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1.
运动改善骨代谢,促进骨骼生长发育,缓解骨量流失的作用已被广泛证实。在骨代谢中,微小RNA(microRNAs,miRNAs)广泛参与骨髓间充质干细胞、成骨细胞及破骨细胞等骨组织细胞的增殖及分化,通过靶向作用于相关成骨因子或骨吸收因子调控骨形成与骨吸收之间的平衡,在骨代谢的调控中发挥重要作用。近年的研究表明,调控miRNAs是运动或机械应力促进骨代谢正平衡的途径之一,运动能够诱导骨骼中miRNAs差异表达,进而调控相关成骨因子或骨吸收因子的表达,进一步加强运动的促成骨效应。本综述总结了运动介导miRNAs调控骨代谢的相关研究进展,为骨质疏松的运动防治提供理论基础。  相似文献   

2.
低氧诱导因子-1α(HIF-1α)是调节细胞对低氧应答的关键因子,可在氧含量降低时被激活,能够调节氧代谢、糖酵解等多种生理活动。骨代谢主要包括骨形成和骨吸收作用,均受到氧浓度等多种因素的调控。HIF-1α在细胞代谢、骨组织生理及病理过程的调控中起着重要的作用,能够增加骨组织的低氧耐受能力,调节骨形成和矿化过程。该文主要综述了HIF-1α对成骨细胞、破骨细胞、骨髓间充质干细胞、软骨细胞等骨组织细胞的调控,对骨血管形成过程的影响,以及对肿瘤骨转移、股骨头坏死、异位骨化等病理过程的调节作用,为探讨HIF-1α对骨代谢的调控和相关疾病的治疗提供参考。  相似文献   

3.
骨髓间充质干细胞(bone marrow mesenchymal stem cells,BMSCs)是机体内具有多向分化能力及自我更新能力的成体干细胞,具有自身增殖能力强、分化范围广的特点。其具有多种分化潜能,其中可分化为成骨细胞或成脂细胞,所以如何提高BMSCs向成骨细胞分化受到了越来越多研究者的关注。随着表观遗传学研究的逐步深入,研究人员对骨代谢相关微小RNA(microRNAs)的作用靶基因、信号通路等进行了大量研究,发现miRNAs是调节BMSCs成骨诱导分化的关键调控因子,在调控骨组织代谢性疾病方面具有重要意义。本研究将对miRNAs调控BMSCs成骨分化的相关因子及信号通路的研究进展进行综述。  相似文献   

4.
骨髓间充质干细胞是一类具有自我复制和多向分化潜能的成体干细胞,可以通过定向诱导分化为成骨细胞、软骨细胞、脂肪细胞等,是目前骨再生医学和细胞治疗研究最多的理想种子细胞。在骨缺损的修复过程中,骨髓间充质干细胞内成软骨相关基因表达升高进而分化为软骨细胞,后期随着成骨细胞和破骨细胞的形成及血管长入,软骨基质逐步降解并被骨基质所替换。软骨细胞参与了骨缺损前期的修复过程,调控软骨形成的信号通路及相关因子不仅调控骨髓间充质干细胞成软骨细胞分化,同时在成骨细胞分化过程中也发挥着重要的作用。对调控软骨形成的信号通路及相关因子在骨髓间充质干细胞骨向分化中的调控作用和研究现状进行了总结,以期为临床寻找更好的治疗骨缺损的方法提供理论依据和研究方向。  相似文献   

5.
骨形成蛋白调控成骨分化的信号机制   总被引:7,自引:0,他引:7  
王茸影  易静 《生命科学》2005,17(1):34-39
骨形成蛋白(bone morphogenetic proteins,BMPs)能诱导成骨细胞和软骨细胞的分化成熟,并能在体内诱导异位成骨。BMPs与骨形成蛋白受体BMPR结合,通过Smads和p38MAPKs途径进行信号转导,并通过下游转录因子Cbfal、Osterix、Dlx等与相应的成骨细胞特异蛋白碱性磷酸酶、骨钙素、OPN等基因启动子连接,促进细胞向成骨方向分化。另外,还通过转录因子CIZ、AJ18等对成骨进行负调控,维持胚胎发育正常,保持骨量平衡。由于BMPs在骨修复中的重要作用,现已成为基因治疗用于骨缺损的一个研究热点。  相似文献   

