模拟间质室再现成釉细胞瘤肿瘤微环境

Q1 Medicine
Deniz Bakkalci , Amir Zaki Abdullah Zubir , Syed Ali Khurram , Judith Pape , Kristiina Heikinheimo , Stefano Fedele , Umber Cheema
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引用次数: 2

摘要

肿瘤的发展和进展依赖于肿瘤细胞与组织基质的相互作用。将肿瘤基质微环境(TME)生物工程化为三维仿生模型对于深入了解肿瘤细胞的发育和进展途径以及确定治疗靶点至关重要。成釉细胞瘤是一种良性但局部侵袭性的上皮性牙源性肿瘤,主要发生在颌骨,可导致严重的发病率,有时甚至死亡。成釉细胞瘤进展的分子机制尚不清楚。一个空间模型概括了肿瘤和基质,表明没有相关的基质群体,肿瘤侵袭量减少。在由牙龈成纤维细胞填充的致密胶原中构建相关基质,观察到核因子κ b配体受体激活因子(RANKL)表达增强,组织病理学特性,包括成釉细胞瘤肿瘤岛,得到发展并被量化。利用人成骨细胞(骨基质)进一步增强了成釉细胞瘤组织病理表型的仿生性。这项工作证明了两个关键的基质群体,成骨细胞和牙龈成纤维细胞,对于精确的3D仿生成釉细胞瘤建模的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Modelling stromal compartments to recapitulate the ameloblastoma tumour microenvironment

Modelling stromal compartments to recapitulate the ameloblastoma tumour microenvironment

Modelling stromal compartments to recapitulate the ameloblastoma tumour microenvironment

Modelling stromal compartments to recapitulate the ameloblastoma tumour microenvironment

Tumour development and progression is dependent upon tumour cell interaction with the tissue stroma. Bioengineering the tumour-stroma microenvironment (TME) into 3D biomimetic models is crucial to gain insight into tumour cell development and progression pathways and identify therapeutic targets. Ameloblastoma is a benign but locally aggressive epithelial odontogenic neoplasm that mainly occurs in the jawbone and can cause significant morbidity and sometimes death. The molecular mechanisms for ameloblastoma progression are poorly understood. A spatial model recapitulating the tumour and stroma was engineered to show that without a relevant stromal population, tumour invasion is quantitatively decreased. Where a relevant stroma was engineered in dense collagen populated by gingival fibroblasts, enhanced receptor activator of nuclear factor kappa-B ligand (RANKL) expression was observed and histopathological properties, including ameloblastoma tumour islands, developed and were quantified. Using human osteoblasts (bone stroma) further enhanced the biomimicry of ameloblastoma histopathological phenotypes. This work demonstrates the importance of the two key stromal populations, osteoblasts, and gingival fibroblasts, for accurate 3D biomimetic ameloblastoma modelling.

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来源期刊
Matrix Biology Plus
Matrix Biology Plus Medicine-Histology
CiteScore
9.00
自引率
0.00%
发文量
25
审稿时长
105 days
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