Cellular Senescence Program is Sensitive to Physical Differences in Polymeric Tissue Scaffolds

IF 5.7 Q2 CHEMISTRY, PHYSICAL
Parul Yadav, Rahul Shah, Anindo Roy, Sibani Jani, Kaushik Chatterjee* and Deepak Kumar Saini*, 
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引用次数: 0

Abstract

A typical cellular senescence program involves exposing cells to DNA-damaging agents such as ionization radiation or chemotherapeutic drugs, which cause multipronged changes, including increased cell size and volume, the onset of enhanced oxidative stress, and inflammation. In the present study, we examined if the senescence onset decision is sensitive to the design, porosity, and architecture of the substrate. To address this, we generated a library of polymeric scaffolds widely used in tissue engineering of varied stiffness, architecture, and porosity. Using irradiated A549 lung cancer cells, we examined the differences between cellular responses in these 3D scaffold systems and observed that senescence onset is equally diminished. When compared to the two-dimensional (2D) culture formats, there were profound changes in cell size and senescence induction in three-dimensional (3D) scaffolds. We further establish that these observed differences in the senescence state can be attributed to the altered cell spreading and cellular interactions on these substrates. This study elucidates the role of scaffold architecture in the cellular senescence program.

Abstract Image

Abstract Image

细胞衰老程序对聚合物组织支架的物理差异很敏感
典型的细胞衰老程序包括将细胞暴露于电离辐射或化疗药物等DNA损伤剂中,从而引起多方面的变化,包括细胞体积和大小增大、氧化应激增强和炎症的发生。在本研究中,我们研究了衰老开始的决定是否对基质的设计、孔隙率和结构敏感。为了解决这个问题,我们生成了一个广泛应用于组织工程的聚合物支架库,其硬度、结构和孔隙率各不相同。我们使用经过辐照的 A549 肺癌细胞,研究了细胞在这些三维支架系统中反应的差异,并观察到衰老的发生也同样减弱。与二维(2D)培养模式相比,三维(3D)支架中的细胞大小和衰老诱导发生了深刻变化。我们进一步确定,这些观察到的衰老状态差异可归因于这些基底上细胞扩散和细胞相互作用的改变。这项研究阐明了支架结构在细胞衰老过程中的作用。
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来源期刊
ACS Materials Au
ACS Materials Au 材料科学-
CiteScore
5.00
自引率
0.00%
发文量
0
期刊介绍: ACS Materials Au is an open access journal publishing letters articles reviews and perspectives describing high-quality research at the forefront of fundamental and applied research and at the interface between materials and other disciplines such as chemistry engineering and biology. Papers that showcase multidisciplinary and innovative materials research addressing global challenges are especially welcome. Areas of interest include but are not limited to:Design synthesis characterization and evaluation of forefront and emerging materialsUnderstanding structure property performance relationships and their underlying mechanismsDevelopment of materials for energy environmental biomedical electronic and catalytic applications
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