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Epitranscriptomic Regulation of ALDOA by SHMT2-Mediated m6A Modification Drives Gastric Cancer Malignancy.

Gastric cancer (GC) remains a leading cause of cancer-related mortality worldwide, with limited therapeutic advancements despite progress in early detection. Serine hydroxymethyltransferase 2 (SHMT2), a key metabolic enzyme, and fructose-1,6-bisphosphate aldolase A (ALDOA), a glycolytic enzyme, are implicated in tumor progression. However, the molecular mechanisms linking SHMT2 and ALDOA in GC remain unclear. This study investigates how SHMT2 regulates ALDOA expression via m6A RNA modification to drive GC malignancy. Bioinformatic analyses (TCGA, LinkedOmics, and SRAMP) were used to assess SHMT2 expression in GC patients and identify its correlated genes. In vitro experiments (CCK-8, EdU, Transwell, and wound healing) evaluated the effects of SHMT2 overexpression or knockdown on GC cell proliferation, migration, invasion, and glycolysis. m6A modification of ALDOA was analyzed via MeRIP-PCR and dual-luciferase assays, while RNA stability was assessed using actinomycin D treatment. Xenograft models validated SHMT2's role in vivo. SHMT2 was upregulated in GC tissues and cell lines, correlating with advanced tumor stages and poor prognosis. SHMT2 knockdown suppressed GC cell viability, migration, invasion, and glycolysis, while overexpression enhanced these traits. Mechanistically, SHMT2 increased S-adenosylmethionine levels, promoting ALDOA m6A modification, likely mediated through the predicted site 1 (position 291). This modification stabilized ALDOA mRNA via IGF2BP1 recognition, an m6A reader. ALDOA overexpression reversed the tumor-suppressive effects of SHMT2 knockdown. In vivo, SHMT2 depletion reduced tumor growth and Ki67 expression in xenograft models. In conclusion, SHMT2 drives GC progression by enhancing ALDOA expression through m6A modification and IGF2BP1-mediated stabilization. Targeting the SHMT2-ALDOA axis represents a promising therapeutic strategy for gastric cancer.

Humans

Mycobacterium tuberculosis MEM39 (Rv1977) hijacks host aldolase A (ALDOA) to subvert immunometabolism to facilitate bacterial intracellular survival.

Mycobacterium tuberculosis (Mtb), the causative agent of tuberculosis (TB), is the leading cause of infectious disease-related death. As a major intracellular pathogen, Mtb can escape clearance by the immune system, but the underlying molecular mechanisms remain incompletely elucidated. Specific genomic regions of deletion (RD)-encoded proteins in virulent Mtb H37Rv have been implicated in modulating pathogenicity and immunity. Here, we report a novel RD15-encoding protein, Rv1977 (a mycobacterial cell wall protein with a size of 39 kDa, named MEM39), which facilitates Mtb survival in macrophages. The survival of the Mtb H37Rv MEM39-deficient strain is reduced in both macrophage and murine infection models. Furthermore, the mycobacterial MEM39 protein binds fructose-diphosphate aldolase A (ALDOA), a key enzyme of glycolysis, thereby impairing ALDOA enzyme activity, disrupting macrophage metabolite flux, and reducing lactate production. The MEM39-ALDOA interaction also suppresses lysosomal acidification; reduces NLRP3 inflammasome activation and the production of proinflammatory cytokines (TNF-α, IL-6 and IL-1β); and thereby promotes bacterial survival within macrophages. Disruption of the interaction between MEM39-ALDOA and a cell-penetrating synthetic peptide (VLARYASICQ) significantly suppressed Mtb survival by restoring lactate production, lysosome acidification and proinflammatory cytokine production in both macrophage and mouse infection models. These findings revealed that mycobacterial MEM39 negatively regulates host immune defense through reprogramming ALDOA-mediated glycolysis in macrophages, thereby forming a "mycobacterial MEM39 virulence factor-glycolysis metabolism-immunity" regulatory axis. Targeting MEM39 or the MEM39-ALDOA interaction interface holds promise as a new therapeutic strategy against tuberculosis.

Mycobacterium tuberculosis

Integrating transcriptomics and metabolomics reveals the molecular landscape of sperm maturation driven by regional differentiation in the epididymis of Guizhou-Guiqian semi-fine wool sheep.

