Search

Metabolic network reconstruction and genome-scale model of butanol-producing strain Clostridium beijerinckii NCIMB 8052

메타 데이터

바이오화학분류
    • 바이오플라스틱
      1. 플라스틱
    • 바이오정밀화학
      1. 용매
      2. 화학제품
      3. 연료
    • 화장품용 기능성소재
      1. 계면활성제⁄증점제
    • 의료용 화학소재
      1. 치료제
      2. 식품첨가제
논문

Metabolic network reconstruction and genome-scale model of butanol-producing strain Clostridium beijerinckii NCIMB 8052

학술지

BMC systems biology

저자명

Milne, Caroline B; Eddy, James A; Raju, Ravali; Ardekani, Soroush; Kim, Pan-Jun; Senger, Ryan S; Jin, Yong-Su; Blaschek, Hans P; Price, Nathan D

초록

<P><B>Background</B></P><P>Solventogenic clostridia offer a sustainable alternative to petroleum-based production of butanol--an important chemical feedstock and potential fuel additive or replacement. <I>C. beijerinckii </I>is an attractive microorganism for strain design to improve butanol production because it (i) naturally produces the highest recorded butanol concentrations as a byproduct of fermentation; and (ii) can co-ferment pentose and hexose sugars (the primary products from lignocellulosic hydrolysis). Interrogating <I>C. beijerinckii </I>metabolism from a systems viewpoint using constraint-based modeling allows for simulation of the global effect of genetic modifications.</P><P><B>Results</B></P><P>We present the first genome-scale metabolic model (<I>i</I>CM925) for <I>C. beijerinckii</I>, containing 925 genes, 938 reactions, and 881 metabolites. To build the model we employed a semi-automated procedure that integrated genome annotation information from KEGG, BioCyc, and The SEED, and utilized computational algorithms with manual curation to improve model completeness. Interestingly, we found only a 34% overlap in reactions collected from the three databases--highlighting the importance of evaluating the predictive accuracy of the resulting genome-scale model. To validate <I>i</I>CM925, we conducted fermentation experiments using the NCIMB 8052 strain, and evaluated the ability of the model to simulate measured substrate uptake and product production rates. Experimentally observed fermentation profiles were found to lie within the solution space of the model; however, under an optimal growth objective, additional constraints were needed to reproduce the observed profiles--suggesting the existence of selective pressures other than optimal growth. Notably, a significantly enriched fraction of actively utilized reactions in simulations--constrained to reflect experimental rates--originated from the set of reactions that overlapped between all three databases (<I>P </I>= 3.52 × 10<SUP>-9</SUP>, Fisher's exact test). Inhibition of the hydrogenase reaction was found to have a strong effect on butanol formation--as experimentally observed.</P><P><B>Conclusions</B></P><P>Microbial production of butanol by <I>C. beijerinckii </I>offers a promising, sustainable, method for generation of this important chemical and potential biofuel. <I>i</I>CM925 is a predictive model that can accurately reproduce physiological behavior and provide insight into the underlying mechanisms of microbial butanol production. As such, the model will be instrumental in efforts to better understand, and metabolically engineer, this microorganism for improved butanol production.</P>

발행연도

2011

발행기관

BioMed Central

라이선스

cc-by

ISSN

1752-0509

5

페이지

pp.130-130

0건의 논문이 있습니다.

0건의 특허가 있습니다.

0건의 무역이 있습니다.

5건의 후보군 물질이 있습니다.

1 2023-12-11
2 2023-12-11
3 2023-12-11
4 2023-12-11
5 2023-12-11

논문; 2011-08-16

Export

About

Search

Trend