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1.
Cell Mol Life Sci ; 81(1): 249, 2024 Jun 05.
Article En | MEDLINE | ID: mdl-38836877

Protein ubiquitination is one of the most important posttranslational modifications (PTMs) in eukaryotes and is involved in the regulation of almost all cellular signaling pathways. The intracellular bacterial pathogen Legionella pneumophila translocates at least 26 effectors to hijack host ubiquitination signaling via distinct mechanisms. Among these effectors, SidC/SdcA are novel E3 ubiquitin ligases with the adoption of a Cys-His-Asp catalytic triad. SidC/SdcA are critical for the recruitment of endoplasmic reticulum (ER)-derived vesicles to the Legionella-containing vacuole (LCV). However, the ubiquitination targets of SidC/SdcA are largely unknown, which restricts our understanding of the mechanisms used by these effectors to hijack the vesicle trafficking pathway. Here, we demonstrated that multiple Rab small GTPases and target soluble N-ethylmaleimide-sensitive factor attachment protein receptors (SNARE) proteins are bona fide ubiquitination substrates of SidC/SdcA. SidC/SdcA-mediated ubiquitination of syntaxin 3 and syntaxin 4 promotes their unconventional pairing with the vesicle-SNARE protein Sec22b, thereby contributing to the membrane fusion of ER-derived vesicles with the phagosome. In addition, our data reveal that ubiquitination of Rab7 by SidC/SdcA is critical for its association with the LCV membrane. Rab7 ubiquitination could impair its binding with the downstream effector Rab-interacting lysosomal protein (RILP), which partially explains why LCVs avoid fusion with lysosomes despite the acquisition of Rab7. Taken together, our study reveals the biological mechanisms employed by SidC/SdcA to promote the maturation of the LCVs.


Legionella pneumophila , Phagosomes , SNARE Proteins , Ubiquitination , rab GTP-Binding Proteins , Legionella pneumophila/metabolism , Humans , Phagosomes/metabolism , Phagosomes/microbiology , SNARE Proteins/metabolism , rab GTP-Binding Proteins/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Animals , Qa-SNARE Proteins/metabolism , Ubiquitin-Protein Ligases/metabolism , Ubiquitin-Protein Ligases/genetics , Vacuoles/metabolism , Vacuoles/microbiology , HEK293 Cells , Mice , rab7 GTP-Binding Proteins/metabolism , Monomeric GTP-Binding Proteins/metabolism , Endoplasmic Reticulum/metabolism
2.
World J Gastroenterol ; 30(16): 2281-2284, 2024 Apr 28.
Article En | MEDLINE | ID: mdl-38690016

The following are our views regarding the "letter to the editor" (Helicobacter is preserved in yeast vacuoles! Does Koch's postulates confirm it?) by Alipour and Gaeini, and the response "letter to the editor" (Candida accommodates non-culturable Helicobacter pylori in its vacuole-Koch's postulates aren't applicable) by Siavoshi and Saniee. Alipour and Gaeini rejected the methods, results, discussion, and conclusions summarized in a review article by Siavoshi and Saniee. The present article reviews and discusses evidence on the evolutionary adaptation of Helicobacter pylori (H. pylori) to thrive in Candida cell vacuoles and concludes that Candida could act as a Trojan horse, transporting potentially infectious H. pylori into the stomach of humans.


Helicobacter Infections , Helicobacter pylori , Helicobacter pylori/pathogenicity , Humans , Helicobacter Infections/microbiology , Candida/physiology , Candida/growth & development , Candida/pathogenicity , Vacuoles/microbiology , Vacuoles/metabolism , Stomach/microbiology , Gastric Mucosa/microbiology
3.
Virulence ; 15(1): 2350893, 2024 12.
Article En | MEDLINE | ID: mdl-38725096

