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1.
研究显示应力刺激对软骨细胞生长及基质代谢具重要作用。软骨正常结构形态以及应力下的软骨细胞形态和基质代谢的变化是力-生物信号转化的基础,信号分子及信号通路则是应力信号传导的核心,二者是对软骨细胞应力下信号传导过程深入了解不可或缺的信息组成,了解应力对软骨细胞的作用方式及作用机制有助于软骨相关疾病诊治、组织工程等领域的研究,本文就这两个方面研究进展做一综述。  相似文献   

2.
骨关节炎(osteoarthritis, OA)是一种以关节软骨退变、软骨下骨重塑、骨赘形成、关节内滑膜炎症反应和广泛血管生成为特征的慢性退行性疾病。其发生受遗传、环境、代谢、生物化学和机械应力等诸多因素的共同影响,其中机械应力异常为主要诱因。在机械应力异常导致OA的过程中,软骨组织的稳定状态被打破,软骨细胞作为软骨组织中唯一的细胞也会发生相应的变化。压应力是机械应力的一种,最新研究表明,压应力可对软骨细胞的形态、代谢状态、表型、细胞活性产生影响。因此,该文综述了近年来压应力对软骨细胞影响的相关文献,为OA的机制和治疗有关研究提供理论基础。  相似文献   

3.
MOW Van C 《生命科学》2009,(2):201-204
关节软骨是覆盖于骨关节面的一薄层低摩擦、耐磨损、负重的水化组织。这种功能通过散在镶嵌于软骨组织深层致密胞外组织内的软骨细胞的代谢和生物合成作用来维持。这种代谢和生物合成进程很大一部分是由物理因素,如应力、张力、电流及电势、液压及渗透压等来调控的。这两者都存在于这一带电的、渗透性的基质当中。本文主要讲述关节软骨及软骨细胞的机械一电化学行为及理论模型的最近进展,同时着眼于软骨细胞生物合成活动的物理调控及其对于组织维持、功能组织工程软骨修复及再生医学的意义。  相似文献   

4.
TGF-β1对体外培养的关节软骨细胞的作用   总被引:1,自引:0,他引:1  
以原代培养的软骨细胞为材料,研究了转化生长因子IGF-β1对关节软骨细胞的增殖和软骨特异性基质代谢的作用,结果显示TGF-β1可以刺激细胞外基质中蛋白多糖含量的增加,并可以在转录水平上调节Ⅱ型胶原的表达。TGF-β1可以在体外诱导高密度培养的软骨细胞形成透明软骨样结构。没有用TGF-β1处理的高密度培养细胞不能形成透明软骨样结构,在透射电镜下观察发现其内部结构发生了异常变化。这些结果表明TGF-β1对于支持关节软骨细胞的体外培养具有重要的作用。  相似文献   

5.
老年退行性骨关节炎(OA)是由关节损伤、肥胖和衰老等因素引起的一种退行性疾病,最终引起关节软骨损伤,导致运动功能障碍。软骨细胞及细胞外基质是软骨组织的主要成分,它们的损伤是引起OA的根本原因。目前OA的治疗仅限于缓解症状,而随着干细胞的发现及对软骨细胞的深入认识,开发增强软骨内源性修复的药物是OA治疗的重要方向。目前研究发现,kartogenin等化合物可以促进间充质干细胞选择性的分化为软骨细胞而起到修复作用,此外,一些化合物还可以调控软骨细胞的信号通路,起到促进软骨细胞增殖、抑制软骨细胞凋亡、抑制基质金属蛋白酶活性、增加细胞外基质合成等作用,从而维持软骨细胞的数量、促进软骨基质的合成而抑制其降解。这些方法比常规通过微创刺激内源性干细胞或移植自体细胞更加安全、有效。本文就化合物对促进老年退行性骨炎软骨内源性修复的研究进行综述,为发现更多的有效化合物提供基础。  相似文献   

6.
<正>关节软骨由致密结缔组织及散在其中的软骨细胞组成。关节软骨通过关节液获取营养物质、排泄代谢废物。关节活动对于维持关节软骨的正常结构和生理功能起到至关重要的作用。关节软骨细胞只有在受到压力刺激时才能进行这种营养代谢方式,但关节软骨细胞如何将外界动态变化的压力负荷转化为细胞内调节代谢的信号尚不清楚。关节软骨细胞膜表面有TRPV4蛋白表达。机械刺激可通过激活TRPV4,升高细胞内Ca2+浓度,调节代谢反应。有研究  相似文献   

