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1.
观察人羊膜间充质干细胞(human amniotic mesenchymal stem cells,hAMSCs)成脂分化前后超微结构及其机械性能的变化,以期进一步了解hAMSCs在体外成脂分化的过程。用流式细胞仪分析细胞表面分子表达情况,油红O染色检测hAMSCs成脂分化情况,原子力显微镜观察(AFM)分化前后超微结构及机械性能的变化等。结果显示,流式细胞检测显示,CD34,CD45,HLA-DR,呈阴性表达,CD29,CD90呈阳性表达;油红O染色可见脂肪细胞胞质中有大小不等的圆性红色脂肪滴;AFM观察诱导后的hAMSCs表面有脂滴状的颗粒,粘弹力增大,硬度减小。运用AFM可以清晰观察到诱导前后形貌及机械性能变化。  相似文献   

2.
目的:为脂肪细胞分化提供数据,加深对3T3-L1细胞分化机制的了解.方法:应用AFM对3T3-L1前脂细胞的形貌、超微结构、机械性能和细胞骨架进行了可视化研究.结果:3T3-L1细胞舒展,伪足丰富,膜表面有大小不一的斑块和突起.通过统计分析得出3T3-L1细胞的高低差,均方根粗糙度、平均粗糙度和平均高度分别为622.3nm、77.34nm、55.80nm、393.1nm;AFM针尖与细胞膜表面的相对粘弹力为95.10±19.41pN,平均硬度为2.36±0.39mN/m,杨氏模量为4.85±0.99kPa.AFM对3T3-L1细胞骨架成像,观察到骨架南排列整齐的大纤维束和细小的微纤维以及颗粒状蛋白组成,形成网络结构.结论:细胞形貌结合细胞的机械性能可知3T3-L1细胞生长状态良好,细胞的移动迁移能力强.  相似文献   

3.
应用原子力显微镜分析猪脂肪前体细胞的分化   总被引:2,自引:0,他引:2  
脂肪形成过程中发生的异常变化与许多疾病的产生有着密切的关系。为深入了解脂肪形成的机制,利用原子力显微镜研究脂肪前体细胞向成熟脂肪细胞分化前后细胞形貌、超微结构和机械性能的变化。结果表明,脂肪前体细胞与成熟脂肪细胞在形貌上存在明显的差异。在超微结构的探测中成熟脂肪细胞表面粗糙度低于脂肪前体细胞。通过力曲线的分析得出,分化前后两种细胞的机械性质均发生改变。脂肪前体细胞在粘弹力、硬度和杨氏模量的研究中比成熟脂肪细胞都高出约20%。原子力显微镜在纳米尺度上分析脂肪前体细胞向成熟脂肪细胞分化过程中细胞膜的改变,其研究结果为进一步探讨脂肪形成机制提供可视化定量数据。  相似文献   

4.
淋巴细胞形态和机械性质的变化与人的健康、疾病的治疗和诊断有着密切关系。本研究利用原子力显微镜研究淋巴细胞和Jurkat细胞形态和机械性质。结果显示,这2种细胞的形态较为相似,但通过对力曲线的分析得出这2种细胞的机械性质明显不同。正常淋巴细胞粘弹力范围大致为(796.7±248.5)pN,而Jurkat细胞分布于(158.5±37.5)pN;正常淋巴细胞的杨氏模量(0.471kPa±0.081kPa)近4倍于Jurkat细胞(0.0964kPa±0.0229kPa);而Jurkat细胞(4.322mN/m±0.382mN/m)的硬度近2倍于正常淋巴细胞(2.278mN/m±0.488mN/m)。结果表明原子力显微镜能可在临床诊断上区分正常细胞与肿瘤细胞,即使两者形态区别不明显。  相似文献   

5.
原子力显微镜(AFM)的发明为微纳尺度下高分辨率探测天然状态生物样本的物理特性提供了强大工具,是对传统生化特性检测方法的有力补充.近年来,多参数成像模式AFM的出现使得人们不仅可以获取生物样本表面形貌特征,还能同时获取生物样本多种力学特性图(如杨氏模量、黏附力、形变等),为研究生物结构、力学特性及其生理功能之间的关联提供了新的技术手段.多参数成像AFM的生物医学应用研究为细胞/分子生理活动及相关疾病内在机理带来了大量新的认识.本文结合作者在AFM细胞探测方面的研究工作,介绍了多参数成像AFM工作原理,总结了多参数成像AFM在细胞及分子力学特性探测方面的研究进展,并对其存在的问题进行了讨论和展望.  相似文献   

