Kumar Sunil, Chaudhury Koel, Sen Prasenjit, Guha Sujoy K
School of Medical Science and Technology, Indian Institute of Technology, Kharagpur 721 302, India.
J Nanobiotechnology. 2005 Sep 27;3:9. doi: 10.1186/1477-3155-3-9.
Atomic force microscopy (AFM) has emerged as the only technique capable of real-time imaging of the surface of a living cell at nano-resolution. Since AFM provides the advantage of directly observing living biological cells in their native environment, this technique has found many applications in pharmacology, biotechnology, microbiology, structural and molecular biology, genetics and other biology-related fields. AFM has also proved to be a valuable tool for reproductive biologists. An exhaustive review on the various applications of AFM to sperm cells is presented. AFM has been extensively applied for determining the structural and topological features of spermatozoa. Unstained, unfixed spermatozoa in their natural physiological surroundings can be imaged by this technique which provides valuable information about the morphological and pathological defects in sperm cells as three-dimensional images with precise topographical details. Sperm head defects and the acrosome at the tip of the head responsible for fertilization, can be examined and correlated with the lack of functional integrity of the cell. Considerable amount of work is reported on the structural details of the highly condensed chromatin in sperm head using AFM. Detailed information on 3D topographical images of spermatozoa acquired by AFM is expected to provide a better understanding of various reproductive pathways which, in turn, can facilitate improved infertility management and/or contraceptive development.
原子力显微镜(AFM)已成为唯一能够以纳米分辨率对活细胞表面进行实时成像的技术。由于AFM具有在天然环境中直接观察活生物细胞的优势,该技术已在药理学、生物技术、微生物学、结构和分子生物学、遗传学及其他生物学相关领域得到了广泛应用。AFM也已被证明是生殖生物学家的一项重要工具。本文对AFM在精子细胞上的各种应用进行了详尽综述。AFM已被广泛用于确定精子的结构和拓扑特征。通过该技术可以对处于自然生理环境中的未染色、未固定精子进行成像,从而以具有精确地形细节的三维图像形式提供有关精子细胞形态和病理缺陷的宝贵信息。可以检查精子头部缺陷以及头部顶端负责受精的顶体,并将其与细胞功能完整性的缺失相关联。利用AFM对精子头部高度浓缩染色质的结构细节已有大量研究报道。通过AFM获得的精子三维地形图像的详细信息有望增进对各种生殖途径的理解,进而有助于改善不育症治疗和/或避孕药具的研发。