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Items: 1 to 20 of 88

1.

Analysis of the musculoskeletal loading of the thumb during pipetting--a pilot study.

Wu JZ, Sinsel EW, Shroyer JF, Warren CM, Welcome DE, Zhao KD, An KN, Buczek FL.

J Biomech. 2014 Jan 22;47(2):392-9. doi: 10.1016/j.jbiomech.2013.11.015. Epub 2013 Nov 15.

2.

Thumb force and muscle loads are influenced by the design of a mechanical pipette and by pipetting tasks.

Asundi KR, Bach JM, Rempel DM.

Hum Factors. 2005 Spring;47(1):67-76.

PMID:
15960087
3.

Inverse dynamic analysis of the biomechanics of the thumb while pipetting: a case study.

Wu JZ, Sinsel EW, Gloekler DS, Wimer BM, Zhao KD, An KN, Buczek FL.

Med Eng Phys. 2012 Jul;34(6):693-701. doi: 10.1016/j.medengphy.2011.09.012. Epub 2011 Oct 19.

PMID:
22015316
4.

The musculoskeletal loading profile of the thumb during pipetting based on tendon displacement.

Wu JZ, Sinsel EW, Shroyer JF, Welcome DE, Zhao KD, An KN, Buczek FL.

Med Eng Phys. 2013 Dec;35(12):1801-10. doi: 10.1016/j.medengphy.2013.08.004. Epub 2013 Sep 6.

5.

Analysis of the Constraint Joint Loading in the Thumb During Pipetting.

Wu JZ, Sinsel EW, Zhao KD, An KN, Buczek FL.

J Biomech Eng. 2015 Aug;137(8):084501. doi: 10.1115/1.4030311. Epub 2015 Jun 9.

6.

Thumb and finger forces produced by motor units in the long flexor of the human thumb.

Yu WS, Kilbreath SL, Fitzpatrick RC, Gandevia SC.

J Physiol. 2007 Sep 15;583(Pt 3):1145-54. Epub 2007 Jul 26.

7.

A simulating analysis of the effects of increased joint stiffness on muscle loading in a thumb.

Wu JZ, Li ZM, Cutlip RG, An KN.

Biomed Eng Online. 2009 Dec 16;8:41. doi: 10.1186/1475-925X-8-41.

8.

Activation patterns of the thumb muscles during stable and unstable pinch tasks.

Johanson ME, Valero-Cuevas FJ, Hentz VR.

J Hand Surg Am. 2001 Jul;26(4):698-705.

PMID:
11466647
9.

Jar-opening challenges. Part 2: estimating the force-generating capacity of thumb muscles in healthy young adults during jar-opening tasks.

Kuo LC, Chang JH, Lin CF, Hsu HY, Ho KY, Su FC.

Proc Inst Mech Eng H. 2009 Jul;223(5):577-88.

PMID:
19623911
10.

Effect of prior experience and task stability on the intrinsic muscle activity of the thumb.

Hu MT, Su FC, Hsu AT.

Man Ther. 2014 Oct;19(5):484-9. doi: 10.1016/j.math.2014.05.003. Epub 2014 May 22.

PMID:
24913412
11.

Modeling of the muscle/tendon excursions and moment arms in the thumb using the commercial software anybody.

Wu JZ, An KN, Cutlip RG, Andrew ME, Dong RG.

J Biomech. 2009 Feb 9;42(3):383-8. doi: 10.1016/j.jbiomech.2008.11.008. Epub 2009 Jan 4.

PMID:
19124127
12.

Dynamic force-sharing in multi-digit task.

Dumont CE, Popovic MR, Keller T, Sheikh R.

Clin Biomech (Bristol, Avon). 2006 Feb;21(2):138-46. Epub 2005 Oct 12.

PMID:
16225972
13.

In-vivo function of the thumb muscles.

Kaufman KR, An KN, Litchy WJ, Cooney WP 3rd, Chao EY.

Clin Biomech (Bristol, Avon). 1999 Feb;14(2):141-50.

PMID:
10619102
14.

Common input to motor units of digit flexors during multi-digit grasping.

Winges SA, Santello M.

J Neurophysiol. 2004 Dec;92(6):3210-20. Epub 2004 Jul 7.

15.

The fundamental thumb-tip force vectors produced by the muscles of the thumb.

Pearlman JL, Roach SS, Valero-Cuevas FJ.

J Orthop Res. 2004 Mar;22(2):306-12.

16.

Motor redundancy during maximal voluntary contraction in four-finger tasks.

Li ZM, Latash ML, Newell KM, Zatsiorsky VM.

Exp Brain Res. 1998 Sep;122(1):71-8.

PMID:
9772113
17.
18.

Discharges in human muscle receptor afferents during block grasping.

Dimitriou M, Edin BB.

J Neurosci. 2008 Nov 26;28(48):12632-42. doi: 10.1523/JNEUROSCI.3357-08.2008.

19.

Finger force sharing during an adapted power grip task.

Vigouroux L, Rossi J, Foissac M, Grélot L, Berton E.

Neurosci Lett. 2011 Oct 31;504(3):290-4. doi: 10.1016/j.neulet.2011.09.050. Epub 2011 Sep 28.

PMID:
21970970
20.

Large index-fingertip forces are produced by subject-independent patterns of muscle excitation.

Valero-Cuevas FJ, Zajac FE, Burgar CG.

J Biomech. 1998 Aug;31(8):693-703.

PMID:
9796669

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