6.
目的:应用原子力显微镜技术实现对大鼠精子超微结构的实时成像,对比观察中药作用前后弱精子超微结构的变化.方法:制作少弱精症大鼠模型;运用非接触模式原子力显微镜技术对比观察正常精子和病理性精子在中药作用前后超微结构的动态变化.结果:获得精子头体、颈部和鞭毛等部位的实时超微结构图像.结论:AFM可直接探测精子头体的各种畸形,实现对精子全貌的观测.通过修复弱精子超微结构的病理形态学缺陷可能是黄精赞育胶囊优选方改善弱精子质量的机制之一.  相似文献   

7.
目的:应用原子力显微镜技术实现对大鼠精子超微结构的实时成像,对比观察中药作用前后弱精子超微结构的变化.方法:制作少弱精症大鼠模型;运用非接触模式原子力显微镜技术对比观察正常精子和病理性精子在中药作用前后超微结构的动态变化.结果:获得精子头体、颈部和鞭毛等部位的实时超微结构图像.结论:AFM可直接探测精子头体的各种畸形,实现对精子全貌的观测.通过修复弱精子超微结构的病理形态学缺陷可能是黄精赞育胶囊优选方改善弱精子质量的机制之一.  相似文献   

8.
原子力显微镜(AFM)作为生物样品表面表征的有力工具,具有独特的优势.本文在介绍原子力显微镜基本原理的基础上,综述了原子力显微镜样品制备以及原子力显微镜形貌分析、力曲线以及动力学分析在生物领域中的应用.  相似文献   

9.
原子力显微镜(AFM)的发明为测量生理环境下单个活细胞的机械特性提供了新的技术手段.现有AFM单细胞机械特性研究集中在测量细胞弹性.细胞本质上是黏弹性的,但目前关于细胞黏弹性在细胞生理活动行为中作用的认知还很不足.基于AFM逼近-停留-回退实验,发展了可同时对细胞弹性及黏弹性进行测量的方法,并应用该方法首先测量了正常乳腺细胞和乳腺癌细胞的弹性(杨氏模量)及黏弹性(松驰时间),显示出正常乳腺细胞和乳腺癌细胞的杨氏模量及松弛时间均有着显著的差异.AFM成像揭示了正常乳腺细胞和乳腺癌细胞在细胞表面形态及几何特征方面的差异.随后对3种不同类型的细胞系及原代B淋巴细胞进行了测量,证明了松驰时间在辅助杨氏模量鉴定细胞状态方面的潜力.实验结果为定量测量细胞机械特性提供了新的方法,便于从多个角度研究单个细胞的生物力学行为.  相似文献   

10.
原子力显微镜(AFM)作为生物样品表面表征的有力工具, 具有独特的优势。本文在介绍原子力显微镜基本原理的基础上, 综述了原子力显微镜样品制备以及原子力显微镜形貌分析、力曲线以及动力学分析在生物领域中的应用。  相似文献   

11.
Docking and fusion of vesicles to the plasma membrane is a fundamental process in living cells. An established model for the trafficking of vesicles is based on primary epithelial cells from the collecting duct of the nephron. Upon stimulation with the signaling peptide arginine-vasopressin (AVP), aquaporin-containing vesicles are directed to the plasma membrane. Since aquaporin selectively enhances the water permeability of plasma membranes, this process helps to balance the water content of the organism. A mechanism has been suggested involving local depolymerization of F-actin to facilitate the movement of vesicles to the membrane. Since F-actin is the major component of cytoskeletal restoring forces, AVP-stimulated cells can be expected to lose rigidity. Here, we used atomic force microscopy force mapping to test whether AVP alters cell stiffness. The Young's modulus of living epithelial cells at 37°C was continuously monitored, yielding a 51% decrease of Young's modulus after the addition of AVP. The data demonstrate that not the depolymerization of actin but a relaxation of actomyosin interaction facilitates vesicle translocation.  相似文献   