6.
为避免内质网中未折叠蛋白质的过度累积,真核细胞能激活一系列信号通路来维持内质网稳态,这个过程称为内质网应激。在骨生长发育中,适宜的内质网应激有助于成骨细胞、破骨细胞和软骨细胞的生长,可以促进骨髓间充质干细胞向成骨细胞分化。而过度的内质网应激会抑制成骨分化,严重的甚至导致骨质疏松、成骨不全等相关骨病的发生。内质网应激时可激活未折叠蛋白质反应,其主要是通过PERK/eIF2α/ATF4信号通路,上调转录激活因子4(ATF4)的表达。ATF4位于许多成骨分化调节因子的下游,是促进成骨分化的关键因子,在内质网应激对成骨分化的调节中发挥重要作用。在成骨分化过程中,适宜的内质网应激能通过激活PERK信号通路,诱导ATF4表达增加,进而上调骨钙素、骨涎蛋白等成骨所必需基因的表达,促进成骨分化。过度的内质网应激会激活ATF4/CHOP促凋亡途径,并导致Bax、胱天蛋白酶等凋亡信号分子的大量产生,进而导致细胞凋亡,抑制成骨分化。由于ATF4在ERS和成骨分化中的重要作用,ATF4在骨质疏松、成骨不全等骨相关疾病的治疗中具有重要意义。本文通过综述ATF4在内质网应激调控成骨分化中的作用机制,为相关骨性疾病治疗提供理论依据。  相似文献   

7.
为避免内质网中未折叠蛋白质的过度累积,真核细胞能激活一系列信号通路来维持内质网稳态,这个过程称为内质网应激。在骨生长发育中,适宜的内质网应激有助于成骨细胞、破骨细胞和软骨细胞的生长,可以促进骨髓间充质干细胞向成骨细胞分化。而过度的内质网应激会抑制成骨分化,严重的甚至导致骨质疏松、成骨不全等相关骨病的发生。内质网应激时可激活未折叠蛋白质反应,其主要是通过PERK/eIF2α/ATF4信号通路,上调转录激活因子4(ATF4)的表达。ATF4位于许多成骨分化调节因子的下游,是促进成骨分化的关键因子,在内质网应激对成骨分化的调节中发挥重要作用。在成骨分化过程中,适宜的内质网应激能通过激活PERK信号通路,诱导ATF4表达增加,进而上调骨钙素、骨涎蛋白等成骨所必需基因的表达,促进成骨分化。过度的内质网应激会激活ATF4/CHOP促凋亡途径,并导致Bax、胱天蛋白酶等凋亡信号分子的大量产生,进而导致细胞凋亡,抑制成骨分化。由于ATF4在ERS和成骨分化中的重要作用,ATF4在骨质疏松、成骨不全等骨相关疾病的治疗中具有重要意义。本文通过综述ATF4在内质网应激调控成骨分化中的作用机制,为相关骨性疾病治疗提供理论依据。  相似文献   

8.
模拟失重对人成骨样细胞凋亡的影响   总被引:2,自引:0,他引:2  
为了探讨失重对人成骨样细胞凋亡情况的影响及对相关分子的作用,采用双向多样本回转器模拟失重效应,将培养的人成骨样细胞MG-63随机分为静止对照组、水平旋转对照组和失重实验组(用回转器模拟失重条件),在实验的12 h取细胞用流式细胞仪检测早期凋亡情况,同时检测bcf-2、NF-κB(p65)mRNA和P53的表达.结果显示,在模拟失重12 h时,MG-63细胞表现出一定的早期凋亡趋势,且bcl-2、NF-κB(p65)的表达明显降低,P53表达增加,提示失重可能通过影响这几种凋亡相关因子的表达,启动成骨细胞凋亡,从而破坏骨形成和骨吸收之间的平衡.成骨细胞凋亡的启动可能是航天员骨丢失的原因之一.  相似文献   

