Wolf B. Frommer

Active 1977–2025

Also published as
Wolf B Frommer
144
Papers
34,904
Citations
107
h-index
141
i10-index

Citations

Citations per year for Wolf B. Frommer1977: 3 citations1979: 6 citations1980: 1 citations1981: 6 citations1982: 3 citations1983: 2 citations1984: 7 citations1985: 3 citations1986: 6 citations1987: 5 citations1988: 3 citations1989: 4 citations1990: 16 citations1991: 5 citations1992: 10 citations1993: 16 citations1994: 38 citations1995: 61 citations1996: 59 citations1997: 73 citations1998: 106 citations1999: 119 citations2000: 168 citations2001: 128 citations2002: 131 citations2003: 176 citations2004: 293 citations2005: 195 citations2006: 258 citations2007: 260 citations2008: 240 citations2009: 248 citations2010: 274 citations2011: 301 citations2012: 276 citations2013: 267 citations2014: 264 citations2015: 373 citations2016: 239 citations2017: 306 citations2018: 283 citations2019: 669 citations2020: 697 citations2021: 818 citations2022: 660 citations2023: 441 citations2024: 617 citations2025: 346 citations1978: no citations, so this year is not shown

Citation sources

Countries

World map of the countries and regions citing this authorUnited States: 1,735 citing papers, 19.4% of this breakdownChina: 1,260 citing papers, 14.1% of this breakdownGermany: 1,140 citing papers, 12.7% of this breakdownUnited Kingdom: 524 citing papers, 5.8% of this breakdownJapan: 420 citing papers, 4.7% of this breakdownFrance: 408 citing papers, 4.6% of this breakdownIndia: 293 citing papers, 3.3% of this breakdownAustralia: 266 citing papers, 3% of this breakdownCanada: 208 citing papers, 2.3% of this breakdownSwitzerland: 196 citing papers, 2.2% of this breakdownItaly: 191 citing papers, 2.1% of this breakdownBelgium: 176 citing papers, 2% of this breakdown
0%19.4%Other 23.8%

Fields

  • Agricultural and Biological Sciences42.9%
  • Biochemistry, Genetics and Molecular Biology42.5%
  • Medicine4.8%
  • Neuroscience2.7%
  • Chemistry1.7%
  • Engineering1.3%
  • Other4.1%

Topics

  • Plant nutrient uptake and metabolism7.9%
  • Plant Molecular Biology Research7.6%
  • Photosynthetic Processes and Mechanisms5.9%
  • Plant Stress Responses and Tolerance4.1%
  • Plant Reproductive Biology3.6%
  • CRISPR and Genetic Engineering2.6%
  • Other68.3%

Coauthors

All papers

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  1. Broad-spectrum resistance to bacterial blight in rice using genome editing

    Authors: , , , , , , , , , , , , , , , , , , , , , - Nature Biotechnology 2019 cited by 844

  2. Sugar transporters for intercellular exchange and nutrition of pathogens

    Authors: , , , , , , , , , , , , , , , - Nature 2010 cited by 1,664

  3. Distinct identities of leaf phloem cells revealed by single cell transcriptomics

    Authors: , , , , , , , , , , , , , - The Plant Cell 2020 cited by 357

  4. Sucrose Efflux Mediated by SWEET Proteins as a Key Step for Phloem Transport

    Authors: , , , , , , - Science 2011 cited by 1,400

  5. Transport of Sugars

    Authors: , , , , - Annual Review of Biochemistry 2015 cited by 508

  6. SWEETs, transporters for intracellular and intercellular sugar translocation

    Authors: , , , , , , , - Current Opinion in Plant Biology 2015 cited by 572

  7. A Genetically Encoded FRET Lactate Sensor and Its Use To Detect the Warburg Effect in Single Cancer Cells

    Authors: , , , , , - PLoS ONE 2013 cited by 371

  8. Gene targeting by the TAL effector PthXo2 reveals cryptic resistance gene for bacterial blight of rice

    Authors: , , , , , , , , , , , - The Plant Journal 2015 cited by 557

  9. Simultaneous changes in seed size, oil content and protein content driven by selection of SWEET homologues during soybean domestication

