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Kurz, Markus
Publications (6 of 6) Show all publications
Mai, P., Robertz, L., Robbin, J., Thelen, M., Kurz, M., Trudeau, M. B., . . . Willwacher, S. (2024). An analytical framework to understand individual running-related injury risk response patterns to footwear. Proceedings of the Institution of Mechanical Engineers, Part P: Journal of Sports Engineering and Technology, 238(3), 251-263
Open this publication in new window or tab >>An analytical framework to understand individual running-related injury risk response patterns to footwear
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2024 (English)In: Proceedings of the Institution of Mechanical Engineers, Part P: Journal of Sports Engineering and Technology, ISSN 1754-3371, Vol. 238, no 3, p. 251-263Article in journal (Refereed) Published
Abstract [en]

Running footwear is continuously being modified and improved; however, running-related overuse injury rates remain high. Nevertheless, novel manufacturing processes enable the production of individualized running shoes that can fit the individual needs of runners, with the potential to reduce injury risk. For this reason, it is essential to investigate functional groups of runners, a collective of runners who respond similarly to a footwear intervention. Therefore, the objective of this study was to develop a framework to identify functional groups based on their individual footwear response regarding injury-specific running-related risk factors for Achilles tendinopathy, Tibial stress fractures, Medial tibial stress syndrome, and Patellofemoral pain syndrome. In this work, we quantified the footwear response patterns of 73 female and male participants when running in three different footwear conditions using unsupervised learning (k-means clustering). For each functional group, we identified the footwear conditions minimizing the injury-specific risk factors. We described differences in the functional groups regarding their running style, anthropometric, footwear perception, and demographics. The results implied that most functional groups showed a tendency for a single footwear condition to reduce most biomechanical risk factors for a specific overuse injury. Functional groups often differed in their hip and pelvis kinematics as well as their subjective rating of the footwear conditions. The footwear intervention only partially affected biomechanical risk factors attributed to more proximal joints. Due to its adaptive nature, the framework could be applied to other footwear interventions or performance-related biomechanical variables. 

Place, publisher, year, edition, pages
SAGE Publications, 2024
Keywords
Footwear, injury prevention, overuse injuries, running
National Category
Medical and Health Sciences Sport and Fitness Sciences Orthopaedics
Identifiers
urn:nbn:se:miun:diva-45125 (URN)10.1177/17543371221100044 (DOI)000800274100001 ()2-s2.0-85130522859 (Scopus ID)
Available from: 2022-06-07 Created: 2022-06-07 Last updated: 2025-09-25Bibliographically approved
Rice, H., Kurz, M., Mai, P., Robertz, L., Bill, K., Derrick, T. R. & Willwacher, S. (2024). Speed and surface steepness affect internal tibial loading during running. Journal of Sport and Health Science, 13(1), 118-124
Open this publication in new window or tab >>Speed and surface steepness affect internal tibial loading during running
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2024 (English)In: Journal of Sport and Health Science, ISSN 2095-2546, E-ISSN 2213-2961, Vol. 13, no 1, p. 118-124Article in journal (Refereed) Published
Abstract [en]

Background: Internal tibial loading is influenced by modifiable factors with implications for the risk of stress injury. Runners encounter varied surface steepness (gradients) when running outdoors and may adapt their speed according to the gradient. This study aimed to quantify tibial bending moments and stress at the anterior and posterior peripheries when running at different speeds on surfaces of different gradients. Methods: Twenty recreational runners ran on a treadmill at 3 different speeds (2.5 m/s, 3.0 m/s, and 3.5 m/s) and gradients (level: 0%; uphill: +5%, +10%, and +15%; downhill: –5%, –10%, and –15%). Force and marker data were collected synchronously throughout. Bending moments were estimated at the distal third centroid of the tibia about the medial–lateral axis by ensuring static equilibrium at each 1% of stance. Stress was derived from bending moments at the anterior and posterior peripheries by modeling the tibia as a hollow ellipse. Two-way repeated-measures analysis of variance were conducted using both functional and discrete statistical analyses. Results: There were significant main effects for running speed and gradient on peak bending moments and peak anterior and posterior stress. Higher running speeds resulted in greater tibial loading. Running uphill at +10% and +15% resulted in greater tibial loading than level running. Running downhill at –10% and –15% resulted in reduced tibial loading compared to level running. There was no difference between +5% or –5% and level running. Conclusion: Running at faster speeds and uphill on gradients ≥+10% increased internal tibial loading, whereas slower running and downhill running on gradients ≥–10% reduced internal loading. Adapting running speed according to the gradient could be a protective mechanism, providing runners with a strategy to minimize the risk of tibial stress injuries. 