9.
microRNAs(miRNAs)是一类具有组织或发育阶段特异性的小分子、非编码单链RNA,通过转录后与靶基因特定序列结合来发挥其调控作用. 作为骨中的最重要的两种重要细胞--成骨细胞和破骨细胞,其代谢平衡与骨形成密切相关.研究发现,miRNAs在调节成骨细胞和破骨细胞分化及功能发挥上具有重要作用,并且运动训练可通过调节miRNAs进而调控骨细胞分化. 一般来说,适宜强度运动训练可上调某些miRNAs表达来促进成骨细胞或破骨细胞分化及功能;当失重或过量运动时,则会产生抑制作用. 本文就miRNAs调控干细胞向成骨细胞和破骨细胞分化及功能发挥的分子生物学机制以及运动训练调节与骨代谢相关miRNAs表达的研究进展进行综述.  相似文献   

10.
蒋捷  黄林科  胡峰 《蛇志》2021,(1):82-85
股骨头坏死是骨外科常见的难治性疾病,其机制仍有待研究。目前为止,医源性糖皮质激素是非创伤性股骨头坏死的主要原因。激素的长期使用可导致股骨头骨细胞凋亡、血液循环障碍所致缺血缺氧,最终导致股骨头塌陷。激素性股骨头坏死的发生发展与骨组织中细胞直接接触和其间接分泌的细胞因子调控相关。本文综述了骨组织中成骨细胞分泌的核因子κB受体结合配体,骨保护素,骨碱性磷酸酶,骨细胞表达硬化素,破骨细胞分泌骨形态发生蛋白2等因子在SONFH的研究进展,骨源性细胞因子在SONFH中扮演重要作用。  相似文献   

11.

Background

Periostin, an extracellular matrix protein, is expressed in bone, more specifically, the periosteum and periodontal ligaments, and plays a key role in formation and metabolism of bone tissues. Human adipose tissue-derived mesenchymal stem cells (hASCs) have been reported to differentiate into osteoblasts and stimulate bone repair. However, the role of periostin in hASC-mediated bone healing has not been clarified. In the current study, we examined the effect of periostin on bone healing capacity of hASCs in a critical size calvarial defect model.

Methods and Results

Recombinant periostin protein stimulated migration, adhesion, and proliferation of hASCs in vitro. Implantation of either hASCs or periostin resulted in slight, but not significant, stimulation of bone healing, whereas co-implantation of hASCs together with periostin further potentiated bone healing. In addition, the number of Ki67-positive proliferating cells was significantly increased in calvarial defects by co-implantation of both hASCs and periostin. Consistently, proliferation of administered hASCs was stimulated by co-implantation with periostin in vivo. In addition, co-delivery of hASCs with periostin resulted in markedly increased numbers of CD31-positive endothelial cells and α-SMA-positive arterioles in calvarial defects.

Conclusions

These results suggest that recombinant periostin potentiates hASC-mediated bone healing by stimulating proliferation of transplanted hASCs and angiogenesis in calvarial defects.  相似文献   

12.
A novel 90-kDa protein named periostin, which is preferentially expressed in the periosteum and the periodontal ligament (PDL), may play a role in bone metabolism and remodeling. However, the precise role of periostin in the PDL remains unclear. Therefore, we examined the expression of periostin mRNA during experimental tooth movement. Experimental tooth movement was achieved in 7-week-old male Sprague-Dawley rats. In control specimens without tooth movement, the expression of periostin mRNA was uniformly observed in the PDL surrounding the mesial and distal roots of the upper molars and was weak in the PDL of the root furcation area. The periostin mRNA-expressing cells were mainly fibroblastic cells in the PDL and osteoblastic cells on the alveolar bone surfaces. The divergent expression of periostin mRNA in the PDL began to be observed at 3 h and continued up to 96 h after tooth movement. The maximum changes, which showed stronger staining in the pressure sites than in the tension sites, were observed at 24 h. The expression of periostin mRNA in the PDL 168 h after tooth movement exhibited a similar distribution to that of the control specimens. These results suggest that periostin is one of the local contributing factors in bone and periodontal tissue remodeling following mechanical stress during experimental tooth movement.  相似文献   

