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Hydrogel scaffolds for tissue engineering: Progress and challenges

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TLDR
An overview of the different types of hydrogels, the approaches that can be used to fabricate hydrogel matrices with specific features and the recent applications ofhydrogels in tissue engineering is provided.
Abstract
Designing of biologically active scaffolds with optimal characteristics is one of the key factors for successful tissue engineering. Recently, hydrogels have received a considerable interest as leading candidates for engineered tissue scaffolds due to their unique compositional and structural similarities to the natural extracellular matrix, in addition to their desirable framework for cellular proliferation and survival. More recently, the ability to control the shape, porosity, surface morphology, and size of hydrogel scaffolds has created new opportunities to overcome various challenges in tissue engineering such as vascularization, tissue architecture and simultaneous seeding of multiple cells. This review provides an overview of the different types of hydrogels, the approaches that can be used to fabricate hydrogel matrices with specific features and the recent applications of hydrogels in tissue engineering. Special attention was given to the various design considerations for an efficient hydrogel scaffold in tissue engineering. Also, the challenges associated with the use of hydrogel scaffolds were described.

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Citations
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Journal ArticleDOI

Is It Time to Start Transitioning From 2D to 3D Cell Culture

TL;DR: 3D cellculture has the potential to provide alternative ways to study organ behavior via the use of organoids and is expected to eventually bridge the gap between 2D cell culture and animal models.
Journal ArticleDOI

Biocompatibility of hydrogel-based scaffolds for tissue engineering applications

TL;DR: This review will aid in the improvement of design of non-invasive, smart hydrogels that can be utilized for tissue engineering and other biomedical applications and a future outlook of the field of biocompatibility within the context of hydrogel-based scaffolds is concluded.
Journal ArticleDOI

Recent advances in biomaterials for 3D scaffolds: A review.

TL;DR: A comprehensive summary of recent trends in development of single- (metal, ceramics and polymers), composite-type and cell-laden scaffolds that in addition to mechanical support, promote simultaneous tissue growth, and deliver different molecules or cells with therapeutic or facilitating regeneration effect is offered.

A Novel Fabrication Method of Macroporous Biodegradable Polymer Scaffolds Using Gas Foaming Salt as Porogen Additive

Tae Gwan Park
TL;DR: The novelty of this new method is that the PLLA paste containing ammonium bicarbonate salt particles can be easily handled and molded into any shape, allowing for fabricating a wide range of temporal tissue scaffolds requiring a specific shape and geometry.
Journal ArticleDOI

Smart Hydrogels in Tissue Engineering and Regenerative Medicine.

TL;DR: This review outlines a brief description of the properties, structure, synthesis and fabrication methods, applications, and future perspectives of smart hydrogels in tissue engineering.
References
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Journal ArticleDOI

Matrix elasticity directs stem cell lineage specification.

TL;DR: Naive mesenchymal stem cells are shown here to specify lineage and commit to phenotypes with extreme sensitivity to tissue-level elasticity, consistent with the elasticity-insensitive commitment of differentiated cell types.
Book

Textbook of Medical Physiology

TL;DR: Textbook of medical physiology , Textbook ofmedical physiology , کتابخانه دیجیتال جندی شاپور اهواز
Journal ArticleDOI

Hydrogels for biomedical applications.

TL;DR: The composition and synthesis of hydrogels, the character of their absorbed water, and permeation of solutes within their swollen matrices are reviewed to identify the most important properties relevant to their biomedical applications.
Journal ArticleDOI

Hydrogels for tissue engineering: scaffold design variables and applications.

TL;DR: Hydrogels are an appealing scaffold material because they are structurally similar to the extracellular matrix of many tissues, can often be processed under relatively mild conditions, and may be delivered in a minimally invasive manner.