The connection between the nasal cavity and the CNS by the olfactory neurones has been investigated extensively during the last decades with regard to its feasibility to serve as a direct drug transport route to the CSF and brain. This drug transport route has gained much interest as it may circumvent the blood-brain barrier (BBB), which prevents some drugs from entering the brain. Approximately 100 published papers mainly reporting animal experiments were reviewed to evaluate whether the experimental design used and the results generated provided adequate pharmacokinetic information to assess whether the investigated drug was transported directly from the olfactory area to the CNS. In the analysis the large anatomical differences between the olfactory areas of animals and humans and the experimental conditions used were evaluated. The aim of this paper was to establish the actual evidence for the feasibility of this direct transport route in humans. Twelve papers presented a sound experimental design to study direct nose to CNS transport of drugs based on the authors' criteria. Of these, only two studies in rats were able to provide results that can be seen as an indication for direct transport from the nose to the CNS. No pharmacokinetic evidence could be found to support a claim that nasal administration of drugs in humans will result in an enhanced delivery to their target sites in the brain compared with intravenous administration of the same drug under similar dosage conditions.
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http://dx.doi.org/10.2165/00126839-200708030-00001 | DOI Listing |
BMC Cancer
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Department of Pediatric Surgery, the First Affiliated Hospital of Zhengzhou University, Zhengzhou, Henan, China.
Background: Neuroblastoma, a prevalent extracranial solid tumor in pediatric patients, demonstrates significant clinical heterogeneity, ranging from spontaneous regression to aggressive metastatic disease. Despite advances in treatment, high-risk neuroblastoma remains associated with poor survival. SLC1A5, a key glutamine transporter, plays a dual role in promoting tumor growth and immune modulation.
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January 2025
Laboratoire d'Océanographie Physique et Spatiale (LOPS), IUEM, CNRS, Ifremer, IRD, University of Brest, 29280, Plouzané, France.
Internal solitary waves (ISWs) propagate in stratified waters, enhancing diapycnal mixing, sediment and mass transport on shelves. They have typical wavelengths of hundreds of meters and tens of minutes periods, requiring high resolution and high frequency measurements for their sampling. But such in-situ measurements are scarce and ISWs remain largely unpredictable.
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January 2025
Department of Biomedical Engineering, State University of New York at Binghamton, Binghamton, NY, 13902, USA.
Creating durable, motion-compliant neural interfaces is crucial for accessing dynamic tissues under in vivo conditions and linking neural activity with behaviors. Utilizing the self-alignment of nano-fillers in a polymeric matrix under repetitive tension, here, we introduce conductive carbon nanotubes with high aspect ratios into semi-crystalline polyvinyl alcohol hydrogels, and create electrically anisotropic percolation pathways through cyclic stretching. The resulting anisotropic hydrogel fibers (diameter of 187 ± 13 µm) exhibit fatigue resistance (up to 20,000 cycles at 20% strain) with a stretchability of 64.
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January 2025
Sustainable Environment Research Institute, Chulalongkorn University, Bangkok, Thailand. Electronic address:
Models estimate up to 3 million metric tons of river plastic waste flowing into the world's ocean every year. All ocean-bound rivers endure tidal impact to some degree, but there is a lack of data on the resulting marine emission effects. To address this gap we analyzed the trajectories of grapefruit-sized floating GPS drifters (n = 63) in the Chao Phraya estuary in Bangkok, Thailand, in the three seasons of 2022-2023.
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NRG Therapeutics, Stevenage, United Kingdom.
Optimizing pharmacokinetics is an integral part of drug design, albeit a lesser understood one from the medicinal chemist's perspective. Over the years, molecular tools and experimental strategies have been developed to better understand the fate of compounds. Among these, the use of aminobenzotriazole (ABT), elacridar and bile-duct cannulated rats have been instrumental in gaining valuable PK insights, with a direct impact on drug design.
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