| Literature DB >> 27782206 |
Vincent Kuek1, Zhifan Yang2, Shek Man Chim1, Sipin Zhu1,3, Huazi Xu3, Siu To Chow1, Jennifer Tickner1, Vicki Rosen4, Wendy Erber1, Xiucheng Li2, An Qin5, Yu Qian2, Jiake Xu1,3.
Abstract
Angiogenesis plays an important role in bone development and remodeling and is mediated by a plethora of potential angiogenic factors. However, data regarding specific angiogenic factors that are secreted within the bone microenvironment to regulate <span class="Disease">osteoporosis is lacking. Here, we report that <span class="Gene">Nephronectin (NPNT), a member of the epidermal growth factor (EGF) repeat superfamily proteins and a homologue of EGFL6, is expressed in osteoblasts. Intriguingly, the gene expression of NPNT is reduced in the bone of C57BL/6J ovariectomised mice and in osteoporosis patients. In addition, the protein levels of NPNT and CD31 are also found to be reduced in the tibias of OVX mice. Exogenous addition of mouse recombinant NPNT on endothelial cells stimulates migration and tube-like structure formation in vitro. Furthermore, NPNT promotes angiogenesis in an ex vivo fetal mouse metatarsal angiogenesis assay. We show that NPNT stimulates the phosphorylation of extracellular signal-regulated kinase 1/2 (ERK1/2) and p38 mitogen-activated kinase (MAPK) in endothelial cells. Inhibition of ERK1/2 impaired NPNT-induced endothelial cell migration, tube-like structure formation and angiogenesis. Taken together, these results demonstrate that NPNT is a paracrine angiogenic factor and may play a role in pathological osteoporosis. This may lead to new targets for treatment of bone diseases and injuries.Entities:
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Year: 2016 PMID: 27782206 PMCID: PMC5080588 DOI: 10.1038/srep36210
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Expression patterns of NPNT in osteoblasts.
(A) RT-qPCR was performed during osteoblast differentiation using primers specific for (A) NPNT, (B) ALP, (C) Col1A1, and (D) OCN. Gene expression was normalized to 18S and compared to the expression at day 0. (E) NPNT expression construct (pcDNA3.1-NPNT-c-myc/His), which encodes a mouse full length NPNT, was generated. (F) Detection of NPNT protein in the conditioned medium of COS-7 cells transfected with NPNT expression construct using anti-c-myc antibody. (G) NPNT was detected in osteoblast supernatants using anti-NPNT antibody. HtrA1 was used as positive marker for osteoblast differentiation and β-Actin was used as loading control. Western blot images are presented as cropped format. Full length blots are presented in Supplementary Fig. 4. *P < 0.05, **P < 0.01, ***P < 0.001.
Figure 2NPNT gene expression was down-regulated in OVX mice and in osteoporotic patients.
(A) Tibias from sham group (left) and OVX group (right) were visualized by μCT scanning, and the ROI focused on the trabecular region below the growth plate for quantitative analysis of (B) Tb.BV/TV, (C) Tb.Th, (D) Tb.N and (E) Tb.Sp. Real-time PCR quantitative analysis of (F) Runx2, (G) OCN and (H) NPNT gene expression in mouse forelimbs. n = 6/group. (I) μCT images of trabecular bone in the region between head and neck of femur from patients with osteoarthritis (top) and osteoporosis (bottom), and quantitative analysis of (J) Tb.BV/TV, (K) Tb.Th, (L) Tb.N and (M) Tb.Sp. Real-time PCR quantitative analysis of (N) Runx2, (O) OCN and (P) NPNT gene expression in human femora. n = 20/group. The gene expressions were normalized to β-Actin and 18S. *P < 0.05.
Figure 3NPNT and CD31 protein expressions were reduced in the tibias of OVX mice.
(A) Representative microscopic images of H&E and immunostaining using NPNT and CD31-specific antibody on tibia sections of sham and OVX mice. Quantitative analysis of (B) NPNT and (C) CD31 protein expressions in the tibias of OVX mice. *P < 0.05, **P < 0.01.
Figure 4NPNT promotes endothelial cell migration, tube-like structure formation and angiogenesis.
(A) Representative microscopic views of scratch wound healing assays performed using SVEC cells treated with recombinant mouse NPNT (500 ng/ml) from 0 to 16 hours. Scale bar, 100 μm. (B) Quantitative analysis of cell migration area. (C) Representative images showing tube-like structure formation by SVEC cells following treatment with recombinant mouse NPNT (500 ng/ml) for 24 hours. Scale bar, 100 μm. (D,E) Quantitative analysis of branch points and tube lengths. PBS and bFGF were used as a negative and positive control respectively. (F) Representative images showing that recombinant mouse NPNT (200 ng/ml) induced vessel outgrowth from metatarsals dissected from E17.5 embryos. Scale bar, 250 μm. (G) Quantitative analysis of vessel sprouting. PBS and VEGF (50 ng/ml) were used as a negative and positive control respectively. *P < 0.05, **P < 0.01, ***P < 0.001.
Figure 5NPNT induced phosphorylation of ERK1/2 and p-38.
(A) Western blot images showing the treatment of SVEC cells by mouse recombinant NPNT resulted in the phosphorylation of ERK1/2 and p-38, but not Akt. β-Actin was used as a loading control. (B–D) Quantification of signal intensities of p-ERK1/2, p-p38 and p-Akt by ImageJ. Induction ratios at each timepoint were compared to 0 minute, with p-ERK1/2 normalized to ERK1/2, p-p38 normalized to p-38 and p-Akt normalized to Akt. Western blot images are presented as cropped format. Full length blots are presented in Supplementary Fig. 4. *P < 0.05, **P < 0.01, ***P < 0.001.
Figure 6NPNT-induced endothelial cell activities and angiogenesis were inhibited by U0126.
(A) Representative microscopic images of scratch wound healing assays showing NPNT-induced endothelial cell migration was blocked in the presence of U0126 (5 μM). Scale bar, 100 μm. Quantitative analyses showing that (B) NPNT-induced endothelial cell migration and (C) tube-like structure formation were significantly inhibited by U0126. PBS and bFGF were used as a negative and positive control, respectively. (D) Representative images showing that NPNT-induced angiogenesis was inhibited in the presence of U0126 (5 μM). Scale bar, 250 μm. (E) Quantitative analysis of vessel sprouting. *P < 0.05, **P < 0.01, ***P < 0.001.