Advances in Microfluidic-Based Core@Shell Nanoparticles Fabrication for Cancer Applications

被引:9
作者
Almeida, Duarte R. S. [1 ,2 ]
Gil, Joao Ferreira [1 ,2 ]
Guillot, Antonio Jose [3 ,4 ]
Li, Jiachen [4 ]
Pinto, Ricardo J. B. [5 ]
Santos, Helder A. [4 ,6 ]
Goncalves, Gil [1 ,2 ]
机构
[1] Univ Aveiro, Ctr Mech Technol & Automat TEMA, Mech Engn Dept, P-3810193 Aveiro, Portugal
[2] Intelligent Syst Associate Lab LASI, PR-4800058 Guimaraes, Portugal
[3] Univ Valencia, Dept Pharm & Pharmaceut Technol & Parasitol, Ave Vicent Andres Estelles S-N, Burjassot 46100, Valencia, Spain
[4] Univ Groningen, Univ Med Ctr Groningen UMCG, Dept Biomat & Biomed Technol, NL-9713 AV Groningen, Netherlands
[5] Univ Aveiro, Aveiro Inst Mat, Chem Dept, CICECO, PR-3810193 Aveiro, Portugal
[6] Univ Helsinki, Fac Pharm, Drug Res Program, Div Pharmaceut Chem & Technol, FI-00014 Helsinki, Finland
基金
瑞典研究理事会; 芬兰科学院;
关键词
multiphasic nanoparticles; nanomedicine; theragnostic microfluidics; tumor targeting; HIGH-THROUGHPUT SYNTHESIS; DRUG-DELIVERY; FLASH NANOPRECIPITATION; LIPID NANOPARTICLES; POLYMERIC NANOPARTICLES; SURFACE MODIFICATION; DROPLET GENERATION; PLGA NANOPARTICLE; CAPILLARY NUMBER; SIRNA DELIVERY;
D O I
10.1002/adhm.202400946
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Current research in cancer therapy focuses on personalized therapies, through nanotechnology-based targeted drug delivery systems. Particularly, controlled drug release with nanoparticles (NPs) can be designed to safely transport various active agents, optimizing delivery to specific organs and tumors, minimizing side effects. The use of microfluidics (MFs) in this field has stood out against conventional methods by allowing precise control over parameters like size, structure, composition, and mechanical/biological properties of nanoscale carriers. This review compiles applications of microfluidics in the production of core-shell NPs (CSNPs) for cancer therapy, discussing the versatility inherent in various microchannel and/or micromixer setups and showcasing how these setups can be utilized individually or in combination, as well as how this technology allows the development of new advances in more efficient and controlled fabrication of core-shell nanoformulations. Recent biological studies have achieved an effective, safe, and controlled delivery of otherwise unreliable encapsulants such as small interfering RNA (siRNA), plasmid DNA (pDNA), and cisplatin as a result of precisely tuned fabrication of nanocarriers, showing that this technology is paving the way for innovative strategies in cancer therapy nanofabrication, characterized by continuous production and high reproducibility. Finally, this review analyzes the technical, biological, and technological limitations that currently prevent this technology from becoming the standard. Microfluidic (MF) devices may become standard for CSNP formulation in cancer therapy, allowing precise control over the properties of nanocarriers. Precise nanofabrication pushes the boundaries in clinical research, as otherwise unstable anticancer agents now become viable for clinical practice. Recent advances in MF technology, although extremely versatile and modulable, are still limited by low scalability and dedicated infrastructures. image
引用
收藏
页数:26
相关论文
共 50 条
[21]   Recent Advances in Design and Fabrication of Upconversion Nanoparticles and Their Safe Theranostic Applications [J].
Gu, Zhanjun ;
Yan, Liang ;
Tian, Gan ;
Li, Shoujian ;
Chai, Zhifang ;
Zhao, Yuliang .
ADVANCED MATERIALS, 2013, 25 (28) :3758-3779
[22]   Microfluidic-based fabrication of alginate microparticles for protein delivery and its application in the in vitro chondrogenesis of mesenchymal stem cells [J].
Kieu The Loan Trinh ;
Nguyen Xuan Thanh Le ;
Lee, Nae Yoon .
JOURNAL OF DRUG DELIVERY SCIENCE AND TECHNOLOGY, 2021, 66
[23]   Microfluidic-based synthesized carboxymethyl chitosan nanoparticles containing metformin for diabetes therapy: In vitro and in vivo assessments [J].
Lari, Atefe Sadeghi ;
Zahedi, Payam ;
Ghourchian, Hedayatollah ;
Khatibi, Alireza .
CARBOHYDRATE POLYMERS, 2021, 261
[24]   Regulation of multifunctional mesoporous core-shell nanoparticles with luminescence and magnetic properties for biomedical applications [J].
Hu, Xiaoqing ;
Wang, Mingliang ;
Miao, Fei ;
Ma, Jingwei ;
Shen, Hebai ;
Jia, Nengqin .
JOURNAL OF MATERIALS CHEMISTRY B, 2014, 2 (16) :2265-2275
[25]   Core-Shell Magnetoelectric Nanoparticles: Materials, Synthesis, Magnetoelectricity, and Applications [J].
Song, Hyunseok ;
Listyawan, Michael Abraham ;
Ryu, Jungho .
ACTUATORS, 2022, 11 (12)
[26]   Recent development and advances on fabrication and biomedical applications of Ga-based liquid metal micro/nanoparticles [J].
Yang, Xiaowei ;
Yu, Ying ;
Lai, Qi ;
Yang, Xinmin ;
Luo, Peng ;
Zhang, Bin ;
Zhang, Xiaoyong ;
Wei, Yen .
COMPOSITES PART B-ENGINEERING, 2023, 248
[27]   High-Load Core@Shell Nanocarriers with Irinotecan and 5-Fluorouracil for Combination Chemotherapy in Colorectal Cancer [J].
Notter, Silke ;
Choezom, Dolma ;
Griebel, Titus ;
Ramos-Gomes, Fernanda ;
Moebius, Wiebke ;
De Oliveira, Tiago ;
Conradi, Lena-Christin ;
Alves, Frauke ;
Feldmann, Claus .
SMALL SCIENCE, 2024, 4 (11)
[28]   Polymer based nanoparticles for biomedical applications by microfluidic techniques: from design to biological evaluation [J].
Fabozzi, Antonio ;
Della Sala, Francesca ;
di Gennaro, Mario ;
Solimando, Nicola ;
Pagliuca, Maurizio ;
Borzacchiello, Assunta .
POLYMER CHEMISTRY, 2021, 12 (46) :6667-6687
[29]   Recent advances in polymer shell-oily core nanocapsules for drug delivery applications [J].
AbdElhamid, Ahmed S. ;
Zayed, Dina G. ;
Heikal, Lamia ;
Khattab, Sherine N. ;
Mady, Omar Y. ;
El-Gizawy, Sanaa A. ;
Elzoghby, Ahmed O. .
NANOMEDICINE, 2021, 16 (18) :1613-1625
[30]   Cancer theranostic applications of lipid-based nanoparticles [J].
Tang, Wei-Lun ;
Tang, Wei-Hsin ;
Li, Shyh-Dar .
DRUG DISCOVERY TODAY, 2018, 23 (05) :1159-1166