色素皮肤的多模态生物打印与算法调谐控制

IF 6 2区 医学 Q2 MATERIALS SCIENCE, BIOMATERIALS
Rihui Kang , Meng Li , Rong Cheng , Luxiao Sang , Anguo Liu , Hulin Zhang , Shengbo Sang
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引用次数: 0

摘要

本研究通过基于液滴沉积和精密运动控制的协同集成,解决了通过3D生物打印制造功能性色素皮肤模型的关键技术挑战。开发了一种混合生物打印策略来创建多层仿生结构:真皮层通过明胶甲基丙烯酰聚丙烯酰胺(GelMA-PAM)复合材料挤压而成,而表皮层则结合了通过微阀技术沉积的精确图案的富含黑色素细胞的GelMA-PAM阵列,随后固化并填充角质形成细胞。为了提高打印可靠性,采用粒子群优化(PSO-FOPI)方法优化了分数阶比例积分控制系统,显著提高了电机调速和定位精度。此外,开发了一种新型灌注培养平台,该平台将聚己内酯(PCL)打印的空心网格支架连接到蠕动泵系统。这一创新提高了养分运输效率,同时将培养基消耗减少到传统需求的10%。组织学表征表明,工程皮肤模型中色素分布均匀,功能分析证实了良好的生物学性能。本研究建立了一种多模态生物制造策略,为构建具有复杂结构和功能的人造器官提供了强大的技术框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multimodal bioprinting of pigmented skin with algorithm-tuned control
This study addresses critical technical challenges in fabricating functional pigmented skin models via 3D bioprinting through the synergistic integration of droplet-based deposition and precision motion control. A hybrid bioprinting strategy was developed to create multilayer biomimetic architectures: the dermal layer was fabricated through extrusion of gelatin methacryloyl-polyacrylamide (GelMA-PAM) composites, while the epidermal layer incorporated precisely patterned melanocyte-laden GelMA-PAM arrays deposited via microvalve technology, subsequently solidified and populated with keratinocytes. To enhance printing reliability, a fractional-order proportional-integral control system optimized through particle swarm optimization (PSO-FOPI) was implemented, significantly improving motor speed regulation and positioning accuracy. Furthermore, a novel perfusion culture platform featuring polycaprolactone (PCL)-printed hollow grid scaffolds connected to a peristaltic pump system was developed. This innovation enhanced nutrient transport efficiency while reducing culture medium consumption to 10 % of conventional requirements. Histological characterization demonstrated uniform pigment distribution in the engineered skin model, with functional assays confirming excellent biological performance. This study establishes a multimodal biomanufacturing strategy that provides a robust technical framework for constructing artificial organs with complex architectures and functionalities.
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来源期刊
CiteScore
17.80
自引率
0.00%
发文量
501
审稿时长
27 days
期刊介绍: Biomaterials Advances, previously known as Materials Science and Engineering: C-Materials for Biological Applications (P-ISSN: 0928-4931, E-ISSN: 1873-0191). Includes topics at the interface of the biomedical sciences and materials engineering. These topics include: • Bioinspired and biomimetic materials for medical applications • Materials of biological origin for medical applications • Materials for "active" medical applications • Self-assembling and self-healing materials for medical applications • "Smart" (i.e., stimulus-response) materials for medical applications • Ceramic, metallic, polymeric, and composite materials for medical applications • Materials for in vivo sensing • Materials for in vivo imaging • Materials for delivery of pharmacologic agents and vaccines • Novel approaches for characterizing and modeling materials for medical applications Manuscripts on biological topics without a materials science component, or manuscripts on materials science without biological applications, will not be considered for publication in Materials Science and Engineering C. New submissions are first assessed for language, scope and originality (plagiarism check) and can be desk rejected before review if they need English language improvements, are out of scope or present excessive duplication with published sources. Biomaterials Advances sits within Elsevier''s biomaterials science portfolio alongside Biomaterials, Materials Today Bio and Biomaterials and Biosystems. As part of the broader Materials Today family, Biomaterials Advances offers authors rigorous peer review, rapid decisions, and high visibility. We look forward to receiving your submissions!
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