| Literature DB >> 27109829 |
Xinlong Ma1,2,3, Jianwei Lv1,2,3, Xiaolei Sun1,2, Jianxiong Ma1,2, Guosheng Xing1, Ying Wang1, Lei Sun1, Jianbao Wang1, Fengbo Li1, Yanjun Li1, Zhihu Zhao1,2.
Abstract
hemical">Naringin maintai<hemical">span class="Disease">ns bone mass in various osteoporosis models, while its effect on bone in disuse osteoporosis has not been reported. The present study explores whether naringin can prevent disuse osteoporosis induced by unilateral sciatic neurectomy (USN) and whether the Semaphorin 3A-induced Wnt/β-catenin signalling pathway is involved in the osteoprotection of naringin. Naringin dose-dependently prevented the deterioration of bone mineral density (BMD), trabecular structure and biomechanical strength in femur due to USN. Naringin increased bone formation but inhibited resorption, as indicated by bone-turnover markers in blood and urine and the histological staining of Osteocalcin (OCN) and tartrate-resistant acid phosphatase (TRAP) in femur. Semaphorin 3A (Sema3A) and active β-catenin protein decreased after USN and could be restored by naringin to the levels of the sham-operated rats. In addition, naringin in vitro promoted the differentiation of osteoblasts and inhibited osteoclastic differentiation. Our studies suggest that the down-regulation of Sema3A and the subsequent inactivation of Wnt/β-catenin signalling may be some of the mechanisms involved in USN-induced osteoporosis. Naringin could increase the expression of Sema3A and the activation of Wnt/β-catenin signalling to prevent disuse osteoporosis induced by denervation. Thus, naringin functions in bone maintenance and could be a promising therapeutic alternative in preventing disuse osteoporosis.Entities:
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Year: 2016 PMID: 27109829 PMCID: PMC4842995 DOI: 10.1038/srep24562
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Effects of naringin on the protection of the trabecular microstructure as analysed by Micro-CT scanning.
The region of interest (ROI) that was chosen for analysis was a region 25–125 slices away from the distal femoral growth plate at the distal femoral metaphysis. The thickness of a slice was 21 μm. (A) Representative 3D images showing the trabecular microarchitecture in the distal femoral metaphysis of each group. (B) Micro-structure parameters of the distal femoral trabecula as analysed from Micro-CT scanning data. Naringin at higher doses prevents the femoral trabecular micro-structure from deteriorating by immobilization at 4 weeks. L represents the 30 mg/kg Naringin group, M the 100 mg/kg Naringin group, and H the 300 mg/kg Naringin group. (a) represents the trabecular thickness (Tb.Th), (b) the trabecular number (Tb.N), (c) the trabecular bone volume fraction (BV/TV), (d) the trabecular separation (Tb.Sp) and (e) the surface/volume ratios (BS/BV). ap < 0.05, aap < 0.01, aaap < 0.001 vs. Sham group. bp < 0.05, bbp < 0.01, bbbp < 0.001 vs. USN group. cp < 0.05, ccp < 0.01, cccp < 0.001 vs. 300 mg/kg Naringin group. One-way ANOVA.
Figure 2Pathological observation of the distal femoral metaphysis in each group as stained by HE (A). Effects of the prophylactic administration of naringin on the prevention of the deterioration of biomechanical properties of the ipsilateral femurs for 4 weeks after USN (B). The upper panel: A photograph of the longitudinal section at the distal femoral metaphysis shows that the preventative application of higher doses of naringin significantly alleviates the destruction of cancellous bone microarchitecture caused by USN (A). The lower panel: A three-point bending test was performed to assess the bone strength of the femoral shaft, while a compression test was conducted to determine that of the femoral neck. (a) The maximum load of femoral diaphysis, and (b–d) the energy absorption, maximum fracture load and stiffness of femoral neck (B). ap < 0.05, aap < 0.01, aaap < 0.001 vs. Sham group. bp < 0.05, bbp < 0.01, bbbp < 0.001 vs. USN group. cp < 0.05, ccp < 0.01, cccp < 0.001 vs. 300 mg/kg Naringin group. L represents the 30 mg/kg Naringin group, M the 100 mg/kg Naringin group, and H the 300 mg/kg Naringin group. Magnification ×100. One-way ANOVA.
Figure 3Effects of naringin on bone-turnover markers and BMD (A) and Effect of naringin on the bone formation in each group (B). The upper panel: Serum P1NP, an indicator of osteogenic activity, and serum CTX-1 and urinary Dpd, indicators of bone resorption, were measured in all of the groups using corresponding ELISA Kits. The BMD of the distal femoral metaphysis was analysed in vivo using DXA. Naringin significantly ameliorated immobilization-induced the decrease in serum P1NP (a) and increase in serum CTX-1 (b) and urinary Dpd (c). In addition, naringin maintained the BMD in the distal femur (d) (A). The lower panel: (a) Representative undecalcified sections at 4 weeks post-operation show the fluorescent-labelled bone sections through the injection of tetracycline; (b) Quantitative results of MAR reveal that naringin significantly attenuated the decreased MAR induced by neurectomy, n = 5 (B). ap < 0.05, aap < 0.01, aaap < 0.001 vs. Sham group. bp < 0.05, bbp < 0.01, bbbp < 0.001 vs. USN group. cp < 0.05, ccp < 0.01, cccp < 0.001 vs. 300 mg/kg Naringin group. L represents the 30 mg/kg Naringin group, M the 100 mg/kg Naringin group, and H the 300 mg/kg Naringin group. Magnification ×100. One-way ANOVA.
