Nanoimpact in Plants: Lessons from the Transcriptome
Abstract
:1. Introduction
2. Physico-Chemical Properties of Nanomaterials and Implications for Plant Toxicology
3. Applications, Production, and Release to the Environment
4. The Scales of Ecotoxicity for Nanomaterials Using Plant Assays
5. Presence and Generational Transmission of Nanomaterials in Crop Plants
6. Transcriptomics Studies in Plants to Evaluate Nanoimpact
6.1. Green Algae
6.1.1. Chlamydomonas Reinhardtii
6.1.2. Microcosm Transcriptional Response
6.2. Higher Plants
6.2.1. Tomato
6.2.2. Arabidopsis
Impact of Silver NPs Exposure on Arabidopsis Transcriptome
7. Comparative Analysis of Transcriptomic Changes Induced by Nanoparticles and Other Environmental Challenges
7.1. In Silico Comparison of Ag NPs with Abiotic Stressors
7.2. In Vivo Comparisons with Biotic and Abiotic Stressors
8. Transcriptomic Signatures of NP Exposure in Plants
8.1. NP Exposure Produces Specific Transcriptional Patterns Related to Abiotic Stress
8.2. NP Exposure Has a Low Impact on the Plant Transcriptome
Size-Dependent Effects of NPs
8.3. Transcriptional Inhibition as a Feature of Early NP-Exposure
8.4. NPs Repress Genes That Are Activated during Plant Response to Biotic Stress
8.5. Exposure to NPs Represses Root Morphogenesis and Phosphate-Starvation Responses
9. Future Perspectives
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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García-Sánchez, S.; Gala, M.; Žoldák, G. Nanoimpact in Plants: Lessons from the Transcriptome. Plants 2021, 10, 751. https://doi.org/10.3390/plants10040751
García-Sánchez S, Gala M, Žoldák G. Nanoimpact in Plants: Lessons from the Transcriptome. Plants. 2021; 10(4):751. https://doi.org/10.3390/plants10040751
Chicago/Turabian StyleGarcía-Sánchez, Susana, Michal Gala, and Gabriel Žoldák. 2021. "Nanoimpact in Plants: Lessons from the Transcriptome" Plants 10, no. 4: 751. https://doi.org/10.3390/plants10040751
APA StyleGarcía-Sánchez, S., Gala, M., & Žoldák, G. (2021). Nanoimpact in Plants: Lessons from the Transcriptome. Plants, 10(4), 751. https://doi.org/10.3390/plants10040751