7.
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   

8.
目的:以三维成团培养为培养系统,探讨bFGF与胶原对组织工程软骨体外构建的影响。方法:成团培养兔生长板软骨细胞,设bFGF、胶原及联合作用组。HE染色观察新生组织形态;免疫组化检测Ⅰ、Ⅱ型胶原表达以观察细胞表型;Hoechst 33258法检测细胞DNA含量;羟脯氨酸法与阿新蓝法测定基质中胶原与蛋白多糖的合成。结果:新生软骨的组织学形态近似自然软骨;各实验组软骨细胞DNA含量明显上升;胶原可以显著促进基质的合成;各实验组Ⅰ型胶原的表达少于对照组,Ⅱ型胶原的表达则高于对照组;联合作用组效果更加明显。结论:三维的成团培养可以促进基质合成,有效维持软骨细胞表型;bFGF与胶原有利于工程化软骨构建,其效果具有协同效应,两者联合应用可进一步促进软骨再生。  相似文献   

9.
bFGF的生物学作用极其广泛,特别在促进创伤愈合与组织修复、组织再生起着十分重要的作用,它作为重要的有丝分裂促进因子,可传递发育的信号促进软骨细胞分裂,同时也是软骨细胞形态发生和分化的诱导因子,参与软骨的生长发育和组织损伤修复过程,特别是在软骨细胞的增殖分化起到重要作用,在解决软骨工程中面临的问题以及治疗骨关节炎等研究中具有的参考意义。本文对bFGF对软骨的分化、增殖、凋亡等不同生物学阶段的影响作用做一个综述。  相似文献   

10.
bFGF的生物学作用极其广泛,特别在促进创伤愈合与组织修复、组织再生起着十分重要的作用,它作为重要的有丝分裂促进因子,可传递发育的信号促进软骨细胞分裂,同时也是软骨细胞形态发生和分化的诱导因子,参与软骨的生长发育和组织损伤修复过程,特别是在软骨细胞的增殖分化起到重要作用,在解决软骨工程中面临的问题以及治疗骨关节炎等研究中具有的参考意义。本文对bFGF对软骨的分化、增殖、凋亡等不同生物学阶段的影响作用做一个综述。  相似文献   

11.
Mechanical compression of the cartilage extracellular matrix has a significant effect on the metabolic activity of the chondrocytes. However, the relationship between the stress–strain and fluid-flow fields at the macroscopic “tissue” level and those at the microscopic “cellular” level are not fully understood. Based on the existing experimental data on the deformation behavior and biomechanical properties of articular cartilage and chondrocytes, a multi-scale biphasic finite element model was developed of the chondrocyte as a spheroidal inclusion embedded within the extracellular matrix of a cartilage explant. The mechanical environment at the cellular level was found to be time-varying and inhomogeneous, and the large difference (3 orders of magnitude) in the elastic properties of the chondrocyte and those of the extracellular matrix results in stress concentrations at the cell–matrix border and a nearly two-fold increase in strain and dilatation (volume change) at the cellular level, as compared to the macroscopic level. The presence of a narrow “pericellular matrix” with different properties than that of the chondrocyte or extracellular matrix significantly altered the principal stress and strain magnitudes within the chondrocyte, suggesting a functional biomechanical role for the pericellular matrix. These findings suggest that even under simple compressive loading conditions, chondrocytes are subjected to a complex local mechanical environment consisting of tension, compression, shear, and fluid pressure. Knowledge of the local stress and strain fields in the extracellular matrix is an important step in the interpretation of studies of mechanical signal transduction in cartilage explant culture models.  相似文献   

12.
活性氧是细胞代谢中产生的有很强反应活性的分子,易将邻近分子氧化,并参与细胞内多种信号转导途径,对相关生理过程进行调控.自噬是真核细胞通过溶酶体机制对自身组分进行降解再利用的过程,在细胞应激及疾病发生等过程中发挥重要作用.本文对活性氧和自噬相关调节进行分类介绍,根据新近研究进展,从活性氧参与的自噬性死亡、自噬性存活以及线粒体自噬3方面探讨了相关信号转导机制,对活性氧作为信号分子参与的自噬调控途径做一总结和介绍.  相似文献   

