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21 pages, 2437 KB  
Review
Mapping Protein Diffusion from the Plasma Membrane to the Nucleus: Insights from Fluorescence Correlation Spectroscopy
by Zahra Nadia Saadatmand, Nazanin Ghaderinejad and Elizabeth Hinde
Biomolecules 2026, 16(8), 1143; https://doi.org/10.3390/biom16081143 - 6 Aug 2026
Viewed by 487
Abstract
Fluorescence correlation spectroscopy (FCS) measures spontaneous temporal fluorescence fluctuations within a femtolitre observation volume to extract, with single-molecule sensitivity, the concentration, mobility, oligomeric state, and interactions of proteins in living cells. This review traces how FCS and its spatiotemporal derivatives, implemented on different [...] Read more.
Fluorescence correlation spectroscopy (FCS) measures spontaneous temporal fluorescence fluctuations within a femtolitre observation volume to extract, with single-molecule sensitivity, the concentration, mobility, oligomeric state, and interactions of proteins in living cells. This review traces how FCS and its spatiotemporal derivatives, implemented on different types of optical microscopes, have mapped protein trafficking across the three physically distinct environments a protein must navigate from the cell surface to its genomic targets. At the plasma membrane, FCS resolves nanodomains with millisecond confinement times and distinguishes cytoskeletal corralling from cholesterol-dependent trapping through the FCS diffusion law, revealing how receptor signalling is organised below the diffraction limit. In the cytoplasm, FCS quantifies how macromolecular crowding slows protein diffusion by a factor of 3–4 relative to water, drives anomalous sub-diffusion, and coexists with directed transport, while resolving the markedly slower dynamics of liquid–liquid phase-separated condensates. In the nucleus, FCS-derived pair correlation and brightness analyses show that chromatin acts as a size-selective filter where an inert protein dimer can take more than 10-fold longer than its monomer to traverse the same nuclear distance, and that this oligomeric-state-dependent gating governs the genomic access of transcription factors. Across all three compartments, a protein’s diffusive behaviour is not incidental to its function but is itself a direct readout of the physical organisation of its environment, establishing FCS as a uniquely quantitative bridge between molecular dynamics and cellular decision-making. Full article
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15 pages, 5313 KB  
Perspective
Hiding in Plain Sight: HIV-1 Membraneless Organelles as Nuclear Hubs—Host Hijacking, Replication, Immune Evasion, and Drug-Access Implications
by Francesco Broccolo, Alessandro Sannino, Mauro Pollini, Federica Paladini, Thierry Mourer and Francesca Di Nunzio
Pathogens 2026, 15(7), 766; https://doi.org/10.3390/pathogens15070766 - 21 Jul 2026
Viewed by 683
Abstract
Theories on the early steps of the HIV-1 life cycle have been radically revised over the past five years. The long-held assumption that the capsid fully disassembles in the cytoplasm has given way to a more nuanced view: Cytoplasmic disassembly does occur and, [...] Read more.
Theories on the early steps of the HIV-1 life cycle have been radically revised over the past five years. The long-held assumption that the capsid fully disassembles in the cytoplasm has given way to a more nuanced view: Cytoplasmic disassembly does occur and, in several myeloid systems, is increasingly linked to cytosolic cDNA sensing and to abortive infection. However, a substantial fraction of intact or nearly intact capsid cores instead traverse the nuclear pore complex (NPC) and, upon interacting with the host factor CPSF6, induce liquid–liquid phase separation. This leads to the formation of biomolecular condensates, termed HIV-1 membraneless organelles (HIV-1-MLOs), which subsequently merge with nuclear speckles (NSs). In this Perspective we read these condensates along five interlocking axes. First, the virus drives the host phase separation of cleavage and polyadenylation specificity factor 6 (CPSF6), which quickly fuses with another MLO: the NS composed of the speckle scaffold factors, SON and SRRM2. Second, the resulting condensate behaves as a catalytic site that concentrates the reverse-transcription machinery and thereby promotes integration of the viral DNA into speckle-associated chromatin (SPADs). Third, the same compartment is the final layer of a stratified programme of innate immune evasion, shielding nascent double-stranded DNA from cGAS–STING after cytoplasmic restriction factors and sensors have been outmanoeuvred. Fourth, although demonstrated only in vitro, stable HIV-1-MLOs can maintain the viral RNA genome in the presence of a reverse-transcription inhibitor. Upon removal of the inhibitor, reverse transcription resumes, mirroring, to some extent, the situation in individuals undergoing interruption of antiretroviral therapy and suggesting that these structures may act as a pre-integration reservoir. Fifth, and still largely unexplored, the sanctuary has a pharmacological dimension: anatomical lymphoid compartments, and possibly the condensate itself through selective small-molecule partitioning, may limit antiretroviral drug access. We situate HIV-1-MLOs within the convergent condensate strategies of SARS-CoV-2 and other viruses, and we discuss the clinical, diagnostic, therapeutic, and vaccine implications, including capsid inhibitors as “block-and-expose” tools. Full article
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19 pages, 6226 KB  
Article
Comparative Study of Acute Toxicity and the Quantification of Cellular Effects Following Experimental Exposure to Gadolinium-Based Contrast Agents on the Planktonic Species Artemia sp. (Crustacea, Branchiopoda) Larvae
by Florența Mihai, Verginica Schröder, Ileana Rãu, Ana-Maria Mihalcescu, Irina Mihaela Iancu and Gabriela Mitea
Water 2026, 18(13), 1614; https://doi.org/10.3390/w18131614 - 2 Jul 2026
Viewed by 547
Abstract
(1) Background: This study examines the toxicologic effects of gadolinium in the context of the growing number of industrial and medical applications that use gadolinium compounds. Furthermore, understanding the cellular effects on aquatic organisms is a growing concern regarding emerging pollutants, as gadolinium [...] Read more.
