Dissolving undercut microneedle arrays for multicomponent cutaneous vaccination

被引:105
作者
Balmert, Stephen C. [1 ]
Carey, Cara Donahue [1 ]
Falo, Gabriel D. [1 ]
Sethi, Shiv K. [1 ]
Erdos, Geza [1 ]
Korkmaz, Emrullah [1 ]
Falo, Louis D., Jr. [1 ,2 ,3 ,4 ,5 ]
机构
[1] Univ Pittsburgh, Sch Med, Dept Dermatol, Pittsburgh, PA 15213 USA
[2] Univ Pittsburgh, Swanson Sch Engn, Dept Bioengn, Pittsburgh, PA 15261 USA
[3] Univ Pittsburgh, Clin & Translat Sci Inst, Pittsburgh, PA 15213 USA
[4] UPMC, Hillman Canc Ctr, Pittsburgh, PA 15232 USA
[5] Univ Pittsburgh, McGowan Inst Regenerat Med, Pittsburgh, PA 15219 USA
关键词
Cutaneous immunization; Transcutaneous delivery; Multicomponent vaccine; Micro-additive manufacturing; Dissolving microneedle arrays; Undercut microneedles; DRUG-DELIVERY; SUSTAINED-RELEASE; PROTEIN DELIVERY; HUMAN SKIN; INFLUENZA; PATCHES; IMMUNOGENICITY; IMMUNIZATION; ANTIGEN; ACCEPTABILITY;
D O I
10.1016/j.jconrel.2019.11.023
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The skin is an attractive tissue target for vaccination, as it is readily accessible and contains a dense population of antigen-presenting and immune-accessory cells. Microneedle arrays (MNAs) are emerging as an effective tool for in situ engineering of the cutaneous microenvironment to enable diverse immunization strategies. Here, we present novel dissolving undercut MNAs and demonstrate their application for effective multicomponent cutaneous vaccination. The MNAs are composed of micron-scale needles featuring pyramidal heads supported by undercut stem regions with filleted bases to ensure successful skin penetration and retention during application. Prior efforts to fabricate dissolving undercut microstructures were limited and required complex and lengthy processing and assembly steps. In the current study, we strategically combine three-dimensional (3D) laser lithography, an emerging micro-additive manufacturing method with unique geometric capabilities and nanoscale resolution, and micromolding with favorable materials. This approach enables reproducible production of dissolving MNAs with undercut microneedles that can be tip-loaded with multiple biocargos, such as antigen (ovalbumin) and adjuvant (Poly(I:C)). The resulting MNAs fulfill the geometric (sharp tips and smooth edges) and mechanical-strength requirements for failure-free penetration of human and murine skin to simultaneously deliver multicomponent (antigen plus adjuvant) vaccines to the same cutaneous microenvironment. Cutaneous vaccination of mice using these MNAs induces more potent antigen-specific cellular and humoral immune responses than those elicited by traditional intramuscular injection. Together, the unique geometric features of these undercut MNAs and the associated manufacturing strategy, which is compatible with diverse drugs and biologics, could enable a broad range of non-cutaneous and cutaneous drug delivery applications, including multicomponent vaccination.
引用
收藏
页码:336 / 346
页数:11
相关论文
共 79 条
[1]   Dissolving Microneedle Arrays for Transdermal Delivery of Amphiphilic Vaccines [J].
An, Myunggi ;
Liu, Haipeng .
SMALL, 2017, 13 (26)
[2]   Micro-scale devices for transdermal drug delivery [J].
Arora, Anubhav ;
Prausnitz, Mark R. ;
Mitragotri, Samir .
INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2008, 364 (02) :227-236
[3]   Tolerability, usability and acceptability of dissolving microneedle patch administration in human subjects [J].
Arya, Jaya ;
Henry, Sebastien ;
Kalluri, Haripriya ;
McAllister, Devin V. ;
Pewin, Winston P. ;
Prausnitz, Mark R. .
BIOMATERIALS, 2017, 128 :1-7
[4]   Rabies vaccination in dogs using a dissolving microneedle patch [J].
Arya, Jaya M. ;
Dewitt, Kristopher ;
Scott-Garrard, Maya ;
Chiang, Yu-Wei ;
Prausnitz, Mark R. .
JOURNAL OF CONTROLLED RELEASE, 2016, 239 :19-26
[5]   Cutaneous vaccination: the skin as an immunologically active tissue and the challenge of antigen delivery [J].
Babiuk, S ;
Baca-Estrada, M ;
Babiuk, LA ;
Ewen, C ;
Foldvari, M .
JOURNAL OF CONTROLLED RELEASE, 2000, 66 (2-3) :199-214
[6]   Dissolvable Microneedle Arrays for Intradermal Delivery of Biologics: Fabrication and Application [J].
Bediz, Bekir ;
Korkmaz, Emrullah ;
Khilwani, Rakesh ;
Donahue, Cara ;
Erdos, Geza ;
Falo, Louis D., Jr. ;
Ozdoganlar, O. Burak .
PHARMACEUTICAL RESEARCH, 2014, 31 (01) :117-135
[7]   Fully embeddable chitosan microneedles as a sustained release depot for intradermal vaccination [J].
Chen, Mei-Chin ;
Huang, Shih-Fang ;
Lai, Kuan-Ying ;
Ling, Ming-Hung .
BIOMATERIALS, 2013, 34 (12) :3077-3086
[8]   Enhanced Stability of Inactivated Influenza Vaccine Encapsulated in Dissolving Microneedle Patches [J].
Chu, Leonard Y. ;
Ye, Ling ;
Dong, Ke ;
Compans, Richard W. ;
Yang, Chinglai ;
Prausnitz, Mark R. .
PHARMACEUTICAL RESEARCH, 2016, 33 (04) :868-878
[9]   Separable arrowhead microneedles [J].
Chu, Leonard Y. ;
Prausnitz, Mark R. .
JOURNAL OF CONTROLLED RELEASE, 2011, 149 (03) :242-249
[10]   DNA-based immunization by in vivo transfection of dendritic cells [J].
Condon, C ;
Watkins, SC ;
Celluzzi, CM ;
Thompson, K ;
Falo, LD .
NATURE MEDICINE, 1996, 2 (10) :1122-1128