REAL

Electrospun polylactic acid and polyvinyl alcohol fibers as efficient and stable nanomaterials for immobilization of lipases

Sóti, Péter Lajos and Weiser, Diána and Vigh, Tamás and Nagy, Zsombor Kristóf and Poppe, László and Marosi, György (2016) Electrospun polylactic acid and polyvinyl alcohol fibers as efficient and stable nanomaterials for immobilization of lipases. BIOPROCESS AND BIOSYSTEMS ENGINEERING, 39 (3). pp. 449-459. ISSN 1615-7591

[img]
Preview
Text
Soti_Electrospun_polylactic_acid_and_polyvinyl_alcohol_fibers_as_efficient_and_stable_nanomaterials_for_immobilization_of_lipases10.1007s00449_015_1528_y_u.pdf

Download (1MB) | Preview

Abstract

Electrospinning was applied to create easy-to-handle and high- surface-area membranes from continuous nanofibers of polyvinyl alcohol (PVA) or polylactic acid (PLA). Lipase PS from Burkholderia cepacia and Lipase B from Candida antarctica (CaLB) could be immobilized effectively by adsorption onto the fibrous material as well as by entrapment within the electrospun nanofibers. The biocatalytic performance of the resulting membrane biocatalysts was evaluated in the kinetic resolution of racemic 1-phenylethanol (rac-1) and 1-phenylethyl acetate (rac- 2). Fine dispersion of the enzymes in the polymer matrix and large surface area of the nanofibers resulted in an enormous increase in the activity of the membrane biocatalyst compared to the non-immobilized crude powder forms of the lipases. PLA as fiber-forming polymer for lipase immobilization performed better than PVA in all aspects. Recycling studies with the various forms of electrospun membrane biocatalysts in ten cycles of the acylation and hydrolysis reactions indicated excellent stability of this forms of immobilized lipases. PLA-entrapped lipases could preserve lipase activity and enantiomer selectivity much better than the PVA-entrapped forms. The electrospun membrane forms of CaLB showed high mechanical stability in the repeated acylations and hydrolyses than commercial forms of CaLB immobilized on polyacrylamide beads (Novozyme 435 and IMMCALB- T2-150). © 2016 Springer-Verlag Berlin Heidelberg

Item Type: Article
Uncontrolled Keywords: LIPASE; KINETIC RESOLUTION; IMMOBILIZATION; Electrospinning; BIOCATALYSIS
Subjects: Q Science / természettudomány > QD Chemistry / kémia
SWORD Depositor: MTMT SWORD
Depositing User: MTMT SWORD
Date Deposited: 27 Sep 2016 11:07
Last Modified: 18 Sep 2017 23:15
URI: http://real.mtak.hu/id/eprint/40137

Actions (login required)

Edit Item Edit Item