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Human organ-on-a-chip BioMEMS devices for testing new diagnostic and therapeutic strategies

机译:用于测试新的诊断和治疗策略的人机芯片生物米木模型

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MEMS human "organs-on-a-chip" can be used to create model human organ systems for developing new diagnostic and therapeutic strategies. They represent a promising new strategy for rapid testing of new diagnostic and therapeutic approaches without the need for involving risks to human subjects. We are developing multicomponent, superparamagnetic and fluorescent nanoparticles as X-ray and MRI contrast agents for noninvasive multimodal imaging and for antibody- or peptide-targeted drug delivery to tumor and precancerous cells inside these artificial organ MEMS devices. Magnetic fields can be used to move the nanoparticles "upstream" to find their target cells in an organs-on-achip model of human ductal breast cancer. Theoretically, unbound nanoparticles can then be removed by reversing the magnetic field to give a greatly enhanced image of tumor cells within these artificial organ structures. Using branched PDMS microchannels and 3D tissue engineering of normal and malignant human breast cancer cells inside those MEMS channels, we can mimic the early stages of human ductal breast cancer with the goal to improve the sensitivity and resolution of mammography and MRI of very small tumors and test new strategies for treatments. Nanomedical systems can easily be imaged by multicolor confocal microscopy inside the artificial organs to test targeting and therapeutic responses including the differential viability of normal and tumor cells during treatments. Currently we are using 2-dimensional MEMS structures, but these studies can be extended to more complex 3D structures using new 3D printing technologies.
机译:MEMS人类“ORGANS-on-A-Chip”可用于创建模型人体器官系统,以开发新的诊断和治疗策略。它们代表了一个有希望的新策略,可在不需要涉及人类受试者的情况下快速测试新的诊断和治疗方法。我们正在开发多组分,超顺磁性和荧光纳米粒子作为X射线和MRI造影剂,用于非侵入式多式化成像,并用于这些人造器官MEMS器件内的肿瘤和癌前细胞的抗体或肽靶向药物递送。磁场可用于移动纳米颗粒“上游”,以在人类导管乳腺癌的器官on-Achip模型中找到它们的靶细胞。理论上,通过反转磁场可以通过逆转磁场去除未结合的纳米颗粒,以在这些人造器官结构内提供大大增强的肿瘤细胞图像。使用分支的PDMS微通道和3D组织工程在那些MEMS通道内的正常和恶性人乳腺癌细胞,我们可以模仿人体导管乳腺癌的早期阶段,以提高乳腺X线摄影和非常小的肿瘤MRI的敏感性和分辨率测试治疗的新策略。纳米医疗系统可以通过人工器官内部的多色共聚焦显微镜容易地成像,以测试靶向和治疗反应,包括治疗期间正常和肿瘤细胞的差异活力。目前我们正在使用二维MEMS结构,但这些研究可以使用新的3D印刷技术扩展到更复杂的3D结构。

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