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1.
Lab Chip ; 21(20): 4005-4015, 2021 10 12.
Artigo em Inglês | MEDLINE | ID: mdl-34476431

RESUMO

Rapid and personalized single-cell drug screening testing plays an essential role in acute myeloid leukemia drug combination chemotherapy. Conventional chemotherapeutic drug screening is a time-consuming process because of the natural resistance of cell membranes to drugs, and there are still great challenges related to using technologies that change membrane permeability such as sonoporation in high-throughput and precise single-cell drug screening with minimal damage. In this study, we proposed an acoustic streaming-based non-invasive single-cell drug screening acceleration method, using high-frequency acoustic waves (>10 MHz) in a concentration gradient microfluidic device. High-frequency acoustics leads to increased difficulties in inducing cavitation and generates acoustic streaming around each single cell. Therefore, single-cell membrane permeability is non-invasively increased by the acoustic pressure and acoustic streaming-induced shear force, which significantly improves the drug uptake process. In the experiment, single human myeloid leukemia mononuclear (THP-1) cells were trapped by triangle cell traps in concentration gradient chips with different cytarabine (Ara-C) drug concentrations. Due to this dual acoustic effect, the drugs affect cell viability in less than 30 min, which is faster than traditional methods (usually more than 24 h). This dual acoustic effect-based drug delivery strategy has the potential to save time and reduce the cost of drug screening, when combined with microfluidic technology for multi-concentration drug screening. This strategy offers enormous potential for use in multiple drug screening or efficient drug combination screening in individualized/personalized treatments, which can greatly improve efficiency and reduce costs.


Assuntos
Acústica , Leucemia Mieloide Aguda , Permeabilidade da Membrana Celular , Sobrevivência Celular , Avaliação Pré-Clínica de Medicamentos , Humanos
2.
Nanotechnology ; 29(13): 134004, 2018 Apr 03.
Artigo em Inglês | MEDLINE | ID: mdl-29334363

RESUMO

Nanotechnology possesses the potential to revolutionize the diagnosis and treatment of tumors. The ideal nanoparticles used for in vivo cancer therapy should have long blood circulation times and active cancer targeting. Additionally, they should be harmless and invisible to the immune system. Here, we developed a biomimetic nanoplatform with the above properties for cancer therapy. Macrophage membranes were reconstructed into vesicles and then coated onto magnetic iron oxide nanoparticles (Fe3O4 NPs). Inherited from the Fe3O4 core and the macrophage membrane shell, the resulting Fe3O4@MM NPs exhibited good biocompatibility, immune evasion, cancer targeting and light-to-heat conversion capabilities. Due to the favorable in vitro and in vivo properties, biomimetic Fe3O4@MM NPs were further used for highly effective photothermal therapy of breast cancer in nude mice. Surface modification of synthetic nanomaterials with biomimetic cell membranes exemplifies a novel strategy for designing an ideal nanoplatform for translational medicine.


Assuntos
Neoplasias da Mama/terapia , Hipertermia Induzida/métodos , Terapia com Luz de Baixa Intensidade/métodos , Nanopartículas de Magnetita/uso terapêutico , Terapia de Alvo Molecular/métodos , Nanomedicina Teranóstica/métodos , Animais , Transporte Biológico , Neoplasias da Mama/metabolismo , Neoplasias da Mama/patologia , Membrana Celular/imunologia , Membrana Celular/metabolismo , Feminino , Óxido Ferroso-Férrico/química , Óxido Ferroso-Férrico/metabolismo , Humanos , Evasão da Resposta Imune , Células MCF-7 , Nanopartículas de Magnetita/ultraestrutura , Camundongos , Camundongos Endogâmicos BALB C , Camundongos Endogâmicos ICR , Camundongos Nus , Células RAW 264.7 , Ensaios Antitumorais Modelo de Xenoenxerto
3.
Angew Chem Int Ed Engl ; 57(4): 986-991, 2018 01 22.
Artigo em Inglês | MEDLINE | ID: mdl-29193651

