Related Experiment Video
Updated: May 26, 2026

Engineering Tendon Assembloids to Probe Cellular Crosstalk in Disease and Repair
Published on: March 22, 2024
The protective model of myofascial trigger points: a testable systems-level framework based on strain-repair mismatch
Michael Strickland1, Micheal J Luera2,3, Mandy E Parra3
1College of Health and Clinical Professions, Division of Health Sciences, Tarleton State University, Stephenville, TX, United States.
None:
Myofascial trigger points (MTPs) are frequently identified in clinical practice, yet their underlying physiology remains conceptually fragmented across biochemical, mechanical, and neurophysiological domains. Commonly reported features, including spontaneous electrical activity, increased stiffness, nociceptive sensitization, hypoxia, and elevated inflammatory mediators, are well documented but are not consistently interpreted within established frameworks of tissue stress and repair biology. This paper proposes a systems-level integrative framework, the Protective Model of Myofascial Trigger Points, which conceptualizes MTPs as localized tissue responses emerging when cumulative mechanical strain exceeds local repair capacity. Within this model, increased stiffness, sustained motor endplate activity, nociceptive sensitization, and localized neuroimmune signaling are interpreted as coordinated responses to strain-repair imbalance rather than independent pathological abnormalities. Variability in clinical presentation, including atent and active classifications, is proposed to reflect differences in the magnitude and duration of mechanical overload rather than biologically distinct entities, with persistent MTPs representing indicators of unresolved load-recovery mismatch. Eight falsifiable predictions are outlined, addressing load modification, recurrence patterns, elastographic stiffness, electromyographic behavior, biochemical signatures, and temporal resolution dynamics, providing explicit criteria for empirical testing. By situating MTP-associated phenomena within established principles of tissue injury, repair, and neuromuscular stress physiology, the Protective Model offers a coherent framework to guide systematic experimental investigation of MTP formation, persistence, and resolution.
Related Concept Videos
Mismatch Repair
The Mutator Protein Family Plays a Key Role in DNA Mismatch Repair
The human genome has more than 3 billion base pairs of DNA per cell. Prior to cell division, that vast amount of genetic...
Mismatch Repair
Plastic Deformations
Plastic Behavior
Layers of Connective Tissue Proper

