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April 3, 2026Biomechanics0 citationsOpen Access

Unconstrained Segmental Biomechanics: A Conceptual Framework for Gait Initiation and Locomotor Transitions

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AFArianna FogliataLCLorenzo CantoniAGAlessio Gambetta

Key Points

  • The study aims to propose a new framework for understanding human locomotion beyond traditional models that focus on rigid segments.
  • Conducted exploratory analysis of recent PubMed-indexed publications and educational references in sport science.
  • Examined representations of locomotion and identified models related to the proposed framework.
  • Focused on kinematic descriptions and dynamic interactions during transitional phases.
  • Kinematic representations were found to be more prevalent than models focusing on dynamic force transmission.
  • The framework suggests that gluteus maximus activation occurs before segmental displacement during gait initiation.
  • Proposes that early changes in centre of pressure and ground reaction forces precede the visible step.
  • Highlights the role of trunk activation in regulating intersegmental forces during locomotor transitions.

Abstract

Background/Objectives: Traditional biomechanical models describe human locomotion as an articulated chain of rigid segments with constrained degrees of freedom, primarily focusing on kinematic descriptions of movement. While this approach facilitates modelling and teaching, it may limit the representation of internal force transmission and dynamic interactions, particularly during transitional phases such as gait initiation. The objective of this article is to propose a conceptual framework, Unconstrained Segmental Biomechanics (USB), to reinterpret locomotor mechanics beyond rigid joint assumptions. Methods: An exploratory analysis of recent PubMed-indexed publications (2024) and commonly adopted educational references in sport science institutions was conducted to examine how locomotion is conceptually represented and to identify possible models analogous to the framework. The aim was to situate the framework within current modelling approaches rather than to provide a systematic literature evaluation. Results: The exploratory analysis provided an exploratory contextual impression that kinematic representations were more readily identifiable than conceptually analogous models explicitly addressing dynamic intersegmental force transmission. USB is presented as a conceptual framework generating testable biomechanical hypotheses concerning the temporal organisation of intersegmental force transmission during locomotor transitions, including the expectation that during gait initiation gluteus maximus activation precedes observable segmental displacement, that early CoP/GRF changes precede the visible step, and that trunk activation actively contributes to intersegmental force regulation during the transition. Conclusions: USB offers a conceptual framework that enriches the interpretation of gait initiation and locomotor transitions. Future empirical investigations will be necessary to test the biomechanical hypotheses generated by this framework and to evaluate its potential contribution to biomechanics research, education, and applied movement sciences.

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Cite This Study

Fogliata et al. (2026) studied this question.

synapsesocial.com/papers/69cf5c925a333a821460a2aahttps://doi.org/10.3390/biomechanics6020033
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