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The human mitochondrial genome contains a second light strand promoter.

The human mitochondrial genome must be replicated and expressed in a timely manner to maintain energy metabolism and supply cells with adequate levels of adenosine triphosphate. Central to this process is the idea that replication primers and gene products both arise via transcription from a single light strand promoter (LSP) such that primer formation can influence gene expression, with no consensus as to how this is regulated. Here, we report the discovery of a second light strand promoter (LSP2) in humans, with features characteristic of a bona fide mitochondrial promoter. We propose that the position of LSP2 on the mitochondrial genome allows replication and gene expression to be orchestrated from two distinct sites, which expands our long-held understanding of mitochondrial gene expression in humans.

Adenosine Triphosphate

A next-generation sequencing-based pharmacogenetic study of ABCB1, ABCC1, and ABCC2 variants associated with antiseizure medication response in Turkish epilepsy patients.

OBJECTIVES: Epilepsy is a chronic neurological disorder characterized by a tendency to have recurrent seizures due to abnormal and excessive neuronal activity in the brain. Genetic variants in adenosine triphosphate (ATP)-binding cassette (ABC) transporter genes, including ABCB1, ABCC1, and ABCC2, may contribute to pharmacoresistance in epilepsy by altering the transport of anti-seizure medications (ASMs) across the blood-brain barrier (BBB). This study aims to explore genetic polymorphisms in the ABCB1, ABCC1, and ABCC2 genes in Turkish epilepsy patients and to assess their impact on responsiveness to ASMs. METHODS: Targeted next-generation sequencing was used for molecular genotyping of the ABCB1, ABCC1, and ABCC2 genes in genomic DNA from 35 patients. RESULTS: A total of nine common variants were analyzed in ABCB1 (rs2032582, rs1045642, rs1128503), ABCC1 (rs35626, rs212087, rs246221), and ABCC2 (rs717620, rs22773697, rs3740066). A statistically significant association was found between ABCB1 rs2032582:T>G and ASMs response in the recessive model (TT + TG vs. GG, p = 0.018, OR = 13.13; 95% CI: 1.69-160.1; Benjamini-Hochberg (BH) FDR-adjusted q = 0.09), with the TT + TG genotypes being more frequent among drug-responsive patients. Haplotype analysis showed that only the ABCB1 rs2032582 G allele was significantly more frequent in drug-persistent patients compared with drug-responsive patients (χ2 = 3.916, p = 0.047). However, none of these associations remained statistically significant after false discovery rate (FDR) correction, and all findings should therefore be interpreted as exploratory. SIGNIFICANCE: The findings suggest that the ABCB1 rs2032582:T>G polymorphism may be associated with variability in treatment response among Turkish epilepsy patients. These results emphasize the potential involvement of ABC transporter-mediated drug efflux mechanisms in impacting the effectiveness of ASMs.

ABCB1

Primary Mitochondrial-Disorders-Associated Nephropathy in Adulthood.

Oxidative phosphorylation (OXPHOS) is the main source of cellular adenosine triphosphate (ATP) production and depends on proteins encoded by both mitochondrial and nuclear DNA (nDNA). Pathogenic variants affecting this dual genetic control cause primary mitochondrial disorders (MIDs), which follow either maternal inheritance when they affect mitochondrial DNA (mtDNA) or autosomal inheritance when they affect nuclear-encoded mitochondrial proteins. Once considered predominantly pediatric conditions, these disorders are increasingly recognized in adults where their clinical presentation is heterogeneous and frequently underdiagnosed, requiring the involvement of various medical specialties.Because of their high energy requirements, kidneys are particularly vulnerable to primary MIDs. Tubular epithelial cells rely on OXPHOS for solute transport, whereas podocytes require sustained ATP production to preserve the glomerular filtration barrier. Although kidney involvement in adult primary MIDs has long been regarded as rare, emerging data indicate that primary MIDs-associated nephropathy (MIDAN) is more common than previously appreciated, yet remains under-recognized, as a cause of adult kidney disease. Renal manifestations include a broad spectrum of glomerular disorders-predominantly focal segmental glomerulosclerosis (FSGS), often associated with diabetes mellitus and sensorineural hearing impairment-as well as tubulo-interstitial nephritis (TIN), which may present as an isolated renal phenotype or as part of a multisystemic disorder.Advances in next-generation sequencing, including mitochondrial genome sequencing and exome or whole-genome sequencing, are transforming the diagnostic approach to MIDAN. Improved recognition of mitochondrial etiologies in adults with unexplained glomerular or tubulo-interstitial kidney disease is essential to optimize diagnosis, management, and genetic counseling.

adult

Tanshinone IIA impairs platelet function and thrombus formation.

