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Purification and biochemical characterization of recombinant Persicaria minor β-sesquiphellandrene synthase

BACKGROUND: Sesquiterpenes are 15-carbon terpenes synthesized by sesquiterpene synthases using farnesyl diphosphate (FPP) as a substrate. Recently, a sesquiterpene synthase gene that encodes a 65 kDa protein was isolated from the aromatic plant Persicaria minor. Here, we report the expression, purif...

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Autores principales: Ker, De-Sheng, Pang, Sze Lei, Othman, Noor Farhan, Kumaran, Sekar, Tan, Ee Fun, Krishnan, Thiba, Chan, Kok Gan, Othman, Roohaida, Hassan, Maizom, Ng, Chyan Leong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: PeerJ Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5333544/
https://www.ncbi.nlm.nih.gov/pubmed/28265494
http://dx.doi.org/10.7717/peerj.2961
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author Ker, De-Sheng
Pang, Sze Lei
Othman, Noor Farhan
Kumaran, Sekar
Tan, Ee Fun
Krishnan, Thiba
Chan, Kok Gan
Othman, Roohaida
Hassan, Maizom
Ng, Chyan Leong
author_facet Ker, De-Sheng
Pang, Sze Lei
Othman, Noor Farhan
Kumaran, Sekar
Tan, Ee Fun
Krishnan, Thiba
Chan, Kok Gan
Othman, Roohaida
Hassan, Maizom
Ng, Chyan Leong
author_sort Ker, De-Sheng
collection PubMed
description BACKGROUND: Sesquiterpenes are 15-carbon terpenes synthesized by sesquiterpene synthases using farnesyl diphosphate (FPP) as a substrate. Recently, a sesquiterpene synthase gene that encodes a 65 kDa protein was isolated from the aromatic plant Persicaria minor. Here, we report the expression, purification and characterization of recombinant P. minor sesquiterpene synthase protein (PmSTS). Insights into the catalytic active site were further provided by structural analysis guided by multiple sequence alignment. METHODS: The enzyme was purified in two steps using affinity and size exclusion chromatography. Enzyme assays were performed using the malachite green assay and enzymatic product was identified using gas chromatography-mass spectrometry (GC-MS) analysis. Sequence analysis of PmSTS was performed using multiple sequence alignment (MSA) against plant sesquiterpene synthase sequences. The homology model of PmSTS was generated using I-TASSER server. RESULTS: Our findings suggest that the recombinant PmSTS is mainly expressed as inclusion bodies and soluble aggregate in the E. coli protein expression system. However, the addition of 15% (v/v) glycerol to the protein purification buffer and the removal of N-terminal 24 amino acids of PmSTS helped to produce homogenous recombinant protein. Enzyme assay showed that recombinant PmSTS is active and specific to the C(15) substrate FPP. The optimal temperature and pH for the recombinant PmSTS are 30 °C and pH 8.0, respectively. The GC-MS analysis further showed that PmSTS produces β-sesquiphellandrene as a major product and β-farnesene as a minor product. MSA analysis revealed that PmSTS adopts a modified conserved metal binding motif (NSE/DTE motif). Structural analysis suggests that PmSTS may binds to its substrate similarly to other plant sesquiterpene synthases. DISCUSSION: The study has revealed that homogenous PmSTS protein can be obtained with the addition of glycerol in the protein buffer. The N-terminal truncation dramatically improved the homogeneity of PmSTS during protein purification, suggesting that the disordered N-terminal region may have caused the formation of soluble aggregate. We further show that the removal of the N-terminus disordered region of PmSTS does not affect the product specificity. The optimal temperature, optimal pH, K(m) and k(cat) values of PmSTS suggests that PmSTS shares similar enzyme characteristics with other plant sesquiterpene synthases. The discovery of an altered conserved metal binding motif in PmSTS through MSA analysis shows that the NSE/DTE motif commonly found in terpene synthases is able to accommodate certain level of plasticity to accept variant amino acids. Finally, the homology structure of PmSTS that allows good fitting of substrate analog into the catalytic active site suggests that PmSTS may adopt a sesquiterpene biosynthesis mechanism similar to other plant sesquiterpene synthases.
