Background And Aim: 2 beta-Carbomethoxy-3-(4-chlorophenyl)-8-(2-[18F]fluoroethyl)nortropane (18F-FECNT) is a selective radioligand for the in vivo quantification of dopamine transporters by using positron emission tomography. The aim of the current study was to quantify the distribution of radioactivity in three rhesus monkeys after the injection of approximately 185 MBq (5 mCi) of 18F-FECNT.
Method: Whole-body images were acquired at 23-30 time points for a total of 220 min following injection of the radioligand. Source organs were identified at each time point from planar images.
Results: The peak activities in planar images in the six identified source organs (expressed as per cent injected dose (%ID)) were lungs (16.5%ID at 2 min), kidneys (12.5%ID at 3 min), brain (9.5%ID at 6 min), liver (7.5%ID at 3 min), red bone marrow (3.5%ID at 12 min), and urinary bladder (2%ID at 98 min). Radiation absorbed doses were calculated using the gastrointestinal tract model in two ways: (1) assuming no urine voiding, and (2) using a dynamic bladder model with voiding intervals of 2.4 and 4.8 h. Using the gastrointestinal tract model and dynamic bladder model with a voiding interval 4.8 h, the three organs with highest exposure (in mu Gy.MBq(-1) (mrad.mCi(-1)) were kidneys 75.68 (280), lungs 44.86 (166) and urinary bladder 58.38 (216). Effective doses estimated with and without urine voiding were in the range 21.35-22.70 mu Gy.MBq(-1) (79-84 mrad.mCi(-1)).
Conclusion: The estimated radiation burden of 18F-FECNT is relatively modest and would allow multiple scans per research subject per year.
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http://dx.doi.org/10.1097/01.mnm.0000133074.64669.60 | DOI Listing |
J Med Internet Res
January 2025
Division of Clinical Pathology, Department of Pathology, Tri-Service General Hospital, National Defense Medical Center, Taipei, Taiwan.
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January 2025
European Molecular Biology Laboratory, European Bioinformatics Institute, Wellcome Genome Campus, Hinxton, Cambridge, CB10 1SD, United Kingdom.
Summary: In recent years there has been a surge in prokaryotic genome assemblies, coming from both isolated organisms and environmental samples. These assemblies often include novel species that are poorly represented in reference databases creating a need for a tool that can annotate both well-described and novel taxa, and can run at scale. Here, we present mettannotator-a comprehensive, scalable Nextflow pipeline for prokaryotic genome annotation that identifies coding and non-coding regions, predicts protein functions, including antimicrobial resistance, and delineates gene clusters.
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January 2025
Chemical and Energy Engineering, Faculty of Engineering, Universiti Teknologi Brunei, Bandar Seri Begawan, Brunei.
The human body gets exposed to a variety of toxins intentionally or unintentionally on a regular basis from sources such as air, water, food, and soil. Certain toxins can be synthetic, while some are biological. The toxins affect the various parts of the body by activating numerous pro-inflammatory markers, like oxidative stresses, that tend to disturb the normal function of the organs ultimately.
View Article and Find Full Text PDFMed Phys
January 2025
Faculty of Physics, Astronomy and Applied Computer Science, Jagiellonian University, Kraków, Poland.
Background: Total-body (TB) Positron Emission Tomography (PET) is one of the most promising medical diagnostics modalities, opening new perspectives for personalized medicine, low-dose imaging, multi-organ dynamic imaging or kinetic modeling. The high sensitivity provided by total-body technology can be advantageous for novel tomography methods like positronium imaging, demanding the registration of triple coincidences. Currently, state-of-the-art PET scanners use inorganic scintillators.
View Article and Find Full Text PDFNat Prod Bioprospect
January 2025
International Research Center for Food Nutrition and Safety, Jiangsu University, Zhenjiang, 212013, China.
Marine natural products have long been recognized as a vast and diverse source of bioactive compounds with potential therapeutic applications, particularly in oncology. This review provides an updated overview of the significant advances made in the discovery and development of marine-derived anticancer drugs between 2019 and 2023. With a focus on recent research findings, the review explores the rich biodiversity of marine organisms, including sponges, corals, algae, and microorganisms, which have yielded numerous compounds exhibiting promising anticancer properties.
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