Harnessing the holobiont to alleviate the stress of aluminum toxicity to rice

Hong-Zhe Li, Yong-Guan Zhu

PDF(1153 KB)
PDF(1153 KB)
Soil Ecology Letters ›› 2024, Vol. 6 ›› Issue (1) : 230201. DOI: 10.1007/s42832-023-0201-7
COMMENTARY

Harnessing the holobiont to alleviate the stress of aluminum toxicity to rice

Author information +
History +

Graphical abstract

Cite this article

Download citation ▾
Hong-Zhe Li, Yong-Guan Zhu. Harnessing the holobiont to alleviate the stress of aluminum toxicity to rice. Soil Ecology Letters, 2024, 6(1): 230201 https://doi.org/10.1007/s42832-023-0201-7

References

[1]
Carthey, A.J., Blumstein, D.T., Gallagher, R.V., Tetu, S.G., Gillings, M.R., 2020. Conserving the holobiont. Functional Ecology34, 764–776.
CrossRef Google scholar
[2]
Degenhardt, J., Larsen, P.B., Howell, S.H., Kochian, L.V., 1998. Aluminum resistance in the Arabidopsis mutant alr-104 is caused by an aluminum-induced increase in rhizosphere pH. Plant Physiology117, 19–27.
CrossRef Google scholar
[3]
Huang, G., Liang, W., Sturrock, C.J., Pandey, B.K., Giri, J., Mairhofer, S., Wang, D., Muller, L., Tan, H., York, L.M., Yang, J., Song, Y., Kim, Y.J., Qiao, Y., Xu, J., Kepinski, S., Bennett, M.J., Zhang, D., 2018. Rice actin binding protein RMD controls crown root angle in response to external phosphate. Nature Communications9, 2346.
CrossRef Google scholar
[4]
Jurburg, S.D., Eisenhauer, N., Buscot, F., Chatzinotas, A., Chaudhari, N.M., Heintz-Buschart, A., Kallies, R., Küsel, K., Litchman, E., Macdonald, C.A., Müller, S., Reuben, R.C., da Rocha, U.N., Panagiotou, G., Rillig, M.C., Singh, B.K., 2022. Potential of microbiome-based solutions for agrifood systems. Nature Food3, 557–560.
CrossRef Google scholar
[5]
Kochian, L.V., Piñeros, M.A., Liu, J., Magalhaes, J.V., 2015. Plant adaptation to acid soils: the molecular basis for crop aluminum resistance. Annual Review of Plant Biology66, 571–598.
CrossRef Google scholar
[6]
Liu, C., Jiang, M., Yuan, M.M., Wang, E., Bai, Y., Crowther, T.W., Zhou, J., Ma, Z., Zhang, L., Wang, Y., Ding, J., Liu, W., Sun, B., Shen, R., Zhang, J., Liang, Y., 2023. Root microbiota confers rice resistance to aluminium toxicity and phosphorus deficiency in acidic soils. Nature Food4, 1–13.
CrossRef Google scholar
[7]
Mazza Rodrigues, J.L., Melotto, M., 2023. Naturally engineered plant microbiomes in resource-limited ecosystems. Trends in Microbiology31, 329–331.
CrossRef Google scholar
[8]
Nannipieri, P., Giagnoni, L., Landi, L., Renella, G., 2011. Phosphorus in action. Soil Biology26, 215–243.
CrossRef Google scholar
[9]
Nkoh, J.N., Yan, J., Xu, R.K., Shi, R.Y., Hong, Z., 2020. The mechanism for inhibiting acidification of variable charge soils by adhered Pseudomonas fluorescens. Environmental Pollution260, 114049.
CrossRef Google scholar
[10]
Wubs, E.R.J., van der Putten, W.H., Bosch, M., Bezemer, T.M., 2016. Soil inoculation steers restoration of terrestrial ecosystems. Nature Plants2, 16107.
CrossRef Google scholar
[11]
Yang, Z.B., Rao, I.M., Horst, W.J., 2013. Interaction of aluminium and drought stress on root growth and crop yield on acid soils. Plant and Soil372, 3–25.
CrossRef Google scholar
[12]
Yoshida, N., Yano, T., Kedo, K., Fujiyoshi, T., Nagai, R., Iwano, M., Taguchi, E., Nishida, T., Takagi, H., 2017. A unique intracellular compartment formed during the oligotrophic growth of Rhodococcus erythropolis N9T–4. Applied Microbiology and Biotechnology101, 331–340.
CrossRef Google scholar
[13]
Zhong, C., Fu, J., Jiang, T., Zhang, C., Cao, G., 2018. Polyphosphate metabolic gene expression analyses reveal mechanisms of phosphorus accumulation and release in Microlunatus phosphovorus strain JN459. FEMS Microbiology Letters365, fny034.
CrossRef Google scholar
[14]
Zou, T., Zhang, X., Davidson, E., 2022. Global trends of cropland phosphorus use and sustainability challenges. Nature611, 81–87.
CrossRef Google scholar

RIGHTS & PERMISSIONS

2023 Higher Education Press
AI Summary AI Mindmap
PDF(1153 KB)

Accesses

Citations

Detail

Sections
Recommended

/