Destruction of Cell Topography, Morphology, Membrane, Inhibition of Respiration, Biofilm Formation, and Bioactive Molecule Production by Nanoparticles of Ag, ZnO, CuO, TiO2, and Al2O3 toward Beneficial Soil Bacteria

被引:140
作者
Ahmed, Bilal [1 ]
Ameen, Fuad [2 ]
Rizvi, Asfa [1 ]
Ali, Khursheed [1 ]
Sonbol, Hana [3 ]
Zaidi, Almas [1 ]
Khan, Mohammad Saghir [1 ]
Musarrat, Javed [1 ,4 ]
机构
[1] Aligarh Muslim Univ, Dept Agr Microbiol, Aligarh 202002, Uttar Pradesh, India
[2] King Saud Univ, Coll Sci, Dept Bot & Microbiol, Riyadh 11451, Saudi Arabia
[3] Princess Nourah Bint Abdulrahman Univ, Coll Sci, Dept Biol, Riyadh 11671, Saudi Arabia
[4] Baba Ghulam Shah Badshah Univ, Sch Biosci & Biotechnol, Rajouri 185234, Jammu & Kashmir, India
关键词
METAL-OXIDE NANOPARTICLES; SILVER NANOPARTICLES; ESCHERICHIA-COLI; OXIDATIVE STRESS; ZINC-OXIDE; ANTIBACTERIAL; GROWTH; CYTOTOXICITY; SEPARATION; RELEASE;
D O I
10.1021/acsomega.9b04084
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The unregulated discharge of nanoparticles (NPs) from various nanotechnology industries into the environment is expected to alter the composition and physiological functions of soil microbiota. Considering this knowledge gap, the impact of five NPs (Ag, ZnO, CuO, Al2O3, and TiO2) differing in size and morphology on growth behavior and physiological activity of Azotobacter chroococcum, Bacillus thuringiensis, Pseudomonas mosselii, and Sinorhizobium meliloti were investigated. Various biochemical and microscopic approaches were adopted. Interestingly, all bacterial strains were found sensitive to Ag-NPs and ZnO-NPs but showed tolerance toward CuO, Al2O3, and TiO2-NPs. The loss of cellular respiration due to NPs was coupled with a reduction in population size. ZnO-NPs at 387.5 erg mL(-1) had a maximum inhibitory impact on A. chroococcum and reduced its population by 72%. Under Ag-NP stress, the reduction in IAA secretion by bacterial strains followed the order S. meliloti (74%) > P. mosselii (63%) > A. chroococcum (49%). The surface of bacterial cells had small- or large-sized aggregates of NPs. Also, numerous gaps, pits, fragmented, and disorganized cell envelopes were visible. Additionally, a treated cell surface appeared corrugated with depressions and alteration in cell length and a strong heterogeneity was noticed under atomic force microscopy (AFM). For instance, NPs induced cell roughness for P. mosselii followed the order 12.6 nm (control) > 58 nm (Ag-NPs) > 41 nm (ZnO-NPs). TEM analysis showed aberrant morphology, cracking, and disruption of the cell envelope with extracellular electrondense materials. Increased permeability of the inner cell membrane caused cell death and lowered EPS production. Ag-NPs and ZnO-NPs also disrupted the surface adhering ability of bacteria, which varied with time and concentration of NPs. Conclusively, a plausible mechanism of NP toxicity to bacteria has been proposed to understand the mechanistic basis of ecological interaction between NPs and resourceful bacteria. These results also emphasize to develop strategies for the safe disposal of NPs.
引用
收藏
页码:7861 / 7876
页数:16
相关论文
共 75 条
[1]   Understanding the phyto-interaction of heavy metal oxide bulk and nanoparticles: evaluation of seed germination, growth, bioaccumulation, and metallothionein production [J].
Ahmed, Bilal ;
Rizvi, Asfa ;
Zaidi, Almas ;
Khan, Mohammad Saghir ;
Musarrat, Javed .
RSC ADVANCES, 2019, 9 (08) :4210-4225
[2]   ROS mediated destruction of cell membrane, growth and biofilms of human bacterial pathogens by stable metallic AgNPs functionalized from bell pepper extract and quercetin [J].
Ahmed, Bilal ;
Hashmi, Anam ;
Khan, Mohammad Saghir ;
Musarrat, Javed .
ADVANCED POWDER TECHNOLOGY, 2018, 29 (07) :1601-1616
[3]   Uptake and translocation of metals and nutrients in tomato grown in soil polluted with metal oxide (CeO2, Fe3O4, SnO2, TiO2) or metallic (Ag, Co, Ni) engineered nanoparticles [J].
Antisari, Livia Vittori ;
Carbone, Serena ;
Gatti, Antonietta ;
Vianello, Gilmo ;
Nannipieri, Paolo .
ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2015, 22 (03) :1841-1853
[4]  
Arakha M, 2018, SER BIOENG, P1, DOI 10.1007/978-3-319-73326-5
[5]   Amendment of Agricultural Soil with Metal Nanoparticles: Effects on Soil Enzyme Activity and Microbial Community Composition [J].
Asadishad, Bahareh ;
Chahal, Shawninder ;
Akbari, Ali ;
Cianciarelli, Vanessa ;
Azodi, Mehrnoosh ;
Ghoshal, Subhasis ;
Tufenkji, Nathalie .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2018, 52 (04) :1908-1918
[6]   A New Strategy for Heavy Metal Polluted Environments: A Review of Microbial Biosorbents [J].
Ayangbenro, Ayansina Segun ;
Babalola, Olubukola Oluranti .
INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH, 2017, 14 (01)
[7]  
Barhoum A., 2018, FUNDAMENTALS NANOPAR, P605
[8]   Plasma membrane is the target of rapid antibacterial action of silver nanoparticles in Escherichia coli and Pseudomonas aeruginosa [J].
Bondarenko, Olesja M. ;
Sihtmae, Mariliis ;
Kuzmiciova, Julia ;
Rageliene, Lina ;
Kahru, Anne ;
Daugelavicius, Rimantas .
INTERNATIONAL JOURNAL OF NANOMEDICINE, 2018, 13 :6779-6790
[9]   RAPID INSITU ASSAY FOR INDOLEACETIC-ACID PRODUCTION BY BACTERIA IMMOBILIZED ON A NITROCELLULOSE MEMBRANE [J].
BRIC, JM ;
BOSTOCK, RM ;
SILVERSTONE, SE .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1991, 57 (02) :535-538
[10]  
Brown J., 2017, NANOTECHNOLOGIES ENV, P255, DOI DOI 10.1007/978-3-319-53162-5_9