Cargando…

ARTP/EMS-combined multiple mutagenesis efficiently improved production of raw starch-degrading enzymes in Penicillium oxalicum and characterization of the enzyme-hyperproducing mutant

BACKGROUND: Application of raw starch-degrading enzymes (RSDEs) in starch processing for biofuel production can effectively reduce energy consumption and processing costs. RSDEs are generally produced by filamentous fungi, such as Penicillium oxalicum, but with very low yields, which seriously hampe...

Descripción completa

Detalles Bibliográficos
Autores principales: Gu, Li-Sha, Tan, Ming-Zhu, Li, Shi-Huan, Zhang, Ting, Zhang, Qi-Qiang, Li, Cheng-Xi, Luo, Xue-Mei, Feng, Jia-Xun, Zhao, Shuai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7661180/
https://www.ncbi.nlm.nih.gov/pubmed/33292496
http://dx.doi.org/10.1186/s13068-020-01826-5
_version_ 1783609159212597248
author Gu, Li-Sha
Tan, Ming-Zhu
Li, Shi-Huan
Zhang, Ting
Zhang, Qi-Qiang
Li, Cheng-Xi
Luo, Xue-Mei
Feng, Jia-Xun
Zhao, Shuai
author_facet Gu, Li-Sha
Tan, Ming-Zhu
Li, Shi-Huan
Zhang, Ting
Zhang, Qi-Qiang
Li, Cheng-Xi
Luo, Xue-Mei
Feng, Jia-Xun
Zhao, Shuai
author_sort Gu, Li-Sha
collection PubMed
description BACKGROUND: Application of raw starch-degrading enzymes (RSDEs) in starch processing for biofuel production can effectively reduce energy consumption and processing costs. RSDEs are generally produced by filamentous fungi, such as Penicillium oxalicum, but with very low yields, which seriously hampers industrialization of raw starch processing. Breeding assisted by random mutagenesis is an efficient way to improve fungal enzyme production. RESULTS: A total of 3532 P. oxalicum colonies were generated after multiple rounds of mutagenesis, by atmospheric and room-temperature plasma (ARTP) and/or ethyl methanesulfonate (EMS). Of these, one mutant A2-13 had the highest RSDE activity of 162.7 U/mL, using raw cassava flour as substrate, a yield increase of 61.1%, compared with that of the starting strain, OXPoxGA15A. RSDE activity of A2-13 further increased to 191.0 U/mL, through optimization of culture conditions. Increased expression of major amylase genes, including the raw starch-degrading glucoamylase gene, PoxGA15A, and its regulatory gene, PoxAmyR, as well as several single-nucleotide polymorphisms in the A2-13 genome, were detected by real-time reverse transcription quantitative PCR and genomic re-sequencing, respectively. In addition, crude RSDEs produced by A2-13, combined with commercial α-amylase, could efficiently digest raw corn flour and cassava flour at 40 °C. CONCLUSIONS: Overall, ARTP/EMS-combined mutagenesis effectively improved fungal RSDE yield. An RSDE-hyperproducing mutant, A2-13, was obtained, and its RSDEs could efficiently hydrolyze raw starch, in combination with commercial α-amylase at low temperature, which provides a useful RSDE resource for future starch processing.
format Online
Article
Text
id pubmed-7661180
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-76611802020-11-13 ARTP/EMS-combined multiple mutagenesis efficiently improved production of raw starch-degrading enzymes in Penicillium oxalicum and characterization of the enzyme-hyperproducing mutant Gu, Li-Sha Tan, Ming-Zhu Li, Shi-Huan Zhang, Ting Zhang, Qi-Qiang Li, Cheng-Xi Luo, Xue-Mei Feng, Jia-Xun Zhao, Shuai Biotechnol Biofuels Research BACKGROUND: Application of raw starch-degrading enzymes (RSDEs) in starch processing for biofuel production can effectively reduce energy consumption and processing costs. RSDEs are generally produced by filamentous fungi, such as Penicillium oxalicum, but with very low yields, which seriously hampers industrialization of raw starch processing. Breeding assisted by random mutagenesis is an efficient way to improve fungal enzyme production. RESULTS: A total of 3532 P. oxalicum colonies were generated after multiple rounds of mutagenesis, by atmospheric and room-temperature plasma (ARTP) and/or ethyl methanesulfonate (EMS). Of these, one mutant A2-13 had the highest RSDE activity of 162.7 U/mL, using raw cassava flour as substrate, a yield increase of 61.1%, compared with that of the starting strain, OXPoxGA15A. RSDE activity of A2-13 further increased to 191.0 U/mL, through optimization of culture conditions. Increased