Demir Yusuf K, Akan Zafer, Kerimoglu Oya
Department of Pharmaceutical Technology, Marmara University Faculty of Pharmacy, Istanbul, Turkey.
PLoS One. 2013 Oct 23;8(10):e77289. doi: 10.1371/journal.pone.0077289. eCollection 2013.
Microfabrication of dissolvable, swellable, and biodegradable polymeric microneedle arrays (MNs) were extensively investigated based in a nano sensitive fabrication style known as micromilling that is then combined with conventional micromolding technique. The aim of this study was to describe the polymer selection, and optimize formulation compounding parameters for various polymeric MNs. Inverse replication of micromilled master MNs reproduced with polydimethylsiloxane (PDMS), where solid out of plane polymeric MNs were subsequently assembled, and physicochemically characterized. Dissolvable, swellable, and biodegradable MNs were constructed to depth of less than 1 mm with an aspect ratio of 3.6, and 1/2 mm of both inter needle tip and base spacing. Micromolding step also enabled to replicate the MNs very precisely and accurate. Polymeric microneedles (MN) precision was ranging from ± 0.18 to ± 1.82% for microneedle height, ± 0.45 to ± 1.42% for base diameter, and ± 0.22 to ± 0.95% for interbase spacing. Although dissolvable sodium alginate MN showed less physical robustness than biodegradable polylactic-co-glycolic acid MN, their thermogravimetric analysis is of promise for constructing these polymeric types of matrix devices.
基于一种名为微铣削的纳米敏感制造方式,对可溶解、可膨胀和可生物降解的聚合物微针阵列(MNs)的微制造进行了广泛研究,该方式随后与传统微成型技术相结合。本研究的目的是描述聚合物的选择,并优化各种聚合物微针的配方复合参数。用聚二甲基硅氧烷(PDMS)复制微铣削的主微针的反向复制品,随后组装平面外固体聚合物微针,并对其进行物理化学表征。构建了深度小于1毫米、长宽比为3.6、针尖间距和基部间距均为1/2毫米的可溶解、可膨胀和可生物降解的微针。微成型步骤还能够非常精确地复制微针。聚合物微针(MN)的精度范围为:微针高度±0.18%至±1.82%,基部直径±0.45%至±1.42%,基部间距±0.22%至±0.95%。尽管可溶解的海藻酸钠微针的物理强度比可生物降解的聚乳酸-乙醇酸共聚物微针低,但其热重分析对于构建这些聚合物类型的基质装置具有前景。