    Authors: , , , , , , , , , , , , - National Science Review 2020 cited by 315

  10. An increasing number of countries regulate genome editing in crops

    Authors: , - New Phytologist 2022 cited by 124

  11. Seed filling in domesticated maize and rice depends on SWEET-mediated hexose transport

    Authors: , , , , , , , , , , , , , - Nature Genetics 2015 cited by 504

  12. The evolving landscape around genome editing in agriculture

    Authors: , , - EMBO Reports 2020 cited by 185

  13. The Selaginella Genome Identifies Genetic Changes Associated with the Evolution of Vascular Plants

    Authors: , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , Lydia Gramzow, Michael Gutensohn, Jesper Harholt, Mitsuru Hattori, Alexander Heyl, Tadayoshi Hirai, Yuji Hiwatashi, Masaki Ishikawa, Mineko Iwata, Kenneth G. Karol, Barbara Koehler, Uener Kolukisaoglu, Minoru Kubo, Tetsuya Kurata, Sylvie Lalonde, Kejie Li, Ying Li, Amy Litt, Eric Lyons, Gerard Manning, Takeshi Maruyama, Todd P. Michael, Koji Mikami, Saori Miyazaki, Shin‐Ichi Morinaga, Takashi Murata, Bernd Mueller‐Roeber, David R. Nelson, Mari Obara, Yasuko Oguri, Richard G. Olmstead, Naoko T. Onodera, Bent Larsen Petersen, Birgit Pils, Michael J. Prigge, Stefan A. Rensing, Diego Mauricio Riaño‐Pachón, Alison W. Roberts, Yoshikatsu Sato, Henrik Vibe Scheller, Burkhard Schulz, Christian Schulz, Eugene V. Shakirov, Nakako Shibagaki, Naoki Shinohara, Dorothy E. Shippen, Iben Sørensen, Ryo Sotooka, Nagisa Sugimoto, Mamoru Sugita, Naomi Sumikawa, Miloš Tanurdžić, Günter Theißen, Peter Ulvskov, Sachiko Wakazuki, Jing‐Ke Weng, William G. T. Willats, Daniel Wipf, Paul G. Wolf, Lixing Yang, Andreas Zimmer, Qihui Zhu, Therese Mitros, Uffe Hellsten, Dominique Loqué, Robert Otillar, Asaf Salamov, Jeremy Schmutz, Harris Shapiro, Erika Lindquist and 3 more - Science 2011 cited by 905

  14. In vivo gibberellin gradients visualized in rapidly elongating tissues

    Authors: , , , , - Nature Plants 2017 cited by 198

  15. GLUT1 and GLUT9 as major contributors to glucose influx in HepG2 cells identified by a high sensitivity intramolecular FRET glucose sensor

    Authors: , , - Biochimica et Biophysica Acta (BBA) - Biomembranes 2008 cited by 370

  16. Nectar secretion requires sucrose phosphate synthases and the sugar transporter SWEET9

    Authors: , , , , , , , , , , , , - Nature 2014 cited by 446

  17. Lateral organ boundaries 1 is a disease susceptibility gene for citrus bacterial canker disease

    Authors: , , , , , , , , , - National Academy of Sciences, Proceedings of the National Academy of Sciences 2014 cited by 350

  18. A Cascade of Sequentially Expressed Sucrose Transporters in the Seed Coat and Endosperm Provides Nutrition for the Arabidopsis Embryo

    Authors: , , , , , , , - The Plant Cell 2015 cited by 429

  19. Structure of a eukaryotic SWEET transporter in a homotrimeric complex

    Authors: , , , , , , , , - Nature 2015 cited by 224

  20. Abscisic acid dynamics in roots detected with genetically encoded FRET sensors

    Authors: , , , , , - eLife 2014 cited by 245

  21. 50 years of Arabidopsis research: highlights and future directions

    Authors: , , , , , , , , , , , , , , , , , , , , , , , , , - New Phytologist 2015 cited by 230

  22. Designs, applications, and limitations of genetically encoded fluorescent sensors to explore plant biology

    Authors: , , , , , , , - PLANT PHYSIOLOGY 2021 cited by 66

  23. Detection of glutamate release from neurons by genetically encoded surface-displayed FRET nanosensors

    Authors: , , , , , - National Academy of Sciences, Proceedings of the National Academy of Sciences 2005 cited by 394

  24. Arabidopsis LHT1 Is a High-Affinity Transporter for Cellular Amino Acid Uptake in Both Root Epidermis and Leaf Mesophyll

    Authors: , , , , , , , - The Plant Cell 2006 cited by 373