(1) Background: This study examines the toxicologic effects of gadolinium in the context of the growing number of industrial and medical applications that use gadolinium compounds. Furthermore, understanding the cellular effects on aquatic organisms is a growing concern regarding emerging pollutants, as gadolinium is found in aquatic environments and drinking water as a pollutant. (2) Methods: The microplate-based experiments were designed to assess lethal effects (LC50) and analyze the cytological mechanisms in the larval stages of Artemia. Two gadolinium-containing compounds were comparatively analyzed: gadoteric acid (GA), an ionic compound, and gadoteridol (GD), a nonionic compound. Fluorescence analysis enabled detailed imaging and observations of the dynamics of the processes. Three fluorochromes were used for labeling: acridine orange (nuclear configuration), neutral red (lysosomal inclusions), and fluorescein isothiocyanate-labeled (cytoskeleton). (3) Results show that the effects became evident after more than 48 h of exposure. Cytotoxicity was higher for the nonionic macrocyclic compound GD (LC50 = 60 µmol/mL ± 0.00462 compared with GA (LC50 = 170 µmol/mL ± 0.01. The altered phenotype demonstrates the interference of the tested compounds at both the nuclear level (chromatin fragmentation, pyknotic nuclei) and the cytoplasmic level (enlarged lysosomal vesicles), as well as disorganized or condensed cytoskeleton. (4) Conclusions: Both compounds have effects on larvae, affecting their overall morphology and viability in 24–72 h after exposure. Identifying effects at the nuclear and cytoplasmic levels, as well as disruptions in cytoskeletal polymerization, helps to determine the factors that influence larval survival in an environment contaminated with such rare metals and to understand the cellular mechanisms induced by gadolinium compound poisoning. Full article
(This article belongs to the Special Issue Emerging Contaminants in the Water Environment)
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19 pages, 6017 KB  
Article
Pro-Oncogenic Transcription Factors BACH1 and Nrf2 Associate with Cytoplasmic Biomolecular Condensates of GFP-MxA (Myxovirus Resistance Protein A) in Oral Cancer Cells
by Pravin B. Sehgal and Huijuan Yuan
Cells 2026, 15(11), 982; https://doi.org/10.3390/cells15110982 - 26 May 2026
Viewed by 543
Abstract
Biomolecular condensates in the cytoplasm and nucleus contribute to carcinogenesis through aberrant signaling by assorted transcription factors and fusion oncoproteins. Oral cancer, which is highly prevalent worldwide, frequently occurs in a U-shaped “high-risk” zone (floor of mouth, side of tongue, and anterior fauces) [...] Read more.
