Macrophage-Driven Regulation of Collagen Formation in a 3D Human Tendon Mod
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Publicerad
Författare
Typ
Examensarbete för masterexamen
Master's Thesis
Master's Thesis
Program
Modellbyggare
Tidskriftstitel
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Utgivare
Sammanfattning
Tendon injuries affect millions of people annually and tendons rarely regain full
mechanical function after healing. Macrophages are key regulators of tendon healing,
shifting between pro-inflammatory (M1) and anti-inflammatory (M2) phenotypes
across the phases of healing, yet their specific effects on tenocyte behavior
and extracellular matrix formation remain unclear. This project aimed to investigate
how M1 and M2 macrophage phenotypes affect the biomechanical properties,
tenocyte phenotype and activity, and extracellular matrix formation in 3D human
tendon constructs. Primary human tenocytes isolated from the semitendinosus tendon
were embedded in a fibrin-based hydrogel, where cell-mediated contraction led
to formation of a 3D in vitro tendon construct. Macrophage–tenocyte crosstalk
was established using a Transwell-based paracrine co-culture system. The effects
of macrophage–tenocyte crosstalk on tendon constructs were evaluated using uniaxial
tensile testing, reverse transcription quantitative PCR, and hematoxylin and
eosin staining. M1-stimulated constructs exhibited significantly increased expression
of MMP-1, MMP-13, TIMP-1, and IL-6, together with decreased scleraxis expression,
indicating enhanced matrix remodeling, increased inflammatory signaling, and
an altered tenocyte phenotype. M2-stimulated constructs exhibited no significant
changes in the evaluated mechanical properties and displayed tissue organization
comparable to controls. However, significant increases in TIMP-1 and IL-6 expression
were observed, indicating altered matrix remodeling and inflammatory signaling
despite the absence of detectable mechanical effects. Histological assessment
demonstrated no significant differences in histological scores between both groups
and the control. These findings suggest that pro-inflammatory M1 macrophage signaling
negatively affects tendon construct mechanical properties and extracellular
matrix integrity, while M2 macrophage signaling exerts a more moderate influence.
These results highlights the importance of macrophage phenotype balance during
tendon healing and may contribute to future development of improved regenerative
strategies for tendon repair.
Beskrivning
Ämne/nyckelord
Tendon injury, tendinopathy, macrophages, tendon repair, 3D hydrogel model, tendon constructs, mechanical testing, gene expression, histology.