Coxiella burnetii (C. burnetii) is the causative agent of Q fever, a zoonotic disease. Intracellular replication of C. burnetii requires the maturation of a phagolysosome-like compartment known as the replication permissive Coxiella-containing vacuole (CCV). Effector proteins secreted by the Dot/Icm secretion system are indispensable for maturation of a single large CCV by facilitating the fusion of promiscuous vesicles. However, the mechanisms of CCV maintenance and evasion of host cell clearance remain to be defined. Here, we show that C. burnetii secreted Coxiella vacuolar protein E (CvpE) contributes to CCV biogenesis by inducing lysosome-like vacuole (LLV) enlargement. LLV fission by tubulation and autolysosome degradation is impaired in CvpE-expressing cells. Subsequently, we found that CvpE suppresses lysosomal Ca2+ channel transient receptor potential channel mucolipin 1 (TRPML1) activity in an indirect manner, in which CvpE binds phosphatidylinositol 3-phosphate [PI(3)P] and perturbs PIKfyve activity in lysosomes. Finally, the agonist of TRPML1, ML-SA5, inhibits CCV biogenesis and C. burnetii replication. These results provide insight into the mechanisms of CCV maintenance by CvpE and suggest that the agonist of TRPML1 can be a novel potential treatment that does not rely on antibiotics for Q fever by enhancing Coxiella-containing vacuoles (CCVs) fission.


Bacterial Proteins , Coxiella burnetii , Lysosomes , Phosphatidylinositol 3-Kinases , Phosphatidylinositol Phosphates , Transient Receptor Potential Channels , Vacuoles , Coxiella burnetii/metabolism , Coxiella burnetii/growth & development , Coxiella burnetii/genetics , Vacuoles/microbiology , Vacuoles/metabolism , Lysosomes/metabolism , Lysosomes/microbiology , Phosphatidylinositol Phosphates/metabolism , Humans , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Transient Receptor Potential Channels/metabolism , Transient Receptor Potential Channels/genetics , Phosphatidylinositol 3-Kinases/metabolism , Animals , Q Fever/microbiology , HeLa Cells , Host-Pathogen Interactions
4.
Nat Commun ; 15(1): 4279, 2024 May 20.
Article En | MEDLINE | ID: mdl-38769297

The identification of genes involved in salinity tolerance has primarily focused on model plants and crops. However, plants naturally adapted to highly saline environments offer valuable insights into tolerance to extreme salinity. Salicornia plants grow in coastal salt marshes, stimulated by NaCl. To understand this tolerance, we generated genome sequences of two Salicornia species and analyzed the transcriptomic and proteomic responses of Salicornia bigelovii to NaCl. Subcellular membrane proteomes reveal that SbiSOS1, a homolog of the well-known SALT-OVERLY-SENSITIVE 1 (SOS1) protein, appears to localize to the tonoplast, consistent with subcellular localization assays in tobacco. This neo-localized protein can pump Na+ into the vacuole, preventing toxicity in the cytosol. We further identify 11 proteins of interest, of which SbiSALTY, substantially improves yeast growth on saline media. Structural characterization using NMR identified it as an intrinsically disordered protein, localizing to the endoplasmic reticulum in planta, where it can interact with ribosomes and RNA, stabilizing or protecting them during salt stress.


Chenopodiaceae , Plant Proteins , Salt Tolerance , Chenopodiaceae/metabolism , Chenopodiaceae/genetics , Chenopodiaceae/drug effects , Plant Proteins/metabolism , Plant Proteins/genetics , Salt Tolerance/genetics , Gene Expression Regulation, Plant/drug effects , Vacuoles/metabolism , Salinity , Sodium Chloride/pharmacology , Sodium Chloride/metabolism , Endoplasmic Reticulum/metabolism , Salt Stress , Proteomics , Nicotiana/metabolism , Nicotiana/genetics , Nicotiana/drug effects , Transcriptome
5.
Nat Commun ; 15(1): 4131, 2024 May 16.
Article En | MEDLINE | ID: mdl-38755250

The transition between yeast and hyphae is crucial for regulating the commensalism and pathogenicity in Candida albicans. The mechanisms that affect the invasion of hyphae in solid media, whose deficiency is more related to the pathogenicity of C. albicans, have not been elucidated. Here, we found that the disruption of VAM6 or VPS41 which are components of the homotypic vacuolar fusion and protein sorting (HOPS) complex, or the Rab GTPase YPT72, all responsible for vacuole fusion, led to defects in hyphal growth in both liquid and solid media, but more pronounced on solid agar. The phenotypes of vac8Δ/Δ and GTR1OE-vam6Δ/Δ mutants indicated that these deficiencies are mainly caused by the reduced mechanical forces that drive agar and organs penetration, and confirmed that large vacuoles are required for hyphal mechanical penetration. In summary, our study revealed that large vacuoles generated by vacuolar fusion support hyphal penetration and provided a perspective to refocus attention on the role of solid agar in evaluating C. albicans invasion.


