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DNA-based digital tension probes reveal integrin forces during early celladhesion

机译:基于DNA的数字张力探针揭示早期细胞整合素的作用力附着力

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摘要

Mechanical stimuli profoundly alter cell fate, yet the mechanisms underlying mechanotransduction remain obscure due to a lack of methods for molecular force imaging. Here, to address this need, we develop a new class of molecular tension probes that function as a switch to generate a 20–30-fold increase in fluorescence upon experiencing a threshold piconewton force. The probes employ immobilized DNA-hairpins with tunable force response thresholds, ligands, and fluorescence reporters. Quantitative imaging reveals that integrin tension is highly dynamic and increases with an increasing integrin density during adhesion formation. Mixtures of fluorophore-encoded probes show integrin mechanical preference for cyclized-RGD over linear-RGD peptides. Multiplexed probes with variable guanine-cytosine content within their hairpins reveal integrin preference for the more stable probes at the leading tip of growing adhesions near the cell edge. DNA-based tension probes are among the most sensitive optical force reporters to date, overcoming the force and spatial-resolution limitations of traction force microscopy.
机译:机械刺激极大地改变了细胞命运,但由于缺乏分子力成像方法,机械转导的基础机制仍然不清楚。在这里,为了满足这一需求,我们开发了一种新型的分子张力探针,该探针可作为开关,在经历微微微微力阈值时产生20-30倍的荧光增加。探针采用具有可调力响应阈值,配体和荧光报告基因的固定DNA发夹。定量成像显示整联蛋白张力是高度动态的,并且在粘附形成过程中随着整联蛋白密度的增加而增加。荧光团编码探针的混合物显示,与线性RGD肽相比,整联蛋白对环化RGD的机械偏好性更高。在它们的发夹内具有可变鸟嘌呤-胞嘧啶含量的多路复用探针显示,整联蛋白在细胞边缘附近不断增长的黏附的最前端处更倾向于更稳定的探针。基于DNA的张力探针是迄今为止最敏感的光学力报告器之一,克服了牵引力显微镜的作用力和空间分辨率限制。

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