BACKGROUND: Tanshinone IIA (T-IIA) is a fat-soluble active ingredient derived from the traditional Chinese medicine Danshen and possesses cardioprotective property. However, its exact role in platelet function is unknown. OBJECTIVES: This study investigated T-IIA's role in platelet aggregation, granules release, spreading, clot retraction, as well as in vivo hemostasis and thrombus formation. METHODS: Human platelets were treated with different doses of T-IIA (10, 50, and 100 μM) to measure platelet function and activation. In addition, T-IIA was administrated into wild-type mice to evaluate hemostasis and thrombus formation. RESULTS: T-IIA significantly impaired platelet aggregation, adenosine triphosphate secretion, P-selectin expression, and spreading and clot retraction dose dependently without affecting the expression profiles of αIIbβ3 and glycoprotein VI or Ibα. Administration of T-IIA significantly prolonged mice tail bleeding time and inhibited arterial and venous thrombosis. Further analysis showed that T-IIA dose dependently reduced platelet reactive oxygen species generation. Quantitative proteomic and phosphoproteimic assays analyzing T-IIA-treated vs vehicle-treated platelets after stimulation identified dysregulated phosphorylation of several proteins, which were enriched in platelet activation. Among the downregulated phosphoproteins, Rho-associated protein kinase (ROCK)1, integrin β3, and talin1 exhibited the lower fold change of phosphorylation in T-IIA-treated platelets compared with those in vehicle-treated platelets. Consistently, T-IIA treatment inhibited the phosphorylation of ROCK1, p47phox, integrin β3, and talin1 in activated platelets. CONCLUSION: T-IIA impairs platelet function and thrombosis via inhibition of several signaling pathways including ROCK1/p47phox, β3, and talin1, implying that T-IIA may represent a promising therapeutic candidate for treating thrombotic diseases.

Animals

Integration of metabolomics and proteomics reveals the toxicological mechanisms of environmentally relevant concentrations of cadmium on juvenile rockfish (Sebastes schlegelii).

As a highly toxic heavy metal, cadmium (Cd) is widely distributed in the coastal environments of the Bohai Sea, posing significant ecological and health risks. This is of particular concern for Sebastes schlegelii, a rockfish species commonly found along the Bohai coast and consumed by local populations. In this study, juvenile S. schlegelii were randomly assigned to three groups (control, 5 and 50&#xa0;&#x3bc;g/L Cd) for a 14-day exposure period, followed by analysis of Cd bioaccumulation, as well as metabolomic and proteomic profiling. ICP-MS analysis indicated dose-dependent Cd bioaccumulation in the whole body, with 0.11&#xa0;&#xb1;&#xa0;0.07&#xa0;&#x3bc;g/g dry weight in the 5&#xa0;&#x3bc;g/L group and 0.38&#xa0;&#xb1;&#xa0;0.09&#xa0;&#x3bc;g/g dry weight in the 50&#xa0;&#x3bc;g/L group (9.5-fold higher than the control, p&#xa0;<&#xa0;0.05). An iTRAQ-based proteomic analysis determined 168 differentially expressed proteins, while 1H NMR-based metabolomic profiling identified 34 metabolites with significant alterations. Integrated analysis of the proteomic and metabolomic data provided insights into the molecular responses of juvenile rockfish to Cd exposure. Specifically, metabolomic results indicated significant alterations in key metabolites, including lactate, phosphocholine, adenosine triphosphate, alanine, and inosine in the Cd-treated groups. Proteomic analysis further suggested that Cd exposure was associated with immune and oxidative stress responses, neurotoxicity, cellular damage, and disruptions in critical metabolic pathways, such as glycolysis, the tricarboxylic acid cycle, amino acid and lipid metabolism. Overall, this study demonstrates the utility of integrating proteomics and metabolomics to characterize molecular responses to Cd stress in juvenile S. schlegelii.