Biomolecular condensates in the cytoplasm and nucleus contribute to carcinogenesis through aberrant signaling by assorted transcription factors and fusion oncoproteins. Oral cancer, which is highly prevalent worldwide, frequently occurs in a U-shaped “high-risk” zone (floor of mouth, side of tongue, and anterior fauces) which forms the path of liquid transit through the mouth. We previously reported that environmental stresses of saliva-like hypotonicity and beverage-like temperature changes triggered cycles of disassembly/reassembly of biomolecular condensates of GFP-tagged human myxovirus resistance protein (MxA; alias Mx1) in oral cancer cells. In the present study, we identified some of the constituents of GFP-MxA cytoplasmic condensates in oral cells. These condensates were isolated from interferon (IFN)-λ1-treated GFP-MxA expressing OECM1 human oral cancer cells using magnetic bead-based immunoisolation. Unbiased peptide identification confirmed the presence of MxA/Mx1 peptides; however, the strongest intensity was for the BACH1 transcription factor family. Immunofluorescence analyses confirmed the association of BACH1 and the family member Nrf2 with cytoplasmic human GFP-MxA condensates. Moreover, GFP-BACH1 and GFP-Nrf2 colocalized with cytoplasmic human HA-MxA condensates in transiently transfected OECM1 cells. Western blot assays confirmed the presence of BACH1 and Nrf2 proteins in complexes isolated using anti-MxA pAb. As much as BACH1 and Nrf2 regulate oxidative stress response genes, it was remarkable that immunofluorescence assays revealed the presence of heme oxygenase 1 (HO1)—a downstream redox regulator—in GFP-MxA condensates. However, these condensates were devoid of p62, KEAP1 and Cul3. In terms of aberrant function, in live cells, the Nrf2 transcription factor underwent rapid disassembly and reassembly cycles driven by saliva-like hypotonicity, and was also disassembled by sulforaphane. The data highlight the unexpected intersections in oral cells between MxA condensates and BACH1, Nrf2 and HO1—proteins well known to be involved in pathways regulating cellular responses to environmental and oxidative stresses, antiviral defense, oral epithelial dysplasia, and cancer progression and metastases. Full article
(This article belongs to the Section Cellular Immunology)
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23 pages, 3916 KB  
Article
How Bioactive Glass S53P4 Kills Bacteria
by Deeksha Rajkumar, Adrian Stiller, Jurian Wijnheijmer, Ireen M. Schimmel, Leendert W. Hamoen, Leena Hupa, Nicole N. van der Wel, Payal P. S. Balraadjsing and Sebastian A. J. Zaat
J. Funct. Biomater. 2026, 17(4), 201; https://doi.org/10.3390/jfb17040201 - 19 Apr 2026
Cited by 1 | Viewed by 2605
Abstract
Bioactive glass (BAG) S53P4 is a clinically approved bone substitute with antibacterial, osteoconductive and osteostimulatory properties. Its antibacterial effect is associated with ion release, local pH elevation and osmolality, but the precise biochemical and biophysical mode-of-action is unclear. This study investigates the antibacterial [...] Read more.
Bioactive glass (BAG) S53P4 is a clinically approved bone substitute with antibacterial, osteoconductive and osteostimulatory properties. Its antibacterial effect is associated with ion release, local pH elevation and osmolality, but the precise biochemical and biophysical mode-of-action is unclear. This study investigates the antibacterial mechanism of BAG S53P4 eluates. BAG eluates, collected at 2, 4, 8, and 24 h, eradicated Staphylococcus aureus. Elemental analysis revealed an early increase in concentrations of Si and Na, a later rise in Ca, depletion of P over time and rapid loss of Mg. Membrane disturbances occurred within 5 min, evident by permeability for SYTOX, aligning with time-kill kinetics for S. aureus and Bacillus subtilis. In B. subtilis, 2h-BAG-eluate induced rapid delocalization of marker proteins for cell division and DNA repair, signaling membrane potential collapse and nucleoid condensation. Transcriptomics revealed early transcription remodeling reflecting ionic and energetic imbalance, including disruption of central metabolism, redox homeostasis, and translational stability. Scanning electron microscopy revealed severe cell surface damage and particulate deposits on S. aureus. Transmission electron microscopy showed cell envelop disruptions and cytoplasmic leakage. Energy dispersive X-ray analysis identified Si on bacterial cell surface at 4 h and intracellular accumulation in punctured, empty cells at 24 h. Overall, BAG ionic dissolution products kill bacteria through a stepwise mechanism involving membrane damage, protein delocalization and metabolic impairment, accompanied by Si deposition on bacterial surfaces and loss of Mg. This finally leads to cell wall degradation, cytoplasmic content leakage and further Si deposition on the cells and inside cell ghosts. Full article
(This article belongs to the Special Issue Antibacterial Biomaterials for Medical Applications)
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14 pages, 1327 KB  
Article
Synergistic Antimicrobial and Antibiofilm Activity of Nitroxoline in Combination with Hydroquinone Against Uropathogenic Enterococcus faecalis
by Davorka Repac Antić, Silvestar Mežnarić, Marko Kolenc, Irena Brčić Karačonji and Ivana Gobin
Antibiotics 2026, 15(4), 333; https://doi.org/10.3390/antibiotics15040333 - 25 Mar 2026
Viewed by 1094
Abstract
Background: Enterococcus faecalis is a major cause of complicated urinary tract infections (UTIs), characterized by intrinsic resistance and pronounced biofilm formation. Nitroxoline (NTX), a metal-chelating uroantiseptic, accumulates in urine and exhibits antibiofilm activity. Hydroquinone (HQ), the active urinary metabolite of arbutin-containing herbal [...] Read more.
