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Bagrov, D.

Publications and source records attributed to Bagrov, D..

2 recordsLinked to original sources

Yttrium-90-doped metal-organic frameworks (MOFs) for low-dose rate intratumoral radiotherapy

Brachytherapy, or intratumoral radiation therapy, is a highly effective treatment option for localized tumors. Herein, we engineered injectable and biodegradable metal-organic frameworks (MOFs) to deliver the therapeutic radioisotope yttrium-90 (90Y). Particles of bimetallic MIL-100(Fe,Y) and Y-BTC, doped with 90Y and 88Y, were synthesized in a single step and retained radioyttrium in various buffer solutions. Tumor injectability and radioisotope retention were evaluated using tumor-bearing mice. In vivo analysis and calculations showed that radiolabeled MIL-100(Fe,Y) emitted more than 38% of its radioactivity, while Y-BTC emitted greater than 75% of its radioactivity, through 7 days at the tumor site upon intratumoral injection, without significant yttrium accumulation in off-target tissues. The anticancer effects of MIL-100(Fe,Y,90Y) and 90Y,Y-BTC particles were assessed using 3D multicellular tumor spheroids and a tumor-bearing mouse model, respectively. 90Y-doped MIL-100(Fe,Y) particles penetrated A549 tumor spheroids and caused superior cytotoxic effects compared to non-radioactive particles or 90YCl3, added at the same dose. Brachytherapy with 90Y-doped Y-BTC MOFs induced inhibition of B16F1 melanoma tumor growth and resulted in an increased median survival of 8.5 days compared to 4.5 days in untreated mice. This study exhibits the feasibility to prepare radioactive 90Y-containing biodegradable, non-toxic MOF particles that are advantageous for low-dose rate internal radiotherapy.

biophysics↗

Retrovirus-Like Gag Protein Arc/Arg3.1 is Involved in Extracellular-Vesicle-Mediated mRNA Transfer between Glioma Cells

Activity-regulated cytoskeleton-associated (Arc) protein is expressed in neural tissue of vertebrates, where it plays a pivotal role in modulation of synaptic communication. In addition, Arc protein forms capsid-like particles, which can encapsulate and transfer mRNA in extracellular vesicles (EVs) between neurons, that could modulate synaptic function and plasticity. Glioma cell networks actively interact with neurons via paracrine signaling and formation of neurogliomal glutamatergic synapses that contribute to cancer cell survival, proliferation, and invasion. Here, we revealed that Arc is expressed in human glioma cell lines, which can produce EVs containing Arc protein and Arc mRNA (or "Arc EVs"). Recombinant Arc protein binds to Arc mRNA with 1.5-fold higher affinity as compared with control mCherry mRNA. Arc EVs from U87 glioma cells internalize and deliver Arc mRNA to recipient U87 cells, where it is translated into a protein. Arc overexpression significantly increases EV production, alters EV morphology, and enhances intercellular transfer of highly expressed mRNA in glioma cell culture. These findings indicate involvement of Arc EVs into mRNA transfer between glioma cells that could contribute to tumor progression and affect synaptic plasticity in cancer patients.

cancer biology↗