Candida albicans , Fungal Proteins , Hyphae , Vacuoles , Candida albicans/metabolism , Candida albicans/genetics , Hyphae/metabolism , Hyphae/growth & development , Hyphae/genetics , Vacuoles/metabolism , Fungal Proteins/metabolism , Fungal Proteins/genetics , Animals , Mice , rab GTP-Binding Proteins/metabolism , rab GTP-Binding Proteins/genetics , Candidiasis/microbiology , Vesicular Transport Proteins/metabolism , Vesicular Transport Proteins/genetics , Female , Membrane Fusion
6.
Int J Mol Sci ; 25(9)2024 Apr 26.
Article En | MEDLINE | ID: mdl-38731933

Despite the promising applications of the use of quantum dots (QDs) in the biomedical field, the long-lasting effects of QDs on the cell remain poorly understood. To comprehend the mechanisms underlying the toxic effects of QDs in yeast, we characterized defects associated with receptor-mediated endocytosis (RME) as well as pinocytosis using Saccharomyces cerevisiae as a model in the presence of cadmium selenide/zinc sulfide (CdSe/ZnS) QDs. Our findings revealed that QDs led to an inefficient RME at the early, intermediate, and late stages of endocytic patch maturation at the endocytic site, with the prolonged lifespan of GFP fused yeast fimbrin (Sac6-GFP), a late marker of endocytosis. The transit of FM1-43, a lipophilic dye from the plasma membrane to the vacuole, was severely retarded in the presence of QDs. Finally, QDs caused an accumulation of monomeric red fluorescent protein fused carbamoyl phosphate synthetase 1 (mRFP-Cps1), a vacuolar lumen marker in the vacuole. In summary, the present study provides novel insights into the possible impact of CdSe/ZnS QDs on the endocytic machinery, enabling a deeper comprehension of QD toxicity.


Cadmium Compounds , Endocytosis , Quantum Dots , Saccharomyces cerevisiae , Selenium Compounds , Sulfides , Zinc Compounds , Quantum Dots/toxicity , Quantum Dots/chemistry , Endocytosis/drug effects , Saccharomyces cerevisiae/drug effects , Saccharomyces cerevisiae/metabolism , Cadmium Compounds/toxicity , Selenium Compounds/toxicity , Sulfides/toxicity , Sulfides/metabolism , Zinc Compounds/toxicity , Vacuoles/metabolism , Vacuoles/drug effects , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae Proteins/genetics , Green Fluorescent Proteins/metabolism , Green Fluorescent Proteins/genetics , Cell Membrane/metabolism , Cell Membrane/drug effects
7.
Elife ; 122024 May 21.
Article En | MEDLINE | ID: mdl-38771316

Rab GTPases are representative targets of manipulation by intracellular bacterial pathogens for hijacking membrane trafficking. Legionella pneumophila recruits many Rab GTPases to its vacuole and exploits their activities. Here, we found that infection-associated regulation of Rab10 dynamics involves ubiquitin signaling cascades mediated by the SidE and SidC families of Legionella ubiquitin ligases. Phosphoribosyl-ubiquitination of Rab10 catalyzed by the SidE ligases is crucial for its recruitment to the bacterial vacuole. SdcB, the previously uncharacterized SidC-family effector, resides on the vacuole and contributes to retention of Rab10 at the late stages of infection. We further identified MavC as a negative regulator of SdcB. By the transglutaminase activity, MavC crosslinks ubiquitin to SdcB and suppresses its function, resulting in elimination of Rab10 from the vacuole. These results demonstrate that the orchestrated actions of many L. pneumophila effectors fine-tune the dynamics of Rab10 during infection.


Bacterial Proteins , Legionella pneumophila , Vacuoles , rab GTP-Binding Proteins , rab GTP-Binding Proteins/metabolism , rab GTP-Binding Proteins/genetics , Legionella pneumophila/metabolism , Legionella pneumophila/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Humans , Vacuoles/metabolism , Vacuoles/microbiology , Host-Pathogen Interactions , Ubiquitination , Animals , Ubiquitin/metabolism , Ubiquitin-Protein Ligases/metabolism , Ubiquitin-Protein Ligases/genetics
8.
Virulence ; 15(1): 2357670, 2024 Dec.
Article En | MEDLINE | ID: mdl-38804638

