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Maintenance of neural progenitor cell stemness in 3D hydrogels requires matrix remodelling

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TLDR
These findings have identified matrix remodeling, in the absence of cytoskeletal tension generation, as a previously unknown strategy to maintain stemness in 3D.
Abstract
Neural progenitor cell (NPC) culture within three-dimensional (3D) hydrogels is an attractive strategy for expanding a therapeutically relevant number of stem cells. However, relatively little is known about how 3D material properties such as stiffness and degradability affect the maintenance of NPC stemness in the absence of differentiation factors. Over a physiologically relevant range of stiffness from â 1/40.5 to 50 kPa, stemness maintenance did not correlate with initial hydrogel stiffness. In contrast, hydrogel degradation was both correlated with, and necessary for, maintenance of NPC stemness. This requirement for degradation was independent of cytoskeletal tension generation and presentation of engineered adhesive ligands, instead relying on matrix remodelling to facilitate cadherin-mediated cell-cell contact and promote ?-catenin signalling. In two additional hydrogel systems, permitting NPC-mediated matrix remodelling proved to be a generalizable strategy for stemness maintenance in 3D. Our findings have identified matrix remodelling, in the absence of cytoskeletal tension generation, as a previously unknown strategy to maintain stemness in 3D.

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Effects of extracellular matrix viscoelasticity on cellular behaviour.

TL;DR: The role of viscoelasticity of tissues and extracellular matrices in cell–matrix interactions and mechanotransduction and the potential utility of vis coelastic biomaterials in regenerative medicine are explored.
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Bioengineering strategies to accelerate stem cell therapeutics

TL;DR: Stem cells hold tremendous regenerative potential, and several exciting clinical applications are on the horizon, so bioengineering technologies are poised to overcome current bottlenecks and revolutionize the field of regenerative medicine.
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Hydrogel scaffolds for tissue engineering: the importance of polymer choice

TL;DR: This review will provide a critical overview of hydrogel design from the perspective of the polymer chemistry, highlighting both the advantages and limitations of particular polymer structures, properties, and architectures.
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Translational Applications of Hydrogels.

TL;DR: A review of the major capabilities of hydrogels, with a focus on the novel benefits of injectable hydrogel technologies, and how they relate to translational applications in medicine and the environment is presented in this paper.
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From Shape to Function: The Next Step in Bioprinting

TL;DR: The recent material and technological advances since the introduction of the biofabrication window are briefly summarized, i.e., approaches how to generate shape, to then focus the discussion on how to acquire the biological function within this context.
References
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Journal ArticleDOI

Growth Factors, Matrices, and Forces Combine and Control Stem Cells

TL;DR: Multifaceted technologies are increasingly required to produce and interrogate cells ex vivo, to build predictive models, and, ultimately, to enhance stem cell integration in vivo for therapeutic benefit.
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Alginate hydrogels as synthetic extracellular matrix materials

TL;DR: Alginate may prove to be an ideal material with which to confer specific cellular interactive properties, potentially allowing for the control of long-term gene expression of cells within these matrices.
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Stem Cells and Niches: Mechanisms That Promote Stem Cell Maintenance throughout Life

TL;DR: Niches are local tissue microenvironments that maintain and regulate stem cells that are key to the regulation of homeostasis and likely contribute to aging and tumorigenesis when altered during adulthood.
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A chemical method for fast and sensitive detection of DNA synthesis in vivo

TL;DR: The method does not require sample fixation or DNA denaturation and permits good structural preservation, and the small size of the fluorescent azides used for detection results in a high degree of specimen penetration, allowing the staining of whole-mount preparations of large tissue and organ explants.
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Hydrogels with tunable stress relaxation regulate stem cell fate and activity

TL;DR: It is found that cell spreading, proliferation, and osteogenic differentiation of mesenchymal stem cells (MSCs) are all enhanced in cells cultured in gels with faster relaxation, highlighting stress relaxation as a key characteristic of cell-ECM interactions and as an important design parameter of biomaterials for cell culture.
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