Design and Characterization of Decellularized Caprine Liver Matrix Constructs for Liver Tissue Engineering

IF 4.6 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Supriya Bhatt, Jayanthi Krishnakumar, Kondepudi Lakshmi Mounica, Manasa Nune
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Abstract

This study focuses on developing and characterizing decellularized caprine liver scaffolds and their application in liver tissue engineering. Decellularization is achieved through chemical and enzymatic methods, effectively removing cellular components while preserving critical extracellular matrix (ECM) elements such as collagen and glycosaminoglycans (GAGs), as confirmed by histological and biochemical analyses. The scaffolds are further processed into hydrogels by combining decellularized liver matrix (dLM) with chitosan (CH) and polyvinyl alcohol (PVA), optimized through freeze-thaw (FT) cross-linking. Rheological studies show shear-thinning behavior and enhanced mechanical properties in the crosslinked dLM hydrogels, making them suitable for bioprinting applications. Scanning electron microscopy (SEM) reveals a porous structure favorable to cell adhesion, nutrient diffusion, and vascularization. Biocompatibility is confirmed through live/dead and MTT assays, demonstrating higher cell viability and proliferation on crosslinked scaffolds. HepG2 cells cultured on these scaffolds express hepatic-specific markers, such as Albumin and Cytokeratin-18, and exhibit functional capabilities, including urea metabolism and albumin synthesis, highlighting the scaffold's ability to support liver-specific activities. Collectively, these findings demonstrate the potential of FT crosslinked dLM-based hydrogels as promising candidates for liver tissue engineering, providing a biomimetic microenvironment that supports cellular functionality and promotes tissue regeneration.

Abstract Image

用于肝组织工程的脱细胞化山羊肝基质结构的设计与表征
本文主要研究脱细胞山羊肝支架的制备、表征及其在肝组织工程中的应用。脱细胞是通过化学和酶的方法来实现的,有效地去除细胞成分,同时保留关键的细胞外基质(ECM)元素,如胶原蛋白和糖胺聚糖(GAGs),经组织学和生化分析证实。将脱细胞肝基质(dLM)与壳聚糖(CH)和聚乙烯醇(PVA)结合,经冻融交联优化制备成水凝胶。流变学研究表明,交联dLM水凝胶具有剪切变薄行为和增强的机械性能,使其适合生物打印应用。扫描电子显微镜(SEM)显示有利于细胞粘附、营养物质扩散和血管形成的多孔结构。生物相容性通过活/死和MTT试验证实,在交联支架上显示更高的细胞活力和增殖能力。在这些支架上培养的HepG2细胞表达肝脏特异性标记物,如白蛋白和细胞角蛋白-18,并表现出功能能力,包括尿素代谢和白蛋白合成,突出了支架支持肝脏特异性活性的能力。总的来说,这些发现证明了FT交联的基于dlm的水凝胶作为肝组织工程的有希望的候选者的潜力,提供了一个支持细胞功能和促进组织再生的仿生微环境。
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来源期刊
Macromolecular Materials and Engineering
Macromolecular Materials and Engineering 工程技术-材料科学:综合
CiteScore
7.30
自引率
5.10%
发文量
328
审稿时长
1.6 months
期刊介绍: Macromolecular Materials and Engineering is the high-quality polymer science journal dedicated to the design, modification, characterization, processing and application of advanced polymeric materials, including membranes, sensors, sustainability, composites, fibers, foams, 3D printing, actuators as well as energy and electronic applications. Macromolecular Materials and Engineering is among the top journals publishing original research in polymer science. The journal presents strictly peer-reviewed Research Articles, Reviews, Perspectives and Comments. ISSN: 1438-7492 (print). 1439-2054 (online). Readership:Polymer scientists, chemists, physicists, materials scientists, engineers Abstracting and Indexing Information: CAS: Chemical Abstracts Service (ACS) CCR Database (Clarivate Analytics) Chemical Abstracts Service/SciFinder (ACS) Chemistry Server Reaction Center (Clarivate Analytics) ChemWeb (ChemIndustry.com) Chimica Database (Elsevier) COMPENDEX (Elsevier) Current Contents: Physical, Chemical & Earth Sciences (Clarivate Analytics) Directory of Open Access Journals (DOAJ) INSPEC (IET) Journal Citation Reports/Science Edition (Clarivate Analytics) Materials Science & Engineering Database (ProQuest) PASCAL Database (INIST/CNRS) Polymer Library (iSmithers RAPRA) Reaction Citation Index (Clarivate Analytics) Science Citation Index (Clarivate Analytics) Science Citation Index Expanded (Clarivate Analytics) SciTech Premium Collection (ProQuest) SCOPUS (Elsevier) Technology Collection (ProQuest) Web of Science (Clarivate Analytics)
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