Salmonella enterica subspecies enterica serovar Typhimurium is an intracellular pathogen that invades and colonizes the intestinal epithelium. Following bacterial invasion, Salmonella is enclosed within a membrane-bound vacuole known as a Salmonella-containing vacuole (SCV). However, a subset of Salmonella has the capability to prematurely rupture the SCV and escape, resulting in Salmonella hyper-replication within the cytosol of epithelial cells. A recently published RNA-seq study provides an overview of cytosolic and vacuolar upregulated genes and highlights pagN vacuolar upregulation. Here, using transcription kinetics, protein production profile, and immunofluorescence microscopy, we showed that PagN is exclusively produced by Salmonella in SCV. Gentamicin protection and chloroquine resistance assays were performed to demonstrate that deletion of pagN affects Salmonella replication by affecting the cytosolic bacterial population. This study presents the first example of a Salmonella virulence factor expressed within the endocytic compartment, which has a significant impact on the dynamics of Salmonella cytosolic hyper-replication.


Bacterial Proteins , Cytosol , Salmonella typhimurium , Vacuoles , Virulence Factors , Salmonella typhimurium/genetics , Salmonella typhimurium/pathogenicity , Cytosol/microbiology , Vacuoles/microbiology , Vacuoles/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Virulence Factors/genetics , Virulence Factors/metabolism , Humans , Virulence , Salmonella Infections/microbiology , HeLa Cells , Epithelial Cells/microbiology , Gene Expression Regulation, Bacterial
9.
Biochem Biophys Res Commun ; 718: 149981, 2024 Jul 23.
Article En | MEDLINE | ID: mdl-38735134

In animal cells, vacuoles are absent, but can be induced by diseases and drugs. While phosphoinositides are critical for membrane trafficking, their role in the formation of these vacuoles remains unclear. The immunosuppressive KRP203/Mocravimod, which antagonizes sphingosine-1-phosphate receptors, has been identified as having novel multimodal activity against phosphoinositide kinases. However, the impact of this novel KRP203 activity is unknown. Here, we show that KRP203 disrupts the spatial organization of phosphoinositides and induces extensive vacuolization in tumor cells and immortalized fibroblasts. The KRP203-induced vacuoles are primarily from endosomes, and augmented by inhibition of PIKFYVE and VPS34. Conversely, overexpression of PTEN decreased KRP203-induced vacuole formation. Furthermore, V-ATPase inhibition completely blunted KRP203-induced vacuolization, pointing to a critical requirement of the endosomal maturation process. Importantly, nearly a half of KRP203-induced vacuoles are significantly decorated with PI4P, a phosphoinositide typically enriched at the plasma membrane and Golgi. These results suggest a model that noncanonical spatial reorganization of phosphoinositides by KRP203 alters the endosomal maturation process, leading to vacuolization. Taken together, this study reveals a previously unrecognized bioactivity of KRP203 as a vacuole-inducing agent and its unique mechanism of phosphoinositide modulation, providing a new insight of phosphoinositide regulation into vacuolization-associated diseases and their molecular pathologies.


Endosomes , PTEN Phosphohydrolase , Phosphatidylinositols , Vacuoles , Vacuoles/metabolism , Vacuoles/drug effects , Endosomes/metabolism , Endosomes/drug effects , Humans , Phosphatidylinositols/metabolism , Animals , PTEN Phosphohydrolase/metabolism , PTEN Phosphohydrolase/genetics , Phosphatidylinositol 3-Kinases/metabolism , Class III Phosphatidylinositol 3-Kinases/metabolism , Class III Phosphatidylinositol 3-Kinases/genetics , Mice , Morpholines/pharmacology , Vacuolar Proton-Translocating ATPases/metabolism , Vacuolar Proton-Translocating ATPases/antagonists & inhibitors , Vacuolar Proton-Translocating ATPases/genetics , Cytoplasm/metabolism , HeLa Cells , Aminopyridines , Heterocyclic Compounds, 3-Ring
10.
J Agric Food Chem ; 72(17): 9994-10004, 2024 May 01.
Article En | MEDLINE | ID: mdl-38648468

