Droplet bioprinting of acellular and cell-laden structures at high-resolutions.

IF 8.2 2区 医学 Q1 ENGINEERING, BIOMEDICAL Biofabrication Pub Date : 2024-05-23 DOI:10.1088/1758-5090/ad4c09
Puskal Kunwar, Ujjwal Aryal, Arun Poudel, Daniel Fougnier, Zachary J Geffert, Rui Xie, Zhen Li, Pranav Soman
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Abstract

Advances in digital light projection(DLP) based (bio) printers have made printing of intricate structures at high resolution possible using a wide range of photosensitive bioinks. A typical setup of a DLP bioprinter includes a vat or reservoir filled with liquid bioink, which presents challenges in terms of cost associated with bioink synthesis, high waste, and gravity-induced cell settling, contaminations, or variation in bioink viscosity during the printing process. Here, we report a vat-free, low-volume, waste-free droplet bioprinting method capable of rapidly printing 3D soft structures at high resolution using model bioinks and model cells. A multiphase many-body dissipative particle dynamics model was developed to simulate the dynamic process of droplet-based DLP printing and elucidate the roles of surface wettability and bioink viscosity. Process variables such as light intensity, photo-initiator concentration, and bioink formulations were optimized to print 3D soft structures (∼0.4-3 kPa) with a typical layer thickness of 50µm, an XY resolution of 38 ± 1.5μm and Z resolution of 237 ± 5.4µm. To demonstrate its versatility, droplet bioprinting was used to print a range of acellular 3D structures such as a lattice cube, a Mayan pyramid, a heart-shaped structure, and a microfluidic chip with endothelialized channels. Droplet bioprinting, performed using model C3H/10T1/2 cells, exhibited high viability (90%) and cell spreading. Additionally, microfluidic devices with internal channel networks lined with endothelial cells showed robust monolayer formation while osteoblast-laden constructs showed mineral deposition upon osteogenic induction. Overall, droplet bioprinting could be a low-cost, no-waste, easy-to-use, method to make customized bioprinted constructs for a range of biomedical applications.

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高分辨率液滴生物打印无细胞和有细胞结构。
基于数字光处理技术(DLP)的(生物)打印机的进步使得使用各种光敏生物墨水以高分辨率打印复杂结构成为可能。DLP 生物打印机的典型设置包括一个装满液态生物墨水的大桶或储液器,这就带来了与生物墨水合成相关的成本、高浪费、重力引起的细胞沉降、污染或打印过程中生物墨水粘度变化等方面的挑战。在此,我们报告了一种无缸、低容量、无废物的液滴生物打印方法,该方法能够使用模型生物墨水以高分辨率快速打印三维软结构。我们开发了一个多相多体耗散粒子动力学(mDPD)模型来模拟基于液滴的 DLP 打印的动态过程,并阐明了表面润湿性和生物墨水粘度的作用。对光强度、光引发剂浓度和生物墨水配方等过程变量进行了优化,以打印出 XY 分辨率为 38±1.5 μm 和 Z 分辨率为 237±5.4 µm 的三维软结构(~0.4 至 3 kPa)。为了证明液滴生物打印技术的多功能性,我们使用液滴生物打印技术打印了一系列无细胞三维结构,如晶格立方体、玛雅金字塔、心形结构和带有内皮通道的微流体芯片。使用模型 C3H/10T1/2 细胞进行的液滴生物打印显示出很高的存活率(90%)和细胞铺展性。此外,内部通道网络衬有内皮细胞的微流控装置显示出强大的单层形成能力,而成骨细胞负载的构建物在成骨诱导后显示出矿物质沉积。总之,液滴生物打印是一种低成本、无废料、易于使用的方法,可为一系列生物医学应用制造定制的生物打印构建体。
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来源期刊
Biofabrication
Biofabrication ENGINEERING, BIOMEDICAL-MATERIALS SCIENCE, BIOMATERIALS
CiteScore
17.40
自引率
3.30%
发文量
118
审稿时长
2 months
期刊介绍: Biofabrication is dedicated to advancing cutting-edge research on the utilization of cells, proteins, biological materials, and biomaterials as fundamental components for the construction of biological systems and/or therapeutic products. Additionally, it proudly serves as the official journal of the International Society for Biofabrication (ISBF).
期刊最新文献
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