文献检索文档翻译深度研究
Suppr Zotero 插件Zotero 插件
邀请有礼套餐&价格历史记录

新学期,新优惠

限时优惠:9月1日-9月22日

30天高级会员仅需29元

1天体验卡首发特惠仅需5.99元

了解详情
不再提醒
插件&应用
Suppr Zotero 插件Zotero 插件浏览器插件Mac 客户端Windows 客户端微信小程序
高级版
套餐订阅购买积分包
AI 工具
文献检索文档翻译深度研究
关于我们
关于 Suppr公司介绍联系我们用户协议隐私条款
关注我们

Suppr 超能文献

核心技术专利:CN118964589B侵权必究
粤ICP备2023148730 号-1Suppr @ 2025

下肢肌肉功能受骑行时不断变化的机械需求的影响。

Lower-limb muscle function is influenced by changing mechanical demands in cycling.

机构信息

Department of Biomedical Physiology and Kinesiology, Simon Fraser University, Burnaby, BC, Canada, V5A 1S6.

School of Biomedical Sciences, University of Queensland, St Lucia, QLD 4072, Australia.

出版信息

J Exp Biol. 2021 Feb 2;224(Pt 3):jeb228221. doi: 10.1242/jeb.228221.


DOI:10.1242/jeb.228221
PMID:33376144
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7875501/
Abstract

Although cycling is a seemingly simple, reciprocal task, muscles must adapt their function to satisfy changes in mechanical demands induced by higher crank torques and faster pedalling cadences. We examined whether muscle function was sensitive to these changes in mechanical demands across a wide range of pedalling conditions. We collected experimental data of cycling where crank torque and pedalling cadence were independently varied from 13 to 44 N m and 60 to 140 rpm. These data were used in conjunction with musculoskeletal simulations and a recently developed functional index-based approach to characterise the role of human lower-limb muscles. We found that in muscles that generate most of the mechanical power and work during cycling, greater crank torque induced shifts towards greater muscle activation, greater positive muscle-tendon unit (MTU) work and a more motor-like function, particularly in the limb extensors. Conversely, with faster pedalling cadence, the same muscles exhibited a phase advance in muscle activity prior to crank top dead centre, which led to greater negative MTU power and work and shifted the muscles to contract with more spring-like behaviour. Our results illustrate the capacity for muscles to adapt their function to satisfy the mechanical demands of the task, even during highly constrained reciprocal tasks such as cycling. Understanding how muscles shift their contractile performance under varied mechanical and environmental demands may inform decisions on how to optimise pedalling performance and to design targeted cycling rehabilitation therapies for muscle-specific injuries or deficits.

摘要

虽然骑行看似是一项简单的往复运动,但肌肉必须调整其功能以满足由更高的曲柄扭矩和更快的踏频引起的机械需求变化。我们研究了肌肉功能是否对这些机械需求变化敏感,研究涵盖了广泛的骑行条件。我们收集了骑行实验数据,其中曲柄扭矩和踏频分别在 13 到 44N·m 和 60 到 140rpm 范围内独立变化。这些数据与肌肉骨骼模拟和最近开发的基于功能指数的方法一起用于描述人体下肢肌肉的作用。我们发现,在骑行过程中产生大部分机械功率和功的肌肉中,更大的曲柄扭矩会导致肌肉激活增加、正肌肌腱单元(MTU)功增加和更类似于运动的功能,特别是在肢体伸肌中。相反,随着踏频的加快,相同的肌肉在曲柄到达上止点之前出现肌肉活动的相位提前,这导致 MTU 功率和功的负值更大,并使肌肉以更类似于弹簧的行为收缩。我们的结果表明,肌肉有能力适应其功能以满足任务的机械需求,即使在高度受限的往复运动(如骑行)中也是如此。了解肌肉在不同的机械和环境需求下如何改变其收缩性能,可能有助于决定如何优化踏频性能,并设计针对特定肌肉损伤或缺陷的有针对性的骑行康复治疗。

相似文献

[1]
Lower-limb muscle function is influenced by changing mechanical demands in cycling.

J Exp Biol. 2021-2-2

[2]
Effects on the crank torque profile when changing pedalling cadence in level ground and uphill road cycling.

J Biomech. 2005-5

[3]
Torque, power and muscle activation of eccentric and concentric isokinetic cycling.

J Electromyogr Kinesiol. 2018-6

[4]
The effects of crank power and cadence on muscle fascicle shortening velocity, muscle activation and joint-specific power during cycling.

J Exp Biol. 2023-7-1

[5]
Stability of pedalling mechanics during a prolonged cycling exercise performed at different cadences.

J Sports Sci. 2005-7

[6]
Muscle-specific indices to characterise the functional behaviour of human lower-limb muscles during locomotion.

J Biomech. 2019-4-23

[7]
Muscle activation during cycling at different cadences: effect of maximal strength capacity.

J Electromyogr Kinesiol. 2007-12

[8]
During Cycling What Limits Maximum Mechanical Power Output at Cadences above 120 rpm?

Med Sci Sports Exerc. 2020-1

[9]
The effects of cycling cadence on the phases of joint power, crank power, force and force effectiveness.

J Electromyogr Kinesiol. 2009-4

[10]
Muscle coordination limits efficiency and power output of human limb movement under a wide range of mechanical demands.

J Neurophysiol. 2015-12

引用本文的文献

[1]
Finite Element Model of the Shoulder with Active Rotator Cuff Muscles: Application to Wheelchair Propulsion.

Ann Biomed Eng. 2024-5

[2]
The Effectiveness of Hard Insoles for Plantar Pressure in Cycling: A Crossover Study.

Bioengineering (Basel). 2023-7-8

本文引用的文献

[1]
Effects of a titin mutation on force enhancement and force depression in mouse soleus muscles.

J Exp Biol. 2020-1-27

[2]
Rapid predictive simulations with complex musculoskeletal models suggest that diverse healthy and pathological human gaits can emerge from similar control strategies.

J R Soc Interface. 2019-8-21

[3]
During Cycling What Limits Maximum Mechanical Power Output at Cadences above 120 rpm?

Med Sci Sports Exerc. 2020-1

[4]
Muscle-specific indices to characterise the functional behaviour of human lower-limb muscles during locomotion.

J Biomech. 2019-4-23

[5]
Metabolic cost underlies task-dependent variations in motor unit recruitment.

J R Soc Interface. 2018-11-21

[6]
Simulated work loops predict maximal human cycling power.

J Exp Biol. 2018-7-10

[7]
Size, History-Dependent, Activation and Three-Dimensional Effects on the Work and Power Produced During Cyclic Muscle Contractions.

Integr Comp Biol. 2018-8-1

[8]
Why are Antagonist Muscles Co-activated in My Simulation? A Musculoskeletal Model for Analysing Human Locomotor Tasks.

Ann Biomed Eng. 2017-12

[9]
Comparison of human gastrocnemius forces predicted by Hill-type muscle models and estimated from ultrasound images.

J Exp Biol. 2017-5-1

[10]
Effects of activation on the elastic properties of intact soleus muscles with a deletion in titin.

J Exp Biol. 2017-3-1

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

推荐工具

医学文档翻译智能文献检索