Kurian Thomas, Ambrosi Christina, Hucker William, Fedorov Vadim V, Efimov Igor R
Washington University, St. Louis, Missouri 63130, USA.
Pacing Clin Electrophysiol. 2010 Jun 1;33(6):754-62. doi: 10.1111/j.1540-8159.2010.02699.x. Epub 2010 Feb 18.
The atrioventricular node (AVN) has mystified generations of investigators over the last century and continues today to be at the epicenter of debates among anatomists, experimentalists, and electrophysiologists. Over the years, discrepancies have remained in regard to correlating components of AVN structure to function, as evidenced by studies from microelectrodes, optical mapping, and the electrophysiology laboratory. Historically, the AVN has been defined by classical histological methods; however, with recent advances in molecular biology techniques, a more precise characterization of structure is becoming attainable. Distinct molecular compartments are becoming apparent based on connexin staining and genotyping, providing new insight into previously characterized functional aspects of the AVN and its surrounding structures. Advances in optical mapping have provided a unique opportunity for correlating structure and function--unmasking properties of the native AVN pacemaker and providing further insight into basic mechanisms involved in AV conduction. Additionally, procurement of explanted human hearts have provided a unique opportunity to further characterize the human AVN structurally and functionally with both molecular biology techniques and optical mapping. With the elucidation of basic elements of both structure and function via molecular investigation and optical mapping, new opportunities are becoming apparent in utilizing the unique properties of the AVN for pursuing novel clinical applications relevant to clinical electrophysiology.
在上个世纪,房室结(AVN)一直让几代研究人员感到困惑,直至今日,它仍是解剖学家、实验学家和电生理学家争论的焦点。多年来,在将房室结结构成分与功能相关联方面一直存在差异,微电极研究、光学标测以及电生理实验室的研究都证明了这一点。从历史上看,房室结是通过经典组织学方法定义的;然而,随着分子生物学技术的最新进展,对其结构进行更精确的表征变得可行。基于连接蛋白染色和基因分型,不同的分子区域正变得明显,这为房室结及其周围结构先前已表征的功能方面提供了新的见解。光学标测的进展为关联结构和功能提供了独特的机会——揭示天然房室结起搏器的特性,并进一步深入了解房室传导所涉及的基本机制。此外,获取离体人类心脏为利用分子生物学技术和光学标测从结构和功能上进一步表征人类房室结提供了独特的机会。通过分子研究和光学标测阐明了结构和功能的基本要素后,利用房室结的独特特性来开展与临床电生理学相关的新型临床应用的新机会正变得明显。