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Dive into the research topics where Patrick Motte is active.

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Featured researches published by Patrick Motte.


Plant Physiology | 2016

Dynamic Distribution and Interaction of the Arabidopsis SRSF1 Subfamily Splicing Factors

Nancy Stankovic; Marie Schloesser; Marine Joris; Eric Sauvage; Marc Hanikenne; Patrick Motte

The RNA-binding domains of Arabidopsis SRSF1 splicing factors are required for nucleocytoplasmic dynamics and protein-protein interactions. Ser/Arg-rich (SR) proteins are essential nucleus-localized splicing factors. Our prior studies showed that Arabidopsis (Arabidopsis thaliana) RSZ22, a homolog of the human SRSF7 SR factor, exits the nucleus through two pathways, either dependent or independent on the XPO1 receptor. Here, we examined the expression profiles and shuttling dynamics of the Arabidopsis SRSF1 subfamily (SR30, SR34, SR34a, and SR34b) under control of their endogenous promoter in Arabidopsis and in transient expression assay. Due to its rapid nucleocytoplasmic shuttling and high expression level in transient assay, we analyzed the multiple determinants that regulate the localization and shuttling dynamics of SR34. By site-directed mutagenesis of SR34 RNA-binding sequences and Arg/Ser-rich (RS) domain, we further show that functional RRM1 or RRM2 are dispensable for the exclusive protein nuclear localization and speckle-like distribution. However, mutations of both RRMs induced aggregation of the protein whereas mutation in the RS domain decreased the stability of the protein and suppressed its nuclear accumulation. Furthermore, the RNA-binding motif mutants are defective for their export through the XPO1 (CRM1/Exportin-1) receptor pathway, but retain nucleocytoplasmic mobility. We performed a yeast two hybrid screen with SR34 as bait and discovered SR45 as a new interactor. SR45 is an unusual SR splicing factor bearing two RS domains. These interactions were confirmed in planta by FLIM-FRET and BiFC and the roles of SR34 domains in protein-protein interactions were further studied. Altogether, our report extends our understanding of shuttling dynamics of Arabidopsis SR splicing factors.


Plant Molecular Biology | 2016

Metal binding to the N-terminal cytoplasmic domain of the PIB ATPase HMA4 is required for metal transport in Arabidopsis.

Clémentine Laurent; Gilles Lekeux; Ashwinie A. Ukuwela; Zhiguang Xiao; Jean-Benoit Charlier; Bernard Bosman; Monique Carnol; Patrick Motte; Christian Damblon; Moreno Galleni; Marc Hanikenne

PIB ATPases are metal cation pumps that transport metals across membranes. These proteins possess N- and C-terminal cytoplasmic extensions that contain Cys- and His-rich high affinity metal binding domains, which may be involved in metal sensing, metal ion selectivity and/or in regulation of the pump activity. The PIB ATPase HMA4 (Heavy Metal ATPase 4) plays a central role in metal homeostasis in Arabidopsis thaliana and has a key function in zinc and cadmium hypertolerance and hyperaccumulation in the extremophile plant species Arabidopsis halleri. Here, we examined the function and structure of the N-terminal cytoplasmic metal-binding domain of HMA4. We mutagenized a conserved CCTSE metal-binding motif in the domain and assessed the impact of the mutations on protein function and localization in planta, on metal-binding properties in vitro and on protein structure by Nuclear Magnetic Resonance spectroscopy. The two Cys residues of the motif are essential for the function, but not for localization, of HMA4 in planta, whereas the Glu residue is important but not essential. These residues also determine zinc coordination and affinity. Zinc binding to the N-terminal domain is thus crucial for HMA4 protein function, whereas it is not required to maintain the protein structure. Altogether, combining in vivo and in vitro approaches in our study provides insights towards the molecular understanding of metal transport and specificity of metal P-type ATPases.


Archive | 2016

Characterization of FRD3, a iron and zinc homeostasis actor in Arabidopsis relatives

Maxime Scheepers; Jean Benoit Charlier; Julien Spielmann; Patrick Motte; Marc Hanikenne


Archive | 2017

Iron, zinc and manganese interaction within the frd3 Arabidopsis mutant

Maxime Scheepers; Julien Spielmann; Erik Goormaghtigh; Patrick Motte; Marc Hanikenne


Archive | 2017

Are plant fertility and metal homeostasis related? Focus on the role of AhZIP6 in Arabidopsis thaliana.

Julien Spielmann; Victor Deblander; Maxime Scheepers; Patrick Motte; Marc Hanikenne


Archive | 2016

Identification of proteins and RNA motifs associated with SR splicing factors from the RS2Z subfamily

Steven Fanara; Marc Hanikenne; Patrick Motte


Archive | 2016

Functional characterization and expression study of AhZIP6 in Arabidopsis thaliana.

Julien Spielmann; Victor Deblander; Maxime Scheepers; Patrick Motte; Marc Hanikenne


Archive | 2016

Functional study of serine/arginine-rich (SR) proteins: identification of interaction partners

Steven Fanara; Marc Hanikenne; Patrick Motte


Archive | 2016

Zinc, iron and manganese interaction within the frd3 Arabidopsis mutant

Maxime Scheepers; Julien Spielmann; Erik Goormaghtigh; Patrick Motte; Marc Hanikenne


Archive | 2016

Are metal homeostasis and plant fertility related? Focus on the impact of AhZIP6 in Arabidopsis thaliana.

Julien Spielmann; Victor Deblander; Maxime Scheepers; Patrick Motte; Marc Hanikenne

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Erik Goormaghtigh

Université libre de Bruxelles

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