nav emailalert searchbtn searchbox tablepage yinyongbenwen piczone journalimg journalInfo searchdiv qikanlogo popupnotification paper paperNew
2023, 07, v.60 979-987
光固化3D打印微针在透皮给药系统中的研究进展
基金项目(Foundation): 国家自然科学基金(82073793)
邮箱(Email): ;;
DOI: 10.13250/j.cnki.wndz.2023.07.001
摘要:

微针是一种新型的透皮给药方式,因具有无痛、生物利用度高及易给药等特点而被广泛关注。介绍了微针的分类和释药机制、光固化3D打印微针技术的原理和优缺点及其应用,重点分析了光固化3D打印微针在皮肤疾病治疗、胰岛素递送、癌症治疗和美容医疗方面应用的研究进展,阐述了光固化3D打印微针具有可以显著提高药物经皮渗透率、提高给药精确性、减少全身副作用的独特优势。最后,对光固化3D打印微针当前面临的材料生物相容性差、载药量低和现行法规不完善等问题进行探讨,并对其发展前景进行了展望。

Abstract:

Due to painless, high bioavailability and easy drug delivery, microneedle is a new transdermal drug delivery method, which has been widely concerned. The classification and drug release mechanism of microneedles, the principle, advantages, disadvantages and application of photocuring 3D printing microneedle technology are introduced. The research progresses of photocuring 3D printing microneedles applied in skin disease treatment, insulin delivery, cancer treatment and aesthetic medicine are emphatically analyzed. The unique advantages of photocuring 3D printing microneedles are described, which can significantly improve the transdermal permeability of drugs, improve the accuracy of drug delivery and reduce systemic side effects. Finally, the current problems such as poor material biocompatibility, low drug loading and imperfect existing laws and regulations of photocuring 3D printing microneedles are discussed, and their development prospects are forecasted.

参考文献

[1] WANG Z M,HAN X L,CHEN R X,et al.Innovative color jet 3D printing of levetiracetam personalized paediatric preparations [J].Asian Journal of Pharmaceutical Sciences,2021,16(3):374-386.

[2] AL-JAPAIRAI K A S,MAHMOOD S,ALMURISI S H,et al.Current trends in polymer microneedle for transdermal drug delivery [J].International Journal of Pharmaceutics,2020,587:119673-1-119673-14.

[3] TUAN-MAHMOOD T M,MCCRUDDEN M T C,TORRISI B M,et al.Microneedles for intradermal and transdermal drug delivery [J].European Journal of Pharmaceutical Sciences,2013,50(5):623-637.

[4] GITTARD S D,NARAYAN R J,JIN C,et al.Pulsed laser deposition of antimicrobial silver coating on Ormocer microneedles [J].Biofabrication,2009,1(4):041001-1-041001-9.

[5] ZENG Q,GAMMON J M,TOSTANOSKI L H,et al.In vivo expansion of melanoma-specific T cells using microneedle arrays coated with immune-polyelectrolyte multilayers [J].ACS Biomaterials Science & Engineering,2017,3(2):195-205.

[6] RAD Z F,PREWETT P D,DAVIES G J.An overview of microneedle applications,materials,and fabrication methods [J].Beilstein Journal of Nanotechnology,2021,12:1034-1046.

[7] DHARADHAR S,MAJUMDAR A,DHOBLE S,et al.Microneedles for transdermal drug delivery:a systematic review [J].Drug Development and Industrial Pharmacy,2019,45(2):188-201.

[8] FARAJI RAD Z,PREWETT P D,DAVIES G J.An overview of microneedle applications,materials,and fabrication methods [J].Beilstein J Nanotechnol,2021,12:1034-1046.

[9] MCALLISTER D V,WANG P M,DAVIS S P,et al.Microfabricated needles for transdermal delivery of macromolecules and nanoparticles:fabrication methods and transport studies [J].Proceedings of the National Academy of Sciences of the United States of America,2003,100(24):13755-13760.

[10] KOMMAREDDY S,BAUDNER B C,BONIFICIO A,et al.Influenza subunit vaccine coated microneedle patches elicit comparable immune responses to intramuscular injection in guinea pigs [J].Vaccine,2013,31(34):3435-3441.

[11] EDENS C,COLLINS M L,GOODSON J L,et al.A microneedle patch containing measles vaccine is immunogenic in non-human primates [J].Vaccine,2015,33(37):4712-4718.

[12] LEE I C,LIN W M,SHU J C,et al.Formulation of two-layer dissolving polymeric microneedle patches for insulin transdermal delivery in diabetic mice [J].Journal of Biomedical Materials Research:A,2017,105(1):84-93.

