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徒步运动生理学与“准等长”概念

Hiking physiology and the "quasi-isometric" concept.

作者信息

Spurway Neil C

机构信息

Institute of Biomedical and Life Sciences, University of Glasgow, Glasgow, UK.

出版信息

J Sports Sci. 2007 Aug;25(10):1081-93. doi: 10.1080/02640410601165270.

Abstract

The literature indicates that the heart rate of a planing-dinghy sailor, in winds of 4 - 5 m . s(-1), is in the range seen in aerobic athletes, yet oxygen consumption (VO(2)) is roughly half that of the same individual cycling at that heart rate. Thus, although upper-body dynamic activity is a contributing factor, the dominant physiological demand must be the "quasi-isometric" stress on the lower-body anterior muscles - especially the quadriceps, which appears to impose 40 - 50% of the total oxygen demand in a typical hiking posture. Therefore, a non-trivial part of the sailor's fitness training should involve sustained quadriceps stress. Estimates of this stress on water vary widely in the literature, but about 25 - 30% maximal voluntary contraction (MVC) tallies with endurance times recorded both in the literature and in an outline of new work reported here. Muscle blood flow is restricted under such a load, but not occluded. Laser Doppler measurements of femoral blood flow on a leg-extension ergometer found similar values during 10 - 30% MVC, much less at 40%, and marked hyperaemia on relaxation from 20% MVC or more - implying metabolic debt. Adding low-amplitude alternating leg movements while holding the same overall load stationary, and therefore increasing only internal not external work, further elevates blood flow and VO(2) both during and after exercise. Femoral-vein lactate concentration is also higher after these movements. Speculations that unusually dynamic lower-body movements by elite sailors might assist hiking endurance are not supported by these findings. Nevertheless, afloat or ashore, capillary lactate concentrations hardly ever exceed 5 mmol . l(-1), even during the post-exercise surge - challenging assumptions that the quadriceps had been profoundly anaerobic while under load. On the contrary, it appears that aerobic metabolism contributes substantially, if not completely, to energy supply. A preliminary comparison of elite sailors with aerobic athletes suggests that isometric endurance at a given percentage MVC does not differ between the two groups, but the sailors have higher MVCs. In individuals not highly strength-trained, greater electromyogram activity immediately before capitulation than in an MVC performed while fresh indicates that physiological (not just volitional) limits have been reached. It is concluded that the literature and the outline of my recent work with colleagues support the view that the predominant physiological load during single-handed dinghy sailing is quasi-isometric in form and accounts for roughly half of the metabolic demand. Any more complete account of the physiology of hiking will require simultaneous on-water measurement of electromyographic, cardiovascular, and metabolic indicators in sailors extending from club to Gold Medal standard.

摘要

文献表明,在风速为4 - 5米/秒的情况下,帆船运动员的心率处于有氧运动员的心率范围内,然而,此时的耗氧量(VO₂)大约只有同一个人以该心率骑自行车时的一半。因此,尽管上身的动态活动是一个影响因素,但主要的生理需求必定是下半身前部肌肉所承受的“准等长”压力,尤其是股四头肌,在典型的倾斜姿势中,股四头肌似乎占总氧气需求的40 - 50%。所以,水手体能训练的一个重要部分应该包括持续的股四头肌压力训练。文献中对这种水上压力的估计差异很大,但约25 - 30%的最大自主收缩(MVC)与文献记载以及本文所报告的新研究概要中记录的耐力时间相符。在这样的负荷下,肌肉血流量会受到限制,但不会被阻断。在腿部伸展测力计上对股血流量进行激光多普勒测量发现,在10 - 30%MVC期间数值相似,在40%时则低得多,而从20%MVC或更高水平放松时会出现明显的充血现象,这意味着存在代谢亏欠。在保持总负荷不变的情况下,增加低幅度的交替腿部运动,从而仅增加内部而非外部功,会在运动期间和运动后进一步提高血流量和VO₂。这些运动后股静脉乳酸浓度也会升高。关于精英水手异常动态的下半身运动可能有助于提高倾斜耐力的推测,并未得到这些研究结果的支持。尽管如此,无论是在水上还是岸上,即使在运动后的激增期,毛细血管乳酸浓度几乎从未超过5毫摩尔/升,这对股四头肌在负荷下一直处于深度无氧状态的假设提出了挑战。相反,似乎有氧代谢即使不是完全,也在很大程度上为能量供应做出了贡献。对精英水手和有氧运动员的初步比较表明,在给定百分比的MVC下,两组的等长耐力没有差异,但水手的MVC更高。在未经高强度力量训练的个体中,在即将屈服前的肌电图活动比刚进行MVC时更强,这表明已经达到了生理(不仅仅是意志)极限。得出的结论是,文献以及我最近与同事合作的研究概要都支持这样一种观点,即单人小艇航行期间的主要生理负荷在形式上是准等长的,约占代谢需求的一半。要更全面地了解倾斜的生理学,需要同时在水上测量从俱乐部级别到金牌标准的水手的肌电图、心血管和代谢指标。

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