Literature DB >> 21502121

Muscle function in avian flight: achieving power and control.

Andrew A Biewener1.   

Abstract

Flapping flight places strenuous requirements on the physiological performance of an animal. Bird flight muscles, particularly at smaller body sizes, generally contract at high frequencies and do substantial work in order to produce the aerodynamic power needed to support the animal's weight in the air and to overcome drag. This is in contrast to terrestrial locomotion, which offers mechanisms for minimizing energy losses associated with body movement combined with elastic energy savings to reduce the skeletal muscles' work requirements. Muscles also produce substantial power during swimming, but this is mainly to overcome body drag rather than to support the animal's weight. Here, I review the function and architecture of key flight muscles related to how these muscles contribute to producing the power required for flapping flight, how the muscles are recruited to control wing motion and how they are used in manoeuvring. An emergent property of the primary flight muscles, consistent with their need to produce considerable work by moving the wings through large excursions during each wing stroke, is that the pectoralis and supracoracoideus muscles shorten over a large fraction of their resting fibre length (33-42%). Both muscles are activated while being lengthened or undergoing nearly isometric force development, enhancing the work they perform during subsequent shortening. Two smaller muscles, the triceps and biceps, operate over a smaller range of contractile strains (12-23%), reflecting their role in controlling wing shape through elbow flexion and extension. Remarkably, pigeons adjust their wing stroke plane mainly via changes in whole-body pitch during take-off and landing, relative to level flight, allowing their wing muscles to operate with little change in activation timing, strain magnitude and pattern.

Entities:  

Mesh:

Year:  2011        PMID: 21502121      PMCID: PMC3130450          DOI: 10.1098/rstb.2010.0353

Source DB:  PubMed          Journal:  Philos Trans R Soc Lond B Biol Sci        ISSN: 0962-8436            Impact factor:   6.237


  35 in total

1.  Neuromuscular correlates to the evolution of flapping flight in birds.

Authors:  G E Goslow; D Wilson; S O Poore
Journal:  Brain Behav Evol       Date:  2000-02       Impact factor: 1.808

2.  Muscle force-length dynamics during level versus incline locomotion: a comparison of in vivo performance of two guinea fowl ankle extensors.

Authors:  Monica A Daley; Andrew A Biewener
Journal:  J Exp Biol       Date:  2003-09       Impact factor: 3.312

3.  Dynamic pressure maps for wings and tails of pigeons in slow, flapping flight, and their energetic implications.

Authors:  James R Usherwood; Tyson L Hedrick; Craig P McGowan; Andrew A Biewener
Journal:  J Exp Biol       Date:  2005-01       Impact factor: 3.312

4.  Muscular force in running turkeys: the economy of minimizing work.

Authors:  T J Roberts; R L Marsh; P G Weyand; C R Taylor
Journal:  Science       Date:  1997-02-21       Impact factor: 47.728

5.  Regional patterns of pectoralis fascicle strain in the pigeon Columba livia during level flight.

Authors:  Arya Soman; Tyson L Hedrick; Andrew A Biewener
Journal:  J Exp Biol       Date:  2005-02       Impact factor: 3.312

6.  Kinematic, aerodynamic and anatomical mechanisms in the slow, maneuvering flight of pigeons

Authors: 
Journal:  J Exp Biol       Date:  1998-06       Impact factor: 3.312

7.  Three-dimensional kinematics of hummingbird flight.

Authors:  Bret W Tobalske; Douglas R Warrick; Christopher J Clark; Donald R Powers; Tyson L Hedrick; Gabriel A Hyder; Andrew A Biewener
Journal:  J Exp Biol       Date:  2007-07       Impact factor: 3.312

8.  Fiber type homogeneity of the flight musculature in small birds.

Authors:  Kenneth C Welch; Douglas L Altshuler
Journal:  Comp Biochem Physiol B Biochem Mol Biol       Date:  2009-01-01       Impact factor: 2.231

9.  Pectoralis muscle performance during ascending and slow level flight in mallards (Anas platyrhynchos).

Authors:  M R Williamson; K P Dial; A A Biewener
Journal:  J Exp Biol       Date:  2001-02       Impact factor: 3.312

10.  In vivo pectoralis muscle force-length behavior during level flight in pigeons (Columba livia)

Authors: 
Journal:  J Exp Biol       Date:  1998-12       Impact factor: 3.312

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  20 in total

1.  Preparing to migrate: expression of androgen signaling molecules and insulin-like growth factor-1 in skeletal muscles of Gambel's white-crowned sparrows.

Authors:  Devaleena S Pradhan; Chunqi Ma; Barney A Schlinger; Kiran K Soma; Marilyn Ramenofsky
Journal:  J Comp Physiol A Neuroethol Sens Neural Behav Physiol       Date:  2018-12-08       Impact factor: 1.836

2.  Hox Proteins Coordinate Motor Neuron Differentiation and Connectivity Programs through Ret/Gfrα Genes.

Authors:  Catarina Catela; Maggie M Shin; David H Lee; Jeh-Ping Liu; Jeremy S Dasen
Journal:  Cell Rep       Date:  2016-02-18       Impact factor: 9.423

Review 3.  Inspiration for wing design: how forelimb specialization enables active flight in modern vertebrates.

Authors:  Diana D Chin; Laura Y Matloff; Amanda Kay Stowers; Emily R Tucci; David Lentink
Journal:  J R Soc Interface       Date:  2017-06-07       Impact factor: 4.118

4.  The use of computed tomography to diagnose chronic shoulder arthritis in an American white pelican (Pelecanus erythrorhynchos).

Authors:  Michelle C Whitehead; Dennilyn L Parker
Journal:  Can Vet J       Date:  2015-03       Impact factor: 1.008

5.  Mechanics, modulation and modelling: how muscles actuate and control movement.

Authors:  Timothy E Higham; Andrew A Biewener; Scott L Delp
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2011-05-27       Impact factor: 6.237

6.  Morphological and kinematic basis of the hummingbird flight stroke: scaling of flight muscle transmission ratio.

Authors:  Tyson L Hedrick; Bret W Tobalske; Ivo G Ros; Douglas R Warrick; Andrew A Biewener
Journal:  Proc Biol Sci       Date:  2011-12-14       Impact factor: 5.349

7.  Wing-feather loss in white-feathered laying hens decreases pectoralis thickness but does not increase risk of keel bone fracture.

Authors:  Renée Garant; Bret W Tobalske; Neila Ben Sassi; Nienke van Staaveren; Tina Widowski; Donald R Powers; Alexandra Harlander-Matauschek
Journal:  R Soc Open Sci       Date:  2022-06-15       Impact factor: 3.653

8.  Interpretation of body-mounted accelerometry in flying animals and estimation of biomechanical power.

Authors:  R J Spivey; C M Bishop
Journal:  J R Soc Interface       Date:  2013-07-24       Impact factor: 4.118

9.  The damping and structural properties of dragonfly and damselfly wings during dynamic movement.

Authors:  Carina Lietz; Clemens F Schaber; Stanislav N Gorb; Hamed Rajabi
Journal:  Commun Biol       Date:  2021-06-15

10.  Identification and expression pattern analysis of miRNAs in pectoral muscle during pigeon (Columba livia) development.

Authors:  Xun Wang; Peiqi Yan; Siyuan Feng; Yi Luo; Jiyuan Liang; Ling Zhao; Haifeng Liu; Qianzi Tang; Keren Long; Long Jin; Jideng Ma; Anan Jiang; Surong Shuai; Mingzhou Li
Journal:  PeerJ       Date:  2021-06-23       Impact factor: 2.984

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