| Literature DB >> 29620150 |
Qingfeng Ding1, Peng Sun2, Hao Zhou2, Bowen Wan2, Jian Yin2, Yao Huang2, Qingqing Li2, Guoyong Yin2, Jin Fan2.
Abstract
Intermittent low‑dose injections of <span class="Gene">parathyroid hormone (<span class="Gene">PTH) have been reported to exert bone anabolic effects and to promote fracture healing. As an important proangiogenic cytokine, vascular endothelial growth factor (VEGF) is secreted by bone marrow mesenchymal stem cells (BMSCs) and osteoblasts, and serves a crucial regulatory role in the process of vascular development and regeneration. To investigate whether lack of endogenous PTH causes reduced angiogenic capacity and thereby delays the process of fracture healing by downregulating the VEGF signaling pathway, a PTH knockout (PTHKO) mouse fracture model was generated. Fracture healing was observed using X‑ray and micro‑computerized tomography. Bone anabolic and angiogenic markers were analyzed by immunohistochemistry and western blot analysis. The expression levels of VEGF and associated signaling pathways in murine BMSC‑derived osteoblasts were measured by quantitative polymerase chain reaction and western blot analysis. The expression levels of protein kinase A (PKA), phosphorylated‑serine/threonine protein kinase (pAKT), hypoxia‑inducible factor‑1α (HIF1α) and VEGF were significantly decreased in BMSC‑derived osteoblasts from PTHKO mice. In addition, positive platelet endothelial cell adhesion molecule staining was reduced in PTHKO mice, as determined by immunohistochemistry. The expression levels of HIF1α, VEGF, runt‑related transcription factor 2, osteocalcin and alkaline phosphatase were also decreased in PTHKO mice, and fracture healing was delayed. In conclusion, lack of endogenous PTH may reduce VEGF expression in BMSC‑derived osteoblasts by downregulating the activity of the PKA/pAKT/HIF1α/VEGF pathway, thus affecting endochondral bone formation by causing a reduction in angiogenesis and osteogenesis, ultimately leading to delayed fracture healing.Entities:
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Year: 2018 PMID: 29620150 PMCID: PMC5979887 DOI: 10.3892/ijmm.2018.3614
Source DB: PubMed Journal: Int J Mol Med ISSN: 1107-3756 Impact factor: 4.101
Figure 1(A) X-ray images of fractures in (a) PTHKO and (b) PTHWT mice 1 week after fracture. Although fracture lines were clearly visible and a small region of calcification was observed in the surrounding area of fractures in both groups, the calcified region in PTHKO mice was much smaller than that in WT mice. (c) Fracture line remained clear and exogenous callus was relatively small in PTHKO mice 2 weeks after fracture. (d) Blurry fracture line was observed, and the exogenous callus area was clear and relatively large in PTHWT mice 2 weeks after fracture. (B) Coronal micro-computerized tomography views of fractures in (a) PTHKO and (b) PTHWT mice at 1 week and in (c) PTHKO and (d) PTHWT mice at 2 weeks after fracture. PTH, parathyroid hormone; PTHKO, PTH knockout; PTHWT, PTH wild-type.
Figure 2(A) H&E staining (magnification, ×100) of fractures. (a) In PTHKO mice, fractures developed a smaller cartilaginous callus compared with in (b) WT mice 1 week after fracture. (c) In PTHKO mice at 2 weeks after fracture, little endochondral bone formation and a large cartilage area were detected. (d) In WT mice at 2 weeks after fracture, normal endochondral bone formation and decreased cartilage area were detected. (B) Alcian blue staining (magnification, ×100) of fractures. Light blue area shows cartilaginous callus, which was consistent with the results of H&E staining. (C) Immunohistochemical staining of COL II in fractures (magnification, ×100) in (a) PTHKO and (b) WT mice 1 week after fracture. WT mice exhibited strong positive staining for COL II; however, COL II expression was detected only in the central region of the cartilage expansion area in PTHKO mice. Immunohistochemical staining of COL II in (c) PTHKO and (d) WT mice 2 weeks after fracture. COL II expression was slightly increased in PTHKO mice, but remained lower than that in WT mice. (D) Statistical analysis of (a) cartilaginous callus area, (b) bony callus area and (c) total callus area. *P<0.05. PTH, parathroid hormone; PTHKO, PTH knockout; WT, wild-type.
