mechanosensing

机械传感
  • 文章类型: Journal Article
    机械传感,或者细胞如何感知和响应物理环境,对生物功能的许多方面都至关重要,从发育过程中的细胞运动到癌症转移,免疫反应和基因表达驱动细胞命运的决定。相关的物理刺激包括细胞外基质的硬度,收缩力,血管中的剪切流,细胞微环境和膜蛋白迁移率的复杂形貌。尽管机械传感在非免疫细胞中得到了更广泛的研究,越来越清楚的是,物理线索深刻地影响着免疫系统细胞的信号功能。在这篇评论中,我们总结了最近关于免疫细胞机械调节的研究,特别是淋巴细胞,并探索产生力的细胞骨架机制如何介导机械传感。我们讨论了淋巴细胞功能的机械调节的一般原则,从受体激活的分子尺度到细胞对机械刺激的反应。
    Mechanosensing, or how cells sense and respond to the physical environment, is crucial for many aspects of biological function, ranging from cell movement during development to cancer metastasis, the immune response and gene expression driving cell fate determination. Relevant physical stimuli include the stiffness of the extracellular matrix, contractile forces, shear flows in blood vessels, complex topography of the cellular microenvironment and membrane protein mobility. Although mechanosensing has been more widely studied in non-immune cells, it has become increasingly clear that physical cues profoundly affect the signaling function of cells of the immune system. In this Review, we summarize recent studies on mechanical regulation of immune cells, specifically lymphocytes, and explore how the force-generating cytoskeletal machinery might mediate mechanosensing. We discuss general principles governing mechanical regulation of lymphocyte function, spanning from the molecular scale of receptor activation to cellular responses to mechanical stimuli.
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  • 文章类型: Journal Article
    Filopodia,广泛分布在细胞表面,以它们的动态扩展为特征,在无数的生物过程中起着举足轻重的作用。它们的功能从机械传感和指导到早期胚胎细胞组织过程中的细胞-细胞通讯。丝足在致病过程中具有重要作用,如癌症侵袭和病毒传播。丝状体的分子图谱揭示了丝状体功能所必需的通用成分。并行,最近对控制丝足病动力学的生物物理机制的见解为丝足病的生物学功能的更广泛研究提供了基础。我们强调最近发现丝足病在发育和发病机理的各个阶段的参与,并概述了这些细胞结构在一系列细胞活动中的复杂分子和物理特征。
    Filopodia, widely distributed on cell surfaces, are distinguished by their dynamic extensions, playing pivotal roles in a myriad of biological processes. Their functions span from mechanosensing and guidance to cell-cell communication during cellular organization in the early embryo. Filopodia have significant roles in pathogenic processes, such as cancer invasion and viral dissemination. Molecular mapping of the filopodome has revealed generic components essential for filopodia functions. In parallel, recent insights into biophysical mechanisms governing filopodia dynamics have provided the foundation for broader investigations of filopodia\'s biological functions. We highlight recent discoveries of engagement of filopodia in various stages of development and pathogenesis and present an overview of intricate molecular and physical features of these cellular structures across a spectrum of cellular activities.
