Literature DB >> 31683070

Improvement of catalytic properties of starch hydrolyzing fungal amyloglucosidase: Utilization of agar-agar as an organic matrix for immobilization.

Sidra Pervez1, Muhammad Asif Nawaz2, Muhsin Jamal3, Tour Jan4, Farhana Maqbool1, Ismail Shah5, Afsheen Aman6, Shah Ali Ul Qader7.   

Abstract

In this study, amyloglucosidase was immobilized within agar-agar through entrapment technique for the hydrolysis of soluble starch. Enzymatic activities of soluble and entrapped amyloglucosidase were compared using soluble starch as a substrate. Partially purified enzyme was immobilized and maximum immobilization yield (80%) was attained at 40 gL-1 of agar-agar. Enzyme catalysis reaction time shifted from 5.0 min to 10 min after immobilization. Similarly, a five-degree shift in temperature (60 °C-65 °C) and a 0.5 unit increase in pH (pH-5.0 to pH-5.5) were also observed. Substrate saturation kinetics revealed that Km of entrapped amyloglucosidase increased from 1.41 mg ml-1 (soluble enzyme) to 3.39 mg ml-1 (immobilized enzyme) whereas, Vmax decreased from 947 kU mg-1 (soluble enzyme) to 698 kU mg-1 (immobilized enzyme). Entrapped amyloglucosidase also exhibited significant catalytic performance during thermal and storage stability when compared with soluble enzyme. Reusability of entrapped amyloglucosidase for hydrolysis of soluble starch demonstrated its recycling efficiency up to six cycles which is an exceptional characteristic for continuous bioprocessing of soluble starch into glucose.
Copyright © 2019 Elsevier Ltd. All rights reserved.

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Keywords:  Agar-agar; Bioprocessing; Entrapment; Immobilization; Reusability; Starch hydrolysis

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Year:  2019        PMID: 31683070     DOI: 10.1016/j.carres.2019.107860

Source DB:  PubMed          Journal:  Carbohydr Res        ISSN: 0008-6215            Impact factor:   2.104


  1 in total

1.  Production and immobilization of β-galactosidase isolated from Enterobacter aerogenes KCTC2190 by entrapment method using agar-agar organic matrix.

Authors:  Manisha Maity; Aparupa Bhattacharyya; Jayati Bhowal
Journal:  Appl Biochem Biotechnol       Date:  2021-03-09       Impact factor: 2.926

  1 in total

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