Place, publisher, year, edition, pages
Elsevier BV, 2024
Keywords
Bending moments, Gradient, Musculoskeletal modeling, Overuse injury, Tibial stress, Training factors
National Category
Sport and Fitness Sciences
Identifiers
urn:nbn:se:miun:diva-48294 (URN)10.1016/j.jshs.2023.03.004 (DOI)001163896600001 ()36931595 (PubMedID)2-s2.0-85153874087 (Scopus ID)
Available from: 2023-05-10 Created: 2023-05-10 Last updated: 2025-09-25Bibliographically approved
Mai, P., Robertz, L., Robbin, J., Bill, K., Weir, G., Kurz, M., . . . Willwacher, S. (2023). Towards functionally individualised designed footwear recommendation for overuse injury prevention: a scoping review. BMC Sports Science, Medicine and Rehabilitation, 15(1), Article ID 152.
Open this publication in new window or tab >>Towards functionally individualised designed footwear recommendation for overuse injury prevention: a scoping review
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2023 (English)In: BMC Sports Science, Medicine and Rehabilitation, ISSN 2052-1847, Vol. 15, no 1, article id 152Article, review/survey (Refereed) Published
Abstract [en]

Injury prevention is essential in running due to the risk of overuse injury development. Tailoring running shoes to individual needs may be a promising strategy to reduce this risk. Novel manufacturing processes allow the production of individualised running shoes that incorporate features that meet individual biomechanical and experiential needs. However, specific ways to individualise footwear to reduce injury risk are poorly understood. Therefore, this scoping review provides an overview of (1) footwear design features that have the potential for individualisation; and (2) the literature on the differential responses to footwear design features between selected groups of individuals. These purposes focus exclusively on reducing the risk of overuse injuries. We included studies in the English language on adults that analysed: (1) potential interaction effects between footwear design features and subgroups of runners or covariates (e.g., age, sex) for running-related biomechanical risk factors or injury incidences; (2) footwear comfort perception for a systematically modified footwear design feature. Most of the included articles (n = 107) analysed male runners. Female runners may be more susceptible to footwear-induced changes and overuse injury development; future research should target more heterogonous sampling. Several footwear design features (e.g., midsole characteristics, upper, outsole profile) show potential for individualisation. However, the literature addressing individualised footwear solutions and the potential to reduce biomechanical risk factors is limited. Future studies should leverage more extensive data collections considering relevant covariates and subgroups while systematically modifying isolated footwear design features to inform footwear individualisation.

Place, publisher, year, edition, pages
Springer Nature, 2023
Keywords
Additive manufacturing, Customised, Injury risk factor, Running shoe
National Category
Sport and Fitness Sciences
Identifiers
urn:nbn:se:miun:diva-49901 (URN)10.1186/s13102-023-00760-x (DOI)001100496600001 ()2-s2.0-85176254752 (Scopus ID)
Available from: 2023-11-21 Created: 2023-11-21 Last updated: 2025-09-25Bibliographically approved
Willwacher, S., Kurz, M., Robbin, J., Thelen, M., Hamill, J., Kelly, L. & Mai, P. (2022). Running-Related Biomechanical Risk Factors for Overuse Injuries in Distance Runners: A Systematic Review Considering Injury Specificity and the Potentials for Future Research. Sports Medicine, 52(8), 1863-1877
Open this publication in new window or tab >>Running-Related Biomechanical Risk Factors for Overuse Injuries in Distance Runners: A Systematic Review Considering Injury Specificity and the Potentials for Future Research
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2022 (English)In: Sports Medicine, ISSN 0112-1642, E-ISSN 1179-2035, Vol. 52, no 8, p. 1863-1877Article, review/survey (Refereed) Published
Abstract [en]

Background: Running overuse injuries (ROIs) occur within a complex, partly injury-specific interplay between training loads and extrinsic and intrinsic risk factors. Biomechanical risk factors (BRFs) are related to the individual running style. While BRFs have been reviewed regarding general ROI risk, no systematic review has addressed BRFs for specific ROIs using a standardized methodology.

Objective: To identify and evaluate the evidence for the most relevant BRFs for ROIs determined during running and to suggest future research directions.

Design: Systematic review considering prospective and retrospective studies. (PROSPERO_ID: 236,832).

Data Sources: PubMed. Connected Papers. The search was performed in February 2021.

Eligibility Criteria: English language. Studies on participants whose primary sport is running addressing the risk for the seven most common ROIs and at least one kinematic, kinetic (including pressure measurements), or electromyographic BRF. A BRF needed to be identified in at least one prospective or two independent retrospective studies. BRFs needed to be determined during running.

Results: Sixty-six articles fulfilled our eligibility criteria. Levels of evidence for specific ROIs ranged from conflicting to moderate evidence. Running populations and methods applied varied considerably between studies. While some BRFs appeared for several ROIs, most BRFs were specific for a particular ROI. Most BRFs derived from lower-extremity joint kinematics and kinetics were located in the frontal and transverse planes of motion. Further, plantar pressure, vertical ground reaction force loading rate and free moment-related parameters were identified as kinetic BRFs.