Triterpenoid saponins, synthesized via the mevalonic acid (MVA) pathway in the cytoplasm, provide protection against pathogens and pests in plants and health benefits for humans. However, the mechanisms by which triterpenoid saponins are transported between cellular compartments remain uncharacterized. Here, we characterize a tonoplast localized multidrug and toxic compound extrusion transporter, GmMATE100 (encoded by Glyma.18G143700), from soybean (Glycine max L.). GmMATE100 is co-expressed with soyasaponin biosynthetic genes, and its expression was induced by MeJA treatment, which also led to soyasaponin accumulation in soybean roots. GmMATE100 efficiently transports multiple type-B soyasaponins as well as type-A soyasaponins with low affinity from the cytosol to the vacuole in a yeast system. The GmMATE100 loss-of-function mutant showed a significant decrease in type-A and type-B soyasaponin contents in soybean roots. This study not only characterized the first soybean triterpenoid saponin transporter but also provided new knowledge for the rational engineering of soyasaponin content and composition in soybean plants to modulate their levels within crop environments.


Glycine max , Plant Proteins , Saponins , Vacuoles , Glycine max/metabolism , Glycine max/chemistry , Glycine max/genetics , Saponins/metabolism , Vacuoles/metabolism , Plant Proteins/metabolism , Plant Proteins/genetics , Biological Transport , Plant Roots/metabolism , Plant Roots/chemistry , Plant Roots/genetics , Gene Expression Regulation, Plant
11.
Cell Rep ; 43(4): 114034, 2024 Apr 23.
Article En | MEDLINE | ID: mdl-38568808

Escape from the bacterial-containing vacuole (BCV) is a key step of Shigella host cell invasion. Rab GTPases subverted to in situ-formed macropinosomes in the vicinity of the BCV have been shown to promote its rupture. The involvement of the BCV itself has remained unclear. We demonstrate that Rab35 is non-canonically entrapped at the BCV. Stimulated emission depletion imaging localizes Rab35 directly on the BCV membranes before vacuolar rupture. The bacterial effector IcsB, a lysine Nε-fatty acylase, is a key regulator of Rab35-BCV recruitment, and we show post-translational acylation of Rab35 by IcsB in its polybasic region. While Rab35 and IcsB are dispensable for the first step of BCV breakage, they are needed for the unwrapping of damaged BCV remnants from Shigella. This provides a framework for understanding Shigella invasion implicating re-localization of a Rab GTPase via its bacteria-dependent post-translational modification to support the mechanical unpeeling of the BCV.


Bacterial Proteins , Protein Processing, Post-Translational , Shigella , Vacuoles , rab GTP-Binding Proteins , rab GTP-Binding Proteins/metabolism , Humans , Shigella/metabolism , Bacterial Proteins/metabolism , Vacuoles/metabolism , Vacuoles/microbiology , HeLa Cells
12.
Sci Rep ; 14(1): 9622, 2024 04 26.
Article En | MEDLINE | ID: mdl-38671060

The vacuolar sorting receptors (VSRs) are specific to plants and are responsible for sorting and transporting particular proteins from the trans-Golgi network to the vacuole. This process is critically important for various cellular functions, including storing nutrients during seed development. Despite many years of intense studies on VSRs, a complete relation between function and structure has not yet been revealed. Here, we present the crystal structure of the entire luminal region of glycosylated VSR1 from Arabidopsis thaliana (AtVSR1) for the first time. The structure provides insights into the tertiary and quaternary structures of VSR1, which are composed of an N-terminal protease-associated (PA) domain, a unique central region, and one epidermal growth factor (EGF)-like domain followed by two disordered EGF-like domains. The structure of VSR1 exhibits unique characteristics, the significance of which is yet to be fully understood.


Arabidopsis Proteins , Arabidopsis , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/chemistry , Arabidopsis Proteins/genetics , Arabidopsis/metabolism , Vacuoles/metabolism , Protein Domains , Models, Molecular , Crystallography, X-Ray , Protein Transport
13.
Cells ; 13(8)2024 Apr 09.
Article En | MEDLINE | ID: mdl-38667270

The Sit4 protein phosphatase plays a key role in orchestrating various cellular processes essential for maintaining cell viability during aging. We have previously shown that SIT4 deletion promotes vacuolar acidification, mitochondrial derepression, and oxidative stress resistance, increasing yeast chronological lifespan. In this study, we performed a proteomic analysis of isolated vacuoles and yeast genetic interaction analysis to unravel how Sit4 influences vacuolar and mitochondrial function. By employing high-resolution mass spectrometry, we show that sit4Δ vacuolar membranes were enriched in Vps27 and Hse1, two proteins that are part of the endosomal sorting complex required for transport-0. In addition, SIT4 exhibited a negative genetic interaction with VPS27, as sit4∆vps27∆ double mutants had a shortened lifespan compared to sit4∆ and vps27∆ single mutants. Our results also show that Vps27 did not increase sit4∆ lifespan by improving protein trafficking or vacuolar sorting pathways. However, Vps27 was critical for iron homeostasis and mitochondrial function in sit4∆ cells, as sit4∆vps27∆ double mutants exhibited high iron levels and impaired mitochondrial respiration. These findings show, for the first time, cross-talk between Sit4 and Vps27, providing new insights into the mechanisms governing chronological lifespan.


