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Hossain, N.

Publications and source records attributed to Hossain, N..

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Spatially confined niches support hypoxia-associated transcriptional plasticity contributing to malignant progression in IDH-mutant gliomas

BackgroundWhile hypoxia is a well-established driver of glioblastoma progression, its role in IDH-mutant gliomas, characterized by localized hypoxic microenvironments rather than overt necrosis, remains poorly understood. Here, we investigate how hypoxia and microenvironmental-adaptations shape cellular heterogeneity and transcriptional plasticity in these tumors. MethodsWe integrated bulk, single-cell, and spatial-transcriptomics datasets from IDH-mutant glioma patients (Astrocytomas and Oligodendrogliomas) to characterize cellular-states and map the localization of hypoxic niches. To uncover tumor microenvironment effects, we established co-culture models using primary IDH-mutant glioma cells with human microglia and astrocytes, maintained under hypoxic and normoxic conditions, followed by bulk RNA-sequencing. ResultsWe identified a hypoxia-associated astrocyte-like (AC-like) program that defines a quiescent, non-cycling population with a distinct transcription factor profile indicative of functional plasticity in IDH-mutant gliomas. These cells harbor glioma stem cell (GSC)-like features and are poised for a quiescent-to-activated (Q-to-A) transition that drives tumor progression. Mechanistically, co-culture models reveal that microglia promote this Q-to-A transition by enhancing HBEGF/EGFR paracrine signaling. Spatial transcriptomics uncovers the co-localization of hypoxic niches within quiescent AC-like cells, whereby the activated subpopulation forms discrete niches defined by localized HBEGF/EGFR communication gradients. Notably, tumors exhibiting elevated EGFR-driven activation signatures correlate with higher histological grade and poorer patient survival, implicating the Q-to-A transition as a critical driver of malignant progression. ConclusionQ-to-A transition within the hypoxic niche represents a critical driver of malignant progression in IDH-mutant gliomas, providing a microenvironment-driven mechanism for the transition to higher-grade disease and identifying targetable-vulnerabilities for therapeutic intervention. Key pointsO_LIHypoxic niches spatially confine quiescent, astrocyte-like cellular state characterized by glioma stem cell features in IDH-mutant gliomas. C_LIO_LIMicroglia triggers the quiescent-to-activated (Q-to-A) transition via paracrine EGFR signaling crosstalk. C_LIO_LIEGFR-driven Q-to-A plasticity serves as a microenvironmentally-regulated driver of malignant progression and adverse patient survival. C_LI Importance of the studyWhile high-grade glioblastomas feature well-defined hypoxic and necrotic regions that drive tumor progression and therapy resistance, IDH-mutant gliomas lack these distinct hallmarks, instead exhibiting disorganized hypoxic niches. Consequently, the functional contribution of these niches to tumor progression has remained poorly understood. Although genetic and epigenetic alterations are established drivers of progression in IDH-mutant gliomas, we provide an additional, essential layer of complexity: microenvironment-driven transcriptional plasticity. By uncovering the relationship between tumor hypoxia and heterogeneous glioma cell states, we uncover that these niches are essential for such plasticity. We also show that the tumor microenvironment provides critical molecular cues necessary to initiate a transcriptional shift enabling glioma cells to transition from a quiescent reservoir into an activated state primed for rapid proliferation. By identifying this paracrine mechanism, our work uncovers a targetable vulnerability that dictates how dormant cell reservoirs are mobilized to fuel malignant transformation.

cancer biology↗

The tRNA dihydrouridine synthase DusA has a distinct mechanism in optimizing tRNAs for translation

Dihydrouridine (D) is one of the most highly conserved RNA modifications across all domains of life. D20 within the tRNA D loop is particularly conserved and is formed by DusA in Escherichia coli. However, the mechanisms and cellular functions of DusA and D20 remain poorly understood. Here, we characterize DusAs role in tRNA binding, cofactor oxidation, and modification activity, along with its impact on tRNA maturation and translation. We find that DusA binds tRNA via a two-step mechanism involving a local structural rearrangement and exhibits a higher affinity for previously modified tRNA compared to unmodified tRNA. Unlike the T arm modifying enzymes TrmA and TruB, DusA does not broadly increase cellular aminoacylation for all tRNAs but enhances the charging of specific tRNA species. Despite limited alterations in overall tRNA charging and abundance in cells lacking DusA, DusA selectively improves translation at several specific codons, suggesting a direct contribution for dihydrouridine to the function of certain tRNAs on the ribosome. In conclusion, our findings suggest DusA acts non-redundantly with and complementary to TrmA and TruB in fine-tuning protein synthesis. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=99 SRC="FIGDIR/small/672980v1_ufig1.gif" ALT="Figure 1"> View larger version (20K): org.highwire.dtl.DTLVardef@1191c4forg.highwire.dtl.DTLVardef@191b43borg.highwire.dtl.DTLVardef@cfceeborg.highwire.dtl.DTLVardef@119c26a_HPS_FORMAT_FIGEXP M_FIG C_FIG

biochemistry↗