Literature DB >> 28176135

Parallel N- and C-Terminal Truncations Facilitate Purification and Analysis of a 155-kDa Cold-Adapted Type-I Pullulanase.

Skander Elleuche1, Alina Krull2, Ute Lorenz2, Garabed Antranikian2.   

Abstract

The cold-adapted pullulanase Pul13A is an industrial useful amylolytic enzyme, but its low solubility is the major bottleneck to produce the protein in recombinant form. In a previous approach, a complex and time-consuming purification strategy including a step-wise dialysis procedure using decreasing concentrations of urea to renature the insoluble protein from inclusion bodies had been established. In this study, a truncation strategy was developed to facilitate the purification and handling of the type-I pullulanase. Pul13A has a size of 155-kDa with a multidomain architecture that is composed of the following predicted modules: CBM41/E-set/Amy-Pul/DUF3372/E-set/E-set/E-set, with CBM and E-set domains being putative carbohydrate-binding modules, Amy-Pul is the catalytic region and DUF is a domain of unknown function. Consecutive N- and C-terminal deletions of domains were applied to construct minimized enzyme variants retaining pullulanase activity and exhibiting improved renaturation efficiencies. A total of seven truncation constructs were generated and tested, which still led to the production of inclusion bodies. However, the parallel deletion of the exterior CBM41 and E-set domain enabled the direct refolding of active enzymes during one-step dialysis in urea-free buffer. Catalytic properties of truncation construct Pul13A-N1/C1 were not impaired indicating that this enzyme variant may be superior for industrial applications over the full-length pullulanase.

Entities:  

Keywords:  Cold-adaptation; One-step renaturation; Purification efficiency; Truncations; Type-I pullulanase

Mesh:

Substances:

Year:  2017        PMID: 28176135     DOI: 10.1007/s10930-017-9703-4

Source DB:  PubMed          Journal:  Protein J        ISSN: 1572-3887            Impact factor:   2.371


  27 in total

1.  Cloning, expression, and characterization of thermostable region of amylopullulanase gene from Thermoanaerobacter ethanolicus 39E.

Authors:  Fu-Pang Lin; Kuen-Lin Leu
Journal:  Appl Biochem Biotechnol       Date:  2002-01       Impact factor: 2.926

2.  Biochemical characterization of a recombinant pullulanase from Thermococcus kodakarensis KOD1.

Authors:  T Han; F Zeng; Z Li; L Liu; M Wei; Q Guan; X Liang; Z Peng; M Liu; J Qin; S Zhang; B Jia
Journal:  Lett Appl Microbiol       Date:  2013-07-08       Impact factor: 2.858

3.  Biochemical characterization of two truncated forms of amylopullulanase from Thermoanaerobacterium saccharolyticum NTOU1 to identify its enzymatically active region.

Authors:  Fu-Pang Lin; Hsiu-Yen Ma; Hui-Ju Lin; Shiu-Mei Liu; Wen-Shyong Tzou
Journal:  Appl Biochem Biotechnol       Date:  2011-07-13       Impact factor: 2.926

4.  Triton X-100 enhances the solubility and secretion ratio of aggregation-prone pullulanase produced in Escherichia coli.

Authors:  Xuguo Duan; Chun Zou; Jing Wu
Journal:  Bioresour Technol       Date:  2015-07-10       Impact factor: 9.642

Review 5.  Recombinant bacterial amylopullulanases: developments and perspectives.

Authors:  M Nisha; T Satyanarayana
Journal:  Bioengineered       Date:  2013-04-15       Impact factor: 3.269

6.  Gene cloning and enzymatic characterization of alkali-tolerant type I pullulanase from Exiguobacterium acetylicum.

Authors:  Y Qiao; Q Peng; J Yan; H Wang; H Ding; B Shi
Journal:  Lett Appl Microbiol       Date:  2014-11-16       Impact factor: 2.858

7.  CDD: NCBI's conserved domain database.

Authors:  Aron Marchler-Bauer; Myra K Derbyshire; Noreen R Gonzales; Shennan Lu; Farideh Chitsaz; Lewis Y Geer; Renata C Geer; Jane He; Marc Gwadz; David I Hurwitz; Christopher J Lanczycki; Fu Lu; Gabriele H Marchler; James S Song; Narmada Thanki; Zhouxi Wang; Roxanne A Yamashita; Dachuan Zhang; Chanjuan Zheng; Stephen H Bryant
Journal:  Nucleic Acids Res       Date:  2014-11-20       Impact factor: 16.971

8.  Optimization of pullulanase production in Escherichia coli by regulation of process conditions and supplement with natural osmolytes.

Authors:  Xuguo Duan; Jian Chen; Jing Wu
Journal:  Bioresour Technol       Date:  2013-07-26       Impact factor: 9.642

9.  Pullulanase: role in starch hydrolysis and potential industrial applications.

Authors:  Siew Ling Hii; Joo Shun Tan; Tau Chuan Ling; Arbakariya Bin Ariff
Journal:  Enzyme Res       Date:  2012-09-06

10.  A novel cold-adapted type I pullulanase of Paenibacillus polymyxa Nws-pp2: in vivo functional expression and biochemical characterization of glucans hydrolyzates analysis.

Authors:  Wei Wei; Jing Ma; Si-Qi Chen; Xiang-Hai Cai; Dong-Zhi Wei
Journal:  BMC Biotechnol       Date:  2015-10-19       Impact factor: 2.563

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