Mitochondria , Protein Phosphatase 2 , Saccharomyces cerevisiae Proteins , Saccharomyces cerevisiae , Vacuoles , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae Proteins/genetics , Mitochondria/metabolism , Vacuoles/metabolism , Iron/metabolism , Protein Transport , Endosomal Sorting Complexes Required for Transport/metabolism , Endosomal Sorting Complexes Required for Transport/genetics , Mutation/genetics
14.
Cell Rep ; 43(4): 114033, 2024 Apr 23.
Article En | MEDLINE | ID: mdl-38568811

Small GTPases of the Ras subfamily are best known for their role as proto-oncoproteins, while their function during microbial infection has remained elusive. Here, we show that Legionella pneumophila hijacks the small GTPase NRas to the Legionella-containing vacuole (LCV) surface. A CRISPR interference screen identifies a single L. pneumophila effector, DenR (Lpg1909), required for this process. Recruitment is specific for NRas, while its homologs KRas and HRas are excluded from LCVs. The C-terminal hypervariable tail of NRas is sufficient for recruitment, and interference with either NRas farnesylation or S-acylation sites abrogates recruitment. Intriguingly, we detect markers of active NRas signaling on the LCV, suggesting it acts as a signaling platform. Subsequent phosphoproteomics analyses show that DenR rewires the host NRas signaling landscape, including dampening of the canonical mitogen-activated protein kinase pathway. These results provide evidence for L. pneumophila targeting NRas and suggest a link between NRas GTPase signaling and microbial infection.


Bacterial Proteins , GTP Phosphohydrolases , Legionella pneumophila , MAP Kinase Signaling System , Membrane Proteins , Legionella pneumophila/metabolism , Legionella pneumophila/pathogenicity , Humans , Membrane Proteins/metabolism , Membrane Proteins/genetics , GTP Phosphohydrolases/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Down-Regulation , HEK293 Cells , Legionnaires' Disease/microbiology , Legionnaires' Disease/metabolism , Vacuoles/metabolism , Proto-Oncogene Proteins p21(ras)/metabolism , Proto-Oncogene Proteins p21(ras)/genetics
15.
Biol Open ; 13(5)2024 May 15.
Article En | MEDLINE | ID: mdl-38682287

Pex23 family proteins localize to the endoplasmic reticulum and play a role in peroxisome and lipid body formation. The yeast Hansenula polymorpha contains four members: Pex23, Pex24, Pex29 and Pex32. We previously showed that loss of Pex24 or Pex32 results in severe peroxisomal defects, caused by reduced peroxisome-endoplasmic reticulum contact sites. We now analyzed the effect of the absence of all four Pex23 family proteins on other cell organelles. Vacuoles were normal in all four deletion strains. The number of lipid droplets was reduced in pex23 and pex29, but not in pex24 and pex32 cells, indicating that peroxisome and lipid droplet formation require different Pex23 family proteins in H. polymorpha. In pex23 and pex29 cells mitochondria were fragmented and clustered accompanied by reduced levels of the fusion protein Fzo1. Deletion of DNM1 suppressed the morphological phenotype of pex23 and pex29 cells, suggesting that mitochondrial fusion is affected. pex23 and pex29 cells showed retarded growth and reduced mitochondrial activities. The growth defect was partially suppressed by DNM1 deletion as well as by an artificial mitochondrion-endoplasmic reticulum tether. Hence, the absence of Pex23 family proteins may influence mitochondrion-endoplasmic reticulum contact sites.