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spelling pubmed-53335442017-03-06 Purification and biochemical characterization of recombinant Persicaria minor β-sesquiphellandrene synthase Ker, De-Sheng Pang, Sze Lei Othman, Noor Farhan Kumaran, Sekar Tan, Ee Fun Krishnan, Thiba Chan, Kok Gan Othman, Roohaida Hassan, Maizom Ng, Chyan Leong PeerJ Biochemistry BACKGROUND: Sesquiterpenes are 15-carbon terpenes synthesized by sesquiterpene synthases using farnesyl diphosphate (FPP) as a substrate. Recently, a sesquiterpene synthase gene that encodes a 65 kDa protein was isolated from the aromatic plant Persicaria minor. Here, we report the expression, purification and characterization of recombinant P. minor sesquiterpene synthase protein (PmSTS). Insights into the catalytic active site were further provided by structural analysis guided by multiple sequence alignment. METHODS: The enzyme was purified in two steps using affinity and size exclusion chromatography. Enzyme assays were performed using the malachite green assay and enzymatic product was identified using gas chromatography-mass spectrometry (GC-MS) analysis. Sequence analysis of PmSTS was performed using multiple sequence alignment (MSA) against plant sesquiterpene synthase sequences. The homology model of PmSTS was generated using I-TASSER server. RESULTS: Our findings suggest that the recombinant PmSTS is mainly expressed as inclusion bodies and soluble aggregate in the E. coli protein expression system. However, the addition of 15% (v/v) glycerol to the protein purification buffer and the removal of N-terminal 24 amino acids of PmSTS helped to produce homogenous recombinant protein. Enzyme assay showed that recombinant PmSTS is active and specific to the C(15) substrate FPP. The optimal temperature and pH for the recombinant PmSTS are 30 °C and pH 8.0, respectively. The GC-MS analysis further showed that PmSTS produces β-sesquiphellandrene as a major product and β-farnesene as a minor product. MSA analysis revealed that PmSTS adopts a modified conserved metal binding motif (NSE/DTE motif). Structural analysis suggests that PmSTS may binds to its substrate similarly to other plant sesquiterpene synthases. DISCUSSION: The study has revealed that homogenous PmSTS protein can be obtained with the addition of glycerol in the protein buffer. The N-terminal truncation dramatically improved the homogeneity of PmSTS during protein purification, suggesting that the disordered N-terminal region may have caused the formation of soluble aggregate. We further show that the removal of the N-terminus disordered region of PmSTS does not affect the product specificity. The optimal temperature, optimal pH, K(m) and k(cat) values of PmSTS suggests that PmSTS shares similar enzyme characteristics with other plant sesquiterpene synthases. The discovery of an altered conserved metal binding motif in PmSTS through MSA analysis shows that the NSE/DTE motif commonly found in terpene synthases is able to accommodate certain level of plasticity to accept variant amino acids. Finally, the homology structure of PmSTS that allows good fitting of substrate analog into the catalytic active site suggests that PmSTS may adopt a sesquiterpene biosynthesis mechanism similar to other plant sesquiterpene synthases. PeerJ Inc. 2017-02-28 /pmc/articles/PMC5333544/ /pubmed/28265494 http://dx.doi.org/10.7717/peerj.2961 Text en ©2017 Ker et al. http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, reproduction and adaptation in any medium and for any purpose provided that it is properly attributed. For attribution, the original author(s), title, publication source (PeerJ) and either DOI or URL of the article must be cited.
spellingShingle Biochemistry
Ker, De-Sheng
Pang, Sze Lei
Othman, Noor Farhan
Kumaran, Sekar
Tan, Ee Fun
Krishnan, Thiba
Chan, Kok Gan
Othman, Roohaida
Hassan, Maizom
Ng, Chyan Leong
Purification and biochemical characterization of recombinant Persicaria minor β-sesquiphellandrene synthase
title Purification and biochemical characterization of recombinant Persicaria minor β-sesquiphellandrene synthase
title_full Purification and biochemical characterization of recombinant Persicaria minor β-sesquiphellandrene synthase
title_fullStr Purification and biochemical characterization of recombinant Persicaria minor β-sesquiphellandrene synthase
title_full_unstemmed Purification and biochemical characterization of recombinant Persicaria minor β-sesquiphellandrene synthase
title_short Purification and biochemical characterization of recombinant Persicaria minor β-sesquiphellandrene synthase
title_sort purification and biochemical characterization of recombinant persicaria minor β-sesquiphellandrene synthase
topic Biochemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5333544/
https://www.ncbi.nlm.nih.gov/pubmed/28265494
http://dx.doi.org/10.7717/peerj.2961
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