» Authors » Geert Persiau

Geert Persiau

Explore the profile of Geert Persiau including associated specialties, affiliations and a list of published articles. Areas
Snapshot
Articles 30
Citations 1356
Followers 0
Related Specialties
Top 10 Co-Authors
Published In
Affiliations
Soon will be listed here.
Recent Articles
1.
Persyn F, Smagghe W, Eeckhout D, Mertens T, Smorscek T, De Winne N, et al.
Mol Cell Proteomics . 2024 Sep; 23(10):100842. PMID: 39307424
Nitrogen (N) is of utmost importance for plant growth and development. Multiple studies have shown that N signaling is tightly coupled with carbon (C) levels, but the interplay between C/N...
2.
Safi A, Smagghe W, Goncalves A, Wang Q, Xu K, Fernandez A, et al.
Plant Cell . 2023 Jun; 35(9):3280-3302. PMID: 37378595
Protein activities depend heavily on protein complex formation and dynamic posttranslational modifications, such as phosphorylation. The dynamic nature of protein complex formation and posttranslational modifications is notoriously difficult to monitor...
3.
Van Leene J, Eeckhout D, Gadeyne A, Matthijs C, Han C, De Winne N, et al.
Nat Plants . 2022 Nov; 8(11):1245-1261. PMID: 36376753
The central metabolic regulator SnRK1 controls plant growth and survival upon activation by energy depletion, but detailed molecular insight into its regulation and downstream targets is limited. Here we used...
4.
Gong P, Bontinck M, Demuynck K, De Block J, Gevaert K, Eeckhout D, et al.
Plant Physiol . 2021 Nov; 188(1):411-424. PMID: 34791456
SAMBA has been identified as a plant-specific regulator of the anaphase-promoting complex/cyclosome (APC/C) that controls unidirectional cell cycle progression in Arabidopsis (Arabidopsis thaliana), but so far its role has not...
5.
Struk S, De Cuyper C, Jacobs A, Braem L, Walton A, De Keyser A, et al.
Mol Cell Proteomics . 2020 Dec; 20:100040. PMID: 33372050
The F-box protein MORE AXILLARY GROWTH 2 (MAX2) is a central component in the signaling cascade of strigolactones (SLs) as well as of the smoke-derived karrikins (KARs) and the so...
6.
Smith S, Zhu S, Joos L, Roberts I, Nikonorova N, Vu L, et al.
Mol Cell Proteomics . 2020 May; 19(8):1248-1262. PMID: 32404488
Peptides derived from non-functional precursors play important roles in various developmental processes, but also in (a)biotic stress signaling. Our (phospho)proteome-wide analyses of C-TERMINALLY ENCODED PEPTIDE 5 (CEP5)-mediated changes revealed an...
7.
Hurny A, Cuesta C, Cavallari N, Otvos K, Duclercq J, Dokladal L, et al.
Nat Commun . 2020 May; 11(1):2170. PMID: 32358503
Plants as non-mobile organisms constantly integrate varying environmental signals to flexibly adapt their growth and development. Local fluctuations in water and nutrient availability, sudden changes in temperature or other abiotic...
8.
Vanhaeren H, Chen Y, Vermeersch M, De Milde L, De Vleeschhauwer V, Natran A, et al.
Elife . 2020 Mar; 9. PMID: 32209225
Protein ubiquitination is a very diverse post-translational modification leading to protein degradation or delocalization, or altering protein activity. In , two E3 ligases, BIG BROTHER (BB) and DA2, activate the...
9.
Van Leene J, Han C, Gadeyne A, Eeckhout D, Matthijs C, Cannoot B, et al.
Nat Plants . 2019 Mar; 5(3):316-327. PMID: 30833711
The target of rapamycin (TOR) kinase is a conserved regulatory hub that translates environmental and nutritional information into permissive or restrictive growth decisions. Despite the increased appreciation of the essential...
10.
Struk S, Braem L, Walton A, De Keyser A, Boyer F, Persiau G, et al.
Front Plant Sci . 2018 May; 9:528. PMID: 29755490
Phytohormones tightly regulate plant growth by integrating changing environmental and developmental cues. Although the key players have been identified in many plant hormonal pathways, the molecular mechanisms and mode of...