectrometry data analysis, storage and knowledge dissemination. GNPS2 is an improved version of the platform offering higher processing speeds, improved data analysis tools and a more intuitive user interface.
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Methods: This was a retrospective multicentre cohort study of patients managed with curative intent for squamous cell carcinoma of the middle or distal oesophagus in 23 hospitals across the UK and Ireland.
Mol Ther Nucleic Acids
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Sanofi, 1541 Avenue Marcel Mérieux, 69280 Marcy l'Etoile, France.
Messenger ribonucleic acid (mRNA), a promising tool in vaccine and therapeutic development, is reliant on intact mRNA delivery into target cells. Given its susceptibility to degradation, ensuring its stability is crucial, necessitating rigorous quality control throughout the product life cycle. This study presents an ion-pair reverse-phase liquid chromatography method that enables rapid and direct mRNA extraction from lipid nanoparticles, facilitated by using a surfactant in the sample preparation.
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