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Thermostabilization of Candida antarctica lipase B by double immobilization: Adsorption on a macroporous polyacrylate carrier and R1 silaffin-mediated biosilicification

  • Chanha Jun
  • , Byoung Wook Jeon
  • , Jeong Chan Joo
  • , Quang Anh Tuan Le
  • , Sol A. Gu
  • , Sungmin Byun
  • , Dae Haeng Cho
  • , Dukki Kim
  • , Byoung In Sang
  • , Yong Hwan Kim
  • Kwangwoon University
  • GS Caltex Corporation
  • Hanyang University

Research output: Contribution to journalArticlepeer-review

19 Scopus citations

Abstract

A large improvement in the thermostability of Candida antarctica lipase B (CALB) was achieved through double immobilization, i.e., physical adsorption and R1 silaffin-mediated biosilicification. The C-terminus of CALB was fused with the R1 silaffin peptide for biosilicification. The CALB-R1 fusion protein was adsorbed onto a macroporous polyacrylate carrier and then subsequently biosilicified with tetramethyl orthosilicate (TMOS). After R1 silaffin-mediated biosilicification, the double-immobilized CALB-R1 exhibited remarkable thermostability. The T5060 of the double-immobilized CALB-R1 increased dramatically from 45 to 72 C and that was 27, 13.8, 9.8 and 9.9 C higher than the T5060 values of free CALB-R1, CALB-R1 adsorbed onto a resin, commercial Novozym 435, and Novozym 435 treated with TMOS, respectively. In addition, the time required for the residual activity to be reduced to half (t1/2) of the double immobilized CALB-R1 elevated from 12.2 to 385 min, which is over 30 times longer life time compared free CALB-R1. The optimum pH for biosilicification was determined to be 5.0, and the double-immobilized enzyme showed much better reusability than the physically adsorbed enzyme even after 6 repeated reuses. This R1-mediated biosilicification approach for CALB thermostabilization is a good basis for the thermostabilization of industrial enzymes that are only minimally stabilized by protein engineering.

Original languageEnglish
Pages (from-to)1181-1187
Number of pages7
JournalProcess Biochemistry
Volume48
Issue number8
DOIs
StatePublished - Aug 2013

Bibliographical note

Funding Information:
This research was supported by the R&D program of MKE/KEIT ( 10031717 ), the Converging Research Center Program ( 2011K000660 ), the National Research Foundation of Korea ( NRF20110029249 ) and Kwangwoon University 2013.

Keywords

  • Biosilicification
  • Candida antarctica lipase B
  • Immobilization
  • R1 peptide
  • Silaffin
  • Thermostability

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