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  • 文章类型: Editorial
    暂无摘要。
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  • 文章类型: Journal Article
    值得注意的是,牙齿在异常高的机械负荷下如何保持健康状况。这表明在其结构中存在固有的机械适应机制以抵抗恒定的应力。Dentin,位于搪瓷和纸浆之间,在机械支撑牙齿功能中起着至关重要的作用。其中等刚度和粘弹性,归因于它的矿化,纳米纤维细胞外基质,提供灵活性,力量,和刚性,使其能够承受机械载荷而不会破裂。此外,牙本质的独特建筑特征,如牙本质小管内的成牙本质过程和牙本质中的成牙本质细胞与牙髓中的感觉神经元之间的空间分隔,有助于外部刺激的独特感官感知,同时充当牙本质牙髓复合体的防御屏障。由于牙本质的结构控制着其在响应机械刺激的伤害感受和修复中的功能,了解牙本质机械生物学对于开发牙本质相关疾病和牙本质牙髓再生的疼痛管理治疗至关重要。这篇综述讨论了牙本质的物理特征如何调节机械感应,专注于机械敏感离子通道。此外,我们探索先进的体外平台,模仿牙本质的物理特征,提供对基本机械生物学现象的更深入的见解,并为牙本质疾病的有效机械治疗策略奠定基础。
    It is remarkable how teeth maintain their healthy condition under exceptionally high levels of mechanical loading. This suggests the presence of inherent mechanical adaptation mechanisms within their structure to counter constant stress. Dentin, situated between enamel and pulp, plays a crucial role in mechanically supporting tooth function. Its intermediate stiffness and viscoelastic properties, attributed to its mineralized, nanofibrous extracellular matrix, provide flexibility, strength, and rigidity, enabling it to withstand mechanical loading without fracturing. Moreover, dentin\'s unique architectural features, such as odontoblast processes within dentinal tubules and spatial compartmentalization between odontoblasts in dentin and sensory neurons in pulp, contribute to a distinctive sensory perception of external stimuli while acting as a defensive barrier for the dentin-pulp complex. Since dentin\'s architecture governs its functions in nociception and repair in response to mechanical stimuli, understanding dentin mechanobiology is crucial for developing treatments for pain management in dentin-associated diseases and dentin-pulp regeneration. This review discusses how dentin\'s physical features regulate mechano-sensing, focusing on mechano-sensitive ion channels. Additionally, we explore advanced in vitro platforms that mimic dentin\'s physical features, providing deeper insights into fundamental mechanobiological phenomena and laying the groundwork for effective mechano-therapeutic strategies for dentinal diseases.
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  • 文章类型: Journal Article
    头发,或毛发状纤维结构,在生物学中无处不在,来自哺乳动物身体上的毛皮,在植物的毛状体上,单细胞生物鞭毛上的mstigonemes。虽然这些细长的突起是被动的,它们是多功能的,有助于调解与环境的互动。它们提供隔热,感官信息,可逆粘附,和表面调制(例如,超疏水性)。这篇综述将介绍生物毛发已被发现执行的各种功能,头发的大小跨越六个数量级,从哺乳动物的毫米厚皮毛到蝙蝠噬菌体上的纳米厚纤维状超微结构。头发根据它们的功能进行分类,包括保护(例如,热调节和防御),运动,喂养,和感应。通过了解生物毛发的多功能功能,生物启发的解决方案可能会在长度范围内开发。
    Hair, or hair-like fibrillar structures, are ubiquitous in biology, from fur on the bodies of mammals, over trichomes of plants, to the mastigonemes on the flagella of single-celled organisms. While these long and slender protuberances are passive, they are multifunctional and help to mediate interactions with the environment. They provide thermal insulation, sensory information, reversible adhesion, and surface modulation (e.g., superhydrophobicity). This review will present various functions that biological hairs have been discovered to carry out, with the hairs spanning across six orders of magnitude in size, from the millimeter-thick fur of mammals down to the nanometer-thick fibrillar ultrastructures on bateriophages. The hairs are categorized according to their functions, including protection (e.g., thermal regulation and defense), locomotion, feeding, and sensing. By understanding the versatile functions of biological hairs, bio-inspired solutions may be developed across length scales.
