Literature DB >> 28919029

Recent advances of controlled drug delivery using microfluidic platforms.

Sharma T Sanjay1, Wan Zhou1, Maowei Dou2, Hamed Tavakoli1, Lei Ma1, Feng Xu3, XiuJun Li4.   

Abstract

Conventional systematically-administered drugs distribute evenly throughout the body, get degraded and excreted rapidly while crossing many biological barriers, leaving minimum amounts of the drugs at pathological sites. Controlled drug delivery aims to deliver drugs to the target sites at desired rates and time, thus enhancing the drug efficacy, pharmacokinetics, and bioavailability while maintaining minimal side effects. Due to a number of unique advantages of the recent microfluidic lab-on-a-chip technology, microfluidic lab-on-a-chip has provided unprecedented opportunities for controlled drug delivery. Drugs can be efficiently delivered to the target sites at desired rates in a well-controlled manner by microfluidic platforms via integration, implantation, localization, automation, and precise control of various microdevice parameters. These features accordingly make reproducible, on-demand, and tunable drug delivery become feasible. On-demand self-tuning dynamic drug delivery systems have shown great potential for personalized drug delivery. This review presents an overview of recent advances in controlled drug delivery using microfluidic platforms. The review first briefly introduces microfabrication techniques of microfluidic platforms, followed by detailed descriptions of numerous microfluidic drug delivery systems that have significantly advanced the field of controlled drug delivery. Those microfluidic systems can be separated into four major categories, namely drug carrier-free micro-reservoir-based drug delivery systems, highly integrated carrier-free microfluidic lab-on-a-chip systems, drug carrier-integrated microfluidic systems, and microneedles. Microneedles can be further categorized into five different types, i.e. solid, porous, hollow, coated, and biodegradable microneedles, for controlled transdermal drug delivery. At the end, we discuss current limitations and future prospects of microfluidic platforms for controlled drug delivery.
Copyright © 2017 Elsevier B.V. All rights reserved.

Keywords:  Controlled drug delivery; Drug carriers; Micro-reservoir; Microfluidic devices; Microfluidic lab-on-a-chip platforms; Microneedles; Nanomaterials for drug delivery

Mesh:

Year:  2017        PMID: 28919029      PMCID: PMC5854505          DOI: 10.1016/j.addr.2017.09.013

Source DB:  PubMed          Journal:  Adv Drug Deliv Rev        ISSN: 0169-409X            Impact factor:   15.470


  221 in total

1.  Impact of process parameters in the generation of novel aspirin nanoemulsions--comparative studies between ultrasound cavitation and microfluidizer.

Authors:  Siah Ying Tang; Parthasarathy Shridharan; Manickam Sivakumar
Journal:  Ultrason Sonochem       Date:  2012-05-03       Impact factor: 7.491

2.  Advanced deep reactive-ion etching technology for hollow microneedles for transdermal blood sampling and drug delivery.

Authors:  Yufei Liu; Pay F Eng; Owen J Guy; Kerry Roberts; Huma Ashraf; Nick Knight
Journal:  IET Nanobiotechnol       Date:  2013-06       Impact factor: 1.847

3.  Evaluation of the effect of polymeric microneedle arrays of varying geometries in combination with a high-velocity applicator on skin permeability and irritation.

Authors:  Toshihiro Watanabe; Kei Hagino; Toshiyuki Sato
Journal:  Biomed Microdevices       Date:  2014-08       Impact factor: 2.838

4.  Evaluation of geometrical effects of microneedles on skin penetration by CT scan and finite element analysis.

Authors:  Eriketi Z Loizidou; Nicholas T Inoue; Johnny Ashton-Barnett; David A Barrow; Chris J Allender
Journal:  Eur J Pharm Biopharm       Date:  2016-06-30       Impact factor: 5.571

5.  Fluvastatin as a micropore lifetime enhancer for sustained delivery across microneedle-treated skin.

Authors:  Priyanka Ghosh; Nicole K Brogden; Audra L Stinchcomb
Journal:  J Pharm Sci       Date:  2014-01-06       Impact factor: 3.534

6.  Implantable micro-chip for controlled delivery of diclofenac sodium.

Authors:  Seung Ho Lee; Min Park; Chun Gwon Park; Byung-Hwi Kim; Jieun Lee; SungYoon Choi; So-rae Nam; Sung-Hye Park; Young Bin Choy
Journal:  J Control Release       Date:  2014-09-28       Impact factor: 9.776

7.  Investigation on fabrication process of dissolving microneedle arrays to improve effective needle drug distribution.

Authors:  Qingqing Wang; Gangtao Yao; Pin Dong; Zihua Gong; Ge Li; Kejian Zhang; Chuanbin Wu
Journal:  Eur J Pharm Sci       Date:  2014-10-23       Impact factor: 4.384