13.
Periostin appears to be a unique extracellular protein secreted by fibroblasts that is upregulated following injury to the heart or changes in the environment. Periostin has the ability to associate with other critical extracellular matrix (ECM) regulators such as TGF-β, tenascin, and fibronectin, and is a critical regulator of fibrosis that functions by altering the deposition and attachment of collagen. Periostin is known to be highly expressed in carcinoma cells, but not in normal breast tissues. The protein has a structural similarity to insect fasciclin-1 (Fas 1) and can be induced by transforming growth factor-β (TGF-β) and bone morphogenetic protein (BMP)-2. To investigate the molecular interaction of periostin and bone morphogenetic protein, we modeled these three-dimensional structures and their binding sites. We demonstrated direct interaction between periostin and BMP1/2 in vitro using several biochemical and biophysical assays. We found that the structures of the first, second, and fourth Fas1 domains in periostin are similar to that of the fourth Fas 1 domain of TGFBIp. However, the structure of the third Fas 1 domain in periostin is different from those of the first, second, and fourth Fas1 domains, while it is similar to the NMR structure of Fasciclin-like protein from Rhodobacter sphaeroides. These results will useful in further functional analysis of the interaction of periostin and bone morphogenetic protein.  相似文献   

14.
The modification of glutamic acid residues to gamma-carboxyglutamic acid (Gla) is a post-translational modification catalyzed by the vitamin K-dependent enzyme gamma-glutamylcarboxylase. Despite ubiquitous expression of the gamma-carboxylation machinery in mammalian tissues, only 12 Gla-containing proteins have so far been identified in humans. Because bone tissue is the second most abundant source of Gla-containing proteins after the liver, we sought to identify Gla proteins secreted by bone marrow-derived mesenchymal stromal cells (MSCs). We used a proteomics approach to screen the secretome of MSCs with a combination of two-dimensional gel electrophoresis and tandem mass spectrometry. The most abundant Gla-containing protein secreted by MSCs was identified as periostin, a previously unrecognized gamma-carboxylated protein. In silico amino acid sequence analysis of periostin demonstrated the presence of four consensus gamma-carboxylase recognition sites embedded within fasciclin-like protein domains. The carboxylation of periostin was confirmed by immunoprecipitation and purification of the recombinant protein. Carboxylation of periostin could be inhibited by warfarin in MSCs, demonstrating its dependence on the presence of vitamin K. We were able to demonstrate localization of carboxylated periostin to bone nodules formed by MSCs in vitro, suggesting a role in extracellular matrix mineralization. Our data also show that another fasciclin I-like protein, betaig-h3, contains Gla. In conclusion, periostin is a member of a novel vitamin K-dependent gamma-carboxylated protein family characterized by the presence of fasciclin domains. Furthermore, carboxylated periostin is produced by bone-derived cells of mesenchymal lineage and is abundantly found in mineralized bone nodules in vitro.  相似文献   

15.
Periostin is an extracellular matrix protein highly expressed in collagen-rich tissues subjected to continuous mechanical stress. Functionally, periostin is involved in tissue remodeling and its altered function is associated to numerous pathological processes. In orthodontics, periostin plays key roles in the maintenance of dental tissues and it is mainly expressed in those areas where tension or pressing forces are taking place. In this regard, high expression of periostin is essential to promote migration and proliferation of periodontal ligament fibroblasts. However little is known about the participation of periostin in migration and adhesion processes of bone remodeling cells. In this work we employ the mouse pre-osteoblastic MC3T3-E1 and the macrophage-like RAW 264.7 cell lines to overexpress periostin and perform different cell-based assays to study changes in cell behavior. Our data indicate that periostin overexpression not only increases adhesion capacity of MC3T3-E1 cells to different matrix proteins but also hampers their migratory capacity. Changes on RNA expression profile of MC3T3-E1 cells upon periostin overexpression have been also analyzed, highlighting the alteration of genes implicated in processes such as cell migration, adhesion or bone metabolism but not in bone differentiation. Overall, our work provides new evidence on the impact of periostin in osteoblasts physiology.  相似文献   

