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dc.contributor.authorXi, C.R.en_AU
dc.contributor.authorDi Fazio, A.en_AU
dc.contributor.authorNadvi, N.A.en_AU
dc.contributor.authorPatel, K.en_AU
dc.contributor.authorXiang, M.S.W.en_AU
dc.contributor.authorZhang, H.E.en_AU
dc.contributor.authorDeshpande, C.en_AU
dc.contributor.authorLow, J.K.K.en_AU
dc.contributor.authorWang, X.T.en_AU
dc.contributor.authorChen, Y.en_AU
dc.contributor.authorMcMillan, C.L.D.en_AU
dc.contributor.authorIsaacs, A.en_AU
dc.contributor.authorOsborne, B.en_AU
dc.contributor.authorVieira de Ribeiro, A.J.en_AU
dc.contributor.authorMcCaughan, G.W.en_AU
dc.contributor.authorMackay, J.P.en_AU
dc.contributor.authorChurch, W.B.en_AU
dc.contributor.authorGorrell, M.D.en_AU
dc.date.accessioned2020-12-21
dc.date.available2020-12-21
dc.date.issued2020en_AU
dc.identifier.urihttps://hdl.handle.net/2123/24170
dc.description.abstractProteases catalyse irreversible posttranslational modifications that often alter a biological function of the substrate. The protease dipeptidyl peptidase 4 (DPP4) is a pharmacological target in type 2 diabetes therapy primarily because it inactivates glucagon-like protein-1. DPP4 also has roles in steatosis, insulin resistance, cancers and inflammatory and fibrotic diseases. In addition, DPP4 binds to the spike protein of the MERS virus, causing it to be the human cell surface receptor for that virus. DPP4 has been identified as a potential binding target of SARS-CoV-2 spike protein, so this question requires experimental investigation. Understanding protein structure and function requires reliable protocols for production and purification. We developed such strategies for baculovirus generated soluble recombinant human DPP4 (residues 29-766) produced in insect cells. Purification used differential ammonium sulphate precipitation, hydrophobic interaction chromatography, dye affinity chromatography in series with immobilised metal affinity chromatography, and ion-exchange chromatography. The binding affinities of DPP4 to the SARS-CoV-2 full-length spike protein and its receptor-binding domain (RBD) were measured using surface plasmon resonance and ELISA. This optimised DPP4 purification procedure yielded 1 to 1.8 mg of pure fully active soluble DPP4 protein per litre of insect cell culture with specific activity >30 U/mg, indicative of high purity. No specific binding between DPP4 and CoV-2 spike protein was detected by surface plasmon resonance or ELISA. In summary, a procedure for high purity high yield soluble human DPP4 was achieved and used to show that, unlike MERS, SARS-CoV-2 does not bind human DPP4.en_AU
dc.language.isoenen_AU
dc.subjectCOVID-19en_AU
dc.subjectCoronavirusen_AU
dc.titleA Novel Purification Procedure for Active Recombinant Human DPP4 and the Inability of DPP4 to Bind SARS-CoV-2en_AU
dc.typeArticleen_AU
dc.identifier.doi10.3390/molecules25225392


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