期刊文献+
共找到2篇文章
< 1 >
每页显示 20 50 100
Direct Regeneration of Plants Derived from in vitro Cultured Shoot Tips and Leaves of Poplar (Populus×euramericana 'Neva') 被引量:1
1
作者 Chaoqiang Jiang Zhaopu Liu qingsong zheng 《Journal of Life Sciences》 2015年第8期366-372,共7页
The purpose of the present study was to establish a regeneration procedure for Populus × euramericana 'Neva' by using in vitro shoots tips and leaves. For sterilization, 0.1% (w/v) mercuric chloride (HgCl2)... The purpose of the present study was to establish a regeneration procedure for Populus × euramericana 'Neva' by using in vitro shoots tips and leaves. For sterilization, 0.1% (w/v) mercuric chloride (HgCl2) solution for 8 to 10 min was the optimal treatment for this poplar cultivation. The effects of benzyladenine (BA) and α-naphthaleneacetic acid (NAA) added to Murashige and Skoog (MS) medium were tested on organogenesis. The highest regeneration rate and numbers of shoots/explant from shoot tips (96.7%, 9.8) and leaves (90.0%, 8.7) were obtained on the half-strength MS medium supplemented with 0.5 mg/L BA and 0.1 mg/L NAA. The optimal medium for in vitro rooting of shoots was on a half-strength MS medium containing 1 mg/L indolebutyric acid (IBA) with the highest rooting frequency (93.3%) and numbers of roots/explant (8.2). For acclimatization, in vitro rooted plantlets were transferred to plastic cups containing vermiculite and peat (1: 1). After acclimatization, transplanted plantlets grew well in a shade house. Therefore, we believe that this efficient plant regeneration protocol especially by leaf explants is very important for in vitro clonal propagation of Populus×euramericana 'Neva'. 展开更多
关键词 Poplar (Populus × euramericana 'Neva') In vitro culture adventitious shoot ROOTING micropropagation.
下载PDF
医用微流控芯片研究进展 被引量:7
2
作者 周钱 郭茂泽 +1 位作者 郑青松 高兵兵 《中国科学:化学》 CAS CSCD 北大核心 2022年第1期89-101,共13页
近年来,随着社会经济的飞速发展,新型科学技术层出不穷,微流控芯片因具有试剂消耗量少、能耗低、反应速度快、高通量化、液体自驱等独特优势,已经发展成为集生化、医学、电子、材料及其交叉学科的研究热点.微流控技术(microfluidics)是... 近年来,随着社会经济的飞速发展,新型科学技术层出不穷,微流控芯片因具有试剂消耗量少、能耗低、反应速度快、高通量化、液体自驱等独特优势,已经发展成为集生化、医学、电子、材料及其交叉学科的研究热点.微流控技术(microfluidics)是在微电机加工系统(MEMS)技术基础上发展而来的,是在微米级微管中精确操纵微量流体的技术手段.随着柔性材料(纸、光子晶体膜)和复杂加工工艺(飞秒激光、双光子3D打印等)的不断发展,微流控芯片已走向多功能高度集成的技术革新路线.其发展日新月异,目前有关微流控芯片的综述性报道层出不穷,但是对最新的微流控芯片特别是在医学领域中的应用仍然较少.本文对微流控芯片在医学领域的应用进行了全面而深入的总结,主要综述了微流控芯片制备的前沿方法、检测手段以及在医学领域的相关应用,并展望了微流控芯片面临的主要挑战和未来发展方向. 展开更多
关键词 微流控 传感器 微芯片 柔性芯片 医学分析 可穿戴传感器
原文传递
上一页 1 下一页 到第
使用帮助 返回顶部