Utilizing Nanomaterials Linked With Plant Growth-Promoting Bacteria For Agricultural Advancements A Short Review

Main Article Content

Deeti Das
Aritri Lah

Abstract

Growing concerns about food supply sustainability and security are driving
exploration of eco-friendly approaches in agriculture. One promising
method involves using microbe-based biofertilizers – beneficial bacteria
that enhance nutrient uptake and promote plant growth in soil and plants.
Nanotechnology is also valuable, as nanoparticles can boost biofertilizer
effectiveness in natural environments. Review examines how nanoparticles
affect plant bacteria for sustainable agriculture.

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How to Cite
Deeti Das, & Aritri Lah. (2023). Utilizing Nanomaterials Linked With Plant Growth-Promoting Bacteria For Agricultural Advancements A Short Review. Journal of Advanced Zoology, 44(S5), 2659–2664. https://doi.org/10.53555/jaz.v44iS5.3476
Section
Articles
Author Biographies

Deeti Das

Student of M.Sc., Department of Biotechnology, School of Life Sciences, Swami Vivekananda University,
Barrackpore, 700012, West Bengal, India

Aritri Lah

Assistant Professor, Department of Microbiology, School of Life Sciences, Swami Vivekananda University,
Barrackpore, 700012, West Bengal, India.

References

Batista BD, Lacava PT, Ferrari A et al (2018) Screening of tropically derived, multi-trait plant growthpromoting rhizobacteria and evaluation of corn and soybean colonization ability. Microbiol Res 206:33–

Bhattacharyya A, Duraisamy P, Govindarajan M, Buhroo AA, Prasad R (2016) Nanobiofungicides:

emerging trend in insect pest control. In: Prasad R (ed) Advances and applications through fungal

Nanobiotechnology. Springer International Publishing, Cham, pp 307–319.

Castro RA, Dourado MN, de Almeida JR et al (2018) Mangrove endophyte promotes reforestation tree

(Acacia polyphylla) growth. Braz J Microbiol 49:59–66.

Duhan JS, Kumar R, Kumar N et al (2017) Nanotechnology: the new perspective in precision agriculture.

Biotechnol Rep 15:11–23.

El-Ramady H, El-Ghamry A, Mosa A, Alshaal T (2018) Nanofertilizers vs. biofertilizers: new insights.

Environ Biodivers Soil Secur 2:51–72.

Glick BR (2020) Beneficial plant-bacterial interactions. Springer, Heidelberg.

Gond SK, Torres MS, Bergen MS, Helsel Z, White JFJR (2015) Induction of salt tolerance and

upregulation of aquaporin genes in tropical corn by rhizobacterium Pantoea agglomerans. Lett Appl

Microbiol 60(392):399.

Grand View Research (2020) Biofertilizers market size, share & growth report. Market Analysis Report.

Guan, X., Gao, X., Avellan, A., et al. (2020). CuO nanoparticles alter the rhizospheric bacterial

community and local nitrogen cycling for wheat grown in a calcareous soil. Environmental Science &

Technology, 54(14), 8699–8709.

Gurikar C, Naik MK, Sreenivasa MY (2016) Azotobacter: PGPR activities with special reference to the

effect of pesticides and biodegradation. In: Singh D, Singh H, Prabha R (eds) Microbial inoculants in

sustainable agricultural productivity. Springer, New Delhi, pp 229–244.Journal of Advanced Zoology

Available online at: https://jazindia.com 2663

Gutiérrez FJ, Mussons ML, Gatón P, Rojo R (2011) Nanotechnology and food industry. Scientific, health

and social aspects of the food industry. In: Scientific, health and social aspects of the food industry. Tech,

Croatia Book Chapter, pp 95–128.

Haris Z, Ahmad I (2017) Impact of metal oxide nanoparticles on beneficial soil microorganisms and their

secondary metabolites. Int J Life Sci Sci Res 3:1020–1030.

Hayden, S. C., Zhao, G., Saha, K., et al. (2012). Aggregation and interaction of cationic nanoparticles on

bacterial surfaces. Journal of the American Chemical Society, 134(18), 6920–6923.

Jeelani PG, Mulay P, Venkat R, Ramalingam C (2020) Multifaceted application of silica nanoparticles.

A review. SILICON 12:1337–1354.

Jha S, Pudake RN (2016) Molecular mechanism of plant-nanoparticles interactions. Plant Nanotechnol

Princ Pract 12:1337–1354.

Koul O (2019) Nano-biopesticides today and future perspectives. Academic Press.

Kour, D., Rana, K. L., Yadav, A. N., et al. (2020). Microbial biofertilizers: Bioresources and eco-friendly

technologies for agricultural and environmental sustainability. Biocatalysis, Agriculture and

Biotechnology, 23, 101487.

Kurdish IK (2019) Interaction of microorganisms with nanomaterials as a basis for the creation of highefficiency biotechnological preparations. In: Prasad R, Kumar V, Kumar M, Choudhary D (eds)

Nanotechnology in Bioformulations. Nanotechnology in the Life Sciences. Springer, Cham, pp 259–287.

Kumar A, Verma JP (2018) Does plant—microbe interaction confer stress tolerance in plants: a review?