13.
Compression-induced changes in the shape and volume of the chondrocyte nucleus   总被引:11,自引:0,他引:11  
Changes in cell shape and volume are believed to play a role in the process of mechanical signal transduction by chondrocytes in articular cartilage. One proposed pathway through which chondrocyte deformation may be transduced to an intracellular signal is through cytoskeletally mediated deformation of intracellular organelles, and more specifically, of the cell nucleus. In this study, confocal scanning laser microscopy was used to perform in situ three-dimensional morphometric analyses of the nuclei of viable condrocytes during controlled compression of articular cartilage explants from the canine patellofemoral groove. Unconfined compression of the tissue to a 15% surface-to-surface strain resulted in a significant decrease of chondrocyte height and volume by 14.7 ± 6.4 and 11.4 ± 8.4%, respectively, and of nuclear height and volume by 8.8 ± 6.2% and 9.8 ± 8.8%, respectively. Disruption of the actin cytoskeleton using cytochalasin D altered the relationship between matrix deformation and changes in nuclear height and shape, but not volume. The morphology and deformation behavior of the chondrocytes were not affected by cytochalasin treatment. These results suggest that the actin cytoskeleton plays an important role in the link between compression of the extracellular matrix and deformation of the chondrocyte nuclei and imply that chondrocytes and their nuclei undergo significant changes in shape and volume in vivo.  相似文献   

14.
Cartilage is a connective tissue in the skeletal system and has limited regeneration ability and unique biomechanical reactivity. The growth and development of cartilage can be affected by different physical, chemical and biological factors, such as mechanical stress, inflammation, osmotic pressure, hypoxia and signalling transduction. Primary cilia are multifunctional sensory organelles that regulate diverse signalling transduction and cell activities. They are crucial for the regulation of cartilage development and act in a variety of ways, such as react to mechanical stress, mediate signalling transduction, regulate cartilage‐related diseases progression and affect cartilage tumorigenesis. Therefore, research on primary cilia‐mediated cartilage growth and development is currently extremely popular. This review outlines the role of primary cilia in cartilage development in recent years and elaborates on the potential regulatory mechanisms from different aspects.  相似文献   

15.
Guilak F 《Biorheology》2000,37(1-2):27-44
Chondrocytes in articular cartilage utilize mechanical signals in conjunction with other environmental factors to regulate their metabolic activity. However, the sequence of biomechanical and biochemical events involved in the process of mechanical signal transduction has not been fully deciphered. A fundamental step in determining the role of various factors in regulating chondrocyte activity is to characterize accurately the biophysical environment within the tissue under physiological conditions of mechanical loading. Microscopic imaging studies have revealed that chondrocytes as well as their nuclei undergo shape and volume changes in a coordinated manner with deformation of the tissue matrix. Through micromechanical experiments, it has been shown that the chondrocyte behaves as a viscoelastic solid material with a mechanical stiffness that is several orders of magnitude lower than that of the cartilage extracellular matrix. These properties seem to be due to the structure of the chondrocyte cytoskeleton, and in part, the viscoelastic properties of the cell nucleus. The mechanical properties of the pericellular matrix that immediately surrounds the chondrocyte significantly differ from those of the chondrocyte and the extracellular matrix, suggesting that the pericellular matrix plays an important role in defining the mechanical environment of the chondrocyte. These experimentally measured values for chondrocyte and cartilage mechanical properties have been used in combination with theoretical constitutive modeling of the chondrocyte within articular cartilage to predict the non-uniform and time-varying stress-strain and fluid flow environment of the cell. The ultimate goal of these studies has been to elucidate the sequence of biomechanical and biochemical events through which mechanical stress influences chondrocyte activity in both health and in disease.  相似文献   

16.
The articular cartilage of diarthrodial joints experiences a variety of stresses, strains and pressures that result from normal activities of daily living. In normal cartilage, the extracellular matrix exists as a highly organized composite of specialized macromolecules that distributes loads at the bony ends. The chondrocyte response to mechanical loading is recognized as an integral component in the maintenance of articular cartilage matrix homeostasis. With inappropriate mechanical loading of the joint, as occurs with traumatic injury, ligament instability, bony malalignment or excessive weight bearing, the cartilage exhibits manifestations characteristic of osteoarthritis. Breakdown of cartilage in osteoarthritis involves degradation of the extracellular matrix macromolecules and decreased expression of chondrocyte proteins necessary for normal joint function. Osteoarthritic cartilage often exhibits increased amounts of type I collagen and synthesis of proteoglycans characteristic of immature cartilage. The shift in cartilage phenotype in response to altered load yields a matrix that fails to support normal joint function. Mathematical modeling and experimental studies in animal models confirm an association between altered loading of diarthrotic joints and arthritic changes. Both types of studies implicate shear forces as a critical component in the destructive profile. The severity of cartilage destruction in response to altered loads appears linked to expression of biological factors influencing matrix integrity and cellular metabolism. Determining how shear stress alters chondrocyte metabolism is fundamental to understanding how to limit matrix destruction and stimulate cartilage repair and regeneration. At present, the precise biochemical and molecular mechanisms by which shear forces alter chondrocyte metabolism from a normal to a degenerative phenotype remain unclear. The results presented here address the hypothesis that articular chondrocyte metabolism is modulated by direct effects of shear forces that act on the cell through mechanotransduction processes. The purpose of this work is to develop critical knowledge regarding the basic mechanisms by which mechanical loading modulates cartilage metabolism in health and disease. This presentation will describe the effects of using fluid induced shear stress as a model system for stimulation of articular chondrocytes in vitro. The fluid induced shear stress was applied using a cone viscometer system to stimulate all the cells uniformly under conditions of minimal turbulence. The experiments were carried using high-density primary monolayer cultures of normal and osteoarthritic human and normal bovine articular chondrocytes. The analysis of the cellular response included quantification of cytokine release, matrix metalloproteinase expression and activation of intracellular signaling pathways. The data presented here show that articular chondrocytes exhibit a dose- and time-dependent response to shear stress that results in the release of soluble mediators and extracellular matrix macromolecules. The data suggest that the chondrocyte response to mechanical stimulation contributes to the maintenance of articular cartilage homeostasis in vivo.  相似文献   

