Production of Human Milk Fat Substitutes by Lipase-Catalyzed Acidolysis: Immobilization, Synthesis, Molecular Docking and Optimization Studies

Author:

Soares Cleide M. F.12,Barbosa Milson S.3,Santos Samuel B.1ORCID,Mattedi Silvana4,Lima Álvaro S.12,Pereira Matheus M.5ORCID,Tecelão Carla6ORCID,Ferreira-Dias Suzana7ORCID

Affiliation:

1. Programa de Pós-Graduação em Engenharia de Processos, UNIT—Universidade Tiradentes, Av. Murilo Dantas, 300, Farolândia, Aracaju 49032-490, SE, Brazil

2. ITP—Instituto de Tecnologia e Pesquisa, Av. Murilo Dantas, 300, Prédio do ITP, Farolândia, Aracaju 49032-490, SE, Brazil

3. IFPB—Instituto Federal de Educação, Ciência e Tecnologia da Paraíba, Campus Cajazeiras, Rua José Leôncio da Silva, 300, Jardim Oasis, Cajazeiras 58900-000, PB, Brazil

4. UFBA—Departamento de Engenharia Química, Universidade Federal da Bahia, Rua Aristides Novis 2, Federação, Salvador 40210-630, BA, Brazil

5. CIEPQPF—Department of Chemical Engineering, University of Coimbra, Rua Sílvio Lima, Pólo II—Pinhal de Marrocos, 3030-790 Coimbra, Portugal

6. MARE—Marine and Environmental Sciences Centre, ARNET—Aquatic Research Network, ESTM, Politécnico de Leiria, 2520-630 Peniche, Portugal

7. LEAF—Linking Landscape, Environment, Agriculture and Food, Associated Laboratory TERRA, Laboratório de Estudos Técnicos, Instituto Superior de Agronomia, Universidade de Lisboa, Tapada da Ajuda, 1349-017 Lisbon, Portugal

Abstract

Human milk fat (HMF) triacylglycerols (TAGs) mainly contain palmitic acid esterified at the sn-2 position while oleic and other unsaturated fatty acids are located at positions sn-1,3. This study aimed at the production of HMF substitutes (HMFS) by lipase-catalyzed acidolysis of tripalmitin with oleic acid, in a solvent-free medium. Burkholderia cepacia lipase (BCL) was immobilized in silica (prepared with protic or aprotic ionic liquids) by covalent binding or encapsulation and used as biocatalyst. The supports and immobilized biocatalysts were characterized by FTIR, TGA, and SEM. Molecular docking analysis showed that BCL preferentially attacks oleic acid rather than tripalmitin, due to the lower free energy of hydrophobic binding with this acid (−6.5 kcal·mol−1) than with tripalmitin (5.4 kcal·mol−1). Therefore, the tripalmitin attack by BCL and subsequent HMFS production only occurs after the binding to most of the oleic acid molecules. The highest acidolysis activity was obtained with BCL immobilized by covalent binding in prepared silica with aprotic ionic liquid. A central composite rotatable design, as a function of temperature (58–72 °C) and oleic acid/tripalmitin molar ratio (MR = 2:1–6.8:1), was performed for acidolysis optimization. Under optimized conditions (58 °C and MR = 4:1 or 60 °C and MR = 2:1), the oleic acid incorporation of 28 mol.% was achieved after 48 h.

Funder

Coordenação de Aperfeiçoamento de Pessoal de Ensino Superior

Conselho Nacional de Desenvolvimento Científico e Tecnológico

FCT-Fundação para a Ciência e a Tecnologia

LEAF—Linking Landscape, Environment, Agriculture and Food Research Centre

MARE

CIEPQPF

Associate Laboratory ARNET

Publisher

MDPI AG

Subject

Physical and Theoretical Chemistry,Catalysis,General Environmental Science

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