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Thermal resilience of ensilicated lysozyme via calorimetric and in vivo analysis.
Doekhie, A; Slade, M N; Cliff, L; Weaver, L; Castaing, R; Paulin, J; Chen, Y-C; Edler, K J; Koumanov, F; Marchbank, K J; van den Elsen, J M H; Sartbaeva, A.
Affiliation
  • Doekhie A; Department of Chemistry, University of Bath Claverton Down Bath BA2 7AY UK a.doekhie@bath.ac.uk.
  • Slade MN; Department of Chemistry, University of Bath Claverton Down Bath BA2 7AY UK a.doekhie@bath.ac.uk.
  • Cliff L; Department of Chemistry, University of Bath Claverton Down Bath BA2 7AY UK a.doekhie@bath.ac.uk.
  • Weaver L; Department of Chemistry, University of Bath Claverton Down Bath BA2 7AY UK a.doekhie@bath.ac.uk.
  • Castaing R; Material and Chemical Characterisation Facility, University of Bath Claverton Down Bath BA2 7AY UK.
  • Paulin J; The Medical School, Framlington Place, Newcastle University Newcastle upon Tyne NE2 4HH UK.
  • Chen YC; Department of Chemistry, University of Bath Claverton Down Bath BA2 7AY UK a.doekhie@bath.ac.uk.
  • Edler KJ; Department of Chemistry, University of Bath Claverton Down Bath BA2 7AY UK a.doekhie@bath.ac.uk.
  • Koumanov F; Department for Health, University of Bath Claverton Down Bath BA2 7AY UK.
  • Marchbank KJ; The Medical School, Framlington Place, Newcastle University Newcastle upon Tyne NE2 4HH UK.
  • van den Elsen JMH; Department of Biology and Biochemistry, University of Bath Claverton Down Bath BA2 7AY UK.
  • Sartbaeva A; Department of Chemistry, University of Bath Claverton Down Bath BA2 7AY UK a.doekhie@bath.ac.uk.
RSC Adv ; 10(50): 29789-29796, 2020 Aug 10.
Article in En | MEDLINE | ID: mdl-35518265
ABSTRACT
Ensilication is a novel method of protein thermal stabilisation using silica. It uses a modified sol-gel process which tailor fits a protective silica shell around the solvent accessible protein surface. This, electrostatically attached, shell has been found to protect the protein against thermal influences and retains its native structure and function after release. Here, we report the calorimetric analysis of an ensilicated model protein, hen egg-white lysozyme (HEWL) under several ensilication conditions. DSC, TGA-DTA-MS, CD, were used to determine unfolding temperatures of native, released and ensilicated lysozyme to verify the thermal resilience of the ensilicated material. Our findings indicate that ensilication protects against thermal fluctuations even at low concentrations of silica used for ensilication. Secondly, the thermal stabilisation is comparable to lyophilisation, and in some cases is even greater than lyophilisation. Additionally, we performed a mouse in vivo study using lysozyme to demonstrate the antigenic retention over long-term storage. The results suggest that protein is confined within the ensilicated material, and thus is unable to unfold and denature but is still functional after long-term storage.

Full text: 1 Collection: 01-internacional Database: MEDLINE Type of study: Prognostic_studies Language: En Journal: RSC Adv Year: 2020 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Type of study: Prognostic_studies Language: En Journal: RSC Adv Year: 2020 Document type: Article