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1.
Blood Cells Mol Dis ; 80: 102375, 2020 02.
Artigo em Inglês | MEDLINE | ID: mdl-31655394

RESUMO

BACKGROUND: Extracellular vesicles, have gained increasing attention for their application in drug delivery. Here, we developed a novel method for radiolabeling WBCs with 99mTc using RBC-derived extracellular vesicles -mimetics (EVMs), and monitored in vivo inflammation tracking of 99mTc-WBC using gamma camera in acute inflammation mouse model. METHODS: Engineered EVMs from RBCs were produced by a one-step extrusion method. RBC-EVMs were analyzed by NTA and TEM. Cells were labeled with 99mTc by using 99mTc-RBC-EVMs. Inflammation mice model was prepared and confirmed by 18F-FDG PET/CT. 99mTc-WBCs were injected in mice, and their biodistribution was analyzed by gamma camera. FINDING: The radiochemical purity of 99mTc-RBC-EVMs was 100%. The 99mTc-labeling did't affect the size and morphology. The 99mTc in the cytoplasm of RBC-EVMs was successfully confirmed by high angle annular dark field STEM (scanning transmission electron microscope). Cells were successfully labeled with 99mTc using 99mTc-RBC-EVMs, and the counts per minute was increased in dose- and time-dependent manners. The 18F-FDG PET/CT images confirmed establishment of acute inflammation (left mouse foot). 99mTc-WBCs showed higher uptake in the inflamed foot than non-inflamed foot. INTERPRETATION: This novel method for radiolabeling WBCs using RBC-EVMs. 99mTc labeling may be a feasible method to monitor the in vivo biodistribution of cells.


Assuntos
Eritrócitos/metabolismo , Vesículas Extracelulares/metabolismo , Leucócitos/metabolismo , Compostos Radiofarmacêuticos/metabolismo , Tecnécio/metabolismo , Animais , Rastreamento de Células , Modelos Animais de Doenças , Vesículas Extracelulares/ultraestrutura , Feminino , Inflamação/diagnóstico por imagem , Inflamação/etiologia , Inflamação/metabolismo , Camundongos , Imagem Molecular/métodos , Ratos , Coloração e Rotulagem , Frações Subcelulares , Distribuição Tecidual
2.
Nanomedicine (Lond) ; 19(1): 25-41, 2024 01.
Artigo em Inglês | MEDLINE | ID: mdl-38059464

RESUMO

Aim: To develop nanocarriers for targeting the delivery of chemotherapeutics to overcome multidrug-resistant ovarian cancer. Materials & methods: Doxorubicin-loaded nanovesicles were obtained through serial extrusion, followed by loading of P-glycoprotein siRNA and folic acid. The targeting ability and anticancer efficacy of the nanovesicles were evaluated. Results: The doxorubicin-loaded nanovesicles showed a high production yield. The presence of P-glycoprotein siRNA and folic acid resulted in reversed drug resistance and tumor targeting. This nanoplatform tremendously inhibited the viability of multidrug-resistant ovarian cancer cells, which was able to target tumor tissue and suppress tumor growth without adverse effects. Conclusion: These bioengineered nanovesicles could serve as novel extracellular vesicles mimetics for chemotherapeutics delivery to overcome multidrug resistance.


When treating cancer affecting the ovaries, which is an organ in the female reproductive system, two challenges that arise are the inefficient delivery of chemotherapeutic drugs and the development of drug resistance inside the tumor. In this study, very small nano-scale particles called nanovesicles, which contain a chemotherapeutic drug called doxorubicin, were developed in an attempt to overcome both of these concerns. These nanovesicles were secreted by a healthy cell from an ovary, isolated and loaded with doxorubicin. These nanovesicles were also loaded with siRNA, which, in this case, prevents the synthesis of a protein in ovarian tumor cells called P-glycoprotein. This protein is responsible for pumping chemotherapy drugs back out of tumor cells, so preventing its synthesis was intended to counter chemotherapeutic resistance. The targeting ability of the nanovesicle was also enhanced with folic acid, as folic acid receptors are present on the surface of these tumor cells in higher numbers. These nanovesicles were readily and specifically taken up by ovarian tumor cells in mice with induced ovarian cancer. This reversed drug resistance and enhanced the toxic effects of doxorubicin on the tumor cells, which, in turn, increased tumor cell death and prevented tumor cell migration. No obvious adverse effect was found in mice treated with the nanovesicle system compared with the free chemotherapy drug with critical systematic toxicity. This research provides new avenues for ovarian cancer treatment, with combined therapies of siRNAs and chemotherapeutic drugs, targeted to tumor cells specifically, within nanovesicles.


