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Biology subjects

Rubio, L.

Publications and source records attributed to Rubio, L..

3 recordsLinked to original sources

A role for root carbonic anhydrase βCA4 in bicarbonate tolerance of Arabidopsis thaliana

Carbonic anhydrases (CAs) are the main enzymes handling bicarbonate in the different cell compartments. This study analyses the expression of CAs in roots of Arabidopsis thaliana demes differing in tolerance to bicarbonate: the tolerant A1(c+) deme and the sensitive deme, T6(c-). While 10 mM NaCl caused a transient depolarization of the root cell membranes, 10 mM NaHCO3 caused hyperpolarization. This hyperpolarization was much stronger in A1(c+) than in T6(c-). Acetazolamide (AZ), a specific inhibitor of CAs, abolished the hyperpolarizing effect in A1(c+), indicating the implication of CAs in this fast membrane response. The time dependent (3 to 72 h) expression profiles of 14 CAs (CA1-8 and {beta}CA1-6) in roots of A1(c+) and T6(c-) exposed to either control or NaHCO3 (pH 8.3) revealed a bicarbonate specific upregulation of {beta}CA4.1 (from 3 to 12 h) and, although to a lesser extent, of {beta}CA3 in A1(c+). Contrastingly, in T6(c-) {beta}CA4 was downregulated by NaHCO3. Exclusively in A1(c+), the enhanced expression of {beta}CA4 under bicarbonate was parallelled by an increase of PIP1,3, SLAH1, SLAH3, AHA2, and FRO2 gene expression levels. Under HCO3 - exposure, a {beta}ca4 knockout mutant had lower number of lateral roots, lower root diameter and higher MDA root concentrations than the WT. The obtained results indicate that bicarbonate induced root membrane hyperpolarization is the fast (minutes) initial signalling event in the tolerance response, followed by the specific upregulation of {beta}CA4.1 and the genes involved in H20 and CO2 transport, apoplast acidification, ion homeostasis and iron acquisition.

plant biology↗

Unravelling Different Biological Roles Of Plant Synaptotagmins

Endoplasmic Reticulum-Plasma Membrane contact sites (ER-PM CS) are evolutionarily conserved membrane domains found in all eukaryotes, where the endoplasmic reticulum (ER) closely interfaces with the plasma membrane (PM). This short distance, typically 10-30 nm, is achieved in Arabidopsis through the action of tether proteins such as Synaptotagmins (SYTs). Arabidopsis comprises five SYT members (SYT1-SYT5), but whether they possess overlapping or distinct biological functions remains elusive. SYT1 is the best-characterized gene member and plays an essential role in the resistance to abiotic stress. This study reveals that while the functionally redundant SYT1 and SYT3 genes are involved in salt and cold stress resistance, SYT5 is associated with Pseudomonas syringae resistance despite evidence of in vivo interaction between SYT1 and SYT5. Structural phylogenetic analysis indicates that SYT1 and SYT5 clades emerged early in the evolution of land plants. These protein clades exhibit different structural features, rationalizing their distinct biological roles.

plant biology↗

E4F1 COORDINATES PYRUVATE METABOLISM AND THE ACTIVITY OF THE ELONGATOR COMPLEX TO ENSURE PROTEIN TRANSLATION FIDELITY DURING NEURONAL DEVELOPMENT

Pyruvate metabolism defects lead to severe neuropathies such as the Leigh syndrome (LS) but the molecular mechanisms underlying neuronal cell death remain poorly understood. Here, we unravel a connection between pyruvate metabolism and the regulation of the epitranscriptome that is relevant to LS pathogenesis. We identified the transcription factor E4F1 as a key coordinator of AcetylCoenzyme A (AcCoA) production by the pyruvate dehydrogenase complex (PDC) and its utilization as an essential co-factor by the Elongator complex to acetylate tRNAs at the wobble position uridine 34 (U34). E4F1-mediated direct transcriptional regulation of Dlat and Elp3, two genes encoding key subunits of the PDC and of the Elongator complex, respectively, ensured proper translation fidelity and cell survival in the central nervous system (CNS) during mouse embryonic development. Furthermore, analysis of PDH-deficient cells highlighted a crosstalk linking the PDC to ELP3 expression that is perturbed in LS patients.

developmental biology↗