Background: Enterococcus faecalis is a major cause of complicated urinary tract infections (UTIs), characterized by intrinsic resistance and pronounced biofilm formation. Nitroxoline (NTX), a metal-chelating uroantiseptic, accumulates in urine and exhibits antibiofilm activity. Hydroquinone (HQ), the active urinary metabolite of arbutin-containing herbal preparations, is also excreted into urine and may contribute to antimicrobial activity in situ. This study investigated the antimicrobial and antibiofilm effects of NTX and HQ, individually and in combination, against uropathogenic E. faecalis isolates. Methods: Minimum inhibitory (MIC), bactericidal (MBC), and anti-adhesion (MAC) concentrations were determined using broth microdilution. Interaction was assessed by the checkerboard method and expressed as the fractional inhibitory concentration index (FICI). Biofilm inhibition was quantified by colony-forming unit (CFU) enumeration following exposure to subinhibitory concentrations. Ultrastructural alterations of E. faecalis following exposure to NTX and HQ were examined by transmission electron microscopy (TEM). Results: NTX demonstrated MIC values ranging from 0.002–0.016 mg/mL (MIC50/MIC90: 0.004/0.008 mg/mL), while HQ exhibited MIC values of 0.78–1.56 mg/mL (MIC50/MIC90: 0.78/1.56 mg/mL). Synergistic interactions (FICI ≤ 0.5) were observed in selected isolates, with up to eightfold and sixteenfold reductions in NTX and HQ concentrations, respectively. Additive effects predominated in the remaining isolates without antagonism. The combination achieved 3–5 log10 reductions in adherent bacterial counts compared to untreated controls and up to 4 log10 reductions compared to single-agent exposure. In several strains, complete inhibition of adhesion was observed. TEM analysis revealed marked envelope disruption, cytoplasmic condensation, and structural collapse following combined treatment. Conclusions: Given that both NTX and HQ are active within the urinary environment, their combination may represent a pharmacologically relevant strategy targeting both bacterial growth and early biofilm establishment in enterococcal UTIs. These findings support further in vivo and pharmacokinetic investigations to evaluate the clinical applicability of this combination. Full article
(This article belongs to the Special Issue Progress and Challenges in the Antibiotic Treatment of Infections)
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20 pages, 6129 KB  
Article
Dual Characteristics of Apoptosis and Survival in Cerebellar Purkinje Cells Four Days After Transient Global Ischemia
by Zhen He, Alena Savenka, Ada G. Cino Ozuna, Kelly J. Davis and Angel Paredes
Cells 2026, 15(7), 572; https://doi.org/10.3390/cells15070572 - 24 Mar 2026
Viewed by 697
Abstract
Whether apoptotic cell death occurs in cerebellar Purkinje cells following transient global ischemia remains unclear. Histologic, immunofluorescent and ultramicroscopic methods were used to assess ischemic outcomes in rats. A pilot study using fluorescence labeling [TUNEL-caspase 3-activated peptide (C3AP)-DAPI] revealed key apoptotic characteristics including [...] Read more.
Whether apoptotic cell death occurs in cerebellar Purkinje cells following transient global ischemia remains unclear. Histologic, immunofluorescent and ultramicroscopic methods were used to assess ischemic outcomes in rats. A pilot study using fluorescence labeling [TUNEL-caspase 3-activated peptide (C3AP)-DAPI] revealed key apoptotic characteristics including nuclear TUNEL-positive, nuclear membrane blebs (NMBs), and cytoplasmic C3AP-positive structures, in addition to transport of TUNEL-positive round structures into cytoplasm and projections in ischemic Purkinje cells but not in controls 4 days after ischemia. A formal follow-up study confirmed that 8% of Purkinje cells 4 days following ischemia exhibited TUNEL-positivity and/or NMBs, while Purkinje cells in controls did not. TUNEL-positive Purkinje cells displayed reduced intensity of Calbindin D28K-ifl/MitoTracker (living cell markers) labeling as compared to controls (p < 0.01). Ultramicroscopic evidence of apoptosis included mitochondrial fragmentation and loss in addition to NMBs and cytosolic deposit of nuclear autophagosomes. Interestingly, 71% of the Purkinje cells exhibited autophagy activity after ischemia. Ultramicroscopic characteristics of survival in ischemic Purkinje cells included a centrally located nucleus, no significant chromatin condensation, stable nuclear and intact cytoplasmic membranes, and normal peripheral spacing of the Purkinje cells. In conclusion, four days after transient global ischemia, cerebellar Purkinje cells exhibited both apoptotic and survival characteristics. Further research warrants investigation of the underlying mechanisms. Full article
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15 pages, 7557 KB  
Article
Mitochondrial Injury Accompanied by Intermediate Filament Remodeling Following Lithium Chloride Exposure in 3D Endometrial Cancer Spheroids
by Berna Yıldırım, Burcu Biltekin, Mete Hakan Karalök and Ayhan Bilir
Biomedicines 2026, 14(3), 655; https://doi.org/10.3390/biomedicines14030655 - 13 Mar 2026
Cited by 1 | Viewed by 794
Abstract
Background/Objectives: Endometrial cancer frequently develops resistance to therapy, partly due to the ability of tumor cells to adapt to cellular stress through non-apoptotic mechanisms. Mitochondrial dysfunction and cytoskeletal remodeling are increasingly recognized as key components of stress adaptation; however, their structural relationship [...] Read more.
