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Philip A. Wigge

Sainsbury Laboratory · DE
Area of research
Plant Science · Molecular Biology
Research interest
Research interests include Plant Molecular Biology Research, Photosynthetic Processes and Mechanisms, Light effects on plants, and Plant Reproductive Biology.
h-index
38
citations
13,463
works
109
NIH funding
primary concept
Biology
email

Recent publications

Heat stress induces the formation of unreduced male gametes by targeting translation in Arabidopsis meiocytes.
2026cited by 0position: contributordoi
Wounding activates the HSFA1 transcription factors to promote cellular reprogramming in Arabidopsis.
2026cited by 0position: contributordoi
Activation and memory of the heat shock response is mediated by prion-like domains of sensory HSFs in Arabidopsis.
2025cited by 10position: contributordoi
Wounding activates the HSFA1 transcription factors to promote cellular reprogramming in Arabidopsis
2025cited by 0position: contributordoi
Identification of core, conditional and crosstalk components of tomato heat stress response using integrative transcriptomics and orthology
2024cited by 2position: contributordoi
Molecular dynamics simulations illuminate the role of sequence context in the ELF3-PrD-based temperature sensing mechanism in plants
2024cited by 1position: contributordoi
WITHDRAWN: Molecular dynamics simulations illuminate the role of sequence context in the ELF3-PrD-based temperature sensing mechanism in plants
2024cited by 0position: contributordoi
Author response: Molecular dynamics simulations illuminate the role of sequence context in the ELF3-PrD-based temperature sensing mechanism in plants
2024cited by 0position: contributordoi
Molecular dynamics simulations illuminate the role of sequence context in the ELF3-PrD-based temperature sensing mechanism in plants
2024cited by 0position: contributordoi
Burning questions for a warming and changing world: 15 unknowns in plant abiotic stress.
2023cited by 93position: contributordoi
Phase separation and molecular ordering of the prion-like domain of the Arabidopsis thermosensory protein EARLY FLOWERING 3.
2023cited by 41position: contributordoi
25 Years of thermomorphogenesis research: milestones and perspectives
Trends in Plant Science 2023cited by 32position: middledoi
25 Years of thermomorphogenesis research: milestones and perspectives.
2023cited by 22position: contributordoi
Phytochromes transmit photoperiod information via the evening complex in Brachypodium.
2023cited by 11position: contributordoi
Phase separation and molecular ordering of the prion-like domain of the thermosensory protein EARLY FLOWERING 3
2023cited by 3position: contributordoi
Molecular dynamics simulations illuminate the role of sequence context in the ELF3-PrD-based temperature sensing mechanism in plants
2023cited by 0position: contributordoi
Burning questions for a warming and changing world: 15 unknowns in plant abiotic stress
The Plant Cell 2022cited by 153position: lastdoi
The evening complex integrates photoperiod signals to control flowering in rice.
2022cited by 52position: contributordoi
PHYTOCHROME-INTERACTING FACTORS: a promising tool to improve crop productivity.
2022cited by 19position: contributordoi
Heat stress induces unreduced male gamete formation by targeting meiocyte translation
2022cited by 3position: contributordoi
Fine tuning of hormonal signaling is linked to dormancy status in sweet cherry flower buds.
2021cited by 24position: contributordoi
Exploring <i>PIF4</i> <i>'s</i> contribution to early flowering in plants under daily variable temperature and its tissue-specific flowering gene network.
2021cited by 13position: contributordoi
A prion-like domain in ELF3 functions as a thermosensor in Arabidopsis.
2020cited by 496position: contributordoi
An RNA thermoswitch regulates daytime growth in Arabidopsis.
2020cited by 226position: contributordoi
The Evening Complex Establishes Repressive Chromatin Domains Via H2A.Z Deposition.
2020cited by 35position: contributordoi
Ribosomes act as cryosensors in plants
2020cited by 3position: contributordoi
Compartmentalized Synthesis of Triacylglycerol at the Inner Nuclear Membrane Regulates Nuclear Organization.
2019cited by 64position: contributordoi
ChIP-seq and RNA-seq for complex and low-abundance tree buds reveal chromatin and expression co-dynamics during sweet cherry bud dormancy
Tree Genetics & Genomes 2019cited by 40position: middledoi
LHY2 Integrates Night-Length Information to Determine Timing of Poplar Photoperiodic Growth.
2019cited by 37position: contributordoi
DEK influences the trade-off between growth and arrest via H2A.Z-nucleosomes in Arabidopsis
2019cited by 5position: contributordoi

Grants

No grants ingested yet.

Frequent collaborators

· 24 papers (2019–2026)Vitor B. P. Leite · American Chemical Society5 papers (2023–2024)Varodom Charoensawan · Siriraj Hospital3 papers (2019–2021) · 3 papers (2020–2026)Sandra Cortijo · Centre National de la Recherche Scientifique3 papers (2019–2021)Mark D Tully · University of Liverpool2 papers (2023–2023)Danny Geelen · Ghent University2 papers (2022–2026)Sonya M. Hanson · American Chemical Society2 papers (2023–2024)Martin Balcerowicz · University of Auckland2 papers (2019–2020)Pierre-Emmanuel Milhiet · Université d'Angers2 papers (2023–2023)Chunlian Jin · Yunnan Agricultural University2 papers (2022–2026) · 2 papers (2023–2023)Cédric Schindfessel · Universiteit Gent2 papers (2022–2026)Paloma Mas · Center for Research in Agricultural Genomics2 papers (2020–2023)Wai Li Ling · Institut de Biologie Structurale2 papers (2023–2023)Luca Costa · Centre National de la Recherche Scientifique2 papers (2023–2023)Yutaka Kodama · Utsunomiya University2 papers (2025–2026)Luis Andrade · Instituto de Tecnología Química2 papers (2022–2022)Albert Cairó · Central European Institute of Technology2 papers (2022–2026)Karel Riha · American Society of Plant Biologists2 papers (2022–2026)