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March 7, 2026Journal of Applied Physiology2 citations

Shaping Smooth Muscle Forces: The Role of Preconditioning in Urinary Smooth Muscle

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SKSimon KiemSPStefan PapenkortMBMischa Borsdorf

Key Points

  • This research aims to assess how different preconditioning routines affect the mechanical responses of urinary smooth muscle tissue.
  • Three preconditioning routines were compared: passive cycling (PCYC), no preconditioning (PNPC), and free contraction (PFC).
  • Tissue strips from porcine urinary bladders underwent passive stretch and isometric contractions to evaluate force responses.
  • Active and passive tensions were measured and compared across the different routines.
  • PCYC yielded the highest active tension at 44.7 ± 29.4 kPa and the highest variance.
  • PNPC exhibited the lowest variance in active tension, with a coefficient of variation of 45%.
  • PFC demonstrated the lowest variance in passive tension, with a coefficient of variation of 57%.

Abstract

Smooth muscle (SM) exhibits rapid mechanical adaptation in response to various stimuli, posing challenges for reproducible experimental results and consistent material parameter determination in biomechanical modeling. Preconditioning involving repeated loading and unloading cycles are commonly used to stabilize mechanical responses prior to testing. However, their influence on tissue properties and data variability remains underexplored. This study compares the effects of three preconditioning routines - passive cycling (PCYC), no preconditioning (PNPC), and free contraction (PFC) - on the active and passive force responses of porcine urinary bladder (UB) SM tissue. Three tissue strips from 12 UBs were randomly assigned to one of the routines and underwent an identical protocol involving a passive stretch ramp and two isometric contractions (IC1, IC2) to evaluate active and passive force development. After PCYC, the tissue generated the highest active (IC2: 44.7 ± 29.4 kPa) and passive tensions (IC2: 5.6 ± 4.3 kPa), though it also showed the highest variance in active tension. PNPC resulted in the lowest variance in active tension with a coefficient of variation (CV) of 45%, and PFC showed the lowest variance in passive tension, CV = 57%. These findings imply that the decision for a certain preconditioning protocol influences the observed mechanical properties. In this context, PFC appears promising for minimizing passive force variability and preventing creep-induced lengthening. This could offer a more reliable foundation for subsequent experiments analyzing mechanical parameters. This study underscores the importance of customized preconditioning strategies to enhance consistency and comparability in SM research and organ modeling.

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Cite This Study

Kiem et al. (2026) studied this question.

synapsesocial.com/papers/69abc2355af8044f7a4eb8dahttps://doi.org/10.1152/japplphysiol.00782.2025
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