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Biology subjects

Ferreira, M. J.

Publications and source records attributed to Ferreira, M. J..

5 recordsLinked to original sources

AGP-Ca2+ binding is essential for pollen development and pollen tube growth in Arabidopsis thaliana

Arabinogalactan-proteins (AGPs) are highly glycosylated cell wall proteins essential for plant reproduction, although their mode of action remains unclear. AGPs have been proposed to bind and store calcium (Ca2+) in the apoplast via glucuronic acid (GlcA) residues added by glucuronosyltransferases (GLCATs), potentially acting as Ca2+ capacitors. Here we report that Ca2+ binding by AGPs is required for successful double fertilisation in Arabidopsis. Analysis of glcat14a glcat14b glcat14d triple mutants revealed reduced seed set due to the abortion of pollen grains, which lacked cytoplasmic content and an intine layer, as confirmed by the absence of cellulose, resembling the phenotype of AGP-deficient mutants. When grown under Ca2+-deficient conditions, GLCAT mutants showed exacerbated and conditional reproductive defects that were attenuated under standard Ca2+ conditions. Our findings establish a functional requirement for GlcA-mediated Ca2+ binding by AGPs and support their role as apoplastic Ca2+ stores essential for male fertility and reproductive success in plants.

plant biology↗

A room-temperature ⁸⁹Zr⁴⁺ radiolabelling strategy for small extracellular vesicles with enhanced plasma stability for PET Imaging

Both for diagnostic purposes and regenerative medicine, it is essential to develop advanced imaging platforms capable of tracking the biodistribution of small extracellular vesicles (sEVs), as current methods are limited by inadequate resolution and sensitivity. In this study, we introduce a novel labeling strategy utilizing the radioisotope zirconium-89 (89Zr), which boasts a half-life of 78.4 h and is cost-effective to produce. To achieve this, we designed a new chelator tailored for 89Zr4+ that offers enhanced stability compared to the conventional deferoxamine (DFO). This chelator forms a robust complex with 89Zr4+ at room temperature, suitable for sEV labeling for PET imaging applications. The radiolabeling process involved a two-step procedure: first, conjugation of the chelator to the sEVs, and second, radiolabeling with 89Zr4+. The resulting sEV-L1-Zr demonstrated a radiochemical yield of approximately 60% and maintained around 80% stability in plasma over seven days. Importantly, our modifications did not alter the morphology, surface protein composition, internal RNA content, or bioactivity of the sEVs. We successfully visualized sEVs at very low doses in the mouse heart following intravenous injection of sEV-L1-Zr. Additionally, ex vivo experiments using a Langendorff rat heart perfusion model confirmed targeted accumulation of the vesicles in cardiomyocytes as compared to other cells in the heart compartment. This approach provides a promising platform for sensitive and stable in vivo tracking of sEVs, advancing their application in both diagnostic imaging and regenerative therapies.

bioengineering↗

FtsW protein-protein interactions visualized in live Staphylococcus aureus cells by FLIM-FRET

The bacterial cell cycle relies on the coordinated and dynamic interactions between division proteins and those involved in peptidoglycan (PG) synthesis. However, visualizing these interactions in vivo remains technically challenging. Here, we established fluorescence-lifetime imaging microscopy combined with Forster resonance energy transfer (FLIM-FRET) as a robust, spatially resolved technique to visualize protein interactions in living Staphylococcus aureus using fluorescent proteins. After systematically optimizing growth conditions and the analysis pipeline, we validated the method with cytosolic and membrane-anchored control proteins, achieving FRET efficiencies of up to 40%. Using FLIM-FRET, we mapped the protein interactions of the critical glycosyltransferase FtsW within the septal PG synthesizing complex. We confirmed its interaction with the cognate transpeptidase PBP1 and the regulatory protein DivIB. Notably, we found that FtsW also self-interacts, an observation corroborated by an alternative FLIM-FRET method employing Halo-Tag labelled with Janelia Fluor dyes. These findings support the hypothesis that septal PG synthesis may be carried out by a complex of multimers, capable of simultaneously synthesizing more than one glycan strand. Inhibition of PG synthesis by directly targeting PBP1 with the beta-lactam antibiotic imipenem weakened the interaction between PBP1 and FtsW, whereas the FtsW self-interaction was enhanced in a dose-dependent manner. In contrast, inhibition of PG synthesis by targeting the lipid II flippase, therefore depleting the FtsW-PBP1 substrate from the outer surface of the cell membrane, had little effect on these interactions. This suggests that alterations in FtsW interactions result primarily from antibiotic-induced conformational changes or from uncoupling the activities of FtsW and PBP1, resulting in the presence of uncrosslinked glycans, rather than merely from a loss of PG synthesis activity.

microbiology↗

PEX39 facilitates the peroxisomal import of PTS2 proteins

Peroxisomes are metabolic organelles essential for human health. Defects in peroxisomal biogenesis proteins (peroxins/PEXs) cause devastating disease. PEX7 binds newly synthesized proteins containing a type 2 peroxisomal targeting signal (PTS2) to enable their import from the cytosol into peroxisomes, although many aspects of this import pathway remain enigmatic. Utilizing in vitro assays, yeast, and human cells, we show that PEX39, a previously uncharacterized protein, is a cytosolic peroxin that facilitates PTS2-protein import by binding PEX7 and stabilizing its interaction with PTS2 cargo. PEX39 and PEX13, a peroxisomal membrane translocon protein, both possess a KPWE motif necessary for PEX7 binding. Sequential binding of PEX7 to this motif in PEX39 and PEX13 provides a novel paradigm for how PTS2 cargo engage the translocation machinery. Collectively, our work uncovers an ancient and functionally important relationship among PEX39, PEX7, and PEX13, offering insights that will advance our understanding of peroxisomal biogenesis and disease.

cell biology↗

Transcriptomic landscape of seedstick in Arabidopsis thaliana funiculus after fertilisation

In Angiosperms, the continuation of plant species is intricately dependent on the funiculus multifaceted role in nutrient transport, mechanical support, and dehiscence of seeds. SEEDSTICK (STK) is a MADS-box transcription factor involved in seed size and dehiscence, and one of the few genes identified as affecting funiculus growth. Given the importance of the funiculus to a correct seed development, allied with previous phenotypic observations of stk mutants, we performed a transcriptomic analysis of stk funiculi, using RNA-sequencing, to infer on the deregulated networks of genes. The generated dataset of differentially expressed genes was enriched with cell wall biogenesis, cell cycle, sugar metabolism and transport terms, all in accordance with stk phenotype. We selected eight differentially expressed genes involved with abscission, seed development or novel functions in stk funiculus, such as hormones/secondary metabolites transport, for transcriptome validation using qPCR and/or promoter reporter lines. Overall, the analysis performed in this study allowed delving into the STK-network established in Arabidopsis funiculus, fulfilling a literature gap. Simultaneously, our findings reinforced the reliability of the transcriptome, and identified processes and new candidate genes that will enable a better understanding on the role of this sporophytic structure and how seed development may be affected by it.

plant biology↗