Background/Objectives: Endometrial cancer frequently develops resistance to therapy, partly due to the ability of tumor cells to adapt to cellular stress through non-apoptotic mechanisms. Mitochondrial dysfunction and cytoskeletal remodeling are increasingly recognized as key components of stress adaptation; however, their structural relationship under pharmacological stress in three-dimensional (3D) tumor models remains poorly characterized. The present study aimed to investigate the ultrastructural and phenotypic effects of lithium chloride (LiCl)-induced stress in 3D endometrial cancer spheroids, with a particular focus on mitochondrial alterations and intermediate filament organization. Methods: Three-dimensional spheroids generated from Ishikawa endometrial cancer cells were exposed to lithium chloride at concentrations of 1, 10, or 50 mM for defined time periods. Cell viability, proliferative activity, and clonogenic capacity were assessed using Trypan Blue exclusion, BrdU incorporation, and soft agar assays. Ultrastructural changes were examined by transmission electron microscopy to evaluate mitochondrial morphology, cytoplasmic organization, and intermediate filament distribution. Results: LiCl exposure resulted in a dose- and time-dependent reduction in cell viability, proliferation, and clonogenic potential in 3D spheroids. Ultrastructural analysis revealed pronounced mitochondrial swelling, cristae disorganization, and membrane-associated mitochondrial alterations. These changes were consistently accompanied by conspicuous accumulation and reorganization of intermediate filaments in close spatial proximity to damaged mitochondria, suggesting a structural association between cytoskeletal remodeling and mitochondrial injury. Across all experimental conditions, classical apoptotic ultrastructural features, including chromatin condensation and apoptotic body formation, were not observed. Conclusions: Together, these observations indicate that lithium chloride elicits a stress phenotype in 3D endometrial cancer spheroids that primarily manifests at the organelle and cytoskeletal levels, rather than through classical apoptotic execution. Although descriptive in nature, the present study highlights intermediate filament accumulation as a prominent structural feature of lithium-induced mitochondrial stress and establishes a structural reference point for future studies aimed at further investigating mitochondrial–cytoskeletal relationships during pharmacological stress in endometrial cancer. Full article
(This article belongs to the Section Cancer Biology and Oncology)
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14 pages, 4363 KB  
Article
Drosophila Keap1 Proteins Assemble Nuclear Condensates in Response to Oxidative Stress
by Guangye Ji, Bethany Cross, Thomas Killmer, Bee Enders, Emma Neidviecky, Hayden Huber, Grace Lynch and Huai Deng
Antioxidants 2026, 15(1), 134; https://doi.org/10.3390/antiox15010134 - 21 Jan 2026
Viewed by 1364
Abstract
The Keap1-Nrf2 signaling pathway is a central regulator of transcriptional responses to oxidative stress and is strongly linked to diverse pathologies, particularly cancer. In the cytoplasm, Keap1 (Kelch-like ECH-associated protein 1) promotes proteasomal degradation of Nrf2 (NF-E2–related factor 2). Oxidative stimuli disrupt the [...] Read more.
The Keap1-Nrf2 signaling pathway is a central regulator of transcriptional responses to oxidative stress and is strongly linked to diverse pathologies, particularly cancer. In the cytoplasm, Keap1 (Kelch-like ECH-associated protein 1) promotes proteasomal degradation of Nrf2 (NF-E2–related factor 2). Oxidative stimuli disrupt the Keap1-Nrf2 interaction, facilitating Nrf2 nuclear accumulation and activation of antioxidant and detoxifying genes. Recent evidence suggests that Keap1 family proteins also enter the nucleus, bind chromatin, and regulate transcription, but the underlying mechanisms remain less understood. Here, we show that the Drosophila Keap1 ortholog, dKeap1, accumulates in the nucleus and gradually assembles stable nuclear foci in cells following oxidative treatment. FRAP analyses revealed reduced mobility of dKeap1 within these foci. Both the N-terminal (NTD) and C-terminal (CTD) domains of dKeap1 were required for foci formation. Two intrinsically disordered regions (IDRs) were identified within the CTD, and CTD-YFP fusion proteins readily formed condensates in vitro. Conversely, deletion of the Kelch domain resulted in robust cytoplasmic foci even under basal conditions, and in vitro assays also indicated that the Kelch domain suppresses dKeap1 condensate formation. Together, these findings reveal a novel molecular mechanism for the nuclear function of dKeap1, providing new insight into the broader roles of Keap1 factors in oxidative response, development, and disease. Full article
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21 pages, 5883 KB  
Article
Phase Separation Competent TIA1 Couples Glycolytic Shutdown to CD8+ T-Cell Activation and Shapes the Efficacy of Intravesical BCG in Bladder Cancer
by Wenwen Zhang, Kailiang Zhou, Pinru Chen, Xuanshuang Du and Min Liu
Biology 2025, 14(11), 1576; https://doi.org/10.3390/biology14111576 - 11 Nov 2025
Cited by 1 | Viewed by 1575
Abstract
Metabolic immune evasion is a major factor limiting the long-term efficacy of intravesical Bacillus Calmette–Guérin (BCG) therapy in non-muscle-invasive bladder cancer (NMIBC). TIA1 is a stress granule RNA-binding protein with liquid–liquid phase separation (LLPS) capacity. Its role in tumor metabolism and immunotherapy response [...] Read more.
