Tissue-specific gelatin bioink as a rheology modifier for high printability and adjustable tissue properties†

IF 5.7 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Hohyeon Han, Minji Kim, Uijung Yong, Yeonggwon Jo, Yoo-mi Choi, Hye Jin Kim, Dong Gyu Hwang, Dayoon Kang and Jinah Jang
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引用次数: 0

Abstract

Decellularized extracellular matrix (dECM) has emerged as an exceptional biomaterial that effectively recapitulates the native tissue microenvironment for enhanced regenerative potential. Although various dECM bioinks derived from different tissues have shown promising results, challenges persist in achieving high-resolution printing of flexible tissue constructs because of the inherent limitations of dECM's weak mechanical properties and poor printability. Attempts to enhance mechanical rigidity through chemical modifications, photoinitiators, and nanomaterial reinforcement have often compromised the bioactivity of dECM and mismatched the desired mechanical properties of target tissues. In response, this study proposes a novel method involving a tissue-specific rheological modifier, gelatinized dECM. This modifier autonomously enhances bioink modulus pre-printing, ensuring immediate and precise shape formation upon extrusion. The hybrid bioink with GeldECM undergoes a triple crosslinking system—physical entanglement for pre-printing, visible light photocrosslinking during printing for increased efficiency, and thermal crosslinking post-printing during tissue culture. A meticulous gelatinization process preserves the dECM protein components, and optimal hybrid ratios modify the mechanical properties, tailoring them to specific tissues. The application of this sequential multiple crosslinking designs successfully yielded soft yet resilient tissue constructs capable of withstanding vigorous agitation with high shape fidelity. This innovative method, founded on mechanical modulation by GeldECM, holds promise for the fabrication of flexible tissues with high resilience.

Abstract Image

组织专用明胶生物墨水作为流变修饰剂,可实现高印刷性和可调组织特性
脱细胞细胞外基质(dECM)已成为一种特殊的生物材料,它能忠实再现原生组织的微环境,从而增强再生潜力。尽管从不同组织中提取的各种 dECM 生物材料已显示出良好的效果,但由于 dECM 机械性能弱、可印刷性差等固有限制,要实现高分辨率打印柔性组织构建物仍面临挑战。通过化学修饰、光引发剂和纳米材料增强来提高机械刚性的尝试往往会损害 dECM 的生物活性,并与目标组织所需的机械性能不匹配。为此,本研究提出了一种新方法,涉及一种组织特异性流变改性剂--胶化 dECM。这种改性剂可在印模前自主提高生物墨水的模量,确保挤出后立即形成精确的形状。含有 GeldECM 的混合生物墨水经过三重交联系统--印刷前的物理缠结、印刷过程中的可见光光交联以提高效率,以及印刷后组织培养过程中的热交联。精细的凝胶化过程保留了 dECM 蛋白质成分,最佳的混合比例改变了特定组织的机械性能。这种连续多重交联设计的应用成功地生成了柔软而有弹性的组织结构,能够承受剧烈的搅拌,形状保真度高。这种建立在 GeldECM 机械调制基础上的创新方法有望制造出具有高弹性的柔性组织。
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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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