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May 6, 20260 citations

Mechanically graded granular scaffolds for osteochondral tissue engineering.

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SMSabrina MierswaEWErika E. WheelerMMMonica L. Moya

Key Points

  • This research aims to develop scaffolds that mimic the mechanical properties of the osteochondral unit to enhance tissue engineering.
  • Created a photoannealed polyethylene glycol granular scaffold with stiffness gradients.
  • Tested how mesenchymal stromal cells (MSCs) respond to varying stiffness levels in the scaffold.
  • Analyzed MSC morphology, cytoskeletal structure, and gene expression based on scaffold stiffness.
  • MSCs showed varying morphology linked to the stiffness gradient, such as rounded shapes in softer areas.
  • Harsher regions enhanced cell elongation and increased markers associated with mineralization.
  • Microgel diameter influenced cellular confinement and adhesion site availability, affecting cell responses.

Abstract

Engineered scaffolds designed to approximate the mechanical microenvironment of the osteochondral unit often address this complexity using discrete, two-phase architectures that introduce mechanical discontinuities and interfacial stress concentrations rather than a contiguous stiffness transition. To address this challenge, we created a photoannealed polyethylene glycol (PEG) granular scaffold with a spatially controlled stiffness gradient within a cell-permissive, macroporous architecture. Stiffness was dictated by photoannealing microgels using a photomask. We tuned void volume and available surface area by varying microgel diameter and tested how mesenchymal stromal cells (MSCs) interpret local mechanical environments. MSCs exhibited position-dependent differences in morphology, cytoskeletal structure, matrix deposition, and lineage-specific gene expression within the gradient scaffolds. Softer regions supported rounded cell morphology and deposition of a glycosaminoglycan-rich matrix, whereas stiffer regions promoted cell elongation, increased cytoskeletal tension, and expression of mineral-associated markers. Gradients formed from smaller microgels magnified these spatial responses by increasing cellular confinement and adhesion site availability. Disruption of actomyosin contractility eliminated these regional differences, demonstrating that MSCs rely on tension-dependent mechanotransduction to interpret the gradient. These findings reveal that coupling microgel architecture with continuous stiffness transitions provides a tractable platform to study multiscale mechanobiologic regulation and spatially guide osteochondral tissue formation.

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Cite This Study

Mierswa et al. (2026) studied this question.

synapsesocial.com/papers/69faa2e204f884e66b533673https://doi.org/10.1016/j.bioadv.2026.214908
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