Epididymal regionalized differentiation is crucial for sperm maturation. However, little is known about the synergistic remodeling mechanisms of different epididymal segments at the transcriptional and metabolic levels during sexual maturation in ruminants (especially sheep). We investigated the caput, corpus, and cauda epididymidis of pre-pubertal (2-month-old) and post-pubertal (7-month-old) Guizhou-Guiqian semi-fine wool sheep using histology, RNA sequencing, and metabolomics. Post-pubertal tissues exhibited increased luminal diameters, cilia lengths, and abundant cauda spermatozoa. Transcriptomic analysis revealed increasing differentially expressed genes (DEGs) along the caput-corpus-cauda axis (4642, 6103, and 7698 DEGs, respectively). Metabolomics detected 786 unique differentially accumulated metabolites (DAMs). Region-specific analysis showed that in the caput, up-regulated pathways (fructose/mannose metabolism; HK2, ALDOA, HKDC1) provide energy and substrates for initial sperm motility. In the corpus, down-regulated genes associated with extracellular matrix and tight junctions suggested epithelial barrier remodeling to establish an immune-tolerant microenvironment. The cauda specifically up-regulated the pentose phosphate pathway (FBP1, GPI) and glutathione metabolism, maintaining redox homeostasis for long-term sperm storage. Additionally, glycerophospholipid metabolism was enriched across all segments, where PEMT, AGPAT5, and LCAT likely regulate sperm plasma membrane fluidity. In conclusion, during sexual maturation, the caput drives energy metabolism and glycosylation, the corpus establishes immune tolerance, and the cauda maintains antioxidant homeostasis. The glycerophospholipid network throughout the across all epididymal segments synergistically remodels sperm membrane. This study reveals the underlying multi-omics regulatory mechanisms of epididymal functional differentiation, providing a theoretical basis for elucidating the molecular mechanisms of sperm maturation in this breed and for the molecular breeding of early reproductive performance in rams.

Animals

Molecular Signature of Prediabetes With High-Risk of Diabetes Revealed by Deep Plasma Proteome.

AIMS: Prediabetes is biologically heterogeneous, but molecular subtypes linked to diabetes progression remain poorly defined. We aimed to identify plasma proteome-based subtypes of impaired fasting glucose (IFG), characterise their molecular features and assess their association with future diabetes risk. MATERIALS AND METHODS: We quantified 2584 plasma proteins using liquid chromatography-mass spectrometry in 538 IFG participants from a prospective discovery cohort (Nutrition and Health of Aging Population in China, NHAPC). Proteomic subtypes were defined by consensus clustering, linked to longitudinal changes in insulin sensitivity and incident type 2 diabetes mellitus (T2DM), which were further validated in an independent Shanghai Brain Aging Study (SBAS) cohort. RESULTS: Two reproducible IFG molecular subtypes based on plasma proteomics were identified. The high-risk subtype showed higher incident diabetes and a greater 6-year decline in insulin sensitivity and was characterised by enrichment of glycolysis/gluconeogenesis, insulin signalling and neutrophil degranulation, together with a dyslipidemic lipidomic profile indicating co-dysregulation of glucose and lipid homeostasis. The low-risk subtype demonstrated a higher complement cascade and high-density lipoprotein particle remodelling signature. In the high-risk subtype, key proteins and lipids showed stronger associations with longitudinal declines in insulin sensitivity, including PPBP, PGK1 and ALDOA, as well as PE-P 18:0/20:3 and PE-P 18:1/20:3. CONCLUSIONS: Proteome-based molecular subtyping stratifies IFG individuals with similar fasting glucose levels but distinct biology and future diabetes risk, supporting earlier and more targeted prevention.

Humans

A cellular model of TDP-43 induces phosphorylated TDP-43 aggregation with distinct changes in solubility and autophagy dysregulation.

Amyotrophic lateral sclerosis (ALS) is an incurable neurodegenerative disease that affects neurons in the brain and spinal cord, causing loss of muscle control, and eventually leads to death. Phosphorylated transactive response DNA binding protein-43 (TDP-43) is the major pathological protein in both sporadic and familial ALS, forming cytoplasmic aggregates in over 95% of cases. Of the 10-15% of ALS cases that are familial, mutations in TDP-43 represent about 5% of those with a family history. We have developed an in vitro overexpression model by introducing three familial ALS mutations (A315T, M337V, and S379P) in the TDP-43 (TARDBP) gene which we define as 3X-TDP-43. This overexpression model TDP-43 shows deficits in autophagy flux and colocalization of TDP-43 with stress granules. We also observe a progressive shift of TDP-43 to the cytoplasm in this model. This overexpression model shows a reduction in solubility of phosphorylated TDP-43 from RIPA to urea soluble. Four glycolytic enzymes, phosphoglycerate kinase one (PGK1), aldolase A (ALDOA), enolase 1 (ENO1), and pyruvate dehydrogenase kinase 1 (PDK1) show significant time-dependent decreases in 3X-TDP-43 expressing cells. Shotgun proteomic analysis shows global changes in the importin subunit alpha-1 (KPNA2), heat shock 70 kDa protein 1A (HSPA1A), and protein disulfide-isomerase A3 (PDIA3) expression levels and coimmunoprecipitation reveals that these proteins complex with TDP-43. Overall, these results suggest that the 3X-TDP-43 model may provide new insights into pathophysiology and an avenue for drug screening in vitro for those suffering from ALS and related TDP-43 proteinopathies.

Autophagy