Frustoconical porous microneedle for electroosmotic transdermal drug delivery

被引:14
作者
Terutsuki, Daigo [1 ]
Segawa, Reiji [2 ]
Kusama, Shinya [1 ]
Abe, Hiroya [1 ]
Nishizawa, Matsuhiko [1 ,2 ,3 ]
机构
[1] Tohoku Univ, Grad Sch Engn, Dept Finemech, 6-6-01 Aramaki aza Aoba,Aoba ku, Sendai 9808579, Japan
[2] Tohoku Univ, Grad Sch Biomed Engn, Dept Biomed Engn, 6-6-04 Aramaki Aoba,Aoba ku, Sendai 9808579, Japan
[3] Tohoku Univ, Div Estab Frontier Sci Org Adv Studies, 2-1-1 Katahira,Aoba ku, Sendai 9808577, Japan
基金
日本科学技术振兴机构;
关键词
Porous microneedle; Frustoconical protrusion; Electroosmosis; Transdermal delivery; IONTOPHORESIS;
D O I
10.1016/j.jconrel.2023.01.055
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
A truncated cone-shaped porous microneedle (PMN) made of poly-glycidyl methacrylate was studied as a minimally invasive tool for transdermal drug delivery. The transdermal electrical resistance of a pig skin was evaluated during the indentation of the PMNs, revealing that the frustoconical PMN (300 mu m height) significantly reduced the resistance of the skin by expanding the stratum corneum without penetrating into the skin. A thin film of poly (2-acrylamido-2-methylpropanesulfonic acid) (PAMPS) was grafted onto the inner wall of the microchannels of the frustoconical PMN to generate electroosmotic flow (EOF) upon current application in the direction of injection of the drug into the skin. Owing to the synergy of the expansion of the stratum corneum and the EOF-promotion, the PAMPS-modified frustoconical PMN effectively enhances the penetration of larger (over 500 Da) molecules, such as dextran (similar to 10 kDa).
引用
收藏
页码:694 / 700
页数:7
相关论文
共 34 条
  • [1] Porous Microneedle Patch for Electroosmosis-Promoted Transdermal Delivery of Drugs and Vaccines
    Abe, Hiroya
    Sato, Kaito
    Kimura, Natsumi
    Kusama, Shinya
    Inoue, Daisuke
    Yamasaki, Kenshi
    Nishizawa, Matsuhiko
    [J]. ADVANCED NANOBIOMED RESEARCH, 2022, 2 (01):
  • [2] Abe Y., 2021, BIOMED ENG ADV, V1, DOI [10.1016/j.bea.2021.100004, DOI 10.1016/J.BEA.2021.100004]
  • [3] Transdermal Drug Delivery: Innovative Pharmaceutical Developments Based on Disruption of the Barrier Properties of the stratum corneum
    Alkilani, Ahlam Zaid
    McCrudden, Maeliosa T. C.
    Donnelly, Ryan F.
    [J]. PHARMACEUTICS, 2015, 7 (04): : 438 - 470
  • [4] Recent advances in porous microneedles: materials, fabrication, and transdermal applications
    Bao, Leilei
    Park, Jongho
    Bonfante, Gwenael
    Kim, Beomjoon
    [J]. DRUG DELIVERY AND TRANSLATIONAL RESEARCH, 2022, 12 (02) : 395 - 414
  • [5] The 500 Dalton rule for the skin penetration of chemical compounds and drugs
    Bos, JD
    Meinardi, MMHM
    [J]. EXPERIMENTAL DERMATOLOGY, 2000, 9 (03) : 165 - 169
  • [6] Microneedles for drug delivery: trends and progress
    Cheung, Karmen
    Das, Diganta B.
    [J]. DRUG DELIVERY, 2016, 23 (07) : 2338 - 2354
  • [7] "Grafting Through" Polymerization Involving Surface-Bound Monomers
    Datta, Preeta
    Genzer, Jan
    [J]. JOURNAL OF POLYMER SCIENCE PART A-POLYMER CHEMISTRY, 2016, 54 (02) : 263 - 274
  • [8] Dixit Nitin, 2007, Current Drug Delivery, V4, P1, DOI 10.2174/156720107779314802
  • [9] Advances in porous microneedle systems for drug delivery and biomarker detection: A mini review
    He, Yu Ting
    Liang, Ling
    Zhao, Ze Qiang
    Hu, Liu Fu
    Fei, Wen Min
    Chen, Bo Zhi
    Cui, Yong
    Guo, Xin Dong
    [J]. JOURNAL OF DRUG DELIVERY SCIENCE AND TECHNOLOGY, 2022, 74
  • [10] "Grafting Through": Mechanistic Aspects of Radical Polymerization Reactions with Surface-Attached Monomers
    Henze, Michael
    Maedge, Daniel
    Prucker, Oswald
    Ruehe, Juergen
    [J]. MACROMOLECULES, 2014, 47 (09) : 2929 - 2937