Metabolic immune evasion is a major factor limiting the long-term efficacy of intravesical Bacillus Calmette–Guérin (BCG) therapy in non-muscle-invasive bladder cancer (NMIBC). TIA1 is a stress granule RNA-binding protein with liquid–liquid phase separation (LLPS) capacity. Its role in tumor metabolism and immunotherapy response has been unclear. Here, we demonstrated that high TIA1 expression was independently associated with favorable survival across multiple cohorts. Full-length TIA1 formed cytoplasmic condensates, repressed LDHA/PKM2/HK2, reduced lactate, and lowered extracellular acidification. A condensate-defective ΔLCD (deletion of the low-complexity domain) mutant was inactive. TIA1 showed physical association with these glycolytic mRNAs in human cells, consistent with mRNA-linked control. Condensate-competent TIA1 promoted CD8+ T-cell proliferation, increased CD69 and Granzyme-B, and reduced PD-1 in co-culture. TIMER (Tumor Immune Estimation Resource) and spatial-omics supported co-localization with tumoral CD8A. BCG induced this metabolic–immune signature in cell lines, murine models, and patient explants, but the effects were abolished by TIA1 knock-down. Conversely, TIA1 over-expression alone limited tumor growth and recapitulated BCG-mediated glycolytic restraint and T-cell activation. Together, these results support an LLPS-linked, mRNA-associated regulation of tumor glycolysis. BCG-driven glycolytic suppression and CD8+ T cell activation track with the condensate-forming capacity of TIA1. TIA1 emerges as a prognostic biomarker and a potential therapeutic axis to improve intravesical immunotherapy in NMIBC. Full article
(This article belongs to the Section Cancer Biology)
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11 pages, 3855 KB  
Article
ORF3 Gene of Porcine Epidemic Diarrhea Virus Causes Nuclear and Morphological Distortions with Associated Cell Death
by Ndirangu A. Kamau, Jae-Rang Rho, Eui-Soon Park, Jung-Eun Yu, Ji-Yun Yu, Gianmarco Ferrara and Hyun-Jin Shin
Viruses 2025, 17(11), 1468; https://doi.org/10.3390/v17111468 - 1 Nov 2025
Viewed by 1373
Abstract
There is increasing research interest in the ORF3 accessory protein of PEDV as a critical element for viral virulence. Here, wild type ORF3 (ORF3wt) gene was constructed in pEGFP-C1 vector. Additionally, two truncation mutants, ORF3-N (1-98 amino acids [aa]) and ORF3-C [...] Read more.
There is increasing research interest in the ORF3 accessory protein of PEDV as a critical element for viral virulence. Here, wild type ORF3 (ORF3wt) gene was constructed in pEGFP-C1 vector. Additionally, two truncation mutants, ORF3-N (1-98 amino acids [aa]) and ORF3-C (99-224 aa) were inserted in the same vector. Results of ORF3 expression revealed early cytoplasmic localization but 12 h after transfection, ORF3 accumulated around the nucleus, especially ORF3-N. This caused chromosome condensation and morphological distortion that culminated in cell death. In comparison with the native cells expressing GFP alone, ORF3wt-induced lethality was 6.61% above baseline while ORF3- C expression resulted in moderate increase in cell death (0.64%). ORF3-N was affected the most with 220.32% increased lethality. It was, therefore, inferred that the ORF3 gene encodes a protein that causes nuclear damage, distorts cell morphology and leads to cell death. Furthermore, the role of the protein could be inherent in the N-terminal domain, which consists of the transmembrane domains. These findings underpin the importance of ORF3 gene expression in the host and are rudimental insights for further exploration into the mechanistic interactions of ORF3 and the host, as well as a possible role in pathogenesis in PEDV and other coronaviruses. Full article
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19 pages, 2332 KB  
Article
Rhythmic Dynamics of Stress Granules in Wild-Type and Bmal1−/− Fibroblasts Lacking a Functional Canonical Circadian Clock
by Melisa Malcolm, Julio M. Pusterla, Laura G. Penazzi, Alejandra Trenchi, Victoria A. Acosta-Rodríguez, Maximiliano N. Ríos, Marcos Villarreal, Mario E. Guido and Eduardo Garbarino-Pico
Int. J. Mol. Sci. 2025, 26(20), 9943; https://doi.org/10.3390/ijms26209943 - 13 Oct 2025
Viewed by 1338
Abstract
Circadian rhythms are endogenous ~24 h oscillations that regulate diverse biochemical processes. Although stress responses can exhibit circadian modulation, evidence for rhythmic regulation of stress granules (SGs)—cytoplasmic RNA–protein condensates formed under stress—remains limited. We investigated sodium arsenite-induced SG dynamics in NIH/3T3 cultures. SG [...] Read more.
