三维细胞培养和三维生物打印平台的设计方法

M Sreepadmanabh, Ashitha B. Arun, Tapomoy Bhattacharjee
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摘要

大多数细胞的自然栖息地由复杂无序的三维微环境组成,具有时空动态的材料特性。然而,目前流行的体外培养方法是在生物仿真度较低的二维封闭或均质条件下研究细胞,往往忽略了关键的地形线索和机械刺激。此外,越来越明显的是,三维构象中的细胞表现出显著变化的形态和表型状态。因此,在过去几十年中,设计用于三维细胞培养的生物材料平台的工作占据了中心位置。在此,我们将广泛介绍用于三维细胞培养和三维生物打印的生物材料,包括整体和颗粒系统。我们首先对传统的单片水凝胶网络进行了批判性评估,重点关注特定的实验要求。在此基础上,我们记录了最近出现的基于微凝胶的三维生长介质,它是一种前景广阔的生物材料平台,能够在多孔和颗粒支架内对细胞进行检测。我们还探讨了如何利用干扰微凝胶系统,通过三维生物打印技术在空间上设计和操纵细胞结构。这些技术的出现预示着一种前所未有的能力,可以在实验中模拟复杂的生理龛位,对组织生物工程和生物医学应用具有重要意义。
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Design approaches for 3D cell culture and 3D bioprinting platforms
The natural habitat of most cells consists of complex and disordered 3D microenvironments with spatiotemporally dynamic material properties. However, prevalent methods of in vitro culture study cells under poorly biomimetic 2D confinement or homogeneous conditions that often neglect critical topographical cues and mechanical stimuli. It has also become increasingly apparent that cells in a 3D conformation exhibit dramatically altered morphological and phenotypical states. In response, efforts toward designing biomaterial platforms for 3D cell culture have taken centerstage over the past few decades. Herein, we present a broad overview of biomaterials for 3D cell culture and 3D bioprinting, spanning both monolithic and granular systems. We first critically evaluate conventional monolithic hydrogel networks, with an emphasis on specific experimental requirements. Building on this, we document the recent emergence of microgel-based 3D growth media as a promising biomaterial platform enabling interrogation of cells within porous and granular scaffolds. We also explore how jammed microgel systems have been leveraged to spatially design and manipulate cellular structures using 3D bioprinting. The advent of these techniques heralds an unprecedented ability to experimentally model complex physiological niches, with important implications for tissue bioengineering and biomedical applications.
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