12.
Cellular responses to mechanical stimuli are regulated by interactions with the extracellular matrix, which, in turn, are strongly influenced by the degree of cell stiffness (Young's modulus). It was hypothesized that a more elastic cell could better withstand the rigors of remodeling and mechanical loading. It was further hypothesized that interleukin-1beta (IL-1beta) would modulate intracellular cytoskeleton polymerization and regulate cell stiffness. The purpose of this study was to investigate the utility of IL-1beta to alter the Young's modulus of human tenocytes. Young's modulus is the ratio of the stress to the strain, E = stress/strain = (F/A)/(deltaL/L0), where L0 is the equilibrium length, deltaL is the length change under the applied stress, F is the force applied, and A is the area over which the force is applied. Human tenocytes were incubated with 100 pM recombinant human IL-1beta for 5 days. The Young's modulus was reduced by 27-63%. Actin filaments were disrupted in >75% of IL-1beta-treated cells, resulting in a stellate shape. In contrast, immunostaining of alpha-tubulin showed increased intensity in IL-1beta-treated tenocytes. Human tenocytes in IL-1beta-treated bioartificial tendons were more tolerant to mechanical loading than were untreated counterparts. These results indicate that IL-1beta reduced the Young's modulus of human tenocytes by disrupting the cytoskeleton and/or downregulating the expression of actin and upregulating the expression of tubulins. The reduction in cell modulus may help cells to survive excessive mechanical loading that may occur in damaged or healing tendons.  相似文献   

13.
Atomic force microscopy (AFM) allows for high-resolution topography studies of biological cells and measurement of their mechanical properties in physiological conditions. In this work, AFM was employed to measure the stiffness of abnormal human red blood cells from human subjects with the genotype for sickle cell trait. The determined Young's modulus was compared with that obtained from measurements of erythrocytes from healthy subjects. The results showed that Young's modulus of pathological erythrocytes was approximately three times higher than in normal cells. Observed differences indicate the effect of the polymerization of sickle hemoglobin as well as possible changes in the organization of the cell cytoskeleton associated with the sickle cell trait.  相似文献   

14.
During recent years, atomic force microscopy has become a powerful technique for studying the mechanical properties (such as stiffness, viscoelasticity, hardness and adhesion) of various biological materials. The unique combination of high-resolution imaging and operation in physiological environment made it useful in investigations of cell properties. In this work, the microscope was applied to measure the stiffness of human red blood cells (erythrocytes). Erythrocytes were attached to the poly-L-lysine-coated glass surface by fixation using 0.5% glutaraldehyde for 1 min. Different erythrocyte samples were studied: erythrocytes from patients with hemolytic anemias such as hereditary spherocytosis and glucose-6-phosphate-dehydrogenase deficiency patients with thalassemia, and patients with anisocytosis of various causes. The determined Young's modulus was compared with that obtained from measurements of erythrocytes from healthy subjects. The results showed that the Young's modulus of pathological erythrocytes was higher than in normal cells. Observed differences indicate possible changes in the organization of cell cytoskeleton associated with various diseases.  相似文献   

15.
Scanning force microscopy was used for the determination of the elastic properties of living cells in their culture conditions. The studies were carried out on human epithelial cells. Two similar lines of normal cells (Hu609 and HCV29) and three cancerous ones (Hu456, T24, BC3726) were measured using the scanning force microscope in order to collect the force versus indentation curves. The BC3726 line originates from the HCV29 cell line which was transformed by the v-ras oncogene. To evaluate their elastic properties, Young's modulus values were determined. The present study has shown that normal cells have a Young's modulus of about one order of magnitude higher than cancerous ones. Such a change might be attributed to a difference in the organisation of cell cytoskeletons and requires further studies. Received: 30 April 1998 / Revised version: 17 December 1998 / Accepted: 21 January 1999  相似文献   

16.
17.
Bone mass is the most important determinant of the mechanical strength of bones, and spatial structure is the second. In general, the spatial structure and mechanical properties of bones such as the breaking strength are direction dependent. The mean intercept length (MIL) and line frequency deviation (LFD) are two methods for quantifying directional aspects of the spatial structure of bone. Young's modulus is commonly used to describe the stiffness of bone, which is also a direction-dependent mechanical property. The aim of this article is to investigate the relation between MIL and LFD on one hand and Young's modulus on the other. From 11 human mandibular condyles, 44 samples were taken and scanned with high-resolution computer tomography equipment (micro-CT). For each sample the MIL and LFD were determined in 72602 directions distributed evenly in 3D space. In the same directions Young's modulus was determined by means of the stiffness tensor that had been determined for each sample by finite element analysis. To investigate the relation between the MIL and LFD on one hand and Young's modulus on the other, multiple regression was used. On average the MIL accounted for 69% of the variance in Young's modulus in the 44 samples and the LFD accounted for 72%. The average percentage of variance accounted for increased to 80% when the MIL was combined with the LFD to predict Young's modulus. Obviously MIL and LFD to some extent are complementary with respect to predicting Young's modulus. It is known that directional plots of the MIL tend to be ellipses or ellipsoids. It is speculated that ellipsoids are not always sufficient to describe Young's modulus of a bone sample and that the LFD partly compensates for this.  相似文献   

