Fredrikson Jacob P, Roth Daniela M, Cosgrove Jameson A, Sener Gulsu, Crow Lily A, Eckenstein Kazumi, Wu Lillian, Hosseini Mahshid, Thomas George, Eksi Sebnem Ece, Bertassoni Luiz
Knight Cancer Precision Biofabrication Hub, Knight Cancer Institute, Oregon Health and Science University, Portland, OR 97201, USA.
Cancer Early Detection Advanced Research Center (CEDAR), Knight Cancer Institute, Oregon Health and Science University, Portland, OR 97201, USA.
Lab Chip. 2025 Jul 8;25(14):3467-3481. doi: 10.1039/d5lc00134j.
Organoid models are invaluable for studying organ processes , offering an unprecedented ability to replicate organ function. Despite recent advancements that have increased their cellular complexity, organoids generally lack key specialized cell types, such as neurons, limiting their ability to fully model organ function and dysfunction. Innervating organoids remains a significant challenge due to the asynchronous biological cues governing neural and organ development. Here, we present a versatile organ-on-a-chip platform designed to innervate organoids across diverse tissue types. Our strategy enables the development of innervated granular hydrogel tissue constructs, followed by the sequential addition of organoids. The microfluidic device features an open tissue chamber, which can be easily manipulated using standard pipetting or advanced bioprinting techniques. Engineered to accommodate microgels of any material larger than 50 μm, the chamber provides flexibility for constructing customizable hydrogel environments. Organoids and other particles can be precisely introduced into the device at any stage using aspiration-assisted bioprinting. To validate this platform, we demonstrate the successful growth of primary mouse superior cervical ganglia (mSCG) neurons and the platform's effectiveness in innervating prostate cancer spheroids and patient-derived renal cell carcinoma organoids. This platform offers a robust and adaptable tool for generating complex innervated organoids, paving the way for more accurate models of organ development, function, and disease.
类器官模型对于研究器官过程具有极高价值,它提供了前所未有的复制器官功能的能力。尽管最近取得了进展,增加了类器官的细胞复杂性,但类器官通常缺乏关键的特化细胞类型,如神经元,这限制了它们全面模拟器官功能和功能障碍的能力。由于神经和器官发育所遵循的生物线索不同步,为类器官提供神经支配仍然是一项重大挑战。在此,我们展示了一种多功能的芯片上器官平台,旨在为多种组织类型的类器官提供神经支配。我们的策略能够开发出具有神经支配的颗粒状水凝胶组织构建体,随后依次添加类器官。该微流控装置具有一个开放的组织腔室,可以使用标准移液或先进的生物打印技术轻松操作。该腔室经过设计,可容纳任何大于50μm的材料制成的微凝胶,为构建可定制的水凝胶环境提供了灵活性。使用抽吸辅助生物打印技术,可在任何阶段将类器官和其他颗粒精确引入该装置。为验证该平台,我们展示了原代小鼠颈上神经节(mSCG)神经元的成功生长以及该平台在为前列腺癌球体和患者来源的肾细胞癌类器官提供神经支配方面的有效性。该平台为生成复杂的具有神经支配的类器官提供了一个强大且适应性强的工具,为更准确地模拟器官发育、功能和疾病铺平了道路。