Current hydrogel advances in physicochemical and biological response-driven biomedical application diversity
Современные достижения в разработке гидрогелей для разнообразных биомедицинских применений, обусловленных физико-химическими и биологическими реакциями
2021-12-16
SCID: 54.1/sgf3w7sk
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biomedical hydrogelscellular signalingcell–hydrogel interactionsclinical translationphysicochemical properties
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Abstract (AI)
Hydrogel is a type of versatile platform with various biomedical applications after rational structure and functional design that leverages on material engineering to modulate its physicochemical properties (e.g., stiffness, pore size, viscoelasticity, microarchitecture, degradability, ligand presentation, stimulus-responsive properties, etc.) and influence cell signaling cascades and fate. In the past few decades, a plethora of pioneering studies have been implemented to explore the cell-hydrogel matrix interactions and figure out the underlying mechanisms, paving the way to the lab-to-clinic translation of hydrogel-based therapies. In this review, we first introduced the physicochemical properties of hydrogels and their fabrication approaches concisely. Subsequently, the comprehensive description and deep discussion were elucidated, wherein the influences of different hydrogels properties on cell behaviors and cellular signaling events were highlighted. These behaviors or events included integrin clustering, focal adhesion (FA) complex accumulation and activation, cytoskeleton rearrangement, protein cyto-nuclei shuttling and activation (e.g., Yes-associated protein (YAP), catenin, etc.), cellular compartment reorganization, gene expression, and further cell biology modulation (e.g., spreading, migration, proliferation, lineage commitment, etc.). Based on them, current in vitro and in vivo hydrogel applications that mainly covered diseases models, various cell delivery protocols for tissue regeneration and disease therapy, smart drug carrier, bioimaging, biosensor, and conductive wearable/implantable biodevices, etc. were further summarized and discussed. More significantly, the clinical translation potential and trials of hydrogels were presented, accompanied with which the remaining challenges and future perspectives in this field were emphasized. Collectively, the comprehensive and deep insights in this review will shed light on the design principles of new biomedical hydrogels to understand and modulate cellular processes, which are available for providing significant indications for future hydrogel design and serving for a broad range of biomedical applications.
Key Findings
1
Hydrogel engineering can tune stiffness, pore size, viscoelasticity, microarchitecture, degradability, ligand presentation, and stimulus responsiveness for biomedical applications.
2
Hydrogel physicochemical properties regulate cell signaling, including integrin clustering, focal adhesion activation, cytoskeletal rearrangement, YAP and catenin shuttling, gene expression, and compartment reorganization.
3
Hydrogels support diverse applications including disease models, cell delivery for regeneration and therapy, smart drug delivery, bioimaging, biosensing, and conductive wearable or implantable biodevices.
4
The review summarizes clinical translation potential and trials while emphasizing unresolved challenges and future directions for hydrogel-based biomedical therapies.
5
These hydrogel-mediated cellular responses influence spreading, migration, proliferation, and lineage commitment, establishing design principles for controlling cell fate.
Research Object
Biomedical hydrogels and hydrogel–cell matrix systems
Research Subject
Relationships between hydrogel physicochemical properties, cell signaling and fate, cellular behaviors, and biomedical application performance
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2021-12-16
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