Control of continuous polyhydroxybutyrate synthesis using calorimetry and flow cytometry

被引:22
|
作者
Maskow, T
Müller, S
Lösche, A
Harms, H
Kemp, R
机构
[1] UFZ Helmholtz Ctr Environm Res, Dept Environm Microbiol, UMB, D-04318 Leipzig, Germany
[2] Univ Wales, Inst Biol Sci, Aberystwyth SY23 3DA, Dyfed, Wales
关键词
chemostat; calorimetry; flow cytometry; polyhydroxybutyrate (PHB); phenol; Variovorax paradoxus DSM 4065;
D O I
10.1002/bit.20743
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
The substrate-carbon flow can be controlled in continuous bioreactor cultures by the medium composition, for example, by the C/N ratio. The carbon distribution is optimal when a maximum fraction flows into the desired product and the residual is just sufficient to compensate for the dilution of the microbial catalyst. Undershooting of the latter condition is reflected immediately by changes in the Gibbs energy dissipation and cellular states. Two calorimetric measurement principles were applied to optimize the continuous synthesis of polyhydroxylbutyrate (PHB) by Variovorax paradoxus DSM4065 during growth with constantly increasing supply rates of fructose or toxic phenol. Firstly, the changed slope of the heat production rate in a complete heat balanced bioreactor (CHB) indicated optimum carbon channeling into PHB. The extent of the alteration depended directly on the toxic properties of the substrate. Secondly, a flow through calorimeter was connected with the bioreactor as a "measurement loop." The optimum substrate carbon distribution was indicated by a sudden change in the heat production rate independent of substrate toxicity. The sudden change was explained mathematically and exploited for the long-term control of phenol conversion into PHB. LASER flow cytometry measurements distinguished between subpopulations with completely different PHB-content. Populations grown on fructose preserved a constant ratio of two subpopulations with double and quadruple sets of DNA. Cells grown on phenol comprised a third subpopulation with a single DNA set. Rising phenol concentrations caused this subpopulation to increase. It may thus be considered as an indicator of chemostress. (c) 2005 Wiley Periodicals, Inc.
引用
收藏
页码:541 / 552
页数:12
相关论文
共 50 条
  • [1] Advances in Continuous Flow Calorimetry
    Frede, Timothy Aljoscha
    Maier, Manuel C.
    Kockmann, Norbert
    Gruber-Woelfler, Heidrun
    ORGANIC PROCESS RESEARCH & DEVELOPMENT, 2022, 26 (02) : 267 - 277
  • [2] The efficient synthesis of Pregabalin with impurity control using a continuous flow system
    Yan, Fengfeng
    Liu, Kailang
    Zhang, Jingwei
    Zhou, Tao
    Huang, Jinpei
    Wang, Fajun
    Qi, Cheng
    Xu, Jianhong
    Cui, Sunliang
    Chen, An
    CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2024, 202
  • [3] Flow cytometry for quantitation of polyhydroxybutyrate production by Cupriavidus necator using alkaline pretreated liquor from corn stover
    Li, Mengxing
    Wilkins, Mark
    BIORESOURCE TECHNOLOGY, 2020, 295
  • [4] Automated yeast cultivation control using a biosensor and flow cytometry
    Foncillas, Raquel Perruca
    Magnusson, Sara
    Al-Rudainy, Basel
    Wallberg, Ola
    Gorwa-Grauslund, Marie F.
    Carlquist, Magnus
    JOURNAL OF INDUSTRIAL MICROBIOLOGY & BIOTECHNOLOGY, 2024, 51
  • [5] Population dynamics of a continuous fermentation of recombinant Saccharomyces cerevisiae using flow cytometry
    Chau, TL
    Guillán, A
    Roca, E
    Núñez, MJ
    Lema, JM
    BIOTECHNOLOGY PROGRESS, 2001, 17 (05) : 951 - 957
  • [6] Comparison of intracellular polyhydroxybutyrate granules formation between different bacterial cell subpopulations by flow cytometry
    Shakeri, Shahryar
    Roghanian, Rasoul
    Emtiazi, Giti
    JUNDISHAPUR JOURNAL OF MICROBIOLOGY, 2011, 4 (04) : 229 - 238
  • [7] Quality control in clinical flow cytometry
    Oldaker, Teri A.
    CLINICS IN LABORATORY MEDICINE, 2007, 27 (03) : 671 - +
  • [8] Scalable clustering algorithms for continuous environmental flow cytometry
    Hyrkas, Jeremy
    Clayton, Sophie
    Ribalet, Francois
    Halperin, Daniel
    Armbrust, E. Virginia
    Howe, Bill
    BIOINFORMATICS, 2016, 32 (03) : 417 - 423
  • [9] Simultaneous determination of enthalpy of mixing and reaction using milli-scale continuous flow calorimetry
    Finn L. Steinemann
    David P. Rütti
    Marlies Moser
    Alain G. Georg
    Daniel M. Meier
    Journal of Flow Chemistry, 2022, 12 : 389 - 396
  • [10] Simultaneous determination of enthalpy of mixing and reaction using milli-scale continuous flow calorimetry
    Steinemann, Finn L.
    Rutti, David P.
    Moser, Marlies
    Georg, Alain G.
    Meier, Daniel M.
    JOURNAL OF FLOW CHEMISTRY, 2022, 12 (04) : 389 - 396