重塑生物打印机:实时监测生物打印结构的质量控制和未来愿景。

IF 8 2区 医学 Q1 ENGINEERING, BIOMEDICAL
Alicia Adina Matavosian, Lawrence Bonassar
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引用次数: 0

摘要

在过去的二十年里,生物打印机作为生物墨水和细胞的沉积工具的使用已经大大扩展。生物打印将水凝胶与细胞结合,为个性化医疗生产定制结构。然而,一些挑战阻碍了这些结构的临床应用。生物打印的质量控制指标包括在生产的每个阶段对关键质量属性(cqa)的评估。目前,生物打印构建体是使用后期破坏性方法进行人工评估的,需要为每位患者创建多个产品。由于时间敏感的生物墨水特性,需要长时间的优化过程才能准确打印,因此复制打印结构是困难的。此外,每个打印结构的细胞生物活性的收集、处理和测试大大增加了生产成本。为了应对这些挑战,非破坏性的实时监测可以集成到生物打印过程中。这篇综述论文的目标是重新想象生物打印机的功能,从一个简单的生产工具到一个能够实时评估结构的工具。这篇综述介绍了实时监测领域的最新进展,重点是对时间敏感的生物链接特性、打印精度和细胞健康。自动评估和量化对时间敏感的生物墨水质量,如混合,pH值,温度和粘度,将通过实现打印参数的快速优化来提高结构质量。同时,通过浓度、活力和类型实时监测细胞健康状况,作为生物活性的指标。通过在印刷过程中对缺陷的识别、预测和纠正,也提高了结构的准确性和再现性。使用闭环反馈将实时监测纳入生物打印过程将提高可重复性、质量和构建物在临床中的转化。 。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reimagining bioprinters: real-time monitoring for quality control of bioprinted constructs and future vision.

The use of bioprinters as depositional tools for bioinks and cells has expanded greatly over the past two decades. Bioprinting combines hydrogels with cells to produce customized constructs for personalized medicine. However, several challenges hinder the clinical use of these constructs. Quality control metrics for bioprinting involve the assessment of critical quality attributes (CQAs) at every stage of production. Currently, bioprinted constructs are manually assessed using destructive methods that occur post-production, requiring the creation of multiple products per patient. Reproducing printed constructs is difficult due to time-sensitive bioink properties that require lengthy optimization processes to print with accuracy. In addition, the collection, processing, and testing of cell bioactivity for each printed construct greatly increases production costs. To address these challenges, non-destructive, real-time monitoring can be integrated into the bioprinting process. The goal of this review paper is to reimagine the function of a bioprinter from a simple tool of production to one capable of evaluating constructs in real-time. This review features recent advances in the field for real-time monitoring with a focus on time-sensitive bioink properties, print accuracy, and cell health. Automated assessment and quantification of time-sensitive bioink qualities such as mixing, pH, temperature, and viscosity will enhance construct quality by enabling the rapid optimization of printing parameters. Meanwhile, real-time monitoring of cell health through concentration, viability, and type serves as an indicator for bioactivity. Construct accuracy and reproducibility are also improved through the identification, prediction, and correction of defects during printing. Incorporating real-time monitoring into the bioprinting process using closed-loop feedback would improve the reproducibility, quality, and translation of constructs into the clinic. .

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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).
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