Endoplasmic Reticulum , Mitochondria , Peroxins , Peroxisomes , Pichia , Mitochondria/metabolism , Endoplasmic Reticulum/metabolism , Pichia/metabolism , Pichia/genetics , Peroxins/metabolism , Peroxins/genetics , Peroxisomes/metabolism , Gene Deletion , Fungal Proteins/metabolism , Fungal Proteins/genetics , Membrane Proteins/metabolism , Membrane Proteins/genetics , Vacuoles/metabolism , Phenotype
16.
J Biol Chem ; 300(5): 107274, 2024 May.
Article En | MEDLINE | ID: mdl-38588809

The soluble N-ethylmaleimide-sensitive factor attachment protein receptor (SNARE) complex forms a 4-helix coiled-coil bundle consisting of 16 layers of interacting side chains upon membrane fusion. The central layer (layer 0) is highly conserved and comprises three glutamines (Q) and one arginine (R), and thus SNAREs are classified into Qa-, Qb-, Qc-, and R-SNAREs. Homotypic vacuolar fusion in Saccharomyces cerevisiae requires the SNAREs Vam3 (Qa), Vti1 (Qb), Vam7 (Qc), and Nyv1 (R). However, the yeast strain lacking NYV1 (nyv1Δ) shows no vacuole fragmentation, whereas the vam3Δ and vam7Δ strains display fragmented vacuoles. Here, we provide genetic evidence that the R-SNAREs Ykt6 and Nyv1 are functionally redundant in vacuole homotypic fusion in vivo using a newly isolated ykt6 mutant. We observed the ykt6-104 mutant showed no defect in vacuole morphology, but the ykt6-104 nyv1Δ double mutant had highly fragmented vacuoles. Furthermore, we show the defect in homotypic vacuole fusion caused by the vam7-Q284R mutation was compensated by the nyv1-R192Q or ykt6-R165Q mutations, which maintained the 3Q:1R ratio in the layer 0 of the SNARE complex, indicating that Nyv1 is exchangeable with Ykt6 in the vacuole SNARE complex. Unexpectedly, we found Ykt6 assembled with exocytic Q-SNAREs when the intrinsic exocytic R-SNAREs Snc1 and its paralog Snc2 lose their ability to assemble into the exocytic SNARE complex. These results suggest that Ykt6 may serve as a backup when other R-SNAREs become dysfunctional and that this flexible assembly of SNARE complexes may help cells maintain the robustness of the vesicular transport network.


R-SNARE Proteins , Saccharomyces cerevisiae Proteins , Saccharomyces cerevisiae , Vacuoles , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae Proteins/genetics , Vacuoles/metabolism , Vacuoles/genetics , R-SNARE Proteins/metabolism , R-SNARE Proteins/genetics , Membrane Fusion , Exocytosis , SNARE Proteins/metabolism , SNARE Proteins/genetics , Mutation
17.
EMBO J ; 43(9): 1870-1897, 2024 May.
Article En | MEDLINE | ID: mdl-38589611

Yeast vacuoles perform crucial cellular functions as acidic degradative organelles, storage compartments, and signaling hubs. These functions are mediated by important protein complexes, including the vacuolar-type H+-ATPase (V-ATPase), responsible for organelle acidification. To gain a more detailed understanding of vacuole function, we performed cross-linking mass spectrometry on isolated vacuoles, detecting many known as well as novel protein-protein interactions. Among these, we identified the uncharacterized TLDc-domain-containing protein Rtc5 as a novel interactor of the V-ATPase. We further analyzed the influence of Rtc5 and of Oxr1, the only other yeast TLDc-domain-containing protein, on V-ATPase function. We find that both Rtc5 and Oxr1 promote the disassembly of the vacuolar V-ATPase in vivo, counteracting the role of the RAVE complex, a V-ATPase assembly chaperone. Furthermore, Oxr1 is necessary for the retention of a Golgi-specific subunit of the V-ATPase in this compartment. Collectively, our results shed light on the in vivo roles of yeast TLDc-domain proteins as regulators of the V-ATPase, highlighting the multifaceted regulation of this crucial protein complex.


Saccharomyces cerevisiae Proteins , Saccharomyces cerevisiae , Vacuolar Proton-Translocating ATPases , Vacuoles , Vacuolar Proton-Translocating ATPases/metabolism , Vacuolar Proton-Translocating ATPases/genetics , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/genetics , Vacuoles/metabolism , Protein Domains
18.
Plant Sci ; 344: 112090, 2024 Jul.
Article En | MEDLINE | ID: mdl-38636812

Vacuoles are the largest membrane-bound organelles in plant cells, critical for development and environmental responses. Vacuolar dynamics indicate reversible changes of vacuoles in morphology, size, or numbers. In this review, we summarize current understandings of vacuolar dynamics in different types of plant cells, biological processes associated with vacuolar dynamics, and regulators controlling vacuolar dynamics. Specifically, we point out the possibility that vacuolar dynamics play key roles in cell division and differentiation, which are controlled by the nucleus. Finally, we propose three routes through which vacuolar dynamics actively participate in nucleus-controlled cellular activities.