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  • 文章类型: Journal Article
    目的:糖尿病和高血压是血管疾病的重要危险因素,包括动脉粥样硬化.该过程中的驱动因素是脂质在血管壁的平滑肌细胞中的积累。葡萄糖和机械敏感性转录共激活因子,心肌素相关转录因子A(MRTF-A/MKL1)可以促进培养的人平滑肌细胞中的脂质积累,并有助于平滑肌源性泡沫细胞的形成。这项研究的目的是确定完整的人血管离体是否可用于评估血管壁中的脂质积累,并且如果该过程依赖于MRTF和/或半乳糖凝集素-3/LGALS3。半乳糖凝集素-3是平滑肌转分化的早期标志物,是泡沫细胞形成和动脉粥样硬化的潜在介质。
    结果:在器官培养模型中,人类乳腺动脉和隐静脉暴露于改变的胆固醇和葡萄糖水平。脂质的积累,用油红O量化,胆固醇负荷和升高的葡萄糖浓度增加。CCG-203971对MRTF的药理学抑制减少了脂质积累,而腺病毒介导的MRTF-A过表达具有相反的作用。抑制MRTF后,胆固醇诱导的半乳糖凝集素3表达降低。重要的是,galectin-3与GB1107的药理学抑制减少了胆固醇负荷后血管壁中的脂质积累。
    结论:人动脉和静脉的离体器官培养可用于评估完整血管壁中的脂质积累,以及腺病毒转导和药理抑制。虽然MRTF和半乳糖凝集素-3可能有益,在某些情况下的抗炎作用,我们的结果,这表明脂质积累显著减少,支持进一步评估MRTF和半乳糖凝集素-3抑制剂对动脉粥样硬化性血管疾病的治疗性干预。
    OBJECTIVE: Diabetes and hypertension are important risk factors for vascular disease, including atherosclerosis. A driving factor in this process is lipid accumulation in smooth muscle cells of the vascular wall. The glucose- and mechano-sensitive transcriptional coactivator, myocardin-related transcription factor A (MRTF-A/MKL1) can promote lipid accumulation in cultured human smooth muscle cells and contribute to the formation of smooth muscle-derived foam cells. The purpose of this study was to determine if intact human blood vessels ex vivo can be used to evaluate lipid accumulation in the vascular wall, and if this process is dependent on MRTF and/or galectin-3/LGALS3. Galectin-3 is an early marker of smooth muscle transdifferentiation and a potential mediator for foam cell formation and atherosclerosis.
    RESULTS: Human mammary arteries and saphenous veins were exposed to altered cholesterol and glucose levels in an organ culture model. Accumulation of lipids, quantified by Oil Red O, was increased by cholesterol loading and elevated glucose concentrations. Pharmacological inhibition of MRTF with CCG-203971 decreased lipid accumulation, whereas adenoviral-mediated overexpression of MRTF-A had the opposite effect. Cholesterol-induced expression of galectin-3 was decreased after inhibition of MRTF. Importantly, pharmacological inhibition of galectin-3 with GB1107 reduced lipid accumulation in the vascular wall after cholesterol loading.
    CONCLUSIONS: Ex vivo organ culture of human arteries and veins can be used to evaluate lipid accumulation in the intact vascular wall, as well as adenoviral transduction and pharmacological inhibition. Although MRTF and galectin-3 may have beneficial, anti-inflammatory effects under certain circumstances, our results, which demonstrate a significant decrease in lipid accumulation, support further evaluation of MRTF- and galectin-3-inhibitors for therapeutic intervention against atherosclerotic vascular disease.