18.
The compressive stiffness of an elastic material is traditionally characterized by its Young's modulus. Young's modulus of articular cartilage can be directly measured using unconfined compression geometry by assuming the cartilage to be homogeneous and isotropic. In isotropic materials, Young's modulus can also be determined acoustically by the measurement of sound speed and density of the material. In the present study, acoustic and mechanical techniques, feasible for in vivo measurements, were investigated to quantify the static and dynamic compressive stiffness of bovine articular cartilage in situ. Ultrasound reflection from the cartilage surface, as well as the dynamic modulus were determined with the recently developed ultrasound indentation instrument and compared with the reference mechanical and ultrasound speed measurements in unconfined compression (n=72). In addition, the applicability of manual creep measurements with the ultrasound indentation instrument was evaluated both experimentally and numerically. Our experimental results indicated that the sound speed could predict 47% and 53% of the variation in the Young's modulus and dynamic modulus of cartilage, respectively. The dynamic modulus, as determined manually with the ultrasound indentation instrument, showed significant linear correlations with the reference Young's modulus (r(2)=0.445, p<0.01, n=70) and dynamic modulus (r(2)=0.779, p<0.01, n=70) of the cartilage. Numerical analyses indicated that the creep measurements, conducted manually with the ultrasound indentation instrument, were sensitive to changes in Young's modulus and permeability of the tissue, and were significantly influenced by the tissue thickness. We conclude that acoustic parameters, i.e. ultrasound speed and reflection, are indicative to the intrinsic mechanical properties of the articular cartilage. Ultrasound indentation instrument, when further developed, provides an applicable tool for the in vivo detection of cartilage mechano-acoustic properties. These techniques could promote the diagnostics of osteoarthrosis.  相似文献   

19.
Mammalian auditory outer hair cells generate high-frequency mechanical forces that enhance sound-induced displacements of the basilar membrane within the inner ear. It has been proposed that the resulting cell deformation is directed along the longitudinal axis of the cell by the cortical cytoskeleton. We have tested this proposal by making direct mechanical measurements on outer hair cells. The resultant stiffness modulus along the axis of whole dissociated cells was 3 x 10(-3) N/m, consistent with previously published values. The resultant axial and circumferential stiffness moduli for the cortical lattice were 5 x 10(-4) N/m and 3 x 10(-3) N/m, respectively. Thus the cortical lattice is a highly orthotropic structure. Its axial stiffness is small compared with that of the intact cell, but its circumferential stiffness is within the same order of magnitude. These measurements support the theory that the cortical cytoskeleton directs electrically driven length changes along the longitudinal axis of the cell. The Young's modulus of the circumferential filamentous components of the lattice were calculated to be 1 x 10(7) N/m2. The axial cross-links, believed to be a form of spectrin, were calculated to have a Young's modulus of 3 x 10(6) N/m2. Based on the measured values for the lattice and intact cell cortex, an estimate for the resultant stiffness modulus of the plasma membrane was estimated to be on the order of 10(-3) N/m. Thus, the plasma membrane appears to be relatively stiff and may be the dominant contributor to the axial stiffness of the intact cell.  相似文献   

20.
Small sinusoidal vibrations at 300 HZ were applied to frog sartorius muscle to measure the dynamic stiffness (Young's modulus) throughout the course of tetanus. For a peak-to-peak amplitude of 0.4% the dynamic Young's modulus increased from 1.5 X 10(5) Nm-2 in the resting state to 2 X 10(7) Nm-2 in tetanus. After correction for the external connective tissue, the dynamic Young's modulus of the muscle was almost directly proportional to the tension throughout the development of tetanus. The ratio of dynamic Young's modulus to tensile stress thus remained constant (with a value at 300 Hz of approximately 100), consistently with Huxley and Simmon's identification of the crossbridges as the source of both tension and stiffness. For a single crossbridge the ratio of stiffness to tension was 8.2 X 10(7) m-1 at 300 Hz; it is deduced from literature data that the limiting value at high frequencies is about 1.6 X 10(8) m-1. This ratio is interpreted on Harrington's (1971) model to show that crossbridge action can be explained by a helix-coil transition of about 80 out of the 260 residues in each S-2 myosin strand. It is also shown that a helix-coil model can account for the observed rapid relaxation of muscle without invoking any complex behaviour of the crossbridge head.  相似文献   

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