Animals

Nonlethal deleterious mutation-induced stress accelerates bacterial aging.

Random mutagenesis, including when it leads to loss of gene function, is a key mechanism enabling microorganisms' long-term adaptation to new environments. However, loss-of-function mutations are often deleterious, triggering, in turn, cellular stress and complex homeostatic stress responses, called "allostasis," to promote cell survival. Here, we characterize the differential impacts of 65 nonlethal, deleterious single-gene deletions on Escherichia coli growth in three different growth environments. Further assessments of select mutants, namely, those bearing single adenosine triphosphate (ATP) synthase subunit deletions, reveal that mutants display reorganized transcriptome profiles that reflect both the environment and the specific gene deletion. We also find that ATP synthase &#x3b1;-subunit deleted (&#x394;atpA) cells exhibit elevated metabolic rates while having slower growth compared to wild-type (wt) E. coli cells. At the single-cell level, compared to wt cells, individual &#x394;atpA cells display near normal proliferation profiles but enter a postreplicative state earlier and exhibit a distinct senescence phenotype. These results highlight the complex interplay between genomic diversity, adaptation, and stress response and uncover an "aging cost" to individual bacterial cells for maintaining population-level resilience to environmental and genetic stress; they also suggest potential bacteriostatic antibiotic targets and -as select human genetic diseases display highly similar phenotypes, - a bacterial origin of some human diseases.

Escherichia coli

An in vivo barcoded CRISPR-Cas9 screen identifies Ncoa4-mediated ferritinophagy as a dependence in Tet2-deficient hematopoiesis.

TET2 is among the most commonly mutated genes in both clonal hematopoiesis and myeloid malignancies; thus, the ability to identify selective dependencies in TET2-deficient cells has broad translational significance. Here, we identify regulators of Tet2 knockout (KO) hematopoietic stem and progenitor cell (HSPC) expansion using an in vivo CRISPR-Cas9 KO screen, in which nucleotide barcoding enabled large-scale clonal tracing of Tet2-deficient HSPCs in a physiologic setting. Our screen identified candidate genes, including Ncoa4, that are selectively required for Tet2 KO clonal outgrowth compared with wild type. Ncoa4 targets ferritin for lysosomal degradation (ferritinophagy), maintaining intracellular iron homeostasis by releasing labile iron in response to cellular demands. In Tet2-deficient HSPCs, increased mitochondrial adenosine triphosphate production correlates with increased cellular iron requirements and, in turn, promotes Ncoa4-dependent ferritinophagy. Restricting iron availability reduces Tet2 KO stem cell numbers, revealing a dependency in TET2-mutated myeloid neoplasms.

CRISPR-Cas Systems

Inhibition of the atypical kinase WNK1 as a therapeutic strategy in TAL-related T-cell acute lymphoblastic leukemia.

Driver mutations in T-cell acute lymphoblastic leukemia (T-ALL) rarely affect druggable kinases. However, these kinases can be aberrantly activated or repressed as secondary oncogenic events. Thus, integrating unbiased phosphoproteomics with genomic approaches may offer novel opportunities for target discovery and therapeutic interventions. In our study, we identified WNK1 (with no lysine [K]) as a potential target in T-ALL by pairing a list of vulnerable kinases with data from a phosphoproteomic screen of T-ALL cell lines. We subsequently validated WNK1 by loss-of-function-based studies and tested WNK inhibitors in several in vitro and in vivo T-ALL models and clinical T-ALL samples. We showed that therapeutic WNK1 repression promotes polyploidy, resulting in cell proliferation arrest, and morphometric changes, such as incomplete cell division or chromosome segregation through altered mitotic spindle assembly and abscission defects. Furthermore, we found that WNK1 is overexpressed in the TAL1/2-related subgroup, but not in normal thymus or lymph nodes, suggesting a potential translational area for clinical exploitation in poor-prognosis T-ALL carrying PTEN mutations and del(6q). Our work also reports a functional contribution of WNK1 in the leukemia establishment and progression. Structurally WNK1 is an atypical serine/threonine kinase that diverges from canonical kinases by lacking the conserved lysine in subdomain II, instead featuring a cysteine in subdomain I, which is critical for adenosine triphosphate (ATP) binding. This unusual structural configuration creates a distinct ATP-binding pocket with limited sequence similarity to conventional kinases, offering a unique opportunity to develop highly selective small molecules. Targeting this atypical ATP domain could thus provide a therapeutic advantage and broaden the treatment landscape for T-ALL.

