Wolfel Alexis, Johnbosco Castro, Anspach Annalise, Meteling Marieke, Olijve Jos, König Niklas Felix, Leijten Jeroen
Leijten Lab, BioEngineering Technologies, TechMed Centre, Faculty of Science and Technology, University of Twente, Enschede, 7522NB, The Netherlands.
Rousselot BV, Port Arthurlaan 173, Ghent, 9000, Belgium.
Adv Mater. 2025 Sep;37(37):e2501052. doi: 10.1002/adma.202501052. Epub 2025 Apr 26.
Light-based volumetric bioprinting enables fabrication of cubic centimeter-sized living materials with micrometer resolution in minutes. Xolography is a light sheet-based volumetric printing technology that offers unprecedented volumetric generation rates and print resolutions for hard plastics. However, the limited solubility and reactivity of current dual-color photoinitiators (DCPIs) in aqueous media have hindered their application for high-resolution bioprinting of living matter. Here, we present a novel three-component formulation that drastically improves photoreactivity and thereby enables high-resolution, rapid, and cytocompatible Xolographic biofabrication of intricately architected yet mechanically robust living materials. To achieve this, various relevant additives are systematically explored, which revealed that diphenyliodonium chloride and N-vinylpyrrolidone strongly enhance D-mediated photoreactivity, as confirmed by dual-color photo-rheology. This enables Xolographic bioprinting of gelatin methacryloyl-based bioresins, producing >1 cm constructs at ≈20 µm positive and 125 µm negative resolution within minutes. Multimaterial printing, molecular patterning, and grayscale-mediated mechanical patterning are explored to programmably create intricate, biomimetic, and concentration-controlled architectures. We demonstrate the Bioxolographic printing of various cell types, showing excellent cell viability, compatibility with long-term culture, and ability for nascent protein deposition. These results position Bioxolography as a transformative platform for rapid, scalable, high-resolution fabrication of functional living materials with encoded chemical and mechanical properties.
基于光的体积生物打印能够在数分钟内制造出具有微米级分辨率的立方厘米大小的生物活性材料。Xolography是一种基于光片的体积打印技术,可为硬塑料提供前所未有的体积生成速率和打印分辨率。然而,目前的双色光引发剂(DCPIs)在水性介质中的溶解度和反应活性有限,这阻碍了它们在生物活性物质高分辨率生物打印中的应用。在此,我们提出了一种新型的三组分配方,该配方极大地提高了光反应活性,从而实现了对结构复杂但机械性能稳健的生物活性材料进行高分辨率、快速且细胞兼容的Xolographic生物制造。为实现这一目标,我们系统地探索了各种相关添加剂,结果表明,氯化二苯基碘鎓和N-乙烯基吡咯烷酮可强烈增强D介导的光反应活性,双色光流变学证实了这一点。这使得基于甲基丙烯酰化明胶的生物树脂能够进行Xolographic生物打印,在数分钟内以约20 µm的正分辨率和125 µm的负分辨率制造出大于1 cm的构建体。我们探索了多材料打印、分子图案化和灰度介导的机械图案化,以可编程方式创建复杂、仿生且浓度可控的结构。我们展示了多种细胞类型的生物Xolographic打印,显示出优异的细胞活力、与长期培养的兼容性以及新生蛋白质沉积的能力。这些结果将生物Xolography定位为一个变革性平台,用于快速、可扩展、高分辨率制造具有编码化学和机械性能的功能性生物活性材料。