Engineered Gold and Silica Nanoparticle-Incorporated Hydrogel Scaffolds for Human Stem Cell-Derived Cardiac Tissue Engineering

IF 5.4 2区 医学 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Biomaterials Science & Engineering Pub Date : 2024-02-07 DOI:10.1021/acsbiomaterials.3c01256
Hamid Esmaeili, Alejandra Patino-Guerrero, Ronald A. Nelson Jr., Nina Karamanova, Taylor M. Fisher, Wuqiang Zhu, François Perreault, Raymond Q. Migrino and Mehdi Nikkhah*, 
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Abstract

Electrically conductive biomaterials and nanomaterials have demonstrated great potential in the development of functional and mature cardiac tissues. In particular, gold nanomaterials have emerged as promising candidates due to their biocompatibility and ease of fabrication for cardiac tissue engineering utilizing rat- or stem cell-derived cardiomyocytes (CMs). However, despite significant advancements, it is still not clear whether the enhancement in cardiac tissue function is primarily due to the electroconductivity features of gold nanoparticles or the structural changes of the scaffold resulting from the addition of these nanoparticles. To address this question, we developed nanoengineered hydrogel scaffolds comprising gelatin methacrylate (GelMA) embedded with either electrically conductive gold nanorods (GNRs) or nonconductive silica nanoparticles (SNPs). This enabled us to simultaneously assess the roles of electrically conductive and nonconductive nanomaterials in the functionality and fate of human-induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs). Our studies revealed that both GNR- and SNP-incorporated hydrogel scaffolds exhibited excellent biocompatibility and similar cardiac cell attachment. Although the expression of sarcomere alpha-actinin did not significantly differ among the conditions, a more organized sarcomere structure was observed within the GNR-embedded hydrogels compared to the nonconductive nanoengineered scaffolds. Furthermore, electrical coupling was notably improved in GNR-embedded scaffolds, as evidenced by the synchronous calcium flux and enhanced calcium transient intensity. While we did not observe a significant difference in the gene expression profile of human cardiac tissues formed on the conductive GNR- and nonconductive SNP-incorporated hydrogels, we noticed marginal improvements in the expression of some calcium and structural genes in the nanomaterial-embedded hydrogel groups as compared to the control condition. Given that the cardiac tissues formed atop the nonconductive SNP-based scaffolds (used as the control for conductivity) also displayed similar levels of gene expression as compared to the conductive hydrogels, it suggests that the electrical conductivity of nanomaterials (i.e., GNRs) may not be the sole factor influencing the function and fate of hiPSC-derived cardiac tissues when cells are cultured atop the scaffolds. Overall, our findings provide additional insights into the role of electrically conductive gold nanoparticles in regulating the functionalities of hiPSC-CMs.

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用于人类干细胞衍生心脏组织工程的金和二氧化硅纳米颗粒掺入水凝胶支架。
导电生物材料和纳米材料在开发功能成熟的心脏组织方面具有巨大潜力。特别是金纳米材料,由于其生物相容性和易于制造,已成为利用大鼠或干细胞衍生的心肌细胞(CMs)进行心脏组织工程的有前途的候选材料。然而,尽管取得了重大进展,但仍不清楚心脏组织功能的增强主要是由于金纳米粒子的电导特性,还是由于添加了这些纳米粒子后支架结构发生了变化。为了解决这个问题,我们开发了纳米工程水凝胶支架,该支架由甲基丙烯酸明胶(GelMA)组成,内嵌导电金纳米棒(GNRs)或不导电二氧化硅纳米颗粒(SNPs)。这使我们能够同时评估导电和非导电纳米材料在人类诱导多能干细胞衍生心肌细胞(hiPSC-CMs)的功能和命运中的作用。我们的研究表明,GNR和SNP结合的水凝胶支架都具有良好的生物相容性和相似的心肌细胞附着性。虽然不同条件下肌节α-肌动蛋白的表达没有显著差异,但与不导电的纳米工程支架相比,在GNR包埋的水凝胶中观察到了更有组织的肌节结构。此外,电耦合在 GNR 嵌入式支架中得到明显改善,同步钙通量和增强的钙瞬态强度证明了这一点。虽然我们没有观察到在导电的 GNR 和不导电的 SNP 嵌入水凝胶上形成的人体心脏组织的基因表达谱有显著差异,但我们注意到,与对照组相比,纳米材料嵌入水凝胶组中一些钙和结构基因的表达略有改善。鉴于在不导电的 SNP 支架上形成的心脏组织(作为导电性对照)也显示出与导电水凝胶相似的基因表达水平,这表明当细胞在支架上培养时,纳米材料(即 GNRs)的导电性可能不是影响 hiPSC 衍生心脏组织功能和命运的唯一因素。总之,我们的研究结果为导电金纳米颗粒在调节 hiPSC-CMs 功能方面的作用提供了更多的见解。
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来源期刊
ACS Biomaterials Science & Engineering
ACS Biomaterials Science & Engineering Materials Science-Biomaterials
CiteScore
10.30
自引率
3.40%
发文量
413
期刊介绍: ACS Biomaterials Science & Engineering is the leading journal in the field of biomaterials, serving as an international forum for publishing cutting-edge research and innovative ideas on a broad range of topics: Applications and Health – implantable tissues and devices, prosthesis, health risks, toxicology Bio-interactions and Bio-compatibility – material-biology interactions, chemical/morphological/structural communication, mechanobiology, signaling and biological responses, immuno-engineering, calcification, coatings, corrosion and degradation of biomaterials and devices, biophysical regulation of cell functions Characterization, Synthesis, and Modification – new biomaterials, bioinspired and biomimetic approaches to biomaterials, exploiting structural hierarchy and architectural control, combinatorial strategies for biomaterials discovery, genetic biomaterials design, synthetic biology, new composite systems, bionics, polymer synthesis Controlled Release and Delivery Systems – biomaterial-based drug and gene delivery, bio-responsive delivery of regulatory molecules, pharmaceutical engineering Healthcare Advances – clinical translation, regulatory issues, patient safety, emerging trends Imaging and Diagnostics – imaging agents and probes, theranostics, biosensors, monitoring Manufacturing and Technology – 3D printing, inks, organ-on-a-chip, bioreactor/perfusion systems, microdevices, BioMEMS, optics and electronics interfaces with biomaterials, systems integration Modeling and Informatics Tools – scaling methods to guide biomaterial design, predictive algorithms for structure-function, biomechanics, integrating bioinformatics with biomaterials discovery, metabolomics in the context of biomaterials Tissue Engineering and Regenerative Medicine – basic and applied studies, cell therapies, scaffolds, vascularization, bioartificial organs, transplantation and functionality, cellular agriculture
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