Improvement of selenium enrichment in Rhodotorula glutinis X-20 through combining process optimization and selenium transport

Selenium-enriched yeast can transform toxic inorganic selenium into absorbable organic selenium, which is of great significance for human health and pharmaceutical industry. A yeast Rhodotorula glutinis X-20 we obtained before has good selenium-enriched ability, but its selenium content is still low...

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Main Authors: Ting Wang, Xindan Lou, Genlin Zhang, Yanyan Dang
Format: Article
Language:English
Published: Taylor & Francis Group 2019-01-01
Series:Bioengineered
Subjects:
Online Access:http://dx.doi.org/10.1080/21655979.2019.1644853
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spelling doaj-b14a5df7211d4c81b880a0456e7f6b222020-11-25T03:43:04ZengTaylor & Francis GroupBioengineered2165-59792165-59872019-01-0110133534410.1080/21655979.2019.16448531644853Improvement of selenium enrichment in Rhodotorula glutinis X-20 through combining process optimization and selenium transportTing Wang0Xindan Lou1Genlin Zhang2Yanyan Dang3Shihezi UniversityShihezi UniversityShihezi UniversityShihezi UniversitySelenium-enriched yeast can transform toxic inorganic selenium into absorbable organic selenium, which is of great significance for human health and pharmaceutical industry. A yeast Rhodotorula glutinis X-20 we obtained before has good selenium-enriched ability, but its selenium content is still low for industrial application. In this study, strategies of process optimization and transport regulation of selenium were thus employed to further improve the cell growth and selenium enrichment. Through engineering phosphate transporters from Saccharomyces cerevisiae into R. glutinis X-20, the selenium content was increased by 21.1%. Through using mixed carbon culture (20 g L−1, glycerol: glucose 3:7), both biomass and selenium content were finally increased to 5.3 g L−1 and 5349.6 µg g−1 (cell dry weight, DWC), which were 1.14 folds and 6.77 folds compared to their original values, respectively. Our results indicate that high selenium-enrichment ability and biomass production can be achieved through combining process optimization and regulation of selenium transport.http://dx.doi.org/10.1080/21655979.2019.1644853selenium-enriched yeastmixed carbonenrichmenttransportr. glutinisculture optimization
collection DOAJ
language English
format Article
sources DOAJ
author Ting Wang
Xindan Lou
Genlin Zhang
Yanyan Dang
spellingShingle Ting Wang
Xindan Lou
Genlin Zhang
Yanyan Dang
Improvement of selenium enrichment in Rhodotorula glutinis X-20 through combining process optimization and selenium transport
Bioengineered
selenium-enriched yeast
mixed carbon
enrichment
transport
r. glutinis
culture optimization
author_facet Ting Wang
Xindan Lou
Genlin Zhang
Yanyan Dang
author_sort Ting Wang
title Improvement of selenium enrichment in Rhodotorula glutinis X-20 through combining process optimization and selenium transport
title_short Improvement of selenium enrichment in Rhodotorula glutinis X-20 through combining process optimization and selenium transport
title_full Improvement of selenium enrichment in Rhodotorula glutinis X-20 through combining process optimization and selenium transport
title_fullStr Improvement of selenium enrichment in Rhodotorula glutinis X-20 through combining process optimization and selenium transport
title_full_unstemmed Improvement of selenium enrichment in Rhodotorula glutinis X-20 through combining process optimization and selenium transport
title_sort improvement of selenium enrichment in rhodotorula glutinis x-20 through combining process optimization and selenium transport
publisher Taylor & Francis Group
series Bioengineered
issn 2165-5979
2165-5987
publishDate 2019-01-01
description Selenium-enriched yeast can transform toxic inorganic selenium into absorbable organic selenium, which is of great significance for human health and pharmaceutical industry. A yeast Rhodotorula glutinis X-20 we obtained before has good selenium-enriched ability, but its selenium content is still low for industrial application. In this study, strategies of process optimization and transport regulation of selenium were thus employed to further improve the cell growth and selenium enrichment. Through engineering phosphate transporters from Saccharomyces cerevisiae into R. glutinis X-20, the selenium content was increased by 21.1%. Through using mixed carbon culture (20 g L−1, glycerol: glucose 3:7), both biomass and selenium content were finally increased to 5.3 g L−1 and 5349.6 µg g−1 (cell dry weight, DWC), which were 1.14 folds and 6.77 folds compared to their original values, respectively. Our results indicate that high selenium-enrichment ability and biomass production can be achieved through combining process optimization and regulation of selenium transport.
topic selenium-enriched yeast
mixed carbon
enrichment
transport
r. glutinis
culture optimization
url http://dx.doi.org/10.1080/21655979.2019.1644853
work_keys_str_mv AT tingwang improvementofseleniumenrichmentinrhodotorulaglutinisx20throughcombiningprocessoptimizationandseleniumtransport
AT xindanlou improvementofseleniumenrichmentinrhodotorulaglutinisx20throughcombiningprocessoptimizationandseleniumtransport
AT genlinzhang improvementofseleniumenrichmentinrhodotorulaglutinisx20throughcombiningprocessoptimizationandseleniumtransport
AT yanyandang improvementofseleniumenrichmentinrhodotorulaglutinisx20throughcombiningprocessoptimizationandseleniumtransport
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