Arabidopsis NPF4.6 and NPF5.1 Control Leaf Stomatal Aperture by Regulating Abscisic Acid Transport
Abstract
:1. Introduction
2. Materials and Methods
2.1. Plant Materials and Growth Conditions
2.2. Germination Assays
2.3. Vector Construction
2.4. Thermal Imaging
2.5. GUS Staining
2.6. Transport Assays
2.7. ABA Measurements
2.8. Chemicals
2.9. Quantitative Reverse Transcription-PCR
2.10. Transient Expression of GPF Fused NPF5.1 in Onion Epidermal Cells
3. Results
3.1. NPF4.6 Mediates ABA Uptake into Guard Cells
3.2. Identification of Another NPF That Regulates Stomatal Aperture
3.3. NPF5.1 Has an ABA Uptake Activity
3.4. Endogenous ABA Levels in NPF5.1
3.5. Spatial Expression Patterns of NPF5.1
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Shimizu, T.; Kanno, Y.; Suzuki, H.; Watanabe, S.; Seo, M. Arabidopsis NPF4.6 and NPF5.1 Control Leaf Stomatal Aperture by Regulating Abscisic Acid Transport. Genes 2021, 12, 885. https://doi.org/10.3390/genes12060885
Shimizu T, Kanno Y, Suzuki H, Watanabe S, Seo M. Arabidopsis NPF4.6 and NPF5.1 Control Leaf Stomatal Aperture by Regulating Abscisic Acid Transport. Genes. 2021; 12(6):885. https://doi.org/10.3390/genes12060885
Chicago/Turabian StyleShimizu, Takafumi, Yuri Kanno, Hiromi Suzuki, Shunsuke Watanabe, and Mitsunori Seo. 2021. "Arabidopsis NPF4.6 and NPF5.1 Control Leaf Stomatal Aperture by Regulating Abscisic Acid Transport" Genes 12, no. 6: 885. https://doi.org/10.3390/genes12060885
APA StyleShimizu, T., Kanno, Y., Suzuki, H., Watanabe, S., & Seo, M. (2021). Arabidopsis NPF4.6 and NPF5.1 Control Leaf Stomatal Aperture by Regulating Abscisic Acid Transport. Genes, 12(6), 885. https://doi.org/10.3390/genes12060885