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Lauret, L.

Publications and source records attributed to Lauret, L..

2 recordsLinked to original sources

A passive upper-limb exoskeleton effectively reduces shoulder muscle activity over a large shoulder workspace

Industrial upper-limb exoskeletons are used to offload the upper limb during overhead tasks with the aim of preventing musculoskeletal disorders to the shoulder. Although numerous studies showed reduced shoulder muscle activity during upper-limb exoskeleton use for overhead postures, it remains unknown whether and how upper-limb exoskeletons provide support over a large shoulder workspace beyond overhead work. Therefore, this study evaluated the Ottobock Paexo Shoulder over a large shoulder workspace from overhead to hip height with shoulder abduction and adduction. Upper body kinematics, muscle activity, and subjective user feedback were obtained by three-dimensional motion capture, bipolar surface EMG and questionnaires, respectively, and captured while participants performed static and dynamic work tasks with an electric screwdriver. Participants completed these tasks while 1) not wearing the exoskeleton, 2) wearing a disengaged exoskeleton, with 3) moderate exoskeleton support, and with 4) high exoskeleton support. Exoskeleton support reduced deltoid muscle activity (-9 to -24s%, p[≤].001) in postures with an abducted shoulder or extended elbow, including non-overhead postures. Exoskeleton support modestly decreased shoulder flexion (-3 to -5{degrees}, p[≤].001) and increased shoulder abduction (2 to 5{degrees}, p[≤].032), but the movement patterns during the dynamic task were unaffected. Additionally, exoskeleton-related effects increased with increasing support, but the subjective perception of change also increased, and perceived comfort decreased. Our results indicate that the tested exoskeleton provides support beyond overhead work and that there is a trade-off between exoskeleton support and subjective perception. Accordingly, further optimization of user-exoskeleton interaction is warranted for long-term prevention of musculoskeletal disorders in overhead workers.

physiology↗

Residual force depression is not related to positive muscle fascicle work during submaximal voluntary dorsiflexion contractions in humans

Residual force depression (rFD) following active muscle shortening is commonly assumed to strongly and linearly increase with increasing muscle work, but this has not been systematically tested during voluntary contractions in humans. Using dynamometry, we compared steady-state ankle joint torques (N=16) following tibialis anterior (TA) muscle-tendon unit (MTU) lengthening and shortening to the torque during submaximal voluntary fixed-end dorsiflexion reference contractions (REF) at a matched MTU length and EMG amplitude. B-mode ultrasound revealed that TA fascicle shortening amplitudes were significantly reduced (p<0.001) during MTU lengthening with no preload over small (LENsmall) and medium (LENmedium) amplitudes, respectively, relative to REF. MTU lengthening with a preload over a large (LENlargeP) amplitude significantly (p<0.001) increased fascicle shortening relative to REF, as well as stretch amplitudes relative to LENsmall and LENmedium (p[&le;]0.001), but the significant (p[&le;]0.028) steady-state fascicle force enhancement relative to REF was similar to LENsmall and LENmedium (3-5%). MTU shortening with and without a preload over small (SHOsmallP/SHOsmall) and large (SHOlargeP/SHOlarge) amplitudes significantly (p<0.001) increased positive fascicle and MTU work relative to REF, but significant (p[&le;]0.006) rFD was observed in SHOsmallP and SHOlargeP (7-10%) only. rFD was linearly related to positive MTU work (rrm(47)=0.48, p<0.001), but not positive fascicle work (rrm(47)=0.16, p=0.277). Our findings indicate that MTU lengthening without substantial fascicle stretch enhances steady-state force output, which might be due to less shortening-induced rFD. Our findings also indicate that different amounts of positive fascicle and MTU work induce similar rFD, which cautions against using work to predict rFD during submaximal voluntary contractions.

physiology↗