Yi-Fang Tsay
#64,322
Most Influential Person Now
Taiwanese botanist
Yi-Fang Tsay's AcademicInfluence.com Rankings
Yi-Fang Tsaybiology Degrees
Biology
#10543
World Rank
#13876
Historical Rank
Botany
#659
World Rank
#1737
Historical Rank
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Biology
Yi-Fang Tsay's Degrees
- Bachelors Botany National Taiwan University
- Masters Botany National Taiwan University
- PhD Botany National Taiwan University
Why Is Yi-Fang Tsay Influential?
(Suggest an Edit or Addition)According to Wikipedia, Yi-Fang Tsay is a Taiwanese botanist. She is a distinguished research fellow at the Institute of Molecular Biology, Academia Sinica. Education For high school she attended Taipei First Girls' High School. She received her bachelor's and master's degree from Department of Botany, National Taiwan University. In 1990 she completed her PhD in biological sciences at Carnegie Mellon University.
Yi-Fang Tsay's Published Works
Published Works
- CHL1 Functions as a Nitrate Sensor in Plants (2009) (989)
- The herbicide sensitivity gene CHL1 of arabidopsis encodes a nitrate-inducible nitrate transporter (1993) (702)
- Nitrate transporters and peptide transporters (2007) (513)
- Uptake, allocation and signaling of nitrate. (2012) (495)
- A unified nomenclature of NITRATE TRANSPORTER 1/PEPTIDE TRANSPORTER family members in plants. (2014) (490)
- CHL1 Is a Dual-Affinity Nitrate Transporter of Arabidopsis Involved in Multiple Phases of Nitrate Uptake (1999) (464)
- Switching between the two action modes of the dual‐affinity nitrate transporter CHL1 by phosphorylation (2003) (436)
- Using membrane transporters to improve crops for sustainable food production (2013) (405)
- Mutation of the Arabidopsis NRT1.5 Nitrate Transporter Causes Defective Root-to-Shoot Nitrate Transport[W][OA] (2008) (391)
- Cloning and Functional Characterization of an Arabidopsis Nitrate Transporter Gene That Encodes a Constitutive Component of Low-Affinity Uptake (1999) (348)
- Nitrate signaling: adaptation to fluctuating environments. (2010) (312)
- AtCIPK8, a CBL-interacting protein kinase, regulates the low-affinity phase of the primary nitrate response. (2009) (293)
- Nitrate Transport, Signaling, and Use Efficiency. (2018) (283)
- The Arabidopsis Nitrate Transporter NRT1.7, Expressed in Phloem, Is Responsible for Source-to-Sink Remobilization of Nitrate[W][OA] (2009) (279)
- Mutation of a nitrate transporter, AtNRT1:4, results in a reduced petiole nitrate content and altered leaf development. (2004) (197)
- CHL1 encodes a component of the low-affinity nitrate uptake system in Arabidopsis and shows cell type-specific expression in roots. (1996) (187)
- Arabidopsis Nitrate Transporter NRT1.9 Is Important in Phloem Nitrate Transport[W][OA] (2011) (183)
- Characterization of the Arabidopsis Nitrate Transporter NRT1.6 Reveals a Role of Nitrate in Early Embryo Development[W][OA] (2008) (169)
- Cloning and functional characterization of a constitutively expressed nitrate transporter gene, OsNRT1, from rice. (2000) (153)
- Yeast ribosomal protein L1 is required for the stability of newly synthesized 5S rRNA and the assembly of 60S ribosomal subunits (1993) (139)
- Two Phloem Nitrate Transporters, NRT1.11 and NRT1.12, Are Important for Redistributing Xylem-Borne Nitrate to Enhance Plant Growth1[C][W][OPEN] (2013) (133)
- Depletion of yeast ribosomal proteins L16 or rp59 disrupts ribosome assembly (1990) (117)
- Integration of nitrogen and potassium signaling. (2011) (109)
- Nitrate, ammonium, and potassium sensing and signaling. (2010) (108)
- A Nodule-Specific Dicarboxylate Transporter from Alder Is a Member of the Peptide Transporter Family1 (2004) (105)
- Mechanisms and Functional Properties of Two Peptide Transporters, AtPTR2 and fPTR2* (2004) (88)
- Ribosomal protein synthesis is not regulated at the translational level in Saccharomyces cerevisiae: balanced accumulation of ribosomal proteins L16 and rp59 is mediated by turnover of excess protein. (1988) (83)
- Disruption of the rice nitrate transporter OsNPF2.2 hinders root-to-shoot nitrate transport and vascular development (2015) (72)
- Influence of differing nitrate and nitrogen availability on flowering control in Arabidopsis. (2017) (63)
- Improving nitrogen use efficiency by manipulating nitrate remobilization in plants (2020) (56)
- The Arabidopsis CPSF30-L gene plays an essential role in nitrate signaling and regulates the nitrate transceptor gene NRT1.1. (2017) (44)
- Tag1 is an autonomous transposable element that shows somatic excision in both Arabidopsis and tobacco. (1997) (33)
- Plant science: How to switch affinity (2014) (27)
- Localization of Saccharomyces cerevisiae ribosomal protein L16 on the surface of 60 S ribosomal subunits by immunoelectron microscopy. (1994) (16)
- Identification of two tungstate-sensitive molybdenum cofactor mutants,chl2 andchl7, ofArabidopsis thaliana (1992) (13)
- Potential transceptor AtNRT1.13 modulates shoot architecture and flowering time in a nitrate-dependent manner (2021) (12)
- Transport Systems Of Mineral Elements In Plants: Transporters, Regulation And Utilization. (2021) (8)
- Erratum to: “Uptake, allocation and signaling of nitrate”: [Trends in Plant Sciences 17 (2012) 458-467] (2012) (7)
- The Role of Plasma Membrane Nitrogen Transporters in Nitrogen Acquisition and Utilization (2011) (5)
- Cloning and Functional Characterization of a Constitutively Expressed Nitrate Transporter Gene , OsNRT 1 , from Rice 1 (2000) (2)
- Study of vacuole glycerate transporter NPF8.4 reveals a new role of photorespiration in C/N balance. (2023) (0)
- Interplay Between NIN-LIKE PROTEINs 6 and 7 in Nitrate Signaling. (2023) (0)
- The role of Arabidopsis nitrate transporter NRT1.9 in phloem nitrate transport (2011) (0)
- Genetic Analysis of Yeast Ribosome Biogenesis and Function (1988) (0)
- Faculty Opinions recommendation of A phytochrome-B-mediated regulatory mechanism of phosphorus acquisition. (2019) (0)
- Faculty Opinions recommendation of Functional analysis of the OsNPF4.5 nitrate transporter reveals a conserved mycorrhizal pathway of nitrogen acquisition in plants. (2020) (0)
- Corrigendum to: Potential transceptor AtNRT1.13 modulates shoot architecture and flowering time in a nitrate-dependent manner (2021) (0)
- Faculty Opinions recommendation of Natural variation of BSK3 tunes brassinosteroid signaling to regulate root foraging under low nitrogen. (2019) (0)
- AtCIPK8, a CBL-interacting protein kinase, regulate the primary nitrate response in the low-affinity phase (2008) (0)
- Unbalancing Symbiotic Nitrogen Fixation: Can We Make Effectiveness More Effective? (2021) (0)
- Integrating membrane transport, signaling and physiology. (2021) (0)
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