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  • 文章类型: Preprint
    细胞骨架维持细胞和组织的力量,它招致物理损伤,必须修复以保持机械稳态。LIM结构域蛋白zyxin检测肌动蛋白-肌球蛋白应力纤维中的力诱导的破裂,协调下游修复因子,通过不明确的机制恢复应力纤维完整性。这里,我们用纯化的蛋白质重建应力纤维修复,揭示酶素的力调节结合相互作用和细胞骨架动力学之间的详细联系。除了结合单个紧张的肌动蛋白丝(F-肌动蛋白),zyxin的LIM结构域形成桥断丝片段的力依赖性组装体。Zyxin组件通过多价相互作用参与修复因子,通过VASP协调新的F-肌动蛋白的成核,并通过α-actinin将其交联成对齐的束。通过这些联合活动,应力纤维修复在细胞中微米级损伤位点的核心内开始,解释这些F-肌动蛋白耗尽区域是如何迅速恢复的。因此,肌动蛋白修复机制的zyxin力依赖性组织固有地在网络尺度上运行以维持细胞骨架的完整性。
    As the cytoskeleton sustains cell and tissue forces, it incurs physical damage that must be repaired to maintain mechanical homeostasis. The LIM-domain protein zyxin detects force-induced ruptures in actin-myosin stress fibers, coordinating downstream repair factors to restore stress fiber integrity through unclear mechanisms. Here, we reconstitute stress fiber repair with purified proteins, uncovering detailed links between zyxin\'s force-regulated binding interactions and cytoskeletal dynamics. In addition to binding individual tensed actin filaments (F-actin), zyxin\'s LIM domains form force-dependent assemblies that bridge broken filament fragments. Zyxin assemblies engage repair factors through multi-valent interactions, coordinating nucleation of new F-actin by VASP and its crosslinking into aligned bundles by ɑ-actinin. Through these combined activities, stress fiber repair initiates within the cores of micron-scale damage sites in cells, explaining how these F-actin depleted regions are rapidly restored. Thus, zyxin\'s force-dependent organization of actin repair machinery inherently operates at the network scale to maintain cytoskeletal integrity.
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  • 文章类型: Journal Article
    纤维细胞外基质(ECM)对于组织再生至关重要,并影响植入的设备治疗。先前对纤维状生物材料的研究表明,细胞对表面取向的反应各不相同,通常是由于表面形貌和基材弹性之间的相互作用不清楚。我们的研究通过表面印刷策略实现了具有不同纤维形貌和不同基材模量的水凝胶的快速创建,从而解决了这一差距。细胞在纳米图案软水凝胶上表现出增强的牵引力,特别是与常规软水凝胶相比随机分布的模式。同时,在具有对齐地形的刚性水凝胶上,与随机地形相比,观察到最佳的细胞机械传感。机理研究强调,细胞力感和粘附受到图案可变形性和局灶性粘附方向相互作用的影响,随后介导干细胞分化。我们的发现强调了在设计先进的组织工程生物材料中结合基底模量和形貌以指导细胞行为的重要性。
    The fibrous extracellular matrix (ECM) is vital for tissue regeneration and impacts implanted device treatments. Previous research on fibrous biomaterials shows varying cellular reactions to surface orientation, often due to unclear interactions between surface topography and substrate elasticity. Our study addresses this gap by achieving the rapid creation of hydrogels with diverse fibrous topographies and varying substrate moduli through a surface printing strategy. Cells exhibit heightened traction force on nanopatterned soft hydrogels, particularly with randomly distributed patterns compared with regular soft hydrogels. Meanwhile, on stiff hydrogels featuring an aligned topography, optimal cellular mechanosensing is observed compared to random topography. Mechanistic investigations highlight that cellular force-sensing and adhesion are influenced by the interplay of pattern deformability and focal adhesion orientation, subsequently mediating stem cell differentiation. Our findings highlight the importance of combining substrate modulus and topography to guide cellular behavior in designing advanced tissue engineering biomaterials.
