首页> 美国卫生研究院文献>Biophysical Journal >Quantitative analysis of three-dimensional-resolved fiber architecture in heterogeneous skeletal muscle tissue using nmr and optical imaging methods.
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Quantitative analysis of three-dimensional-resolved fiber architecture in heterogeneous skeletal muscle tissue using nmr and optical imaging methods.

机译:使用nmr和光学成像方法定量分析异质骨骼肌组织中的三维分辨纤维结构。

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摘要

The determination of principal fiber directions in structurally heterogeneous biological tissue substantially contributes to an understanding of its mechanical function in vivo. In this study we have depicted structural heterogeneity through the model of the mammalian tongue, a tissue comprised of a network of highly interwoven fibers responsible for producing numerous variations of shape and position. In order to characterize the three-dimensional-resolved microscopic myoarchitecture of the intrinsic musculature of the tongue, we viewed its fiber orientation at microscopic and macroscopic length scales using NMR (diffusion tensor MRI) and optical (two-photon microscopy) imaging methods. Diffusion tensor imaging (DTI) of the excised core region of the porcine tongue resulted in an array of 3D diffusion tensors, in which the leading eigenvector corresponded to the principal fiber orientation at each location in the tissue. Excised axially oriented lingual core tissues (fresh or paraffin-embedded) were also imaged with a mode-locked Ti-Sapphire laser, (76 MHz repetition rate, 150 femtosecond pulse width), allowing for the visualization of individual myofibers at in situ orientation. Fiber orientation was assessed by computing the 3D autocorrelation of discrete image volumes, and deriving the minimal eigenvector of the center voxel Hessian matrix. DTI of the fibers, comprising the intrinsic core of the tongue, demonstrated directional heterogeneity, with two distinct populations of fibers oriented orthogonal to each other and in-plane to the axial perspective. Microscopic analysis defined this structural heterogeneity as discrete regions of in-plane parallel fibers, with an angular separation of ~80 degrees, thereby recapitulating the macroscopic angular relationship. This analysis, conceived at two different length scales, demonstrates that the lingual core is a spatially complex tissue, composed of repeating orthogonally oriented and in-plane fiber patches, which are capable of jointly producing hydrostatic elongation and displacement.
机译:在结构上异质的生物组织中主要纤维方向的确定实质上有助于对其在体内的机械功能的理解。在这项研究中,我们通过哺乳动物的舌头模型描述了结构的异质性,这种舌头是由高度交织的纤维网络组成的组织,负责产生多种形状和位置变化。为了表征舌头固有肌肉组织的三维分辨微观肌结构,我们使用NMR(扩散张量MRI)和光学(双光子显微镜)成像方法在微观和宏观尺度上观察了其纤维取向。猪舌的切除核心区域的扩散张量成像(DTI)产生了3D扩散张量阵列,其中前导特征向量对应于组织中每个位置的主要纤维方向。还使用锁模钛蓝宝石激光(76 MHz重复频率,150飞秒脉冲宽度)对轴向切除的舌侧舌骨核心组织(新鲜或石蜡包埋)成像,从而可以在原位定向下观察单个肌纤维。通过计算离散图像体积的3D自相关并导出中心体素Hessian矩阵的最小特征向量来评估纤维取向。纤维的DTI(包括舌头的内在核心)表现出方向异质性,其中两个截然不同的纤维族相互正交,并且与轴向透视平面相同。微观分析将这种结构异质性定义为面内平行纤维的离散区域,其角度间隔约为80度,从而概括了宏观角度关系。以两种不同的长度尺度构想的这一分析表明,舌核是一个空间复杂的组织,由重复的正交取向和面内纤维斑块组成,它们能够共同产生静液压伸长和位移。

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