Literature DB >> 16585384

In vitro biophysical strain model for understanding mechanisms of osteopathic manipulative treatment.

John G Dodd1, Meadow Maze Good, Tammy L Nguyen, Andersen I Grigg, Lyn M Batia, Paul R Standley.   

Abstract

CONTEXT: Normal physiologic movement, pathologic conditions, and osteopathic manipulative treatment (OMT) are believed to produce effects on the shape and proliferation of human fibroblasts. Studies of biophysically strained fibroblasts would be useful in producing a model of the cellular mechanisms underlying OMT.
OBJECTIVE: To investigate the effects of acyclic in vitro biophysical strain on normal human dermal fibroblasts and observe potential changes in cellular shape and proliferation, as well as potential changes in cellular production of nitric oxide, interleukin (IL) 1beta, and IL-6. DESIGN AND METHODS: Randomized controlled trial. Human fibroblasts were subjected in vitro to control conditions (no strain) or biophysical strain of various magnitudes (10%-30% beyond resting length) and durations (12-72 hours). After control or strain stimuli, fibroblasts were analyzed for potential changes in cell shape, proliferative capacity, nitric oxide secretion, and cytokine (IL-1beta, IL-6) secretion.
RESULTS: Low strain magnitudes (<20%) induced mild cellular rounding and pseudopodia truncation. High strain magnitudes (>20%) decreased overall cell viability and the mitogenic response, and induced cell membrane decomposition and pseudopodia loss. No basal or strain-induced secretion of IL-1beta was observed. Interleukin 6 concentrations increased two-fold, while nitric oxide levels increased three-fold, in cells strained at 10% magnitude for 72 hours (P<.05).
CONCLUSION: Human fibroblasts respond to in vitro strain by secreting inflammatory cytokines, undergoing hyperplasia, and altering cell shape and alignment. The in vitro biophysical strain model developed by the authors is useful for simulating a variety of injuries, determining in vivo mediators of somatic dysfunction, and investigating the underlying mechanisms of OMT.

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Year:  2006        PMID: 16585384

Source DB:  PubMed          Journal:  J Am Osteopath Assoc        ISSN: 0098-6151


  7 in total

1.  The Effects of Oscillatory Biofield Therapy on Pain and Functional Limitations Associated with Carpal Tunnel Syndrome: Randomized, Placebo-Controlled, Double-Blind Study.

Authors:  Mohammad Reza Nourbakhsh; Thomas J Bell; Jason Benson Martin; Amir Massoud Arab
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2.  In vitro modeling of repetitive motion injury and myofascial release.

Authors:  Kate R Meltzer; Thanh V Cao; Joseph F Schad; Hollis King; Scott T Stoll; Paul R Standley
Journal:  J Bodyw Mov Ther       Date:  2010-01-29

3.  Mechanical strain applied to human fibroblasts differentially regulates skeletal myoblast differentiation.

Authors:  Michael R Hicks; Thanh V Cao; David H Campbell; Paul R Standley
Journal:  J Appl Physiol (1985)       Date:  2012-06-07

Review 4.  Tissutal and Fluidic Aspects in Osteopathic Manual Therapy: A Narrative Review.

Authors:  Marco Verzella; Erika Affede; Luca Di Pietrantonio; Vincenzo Cozzolino; Luca Cicchitti
Journal:  Healthcare (Basel)       Date:  2022-05-31

5.  A pilot study of myofascial release therapy compared to Swedish massage in fibromyalgia.

Authors:  Ginevra Liptan; Scott Mist; Cheryl Wright; Anna Arzt; Kim Dupree Jones
Journal:  J Bodyw Mov Ther       Date:  2013-01-03

6.  Cyclic strain upregulates VEGF and attenuates proliferation of vascular smooth muscle cells.

Authors:  Joseph F Schad; Kate R Meltzer; Michael R Hicks; David S Beutler; Thanh V Cao; Paul R Standley
Journal:  Vasc Cell       Date:  2011-09-19

7.  Mechanical stimulation of human dermal fibroblasts regulates pro-inflammatory cytokines: potential insight into soft tissue manual therapies.

Authors:  Aric Anloague; Aaron Mahoney; Oladipupo Ogunbekun; Taylor A Hiland; William R Thompson; Bryan Larsen; M Terry Loghmani; Julia M Hum; Jonathan W Lowery
Journal:  BMC Res Notes       Date:  2020-08-27
  7 in total

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