Bacteroides fragilis Maintains Concurrent Capability for Anaerobic and Nanaerobic Respiration

被引:9
作者
Butler, Nicole L. [1 ]
Ito, Takeshi [2 ,7 ]
Foreman, Sara [1 ]
Morgan, Joel E. [2 ]
Zagorevsky, Dmitry [2 ]
Malamy, Michael H. [3 ]
Comstock, Laurie E. [4 ,5 ]
Barquera, Blanca [1 ,2 ,6 ]
机构
[1] Rensselaer Polytech Inst, Dept Chem & Chem Biol, Troy, NY 12180 USA
[2] Rensselaer Polytech Inst, Ctr Biotechnol & Interdisciplinary Studies, Troy, NY 12180 USA
[3] Tufts Univ, Dept Mol Biol & Microbiol, Sch Med, Boston, MA USA
[4] Univ Chicago, Duchossois Family Inst, Chicago, IL USA
[5] Univ Chicago, Dept Microbiol, Chicago, IL USA
[6] Rensselaer Polytech Inst, Dept Biol Sci, Troy, NY 12180 USA
[7] Tokushima Univ, Inst Adv Med Sci, Tokushima, Japan
关键词
Bacteroides; adaptation; bacterial respiration; energy metabolism; GROWTH; HEME; THETAIOTAOMICRON; MENAQUINONE; UBIQUINONE; EXPRESSION; BACTERIUM; OXIDASE;
D O I
10.1128/jb.00389-22
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
By performing a comprehensive analysis of nanaerobic respiration in Bacteroides fragilis, we show that this organism maintains capabilities for anaerobic respiration on fumarate and nanaerobic respiration on oxygen simultaneously. The contribution of the two NADH:quinone oxidoreductases and the composition of the quinone pool are the same under both conditions. Bacteroides species can use fumarate and oxygen as terminal electron acceptors during cellular respiration. In the human gut, oxygen diffuses from intestinal epithelial cells supplying "nanaerobic" oxygen levels. Many components of the anaerobic respiratory pathway have been determined, but such analyses have not been performed for nanaerobic respiration. Here, we present genetic, biochemical, enzymatic, and mass spectrometry analyses to elucidate the nanaerobic respiratory pathway in Bacteroides fragilis. Under anaerobic conditions, the transfer of electrons from NADH to the quinone pool has been shown to be contributed by two enzymes, NQR and NDH2. We find that the activity contributed by each under nanaerobic conditions is 77 and 23%, respectively, similar to the activity levels under anaerobic conditions. Using mass spectrometry, we show that the quinone pool also does not differ under these two conditions and consists of a mixture of menaquinone-8 to menaquinone-11, with menaquinone-10 predominant under both conditions. Analysis of fumarate reductase showed that it is synthesized and active under anaerobic and nanaerobic conditions. Previous RNA sequencing data and new transcription reporter assays show that expression of the cytochrome bd oxidase gene does not change under these conditions. Under nanaerobic conditions, we find both increased CydA protein and increased cytochrome bd activity. Reduced-minus-oxidized spectra of membranes showed the presence of heme d when the bacteria were grown in the presence of protoporphyrin IX and iron under both anaerobic and nanaerobic conditions, suggesting that the active oxidase can be assembled with or without oxygen.IMPORTANCE By performing a comprehensive analysis of nanaerobic respiration in Bacteroides fragilis, we show that this organism maintains capabilities for anaerobic respiration on fumarate and nanaerobic respiration on oxygen simultaneously. The contribution of the two NADH:quinone oxidoreductases and the composition of the quinone pool are the same under both conditions. Fumarate reductase and cytochrome bd are both present, and which of these terminal enzymes is active in electron transfer depends on the availability of the final electron acceptor: fumarate or oxygen. The synthesis of cytochrome bd and fumarate reductase under both conditions serves as an adaptation to an environment with low oxygen concentrations so that the bacteria can maximize energy conservation during fluctuating environmental conditions or occupation of different spatial niches.
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页数:11
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共 45 条
  • [1] Correlation Between Intraluminal Oxygen Gradient and Radial Partitioning of Intestinal Microbiota
    Albenberg, Lindsey
    Esipova, Tatiana V.
    Judge, Colleen P.
    Bittinger, Kyle
    Chen, Jun
    Laughlin, Alice
    Grunberg, Stephanie
    Baldassano, Robert N.
    Lewis, James D.
    Li, Hongzhe
    Thom, Stephen R.
    Bushman, Frederic D.
    Vinogradov, Sergei A.
    Wu, Gary D.
    [J]. GASTROENTEROLOGY, 2014, 147 (05) : 1055 - +
  • [2] Ubiquinone and Menaquinone Electron Carriers Represent the Yin and Yang in the Redox Regulation of the ArcB Sensor Kinase
    Alvarez, Adrian F.
    Rodriguez, Claudia
    Georgellis, Dimitris
    [J]. JOURNAL OF BACTERIOLOGY, 2013, 195 (13) : 3054 - 3061
  • [3] The strict anaerobe Bacteroides fragilis grows in and benefits from nanomolar concentrations of oxygen
    Baughn, AD
    Malamy, MH
    [J]. NATURE, 2004, 427 (6973) : 441 - 444
  • [4] The essential role of fumarate reductase in haem-dependent growth stimulation of Bacteroides fragilis
    Baughn, AD
    Malamy, MH
    [J]. MICROBIOLOGY-SGM, 2003, 149 : 1551 - 1558
  • [5] How low can they go? Aerobic respiration by microorganisms under apparent anoxia
    Berg, Jasmine S.
    Ahmerkamp, Soeren
    Pjevac, Petra
    Hausmann, Bela
    Milucka, Jana
    Kuypers, Marcel M. M.
    [J]. FEMS MICROBIOLOGY REVIEWS, 2022, 46 (03)
  • [6] Borisov Vitaliy B, 2015, EcoSal Plus, V6, DOI 10.1128/ecosalplus.ESP-0012-2015
  • [7] The cytochrome bd respiratory oxygen reductases
    Borisov, Vitaliy B.
    Gennis, Robert B.
    Hemp, James
    Verkhovsky, Michael I.
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2011, 1807 (11): : 1398 - 1413
  • [8] DISTRIBUTION OF ISOPRENOID QUINONE STRUCTURAL TYPES IN BACTERIA AND THEIR TAXONOMIC IMPLICATIONS
    COLLINS, MD
    JONES, D
    [J]. MICROBIOLOGICAL REVIEWS, 1981, 45 (02) : 316 - 354
  • [9] Diversity of the human intestinal microbial flora
    Eckburg, PB
    Bik, EM
    Bernstein, CN
    Purdom, E
    Dethlefsen, L
    Sargent, M
    Gill, SR
    Nelson, KE
    Relman, DA
    [J]. SCIENCE, 2005, 308 (5728) : 1635 - 1638
  • [10] Role of oxygen gradients in shaping redox relationships between the human intestine and its microbiota
    Espey, Michael Graham
    [J]. FREE RADICAL BIOLOGY AND MEDICINE, 2013, 55 : 130 - 140