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1
Nature of PEVK-titin elasticity in skeletal muscle.骨骼肌中PEVK-肌联蛋白弹性的本质
Proc Natl Acad Sci U S A. 1998 Jul 7;95(14):8052-7. doi: 10.1073/pnas.95.14.8052.
2
Titin elasticity in the context of the sarcomere: force and extensibility measurements on single myofibrils.肌节背景下的肌联蛋白弹性:单个肌原纤维的力与伸展性测量
Adv Exp Med Biol. 2000;481:179-202; discussion 203-6. doi: 10.1007/978-1-4615-4267-4_11.
3
Characterizing titin's I-band Ig domain region as an entropic spring.将肌联蛋白的I带免疫球蛋白结构域区域表征为熵弹簧。
J Cell Sci. 1998 Jun;111 ( Pt 11):1567-74. doi: 10.1242/jcs.111.11.1567.
4
Towards a molecular understanding of the elasticity of titin.迈向对肌联蛋白弹性的分子理解。
J Mol Biol. 1996 Aug 9;261(1):62-71. doi: 10.1006/jmbi.1996.0441.
5
PEVK extension of human soleus muscle titin revealed by immunolabeling with the anti-titin antibody 9D10.用抗肌联蛋白抗体9D10免疫标记显示的人比目鱼肌肌联蛋白的PEVK延伸段
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6
Titin extensibility in situ: entropic elasticity of permanently folded and permanently unfolded molecular segments.肌联蛋白原位伸展性:永久折叠和永久展开分子片段的熵弹性。
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Mechanically driven contour-length adjustment in rat cardiac titin's unique N2B sequence: titin is an adjustable spring.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。
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Stretching molecular springs: elasticity of titin filaments in vertebrate striated muscle.拉伸分子弹簧:脊椎动物横纹肌中肌联蛋白丝的弹性
Histol Histopathol. 2000 Jul;15(3):799-811. doi: 10.14670/HH-15.799.
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The elasticity of single titin molecules using a two-bead optical tweezers assay.使用双珠光镊测定法测量单个肌联蛋白分子的弹性。
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J Muscle Res Cell Motil. 2002;23(5-6):483-97. doi: 10.1023/a:1023462507254.

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9
Titin activates myosin filaments in skeletal muscle by switching from an extensible spring to a mechanical rectifier.肌联蛋白通过从可伸展的弹簧变为机械整流器来激活骨骼肌中的肌球蛋白丝。
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10
Myofilament-associated proteins with intrinsic disorder (MAPIDs) and their resolution by computational modeling.肌球蛋白相关具有内在无序性的蛋白(MAPIDs)及其通过计算建模的解析。
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本文引用的文献

1
Characterizing titin's I-band Ig domain region as an entropic spring.将肌联蛋白的I带免疫球蛋白结构域区域表征为熵弹簧。
J Cell Sci. 1998 Jun;111 ( Pt 11):1567-74. doi: 10.1242/jcs.111.11.1567.
2
Titin extensibility in situ: entropic elasticity of permanently folded and permanently unfolded molecular segments.肌联蛋白原位伸展性:永久折叠和永久展开分子片段的熵弹性。
J Cell Biol. 1998 Feb 23;140(4):853-9. doi: 10.1083/jcb.140.4.853.
3
A survey of in situ sarcomere extension in mouse skeletal muscle.小鼠骨骼肌原位肌节伸展的研究
J Muscle Res Cell Motil. 1997 Aug;18(4):465-72. doi: 10.1023/a:1018650915751.
4
Basis of passive tension and stiffness in isolated rabbit myofibrils.离体兔肌原纤维被动张力和僵硬度的基础
Am J Physiol. 1997 Jul;273(1 Pt 1):C266-76. doi: 10.1152/ajpcell.1997.273.1.C266.
5
Actin-titin interaction in cardiac myofibrils: probing a physiological role.心肌肌原纤维中肌动蛋白与肌联蛋白的相互作用:探索其生理作用
Biophys J. 1997 Aug;73(2):905-19. doi: 10.1016/S0006-3495(97)78123-2.
6
Stretching single protein molecules: titin is a weird spring.拉伸单个蛋白质分子:肌联蛋白是一种奇特的弹簧。
Science. 1997 May 16;276(5315):1090-2. doi: 10.1126/science.276.5315.1090.
7
Elasticity and unfolding of single molecules of the giant muscle protein titin.巨大肌肉蛋白肌联蛋白单分子的弹性与解折叠
Nature. 1997 May 15;387(6630):308-12. doi: 10.1038/387308a0.
8
Folding-unfolding transitions in single titin molecules characterized with laser tweezers.用激光镊子表征单个肌联蛋白分子中的折叠-去折叠转变。
Science. 1997 May 16;276(5315):1112-6. doi: 10.1126/science.276.5315.1112.
9
Reversible unfolding of individual titin immunoglobulin domains by AFM.通过原子力显微镜对肌联蛋白单个免疫球蛋白结构域进行可逆解折叠
Science. 1997 May 16;276(5315):1109-12. doi: 10.1126/science.276.5315.1109.
10
Connectin/titin, giant elastic protein of muscle.连接蛋白/肌联蛋白,肌肉中的巨大弹性蛋白。
FASEB J. 1997 Apr;11(5):341-5. doi: 10.1096/fasebj.11.5.9141500.