16.
A novel role of periostin in postnatal tooth formation and mineralization   总被引:1,自引:0,他引:1  
Periostin plays multiple functions during development. Our previous work showed a critical role of this disulfide-linked cell adhesion protein in maintenance of periodontium integrity in response to occlusal load. In this study, we attempted to address whether this mechanical response molecule played a direct role in postnatal tooth development. Our key findings are 1) periostin is expressed in preodontoblasts, and odontoblasts; and the periostin-null incisor displayed a massive increase in dentin formation after mastication; 2) periostin is also expressed in the ameloblast cells, and an enamel defect is identified in both the adult-null incisor and molar; 3) deletion of periostin leads to changes in expression profiles of many non-collagenous protein such as DSPP, DMP1, BSP, and OPN in incisor dentin; 4) the removal of a biting force leads to reduction of mineralization, which is partially prevented in periostin-null mice; and 6) both in vitro and in vivo data revealed a direct regulation of periostin by TGF-β1 in dentin formation. In conclusion, periostin plays a novel direct role in controlling postnatal tooth formation, which is required for the integrity of both enamel and dentin.  相似文献   

17.
18.
Osteoporosis is a condition of the skeleton that mainly results from estrogen deficiency. Periostin is a matricellular component in bone that is involved in osteoblast differentiation. However, how Periostin promotes osteogenesis remains largely unknown. Here, we isolated bone marrow skeletal stem cells (BMSCs) derived from an ovariectomy (OVX)-induced osteoporosis rat model and the effects of periostin on BMSCs derived from OVX rats (OVX-BMSCs) were assessed. Overexpression of periostin enhanced alkaline phosphatase (ALP) and alizarin red staining in OVX-BMSCs as well as the osteogenic genes OCN, BSP and Runx2. ILK is a downstream effector of signals from the extracellular matrix and participates in bone homeostasis. Overexpression of periostin also increased expression of protein levels for ILK, as well as the downstream targets pAkt and pGSK3β. Suppression of ILK or Akt partially suppressed the enhancement of osteogenic ability induced by periostin overexpression in OVX-BMSCs. Thus, periostin may promote the osteogenic ability of OVX-BMSCs through actions on the ILK/Akt/GSK3β axis.  相似文献   

19.
20.
Periostin is a 90 kDa secreted protein, originally identified in murine osteoblast-like cells, with a distribution restricted to collagen-rich tissues and certain tumors. In this paper, we first analyzed the expression of periostin mRNA and protein in human fetal osteoblasts (hFOB) and human osteosarcoma (hOS) cell lines by RT real-time PCR and Western blot, respectively. The hFOB 1.19 and three hOS (MHM, KPDXM and Eggen) showed highly variable periostin mRNA levels and protein. Second, we showed that the expression of periostin mRNA was inversely related to the cells' abilities to differentiate and mineralize. Then, we investigated the regulation of periostin mRNA in hFOB after siRNA treatment and in mouse primary osteoblasts (mOB) treated with PTH. Knock-down of periostin mRNA, down-regulated PTHrP, but did not affect the expression of other important markers of differentiation such as RUNX2. In addition, periostin mRNA was transiently up-regulated in osteoblasts by PTH. Finally, the localization of periostin and its partially co-localization with collagen 1a1 mRNA and protein was studied in mouse embryos and postnatal pups using in situ hybridization and immunohistochemistry, respectively. In conclusion, the present study provides novel observations related to the expression, distribution and regulation of periostin in bone cells and extracellular matrix.  相似文献   

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