WNK Lysine-Deficient Protein Kinase 1

Lipid Metabolism-related lncRNA Model Identifies AC026412.3 as a Driver of Fatty Acid &#x3b2;-oxidation in Hepatocellular Carcinoma.

BACKGROUND AND AIMS: Dysregulated lipid metabolism contributes to hepatocellular carcinoma (HCC) progression, but the prognostic value and mechanistic roles of lipid metabolism-related long noncoding RNAs (LRLs) remain insufficiently characterized. This study aimed to construct and validate an LRL-based prognostic model and to investigate the biological function and metabolic mechanism of AC026412.3 in HCC. METHODS: Transcriptomic and clinical data from the The Cancer Genome Atlas Liver Hepatocellular Carcinoma cohort were analyzed to identify LRLs based on their correlation with curated lipid metabolism genes. Differential expression, univariate Cox, least absolute shrinkage and selection operator (LASSO), and multivariate Cox analyses were performed to construct a prognostic signature, which was evaluated using Kaplan-Meier survival and time-dependent receiver operating characteristic (ROC) analyses. Functional enrichment analyses Gene Ontology [GO], Kyoto Encyclopedia of Genes and Genomes [KEGG] and gene set enrichment analysis [GSEA], mutation profiling, tumor mutational burden, immune infiltration estimation, and consensus clustering were applied to characterize associated features. A key LRL was identified through integrated bioinformatic screening and prioritization. Its biological role was assessed by quantitative reverse transcription polymerase chain reactionq (RT-PCR), western blotting, BODIPY staining, colony formation, Transwell assays, and xenograft models. RNA sequencing followed by pathway enrichment analysis was conducted to explore underlying mechanisms. RESULTS: A three-LRL signature (AL031985.3, NRAV, and AC026412.3) stratified HCC patients into distinct risk groups with significantly different survival outcomes and demonstrated independent prognostic value. AC026412.3 was markedly upregulated in HCC and associated with poor prognosis. Functional assays demonstrated that AC026412.3 promoted proliferation, invasion, and tumor growth while reducing lipid accumulation. Mechanistically, AC026412.3 upregulated solute carrier family 22 member 5 (SLC22A5), enhanced fatty acid &#x3b2;-oxidation, and increased adenosine triphosphate (ATP) production, thereby driving metabolic reprogramming. CONCLUSIONS: This study establishes a robust LRL-based prognostic model and identifies AC026412.3 as a key regulator of lipid metabolic reprogramming via the SLC22A5-fatty acid &#x3b2;-oxidation axis, highlighting its potential as a biomarker and therapeutic target in HCC.

HCC

Integrating network pharmacology and experimental validation to uncover the synergistic effects of Huangqi ()-Ezhu () with 5-fluorouracil in colorectal cancer models.

