Literature DB >> 30628778

Protection of Nanostructures-Integrated Microneedle Biosensor Using Dissolvable Polymer Coating.

Fanmao Liu1,2, Zhihong Lin2, Quanchang Jin2, Qianni Wu2,3, Chengduan Yang1, Hui-Jiuan Chen2, Zihan Cao2, Di-An Lin2, Lingfei Zhou2, Tian Hang2, Gen He2, Yonghang Xu4, Wenhao Xia1, Jun Tao1, Xi Xie1,2.   

Abstract

Real-time transdermal biosensing provides a direct route to quantify biomarkers or physiological signals of local tissues. Although microneedles (MNs) present a mini-invasive transdermal technique, integration of MNs with advanced nanostructures to enhance sensing functionalities has rarely been achieved. This is largely due to the fact that nanostructures present on MNs surface could be easily destructed due to friction during skin insertion. In this work, we reported a dissolvable polymer-coating technique to protect nanostructures-integrated MNs from mechanical destruction during MNs insertion. After penetration into the skin, the polymer could readily dissolve by interstitial fluids so that the superficial nanostructures on MNs could be re-exposed for sensing purpose. To demonstrate this technique, metallic and resin MNs decorated with vertical ZnO nanowires (vNWs) were employed as an example. Dissolvable poly(vinyl pyrrolidone) was spray-coated on the vNW-MNs surface as a protective layer, which effectively protected the superficial ZnO NWs when MNs penetrated the skin. Transdermal biosensing of H2O2 biomarker in skin tissue using the polymer-protecting MNs sensor was demonstrated both ex vivo and in vivo. The results indicated that polymer coating successfully preserved the sensing functionalities of the MNs sensor after inserting into the skin, whereas the sensitivity of the MN sensor without a coating protection was significantly compromised by 3-folds. This work provided unique opportunities of protecting functional nanomodulus on MNs surface for minimally invasive transdermal biosensing.

Entities:  

Keywords:  biosensing; dissolvable polymer coating; microneedle; nanostructure; transdermal biosensing

Mesh:

Substances:

Year:  2019        PMID: 30628778     DOI: 10.1021/acsami.8b18981

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  7 in total

Review 1.  Microneedle arrays for the treatment of chronic wounds.

Authors:  Lindsay Barnum; Mohamadmahdi Samandari; Tannin A Schmidt; Ali Tamayol
Journal:  Expert Opin Drug Deliv       Date:  2020-10-08       Impact factor: 6.648

Review 2.  Microneedles for transdermal diagnostics: Recent advances and new horizons.

Authors:  Gui-Shi Liu; Yifei Kong; Yensheng Wang; Yunhan Luo; Xudong Fan; Xi Xie; Bo-Ru Yang; Mei X Wu
Journal:  Biomaterials       Date:  2019-12-26       Impact factor: 12.479

Review 3.  Semi-Implantable Bioelectronics.

Authors:  Jiaru Fang; Shuang Huang; Fanmao Liu; Gen He; Xiangling Li; Xinshuo Huang; Hui-Jiuan Chen; Xi Xie
Journal:  Nanomicro Lett       Date:  2022-05-28

4.  Determination of Transdermal Rate of Metallic Microneedle Array through an Impedance Measurements-Based Numerical Check Screening Algorithm.

Authors:  Jingshan Mo; Junqing Liu; Shuang Huang; Baoming Liang; Xinshuo Huang; Cheng Yang; Meiwan Chen; Jing Liu; Tong Zhang; Xi Xie; Jun Guo; Fanmao Liu; Hui-Jiuan Chen
Journal:  Micromachines (Basel)       Date:  2022-04-30       Impact factor: 3.523

Review 5.  Microneedle-based bioassays.

Authors:  Jixiang Zhu; Xingwu Zhou; Alberto Libanori; Wujin Sun
Journal:  Nanoscale Adv       Date:  2020-09-18

Review 6.  Engineering Microneedles for Therapy and Diagnosis: A Survey.

Authors:  Liping Xie; Hedele Zeng; Jianjun Sun; Wei Qian
Journal:  Micromachines (Basel)       Date:  2020-03-05       Impact factor: 2.891

7.  Rheological, Thermal, and Degradation Properties of PLA/PPG Blends.

Authors:  Dong Xie; Yang Zhao; Yuan Li; Anna Marie LaChance; Jinqing Lai; Luyi Sun; Junjia Chen
Journal:  Materials (Basel)       Date:  2019-10-26       Impact factor: 3.623

  7 in total

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