Bazan Carlos, Barba David Torres, Blomgren Peter, Paolini Paul
Computational Science Research Center, San Diego State University, 5500 Campanile Drive, San Diego, CA 92182-1245, USA.
Int J Biomed Imaging. 2009;2009:352954. doi: 10.1155/2009/352954. Epub 2010 Feb 24.
We describe a computational framework for the comprehensive assessment of contractile responses of enzymatically dissociated adult cardiac myocytes. The proposed methodology comprises the following stages: digital video recording of the contracting cell, edge preserving total variation-based image smoothing, segmentation of the smoothed images, contour extraction from the segmented images, shape representation by Fourier descriptors, and contractility assessment. The different stages are variants of mathematically sound and computationally robust algorithms very well established in the image processing community. The physiologic application of the methodology is evaluated by assessing overall contraction in enzymatically dissociated adult rat cardiocytes. Our results demonstrate the effectiveness of the proposed approach in characterizing the true, two-dimensional, "shortening" in the contraction process of adult cardiocytes. We compare the performance of the proposed method to that of a popular edge detection system in the literature. The proposed method not only provides a more comprehensive assessment of the myocyte contraction process but also can potentially eliminate historical concerns and sources of errors caused by myocyte rotation or translation during contraction. Furthermore, the versatility of the image processing techniques makes the method suitable for determining myocyte shortening in cells that usually bend or move during contraction. The proposed method can be utilized to evaluate changes in contractile behavior resulting from drug intervention, disease modeling, transgeneity, or other common applications to mammalian cardiocytes.
我们描述了一种用于全面评估酶解成年心肌细胞收缩反应的计算框架。所提出的方法包括以下阶段:收缩细胞的数字视频记录、基于边缘保留全变差的图像平滑处理、平滑图像的分割、分割图像中的轮廓提取、用傅里叶描述符进行形状表示以及收缩性评估。不同阶段是图像处理领域中已成熟确立的数学上合理且计算稳健的算法的变体。通过评估酶解成年大鼠心肌细胞的整体收缩来评估该方法的生理学应用。我们的结果证明了所提出方法在表征成年心肌细胞收缩过程中真实的二维“缩短”方面的有效性。我们将所提出方法的性能与文献中一种流行的边缘检测系统的性能进行比较。所提出的方法不仅能对心肌细胞收缩过程进行更全面的评估,还可能消除因收缩过程中心肌细胞旋转或平移引起的历史问题和误差来源。此外,图像处理技术的通用性使该方法适用于确定通常在收缩过程中弯曲或移动的细胞中的心肌细胞缩短情况。所提出的方法可用于评估药物干预、疾病建模、转基因或其他对哺乳动物心肌细胞的常见应用导致的收缩行为变化。