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用于 3D 心脏起搏的手性纸质支架。

Optically Active, Paper-Based Scaffolds for 3D Cardiac Pacing.

机构信息

Laboratory for Soft Matter and Biophysics, Department of Physics and Astronomy, KU Leuven, 3001 Leuven, Belgium.

Sustainable Materials Lab, Department of Chemical Engineering, KU Leuven, Campus Kulak Kortrijk, Etienne Sabbelaan 53, Kortrijk 8500, Belgium.

出版信息

ACS Appl Mater Interfaces. 2024 Oct 9;16(40):53449-53459. doi: 10.1021/acsami.4c10183. Epub 2024 Sep 27.

Abstract

In this work, we report the design and fabrication of a light-addressable, paper-based nanocomposite scaffold for optical pacing and read-out of in vitro grown cardiac tissue. The scaffold consists of paper cellulose microfibers functionalized with gold nanorods (GNRs) and semiconductor quantum dots (QDs), embedded in a cell-permissive collagen matrix. The GNRs enable cardiomyocyte activity modulation through local temperature gradients induced by modulated near-infrared (NIR) laser illumination, with the local temperature changes reported by temperature-dependent QD photoluminescence (PL). The micrometer-sized paper fibers promote the tubular organization of HL-1 cardiac muscle cells, while the NIR plasmonic stimulation modulates reversibly their activity. Given the nanoscale spatial resolution and facile fabrication, paper-based nanocomposite scaffolds with NIR modulation offer excellent alternatives to electrode-based or optogenetic methods for cell activity modulation, at the single cell level, and are compatible with 3D tissue constructs. Such paper-based optical platforms can provide new possibilities for the development of in vitro drug screening assays and heart disease modeling.

摘要

在这项工作中,我们报告了一种光寻址的基于纸张的纳米复合支架的设计和制造,用于体外生长的心脏组织的光学起搏和读出。该支架由金纳米棒(GNRs)和半导体量子点(QDs)功能化的纸纤维素微纤维组成,嵌入在细胞相容的胶原基质中。GNRs 通过调制近红外(NIR)激光照射引起的局部温度梯度来实现心肌细胞活性的调制,局部温度变化由温度依赖的 QD 光致发光(PL)报告。微米级的纸纤维促进 HL-1 心肌细胞的管状组织,而近红外等离子体刺激可可逆地调节其活性。鉴于纳米级的空间分辨率和易于制造,基于纸张的纳米复合材料支架具有近红外调制功能,为在单细胞水平上调节细胞活性提供了优于基于电极或光遗传学方法的极好替代方案,并且与 3D 组织构建兼容。这种基于纸张的光学平台为体外药物筛选测定和心脏病建模的发展提供了新的可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4dce/11472259/0ed741cf0656/am4c10183_0001.jpg

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