Microbiol Res 207:41–52.

Laurenti, M., Garino, N., Porro, S., et al. (2015). Zinc oxide nanostructures by chemical vapour deposition

as anodes for Li-ion batteries. Journal of Alloy and Compounds, 640, 321–326.

Liang Y, Gao Y, Wang W et al (2020) Fabrication of smart stimuli-responsive mesoporous organosilica

nano-vehicles for targeted pesticide delivery. J Hazard Mater 389:122075.

Ma M, Jiang X, Wang Q et al (2018) Isolation and identification of PGPR strain and its effect on soybean

growth and soil bacterial community composition. Int J Agric Biol 20:1289–1297.

Meticulous Market Research Pvt. Ltd. (2017) Bio stimulants market- global opportunity analysis and

industry forecasts to 2022. Research and Markets.

Pallavi-Mehta CM, Srivastava R et al (2016) Impact assessment of silver nanoparticles on plant growth

and soil bacterial diversity. 3 Biotech 6:254.

Palmqvist NGM, Bejai S, Meijer J et al (2015) Nano titania aided clustering and adhesion of beneficial

bacteria to plant roots to enhance crop growth and stress management. Sci Rep 5:10146.

Prasad R, Bhattacharyya A, Nguyen QD (2017) Nanotechnology in sustainable agriculture: recent

developments, challenges, and perspectives. Front Microbiol 8:1014.

Praveen Kumar, G., Mir Hassan Ahmed, S. K., Desai, S., et al. (2014). In vitro screening for abiotic stress

tolerance in potent biocontrol and plant growth promoting strains of Pseudomonas and Bacillus spp.

International Journal of Bacteriology..

Quecine M, Batista B, Lacava P (2014) Diversity and biotechnological potential of plant-associated

endophytic bacteria. In: Kumar PA (ed) Biotechnology: plant biotechnology. Stadium Press LLC,

Houston, pp 377–423.

Seyed Sharifi, R., & Khoramdel, S. (2016). Effects of nano-zinc oxide and seed inoculation by plant

growth promoting rhizobacteria (PGPR) on yield, yield components, and grain filling period of soybean

(Glycine max L.). Iranian Journal of Field Crops Research, 13, 738–753.

Shukla SK, Kumar R, Mishra RK et al (2015) Prediction and validation of gold nanoparticles (GNPs) on

plant growth-promoting rhizobacteria (PGPR): a step toward development of nanobiofertilizers.

Nanotechnol Rev 4:439–448.

Shukla SK, Kumar R, Mishra RK et al (2015) Prediction and validation of gold nanoparticles (GNPs) on

plant growth-promoting rhizobacteria (PGPR): a step toward development of nanobiofertilizers.

Nanotechnol Rev 4:439–448.

Siddiqui MH, Al-Whaibi MH (2014) Role of nano-SiO2 in germination of tomato (Lycopersicum

esculentum seeds Mill.). Saudi J Biol Sci 21:13–17.

Singla A, Sankar KM, Singh Y (2020) Ecotoxicology: methods and risks. In: Kharissova O, Martínez L,

Kharisov B (eds) Handbook of nanomaterials and nanocomposites for energy and environmental

applications. Springer, Cham, pp 1–19.

Singh AV, Laux P, Luch A et al (2019) Review of emerging concepts in nanotoxicology: opportunities

and challenges for safer nanomaterials design. Toxicol Mech Methods 29:378–387.Journal of Advanced Zoology

Available online at: https://jazindia.com 2664

Singla A, Sankar KM, Singh Y (2020) Ecotoxicology: methods and risks. In: Kharissova O, Martínez L,

Kharisov B (eds) Handbook of nanomaterials and nanocomposites for energy and environmental

applications. Springer, Cham, pp 1–19.

Srivastava S, Bist V, Srivastava S et al (2016) Unraveling aspects of Bacillus amyloliquefaciens mediated

enhanced production of rice under biotic stress of Rhizoctonia solani. Front Plant Sci 7:587.

Sahu PK, Brahmaprakash GP (2016) Formulations of biofertilizers - approaches and advances. In: Singh

D, Singh H, Prabha R (eds) Microbial inoculants in sustainable agricultural productivity. Springer, New

Delhi, pp 179–198.

Thomas L, Singh I (2019) Microbial biofertilizers: types and applications. In: Giri B, Prasad R, Wu QS,

Varma A (eds) Biofertilizers for Sustainable Agriculture and Environment. Springer, Cham, pp 1–19.

Timmusk S, Behers L, Muthoni J et al (2017) Perspectives and challenges of microbial application for

crop improvement. Front Plant Sci 8:49.

Xu C, Lei C, Yu C (2019) Mesoporous silica nanoparticles for protein protection and delivery. Front

Chem 7:290.

Zand AD, Mikaeili Tabrizi A, Vaezi Heir A (2020) Application of titanium dioxide nanoparticles to

promote phytoremediation of Cd-polluted soil: contribution of PGPR inoculation. Bioremediat J 24:171–

Zhu JK (2002) Salt and drought stress signal transduction in plants. Annu Rev Plant Biol 53:247–273

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