Going Viral: Emerging Opportunities for Phage-Based Bacterial Control in Water Treatment and Reuse

被引:80
作者
Mathieu, Jacques [1 ]
Yu, Pingfeng [1 ,2 ]
Zuo, Pengxiao [1 ]
Da Silva, Marcio L. B. [1 ]
Alvarez, Pedro J. J. [1 ,2 ]
机构
[1] Rice Univ, Dept Civil & Environm Engn, Houston, TX 77005 USA
[2] Nanosyst Engn Res Ctr Nanotechnol Enabled Water T, Houston, TX 77005 USA
关键词
LYTIC BACTERIOPHAGES; VIRUS REMOVAL; GENES; STABILIZATION; PROLIFERATION; COEXISTENCE; POPULATION; BIOCONTROL; RECEPTOR; BIOFILMS;
D O I
10.1021/acs.accounts.8b00576
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
CONSPECTUS: Water security to protect human lives and support sustainable development is one of the greatest global challenges of this century. While a myriad of water pollutants can impact public health, the greatest threat arises from pathogenic bacteria that can be harbored in different components of water treatment, distribution, and reuse systems. Bacterial biofilms can also promote water infrastructure corrosion and biofouling, which substantially increase the cost and complexity of many critical operations. Conventional disinfection and microbial control approaches are often insufficient to keep up with the increasing complexity and renewed relevance of this pressing challenge. For example, common disinfectants cannot easily penetrate and eradicate biofilms, and are also relatively ineffective against resistant microorganisms. The use of chemical disinfectants is also curtailed by regulations aimed at minimizing the formation of harmful disinfection byproducts. Furthermore, disinfectants cannot be used to kill problematic bacteria in biological treatment processes without upsetting system performance. This underscores the need for novel, more precise, and more sustainable microbial control technologies. Bacteriophages (phages), which are viruses that exclusively infect bacteria, are the most abundant (and perhaps the most underutilized) biological resource on Earth, and hold great promise for targeting problematic bacteria. Although phages should not replace broad-spectrum disinfectants in drinking water treatment, they offer great potential for applications where selective targeting of problematic bacteria is warranted and antimicrobial chemicals are either relatively ineffective or their use would result in unintended detrimental consequences. Promising applications for phage-based biocontrol include selectively suppressing bulking and foaming bacteria that hinder activated sludge clarification, mitigating proliferation of antibiotic resistant strains in biological wastewater treatment systems where broad-spectrum antimicrobials would impair pollutant biodegradation, and complementing biofilm eradication efforts to delay corrosion and biofouling. Phages could also mitigate harmful cyanobacteria blooms that produce toxins in source waters, and could also serve as substitutes for the prophylactic use of antibiotics and biocides in animal agriculture to reduce their discharge to source waters and the associated selective pressure for resistant bacteria. Here, we consider the phage life cycle and its implications for bacterial control, and elaborate on the biochemical basis of such potential application niches in the water supply and reuse cycle. We also discuss potential technological barriers for phage-based bacterial control and suggest strategies and research needs to overcome them.
引用
收藏
页码:849 / 857
页数:9
相关论文
共 82 条
[1]   Study of the Interactions Between Bacteriophage phiIPLA-RODI and Four Chemical Disinfectants for the Elimination of Staphylococcus aureus Contamination [J].
Agun, Seila ;
Fernandez, Lucia ;
Gonzalez-Menendez, Eva ;
Martinez, Beatriz ;
Rodriguez, Ana ;
Garcia, Pilar .
VIRUSES-BASEL, 2018, 10 (03)
[2]  
American Water Works Association, 2012, BUR NO LONG CONFR AM
[3]   Engineering Modular Viral Scaffolds for Targeted Bacterial Population Editing [J].
Ando, Hiroki ;
Lemire, Sebastien ;
Pires, Diana P. ;
Lu, Timothy K. .
CELL SYSTEMS, 2015, 1 (03) :187-196
[4]  
[Anonymous], 2009, Diarrhoea: Why children are still dying and what can be done
[5]   The hyaluronan lyase of Streptococcus pyogenes bacteriophage H4489A [J].
Baker, JR ;
Dong, SL ;
Pritchard, DG .
BIOCHEMICAL JOURNAL, 2002, 365 (01) :317-322
[6]   Phage Therapy for Plant Disease Control [J].
Balogh, B. ;
Jones, Jeffrey B. ;
Iriarte, F. B. ;
Momol, M. T. .
CURRENT PHARMACEUTICAL BIOTECHNOLOGY, 2010, 11 (01) :48-57
[7]   Species-level resolution of 16S rRNA gene amplicons sequenced through the MinION™ portable nanopore sequencer [J].
Benitez-Paez, Alfonso ;
Portune, Kevin J. ;
Sanz, Yolanda .
GIGASCIENCE, 2016, 5
[8]   Unlocking of the filamentous bacteriophage virion during infection is mediated by the C domain of pill [J].
Bennett, NJ ;
Rakonjac, J .
JOURNAL OF MOLECULAR BIOLOGY, 2006, 356 (02) :266-273
[9]   Back to the future: evolving bacteriophages to increase their effectiveness against the pathogen Pseudomonas aeruginosa PAO1 [J].
Betts, Alex ;
Vasse, Marie ;
Kaltz, Oliver ;
Hochberg, Michael E. .
EVOLUTIONARY APPLICATIONS, 2013, 6 (07) :1054-1063
[10]   Bacteriophage therapy for membrane biofouling in membrane bioreactors and antibiotic-resistant bacterial biofilms [J].
Bhattacharjee, Ananda Shankar ;
Choi, Jeongdong ;
Motlagh, Amir Mohaghegh ;
Mukherji, Sachiyo T. ;
Goel, Ramesh .
BIOTECHNOLOGY AND BIOENGINEERING, 2015, 112 (08) :1644-1654