Quantitative Modeling Extends the Antibacterial Activity of Nitric Oxide

被引:10
作者
Sivaloganathan, Darshan M. [1 ]
Brynildsen, Mark P. [2 ]
机构
[1] Princeton Univ, Program Quantitat & Computat Biol, Princeton, NJ 08544 USA
[2] Princeton Univ, Dept Chem & Biol Engn, Princeton, NJ 08544 USA
来源
FRONTIERS IN PHYSIOLOGY | 2020年 / 11卷
关键词
Escherichia coli; Hmp; flavohemoglobin; NO; respiration; bacteriostatic; NITROSATIVE STRESS; ESCHERICHIA-COLI; CHEMICAL BIOLOGY; FLAVOHEMOGLOBIN; RESPONSES; NANOPARTICLES; MACROPHAGES; MECHANISMS; REGULATOR; BACTERIA;
D O I
10.3389/fphys.2020.00330
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Numerous materials have been developed to try and harness the antimicrobial properties of nitric oxide (NO). However, the short half-life and reactivity of NO have made precise, tunable delivery difficult. As such, conventional methodologies have generally relied on donors that spontaneously release NO at different rates, and delivery profiles have largely been constrained to decaying dynamics. In recent years, the possibility of finely controlling NO release, for instance with light, has become achievable and this raises the question of how delivery dynamics influence therapeutic potential. Here we investigated this relationship using Escherichia coli as a model organism and an approach that incorporated both experimentation and mathematical modeling. We found that the best performing delivery mode was dependent on the NO payload, and developed a mathematical model to quantitatively dissect those observations. Those analyses suggested that the duration of respiratory inhibition was a major determinant of NO-induced growth inhibition. Inspired by this, we constructed a delivery schedule that leveraged that insight to extend the antimicrobial activity of NO far beyond what was achievable by traditional delivery dynamics. Collectively, these data and analyses suggest that the delivery dynamics of NO have a considerable impact on its ability to achieve and maintain bacteriostasis.
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页数:15
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共 73 条
[1]   Maintenance of nitric oxide and redox homeostasis by the Salmonella flavohemoglobin Hmp [J].
Bang, Iel-Soo ;
Liu, Limin ;
Vazquez-Torres, Andres ;
Crouch, Marie-Laure ;
Stamler, Jonathan S. ;
Fang, Ferric C. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2006, 281 (38) :28039-28047
[2]   The Diversity of Microbial Responses to Nitric Oxide and Agents of Nitrosative Stress: Close Cousins but Not Identical Twins [J].
Bowman, Lesley A. H. ;
McLean, Samantha ;
Poole, Robert K. ;
Fukuto, Jon M. .
ADVANCES IN MICROBIAL PHYSIOLOGY, VOL 59, 2011, 59 :135-219
[3]   Potentiating antibacterial activity by predictably enhancing endogenous microbial ROS production [J].
Brynildsen, Mark P. ;
Winkler, Jonathan A. ;
Spina, Catherine S. ;
MacDonald, I. Cody ;
Collins, James J. .
NATURE BIOTECHNOLOGY, 2013, 31 (02) :160-165
[4]   Light-Induced Acid Generation on a Gatekeeper for Smart Nitric Oxide Delivery [J].
Choi, Hyung Woo ;
Kim, Jihoon ;
Kim, Jinhwan ;
Kim, Yonghwi ;
Song, Hyun Beom ;
Kim, Jeong Hun ;
Kim, Kimoon ;
Kim, Won Jong .
ACS NANO, 2016, 10 (04) :4199-4208
[5]   Loss of DksA leads to multi-faceted impairment of nitric oxide detoxification by Escherichia coli [J].
Chou, Wen Kang ;
Brynildsen, Mark P. .
FREE RADICAL BIOLOGY AND MEDICINE, 2019, 130 :288-296
[6]   Nitric oxide formation by Escherichia coli -: Dependence on nitrite reductase, the NO-sensing regulator FNR, and flavohemoglobin Hmp [J].
Corker, H ;
Poole, RK .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (34) :31584-31592
[7]   Reduction of translating ribosomes enables Escherichia coli to maintain elongation rates during slow growth [J].
Dai, Xiongfeng ;
Zhu, Manlu ;
Warren, Mya ;
Balakrishnan, Rohan ;
Patsalo, Vadim ;
Okano, Hiroyuki ;
Williamson, James R. ;
Fredrick, Kurt ;
Wang, Yi-Ping ;
Hwa, Terence .
NATURE MICROBIOLOGY, 2017, 2 (02)
[8]   Macrophage-mediated delivery of light activated nitric oxide prodrugs with spatial, temporal and concentration control [J].
Evans, Michael A. ;
Huang, Po-Ju ;
Iwamoto, Yuji ;
Ibsen, Kelly N. ;
Chan, Emory M. ;
Hitomi, Yutaka ;
Ford, Peter C. ;
Mitragotri, Samir .
CHEMICAL SCIENCE, 2018, 9 (15) :3729-3741
[9]   Antimicrobial reactive oxygen and nitrogen species: Concepts and controversies [J].
Fang, FC .
NATURE REVIEWS MICROBIOLOGY, 2004, 2 (10) :820-832
[10]   Antimicrobial mechanisms of phagocytes and bacterial evasion strategies [J].
Flannagan, Ronald S. ;
Cosio, Gabriela ;
Grinstein, Sergio .
NATURE REVIEWS MICROBIOLOGY, 2009, 7 (05) :355-366