骨骼肌中PEVK-肌联蛋白弹性的本质

Nature of PEVK-titin elasticity in skeletal muscle.

作者信息

Linke W A, Ivemeyer M, Mundel P, Stockmeier M R, Kolmerer B

机构信息

Institute of Physiology II, University of Heidelberg, Im Neuenheimer Feld 326, D-69120 Heidelberg, Germany.

出版信息

Proc Natl Acad Sci U S A. 1998 Jul 7;95(14):8052-7. doi: 10.1073/pnas.95.14.8052.

DOI:10.1073/pnas.95.14.8052
PMID:9653138
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC20927/
Abstract

A unique sequence within the giant titin molecule, the PEVK domain, has been suggested to greatly contribute to passive force development of relaxed skeletal muscle during stretch. To explore the nature of PEVK elasticity, we used titin-specific antibodies to stain both ends of the PEVK region in rat psoas myofibrils and determined the region's force-extension relation by combining immunofluorescence and immunoelectron microscopy with isolated myofibril mechanics. We then tried to fit the results with recent models of polymer elasticity. The PEVK segment elongated substantially at sarcomere lengths above 2.4 micro(m) and reached its estimated contour length at approximately 3.5 micro(m). In immunofluorescently labeled sarcomeres stretched and released repeatedly above 3 micro(m), reversible PEVK lengthening could be readily visualized. At extensions near the contour length, the average force per titin molecule was calculated to be approximately 45 pN. Attempts to fit the force-extension curve of the PEVK segment with a standard wormlike chain model of entropic elasticity were successful only for low to moderate extensions. In contrast, the experimental data also could be correctly fitted at high extensions with a modified wormlike chain model that incorporates enthalpic elasticity. Enthalpic contributions are likely to arise from electrostatic stiffening, as evidenced by the ionic-strength dependency of titin-based myofibril stiffness; at high stretch, hydrophobic effects also might become relevant. Thus, at physiological muscle lengths, the PEVK region does not function as a pure entropic spring. Rather, PEVK elasticity may have both entropic and enthalpic origins characterizable by a polymer persistence length and a stretch modulus.

摘要

巨肌联蛋白分子内的一个独特序列,即PEVK结构域,被认为对拉伸过程中松弛骨骼肌的被动力发展有很大贡献。为了探究PEVK弹性的本质,我们使用肌联蛋白特异性抗体对大鼠腰大肌肌原纤维中PEVK区域的两端进行染色,并通过将免疫荧光和免疫电子显微镜与分离的肌原纤维力学相结合来确定该区域的力-伸长关系。然后,我们尝试用最近的聚合物弹性模型来拟合结果。PEVK片段在肌节长度超过2.4微米时大幅伸长,并在约3.5微米时达到其估计的轮廓长度。在免疫荧光标记的肌节中,当在3微米以上反复拉伸和释放时,可以很容易地观察到可逆的PEVK伸长。在接近轮廓长度的伸长时,计算得出每个肌联蛋白分子的平均力约为45皮牛。试图用标准的熵弹性蠕虫状链模型来拟合PEVK片段的力-伸长曲线,仅在低到中等伸长时成功。相比之下,实验数据在高伸长时也可以用包含焓弹性的修正蠕虫状链模型正确拟合。焓的贡献可能源于静电硬化,这从基于肌联蛋白的肌原纤维刚度对离子强度的依赖性可以看出;在高拉伸时,疏水效应也可能变得重要。因此,在生理肌肉长度下,PEVK区域并非作为一个纯粹的熵弹簧起作用。相反,PEVK弹性可能具有熵和焓的双重起源,可用聚合物持久长度和拉伸模量来表征。