OBJECTIVE: To evaluate the effects of Huangqi (Radix Astragali Mongolici)-Ezhu (Rhizoma Curcumae Phaeocaulis) (HQEZ) on colorectal cancer therapies and to elucidate the potential mechanisms of HQEZ, especially in combination with 5-Fluorouracil (5-FU). METHODS: The anti-tumor effects of HQEZ were evaluated in colorectal cancer models both in vivo and in vitro. The network pharmacological assay was used to investigate potential mechanisms of HQEZ. Potential target genes were selected by Gene Ontology (GO) enrichment analysis, Kyoto Encyclopedia of Genes and Genomes (KEGG) enrichment analysis, protein-protein interaction network (PPI) and molecular docking. Within key targets, potential targets related to drug sensitivity, especially the sensitivity to 5-FU, were evaluated in HCT116 in vitro by immunofluorescence, quantitative real-time polymerase chain reaction (qPCR) and Western-blot. Then, changes in potential targets were assessed in tumors from tumor-bearing mice and the expression of these targets was also evaluated in colorectal cancer (COAD) patients from the Cancer Genome Atlas Program (TCGA) database. RESULTS: HQEZ significantly enhanced the anti-tumor activity of 5-FU in vivo and inhibit the growth of HCT116 in vitro. By network pharmacological analysis, key targets, such as protein kinase B (AKT1), epidermal growth factor receptor (EGFR), adenosine triphosphate (ATP) binding cassette subfamily B member 1 (ABCB1, also named multidrug resistance protein 1, MDR1), ATP binding cassette subfamily G member 2 (ABCG2), thymidylate synthetase (TYMS, also named TS), prostaglandin-endoperoxide synthase 2 (PTGS2), matrix metallopeptidase 2 (MMP2), MMP9, toll like receptor 4 (TLR4), TLR9 and dihydropyrimidine dehydrogenase (DPYD), were identified. Additionally, 4 potential core active ingredients (Folate, Curcumin, quercetin and kaempferol) were identified to be important for the treatment of colorectal cancer with HQEZ. In key targets, chemoresistance related targets were validated to be affected by HQEZ. Furthermore, 5-FU sensitivity related targets, including MDR1, TS, EGFR, ribonucleotide reductase catalytic subunit M1, Breast and Ovarian Cancer Susceptibility Protein 1 (BRCA1) and mutl homolog 1 were also significantly reduced by HQEZ both in vitro and in vivo. Finally, these validated key targets and 5-FU sensitivity related targets were demonstrated to be up-regulated in COAD patients based on TCGA database. CONCLUSION: HQEZ has synergistic effects on the anti-tumor activity of 5-FU in the treatment of colorectal cancer both in vivo and in vitro. The beneficial effect of HQEZ results from the inhibition of the drug sensitivity targets associated with 5-FU. The combination therapy of HQEZ with 5-FU or other chemotherapeutic drugs will also improve the anti-tumor efficacy of chemotherapy.

Humans

ARL6IP1 Inhibits Breast Cancer Tumor Progression by Targeting OLFM4 to Regulate Glycolysis.

INTRODUCTION: ARL6IP1 has been linked to cancer progression, but its precise role in BC, particularly in metabolism and its interaction with an OLFM4, remains unclear. AIMS: This study aimed to investigate the role of ADP-ribosylation factor-like 6 interacting protein 1 (ARL6IP1) in breast cancer (BC) cell behavior and metabolism and explore its interaction with an olfactomedin-4 (OLFM4) as a potential therapeutic target. OBJECTIVE: The objective of this study was to determine the effects of ARL6IP1 knockdown on BC cell proliferation, invasion, migration, apoptosis, oxidative stress, and glycolysis. Additionally, this study also explored the interaction between ARL6IP1 and OLFM4 and their combined role in BC progression and metabolism. METHODS: Key gene modules in the GSE73540 dataset were identified through weighted gene co-expression network analysis (WGCNA). Three BC-related datasets (GSE73540, GSE22820, and GSE36295) and The Cancer Genome Atlas (TCGA) were applied for additional examination of differentially expressed genes (DEGs). Intersection analysis selected ARL6IP1 as a hub gene for prognostic analysis. In vitro experiments investigated how ARL6IP1 knockdown influences BC cell proliferation, invasion, migration, apoptosis, epithelial-mesenchymal transition (EMT), oxidative stress, and glycolysis. The connection between ARL6IP1 and an OLFM4 was confirmed using Co-immunoprecipitation (Co-IP), and their roles in BC tumor progression and glycolysis were evaluated. RESULTS: ARL6IP1 was elevated in BC datasets and linked with poor BC prognosis. Experiments demonstrated that knockdown of ARL6IP1 significantly reduced BC cell growth while promoting apoptosis and oxidative stress. Besides, ARL6IP1 knockdown reduced glycolysis, as manifested by decreased extracellular acidification rate (ECAR), glucose consumption, adenosine triphosphate (ATP) levels, and lactate production while increasing mitochondrial respiration (OCR). Co-IP validated the connection between ARL6IP1 and OLFM4, and OLFM4 overexpression partially counteracted the suppression of glycolysis and cell behavior resulting from ARL6IP1 knockdown. CONCLUSION: ARL6IP1 is a critical regulator of BC progression, influencing glycolysis, mitochondrial function, and key cellular behaviors. Targeting the ARL6IP1-OLFM4 axis offers a promising therapeutic strategy for managing BC.

