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Myosin heavy chain isoform composition and stretch activation kinetics in single fibres of Xenopus laevis iliofibularis muscle

机译:非洲爪蟾纤毛肌单纤维的肌球蛋白重链同工型组成和拉伸活化动力学

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摘要

Skeletal muscle is composed of specialized fibre types that enable it to fulfil complex and variable functional needs. Muscle fibres of Xenopus laevis, a frog formerly classified as a toad, were the first to be typed based on a combination of physiological, morphological, histochemical and biochemical characteristics. Currently the most widely accepted criterion for muscle fibre typing is the myosin heavy chain (MHC) isoform composition because it is assumed that variations of this protein are the most important contributors to functional diversity. Yet this criterion has not been used for classification of Xenopus fibres due to the lack of an effective protocol for MHC isoform analysis. In the present study we aimed to resolve and visualize electrophoretically the MHC isoforms expressed in the iliofibularis muscle of Xenopus laevis, to define their functional identity and to classify the fibres based on their MHC isoform composition. Using a SDS-PAGE protocol that proved successful with mammalian muscle MHC isoforms, we were able to detect five MHC isoforms in Xenopus iliofibularis muscle. The kinetics of stretch-induced force transients (stretch activation) produced by a fibre was strongly correlated with its MHC isoform content indicating that the five MHC isoforms confer different kinetics characteristics. Hybrid fibre types containing two MHC isoforms exhibited stretch activation kinetics parameters that were intermediate between those of the corresponding pure fibre types. These results clearly show that the MHC isoforms expressed in Xenopus muscle are functionally different thereby validating the idea that MHC isoform composition is the most reliable criterion for vertebrate skeletal muscle fibre type classification. Thus, our results lay the foundation for the unequivocal classification of the muscle fibres in the Xenopus iliofibularis muscle and for gaining further insights into skeletal muscle fibre diversity.
机译:骨骼肌由特殊的纤维类型组成,可以使其满足复杂和可变的功能需求。 Xenopus laevis(一种以前被归类为蟾蜍的青蛙)的肌肉纤维是首次根据生理,形态,组织化学和生化特征进行分类的。当前,肌肉纤维分型最广泛接受的标准是肌球蛋白重链(MHC)同工型组成,因为假定该蛋白的变异是功能多样性的最重要贡献者。由于缺乏有效的MHC同工型分析方法,该标准尚未用于非洲爪蟾的分类。在本研究中,我们旨在通过电泳解析和可视化非洲爪蟾胫腓肌中表达的MHC同工型,以定义其功能特征并根据其MHC同工型成分对纤维进行分类。使用证明对哺乳动物肌肉MHC亚型成功的SDS-PAGE方案,我们能够在非洲爪蟾胫腓肌中检测到五种MHC亚型。纤维产生的拉伸诱导的力瞬变动力学(拉伸活化)与其MHC同工型含量密切相关,表明这5种MHC同工型具有不同的动力学特性。包含两种MHC同工型的杂化纤维类型显示的拉伸活化动力学参数介于相应的纯纤维类型之间。这些结果清楚地表明,非洲爪蟾肌肉中表达的MHC同工型在功能上有所不同,从而证实了MHC同工型组成是脊椎动物骨骼肌纤维类型分类的最可靠标准的想法。因此,我们的结果为非洲爪蟾胫腓肌的肌纤维的明确分类和深入了解骨骼肌纤维多样性奠定了基础。

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