Harvestable tumour spheroids initiated in a gelatin-carboxymethyl cellulose hydrogel for cancer targeting and imaging with fluorescent gold nanoclusters.

In vitro models Pub Date : 2022-10-21 eCollection Date: 2022-12-01 DOI:10.1007/s44164-022-00033-w
Ashkan Kamali Dashtarzheneh, Amir Afrashtehpour, Bala Subramaniyam Ramesh, Marilena Loizidou
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Abstract

Cancer cell spheroids are the simplest 3D in vitro cancer models and have been extensively used for cancer research. More recently, models have been becoming complex, with the introduction of a matrix and non-cancer cell types to mimic specific tumour aspects. However, applying drugs or agents in matrix-embedded cancer spheroids can be problematic. Most matrices can impede and also bind drugs or visualizing agents non-specifically, in the vicinity of the embedded spheroids. This may interfere with imaging or further analysis without breaking apart the 3D model into its constituents. Here, we developed a combined gelatin-carboxymethyl cellulose (G-CMC) hydrogel for initiating cancer spheroids that enabled intact harvesting pre/post treatment for further investigation, such as targeting and imaging. We combined CMC (1.25%) and gelatin (2.5%) at 25 °C and initiated polymerisation after autoclaving (121 °C) to obtain a mechanical strength (sheer stress) of 38 Pas versus 1.28 Pas for CMC alone. These matrix conditions facilitated separation of the spheroids from the G-CMC, using low centrifugation (100 g). We described growth of colorectal and breast cancer spheroids within the G-CMC matrix (with average diameters of 220 mm and 180 μm for representative cell lines HT29 and MCF7 at 10 days, respectively). As the cancer cells express the surface biomarker calreticulin (CRT), we manufactured anti-calreticulin IgG (anti-CRT) conjugated to fluorescent gold nanoclusters (anti-CRT-AuNC) as a probe. We harvested cancer spheroids and incubated live with the nanoclusters. Imaging demonstrated strong binding of CRT-targeted AuNCs compared to control AuNCs. This novel model preserves cancer spheroid integrity upon isolation and is well suited for targeted imaging and drug delivery of cancer in 3D.

可收获的肿瘤球体在明胶-羧甲基纤维素水凝胶中启动,用于癌症靶向和荧光金纳米团簇成像。
癌细胞球体是最简单的三维体外肿瘤模型,已广泛应用于癌症研究。最近,模型变得越来越复杂,引入了基质和非癌细胞类型来模拟特定的肿瘤方面。然而,在基质嵌入的癌球体中应用药物或制剂可能会有问题。在嵌入的球体附近,大多数基质可以非特异性地阻碍或结合药物或显像剂。这可能会干扰成像或进一步的分析,而不会将3D模型分解成其组成部分。在这里,我们开发了一种联合明胶-羧甲基纤维素(G-CMC)水凝胶,用于启动癌症球体,使治疗前后的完整收获成为进一步研究的基础,例如靶向和成像。我们将CMC(1.25%)和明胶(2.5%)在25°C下混合,并在高压灭菌(121°C)后开始聚合,获得38 Pas的机械强度(绝对应力),而CMC单独为1.28 Pas。这些基质条件有利于球体从g - cmc中分离,使用低离心(100 g)。我们描述了结直肠癌和乳腺癌球体在g - cmc基质中的生长(代表性细胞系HT29和MCF7的平均直径分别为220 mm和180 μm, 10天)。由于癌细胞表面生物标志物钙网蛋白(calreticulin, CRT)的表达,我们制备了结合荧光金纳米团簇(anti-CRT- aunc)的抗钙网蛋白IgG (anti-CRT)作为探针。我们收获了癌症球体,并与纳米团簇一起培养。成像显示,与对照aunc相比,crt靶向的aunc具有较强的结合。这种新模型在分离时保留了癌症球体的完整性,非常适合于癌症的三维靶向成像和药物输送。
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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