[13] LIGON S C,LISKA R,STAMPFL J,et al.Polymers for 3D printing and customized additive manufacturing [J].Chemical Reviews,2017,117(15):10212-10290.

[14] QUAN H Y,ZHANG T,XU H,et al.Photo-curing 3D printing technique and its challenges [J].Bioactive Mate-rials,2020,5(1):110-115.

[15] KRIEGER K J,BERTOLLO N,DANGOL M,et al.Simple and customizable method for fabrication of high-aspect ratio microneedle molds using low-cost 3D printing [J].Microsystems & Nanoengineering,2019,5:42-1-42-14.

[16] XENIKAKIS I,TZIMTZIMIS M,TSONGAS K,et al.Fabrication and finite element analysis of stereolithographic 3D printed microneedles for transdermal delivery of model dyes across human skin in vitro [J].European Journal of Pharmaceutical Sciences,2019,137:104976-1-104976-11.

[17] ECONOMIDOU S N,PISSINATO PERE C P,OKEREKE M,et al.Optimisation of design and manufacturing parameters of 3D printed solid microneedles for improved strength,sharpness,and drug delivery [J].Micromachines,2021,12(2):117-1-117-16.

[18] NGO T D,KASHANI A,IMBALZANO G,et al.Additive manufacturing (3D printing):a review of materials,methods,applications and challenges [J].Composites Part B:Engineering,2018,143:172-196.

[19] KADRY H,WADNAP S,XU C X,et al.Digital light processing (DLP) 3D-printing technology and photoreactive polymers in fabrication of modified-release tablets [J].European Journal of Pharmaceutical Sciences,2019,135:60-67.

[20] YAO W,LI D D,ZHAO Y L,et al.3D printed multi-functional hydrogel microneedles based on high-precision digital light processing [J].Micromachines,2019,11(1):17-1-17-11.

[21] MATHEW E,PITZANTI G,GOMES DOS SANTOS A L,et al.Optimization of printing parameters for digital light processing 3D printing of hollow microneedle arrays [J].Pharmaceutics,2021,13(11):1837-1-1837-14.

[22] BALLI J,KUMPATY S,ANEWENTER V.Continuous liquid interface production of 3D objects:an unconventional technology and its challenges and opportunities [C] // Proceedings of the ASME International Mechanical Engineering Congress and Exposition.Tampa,Florida,USA,2017:V005T06A038-1-V005T06A038-6.

[23] JANUSZIEWICZ R,TUMBLESTON J R,QUINTANILLA A L,et al.Layerless fabrication with continuous liquid interface production [J].Proceedings of the National Academy of Sciences of the United States of America,2016,113(42):11703-11708.

[24] JOHNSON A R,CAUDILL C L,TUMBLESTON J R,et al.Single-step fabrication of computationally designed microneedles by continuous liquid interface production [J].PloS One,2016,11(9):e0162518-1-e0162518-17.

[25] TAKADA K,SUN H B,KAWATA S.Improved spatial resolution and surface roughness in photopolymerization-based laser nanowriting [J].Applied Physics Letters,2005,86(7):071122-1-071122-3.

[26] SERBIN J,EGBERT A,OSTENDORF A,et al.Femtosecond laser-induced two-photon polymerization of inorga-nic-organic hybrid materials for applications in photonics [J].Optics Letters,2003,28(5):301-303.

[27] CIUCIU A,CYWINSKI P J.Two-photon polymerization of hydrogels-versatile solutions to fabricate well-defined 3D structures [J].RSC Advances,2014,85:45504-45516.

[28] MOUSSI K,BUKHAMSIN A,HIDALGO T C,et al.Biocompatible 3D printed microneedles for transdermal,intradermal,and percutaneous applications [J].Advanced Engineering Materials,2020,22(2):1901358-1-1901358-28.

[29] GITTARD S D,MILLER P R,JIN C M,et al.Deposition of antimicrobial coatings on microstereolithography-fabricated microneedles [J].JOM,2011,63(6):59-68.

[30] LU Y F,MANTHA S N,CROWDER D C,et al.Microstereolithography and characterization of poly(propylene fumarate)-based drug-loaded microneedle arrays [J].Biofabrication,2015,7(4):045001-1-045001-14.

[31] UDDIN M J,SCOUTARIS N,ECONOMIDOU S N,et al.3D printed microneedles for anticancer therapy of skin tumours [J].Materials Science and Engineering:C,2020,107:110248-1-110248-40.

[32] ZHANG Q,SHI L,HE H,et al.Down-regulating scar formation by microneedles directly via a mechanical communication pathway [J].ACS Nano,2022,16(7):10163-10178.