Humans

EPS8 Differentially Regulates Antioxidant Defense and Mitochondrial Homeostatic Signaling in LNCaP and Enzalutamide-resistant LNCaP Cells.

BACKGROUND/AIM: Epidermal growth factor receptor pathway substrate 8 (EPS8) is an adaptor protein implicated in tumor progression and therapeutic resistance; however, its role in mitochondrial homeostatic signaling and antioxidant regulation remains unclear. This study examined the effects of EPS8 modulation in lymph node carcinoma of the prostate (LNCaP) and enzalutamide-resistant LNCaP (LNCaP-Enz) cells. MATERIALS AND METHODS: LNCaP-Enz cells were generated by long-term exposure to enzalutamide and maintained in 5 &#x3bc;M enzalutamide. EPS8 expression was modulated by plasmid-mediated overexpression or shRNA-mediated knockdown. Superoxide dismutase (SOD) activity and cellular adenosine triphosphate (ATP) levels were measured using colorimetric assays. Mitochondrial membrane potential (&#x394;&#x3a8;m) was evaluated using JC-1 fluorescence, and mitochondrial staining patterns were qualitatively examined using MitoTracker Green staining. Protein expression associated with antioxidant defense, mitochondrial dynamics, mitochondrial stress response, mitochondrial biogenesis, and AMP-activated protein kinase (AMPK)-mammalian target of rapamycin (mTOR) signaling was analyzed by western blotting. RESULTS: EPS8 overexpression increased SOD activity and the expression of SOD1 and SOD2, whereas EPS8 knockdown reduced these antioxidant parameters. Conversely, EPS8 silencing increased cellular ATP levels and enhanced JC-1 red fluorescence patterns. EPS8 silencing increased MFN1 and OPA1 expression and reduced DRP1 expression, consistent with a fusion-associated mitochondrial profile. EPS8 silencing also increased SIRT1, PGC-1&#x3b1;, NRF1, TFAM, p-AMPK/AMPK, and p-mTOR/mTOR, but reduced HSP60, LONP1, ATF5, and CEBP&#x3b2; expression. CONCLUSION: EPS8 differentially regulates SOD-associated antioxidant capacity and mitochondrial homeostatic signaling in LNCaP-based cell models. Further studies are required to determine whether EPS8 modulation affects enzalutamide responsiveness.

Humans

Bridging-driven condensation by eukaryotic SMC complexes is a conserved feature of genome organization.

The Structural Maintenance of Chromosome (SMC) protein family plays a central role in higher-order genome organization through ATP-dependent DNA loop extrusion by cohesin and condensin and other processes. Whether these activities fully account for the complexity of chromosome architecture remains unknown. Here, we uncover a conserved ATP-independent mechanism of chromatin condensation by SMC complexes, occurring via biomolecular condensation. Using single-molecule fluorescence imaging, we show that a variety of SMCs form dynamic DNA-bound condensates that exhibit key features of biomolecular condensates, including droplet coalescence, fluorescence recovery after photobleaching, and rapid exchange with free SMC complexes. Atomic force microscopy analysis of human cohesin-DNA assemblies reveals DNA-length-dependent clustering, providing evidence for bridging-driven condensation. Analyses of&#xa0;in vivo super-resolution imaging and high-throughput chromosome conformation capture (Hi-C) data indicate that these condensates form chromatin-associated clusters with multi-loop structures. Together, our results establish that SMC complexes employ ATP-independent phase condensation as well as ATP-dependent activities to shape genome architecture. This work reveals a broadly conserved principle of chromosomal organization across eukaryotes.

Chromosomal Proteins, Non-Histone

ENTPD3 as a novel regulator of endometrial receptivity: suppressing EMT via the ATP-P2Y2 axis in patients with recurrent implantation failure.