RESUMO

Here, we present a platelet-facilitated photothermal tumor therapy (PLT-PTT) strategy, in which PLTs act as carriers for targeted delivery of photothermal agents to tumor tissues and enhance the PTT effect. Gold nanorods (AuNRs) were first loaded into PLTs by electroporation and the resulting AuNR-loaded PLTs (PLT-AuNRs) inherited long blood circulation and cancer targeting characteristics from PLTs and good photothermal property from AuNRs. Using a gene-knockout mouse model, we demonstrate that the administration of PLT-AuNRs and localizing laser irradiation could effectively inhibit the growth of head and neck squamous cell carcinoma (HNSCC). In addition, we found that the PTT treatment augmented PLT-AuNRs targeting to the tumor sites and in turn, improved the PTT effects in a feedback manner, demonstrating the unique self-reinforcing characteristic of PLT-PTT in cancer therapy.


Assuntos
Plaquetas/química , Lasers , Fototerapia , Carcinoma de Células Escamosas de Cabeça e Pescoço/terapia , Animais , Plaquetas/citologia , Linhagem Celular Tumoral , Proliferação de Células/efeitos dos fármacos , Proliferação de Células/efeitos da radiação , Ouro/química , Humanos , Camundongos , Camundongos Endogâmicos ICR , Camundongos Knockout , Microscopia Confocal , Nanotubos/química , Nanotubos/toxicidade , PTEN Fosfo-Hidrolase/deficiência , PTEN Fosfo-Hidrolase/genética , Células RAW 264.7 , Receptor do Fator de Crescimento Transformador beta Tipo I/deficiência , Receptor do Fator de Crescimento Transformador beta Tipo I/genética , Carcinoma de Células Escamosas de Cabeça e Pescoço/metabolismo
4.
ACS Nano ; 11(4): 3496-3505, 2017 04 25.
Artigo em Inglês | MEDLINE | ID: mdl-28272874

RESUMO

Biomimetic cell membrane-coated nanoparticles (CM-NPs) with superior biochemical properties have been broadly utilized for various biomedical applications. Currently, researchers primarily focus on using ultrasonic treatment and mechanical extrusion to improve the synthesis of CM-NPs. In this work, we demonstrate that microfluidic electroporation can effectively facilitate the synthesis of CM-NPs. To test it, Fe3O4 magnetic nanoparticles (MNs) and red blood cell membrane-derived vesicles (RBC-vesicles) are infused into a microfluidic device. When the mixture of MNs and RBC-vesicles flow through the electroporation zone, the electric pulses can effectively promote the entry of MNs into RBC-vesicles. After that, the resulting RBC membrane-capped MNs (RBC-MNs) are collected from the chip and injected into experimental animals to test the in vivo performance. Owing to the superior magnetic and photothermal properties of the MN cores and the long blood circulation characteristic of the RBC membrane shells, core-shell RBC-MNs were used for enhanced tumor magnetic resonance imaging (MRI) and photothermal therapy (PTT). Due to the completer cell membrane coating, RBC-MNs prepared by microfluidic electroporation strategy exhibit significantly better treatment effect than the one fabricated by conventional extrusion. We believe the combination of microfluidic electroporation and CM-NPs provides an insight into the synthesis of bioinpired nanoparticles to improve cancer diagnosis and therapy.


Assuntos
Neoplasias da Mama/diagnóstico por imagem , Neoplasias da Mama/tratamento farmacológico , Materiais Revestidos Biocompatíveis/química , Eletroporação , Membrana Eritrocítica/metabolismo , Nanopartículas de Magnetita/química , Técnicas Analíticas Microfluídicas , Animais , Materiais Revestidos Biocompatíveis/síntese química , Membrana Eritrocítica/química , Humanos , Células MCF-7 , Imageamento por Ressonância Magnética , Neoplasias Mamárias Experimentais/diagnóstico por imagem , Neoplasias Mamárias Experimentais/tratamento farmacológico , Camundongos , Camundongos Endogâmicos BALB C , Camundongos Nus , Tamanho da Partícula , Fototerapia , Células RAW 264.7 , Propriedades de Superfície
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