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水凝胶基人工细胞中线粒体的封装作为产生 ATP 的亚单位。

Mitochondria Encapsulation in Hydrogel-Based Artificial Cells as ATP Producing Subunits.

机构信息

Interdisciplinary Nanoscience Center (iNANO), Aarhus University, Gustav Wieds Vej 14, Aarhus, 8000, Denmark.

Department of Molecular Medicine, University of Pavia, Via Forlanini 6, Pavia, 27100, Italy.

出版信息

Small. 2021 Jun;17(24):e2007959. doi: 10.1002/smll.202007959. Epub 2021 May 10.

Abstract

Artificial cells (ACs) aim to mimic selected structural and functional features of mammalian cells. In this context, energy generation is an important challenge to be addressed when self-sustained systems are desired. Here, mitochondria isolated from HepG2 cells are employed as natural subunits that facilitate chemically driven adenosine triphosphate (ATP) synthesis. The successful mitochondria isolation is confirmed by monitoring the preserved inner membrane potential, the respiration, and the ATP production ability. The encapsulation of the isolated mitochondria in gelatin-based hydrogels results in similar initial ATP production compared to mitochondria in solution with a sustained ATP production over 24 h. Furthermore, luciferase is coencapsulated with the mitochondria in gelatin-based particles to create ACs and employ the in situ produced ATP to drive the catalytic conversion of d-luciferin. The coencapsulation of luciferase-loaded liposomes with mitochondria in gelatin-based hydrogels is additionally explored where the encapsulation of mitochondria and liposomes resulted in clustering effects that are likely contributing to the functional performance of the active entities. Taken together, mitochondria show potential in cell mimicry to facilitate energy-dependent processes.

摘要

人工细胞 (ACs) 旨在模拟哺乳动物细胞的某些结构和功能特征。在这种情况下,当需要自维持系统时,能量生成是一个需要解决的重要挑战。在这里,从 HepG2 细胞中分离出的线粒体被用作天然亚基,以促进化学驱动的三磷酸腺苷 (ATP) 合成。通过监测保留的内膜电位、呼吸和 ATP 产生能力,可确认成功分离出线粒体。将分离的线粒体封装在基于明胶的水凝胶中会导致与溶液中分离的线粒体相似的初始 ATP 产生,并且在 24 小时内持续产生 ATP。此外,将线粒体与 Luciferase 共包封在基于明胶的颗粒中以创建 AC,并利用原位产生的 ATP 驱动 d-Luciferin 的催化转化。还探索了在基于明胶的水凝胶中将负载 Luciferase 的脂质体与线粒体共包封,其中线粒体和脂质体的包封导致了团聚效应,这可能有助于活性实体的功能性能。总之,线粒体在细胞模拟中显示出促进能量依赖过程的潜力。

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