Impact of transgenic plants on microbial communities of soil and plants: a systematic review

Authors

  • Angie S. Carrero-Ramírez Universidad Colegio Mayor de Cundinamarca image/svg+xml
  • Laura J. Carrillo-Menjura Universidad Colegio Mayor de Cundinamarca image/svg+xml
  • Ligia C. Sánchez-Leal Universidad Colegio Mayor de Cundinamarca image/svg+xml

DOI:

https://doi.org/10.33975/riuq.vol34n1.501

Keywords:

Rhizosphere, pollination, bacteria

Abstract

The objective of this work is to determine the changes in the bacterial community structure in transgenic maize crops as well as their impact on other plants. The methodology used consisted of a search for original publications in four databases and their subsequent filtering by inclusion and exclusion criteria. In the results, a total of 15 articles were obtained, 13 of which compared a transgenic corn with its hybrid or wild counterpart in its rhizosphere and endosphere composition and the changes that these presented; on the other hand, 2 of these articles mentioned the crossbreeding that may exist between a transgenic crop and a non-transgenic one due to their type of pollination. In conclusion, the changes found in the rhizosphere and endosphere are not significant and are due to a process of adaptation of the microorganisms, and there must be minimum standards for growing transgenic corn to protect non-transgenic species.

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References

Andow, D. A. (2009). Genetically Modified Plants. In V. H. Resh & R. T. Cardé (Eds.), Encyclopedia of Insects (Second Edition, pp. 406–410). Elsevier Inc. https://doi.org/10.1016/B978-0-12-374144-8.00116-8

Bai, X., Zeng, X., Huang, S., Liang, J., Dong, L., Wei, Y., Li, Y., Qu, J., & Wang, Z. (2019). Marginal impact of cropping BADH transgenic maize BZ-136 on chemical property, enzyme activity, and bacterial community diversity of rhizosphere soil. Plant and Soil, 436(1–2), 527–541. https://doi.org/10.1007/s11104-019-03941-1

Becker, R., Bubner, B., Remus, R., Wirth, S., & Ulrich, A. (2014). Impact of multi-resistant transgenic Bt maize on straw decomposition and the involved microbial communities. Applied Soil Ecology, 73, 9–18. https://doi.org/10.1016/j.apsoil.2013.08.002

Bumunang, E. W., Babalola, O. O., & Barros, E. (2013). Bacterial community profiling in the rhizosphere of field grown GM and non-GM maize. Oriental Scientific Publishing. https://researchspace.csir.co.za/dspace/handle/10204/6754

Carreón-Herrera, N. I., López-Sánchez, H., Gil-Muñoz, A., López, P. A., Gutiérrez-Espinosa, M. A., & Valadez-Moctezuma, E. (2011). Flujo génico entre maíces comercializados por Diconsa y poblaciones nativas en la Mixteca Poblana TT - Gene flow between maize commercialized by Diconsa and native populatios at the Mixteca of Puebla. Revista mexicana de ciencias agrícolas, 2(6), 939–953. http://www.scielo.org.mx/scielo.php?script=sci_arttext&pid=S2007-09342011000600011&lang=es

Chaparro-Giraldo, A., Blanco M., J. T., & López-Pazos, S. A. (2015). Evidence of gene flow between transgenic and non-transgenic maize in Colombia TT - Evidencia de flujo de genes entre maíces transgénicos y no transgénicos in Colombia. Agronomía Colombiana, 33(3), 297–304. https://doi.org/10.15446/agron.colomb.v33n3.51505

Cotta, S. R., Dias, A. C. F., Marriel, I. E., Gomes, E. A., Van Elsas, J. D., & Seldin, L. (2013). Temporal dynamics of microbial communities in the rhizosphere of two genetically modified (GM) maize hybrids in tropical agrosystems. Antonie van Leeuwenhoek, International Journal of General and Molecular Microbiology, 103(3), 589–601. https://doi.org/10.1007/s10482-012-9843-7

Cotta, S. R., Franco Dias, A. C., Marriel, I. E., Andreote, F. D., Seldin, L., & van Elsas, J. D. (2014). Different effects of transgenic maize and nontransgenic maize on nitrogen-transforming archaea and bacteria in tropical soils. Applied and Environmental Microbiology, 80(20), 6437–6445. https://doi.org/10.1128/AEM.01778-14

Ferreira Da Silva, D. A., Cotta, S. R., Vollú, R. E., De Jurelevicius, D. A., Marques, J. M., Marriel, I. E., & Seldin, L. (2014). Endophytic microbial community in two transgenic maize genotypes and in their near-isogenic non-transgenic maize genotype. BMC Microbiology, 14(1). https://doi.org/10.1186/s12866-014-0332-1

Guzmán H, M., San Vicente G, F., & Díaz M, D. (2008). Flujo de polen entre híbridos tropicales de Maíz de diferente color de endospermo TT - Gene flow between tropical maize hybrids with different endosperm color. Bioagro, 20(3), 159–166. http://ve.scielo.org/scielo.php?script=sci_arttext&pid=S1316-33612008000300002&lang=es

Instituto Colombiano Agropecuario - ICA. (2020). https://www.ica.gov.co/home

International Service for the Acquisition of Agri-biotech Applications - ISAAA.org. (2020). http://www.isaaa.org/