Circadian rhythms are endogenous ~24 h oscillations that regulate diverse biochemical processes. Although stress responses can exhibit circadian modulation, evidence for rhythmic regulation of stress granules (SGs)—cytoplasmic RNA–protein condensates formed under stress—remains limited. We investigated sodium arsenite-induced SG dynamics in NIH/3T3 cultures. SG number, eIF3 signal intensity—an established SG marker—and area oscillated with a period of ~24 h. These rhythms persisted in Bmal1−/− mouse embryonic fibroblasts (MEFs), despite lacking a transcription–translation feedback loop (TTFL) that constitutes the canonical circadian clock, but with altered amplitude and phase, indicating partial dependence on the molecular clock. Several SG-associated RNA-binding proteins (TIA-1, BRF1, hnRNP Q, and LARK) exhibited time-dependent changes at the mRNA and/or protein level, suggesting potential mechanisms for rhythmic SG modulation. Unlike previous in vivo reports linking SG variation to eIF2α phosphorylation, no temporal changes in phosphorylated eIF2α were observed, highlighting differences between isolated cells and tissues. Our results show that SG rhythmicity can persist without BMAL1, supporting alternative oscillatory mechanisms that contribute to the temporal organization of stress responses. Given their role in cell survival and the association of SG dysfunction with disease, these rhythms provide insight into how cellular stress responses are temporally regulated. Full article
(This article belongs to the Special Issue Metabolic Oscillations Controlled by the Biological Clock)
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22 pages, 3172 KB  
Article
Synergistic Biocontrol of Agrobacterium tumefaciens by Phage PAT1 and Ascaphin-8: Enhanced Antimicrobial Activity and Virulence Attenuation via HupB Loss
by Miloud Sabri, Kaoutar El Handi, Cosima Damiana Calvano, Mariachiara Bianco, Angelo De Stradis and Toufic Elbeaino
Int. J. Mol. Sci. 2025, 26(19), 9355; https://doi.org/10.3390/ijms26199355 - 25 Sep 2025
Cited by 4 | Viewed by 1348
Abstract
Agrobacterium tumefaciens (A. tumefaciens), the causal agent of crown gall disease on several plant species, is responsible for substantial yield losses worldwide. The limitations of conventional pesticides in controlling this disease highlight the need for alternative antibacterial solutions. Phage biocontrol can [...] Read more.
Agrobacterium tumefaciens (A. tumefaciens), the causal agent of crown gall disease on several plant species, is responsible for substantial yield losses worldwide. The limitations of conventional pesticides in controlling this disease highlight the need for alternative antibacterial solutions. Phage biocontrol can be an option, effectively managing bacterial plant diseases, by reducing pathogen loads while driving evolutionary trade-offs, often enhancing synergy with other antibacterial strategies. In this study, we aimed to explore and develop a sustainable strategy to control A. tumefaciens, by combining Agrobacterium phage PAT1 with the natural antimicrobial peptide “Ascaphin 8” and leveraging the fitness trade-offs resulting from phage resistance. In vitro and in planta investigations showed that PAT1 in combination with Ascaphin 8 at the sublethal concentration of 3 μM could effectively eradicate A. tumefaciens in YPG broth and reduce tumor formation by 46.33% on tomato plants, unlike their individual applications, indicating that the combination was synergistic against A. tumefaciens. This synergy was attributed to the fitness trade-offs in A. tumefaciens induced by phage resistance, which led to increased sensitivity to antimicrobial peptides, slower growth rate, and an 89.96% attenuation of virulence in the PAT1-resistant mutant (AT-M1). Transmission electron microscopy analyses showed that treatment with 1 µM of Ascaphin 8 induced cytoplasmic condensation in 80% of AT-M1 cells, whereas only 16% of the wild-type CFBP 5770 cells exhibited similar alterations under identical conditions. Furthermore, proteomic analyses performed on AT-M1 and CFBP 5770 revealed that the mutant AT-M1 exhibited a loss of DNA-binding protein HupB and downregulation of SDR family oxidoreductase and superoxide dismutase. These molecular alterations are potentially associated with the reduced virulence and heightened AT-M1 sensitivity. This study investigated the fitness costs associated with phage resistance in A. tumefaciens and laid the first foundation for potential biocontrol of plant bacterial diseases, particularly A. tumefaciens infections, using phage–peptide combination. Full article
(This article belongs to the Special Issue Molecular Mechanisms of Plant Virus Infection, Resistance and Control)
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16 pages, 500 KB  
Review
The Skin Barrier: A System Driven by Phase Separation
by Fengjiao Yu, Lu Leng, Haowen Wang, Mengmeng Du, Liang Wang and Wenhua Xu
Cells 2025, 14(18), 1438; https://doi.org/10.3390/cells14181438 - 15 Sep 2025
Viewed by 3152
Abstract
The mammalian epidermis forms a critical barrier against environmental insults and water loss. The formation of its outermost layer, the stratum corneum, involves a rapid terminal differentiation process that has traditionally been explained by the “bricks and mortar” model. Recent advances reveal a [...] Read more.