BACKGROUND: Recurrent implantation failure (RIF) remains a major challenge in assisted reproductive technology and is primarily attributed to impaired endometrial receptivity. Despite its clinical significance, the precise mechanisms underlying RIF remain inadequately understood. METHODS: Single-cell RNA sequencing (scRNA-seq) was performed on endometrial samples from patients with RIF and healthy controls during the secretory phase using the 10X Genomics Chromium platform. The expression and localization of ectonucleoside triphosphate diphosphohydrolase 3 (ENTPD3) in the window of implantation (WOI) in the endometrium were examined using real-time quantitative polymerase chain reaction (RT-qPCR), western blotting, and immunohistochemistry (IHC). A mouse model with ENTPD3 overexpression was utilized to assess embryo implantation in vivo, and an in vitro blastocyst adhesion assay was performed to evaluate endometrial receptivity. Additionally, Ishikawa cells were transduced with an ENTPD3 recombinant adenovirus to explore the underlying molecular mechanisms. RESULTS: ENTPD3 expression was significantly upregulated in the endometria of patients with RIF during the WOI, and its apical surface localization in endometrial epithelial cells was confirmed by single-cell data and IHC. Functional studies demonstrated that ENTPD3 overexpression impaired endometrial receptivity by suppressing epithelial-mesenchymal transition (EMT). In vivo, ENTPD3 overexpression markedly reduced endometrial receptivity and inhibited embryo implantation in mice. Consistently, in vitro assays revealed that ENTPD3 overexpression diminished blastocyst adhesion to endometrial epithelial cells. Mechanistically, ENTPD3 hydrolyzes ATP, thereby suppressing EMT via the P2Y2 signaling pathway and ultimately disrupting endometrial receptivity. CONCLUSIONS: Dysregulated ENTPD3 expression contributes to RIF pathogenesis by impairing endometrial receptivity through ATP hydrolysis-mediated suppression of EMT via P2Y2 signaling. These findings highlight ENTPD3 as a potential therapeutic target for improving implantation success in affected patients.

Female

Genomic and structural insights into the atpB L173I substitution: modulation of the F&#x2080; rotor architecture in Mycobacterium tuberculosis ATP synthase and altered Bedaquiline binding dynamics.

The F&#x2080;F&#x2081; ATP synthase of Mycobacterium tuberculosis (M. tuberculosis) is an essential membrane-embedded rotary motor responsible for ATP synthesis and maintenance of the proton motive force in bacteria. The transmembrane F&#x2080; domain comprises the c-subunit (atpE) and the a-subunit (atpB). Their coordinated interactions are needed for proton translocation and torque generation. Bedaquiline (BDQ), FDA-approved diarylquinoline for the treatment of multidrug-resistant tuberculosis (MDR-TB), targets the F&#x2080; motor by binding at the a-c interface and inhibiting rotary catalysis. To the best of our knowledge, this study represents the first attempt to analyze the effects of mutations in the atpB protein on its structural stability in the F&#x2080; domain, thereby highlighting the novelty of this work. In this study, we integrated Indian whole-genome sequencing (WGS) datasets (PRJNA37907) with long-timescale (1000 ns) membrane-embedded molecular dynamics (MD) simulations. Among 57 atpB mutations identified from WGS analysis, L173I was selected for structural and MD analysis. L173I is located at the atpB-atpE interface near the BDQ-binding region, despite V177L and S184A showing higher prevalence. Comparative MD simulations encompassed four systems: wild-type apo, wild-type with BDQ, L173I apo, and L173I with BDQ. Structural interrogation revealed that the L173I substitution induces subtle destabilization of the global fold of the atpB-atpE complex relative to the apo state, while more critically attenuating inter-subunit contacts between the a-subunit and the c-ring. These perturbations provide a mechanistic rationale for reduced BDQ susceptibility, arising from altered interfacial dynamics rather than complete abrogation of drug binding. This integrative genomic-structural framework advances our understanding of ATP synthase-mediated resistance in M. tuberculosis.

Diarylquinolines

Profiling of drug resistance in Src kinase at scale uncovers a regulatory network coupling autoinhibition and catalytic domain dynamics.

