Please use this identifier to cite or link to this item: http://hdl.handle.net/10773/32918
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dc.contributor.authorNunes, João C. F.pt_PT
dc.contributor.authorCristóvão, Raquel O.pt_PT
dc.contributor.authorFreire, Mara G.pt_PT
dc.contributor.authorSantos-Ebinuma, Valéria C.pt_PT
dc.contributor.authorFaria, Joaquim L.pt_PT
dc.contributor.authorSilva, Cláudia G.pt_PT
dc.contributor.authorTavares, Ana P. M.pt_PT
dc.date.accessioned2022-01-13T13:51:15Z-
dc.date.available2022-01-13T13:51:15Z-
dc.date.issued2020-12-10-
dc.identifier.urihttp://hdl.handle.net/10773/32918-
dc.description.abstractl-asparaginase (ASNase, EC 3.5.1.1) is an aminohydrolase enzyme with important uses in the therapeutic/pharmaceutical and food industries. Its main applications are as an anticancer drug, mostly for acute lymphoblastic leukaemia (ALL) treatment, and in acrylamide reduction when starch-rich foods are cooked at temperatures above 100 °C. Its use as a biosensor for asparagine in both industries has also been reported. However, there are certain challenges associated with ASNase applications. Depending on the ASNase source, the major challenges of its pharmaceutical application are the hypersensitivity reactions that it causes in ALL patients and its short half-life and fast plasma clearance in the blood system by native proteases. In addition, ASNase is generally unstable and it is a thermolabile enzyme, which also hinders its application in the food sector. These drawbacks have been overcome by the ASNase confinement in different (nano)materials through distinct techniques, such as physical adsorption, covalent attachment and entrapment. Overall, this review describes the most recent strategies reported for ASNase confinement in numerous (nano)materials, highlighting its improved properties, especially specificity, half-life enhancement and thermal and operational stability improvement, allowing its reuse, increased proteolysis resistance and immunogenicity elimination. The most recent applications of confined ASNase in nanomaterials are reviewed for the first time, simultaneously providing prospects in the described fields of application.pt_PT
dc.language.isoengpt_PT
dc.publisherMDPIpt_PT
dc.relationUIDB/EQU/50020/2020pt_PT
dc.relationPOCI-01-0145-FEDER-031268pt_PT
dc.relationUIDB/50011/2020pt_PT
dc.relationUIDP/50011/2020pt_PT
dc.relationIF/01634/2015pt_PT
dc.relationIF/00514/2014pt_PT
dc.relation2018/06908-8pt_PT
dc.relationDL57/2016pt_PT
dc.relationSFRH/BD/150671/2020pt_PT
dc.rightsopenAccesspt_PT
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/pt_PT
dc.subjectL-asparaginasept_PT
dc.subjectConfinement strategiespt_PT
dc.subjectNanomaterialspt_PT
dc.subjectTherapeutic agentspt_PT
dc.subjectAcrylamide mitigationpt_PT
dc.subjectBiosensorspt_PT
dc.titleRecent strategies and applications for l-asparaginase confinementpt_PT
dc.typearticlept_PT
dc.description.versionpublishedpt_PT
dc.peerreviewedyespt_PT
degois.publication.issue24pt_PT
degois.publication.titleMoleculespt_PT
degois.publication.volume25pt_PT
dc.identifier.doi10.3390/molecules25245827pt_PT
dc.identifier.essn1420-3049pt_PT
dc.identifier.articlenumber5827pt_PT
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