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by Keyword: Positron emission tomography
Yin, Haolin, Deng, Yuepeng, Lu, ZiHao, Jiang, Yu, Zuo, Chao, Li, Jianyu, Guo, Linlin, Ying, Binwu, Battaglia, Giuseppe, Tian, Xiaohe, Gong, Qiyong, (2026). Choroid plexus remodeling linked to impaired CSF-mediated clearance and Alzheimer's disease progression Alzheimers & Dementia 22, e71606
INTRODUCTION Impaired cerebrospinal fluid (CSF) -mediated clearance has been implicated in Alzheimer's disease (AD), but how choroid plexus (ChP) remodeling relates to these processes in vivo remains incompletely understood.METHODS In a large ADNI cohort, we integrated structural magnetic resonance imaging (MRI), amyloid/tau positron emission tomography (PET), and diffusion tensor imaging (DTI) -derived analysis along the perivascular space (ALPS) to characterize ChP changes and their associations with ventricular measures, glymphatic marker, CSF biomarkers, and cognition across diagnostic stages. Our experiments in APP/PS1 mice complemented human analyses.RESULTS ChP volume increased with disease stage, while PET signal decreased. Larger ChP volume was associated with ventricular enlargement, a lower ALPS index, higher cortical amyloid/tau burden, and worse cognitive performance. Glymphatic impairment partially mediated ChP effects on cognition and pathology. APP/PS1 mice recapitulated the key ChP and glymphatic MRI phenotypes observed in humans, alongside altered expression and localization of key proteins.DISCUSSION ChP remodeling linked to impaired CSF-mediated clearance, highlighting its role as an early diagnostic and therapeutic target.
JTD Keywords: Alzheimer disease, Cerebrospinal-fluid, Choroid plexus, Glymphatic system, Magnetic resonance imaging, Mouse, Positron emission tomography, Positron-emission-tomography, Psychoradiology, Tau, Volume
Simo, C, Serra-Casablancas, M, Hortelao, AC, Di Carlo, V, Guallar-Garrido, S, Plaza-Garcia, S, Rabanal, RM, Ramos-Cabrer, P, Yaguee, B, Aguado, L, Bardia, L, Tosi, S, Gomez-Vallejo, V, Martin, A, Patino, T, Julian, E, Colombelli, J, Llop, J, Sanchez, S, (2024). Urease-powered nanobots for radionuclide bladder cancer therapy Nature Nanotechnology 19, 554-564
Bladder cancer treatment via intravesical drug administration achieves reasonable survival rates but suffers from low therapeutic efficacy. To address the latter, self-propelled nanoparticles or nanobots have been proposed, taking advantage of their enhanced diffusion and mixing capabilities in urine when compared with conventional drugs or passive nanoparticles. However, the translational capabilities of nanobots in treating bladder cancer are underexplored. Here, we tested radiolabelled mesoporous silica-based urease-powered nanobots in an orthotopic mouse model of bladder cancer. In vivo and ex vivo results demonstrated enhanced nanobot accumulation at the tumour site, with an eightfold increase revealed by positron emission tomography in vivo. Label-free optical contrast based on polarization-dependent scattered light-sheet microscopy of cleared bladders confirmed tumour penetration by nanobots ex vivo. Treating tumour-bearing mice with intravesically administered radio-iodinated nanobots for radionuclide therapy resulted in a tumour size reduction of about 90%, positioning nanobots as efficient delivery nanosystems for bladder cancer therapy.© 2024. The Author(s).
JTD Keywords: cell, drug-delivery, nanomotors, tissue, Bladder cancers, Cancer therapy, Diseases, Drug administration, Drug delivery, Enhanced diffusion, Enhanced mixing, Ex-vivo, In-vivo, Mammals, Nanobots, Nanoparticles, Nanosystems, Oncology, Positron emission tomography, Radioisotopes, Silica, Survival rate, Therapeutic efficacy, Tumor penetration, Tumors
Hortelao, AC, Simó, C, Guix, M, Guallar-Garrido, S, Julián, E, Vilela, D, Rejc, L, Ramos-Cabrer, P, Cossío, U, Gómez-Vallejo, V, Patiño, T, Llop, J, Sánchez, S, (2021). Swarming behavior and in vivo monitoring of enzymatic nanomotors within the bladder Science Robotics 6, eabd2823
Enzyme-powered nanomotors are an exciting technology for biomedical applications due to their ability to navigate within biological environments using endogenous fuels. However, limited studies into their collective behavior and demonstrations of tracking enzyme nanomotors in vivo have hindered progress toward their clinical translation. Here, we report the swarming behavior of urease-powered nanomotors and its tracking using positron emission tomography (PET), both in vitro and in vivo. For that, mesoporous silica nanoparticles containing urease enzymes and gold nanoparticles were used as nanomotors. To image them, nanomotors were radiolabeled with either I on gold nanoparticles or F-labeled prosthetic group to urease. In vitro experiments showed enhanced fluid mixing and collective migration of nanomotors, demonstrating higher capability to swim across complex paths inside microfabricated phantoms, compared with inactive nanomotors. In vivo intravenous administration in mice confirmed their biocompatibility at the administered dose and the suitability of PET to quantitatively track nanomotors in vivo. Furthermore, nanomotors were administered directly into the bladder of mice by intravesical injection. When injected with the fuel, urea, a homogeneous distribution was observed even after the entrance of fresh urine. By contrast, control experiments using nonmotile nanomotors (i.e., without fuel or without urease) resulted in sustained phase separation, indicating that the nanomotors’ self-propulsion promotes convection and mixing in living reservoirs. Active collective dynamics, together with the medical imaging tracking, constitute a key milestone and a step forward in the field of biomedical nanorobotics, paving the way toward their use in theranostic applications. 124 18
JTD Keywords: cell, reversal, silica nanoparticles, size, step, transport, Administration, intravesical, Animals, Equipment design, Female, Gold, Metal nanoparticles, Mice, Mice, inbred c57bl, Motion, Phantoms, imaging, Positron emission tomography computed tomography, Precision medicine, Propelled micromotors, Robotics, Translational research, biomedical, Urease, Urinary bladder