Search

Resolving the formidable barrier of oxygen transferring rate (OTR) in ultrahigh-titer bioconversion/biocatalysis by a sealed-oxygen supply biotechnology (SOS)

메타 데이터

바이오화학분류
    • 바이오플라스틱
      1. 플라스틱
    • 바이오정밀화학
      1. 화학제품
논문

Resolving the formidable barrier of oxygen transferring rate (OTR) in ultrahigh-titer bioconversion/biocatalysis by a sealed-oxygen supply biotechnology (SOS)

학술지

Biotechnology for biofuels

저자명

Hua, Xia; Zhou, Xin; Du, GenLai; Xu, Yong

초록

<P><B>Background</B></P><P>The critical issue in the competitiveness between bioengineering and chemical engineering is the products titer and the volume productivity. The most direct and effective approach usually employs high-density biocatalyst, while the weakened mass transfer and evoked foam problem accompany ultrahigh-density biocatalyst loading and substrate/product titer. In high-density obligate aerobic bioconversion, oxygen as electron acceptor is a speed-limiting step in bioprocesses, but sufficient oxygen supply will lead to the foaming which results in a significant reduction in oxygen utilization and the use of additional defoamers. In this study, we designed a novel sealed-oxygen supply (SOS) biotechnology to resolve the formidable barrier of oxygen transferring rate (OTR), for bio-based fuels and chemical production process.</P><P><B>Results</B></P><P>Based on systemic analysis of whole-cell catalysis in <I>Gluconobacter oxydans,</I> a novel sealed-oxygen supply technology was smartly designed and experimentally performed for biocatalytic oxidation of alcohols, sugars and so on. By a simple operation skill of automatic online supply of oxygen in a sealed stirring tank bioreactor of SOS, OTR barrier and foaming problem was resolved with great ease. We finally obtained ultrahigh-titer products of xylonic acid (XA), 3-hydroxypropionic acid (3-HPA), and erythrulose at 588.4&nbsp;g/L, 69.4&nbsp;g/L, and 364.7&nbsp;g/L, respectively. Moreover, the volume productivity of three chemical products was improved by 150&#x2013;250% compared with normal biotechnology. This SOS technology provides a promising approach to promote bioengineering competitiveness and advantages over chemical engineering.</P><P><B>Conclusion</B></P><P>SOS technology was demonstrated as an economic and universally applicable approach to bio-based fuels and chemicals production by whole-cell catalysis. The novel technology greatly promotes the competitiveness of bioengineering for chemical engineering, and provides a promising platform for the green and environmental use of biofuels.</P>

발행연도

2020

발행기관

BioMed Central

라이선스

cc-by

ISSN

1754-6834

13

페이지

pp.1

주제어

Sealed-oxygen supply technology (SOS); Ultrahigh-titer bioconversion; Oxygen transfer rate (OTR); Whole-cell catalysis; Gluconobacter oxydans

0건의 논문이 있습니다.

0건의 특허가 있습니다.

0건의 무역이 있습니다.

1건의 후보군 물질이 있습니다.

논문; 2020-01-04

Export

About

Search

Trend