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Gasvoda, K. L.

Publications and source records attributed to Gasvoda, K. L..

4 recordsLinked to original sources

4D Biomimetic Morphing Hydrogel Scaffold via Biaxial Gradient Programming

Four-dimensional (4D) materials incorporating functional gradient designs offer a powerful platform for engineering dynamic structures capable of programmed shape transformations in response to environmental stimuli. However, most gradient-based 4D systems rely on uniaxial gradients, which typically generate simple, symmetric deformations with uniform curvature, limiting their ability to recreate biomimetic architectures that require spatially coordinated morphogenesis. Here, we report a biaxial gradient-engineered 4D hydrogel system capable of programmable, non-uniform shape morphing within a single construct. A one-step photocrosslinking strategy integrates vertical light attenuation and horizontal grayscale photomask patterning to establish orthogonal crosslinking gradients along two directions, producing spatially heterogeneous swelling stresses that drive controlled multi-directional deformation. The resulting hydrogels exhibit tunable swelling and mechanical properties, enabling precise regulation of curvature distribution and shape transformation. This biaxial gradient platform generates diverse biomimetic architectures, including swan-neck, fiddlehead fern, sea star, and Euonymus europaeus-like structures. Importantly, the system supports cell-laden biofabrication, where human mesenchymal stem cell-encapsulated constructs maintain high viability and undergo chondrogenic differentiation while preserving programmed morphologies. This work establishes biaxial gradient-programmed 4D hydrogels as a robust strategy for integrating morphogenesis with tissue formation, advancing biomimetic biofabrication and morphogenetic tissue engineering.

bioengineering↗

A 4D Bio-Kirigami Strategy for Engineering Complex Tissue Curvatures

AbstractFour-dimensional (4D) systems offer a promising approach for generating sophisticated dynamic structures that mimic native tissue architectures. Among those, Kirigami strategies enable precise, localized control over morphing behaviors, yet their application in 4D tissue engineering remains unexplored. Here, we present a bio-Kirigami system that facilitates the creation of dynamic, transformable structures through spatially patterned hydrogels with distinct deformation modes dictated by encoded swelling differentials. The system consists of two biomaterial components: (1) a photocrosslinked hydrogel framework with controlled degradation and swelling behavior that drives the shape transformation and (2) a rigid support hydrogel frame. By leveraging photolithographic patterning, complex structures with continuously evolving configurations were achieved through preprogrammed deformations. Bio- Kirigami hydrogels encapsulating stem cells developed into tissue-like constructs with sophisticated configurations when cultured in tissue-specific environment. Notably, the engineered tissue constructs kept their shape integrity after excision from the outer support, demonstrating a robust platform for achieving intricate tissue curvatures.

bioengineering↗

Cell Contractile Force-Mediated Morphodynamical Tissue Engineering via 4D Printed Degradable Hydrogel Scaffolds

Tissue morphogenesis is a critical aspect tissue development. Recent advances in four-dimensional (4D) cell scaffolds have shown promise for modeling morphogenic processes. While current 4D systems often rely on external stimuli, they tend to overlook the role of intrinsic cell-generated forces, such as cell contractile forces (CCFs), in driving tissue morphogenesis. The paradox between the inherent weakness of CCFs and the robustness of tissue scaffolds presents a significant challenge in achieving effective shape transformations. In this study, we introduce an easily printable, freestanding, cell-laden hydrogel platform designed to harness CCFs for 4D shape morphing. These hydrogels initially provide mechanical support to maintain structural integrity, followed by rapid degradation that amplifies CCFs through enhanced cell-cell interactions and increased local cell density, thereby inducing tissue morphogenesis. This platform enables the formation of scaffold-free constructs with programmed shape transformations. By modulating the initial printed geometries, complex and large tissue constructs can be generated via controlled global shape transformations. Furthermore, the platform supports 4D tissue engineering by facilitating tissue differentiation coupled with dynamic shape evolution. This CCF-4D system represents a significant advancement in biomimetic tissue engineering, offering new avenues for creating dynamic tissue models that closely replicate native morphogenesis.

bioengineering↗

Cell Contractile Forces Drive Spatiotemporal Morphing in 4D Bioprinted Living Constructs

Current 4D materials typically rely on external stimuli such as heat or light to accomplish changes in shape, limiting the biocompatibility of these materials. Here, a composite bioink consisting of oxidized and methacrylated alginate (OMA), methacrylated gelatin (GelMA), and gelatin microspheres is developed to accomplish free-standing 4D bioprinting of cell-laden structures driven by an internal stimulus: cell-contractile forces (CCF). 4D changes in shape are directed by forming bilayer constructs consisting of one cell-free and one cell-laden layer. Human mesenchymal stem cells (hMSCs) are encapsulated to demonstrate the ability to simultaneously induce changes in shape and chondrogenic differentiation. Finally, the capability to pattern each layer of the printed constructs is exhibited to obtain complex geometric changes, including bending around two separate, non-parallel axes. Bioprinting of such 4D constructs mediated by CCF empowers the formation of more complex constructs, contributing to a greater degree of in vitro biomimicry of biological 4D phenomena.

bioengineering↗