The mammalian epidermis forms a critical barrier against environmental insults and water loss. The formation of its outermost layer, the stratum corneum, involves a rapid terminal differentiation process that has traditionally been explained by the “bricks and mortar” model. Recent advances reveal a more dynamic mechanism governed by intracellular liquid–liquid phase separation (LLPS). This review proposes that the lifecycle of the granular layer is orchestrated by LLPS. Evidence is synthesized showing that keratohyalin granules (KGs) are biomolecular condensates formed by the phase separation of the intrinsically disordered protein filaggrin (FLG). The assembly, maturation, and pH-triggered dissolution of these condensates are essential for cytoplasmic remodeling and the programmed flattening of keratinocytes, a process known as corneoptosis. In parallel, an LLPS-based signaling pathway is described in which the kinase RIPK4 forms condensates that activate the Hippo pathway, promoting transcriptional reprogramming and differentiation. Together, these structural and signaling condensates drive skin barrier formation. This review further reinterprets atopic dermatitis, ichthyosis vulgaris, and Bartsocas-Papas syndrome as diseases of aberrant phase behavior, in which pathogenic mutations alter condensate formation or material properties. This integrative framework offers new insight into skin biology and suggests novel opportunities for therapeutic intervention through biophysics-informed biomaterial and regenerative design. Full article
(This article belongs to the Section Cellular Biophysics)
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Article
Exometabolite-Based Antimicrobial Formulations from Lactic Acid Bacteria as a Multi-Target Strategy Against Multidrug-Resistant Escherichia coli
by Gabriela N. Tenea, Diana Molina, Yuleissy Cuamacas, George Cătălin Marinescu and Roua Gabriela Popescu
Antibiotics 2025, 14(9), 851; https://doi.org/10.3390/antibiotics14090851 - 22 Aug 2025
Cited by 7 | Viewed by 2016
Abstract
Background/Objectives: The global increase in multidrug-resistant (MDR) bacterial infections underscores the urgent need for effective and sustainable antimicrobial alternatives. This study investigates the antimicrobial activity of exometabolite-based formulations (ExAFs), derived from the cell-free supernatants (CFS) of native lactic acid bacteria (LAB) applied [...] Read more.
Background/Objectives: The global increase in multidrug-resistant (MDR) bacterial infections underscores the urgent need for effective and sustainable antimicrobial alternatives. This study investigates the antimicrobial activity of exometabolite-based formulations (ExAFs), derived from the cell-free supernatants (CFS) of native lactic acid bacteria (LAB) applied individually or in combination thereof, against MDR-Escherichia coli strain L1PEag1. Methods: Fourteen ExAFs were screened for inhibitory activity using time–kill assays, and structural damage to bacterial cells was assessed via scanning and transmission electron microscopy (SEM/TEM). The most potent formulation was further characterized by liquid chromatography–tandem mass spectrometry (LC–MS/MS) employing a Sequential Windowed Acquisition of All Theoretical Fragment Ion Mass Spectra (SWATH) approach for untargeted metabolite profiling. Results: Among the tested formulations, E10, comprising CFS from Weissella cibaria UTNGt21O, exhibited the strongest inhibitory activity (zone of inhibition: 17.12 ± 0.22 mm), followed by E1 (CFS from Lactiplantibacillus plantarum Gt28L and Lactiplantibacillus plantarum Gt2, 3:1 v/v) and E2 (Gt28L CFS + EPS from Gt2, 3:1 v/v). Time–kill assays demonstrated rapid, dose-dependent bactericidal activity: E1 and E10 achieved >98% reduction in viable counts within 2–3 h, at 1× MIC, while E2 sustained 98.24% inhibition over 18 h, at 0.25× MIC. SEM and TEM revealed pronounced ultrastructural damage, including membrane disruption, cytoplasmic condensation, and intracellular disintegration, consistent with a membrane-targeting mode of action. Metabolomic profiling of E10 identified 22 bioactive metabolites, including lincomycin, the proline-rich peptide Val–Leu–Pro–Val–Pro–Gln, multiple flavonoids, and loperamide. Several compounds shared structural similarity with ribosomally synthesized and post-translationally modified peptides (RiPPs), including lanthipeptides and lassopeptides, suggesting a multifaceted antimicrobial mechanism. Conclusions: These findings position ExAFs, particularly E10, as promising, peptide-rich, bio-based antimicrobial candidates for food safety or therapeutic applications. The co-occurrence of RiPP analogs and secondary metabolites in the formulation suggests the potential for complementary or multi-modal bactericidal effects, positioning these compounds as promising eco-friendly alternatives for combating MDR pathogens. Full article
(This article belongs to the Special Issue Bioactive Peptides and Their Antibiotic Activity)
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