Figure 3(A) Immunohistochemical staining of OCN (magnification, ×200) in fractures of (a) PTHKO and (b) WT mice 1 week after fracture. OCN expression was significantly lower in PTHKO mice compared with in WT mice and was primarily distributed around the edge of the callus. Immunohistochemical staining of OCN in fractures of (c) PTHKO and (d) WT mice 2 weeks after fracture. OCN expression was significantly reduced in PTHKO mice compared with in WT mice; however, it was increased in both groups compared with after 1 week. (B) Immunohistochemical staining of RUNX2 (magnification, ×400) in fractures of (a) PTHKO and (b) WT mice 1 week after fracture. RUNX2 expression was significantly lower in PTHKO mice compared with in WT mice, although it was relatively strong in the area surrounding the cartilaginous callus in both groups. Immunohistochemical staining of RUNX2 in fractures of (c) PTHKO and (d) WT mice 2 weeks after fracture. RUNX2 was strongly expressed in WT mice, whereas RUNX2 expression remained lower in PTHKO mice compared with in WT mice, and was mainly concentrated in the outer periphery of the cartilaginous callus. Black arrows indicate positive areas. (C) Callus proteins, including OCN and RUNX2, were detected using western blot analysis. (D) ALP immunocytochemistry. Reduced ALP staining intensity was detected in PTHKO mice compared with in WT mice. (E) Reverse transcription-quantiative polymrease chain reaction analysis of mRNA expression of (a) OCN and (b) RUNX2 in BMSC-derived osteoblasts; the mRNA expression levels were significantly lower in PTHKO mice compared with in WT mice 1 and 2 weeks after induction. *P<0.05. ALP, alkaline phosphatase; BMSC, bone marrow mesenchymal stem cells; OCN, osteocalcin; PTH, parathroid hormone; PTHKO, PTH knockout; RUNX2, runt-related transcription factor 2; WT, wild-type.
Figure 4(A) Immunohistochemical staining of PECAM (magnification, ×200) in fractures. (a) In PTHKO and (b) WT mice 1 week after fracture, the area of angiogenesis was significantly smaller in PTHKO mice compared with in WT mice. (c) In PTHKO and (d) WT mice 2 weeks after fracture, a large number of blood vessels were observed in the cartilaginous callus in WT mice, whereas fewer blood vessels were detected in PTHKO mice and were mainly located abound the cartilaginous callus. Black arrows indicate positive areas. (B) BMSCs-derived osteoblasts were cocultured with HUVECs for 2 weeks. HUVECs cocultured with PTHKO BMSCs-derived osteoblasts displayed a significantly reduced capacity for aggregation and cross-linking. Black arrows indicate cross-linked HUVECs. *P<0.05. BMSC, bone marrow mesenchymal stem cells; HUVECs, human umbilical vein endothelial cells; PECAM, platelet endothelial cell adhesion molecule; PTH, parathroid hormone; PTHKO, PTH knockout; WT, wild-type.
Figure 5(A) Immunohistochemical staining of VEGF-A (magnification, ×400) in fractures. (a) In PTHKO and (b) WT mice 1 week after fracture, VEGF-A expression was significantly reduced in PTHKO mice compared with in WT mice. (c) In PTHKO and (d) WT mice 2 weeks after fracture, VEGF-A expression was increased in PTHKO mice, but remained significantly lower than that in WT mice. (B) Immunohistochemical staining of pVEGFR2 (magnification, ×400) in fractures. (a) In PTHKO and (b) WT mice 1 week after fracture, a significantly smaller number of pVEGFR2-positive cells was detected in the cartilaginous callus in PTHKO mice compared with in WT mice. (c) In PTHKO and (d) WT mice 2 weeks after fracture, a large number of pVEGFR2-positive cells was observed in the cartilaginous callus in WT mice, whereas a much lower level of angiogenesis was detected in PTHKO mice. (C) Immunohistochemical staining for HIF1α (magnification, ×400) in fractures. (a) In PTHKO and (b) WT mice 1 week after fracture, the expression levels of cytoplasmic HIF1α were significantly lower in PTHKO mice. (c) In PTHKO and (d) WT mice 2 weeks after fracture, HIF1α expression was increased in both groups; however, the expression remained lower in PTHKO mice compared with in WT mice. Black arrows indicate positive areas. (D) Protein expression levels of VEGF, pVEGFR2 and HIF1α were detected by western blot analysis. HIF1α, hypoxia inducible factor-1α; PTH, parathroid hormone; PTHKO, PTH knockout; pVEGFR, phosphorylated-VEGF receptor 2; VEGF, vascular endothelial growth factor; WT, wild-type.
Figure 6(A) Immunohistochemical staining of PCNA (magnification, ×400) in fractures. (a) In PTHKO and (b) WT mice 1 week after fracture, rapid cell proliferation was observed, whereas PTHKO mice exhibited a significant reduction in PCNA-positive rate compared with in WT mice. (c) In PTHKO and (d) WT mice 2 weeks after fracture, cell proliferation in WT mice remained faster than that in PTHKO mice; however, it slowed down in both groups. Black arrows indicate positive areas. *P<0.05. (B) Western blot analysis detected reduced expression of PKA/pAKT/HIF1α/VEGF, and a lower level of pVEGFR2 in PTHKO BMSC-derived osteoblasts 2 weeks after induction. Addition of exogenous PTH in the culture medium partially reversed downregulation of the PKA/pAKT/HIF1α/VEGF pathway. AKT, serine/threonine protein kinase; BMSC, bone marrow mesenchymal stem cell; HIF1α, hypoxia inducible factor-1α; pAKT, phosphorylated-AKT; PCNA, proliferating cell nuclear antigen; PKA, protein kinase A; PTH, parathroid hormone; PTHKO, PTH knockout; pVEGFR2, p-VEGFR2; VEGF, vascular endothelial growth factor; VEGFR2, VEGF receptor 2; WT, wild-type.