Conclusion: This study offers a comprehensive overview of BRFs for the most common ROIs, which might serve as a starting point to develop ROI-specific risk profiles of individual runners. We identified limited evidence for most ROI-specific risk factors, highlighting the need for performing further high-quality studies in the future. However, consensus on data collection standards (including the quantification of workload and stress tolerance variables and the reporting of injuries) is warranted.

National Category
Sport and Fitness Sciences
Identifiers
urn:nbn:se:miun:diva-44568 (URN)10.1007/s40279-022-01666-3 (DOI)000764928300002 ()2-s2.0-85125669877 (Scopus ID)
Available from: 2022-03-07 Created: 2022-03-07 Last updated: 2025-09-25Bibliographically approved
Mai, P., Robertz, L., Robbin, J., Thelen, M., Kurz, M., Trudeau, M. B., . . . Willwacher, S. (2021). Individual response to multi-density midsoles to minimise biomechanical injury risk factors of Achilles tendinopathy in distance running. Footwear Science, 13, S49-S51
Open this publication in new window or tab >>Individual response to multi-density midsoles to minimise biomechanical injury risk factors of Achilles tendinopathy in distance running
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2021 (English)In: Footwear Science, ISSN 1942-4280, E-ISSN 1942-4299, Vol. 13, p. S49-S51Article in journal (Refereed) Published
Keywords
Achilles tendonitis, footwear, prevention, hardness, overuse injury
National Category
Sport and Fitness Sciences
Identifiers
urn:nbn:se:miun:diva-42740 (URN)10.1080/19424280.2021.1917676 (DOI)000674746800025 ()2-s2.0-85109969947 (Scopus ID)
Available from: 2021-08-09 Created: 2021-08-09 Last updated: 2025-09-25Bibliographically approved
Sundström, D., Kurz, M. & Björklund, G. (2021). Runners adapt different lower-limb movement patterns with respect to different speeds and downhill slopes. Frontiers in Sports and Active Living, 3, Article ID 682401.
Open this publication in new window or tab >>Runners adapt different lower-limb movement patterns with respect to different speeds and downhill slopes
2021 (English)In: Frontiers in Sports and Active Living, E-ISSN 2624-9367, Vol. 3, article id 682401Article in journal (Refereed) Published
Abstract [en]

The aim of this study was to investigate the influence of slope and speed on lower-limb kinematics and energy cost of running. Six well-trained runners (VO2max 72 ± 6 mL·kg−1·min−1) were recruited for the study and performed (1) VO2max and energy cost tests and (2) an experimental running protocol at two speeds, 12 km·h−1 and a speed corresponding to 80% of VO2max (V80, 15.8 ± 1.3 km·h−1) on three different slopes (0°, −5°, and −10°), totaling six 5-min workload conditions. The workload conditions were randomly ordered and performed continuously. The tests lasted 30 min in total. All testing was performed on a large treadmill (3 × 5 m) that offered control over both speed and slope. Three-dimensional kinematic data of the right lower limb were captured during the experimental running protocol using eight infrared cameras with a sampling frequency of 150 Hz. Running kinematics were calculated using a lower body model and inverse kinematics approach. The generic model contained three, one, and two degrees of freedom at the hip, knee, and ankle joints, respectively. Oxygen uptake was measured throughout the experimental protocol. Maximum hip extension and flexion during the stance phase increased due to higher speed (p < 0.01 and p < 0.01, respectively). Knee extension at the touchdown and maximal knee flexion in the stance phase both increased on steeper downhill slopes (both p < 0.05). Ground contact time (GCT) decreased as the speed increased (p < 0.01) but was unaffected by slope (p = 0.73). Runners modified their hip movement pattern in the sagittal plane in response to changes in speed, whereas they altered their knee movement pattern during the touchdown and stance phases in response to changes in slope. While energy cost of running was unaffected by speed alone (p = 0.379), a shift in energy cost was observed for different speeds as the downhill gradient increased (p < 0.001). Energy cost was lower at V80 than 12 km·h−1 on a −5° slope but worse on a −10° slope. This indicates that higher speeds are more efficient on moderate downhill slopes (−5°), while lower speeds are more efficient on steeper downhill slopes (−10°).

National Category
Sport and Fitness Sciences
Identifiers
urn:nbn:se:miun:diva-42136 (URN)10.3389/fspor.2021.682401 (DOI)000674299300001 ()2-s2.0-85124507377 (Scopus ID)
Available from: 2021-06-04 Created: 2021-06-04 Last updated: 2025-09-25
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