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32 results on '"Kohki Yoshimoto"'

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1. Autophagy triggered by iron‐mediated <scp>ER</scp> stress is an important stress response to the early phase of Pi starvation in plants

2. Intracellular phosphate recycling systems for survival during phosphate starvation in plants

3. Seed dormancy 4 like1 of Arabidopsis is a key regulator of phase transition from embryo to vegetative development

4. Autophagy balances the zinc–iron seesaw caused by Zn-stress

5. A proposed role for endomembrane trafficking processes in regulating tonoplast content and vacuole dynamics under ammonium stress conditions in Arabidopsis root cells

6. Ammonium stress increases microautophagic activity while impairing macroautophagic flux in Arabidopsis roots

7. Optimal Distribution of Iron to Sink Organs via Autophagy Is Important for Tolerance to Excess Zinc in Arabidopsis

8. Editorial: Organelle Autophagy in Plant Development

9. Importance of non-systemic leaf autophagy for suppression of zinc starvation induced-chlorosis

10. Autophagy Increases Zinc Bioavailability to Avoid Light-Mediated Reactive Oxygen Species Production under Zinc Deficiency

11. Unveiling the molecular mechanisms of plant autophagy – from autophagosomes to vacuoles in plants

12. Autophagy controls resource allocation and protein storage accumulation in Arabidopsis seeds

13. Autophagy, plant senescence, and nutrient recycling

14. Autophagy machinery controls nitrogen remobilization at the whole‐plant level under both limiting and ample nitrate conditions in Arabidopsis

15. Autophagy Negatively Regulates Cell Death by Controlling NPR1-Dependent Salicylic Acid Signaling during Senescence and the Innate Immune Response inArabidopsis

16. Mobilization of Rubisco and Stroma-Localized Fluorescent Proteins of Chloroplasts to the Vacuole by anATGGene-Dependent Autophagic Process

17. An Arabidopsis Homolog of YeastATG6/VPS30Is Essential for Pollen Germination

18. Processing of ATG8s, ubiquitin-like proteins, and their deconjugation by ATG4s are essential for plant autophagy

19. A Novel Selection Method Based on the Expression Level of Green Fluorescent Protein Measured with a Quantitative Fluorescence Imager

20. Stitching together the multiple dimensions of autophagy using metabolomics and transcriptomics reveals impacts on metabolism, development, and plant responses to the environment in arabidopsis

21. Autophagy as a possible mechanism for micronutrient remobilization from leaves to seeds

22. Assessment and optimization of autophagy monitoring methods in Arabidopsis roots indicate direct fusion of autophagosomes with vacuoles

23. Comparison of Strength of Endogenous and Exogenous Gene Promoters in Arabidopsis Chloroplasts

24. Highly Oxidized Peroxisomes Are Selectively Degraded via Autophagy in Arabidopsis[C][W]

25. Physiological and metabolic consequences of autophagy deficiency for the management of nitrogen and protein resources in Arabidopsis leaves depending on nitrate availability

26. Beginning to Understand Autophagy, an Intracellular Self-Degradation System in Plants

27. A possible involvement of autophagy in amyloplast degradation in columella cells during hydrotropic response of Arabidopsis roots

28. The Rab GTPase RabG3b functions in autophagy and contributes to tracheary element differentiation in Arabidopsis

29. Physiological roles of autophagy in plants: does plant autophagy have a pro-death function?

30. Chloroplasts autophagy during senescence of individually darkened leaves

31. AtATG genes, homologs of yeast autophagy genes, are involved in constitutive autophagy in Arabidopsis root tip cells

32. Non-invasive quantitative detection and applications of non-toxic, S65T-type green fluorescent protein in living plants

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