Microneedle-based drug delivery systems: Microfabrication, drug delivery, and safety

被引:473
作者
Donnelly, Ryan F. [1 ]
Singh, Thakur Raghu Raj [1 ]
Woolfson, A. David [1 ]
机构
[1] Queens Univ Belfast, Sch Pharm, Ctr Med Biol, Belfast BT9 7BL, Antrim, North Ireland
基金
英国生物技术与生命科学研究理事会;
关键词
MEMS; silicon; metal; polymer; stratum corneum; TRANSDERMAL DELIVERY; BIODEGRADABLE POLYMER; COATED MICRONEEDLES; PERCUTANEOUS-ABSORPTION; SILICON MICRONEEDLES; INTRADERMAL DELIVERY; INSULIN DELIVERY; MOLECULAR-WEIGHT; SKIN PERMEATION; INSERTION FORCE;
D O I
10.3109/10717541003667798
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Many promising therapeutic agents are limited by their inability to reach the systemic circulation, due to the excellent barrier properties of biological membranes, such as the stratum corneum (SC) of the skin or the sclera/cornea of the eye and others. The outermost layer of the skin, the SC, is the principal barrier to topically-applied medications. The intact SC thus provides the main barrier to exogenous substances, including drugs. Only drugs with very specific physicochemical properties (molecular weight < 500 Da, adequate lipophilicity, and low melting point) can be successfully administered transdermally. Transdermal delivery of hydrophilic drugs and macromolecular agents of interest, including peptides, DNA, and small interfering RNA is problematic. Therefore, facilitation of drug penetration through the SC may involve by-pass or reversible disruption of SC molecular architecture. Microneedles (MNs), when used to puncture skin, will by-pass the SC and create transient aqueous transport pathways of micron dimensions and enhance the transdermal permeability. These micropores are orders of magnitude larger than molecular dimensions, and, therefore, should readily permit the transport of hydrophilic macromolecules. Various strategies have been employed by many research groups and pharmaceutical companies worldwide, for the fabrication of MNs. This review details various types of MNs, fabrication methods and, importantly, investigations of clinical safety of MN.</.
引用
收藏
页码:187 / 207
页数:21
相关论文
共 129 条
[1]  
Adams A.C., 1988, VLSI Technology, V2nd, P233
[2]   Geometrical effects in mechanical characterizing of microneedle for biomedical applications [J].
Aggarwal, P ;
Johnston, CR .
SENSORS AND ACTUATORS B-CHEMICAL, 2004, 102 (02) :226-234
[3]   Optimization of square microneedle arrays for increasing drug permeability in skin [J].
AI-Qallaf, Baffak ;
Das, Diganta Bhusan .
CHEMICAL ENGINEERING SCIENCE, 2008, 63 (09) :2523-2535
[4]   Optimizing Microneedle Arrays to Increase Skin Permeability for Transdermal Drug Delivery [J].
Al-Qallaf, Barrak ;
Das, Diganta Bhusan .
INTERDISCIPLINARY TRANSPORT PHENOMENA: FLUID, THERMAL, BIOLOGICAL, MATERIALS, AND SPACE SCIENCES, 2009, 1161 :83-94
[5]   Bioabsorbable implants: Review of clinical experience in orthopedic surgery [J].
Ambrose, CG ;
Clanton, TO .
ANNALS OF BIOMEDICAL ENGINEERING, 2004, 32 (01) :171-177
[6]  
[Anonymous], Patent, Patent No. [3964482-A, 3964482]
[7]  
[Anonymous], SKIN DELIVERY SYSTEM
[8]   Biodegradable polymer needle with various tip angles and consideration on insertion mechanism of mosquito's proboscis [J].
Aoyagi, Seiji ;
Izumi, Hayato ;
Fukuda, Mitsuo .
SENSORS AND ACTUATORS A-PHYSICAL, 2008, 143 (01) :20-28
[9]   Laser fabrication of high aspect ratio thin holes on biodegradable polymer and its application to a microneedle [J].
Aoyagi, Seiji ;
Izumi, Hayato ;
Isono, Yuichi ;
Fukuda, Mitsuo ;
Ogawa, Hiroshi .
SENSORS AND ACTUATORS A-PHYSICAL, 2007, 139 (1-2) :293-302
[10]   Microbiologic evaluation of needleless and needle-access devices [J].
Arduino, MJ ;
Bland, LA ;
Danzig, LE ;
McAllister, SK ;
Aguero, SM .
AMERICAN JOURNAL OF INFECTION CONTROL, 1997, 25 (05) :377-380