Nakamura Daisy S, Hollander Judith M, Uchimura Tomoya, Nielsen Heber C, Zeng Li
Program in Cell, Molecular and Developmental Biology, Sackler School of Graduate Biomedical Sciences, Tufts University, Boston, MA, USA.
Department of Pediatrics, Tufts Medical Center, Boston, MA, USA.
BMC Musculoskelet Disord. 2017 Jan 25;18(1):39. doi: 10.1186/s12891-017-1410-y.
Inflammation is a major cause of cartilage destruction and leads to the imbalance of metabolic activities in the arthritic joint. Pigment epithelium-derived factor (PEDF) has been reported to have both pro- and anti-inflammatory activities in various cell types and to be upregulated in the arthritic joint, but its role in joint destruction is unclear. Our aim was to investigate the role of PEDF in cartilage degeneration under inflammatory conditions.
PEDF was ectopically expressed in primary human articular chondrocytes, and catabolic gene expression and protein secretion in response to the pro-inflammatory cytokine interleukin 1 beta (IL-1β) were evaluated. Metatarsal bones from PEDF-deficient and wild type mice were cultured in the presence or absence of IL-1β. Cartilage matrix integrity and matrix metalloproteinases MMP-1, MMP-3, and MMP-13 were evaluated. PEDF-deficient and wild type mice were evaluated in the monosodium iodoacetate (MIA) inflammatory joint destruction animal model to determine the role of PEDF in inflammatory arthritis in vivo. Student's t-tests and Mann-Whitney tests were employed where appropriate, for parametric and non-parametric data, respectively.
We showed that PEDF protein levels were higher in human osteoarthritis samples compared to normal samples. We demonstrated that ectopic PEDF expression in primary human articular chondrocytes exacerbated catabolic gene expression in the presence of IL-1β. In whole bone organ cultures, IL-1β induced MMP-1, MMP-3 and MMP-13 protein production, and caused significant cartilage matrix loss. Interestingly, Toluidine Blue staining showed that PEDF-deficient bones from 29 week old animals, but not 10 week old animals, had reduced matrix loss in response to IL-1β compared to their wild type counterparts. In addition, PEDF-deficiency in 29 week old animals preserved matrix integrity and protected against cell loss in the MIA joint destruction model in vivo.
We conclude that PEDF exacerbates cartilage degeneration in an age-dependent manner under an inflammatory setting. This is the first study identifying a specific role for PEDF in joint inflammation and highlights the multi-faceted activities of PEDF.
炎症是软骨破坏的主要原因,会导致关节炎关节代谢活动失衡。据报道,色素上皮衍生因子(PEDF)在多种细胞类型中具有促炎和抗炎活性,且在关节炎关节中表达上调,但其在关节破坏中的作用尚不清楚。我们的目的是研究PEDF在炎症条件下软骨退变中的作用。
将PEDF异位表达于原代人关节软骨细胞中,评估其对促炎细胞因子白细胞介素1β(IL-1β)的分解代谢基因表达和蛋白质分泌的影响。在有或无IL-1β的情况下培养PEDF缺陷型和野生型小鼠的跖骨。评估软骨基质完整性以及基质金属蛋白酶MMP-1、MMP-3和MMP-13。在碘乙酸钠(MIA)炎症性关节破坏动物模型中评估PEDF缺陷型和野生型小鼠,以确定PEDF在体内炎症性关节炎中的作用。分别针对参数数据和非参数数据,在适当情况下采用学生t检验和曼-惠特尼检验。
我们发现,与正常样本相比,人骨关节炎样本中的PEDF蛋白水平更高。我们证明,在原代人关节软骨细胞中异位表达PEDF会在存在IL-1β的情况下加剧分解代谢基因的表达。在全骨器官培养中,IL-1β诱导MMP-1、MMP-3和MMP-13蛋白产生,并导致显著的软骨基质损失。有趣的是,甲苯胺蓝染色显示,与野生型对应物相比,29周龄动物而非10周龄动物的PEDF缺陷型骨骼对IL-1β的基质损失减少。此外,29周龄动物的PEDF缺陷在体内MIA关节破坏模型中保持了基质完整性并防止细胞损失。
我们得出结论,在炎症环境下,PEDF以年龄依赖性方式加剧软骨退变。这是第一项确定PEDF在关节炎症中具体作用的研究,并突出了PEDF的多方面活性。