Cell Differentiation , Cell Division , Plant Cells , Vacuoles , Vacuoles/metabolism , Vacuoles/physiology , Cell Division/physiology , Plant Cells/physiology , Cell Nucleus/physiology , Cell Nucleus/metabolism
19.
J Hazard Mater ; 470: 134172, 2024 May 15.
Article En | MEDLINE | ID: mdl-38569340

Xyloglucan endotransglucosylase/hydrolases (XTH) are cell wall-modifying enzymes important in plant response to abiotic stress. However, the role of XTH in cadmium (Cd) tolerance in ramie remains largely unknown. Here, we identified and cloned BnXTH1, a member of the XTH family, in response to Cd stress in ramie. The BnXTH1 promoter (BnXTH1p) demonstrated that MeJA induces the response of BnXTH1p to Cd stress. Moreover, overexpressing BnXTH1 in Boehmeria nivea increased Cd tolerance by significantly increasing the Cd content in the cell wall and decreasing Cd inside ramie cells. Cadmium stress induced BnXTH1-expression and consequently increased xyloglucan endotransglucosylase (XET) activity, leading to high xyloglucan contents and increased hemicellulose contents in ramie. The elevated hemicellulose content increased Cd chelation onto the cell walls and reduced the level of intracellular Cd. Interestingly, overexpressing BnXTH1 significantly increased the content of Cd in vacuoles of ramie and vacuolar compartmentalization genes. Altogether, these results evidence that Cd stress induced MeJA accumulation in ramie, thus, activating BnXTH1 expression and increasing the content of xyloglucan to enhance the hemicellulose binding capacity and increase Cd chelation onto cell walls. BnXTH1 also enhances the vacuolar Cd compartmentalization and reduces the level of Cd entering the organelles and soluble solution.


Boehmeria , Cadmium , Cell Wall , Vacuoles , Cadmium/toxicity , Cadmium/metabolism , Cell Wall/metabolism , Cell Wall/drug effects , Boehmeria/metabolism , Boehmeria/drug effects , Vacuoles/metabolism , Vacuoles/drug effects , Glycosyltransferases/metabolism , Glycosyltransferases/genetics , Plant Proteins/metabolism , Plant Proteins/genetics , Polysaccharides/metabolism , Oxylipins/metabolism , Gene Expression Regulation, Plant/drug effects , Glucans/metabolism , Xylans/metabolism , Stress, Physiological/drug effects
20.
Elife ; 122024 Mar 27.
Article En | MEDLINE | ID: mdl-38536872

Membrane contact sites (MCSs) are junctures that perform important roles including coordinating lipid metabolism. Previous studies have indicated that vacuolar fission/fusion processes are coupled with modifications in the membrane lipid composition. However, it has been still unclear whether MCS-mediated lipid metabolism controls the vacuolar morphology. Here, we report that deletion of tricalbins (Tcb1, Tcb2, and Tcb3), tethering proteins at endoplasmic reticulum (ER)-plasma membrane (PM) and ER-Golgi contact sites, alters fusion/fission dynamics and causes vacuolar fragmentation in the yeast Saccharomyces cerevisiae. In addition, we show that the sphingolipid precursor phytosphingosine (PHS) accumulates in tricalbin-deleted cells, triggering the vacuolar division. Detachment of the nucleus-vacuole junction (NVJ), an important contact site between the vacuole and the perinuclear ER, restored vacuolar morphology in both cells subjected to high exogenous PHS and Tcb3-deleted cells, supporting that PHS transport across the NVJ induces vacuole division. Thus, our results suggest that vacuolar morphology is maintained by MCSs through the metabolism of sphingolipids.


Mitochondrial Membranes , Saccharomyces cerevisiae Proteins , Mitochondrial Membranes/metabolism , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism , Vacuoles/metabolism , Sphingolipids/metabolism , Lipid Metabolism , Cell Membrane/metabolism
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