Weldon School of Biomedical Engineering, Purdue University, West Lafayette, IN, USA.
Department of Biomedical Engineering, Indiana University-Purdue University at Indianapolis, Indianapolis, IN, USA.
Calcif Tissue Int. 2019 Dec;105(6):660-669. doi: 10.1007/s00223-019-00603-3. Epub 2019 Sep 3.
Enzymatic crosslinks stabilize type I collagen and are catalyzed by lysyl oxidase (LOX), a step interrupted through β-aminopropionitrile (BAPN) exposure. This study evaluated dose-dependent effects of BAPN on osteoblast gene expression of type I collagen, LOX, and genes associated with crosslink formation. The second objective was to characterize collagen produced in vitro after exposure to BAPN, and to explore changes to collagen properties under continuous cyclical substrate strain. To evaluate dose-dependent effects, osteoblasts were exposed to a range of BAPN dosages (0-10 mM) for gene expression analysis and cell proliferation. Results showed significant upregulation of BMP-1, POST, and COL1A1 and change in cell proliferation. Results also showed that while the gene encoding LOX was unaffected by BAPN treatment, other genes related to LOX activation and matrix production were upregulated. For the loading study, the combined effects of BAPN and mechanical loading were assessed. Gene expression was quantified, atomic force microscopy was used to extract elastic properties of the collagen matrix, and Fourier Transform infrared spectroscopy was used to assess collagen secondary structure for enzymatic crosslinking analysis. BAPN upregulated BMP-1 in static samples and BAPN combined with mechanical loading downregulated LOX when compared to control-static samples. Results showed a higher indentation modulus in BAPN-loaded samples compared to control-loaded samples. Loading increased the mature-to-immature crosslink ratios in control samples, and BAPN increased the height ratio in static samples. In summary, effects of BAPN (upregulation of genes involved in crosslinking, mature/immature crosslinking ratios, upward trend in collagen elasticity) were mitigated by mechanical loading.
酶交联稳定 I 型胶原,由赖氨酰氧化酶(LOX)催化,通过β-氨基丙腈(BAPN)暴露而中断。本研究评估了 BAPN 对成骨细胞 I 型胶原、LOX 基因表达和与交联形成相关基因的剂量依赖性影响。第二个目的是描述 BAPN 暴露后体外产生的胶原,并探索在持续循环底物应变下胶原性质的变化。为了评估剂量依赖性影响,将成骨细胞暴露于一系列 BAPN 剂量(0-10 mM)进行基因表达分析和细胞增殖。结果显示 BMP-1、POST 和 COL1A1 的显著上调和细胞增殖的变化。结果还表明,尽管 LOX 基因编码不受 BAPN 处理影响,但与 LOX 激活和基质产生相关的其他基因被上调。对于加载研究,评估了 BAPN 和机械加载的联合效应。定量基因表达,原子力显微镜用于提取胶原基质的弹性特性,傅里叶变换红外光谱用于评估酶交联分析的胶原二级结构。与对照-静态样品相比,BAPN 在静态样品中上调 BMP-1,在 BAPN 与机械加载联合处理时下调 LOX。结果显示,与对照加载样品相比,BAPN 加载样品的压痕模量更高。加载增加了对照样品中成熟到不成熟交联的比例,BAPN 增加了静态样品中的高度比。总之,机械加载减轻了 BAPN(参与交联的基因上调、成熟/不成熟交联比例、胶原弹性的上升趋势)的影响。