Experimental and Computational Analysis of Synthesis Conditions of Hybrid Nanoflowers for Lipase Immobilization

Author:

Souza Danivia Endi S.1,Santos Lucas M. F.1,Freitas João P. A.1ORCID,Almeida Lays C. de1,Santos Jefferson C. B.1ORCID,Souza Ranyere Lucena de12,Pereira Matheus M.3ORCID,Lima Álvaro S.4ORCID,Soares Cleide M. F.12ORCID

Affiliation:

1. Postgraduate Program Process Engineering, Tiradentes University (UNIT), Campus Farolandia, Aracaju 49032-490, Sergipe, Brazil

2. Institute of Technology and Research (ITP), Aracaju 49032-490, Sergipe, Brazil

3. Department of Chemical Engineering, University of Coimbra, CIEPQPF, 3030-790 Coimbra, Portugal

4. Postgraduate Program Chemical Engineering, Federal University of Bahia (UFBA), Campus Federação, Salvador 40210-630, Bahia, Brazil

Abstract

This work presents a framework for evaluating hybrid nanoflowers using Burkholderia cepacia lipase. It was expanded on previous findings by testing lipase hybrid nanoflowers (hNF-lipase) formation over a wide range of pH values (5–9) and buffer concentrations (10–100 mM). The free enzyme activity was compared with that of hNF-lipase. The analysis, performed by molecular docking, described the effect of lipase interaction with copper ions. The morphological characterization of hNF-lipase was performed using scanning electron microscopy. Fourier Transform Infrared Spectroscopy performed the physical–chemical characterization. The results show that all hNF-lipase activity presented values higher than that of the free enzyme. Activity is higher at pH 7.4 and has the highest buffer concentration of 100 mM. Molecular docking analysis has been used to understand the effect of enzyme protonation on hNF-lipase formation and identify the main the main binding sites of the enzyme with copper ions. The hNF-lipase nanostructures show the shape of flowers in their micrographs from pH 6 to 8. The spectra of the nanoflowers present peaks typical of the amide regions I and II, current in lipase, and areas with P–O vibrations, confirming the presence of the phosphate group. Therefore, hNF-lipase is an efficient biocatalyst with increased catalytic activity, good nanostructure formation, and improved stability.

Funder

Foundation for the Support of Research and Technological Innovation the state of Sergipe

National Council for Scientific and Technological Development

Coordination for the Improvement of Higher Education Personnel

FCT

Publisher

MDPI AG

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