[33] HUANG Y H,LI J W,WANG Y,et al.Intradermal deli-very of an angiotensin II receptor blocker using a persona-lized microneedle patch for treatment of hypertrophic scars [J].Biomaterials Science,2023,11(2):583-595.

[34] PERE C P P,ECONOMIDOU S N,LALL G,et al.3D printed microneedles for insulin skin delivery [J].International Journal of Pharmaceutics,2018,544(2):425-432.

[35] ECONOMIDOU S N,PERE C P P,REID A,et al.3D printed microneedle patches using stereolithography (SLA) for intradermal insulin delivery [J].Materials Science and Engineering:C,2019,102:743-755.

[36] WU M X,ZHANG Y J,HUANG H,et al.Assisted 3D printing of microneedle patches for minimally invasive glucose control in diabetes [J].Materials Science and Enginee-ring:C,2020,117:111299-1-111299-10.

[37] LIU Y Q,YU Q,LUO X J,et al.Continuous monitoring of diabetes with an integrated microneedle biosensing device through 3D printing [J].Microsystems & Nanoenginee-ring,2021,7:75-1-75-12.

[38] LI R,LIU X,YUAN X,et al.Fast customization of hollow microneedle patches for insulin delivery[J].International Journal of Bioprinting,2022,8(2):553-1-553-12.

[39] BHATNAGAR S,BANKAR N G,KULKARNI M V,et al.Dissolvable microneedle patch containing doxorubicin and docetaxel is effective in 4T1 xenografted breast cancer mouse model [J].International Journal of Pharmaceutics,2019,556:263-275.

[40] CHEN Z W,LI H J,BIAN Y J,et al.Bioorthogonal catalytic patch [J].Nature nanotechnology,2021,16(8):933-941.

[41] JOO S H,KIM J,HONG J,et al.Dissolvable self-locking microneedle patches integrated with immunomodulators for cancer immunotherapy [J].Advanced materials (Deerfield Beach,Fla),2022,35(10):2209966-1-2209966-28.

[42] BAYOUMI S A,DAWABA A M,MANSOUR A,et al.Ectoine gel transdermal formulation as a novel therapeutic approach in melanoma using 3D printed microneedles [J].Pharmaceutical Development and Technology,2022,27(10):1110-1124.

[43] PAWAR S,SHENDE P.22 factorial design-based biocompatible microneedle arrays containing artemether co-loaded with lumefantrine nanoparticles for transepidermal delivery [J].Biomed Microdevices,2020,22(1):19-1-19-15.

[44] SINGH R R T,TEKKO I,MCAVOY K,et al.Minimally invasive microneedles for ocular drug delivery [J].Expert Opinion on Drug Delivery,2017,14(4):525-537.

[45] DANGOL M,KIM S,LI C G,et al.Anti-obesity effect of a novel caffeine-loaded dissolving microneedle patch in high-fat diet-induced obese C57BL/6J mice [J].J Control Release,2017,265:41-47.

[46] GUPTA J,DENSON D D,FELNER E I,et al.Rapid local anesthesia in humans using minimally invasive microneedles [J].The Clinical Journal of Pain,2012,28(2):129-135.

[47] VOLPE-ZANUTTO F,FERREIRA L T,PERMANA A D,et al.Artemether and lumefantrine dissolving microneedle patches with improved pharmacokinetic performance and antimalarial efficacy in mice infected with Plasmodium yoelii [J].Journal of Controlled Release,2021,333:298-315.

[48] FANG J H,LIU C H,HSU R S,et al.Transdermal composite microneedle composed of mesoporous iron oxide nanoraspberry and PVA for androgenetic alopecia treatment [J].Polymers,2020,12(6):1392-1-1392-14.

[49] LIM S H,TIEW W J,ZHANG J Y,et al.Geometrical optimisation of a personalised microneedle eye patch for transdermal delivery of anti-wrinkle small peptide [J].Biofabrication,2020,12(3):035003-1-035003-25.

[50] LIM S H,KATHURIA H,AMIR M H B,et al.High resolution photopolymer for 3D printing of personalised microneedle for transdermal delivery of anti-wrinkle small peptide [J].Journal of Controlled Release,2021,329:907-918.

基本信息:

DOI:10.13250/j.cnki.wndz.2023.07.001

中图分类号:R943

引用信息:

[1]张怡心,楚皓文,李翔等.光固化3D打印微针在透皮给药系统中的研究进展[J].微纳电子技术,2023,60(07):979-987.DOI:10.13250/j.cnki.wndz.2023.07.001.

基金信息:

国家自然科学基金(82073793)

检 索 高级检索

引用

GB/T 7714-2015 格式引文
MLA格式引文
APA格式引文