基于水凝胶-纤维网的三维细胞培养:研究垂体瘤的新方法

Q1 Engineering Smart Materials in Medicine Pub Date : 2024-03-27 DOI:10.1016/j.smaim.2024.03.004
Wooju Jeong , Sungrok Wang , Yumin Kim , Soohyun Lee , Minhu Huang , Jaeil Park , Myung-Han Yoon , Chang-Myung Oh , Cheol Ryong Ku
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引用次数: 0

摘要

肢端肥大症是一种具有挑战性的病症,是由于垂体过量分泌生长激素和胰岛素样生长因子 1 引起的。虽然手术是治疗肢端肥大症的主要方法,但药物治疗也越来越多地用于不适合手术或治疗失败的患者。尽管药物和手术疗法取得了进步,但肢端肥大症的治疗仍然充满挑战。本研究利用水凝胶纤维网(HFMs)和GH3细胞开发了一种用于垂体腺瘤研究的三维(3D)体外细胞培养模型。以聚乙烯醇和聚丙烯酸为基础的电纺纳米纤维通过水凝胶化转化为水凝胶纤维网,并浸出电喷醋酸纤维素微珠以提高孔隙率。与传统的二维培养相比,在三维模型中生长的 GH3 细胞表现出更高的分散性和上调体生长抑素受体亚型 2 和 5,以及对体生长抑素类似物的高敏感性和肿瘤样特征(分别由功能测定和转录组分析表明)。因此,所提出的三维模型准确地反映了垂体腺瘤治疗药物的生理反应。这项研究凸显了高频膜作为三维体外细胞培养模型多功能平台的潜力,可用于垂体腺瘤研究。此外,所提出的三维细胞培养模型可能有助于加深对肿瘤生物学的理解,促进开发有效的肢端肥大症治疗策略。
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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Hydrogel-fiber-mesh-based 3D cell cultures: A new method for studying pituitary tumors

Acromegaly is a challenging medical condition that arises from the excessive production of growth hormones and the insulin-like growth factor 1 in the pituitary gland. While surgery is the primary treatment for acromegaly, medication is increasingly being used in patients who are unsuitable for surgery or have experienced treatment failure. Despite advancements in medical and surgical therapies, the treatment of acromegaly remains challenging. In this research, a three-dimensional (3D) in-vitro cell culture model for pituitary adenoma research was developed using hydrogel fiber meshes (HFMs) and GH3 cells. Electrospun nanofibers based on polyvinyl alcohol and polyacrylic acid were converted into HFMs by hydrogelification with the leaching of electrosprayed cellulose acetate beads for porosity enhancement. GH3 cells grown in the 3D model exhibited increased dispersion and upregulation of the somatostatin receptor subtypes 2 and 5 compared to those grown in traditional 2D cultures, as well as high sensitivity to somatostatin analogs and tumor-like profiles (as indicated by functional assays and transcriptome analysis, respectively). Therefore, the proposed 3D model accurately represents the physiological response to pituitary-adenoma therapeutic agents. This study highlights the potential of HFMs as a versatile platform for 3D in-vitro cell culture models that can be employed for pituitary adenoma research. Moreover, the proposed 3D cell culture model may contribute to a deeper understanding of tumor biology and facilitate the development of effective therapeutic strategies for acromegaly.

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来源期刊
Smart Materials in Medicine
Smart Materials in Medicine Engineering-Biomedical Engineering
CiteScore
14.00
自引率
0.00%
发文量
41
审稿时长
48 days
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