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Urbez, C.

Publications and source records attributed to Urbez, C..

4 recordsLinked to original sources

The structure of the R2T complex reveals a different architecture of the related HSP90 co-chaperones R2T and R2TP

Heat shock protein 90 (HSP90) is a molecular chaperone that contributes to the maturation and activation of substrates in multiple cellular pathways. Its activity is supported by various co-chaperones. One of these is R2TP, a complex of RuvBL1-RuvBL2-RPAP3-PIH1D1 in humans, which is involved in the assembly of various multiprotein complexes, including mTORC1 and Box C/D and Box H/ACA snoRNPs. Structural analyses have shown that the complex is organized around a heterohexameric ring of the ATPases RuvBL1-RuvBL2 in both yeast and humans. In addition, several R2TP-like co-chaperones have been identified in humans, such as R2T, which lacks PIH1D1, but these are less well characterized. In seed plants, there are no PIH1D1 orthologs. Here, we have identified the R2T complex of Arabidopsis and determined its cryoEM structure. R2T associates with the prefoldin-like complex in vivo and is located in the cytosolic and nuclear compartments. R2T is organized as a dodecamer of AtRuvBL1-AtRuvBL2a that forms two rings, with one AtRPAP3 anchored to each ring. AtRPAP3 has no effect on the ATPase activity of AtRuvBL1-AtRuvBL2a and binds with a different stoichiometry than that described for human R2TP. We show the interaction of AtRPAP3 with AtRuvBL2a and AtHSP90 in vivo and describe the residues involved. Taken together, our results show that AtRPAP3 recruits AtRuvBL1-AtRuvBL2a and AtHSP90 via a mechanism that is also conserved in other eukaryotes, but that R2T and R2TP co-chaperone complexes have distinct structures that also suggest differences in their functions and mechanisms.

biochemistry↗

The prefoldin-like protein AtURI exhibits characteristics of instrinsically disordered proteins.

The prefoldin-like protein UNCONVENTIONAL PREFOLDIN RPB5 INTERACTOR (URI) participates in diverse cellular functions, including protein homeostasis, transcription, translation, and signal transduction. Thus, URI is a highly versatile protein, although the molecular basis of this versatility remains unknown. In this work, we show that Arabidopsis thaliana (Arabidopsis) URI (AtURI) possesses a large intrinsically disordered region (IDR) spanning most of the C-terminal part of the protein, a feature conserved in yeast and human orthologs. Our findings reveal two key characteristics of disordered proteins in AtURI: promiscuity in interacting with partners and protein instability. We propose that these two features contribute to providing AtURI with functional versatility.

plant biology↗

DELLA Proteins Recruit the Mediator Complex Subunit MED15 to Co-activate Transcription in Land Plants

DELLA proteins are negative regulators of the gibberellin response pathway in angiosperms, acting as central hubs that interact with hundreds of transcription factors and regulators to modulate their activities. While the mechanism of transcription factor sequestration by DELLAs to prevent DNA binding to downstream targets has been extensively documented, the mechanism that allows them to act as co-activators remains to be understood. Here, we demonstrate that DELLAs directly recruit the Mediator complex to specific loci in Arabidopsis, facilitating transcription. This recruitment involves DELLA amino-terminal domain and the conserved MED15 KIX domain. Accordingly, partial loss of MED15 function mainly disrupted processes known to rely on DELLA co-activation capacity; including cytokinin-dependent regulation of meristem function and skotomorphogenic response, gibberellin metabolism feedback, and flavonol production. We have also found that the single DELLA protein in the liverwort Marchantia polymorpha is capable of recruiting MpMED15 subunits, contributing to transcriptional co-activation. The conservation of Mediator-dependent transcriptional co-activation by DELLA between Arabidopsis and Marchantia implies that this mechanism is intrinsic to the emergence of DELLA in the last common ancestor of land plants. Significance StatementDELLA proteins are plant-specific transcriptional hubs integrating environmental signals with endogenous cues. In order to regulate downstream processes, DELLAs modulate the activity of hundreds of transcription factors and transcriptional regulators in various ways. Here, we describe the molecular mechanism underlying DELLA co-activator function. We show that DELLAs act as transcriptional activators in eukaryotic cells by interacting with the Mediator complex subunit MED15. Mediator function is necessary to regulate a subset of DELLA-regulated responses that are mediated by direct co-activation of DELLA-Transcription factors complexes. We further show that this mechanism is present in bryophyte DELLAs, and thus represents a conserved mechanism of DELLA function in land plants.

plant biology↗

MeC3HDZ1/MeCNA is a strong candidate for cassava storage root productivity improvement.

The storage root (SR) of cassava is the main staple food in sub-Saharan Africa, where it feeds over 500 million people. However, little is known about the genetic and molecular regulation underlying its development. Unraveling such regulation would pave the way for biotechnology approaches aimed at enhancing cassava productivity. Anatomical studies indicate that SR development relies on the massive accumulation of xylem parenchyma, a cell-type derived from the vascular cambium. The C3HDZ family of transcription factors regulate cambial cells proliferation and xylem differentiation in Arabidopsis and other species. We thus aimed at identifying C3HDZ proteins in cassava and determining whether any of them shows preferential activity in the SR cambium and/or xylem. Using phylogeny and synteny studies, we identified eight C3HDZ proteins in cassava, namely MeCH3DZ1-8. We observed that the expression of MeC3HDZ1 in SR cambium and xylem is higher than that of any other MeC3HDZ gene in any of the SR vascular tissues or any of the other vegetative organs. We established an in-silico pipeline which revealed the existence of a number of theoretical C3HDZ targets displaying significant preferential expression in the SR. Subsequent Y1H analyses proved that MeC3HDZ1 can bind canonical C3HDZ binding sites in the promoters of these targets. Transactivation assays demonstrated that MeC3HDZ1 can regulate the expression of genes downstream of promoters harboring such binding sites, thereby demonstrating that MeC3HDZ1 is a C3HDZ transcription factor which constitutes a strong candidate for future biotechnology strategies directed at increasing cassava productivity.

plant biology↗