expression of major amylase genes, including the raw starch-degrading glucoamylase gene, PoxGA15A, and its regulatory gene, PoxAmyR, as well as several single-nucleotide polymorphisms in the A2-13 genome, were detected by real-time reverse transcription quantitative PCR and genomic re-sequencing, respectively. In addition, crude RSDEs produced by A2-13, combined with commercial α-amylase, could efficiently digest raw corn flour and cassava flour at 40 °C. CONCLUSIONS: Overall, ARTP/EMS-combined mutagenesis effectively improved fungal RSDE yield. An RSDE-hyperproducing mutant, A2-13, was obtained, and its RSDEs could efficiently hydrolyze raw starch, in combination with commercial α-amylase at low temperature, which provides a useful RSDE resource for future starch processing. BioMed Central 2020-11-11 /pmc/articles/PMC7661180/ /pubmed/33292496 http://dx.doi.org/10.1186/s13068-020-01826-5 Text en © The Author(s) 2020 Open AccessThis article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated in a credit line to the data.
spellingShingle Research
Gu, Li-Sha
Tan, Ming-Zhu
Li, Shi-Huan
Zhang, Ting
Zhang, Qi-Qiang
Li, Cheng-Xi
Luo, Xue-Mei
Feng, Jia-Xun
Zhao, Shuai
ARTP/EMS-combined multiple mutagenesis efficiently improved production of raw starch-degrading enzymes in Penicillium oxalicum and characterization of the enzyme-hyperproducing mutant
title ARTP/EMS-combined multiple mutagenesis efficiently improved production of raw starch-degrading enzymes in Penicillium oxalicum and characterization of the enzyme-hyperproducing mutant
title_full ARTP/EMS-combined multiple mutagenesis efficiently improved production of raw starch-degrading enzymes in Penicillium oxalicum and characterization of the enzyme-hyperproducing mutant
title_fullStr ARTP/EMS-combined multiple mutagenesis efficiently improved production of raw starch-degrading enzymes in Penicillium oxalicum and characterization of the enzyme-hyperproducing mutant
title_full_unstemmed ARTP/EMS-combined multiple mutagenesis efficiently improved production of raw starch-degrading enzymes in Penicillium oxalicum and characterization of the enzyme-hyperproducing mutant
title_short ARTP/EMS-combined multiple mutagenesis efficiently improved production of raw starch-degrading enzymes in Penicillium oxalicum and characterization of the enzyme-hyperproducing mutant
title_sort artp/ems-combined multiple mutagenesis efficiently improved production of raw starch-degrading enzymes in penicillium oxalicum and characterization of the enzyme-hyperproducing mutant
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7661180/
https://www.ncbi.nlm.nih.gov/pubmed/33292496
http://dx.doi.org/10.1186/s13068-020-01826-5
work_keys_str_mv AT gulisha artpemscombinedmultiplemutagenesisefficientlyimprovedproductionofrawstarchdegradingenzymesinpenicilliumoxalicumandcharacterizationoftheenzymehyperproducingmutant
AT tanmingzhu artpemscombinedmultiplemutagenesisefficientlyimprovedproductionofrawstarchdegradingenzymesinpenicilliumoxalicumandcharacterizationoftheenzymehyperproducingmutant
AT lishihuan artpemscombinedmultiplemutagenesisefficientlyimprovedproductionofrawstarchdegradingenzymesinpenicilliumoxalicumandcharacterizationoftheenzymehyperproducingmutant
AT zhangting artpemscombinedmultiplemutagenesisefficientlyimprovedproductionofrawstarchdegradingenzymesinpenicilliumoxalicumandcharacterizationoftheenzymehyperproducingmutant
AT zhangqiqiang artpemscombinedmultiplemutagenesisefficientlyimprovedproductionofrawstarchdegradingenzymesinpenicilliumoxalicumandcharacterizationoftheenzymehyperproducingmutant
AT lichengxi artpemscombinedmultiplemutagenesisefficientlyimprovedproductionofrawstarchdegradingenzymesinpenicilliumoxalicumandcharacterizationoftheenzymehyperproducingmutant
AT luoxuemei artpemscombinedmultiplemutagenesisefficientlyimprovedproductionofrawstarchdegradingenzymesinpenicilliumoxalicumandcharacterizationoftheenzymehyperproducingmutant
AT fengjiaxun artpemscombinedmultiplemutagenesisefficientlyimprovedproductionofrawstarchdegradingenzymesinpenicilliumoxalicumandcharacterizationoftheenzymehyperproducingmutant
AT zhaoshuai artpemscombinedmultiplemutagenesisefficientlyimprovedproductionofrawstarchdegradingenzymesinpenicilliumoxalicumandcharacterizationoftheenzymehyperproducingmutant