8.  A Microfluidic Approach to Pulsatile Delivery of Drugs for Neurobiological Studies.

Authors:  Bin Wang; Junhui Ni; Yoav Litvin; Donald W Pfaff; Qiao Lin
Journal:  J Microelectromech Syst       Date:  2012-02       Impact factor: 2.417

9.  Lidocaine carboxymethylcellulose with gelatine co-polymer hydrogel delivery by combined microneedle and ultrasound.

Authors:  Atul Nayak; Hiten Babla; Tao Han; Diganta Bhusan Das
Journal:  Drug Deliv       Date:  2014-07-18       Impact factor: 6.419

10.  Combinatorial microfluidic droplet engineering for biomimetic material synthesis.

Authors:  Lukmaan A Bawazer; Ciara S McNally; Christopher J Empson; William J Marchant; Tim P Comyn; Xize Niu; Soongwon Cho; Michael J McPherson; Bernard P Binks; Andrew deMello; Fiona C Meldrum
Journal:  Sci Adv       Date:  2016-10-07       Impact factor: 14.136

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  35 in total

1.  Strong interaction between Au nanoparticles and porous polyurethane sponge enables efficient environmental catalysis with high reusability.

Authors:  Qijie Jin; Lei Ma; Wan Zhou; Cindy Himmelhaver; Ramana Chintalapalle; Yuesong Shen; XiuJun Li
Journal:  Catal Today       Date:  2020-01-20       Impact factor: 6.766

2.  Remotely tunable microfluidic platform driven by nanomaterial-mediated on-demand photothermal pumping.

Authors:  Guanglei Fu; Wan Zhou; XiuJun Li
Journal:  Lab Chip       Date:  2020-06-16       Impact factor: 6.799

3.  A New Paradigm of Pharmaceutical Drug Delivery Systems (DDS): Challenges for Space, Time, and Shapes.

Authors:  Jaeseok Eo; Brandon Cepeda; Jihye Kim; Namsoo Kim
Journal:  Innov Pharm       Date:  2018-10-26

4.  Shape-Programmable Three-Dimensional Microfluidic Structures.

Authors:  Zizheng Wang; Hao Jiang; Guangfu Wu; Yi Li; Teng Zhang; Yi Zhang; Xueju Wang
Journal:  ACS Appl Mater Interfaces       Date:  2022-03-23       Impact factor: 10.383

5.  A Low-Cost Nanomaterial-based Electrochemical Immunosensor on Paper for High-Sensitivity Early Detection of Pancreatic Cancer.

Authors:  K Sudhakara Prasad; Xiyue Cao; Ning Gao; Qijie Jin; Sharma T Sanjay; Gilberto Henao-Pabon; XiuJun Li
Journal:  Sens Actuators B Chem       Date:  2019-12-02       Impact factor: 7.460

Review 6.  Aptamer-functionalized metal-organic frameworks (MOFs) for biosensing.

Authors:  Mengzhen Lv; Wan Zhou; Hamed Tavakoli; Cynthia Bautista; Jianfei Xia; Zonghua Wang; XiuJun Li
Journal:  Biosens Bioelectron       Date:  2020-12-30       Impact factor: 10.618

Review 7.  Recent innovations in cost-effective polymer and paper hybrid microfluidic devices.

Authors:  Wan Zhou; Maowei Dou; Sanjay S Timilsina; Feng Xu; XiuJun Li
Journal:  Lab Chip       Date:  2021-07-13       Impact factor: 7.517

8.  Impact of Lipid/Magnesium Hydroxide Hybrid Nanoparticles on the Stability of Vascular Endothelial Growth Factor-Loaded PLGA Microspheres.

Authors:  Meisam Omidi; Vahid Mansouri; Leila Mohammadi Amirabad; Lobat Tayebi
Journal:  ACS Appl Mater Interfaces       Date:  2021-05-18       Impact factor: 10.383

Review 9.  Wireless and battery-free technologies for neuroengineering.

Authors:  Sang Min Won; Le Cai; Philipp Gutruf; John A Rogers
Journal:  Nat Biomed Eng       Date:  2021-03-08       Impact factor: 29.234

10.  Smart Mushroom-Inspired Imprintable and Lightly Detachable (MILD) Microneedle Patterns for Effective COVID-19 Vaccination and Decentralized Information Storage.

Authors:  Qilin Li; Rengui Xu; Huiling Fan; Jiarong Xu; Yunruo Xu; Peng Cao; Yan Zhang; Tao Liang; Yang Zhang; Wei Chen; Zheng Wang; Lin Wang; Xiaoyuan Chen
Journal:  ACS Nano       Date:  2022-04-22       Impact factor: 18.027

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