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大鼠心肌肌联蛋白独特的N2B序列中的机械驱动的轮廓长度调节:肌联蛋白是一种可调节的弹簧。

Mechanically driven contour-length adjustment in rat cardiac titin's unique N2B sequence: titin is an adjustable spring.

作者信息

Helmes M, Trombitás K, Centner T, Kellermayer M, Labeit S, Linke W A, Granzier H

机构信息

Department of Veterinary and Comparative Anatomy, Pharmacology, and Physiology, Washington State University, Pullman, WA, USA.

出版信息

Circ Res. 1999 Jun 11;84(11):1339-52. doi: 10.1161/01.res.84.11.1339.

Abstract

The giant elastic protein titin is largely responsible for passive forces in cardiac myocytes. A number of different titin isoforms with distinctly different structural elements within their central I-band region are expressed in human myocardium. Their coexpression has so far prevented an understanding of the respective contributions of the isoforms to myocardial elasticity. Using isoform-specific antibodies, we find in the present study that rat myocardium expresses predominantly the small N2B titin isoform, which allows us to characterize the elastic behavior of this isoform. The extensibility and force response of N2B titin were studied by using immunoelectron microscopy and by measuring the passive force-sarcomere length (SL) relation of single rat cardiac myocytes under a variety of mechanical conditions. Experimental results were compared with the predictions of a mechanical model in which the elastic titin segment behaves as two wormlike chains, the tandem immunoglobulin (Ig) segments and the PEVK segment (rich in proline [P], glutamate [E], valine [V], and lysine [K] residues), connected in series. The overall contour length was predicted from the sequence of N2B cardiac titin. According to mechanical measurements, above approximately 2.2 microm SL titin's elastic segment extends beyond its predicted contour length. Immunoelectron microscopy indicates that a prominent source of this contour-length gain is the extension of the unique N2B sequence (located between proximal tandem Ig segment and PEVK), and that Ig domain unfolding is negligible. Thus, the elastic region of N2B cardiac titin consists of three mechanically distinct extensible segments connected in series: the tandem Ig segment, the PEVK segment, and the unique N2B sequence. Rate-dependent and repetitive stretch-release experiments indicate that both the contour-length gain and the recovery from it involve kinetic processes, probably unfolding and refolding within the N2B segment. As a result, the contour length of titin's extensible segment depends on the rate and magnitude of the preceding mechanical perturbations. The rate of recovery from the length gain is slow, ensuring that the adjusted length is maintained through consecutive cardiac cycles and that hysteresis is minimal. Thus, as a result of the extensible properties of the unique N2B sequence, the I-band region of the N2B cardiac titin isoform functions as a molecular spring that is adjustable.

摘要

巨大的弹性蛋白肌联蛋白在很大程度上决定了心肌细胞中的被动力。在人类心肌中表达了许多不同的肌联蛋白异构体,它们在中央I带区域具有明显不同的结构元件。它们的共表达迄今阻碍了对这些异构体对心肌弹性各自贡献的理解。在本研究中,我们使用异构体特异性抗体发现大鼠心肌主要表达小的N2B肌联蛋白异构体,这使我们能够表征该异构体的弹性行为。通过免疫电子显微镜以及在各种机械条件下测量单个大鼠心肌细胞的被动力-肌节长度(SL)关系,研究了N2B肌联蛋白的伸展性和力响应。将实验结果与一个力学模型进行了比较,在该模型中,弹性肌联蛋白片段表现为两条类蠕虫链,串联免疫球蛋白(Ig)片段和富含脯氨酸(P)、谷氨酸(E)、缬氨酸(V)和赖氨酸(K)残基的PEVK片段串联连接。根据N2B心脏肌联蛋白的序列预测了总轮廓长度。根据力学测量,在SL约2.2微米以上时,肌联蛋白的弹性片段延伸超过其预测的轮廓长度。免疫电子显微镜表明,这种轮廓长度增加的一个重要来源是独特的N2B序列(位于近端串联Ig片段和PEVK之间)的延伸,并且Ig结构域的展开可以忽略不计。因此,N2B心脏肌联蛋白的弹性区域由三个串联连接的机械上不同的可伸展片段组成:串联Ig片段、PEVK片段和独特的N2B序列。速率依赖性和重复拉伸-释放实验表明,轮廓长度的增加及其恢复都涉及动力学过程,可能是N2B片段内的展开和重新折叠。结果,肌联蛋白可伸展片段的轮廓长度取决于先前机械扰动的速率和幅度。从长度增加中恢复的速率很慢,确保调整后的长度在连续的心动周期中得以维持,并且滞后最小。因此,由于独特的N2B序列的可伸展特性,N2B心脏肌联蛋白异构体的I带区域起着可调节分子弹簧的作用。

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