17.
PI3K/Akt信号通路是由酶联受体介导的信号转导通路,该通路不仅参与多种生长因子、细胞因子和细胞外基质等的信号转导,同时还参与细胞增殖、分化、凋亡和葡萄糖转运等多种细胞功能的调节,特别是在细胞凋亡、细胞存活以及调控细胞糖代谢等方面具有重要作用。本研究综述了PI3K-Akt信号通路的结构组成、通路活化、通信过程、调控机制及其生物学功能等方面的研究进展,为进一步研究PI3K/Akt信号通路的生物学调控作用机制提供启示。  相似文献   

18.
Lai WM  Sun DD  Ateshian GA  Guo XE  Mow VC 《Biorheology》2002,39(1-2):39-45
An important step toward understanding signal transduction mechanisms modulating cellular activities is the accurate predictions of the mechanical and electro-chemical environment of the cells in well-defined experimental configurations. Although electro-kinetic phenomena in cartilage are well known, few studies have focused on the electric field inside the tissue. In this paper, we present some of our recent calculations of the electric field inside a layer of cartilage (with and without cells) in an open circuit one-dimensional (1D) stress relaxation experiment. The electric field inside the tissue derives from the streaming effects (streaming potential) and the diffusion effect (diffusion potential). Our results show that, for realistic cartilage material parameters, due to deformation-induced inhomogeneity of the fixed charge density, the two potentials compete against each other. For softer tissue, the diffusion potential may dominate over the streaming potential and vice versa for stiffer tissue. These results demonstrate that for proper interpretation of the mechano-electrochemical signal transduction mechanisms, one must not ignore the diffusion potential.  相似文献   

19.
Significant evidence exists that trauma to a joint produced by a single impact load below that which causes subchondral bone fracture can result in permanent damage to the cartilage matrix, including surface fissures, loss of proteoglycan, and cell death. Limited information exists, however, on the effect of a varying impact stress on chondrocyte biophysiology and matrix integrity. Based on our previous work, we hypothesized that a stress-dependent response exists for both the chondrocyte's metabolic activity and viability and the matrix's hydration. This hypothesis was tested by impacting bovine cartilage explants with nominal stresses ranging from 0.5 to 65 MPa and measuring proteoglycan biosynthesis, cell viability, and water content immediately after impaction and 24 hours later. We found that proteoglycan biosynthesis decreased and water content increased with increasing impact stress. However, there appeared to be a critical threshold stress (15-20 MPa) that caused cell death and apparent rupture of the collagen fiber matrix at the time of impaction. We concluded that the cell death and collagen rupture are responsible for the observed alterations in the tissue's metabolism and water content, respectively, although the exact mechanism causing this damage could not be determined.  相似文献   

20.
Two-dimensional electrophoresis (2-DE) showed the variation expression of Arabidopsis thaliana root proteins between wild type and its salt-tolerant mutant obtained from cobalt-60 γ ray radiation. Forty-six differential root protein spots were reproducibly presented on 2-DE maps, and 29 spots were identified by matrix assisted laser desorption ionization-time of flight/time of flight mass spectrometry (MS). Fifteen protein spots corresponding to 10 proteins, and 14 protein spots corresponding to 9 proteins were constitutively up-regulated and down-regulated in the salt-tolerant mutant root. Bioinformatic analysis indicated that those differential proteins might be involved in the regulation of redox homeostasis, nucleotide metabolism, signal transduction, stress response and defense, carbohydrate metabolism, and cell wall metabolism. Peroxidase 22 might be a versatile enzyme and might play dual roles in both cell wall metabolism and regulation of redox homeostasis. Our work provides not only new insights into salt-responsive proteins in root, but also the potential salt-tolerant targets for further dissection of molecular mechanism adapted by plants during salt stress.  相似文献   

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