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Vacuolar processing enzymes (VPEs) have received considerable attention recently, as they exhibit caspase-1-like cleavage activity and regulate the process of PCD. However, knowledge about their detailed characteristics and structures is relatively limited. In this study, a gamma vacuolar processing enzyme gene, MhVPEγ, has been isolated from the leaves of Malus hupehensis (Ramp) Rehd. var pinyiensis Jiang. MhVPEγ coded-translated protein sequence comprised of 494 amino acids with a signal peptide and a transmembrane helix structure at N-terminal, peptidase_C13 domain, and vacuolar sorting signal at C-terminal. Consequently, genomic walking approach was performed for the isolation of its upstream sequence. Computational analysis demonstrated several motifs of the promoter exhibiting hypothetic MeJA, ABA, and light-induced characteristics, as well as some typical domains universally discovered in promoter, such as TATA-box and CAAT-box. MhVPEγ transcript level was enhanced during wounding treatment, and WUN-motif, as one of the cis-acting regulatory elements existing in the upstream sequence perhaps regulates its expression. In silico-constructed 3D models revealed that MhCPYL successively interacts with MhVPEγ like that of "Induced Fit-Lock and Key" model, providing molecular conformation evidence that CPY is a direct substrate of VPEγ. This study is the first stride to understand the molecular mechanism of VPEγ and CPYL interactions.
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http://dx.doi.org/10.1007/s12010-014-0867-5 | DOI Listing |
Pest Manag Sci
September 2025
Saint-Jean-sur-Richelieu Research and Development Centre, Agriculture and Agri-Food Canada, Saint-Jean-sur-Richelieu, Quebec, Canada.
Background: Glyphosate resistance in Conyza canadensis (Canada fleabane) has been primarily attributed to non-target-site resistance (NTSR) mechanisms such as vacuolar sequestration, though these have not been formally elucidated. While a target-site mutation at EPSPS2 (P106S) was recently identified, it failed to account for many resistant cases. These findings underscore the need to re-evaluate the genetic basis of glyphosate resistance in this species.
View Article and Find Full Text PDFJ Biol Chem
September 2025
The Autophagy Lab, Institute of Pathobiochemistry, University Medical Centre of the Johannes Gutenberg University, Mainz, Germany.
Alpha-Synuclein (αSyn), a hallmark protein of synucleinopathies such as Parkinson's disease, is likely to be involved in neuronal membrane trafficking and synaptic vesicle dynamics at axon terminals. Its specific binding to anionic phospholipids, such as phosphatidylinositol phosphates (PIPs) that are essential for intracellular signaling and membrane trafficking, suggests an involvement in vesicular transport processes. In Saccharomyces cerevisiae, a model organism for cell biological PD research, human αSyn localises to the plasma membrane via the secretory machinery.
View Article and Find Full Text PDFJ Cell Biol
September 2025
Department of Neuroscience, Yale University School of Medicine, New Haven, CT, USA.
BLTP2/KIAA0100, a bridge-like lipid transfer protein, was reported to localize at contacts of the ER with either the plasma membrane (PM) or recycling tubular endosomes depending on the cell type. Our findings suggest that mediating bulk lipid transport between the ER and the PM is a key function of this protein, as BLTP2 tethers the ER to tubular endosomes only after they become continuous with the PM and that it also tethers the ER to macropinosomes in the process of fusing with the PM. We further identify interactions underlying binding of BLTP2 to the PM, including phosphoinositides, the adaptor proteins FAM102A/FAM102B, and N-BAR domain proteins at membrane-connected tubules.
View Article and Find Full Text PDFVirulence
December 2025
State Key Laboratory for Conservation and Utilization of Bio-Resources in Yunnan, Key Laboratory for Southwest Microbial Diversity of the Ministry of Education, and School of Life Science, Yunnan University, Kunming, China.
Vacuoles are essential organelles in eukaryotic cells, playing key roles in cellular homeostasis through nutrient sensing, osmoregulation, and autophagy. In filamentous fungi, vacuole dynamics are crucial for mycelial growth, stress response, and pathogenicity. The vacuolar functions and their regulation in nematode-trapping (NT) fungi remain poorly understood.
View Article and Find Full Text PDFJ Eukaryot Microbiol
September 2025
SUGAR, X-Star, Japan Agency for Marine-Earth Science and Technology (JAMSTEC), Yokosuka, Japan.
Benthic Foraminifera exhibit diverse adaptations to low oxygen (O) environments, including denitrification, a rare trait among eukaryotes. Denitrifying species store intracellular nitrate (NO ), possibly within vacuoles, and contribute significantly to the global marine nitrogen (N) cycle. Additionally, widespread phosphate (PO ) accumulation suggests a role in supporting metabolism under O-depleted conditions.
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