Kinase inhibitors are effective cancer therapies, but resistance often limits clinical efficacy. Despite the cataloging of numerous resistance mutations, our understanding of kinase inhibitor resistance is still incomplete. Here, we comprehensively profiled the resistance of &#x223c;3,500 Src tyrosine kinase mutants to four different ATP-competitive inhibitors. We found that ATP-competitive inhibitor resistance mutations are distributed throughout Src's catalytic domain. In addition to inhibitor contact residues, residues that participate in regulating Src's phosphotransferase activity were prone to the development of resistance. Unexpectedly, we found that a resistance-prone cluster of residues located on the top face of the N-terminal lobe of Src's catalytic domain contributes to autoinhibition by reducing catalytic domain dynamics, and mutations in this cluster led to resistance by lowering inhibitor affinity and promoting kinase hyperactivation. Together, our studies demonstrate how drug resistance profiling can be used to define potential resistance pathways and uncover new mechanisms of kinase regulation.

src-Family Kinases

Intravenous Nicorandil in Patients With ST-Segment Elevation Myocardial Infarction Undergoing Primary PCI: The CLEAN Randomized Clinical Trial.

BACKGROUND: Nicorandil, an adenosine triphosphate-sensitive potassium-channel opener with nitrate-like properties, may reduce reperfusion injury and microvascular obstruction in ST-segment elevation myocardial infarction (STEMI), but large-scale randomized evidence on long-term clinical outcomes is inconclusive. OBJECTIVES: The CLEAN trial aimed to assess whether adjunctive intravenous nicorandil improves 12-month clinical outcomes in patients with STEMI undergoing primary percutaneous coronary intervention. METHODS: In this multicenter, randomized, double-blind, placebo-controlled trial conducted at 49 hospitals in China, patients aged 18 to 80 years with STEMI within 12 hours of symptom onset were randomly assigned (1:1) to receive intravenous nicorandil (6 mg bolus before reperfusion followed by 6 mg/h infusion for 48 h) or matching placebo. Oral nicorandil was prohibited during follow-up. The primary outcome was a composite of cardiovascular death, nonfatal myocardial infarction, target vessel revascularization, or unplanned hospitalization for heart failure within 12 months. RESULTS: Between January 2021 and December 2023, 1,503 patients were enrolled and randomly assigned to nicorandil (n = 748) or placebo (n = 755). The primary composite outcome occurred in 98 patients (13.1%) in the nicorandil group (113 events over 717.2 person-years) and 99 (13.1%) in the placebo group (136 events over 710.3 person-years), with no significant difference between groups (rate ratio: 0.869; 95% CI: 0.650-1.162; P = 0.3429). Among secondary outcomes, nominal reductions were observed in cardiovascular death (1.9% vs 3.6%; HR: 0.515; 95% CI: 0.269-0.983) and target-vessel revascularization (1.1% vs 3.0%; HR: 0.322; 95% CI: 0.143-0.727), whereas rates of nonfatal myocardial infarction and unplanned hospitalization for heart failure were similar between groups. Adverse events did not differ between groups. CONCLUSIONS: In patients with STEMI undergoing primary percutaneous coronary intervention, adjunctive intravenous nicorandil did not significantly reduce the 12-month primary composite outcome. These findings do not support routine use of intravenous nicorandil in unselected patients with STEMI. (Clinical Efficacy and sAfety of Intravenous Nicorandil; NCT04665648).

Humans

Targeting IDH2 promotes antitumor immunity through epigenetic activation of cGAS-STING pathway.

Reductive carboxylation is critical for the proliferation of cancer cells and the differentiation of T cells. However, the role of this reaction in cancer cell-mediated tumor immunity remains unclear. Analysis of TCGA database showed a negative correlation between IDH2 expression and the presence of CD8+ T cells in lung and breast cancers, whereas IDH1 expression didn't show such a correlation. Further GSEA analysis revealed a significant enrichment of immune-related genes within IDH2-associated genes, specifically those in the type &#x2160; interferon pathway. In lung cancer cells, the depletion of IDH2 expression indeed could induce the activation of the immune-related and specially type &#x2160; interferon pathway. Targeting IDH2 with shRNA or its inhibitor AGI-6780 caused an increase in intracellular &#x3b1;-ketoglutarate concentration and a decrease in ATP and SAM levels, leading to a reduction in the methylation of STING promoter and elevated levels expression of STING. The increase of STING expression underlies the activation of type I interferon pathway observed in IDH2 compromised tumor cells and increased defense responses in the tumors in mice. These results identify IDH2 as a potential target to enhance cancer immune therapy.

Humans