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Pericardial adipose tissue (PAT) may represent a novel risk marker for cardiovascular disease. However, absence of rapid radiation-free PAT quantification methods has precluded its examination in large cohorts. We developed a fully automated quality-controlled tool for cardiovascular magnetic resonance (CMR) PAT quantification in the UK Biobank (UKB). Image analysis comprised contouring an en-bloc PAT area on four-chamber cine images. We created a ground truth manual analysis dataset randomly split into training and test sets. We built a neural network for automated segmentation using a Multi-residual U-net architecture with incorporation of permanently active dropout layers to facilitate quality control of the model's output using Monte Carlo sampling. We developed an in-built quality control feature, which presents predicted Dice scores. We evaluated model performance against the test set ( = 87), the whole UKB Imaging cohort ( = 45,519), and an external dataset ( = 103). In an independent dataset, we compared automated CMR and cardiac computed tomography (CCT) PAT quantification. Finally, we tested association of CMR PAT with diabetes in the UKB ( = 42,928). Agreement between automated and manual segmentations in the test set was almost identical to inter-observer variability (mean Dice score = 0.8). The quality control method predicted individual Dice scores with Pearson = 0.75. Model performance remained high in the whole UKB Imaging cohort and in the external dataset, with medium-good quality segmentation in 94.3% (mean Dice score = 0.77) and 94.4% (mean Dice score = 0.78), respectively. There was high correlation between CMR and CCT PAT measures (Pearson = 0.72, -value 5.3 ×10). Larger CMR PAT area was associated with significantly greater odds of diabetes independent of age, sex, and body mass index. We present a novel fully automated method for CMR PAT quantification with good model performance on independent and external datasets, high correlation with reference standard CCT PAT measurement, and expected clinical associations with diabetes.
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http://dx.doi.org/10.3389/fcvm.2021.677574 | DOI Listing |
Front Bioeng Biotechnol
August 2025
Institute of Process Engineering in Life Sciences, Section IV: Biomolecular Separation Engineering, Karlsruhe Institute of Technology (KIT), Karlsruhe, Germany.
Spectroscopic soft sensors are developed by combining spectral data with chemometric modeling, and offer as Process Analytical Technology (PAT) tools powerful insights into biopharmaceutical processing. In this study, soft sensors based on Raman spectroscopy and linear or partial least squares (PLS) regression were developed and successfully transferred to a filtration-based recovery step of precipitated virus-like particles (VLPs). For near real-time monitoring of product accumulation and precipitant depletion, the dual-stage cross-flow filtration (CFF) set-up was equipped with an on-line loop in the second membrane stage.
View Article and Find Full Text PDFInt J Pharm
September 2025
Irma Lerma Rangel College of Pharmacy, Texas A&M Health Science Center, Texas A&M University, College Station, TX 77843, USA. Electronic address:
Quality control of drug products is an essential step in pharmaceutical manufacturing. It is often time-consuming and requires expensive equipment. Process analytical technology tools are typically integrated into the manufacturing process to monitor quality, thereby reducing time and costs.
View Article and Find Full Text PDFInt J Pharm
September 2025
Department of Organic Chemistry and Technology, Faculty of Chemical Technology and Biotechnology, Budapest University of Technology and Economics, Műegyetem rkp. 3., H-1111 Budapest, Hungary. Electronic address:
Buffer exchange is a critical step in the formulation of monoclonal antibodies, as it ensures protein stability in an appropriate medium. Traditional offline methods used to monitor this process are slow and provide delayed feedback. In contrast, Raman spectroscopy offers a fast, inline, non-invasive alternative that aligns with the principles of Process Analytical Technology (PAT) and Quality by Design (QbD).
View Article and Find Full Text PDFJ Biol Eng
August 2025
AVT.BioVT - Chair of Biochemical Engineering, Rheinisch-Westfälische Technische Hochschule (RWTH) Aachen University, Aachen, Germany.
Shake flasks are among the most relevant culture vessels for early-stage process development of viscous microbial cultures. While online process monitoring systems are available for temperature, pH, biomass concentration, dissolved oxygen tension and respiration activity, online measuring techniques for viscosity are not yet commercially available. Especially during the production of biopolymers and the cultivation of filamentous fungi or bacteria, quantification of fermentation broth viscosity is essential to ensure adequate mixing as well as gas/liquid mass and heat transfer.
View Article and Find Full Text PDFMAGMA
August 2025
School of Biomedical Engineering & State Key Laboratory of Advanced Medical Materials and Devices, ShanghaiTech University, 393 M. Huaxia Rd., Pudong New District, Shanghai, 201210, China.
Objective: Epicardial and paracardial adipose tissues (EAT and PAT) are two types of fat depots around the heart and they have important roles in cardiac physiology. Manual quantification of EAT and PAT from cardiac MR (CMR) is time-consuming and prone to human bias. Leveraging the cardiac motion, we aimed to develop deep learning neural networks for automated segmentation and quantification of EAT and PAT in short-axis cine CMR.
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