Droplet-based bioprinting for the tailored fabrication of bacteria-laden living materials.

IF 3.5 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Bioprocess and Biosystems Engineering Pub Date : 2024-11-22 DOI:10.1007/s00449-024-03106-0
Xudong Guo, Dingyi Wang, Yingying Guo, Junpeng Zhang, Yingying Li, Haozhong Tian, Lihong Liu, Yong Liang, Yongguang Yin, Bin He, Ligang Hu, Guibin Jiang
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Abstract

Droplet-based bioprinting (DBB) allows for high precision, noncontact, and on-demand distribution of bioinks, hence it has been widely utilized in the preparation of bacteria-laden living materials (BLMs). Nonetheless, discontinuous ink deposition makes it challenging to fabricate large-sized intact living structures via this technique. Herein, we explore the way of using DBB to construct centimeter-scale BLMs with bespoke geometries, and further demonstrate its potential applicability in sensing-responsive device by integrating engineered bacteria. We first established a DBB method based on printing-path design, which does not require hardware modification. This strategy was able to produce customized 3D-hydrogel structures with high shape fidelity. Then, we confirmed the excellent biocompatibility of the above biofabrication approach. The Escherichia coli survived 93% ± 4.0% in printed BLMs, with uniform distribution throughout the structure. As a proof-of-concept, we finally manufactured a test strip-like heavy metal biosensor capable of plug-and-play detecting mercury (II) in water using the aforesaid approach. To our knowledge, this is the first study to employ 3D bioprinted BLMs for the detection of prevalent heavy metal pollutants. Our research shed light on the versatility of DBB in BLMs construction, which is not restricted to two-dimensional patterns. Moreover, our results are expected to innovate heavy metal biodetection and improve detection efficiency and sensitivity.

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基于液滴的生物打印技术,用于定制制造含菌生物材料。
基于液滴的生物打印(DBB)可实现生物墨水的高精度、非接触和按需分布,因此已被广泛用于制备含菌生物材料(BLM)。然而,不连续的油墨沉积使得通过这种技术制备大尺寸的完整活体结构具有挑战性。在此,我们探索了使用 DBB 构建具有定制几何形状的厘米级 BLM 的方法,并通过整合工程细菌进一步证明了其在传感响应设备中的潜在适用性。我们首先建立了一种基于打印路径设计的 DBB 方法,这种方法不需要修改硬件。这种策略能够生产出形状保真度高的定制化三维水凝胶结构。然后,我们证实了上述生物制造方法具有良好的生物相容性。大肠杆菌在打印的 BLM 中存活率为 93% ± 4.0%,且在整个结构中分布均匀。作为概念验证,我们最终利用上述方法制造出了一种类似试纸的重金属生物传感器,能够即插即用地检测水中的汞(II)。据我们所知,这是第一项利用三维生物打印 BLM 检测普遍存在的重金属污染物的研究。我们的研究揭示了 DBB 在 BLM 构建中的多功能性,它并不局限于二维模式。此外,我们的研究成果有望创新重金属生物检测技术,提高检测效率和灵敏度。
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来源期刊
Bioprocess and Biosystems Engineering
Bioprocess and Biosystems Engineering 工程技术-工程:化工
CiteScore
7.90
自引率
2.60%
发文量
147
审稿时长
2.6 months
期刊介绍: Bioprocess and Biosystems Engineering provides an international peer-reviewed forum to facilitate the discussion between engineering and biological science to find efficient solutions in the development and improvement of bioprocesses. The aim of the journal is to focus more attention on the multidisciplinary approaches for integrative bioprocess design. Of special interest are the rational manipulation of biosystems through metabolic engineering techniques to provide new biocatalysts as well as the model based design of bioprocesses (up-stream processing, bioreactor operation and downstream processing) that will lead to new and sustainable production processes. Contributions are targeted at new approaches for rational and evolutive design of cellular systems by taking into account the environment and constraints of technical production processes, integration of recombinant technology and process design, as well as new hybrid intersections such as bioinformatics and process systems engineering. Manuscripts concerning the design, simulation, experimental validation, control, and economic as well as ecological evaluation of novel processes using biosystems or parts thereof (e.g., enzymes, microorganisms, mammalian cells, plant cells, or tissue), their related products, or technical devices are also encouraged. The Editors will consider papers for publication based on novelty, their impact on biotechnological production and their contribution to the advancement of bioprocess and biosystems engineering science. Submission of papers dealing with routine aspects of bioprocess engineering (e.g., routine application of established methodologies, and description of established equipment) are discouraged.
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