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  • 文章类型: Journal Article
    初级纤毛,由封闭在纤毛膜中的九个微管双峰组成,是一种机械传感细胞器,在外部机械负荷下弯曲,并通过纤毛弯曲激活的跨膜蛋白发送细胞内信号。九个微管双峰是主要的承重结构部件,纤毛膜上的跨膜蛋白是主要的传感成分。在所有现有模型中,这两个组件之间没有区别,从结构部件(九个微管双峰)计算的应力用于解释传感位置,这可能是完全误导。第一次,通过分别考虑这两个成分,我们开发了基于微观结构的初级纤毛模型。首先,我们改进了单个微管弯曲正交各向异性圆柱壳的解析解,并在有限元模拟与微管弯曲的理论预测之间获得了极好的一致性,以验证模型中的结构部件。第二,通过将纤毛膜与九个微管双峰整合在一起,并在我们的计算模型上模拟尖端锚定的光镊子实验,我们发现,当整个纤毛弯曲时,微管双峰可能会明显扭曲。第三,除了依赖于纤毛长度,我们发现纤毛的机械性能也高度依赖于变形。更重要的是,我们发现靠近基部的纤毛膜并不像以前认为的那样受到纯的平面内拉伸或压缩,但具有显著的局部弯曲应力。这挑战了传统的纤毛机械传感模型,表明跨膜蛋白可能比膜拉伸更多地被膜弯曲激活。最后,我们将初级纤毛的成像数据纳入我们基于微结构的纤毛模型,并发现与具有均匀微管长度的理想模型相比,成像模型显示九个微管双峰与纤毛膜更均匀地相互作用,它们的接触位置会导致纤毛膜比基部附近更高的弯曲曲率。
    A primary cilium, made of nine microtubule doublets enclosed in a cilium membrane, is a mechanosensing organelle that bends under an external mechanical load and sends an intracellular signal through transmembrane proteins activated by cilium bending. The nine microtubule doublets are the main load-bearing structural component, while the transmembrane proteins on the cilium membrane are the main sensing component. No distinction was made between these two components in all existing models, where the stress calculated from the structural component (nine microtubule doublets) was used to explain the sensing location, which may be totally misleading. For the first time, we developed a microstructure-based primary cilium model by considering these two components separately. First, we refined the analytical solution of bending an orthotropic cylindrical shell for individual microtubule, and obtained excellent agreement between finite element simulations and the theoretical predictions of a microtubule bending as a validation of the structural component in the model. Second, by integrating the cilium membrane with nine microtubule doublets and simulating the tip-anchored optical tweezer experiment on our computational model, we found that the microtubule doublets may twist significantly as the whole cilium bends. Third, besides being cilium-length-dependent, we found the mechanical properties of the cilium are also highly deformation-dependent. More important, we found that the cilium membrane near the base is not under pure in-plane tension or compression as previously thought, but has significant local bending stress. This challenges the traditional model of cilium mechanosensing, indicating that transmembrane proteins may be activated more by membrane curvature than membrane stretching. Finally, we incorporated imaging data of primary cilia into our microstructure-based cilium model, and found that comparing to the ideal model with uniform microtubule length, the imaging-informed model shows the nine microtubule doublets interact more evenly with the cilium membrane, and their contact locations can cause even higher bending curvature in the cilium membrane than near the base.
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  • 文章类型: Journal Article
    自然杀伤(NK)细胞,这是癌症免疫疗法令人兴奋的替代细胞来源,必须感知并响应他们的物理环境,以交通和消除癌细胞。在这里,我们回顾了NK细胞接受机械信号的机制,并探讨了实体瘤的物理特性对NK细胞功能影响的最新发现.数据表明,实体瘤中存在的不同机械应力促进NK细胞功能,尤其是渗透和脱粒。此外,我们回顾了可用于系统研究机械力对NK细胞活性的作用的最新工程进展。了解NK细胞解释其环境的机制提出了增强NK细胞免疫治疗以治疗实体瘤的潜在靶标。
    Natural killer (NK) cells, which are an exciting alternative cell source for cancer immunotherapies, must sense and respond to their physical environment to traffic to and eliminate cancer cells. Herein, we review the mechanisms by which NK cells receive mechanical signals and explore recent key findings regarding the impact of the physical characteristics of solid tumors on NK cell functions. Data suggest that different mechanical stresses present in solid tumors facilitate NK cell functions, especially infiltration and degranulation. Moreover, we review recent engineering advances that can be used to systemically study the role of mechanical forces on NK cell activity. Understanding the mechanisms by which NK cells interpret their environment presents potential targets to enhance NK cell immunotherapies for the treatment of solid tumors.
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