维普中文期刊产品整合服务
3篇 您的检索式:作者名="Fanmao Liu"
    题名 作者 年代 出处 被引量
1Semi-Implantable Bioelectronics显示文摘Developing techniques to effectively and real-time monitor and regulate the interior environment of biological objects is significantly important for many biomedical engineering and scientific applications, including drug delivery, electrophysiological recording and regulation of intracellular activities. Semi-implantable bioelectronics is currently a hot spot in biomedical engineering research area, because it not only meets the increasing technical demands for precise detection or regulation of biological activities, but also provides a desirable platform for externally incorporating complex functionalities and electronic integration. Although there is less definition and summary to distinguish it from the well-reviewed non-invasive bioelectronics and fully implantable bioelectronics, semi-implantable bioelectronics have emerged as highly unique technology to boost the development of biochips and smart wearable device. Here, we reviewed the recent progress in this field and raised the concept of “Semi-implantable bioelectronics”, summarizing the principle and strategies of semi-implantable device for cell applications and in vivo applications, discussing the typical methodologies to access to intracellular environment or in vivo environment, biosafety aspects and typical applications. This review is meaningful for understanding in-depth the design principles, materials fabrication techniques, device integration processes, cell/tissue penetration methodologies, biosafety aspects, and applications strategies that are essential to the development of future minimally invasive bioelectronics.Jiaru Fang Shuang Huang Fanmao Liu Gen He Xiangling Li Xinshuo Huang Hui-jiuan Chen Xi Xie 2022Nano-Micro Letters2022,14,7:1
2Tumor-on-a-chip:from bioinspired design to biomedical application显示文摘Cancer is one of the leading causes of human death,despite enormous efforts to explore cancer biology and develop anticancer therapies.The main challenges in cancer research are establishing an efficient tumor microenvironment in vitro and exploring efficient means for screening anticancer drugs to reveal the nature of cancer and develop treatments.The tumor microenvironment possesses human-specific biophysical and biochemical factors that are difficult to recapitulate in conventional in vitro planar cell models and in vivo animal models.Therefore,model limitations have hindered the translation of basic research findings to clinical applications.In this review,we introduce the recent progress in tumor-on-a-chip devices for cancer biology research,medicine assessment,and biomedical applications in detail.The emerging tumor-on-a-chip platforms integrating 3D cell culture,microfluidic tech no logy,and tissue engineeri ng have successfully mimicked the pivotal structural and functional characteristics of the in vivo tumor microenvironment.The recent advances in tumor-on-a-chip platforms for cancer biology studies and biomedical applications are detailed and an a lyzed in this review.This review should be valuable for further understanding the mechanisms of the tumor evolution process,screening anticancer drugs,and developing cancer therapies,and it addresses the challenges and potential opportunities in predicting drug screening and cancer treatment.Xingxing Liu Jiaru Fang Shuang Huang Xiaoxue Wu Xi Xie Ji Wang Fanmao Liu Meng Zhang Zhenwei Peng Ning Hu 2021Microsystems & Nanoengineering2021,7,3:0
3Microarrow sensor array with enhanced skin adhesion for transdermal continuous monitoring of glucose and reactive oxygen species显示文摘Conventional blood sampling for glucose detection is prone to cause pain and fails to continuously record glucose fluctuations in vivo.Continuous glucose monitoring based on implantable electrodes could induce pain and potential tissue inflammation,and the presence of reactive oxygen species(ROS)due to inflammationmay affect glucose detection.Microneedle technology is less invasive,yet microneedle adhesion with skin tissue is limited.In this work,we developed a microarrow sensor array(MASA),which provided enhanced skin surface adhesion and enabled simultaneous detection of glucose and H_(2)O_(2)(representative of ROS)in interstitial fluid in vivo.The microarrows fabricated via laser micromachining were modified with functional coating and integrated into a patch of a three-dimensional(3D)microneedle array.Due to the arrow tip mechanically interlocking with the tissue,the microarrow array could better adhere to the skin surface after penetration into skin.The MASA was demonstrated to provide continuous in vivo monitoring of glucose and H_(2)O_(2) concentrations,with the detection of H_(2)O_(2) providing a valuable reference for assessing the inflammation state.Finally,the MASA was integrated into a monitoring system using custom circuitry.This work provides a promising tool for the stable and reliable monitoring of blood glucose in diabetic patients.Xinshuo Huang Baoming Liang Shantao Zheng Feifei Wu Mengyi He Shuang Huang Jingbo Yang Qiangqiang Ouyang Fanmao Liu Jing Liu Hui-jiuan Chen Xi Xie 2024Bio-Design and Manufacturing2024,7,1:0
返回顶部 每页显示:
共1页 首页 上一页 第1页 下一页 末页 /1 跳转

网站首页 | 关于我们 | 联系我们 | 产品服务 | 客服中心 | 广告服务 | 版权声明 | 网站联盟 | 友情链接 | 售卡网点

版权所有© 渝B2-20050021-1 渝公网安备 50019002500403号 违法和不良信息举报中心

互联网出版许可证 新出网证(渝)字10号 全国400电话 - 免长途话费