Assuntos
Vesículas Extracelulares , Neoplasias Ovarianas , Feminino , Humanos , Linhagem Celular Tumoral , Doxorrubicina/farmacologia , Neoplasias Ovarianas/tratamento farmacológico , Neoplasias Ovarianas/genética , Portadores de Fármacos/farmacologia , Membro 1 da Subfamília B de Cassetes de Ligação de ATP , RNA Interferente Pequeno/genética , RNA Interferente Pequeno/farmacologia , Subfamília B de Transportador de Cassetes de Ligação de ATP/farmacologia , Ácido Fólico/farmacologia , Resistencia a Medicamentos Antineoplásicos
3.
Adv Healthc Mater ; 12(30): e2300811, 2023 12.
Artigo em Inglês | MEDLINE | ID: mdl-37669775

RESUMO

A new therapeutic approach using cell-derived nanovesicles (cdNVs) is offered here to overcome the lack of effective treatments for liver fibrosis, a reversible chronic liver disease. To achieve this goal the formation and purification of cdNVs from untreated, quiescent-like, or activated LX-2 cells, an immortalized human hepatic stellate cell (HSC) line with key features of transdifferentiated HSCs are established. Analysis of the genotype and phenotype of naïve and transdifferentiated LX-2 cells activated through transforming growth factor beta 1, following treatment with cdNVs, reveals a concentration-dependent fibrosis regression. The beneficial fibrosis-resolving effects of cdNVs are linked to their biomolecular corona. Liposomes generated using lipids extracted from cdNVs exhibit a reduced antifibrotic response in perpetuated LX-2 cells and show a reduced cellular uptake. However, incubation with soluble factors collected during purification results in a new corona, thereby restoring fibrosis regression activity. Overall, cdNVs display encouraging therapeutic properties, making them a promising candidate for the development of liver fibrosis resolving therapeutics.


Assuntos
Cirrose Hepática , Fígado , Humanos , Cirrose Hepática/tratamento farmacológico , Fígado/metabolismo , Linhagem Celular , Fibrose , Células Estreladas do Fígado/metabolismo , Células Estreladas do Fígado/patologia
4.
Mater Today Bio ; 18: 100522, 2023 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-36593913

RESUMO

Extracellular vesicles (EVs) are a collective term for nanoscale or microscale vesicles secreted by cells that play important biological roles. Mesenchymal stem cells are a class of cells with the potential for self-healing and multidirectional differentiation. In recent years, numerous studies have shown that EVs, especially those secreted by mesenchymal stem cells, can promote the repair and regeneration of various tissues and, thus, have significant potential in regenerative medicine. However, due to the rapid clearance capacity of the circulatory system, EVs are barely able to act persistently at specific sites for repair of target tissues. Hydrogels have good biocompatibility and loose and porous structural properties that allow them to serve as EV carriers, thereby prolonging the retention in certain specific areas and slowing the release of EVs. When EVs are needed to function at specific sites, the EV-loaded hydrogels can stand as an excellent approach. In this review, we first introduce the sources, roles, and extraction and characterization methods of EVs and describe their current application status. We then review the different types of hydrogels and discuss factors influencing their abilities to carry and release EVs. We summarize several strategies for loading EVs into hydrogels and characterizing EV-loaded hydrogels. Furthermore, we discuss application strategies for EV-loaded hydrogels and review their specific applications in tissue regeneration and repair. This article concludes with a summary of the current state of research on EV-loaded hydrogels and an outlook on future research directions, which we hope will provide promising ideas for researchers.

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