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代谢和酶机制的设计以适应生活方式和环境。

Design of metabolic and enzymic machinery to fit lifestyle and environment.

作者信息

Hochachka P W

出版信息

Biochem Soc Symp. 1976(41):3-31.

PMID:788718
Abstract

Biochemical theory, spectacular as its growth has been in the last half-century, finds its experimental basis in a remarkably few organisms. The rat, the ox, the pig, the hen plus a few micro-organisms consitute the primary source of biochemistry's experimental material, while, by contrast, modern systematics estimates a bewildering and often overlooked diversity of over 10(6) animal species. As a result of this highly limited 'sampling' of nature, classical biochemistry has supplied an equally limited insight into how far biochemical mechanisms can be extended or adapted for (1) allowing an organism's exploitation of its environment and (2) accommodating environmental change. The situation has improved in more recent years, so that it is now possible to decipher at least the broad strategic outlines of biochemical adaptation to the environment. This essay focuses particular attention on the influence of O2 availability on muscle metabolic organization and control. By drawing examples of muscle metabolism spanning a range from obligate-anaerobic to obligate-aerobic organization, it is possible to demonstrate that certain kinds of metabolic features are highly conserved, whereas others are changed time and time again, in different combinations and permutations. The latter properties constitute the 'raw material' for adapting metabolism to specific O2 regimes, and include (1) the kinds and amounts of enzymes present in muscle, (2) the fine regulatory circuitry allowing for controlled transition from low to high work loads and (3) compensation mechanisms for the adjustment of enzyme reactions with respect to such external parameters as temperature, pressure, salinity and so forth. Within the inescapable limitations of phylogenetic origins and the time available for responding to specific environmental conditions, adequate adaptations of the fundamental design of muscle metabolism have evolved to exploit environments differing greatly in O2 availability and to accommodate a wide range of muscle functions.

摘要

生物化学理论,尽管在过去半个世纪里取得了惊人的发展,但其实验基础却仅建立在极少数生物上。大鼠、牛、猪、母鸡再加上几种微生物构成了生物化学实验材料的主要来源,而相比之下,现代分类学估计动物物种的多样性超过10⁶种,令人眼花缭乱且常常被忽视。由于对自然界的这种高度有限的“抽样”,经典生物化学对于生物化学机制在多大程度上能够扩展或适应以下两点的了解同样有限:(1)使生物体能够利用其环境;(2)适应环境变化。近年来情况有所改善,现在至少可以解读生物化学适应环境的大致战略轮廓。本文特别关注氧气供应对肌肉代谢组织和控制的影响。通过列举从专性厌氧到专性需氧组织范围内的肌肉代谢实例,可以证明某些代谢特征高度保守,而其他特征则一次又一次地以不同组合和排列方式发生变化。后者的特性构成了使代谢适应特定氧气环境的“原材料”,包括:(1)肌肉中存在的酶的种类和数量;(2)允许从低工作负荷到高工作负荷进行受控转变的精细调节电路;(3)针对温度、压力、盐度等外部参数调整酶反应的补偿机制。在系统发育起源的不可避免的限制以及应对特定环境条件的可用时间范围内,肌肉代谢的基本设计已经进化出了充分的适应性,以利用氧气供应差异很大的环境并适应广泛的肌肉功能。

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