生物技术进展 ›› 2026, Vol. 16 ›› Issue (2): 225-232.DOI: 10.19586/j.2095-2341.2025.0185
• 进展评述 • 上一篇
收稿日期:2025-12-20
接受日期:2026-01-26
出版日期:2026-03-25
发布日期:2026-04-27
通讯作者:
张苏芳
作者简介:袁霜霜 E-mail: yss2090548417@163.com;
基金资助:
Shuangshuang YUAN(
), Sufang ZHANG(
)
Received:2025-12-20
Accepted:2026-01-26
Online:2026-03-25
Published:2026-04-27
Contact:
Sufang ZHANG
摘要:
微针(microneedles, MNs)技术作为先进的微创药物递送平台,在生物医学领域广泛应用于药物、疫苗及生物大分子的透皮输送。近年来,以成簇规律间隔短回文重复序列/CRISPR 相关蛋白 9(clustered regularly interspaced short palindromic repeats/CRISPR-associated protein 9, CRISPR/Cas9)基因编辑和RNA干扰(RNA interference, RNAi)为代表的现代分子技术,为农业害虫的绿色防控研究提供了革命性的工具,传统显微注射法操作繁琐、通量低且易对虫卵造成损伤;而饲喂法则受限于昆虫消化道的多重生理与酶解屏障,导致外源 dsRNA 难以被有效摄取并进入血液循环,递送效率低且不稳定。因此,将已在医学领域应用成熟的微针技术(其核心为微米级针尖阵列)引入昆虫分子学研究,为解决这一递送难题提供了创新思路。首次系统探讨了微针技术在昆虫分子递送中的应用潜力,重点阐述了适用于昆虫体系的微针类型、关键生物相容性材料及其性能,并深入分析了该跨界应用所面临的主要机遇与挑战,旨在为开发下一代高效、精准的害虫分子防控策略提供新的技术视角和理论参考。
中图分类号:
袁霜霜, 张苏芳. 微针技术及其介导昆虫核酸分子递送研究进展[J]. 生物技术进展, 2026, 16(2): 225-232.
Shuangshuang YUAN, Sufang ZHANG. Research Progress on Micro-needle Technology and its Mediated Nucleic Acid Delivery in Insects[J]. Current Biotechnology, 2026, 16(2): 225-232.
| 类型 | 材料 | 载药/释放机制 | 潜在昆虫应用优势 | 潜在挑战 |
|---|---|---|---|---|
| 固体微针[ | 金属、硅、聚合物 | 先穿刺形成微通道后在表面施用药物 | 制备简单,机械强度高,适用于破坏坚韧角质层 | 给药剂量精度低、步骤繁琐 |
| 涂层微针[ | 金属、聚合物 | 针体表面包裹药物涂层穿刺后,涂层在组织液中溶解释放 | 可实现快速释药,工艺相对成熟 | 载药量有限,涂层可能在穿刺前磨损 |
| 可溶解微针[ | 可生物降解聚合物 | 针体本身由载药基质构成穿刺后整体溶解于组织液释放药物 | 高载药量,无需锐器回收,释放速率可通过材料调控 | 机械强度需平衡,对潮湿环境敏感 |
| 中空微针[ | 金属、硅、玻璃 | 针体内部有腔道,通过压力或毛细作用输送液体药物 | 可实现大剂量、快速注射,输送速率可控 | 结构复杂易堵塞,制造成本较高 |
表1 主要微针类型及其特点
Table 1 Main types of microneedles and their characteristics
| 类型 | 材料 | 载药/释放机制 | 潜在昆虫应用优势 | 潜在挑战 |
|---|---|---|---|---|
| 固体微针[ | 金属、硅、聚合物 | 先穿刺形成微通道后在表面施用药物 | 制备简单,机械强度高,适用于破坏坚韧角质层 | 给药剂量精度低、步骤繁琐 |
| 涂层微针[ | 金属、聚合物 | 针体表面包裹药物涂层穿刺后,涂层在组织液中溶解释放 | 可实现快速释药,工艺相对成熟 | 载药量有限,涂层可能在穿刺前磨损 |
| 可溶解微针[ | 可生物降解聚合物 | 针体本身由载药基质构成穿刺后整体溶解于组织液释放药物 | 高载药量,无需锐器回收,释放速率可通过材料调控 | 机械强度需平衡,对潮湿环境敏感 |
| 中空微针[ | 金属、硅、玻璃 | 针体内部有腔道,通过压力或毛细作用输送液体药物 | 可实现大剂量、快速注射,输送速率可控 | 结构复杂易堵塞,制造成本较高 |
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