Figure 4Effect of naringin on osteogenesis and osteoclastogenesis in vivo in each group.
The osteoblastic activities in sections of the distal femoral metaphysis taken 4 weeks post-operation were indicated by the immunohistochemical staining of OCN (osteocalcin), and osteoclasts in the distal femoral metaphysis were indicated by TRAP staining. The immunohistochemical reactivity of OCN in the USN group was lower than that of the Sham group, while the OCN staining in the groups that were administered naringin was gradually enhanced. More TRAP-positive cells were observed in the USN group compared to the Sham group; this number significantly decreased in the naringin-treated groups at higher doses. Osteoclasts were indicated as TRAP-positive cells containing >2 nuclei and stained red on the surface of the trabecular bone. L represents the 30 mg/kg Naringin group, M the 100 mg/kg Naringin group, and H the 300 mg/kg Naringin group.
Figure 5Effect of naringin on the differentiation of osteoclasts and osteoblasts in vitro.
The differentiation of RAW 264.7 cells into osteoclasts was assessed by TRAP staining 7 days after naringin treatment. The differentiation of MC3T3-E1 cells into osteoblasts was evaluated using an ALP activity kit 7 days after naringin treatment. The dose of 20 ng/ml naringin dramatically decreased the number of TRAP-positive osteoclasts (a,b) and increased the ALP activities of osteoblasts in a dose-dependent manner; 20 ng/ml naringin showed the maximum effect (c). The experiments were performed in triplicate, n = 3 per experiment. ap < 0.05, aap < 0.01, aaap < 0.001 vs. Sham group. bp < 0.05, bbp < 0.01, bbbp < 0.001 vs. USN group. cp < 0.05, ccp < 0.01, cccp < 0.001 vs. 300 mg/kg Naringin group. Student’s t test for (b), One-way ANOVA for (c).
Figure 6Effects of naringin on the mRNA expression of Sema3a, β-catenin and Nrp1.
Four weeks following USN, the total RNA was collected from the tibias ipsilateral to USN in the different treatment groups and subjected to qRT-PCR. Sema3a (a), β-catenin (b) and Nrp1 (c) in the tibias ipsilateral to USN in each group were analysed by qRT-PCR corrected by β-Actin relative to the Sham group, and reverse transcribed (d). ap < 0.05, aap < 0.01, aaap < 0.001 vs. Sham group. bp < 0.05, bbp < 0.01, bbbp < 0.001 vs. USN group. cp < 0.05, ccp < 0.01, cccp < 0.001 vs. 300 mg/kg Naringin group. L represents the 30 mg/kg Naringin group, M the 100 mg/kg Naringin group, and H the 300 mg/kg Naringin group. One-way ANOVA. Full-length gels are presented in Supplementary Figure S1.
Figure 7Sema3A expression in response to USN with or without naringin administration.
(a) Immuno-histochemical staining of Sema3A in the femoral midshaft sections of rats from different treatments 4 weeks after USN showed decreased Sema3A-positive intensity in the osteocytes that were distributed in the femoral diaphysis of the USN rats but significant up-regulation in the naringin-treated rats, especially at higher doses of naringin. L represents the 30 mg/kg Naringin group, M the 100 mg/kg Naringin group, and H the 300 mg/kg Naringin group. Magnification ×400. Full-length blots are presented in Supplementary Figure S2.
Figure 8Effects of naringin on the expression of Sema3A and active and total β-catenin protein in each group.
The total proteins that were extracted from the tibias ipsilateral to USN at the indicated times were analysed by western blotting for Sema3A (a) and active (act) and total β-catenin (b), with actin serving as the loading control. The band intensities as analysed by densitometry showed that the relative quantification of the expression of protein Sema3A (c) and active (act) (d) in the USN rats decreased dramatically compared to that of the Sham group and significantly increased at higher doses of naringin. ap < 0.05, aap < 0.01, aaap < 0.001 vs. Sham group. bp < 0.05, bbp < 0.01, bbbp < 0.001 vs. USN group. cp < 0.05, ccp < 0.01, cccp < 0.001 vs. 300 mg/kg Naringin group. L represents the 30 mg/kg Naringin group, M the 100 mg/kg Naringin group, and H the 300 mg/kg Naringin group. One-way ANOVA. Full-length blots are presented in Supplementary Figure S3.