Biomimetic Catechol-Incorporated Polyacrylonitrile Nanofiber Scaffolds for Tissue Engineering of Functional Salivary Glands.

IF 8.1 Q1 ENGINEERING, BIOMEDICAL
Biomaterials research Pub Date : 2025-07-02 eCollection Date: 2025-01-01 DOI:10.34133/bmr.0226
Seokjun Kwon, Ji Hyun Ryu, Junchul Kim, Hyun Ho Shin, Gehoon Chung, Ali Taghizadeh, Jung-Hwan Lee, Jongho Kim, Bon-Cheol Ku, Kyungpyo Park, Sang-Woo Lee
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Abstract

Replacing damaged salivary glands with in vitro-generated artificial glands offers a fundamental solution for salivary gland dysfunction. However, this approach remains challenging due to the gland's complex structure and cellular heterogeneity. Since natural organogenesis of salivary glands successfully orchestrates these complex processes, replicating the developmental niche in vitro is considered a promising solution. However, it consists of complex, branched structures formed by multiple factors; thus, recapitulation of these factors in vitro using a single type of biomaterial is difficult to achieve. Therefore, this study aims to design a scaffold capable of spontaneously mimicking salivary gland's developmental niche. Herein, we demonstrate that catechol-incorporated polyacrylonitrile (PAN-C) nanofiber scaffold spontaneously transforms into biomimetic structures by adsorbing embryonic mesenchyme-derived extracellular matrix (ECM) and growth factors. Accumulated adsorption of ECM and growth factors on PAN-C nanofibers promoted the proliferation, morphogenesis, and functional differentiation of embryonic salivary gland (eSG) organoids in vitro. Transcriptome analysis revealed that the PAN-C nanofiber scaffold effectively reduced mechanical stress-induced gene expression while promoting proliferation and differentiation of salivary gland epithelial cells. In eSG organoids cultured on PAN-C nanofiber scaffolds, the proportion of functional acinar cells expressing apically localized aquaporin-5 was substantially higher than those cultured on polycarbonate membranes, a conventional culture material. Therefore, PAN-C nanofiber scaffolds provide an effective and economical method for generating functional eSG organoids in vitro.

应用于功能性唾液腺组织工程的仿生儿茶酚-聚丙烯腈纳米纤维支架。
用体外生成的人工唾液腺替代受损的唾液腺是解决唾液腺功能障碍的根本方法。然而,由于腺体的复杂结构和细胞异质性,这种方法仍然具有挑战性。由于唾液腺的自然器官发生成功地协调了这些复杂的过程,在体外复制发育生态位被认为是一个有前途的解决方案。然而,它是由多种因素形成的复杂的分支结构组成的;因此,使用单一类型的生物材料在体外重现这些因子是很难实现的。因此,本研究旨在设计一种能够自发模拟唾液腺发育生态位的支架。在此,我们证明了儿茶酚-聚丙烯腈(PAN-C)纳米纤维支架通过吸附胚胎间充质来源的细胞外基质(ECM)和生长因子自发转化为仿生结构。ECM和生长因子在PAN-C纳米纤维上的积累吸附促进胚胎唾液腺(eSG)类器官的体外增殖、形态发生和功能分化。转录组分析显示,PAN-C纳米纤维支架可有效降低机械应力诱导的基因表达,促进唾液腺上皮细胞的增殖和分化。在PAN-C纳米纤维支架上培养的eSG类器官中,表达顶端定位水通道蛋白-5的功能性腺泡细胞比例明显高于在聚碳酸酯膜(一种传统的培养材料)上培养的腺泡细胞。因此,PAN-C纳米纤维支架为体外生成功能性eSG类器官提供了一种经济有效的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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