Engineering multifunctional dynamic hydrogel for biomedical and tissue regenerative applications

dc.contributor.authorYin, Bohan
dc.contributor.authorGosecka, Monika
dc.contributor.authorBodaghi, Mahdi
dc.contributor.authorCrespy, Daniel
dc.contributor.authorYoussef, George
dc.contributor.authorDodda, Jagan Mohan
dc.contributor.authorWong, Siu Hong Dexter
dc.contributor.authorImran, Abu Bin
dc.contributor.authorGosecki, Mateusz
dc.contributor.authorJobdeedamrong, Arjaree
dc.contributor.authorAfzali Naniz, Moqaddaseh
dc.contributor.authorZolfagharian, Ali
dc.date.accessioned2025-06-27T10:07:53Z
dc.date.available2025-06-27T10:07:53Z
dc.date.issued2024
dc.date.updated2025-06-27T10:07:52Z
dc.description.abstractHydrogels have emerged in various biomedical applications, including tissue engineering and medical devices, due to their ability to imitate the natural extracellular matrix (ECM) of tissues. However, conventional static hydrogels lack the ability to dynamically respond to changes in their surroundings to withstand the robust changes of the biophysical microenvironment and to trigger on-demand functionality such as drug release and mechanical change. In contrast, multifunctional dynamic hydrogels can adapt and respond to external stimuli and have drawn great attention in recent studies. It is realized that the integration of nanomaterials into dynamic hydrogels provides numerous functionalities for a great variety of biomedical applications that cannot be achieved by conventional hydrogels. This review article provides a comprehensive overview of recent advances in designing and fabricating dynamic hydrogels for biomedical applications. We describe different types of dynamic hydrogels based on breakable and reversible covalent bonds as well as noncovalent interactions. These mechanisms are described in detail as a useful reference for designing crosslinking strategies that strongly influence the mechanical properties of the hydrogels. We also discuss the use of dynamic hydrogels and their potential benefits. This review further explores different biomedical applications of dynamic nanocomposite hydrogels, including their use in drug delivery, tissue engineering, bioadhesives, wound healing, cancer treatment, and mechanistic study, as well as multiple-scale biomedical applications. Finally, we discuss the challenges and future perspectives of dynamic hydrogels in the field of biomedical engineering, including the integration of diverse technologies.en
dc.format38
dc.identifier.document-number001223394200001
dc.identifier.doi10.1016/j.cej.2024.150403
dc.identifier.issn1385-8947
dc.identifier.obd43943154
dc.identifier.orcidDodda, Jagan Mohan 0000-0001-8470-3894
dc.identifier.urihttp://hdl.handle.net/11025/61825
dc.language.isoen
dc.project.IDEH22_008/0004634
dc.relation.ispartofseriesChemical Engineering Journal
dc.rights.accessA
dc.subjectdynamic hydrogelen
dc.subjectbioadhesiveen
dc.subjectnanocompositeen
dc.subjectbiomedical applicationsen
dc.titleEngineering multifunctional dynamic hydrogel for biomedical and tissue regenerative applicationsen
dc.typeČlánek v databázi WoS (Jimp)
dc.typeČLÁNEK
dc.type.statusPublished Version
local.files.count1*
local.files.size24609906*
local.has.filesyes*
local.identifier.eid2-s2.0-85188678874

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