Jiménez-Barreto, J., Chaparro-Giraldo, A., Mora-Oberlaender, J., & Vargas-Sánchez, J. E. (2016). Molecular characterization and Freedom to Operate analysis of maize hybrids from genetically modified and Colombian varieties TT - Caracterización molecular y análisis de libertad de operación de híbridos de maíz de variedades colombianas y genéticamente. Agronomía Colombiana, 34(3), 309–316. https://doi.org/10.15446/agron.colomb.v34n3.60350

Lee, Y.-E., Yang, S.-H., Bae, T.-W., Kang, H.-G., Lim, P.-O., & Lee, H.-Y. (2011, April). Effects of field-grown genetically modified Zoysia grass on bacterial community structure - PubMed. J Microbiol Biotechnol , 333–340. https://pubmed.ncbi.nlm.nih.gov/21532315/

Lu, G. H., Zhu, Y. L., Kong, L. R., Cheng, J., Tang, C. Y., Hua, X. M., Meng, F. F., Pang, Y. J., Yang, R. W., Qi, J. L., & Yang, Y. H. (2017). Impact of a glyphosate-tolerant soybean line on the rhizobacteria, revealed by illumina Miseq. Journal of Microbiology and Biotechnology, 27(3), 561–572. https://doi.org/10.4014/jmb.1609.09008

Mandal, A., Sarkar, B., Owens, G., Thakur, J. K., Manna, M. C., Niazi, N. K., Jayaraman, S., & Patra, A. K. (2020). Impact of genetically modified crops on rhizosphere microorganisms and processes: A review focusing on Bt cotton. Applied Soil Ecology, 148, 1–12. https://doi.org/10.1016/j.apsoil.2019.103492

Mashiane, R. A., Ezeokoli, O. T., Adeleke, R. A., & Bezuidenhout, C. C. (2017). Metagenomic analyses of bacterial endophytes associated with the phyllosphere of a Bt maize cultivar and its isogenic parental line from South Africa. World Journal of Microbiology and Biotechnology, 33(4), 1–12. https://doi.org/10.1007/s11274-017-2249-y

Passricha, N., Saifi, S. K., Negi, H., Tuteja, R., & Tuteja, N. (2020). Transgenic approach in crop improvement. In N. Tuteja, N. Passricha, R. Tuteja, & S. K. Saifi (Eds.), Advancement in Crop Improvement Techniques (pp. 329–350). Elsevier Inc. . https://doi.org/10.1016/b978-0-12-818581-0.00020-6

Szoboszlay, M., Näther, A., Mullins, E., & Tebbe, C. C. (2019). Annual replication is essential in evaluating the response of the soil microbiome to the genetic modification of maize in different biogeographical regions. PLoS ONE, 14(12). https://doi.org/10.1371/journal.pone.0222737

Tenoury, P., Laich, F., Porcuna, J., & Jaizme-Vega, M. (2012). Efecto del cultivo de maíz transgénico sobre la actividad microbiológica del suelo. https://www.agroecologia.net/recursos/publicaciones/actas/cd-actas-xcongresoseae/actas/comunicaciones/71-maiz-jaizme.pdf

Vital-López, L., Cruz-Hernández, M. A., Fernández-Dávila, S., & Mendoza-Herrera, A. (2016). Bacterial diversity in the rhizosphere of a transgenic versus a conventional maize (Zea mays) - Diversidad bacteriana en la rizosfera de un maíz (Zea mays) transgénico versus otro convencional. Phyton (Buenos Aires), 85(2), 210–217. http://www.scielo.org.ar/scielo.php?script=sci_arttext&pid=S1851-56572016000200006&lang=es

Vital-Lopez, L., Cruz-Hernandez, M., Fernandez-Davila, S., & Mendoza-Herrera, A. (2015). Diversidad bacteriana en raíces de maíz híbrido convencional y genéticamente modificado. Phyton (Buenos Aires), 84(1), 233–243. http://www.scielo.org.ar/scielo.php?script=sci_arttext&pid=S1851-56572015000100030&lng=es./

Xie, M., Zhang, Y.-J., Peng, D.-L., Li, Q., Hu, X.-P., & Zhang, Z.-R. (2017). No Significant Impact of Transgenic Cry1Ab/1Ac Cotton on Rhizosphere-Soil Enzyme Activities and Bacterial Communities. Agronomy Journal, 109(4), 1271–1279. https://doi.org/10.2134/agronj2016.10.0618

Zeng, H., Tan, F., Shu, Y., Zhang, Y., Feng, Y., & Wang, J. (2015). The Cry1Ab Protein Has Minor Effects on the Arbuscular Mycorrhizal Fungal Communities after Five Seasons of Continuous Bt Maize Cultivation. PLOS ONE, 10(12), e0146041. https://doi.org/10.1371/journal.pone.0146041

Zhou, X., Liang, J., Luan, Y., Song, X., & Zhang, Z. (2020). The influence of genetically modified glyphosate-tolerant maize CC-2 on rhizosphere bacterial communities revealed by miseq sequencing. Plant, Soil and Environment, 66(8), 387–394. https://doi.org/10.17221/216/2020-PSE

Published

2022-06-30

Issue

Section

Original Article

How to Cite

Impact of transgenic plants on microbial communities of soil and plants: a systematic review. (2022). Revista De Investigaciones Universidad Del Quindío, 34(1), 192-201. https://doi.org/10.33975/riuq.vol34n1.501