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羟基磷灰石的结晶度驱动主动脉瓣中的肌成纤维细胞激活和钙化。

Crystallinity of hydroxyapatite drives myofibroblastic activation and calcification in aortic valves.

机构信息

Department of Biomedical Engineering, Cornell University, Ithaca, NY, USA.

Department of Materials Science and Engineering, Cornell University, Ithaca, NY, USA.

出版信息

Acta Biomater. 2018 Apr 15;71:24-36. doi: 10.1016/j.actbio.2018.02.024. Epub 2018 Mar 2.

Abstract

UNLABELLED

Calcific aortic valve disease (CAVD) is an inexorably degenerative pathology characterized by progressive calcific lesion formation on the valve leaflets. The interaction of valvular cells in advanced lesion environments is not well understood yet highly relevant as clinically detectable CAVD exhibits calcifications composed of non-stoichiometric hydroxyapatite (HA). In this study, Fourier transform infrared spectroscopic imaging was used to spatially analyze mineral properties as a function of disease progression. Crystallinity (size and perfection) increased with increased valve calcification. To study the relationship between crystallinity and cellular behavior in CAVD, valve cells were seeded into 3D mineral-rich collagen gels containing synthetic HA particles, which had varying crystallinities. Lower crystallinity HA drove myofibroblastic activation in both valve interstitial and endothelial cells, as well as osteoblastic differentiation in interstitial cells. Additionally, calcium accumulation within gels depended on crystallinity, and apoptosis was insufficient to explain differences in HA-driven cellular activity. The protective nature of endothelial cells against interstitial cell activation and calcium accumulation was completely inhibited in the presence of less crystalline HA particles. Elucidating valve cellular behavior post-calcification is of vital importance to better predict and treat clinical pathogenesis, and mineral-containing hydrogel models provide a unique 3D platform to evaluate valve cell responses to a later stage of valve disease.

STATEMENT OF SIGNIFICANCE

We implement a 3D in vitro platform with embedded hydroxyapatite (HA) nanoparticles to investigate the interaction between valve interstitial cells, valve endothelial cells, and a mineral-rich extracellular environment. HA nanoparticles were synthesized based on analysis of the mineral properties of calcific regions of diseased human aortic valves. Our findings indicate that crystallinity of HA drives activation and differentiation in interstitial and endothelial cells. We also show that a mineralized environment blocks endothelial protection against interstitial cell calcification. Our HA-containing hydrogel model provides a unique 3D platform to evaluate valve cell responses to a mineralized ECM. This study additionally lays the groundwork to capture the diversity of mineral properties in calcified valves, and link these properties to progression of the disease.

摘要

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主动脉瓣钙化疾病(CAVD)是一种不可避免的退行性病变,其特征是瓣膜小叶上进行性形成钙化病变。然而,在临床上可检测到的 CAVD 表现为由非化学计量羟基磷灰石(HA)组成的钙化,因此对高级病变环境中瓣膜细胞的相互作用尚不完全了解,但这一作用非常重要。在这项研究中,傅里叶变换红外光谱成像被用于空间分析矿物质特性,以作为疾病进展的函数。结晶度(大小和完美度)随瓣膜钙化的增加而增加。为了研究 CAVD 中结晶度与细胞行为之间的关系,将瓣膜细胞接种到富含矿物质的 3D 胶原凝胶中,该凝胶含有具有不同结晶度的合成 HA 颗粒。较低结晶度的 HA 驱动了瓣膜间质细胞和内皮细胞的成肌纤维细胞激活,以及间质细胞的成骨细胞分化。此外,凝胶内的钙积累取决于结晶度,而细胞凋亡不足以解释 HA 驱动的细胞活性差异。在存在结晶度较低的 HA 颗粒的情况下,内皮细胞对间质细胞激活和钙积累的保护作用完全被抑制。阐明钙化后瓣膜细胞的行为对于更好地预测和治疗临床发病机制至关重要,并且含矿物质水凝胶模型提供了一个独特的 3D 平台,用于评估瓣膜细胞对瓣膜疾病后期的反应。

意义声明

我们实施了一个带有嵌入羟基磷灰石(HA)纳米颗粒的 3D 体外平台,以研究瓣膜间质细胞、瓣膜内皮细胞与富含矿物质的细胞外环境之间的相互作用。HA 纳米颗粒是根据对病变人主动脉瓣钙化区域的矿物质特性分析而合成的。我们的研究结果表明,HA 的结晶度驱动间质细胞和内皮细胞的激活和分化。我们还表明,矿物质丰富的环境阻止了内皮细胞对间质细胞钙化的保护作用。我们的含 HA 水凝胶模型为评估瓣膜细胞对矿化 ECM 的反应提供了一个独特的 3D 平台。本研究还为捕捉钙化瓣膜中矿物质特性的多样性以及将这些特性与疾病进展联系起来奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1c85/5899951/a033bcf2015f/nihms948811f1.jpg

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