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Biology subjects

Deyang, W.

Publications and source records attributed to Deyang, W..

3 recordsLinked to original sources

IMAS enables target-aware integration of tumour multiomics to resolve communication-guided regulatory mechanisms

Tumour single-cell datasets contain weak, sparse and context-restricted regulatory signals that are difficult to distinguish from noise using expression measurements alone. Here we present IMAS, an integrative multiomic augmentation system that learns transferable regulatory structure from a pan-cancer foundation of matched single-cell RNA and chromatin-accessibility profiles and adapts it to data-limited target datasets. We refer to the resulting target-specific regulatory architectures as multi-layer target dependencies (MLTDs). MLTDs prioritize signals that remain supported across coordinated molecular, communication and perturbation-sensitive evidence, rather than by expression magnitude or any single prediction score. Rather than replacing the observed expression matrix, IMAS adds an interpretable regulatory-support layer for mechanism discovery. Across independent tumour datasets, IMAS preserved matched cross-layer supervision, concentrated predictive support into compact target-aligned structures and improved recovery of RNA and transcription-factor states. In colorectal cancer, MLTDs resolved a SOD2-associated perturbation-sensitive architecture that was distinct from native expression, conventional co-expression and the inherited pan-cancer hierarchy. These dependencies promoted propagation of perturbation-associated information through RNA-TF-regulatory-element bridges and into receiver-TF-aware communication across malignant cell states. A LAMB1-centred analysis further showed that successive regulatory, communication and temporal constraints restored an expected extracellular-matrix programme that was weakly represented in the original matrix. In head and neck squamous cell carcinoma, SOX2-centred MLTDs resolved malignant-state-specific perturbation programmes. In renal cancer, MLTD-guided analysis identified tumour-vascular coupling associated with spatially localized endothelial-to-mesenchymal-transition-like states in Xenium data. Together, IMAS reframes tumour multiomic augmentation as the recovery of compact, target-specific regulatory architectures rather than expression-matrix completion, providing an interpretable framework for prioritizing experimentally tractable mechanisms in heterogeneous tumour systems.

bioinformatics↗

A Wnt-responsive fibrocartilage progenitor system coordinates postnatal mandibular condylar cartilage growth

Postnatal growth of the mandibular condyle requires coordinated expansion of fibrocartilage and production of chondrocytes, yet the cellular populations that organize this process remain incompletely defined. Here we identify a Wnt-responsive fibrocartilage progenitor population that contributes to postnatal mandibular condylar cartilage growth. Using a direct Wnt activity reporter (R26-WntVis), inducible genetic lineage tracing (Axin2CreERT2), and single-cell transcriptomics, we define a Wnt-enriched progenitor-like cluster localized predominantly within the fibrocartilage zone. Lineage tracing demonstrates that Axin2-lineage cells expand laterally within fibrocartilage and generate vertically aligned chondrocytes in the chondrocartilage compartment, indicating bidirectional growth contribution in vivo. Conditional ablation of {beta}-catenin in Axin2-lineage cells results in depletion of the fibrocartilage compartment and premature activation of chondrogenic differentiation programs, whereas constitutive {beta}-catenin activation disrupts compartmental organization without enhancing proliferation. Mechanistically, we identify Foxm1 as a Wnt-associated proliferative mediator enriched in fibrocartilage, and genetic reduction of Foxm1 cooperates with {beta}-catenin deficiency to impair condylar growth. In parallel, {beta}-catenin loss derepresses TGF-{beta}-Smad signaling and enhances chondrogenic differentiation, indicating that canonical Wnt activity coordinates proliferative maintenance while restraining lineage commitment within the same cellular compartment. Together, these findings identify a Wnt-responsive fibrocartilage progenitor system that regulates postnatal mandibular condylar cartilage growth by coupling Foxm1-associated proliferative maintenance with suppression of TGF-{beta}-dependent chondrogenic differentiation during temporomandibular joint development. Graphical abstractWnt-responsive fibrocartilage progenitors coordinate postnatal mandibular condylar cartilage growth through Foxm1-dependent proliferative maintenance and suppression of TGF-{beta}-driven chondrogenic differentiation.

developmental biology↗

TMEM2 maintains hyaluronan turnover and cartilage homeostasis during early osteoarthritis progression

Osteoarthritis (OA) is a degenerative joint disease characterized by progressive disruption of the cartilage extracellular matrix (ECM), yet the molecular mechanisms governing ECM turnover during disease initiation remain incompletely defined. Hyaluronan (HA) is a major structural component of articular cartilage, and its regulated turnover is essential for maintaining tissue integrity. Transmembrane protein 2 (TMEM2) is a cell-surface hyaluronidase capable of degrading high-molecular weight HA under physiological conditions, but its role in joint tissues has remained unclear. Here, we examine the spatiotemporal expression and functional contribution of TMEM2 in articular cartilage using single-cell transcriptomic analysis, histological approaches, and a chondrocyte-specific conditional knockout mouse model. Under physiological conditions, Tmem2 was predominantly expressed in non-calcified articular chondrocytes. Following joint destabilization, Tmem2 expression was transiently increased during early osteoarthritis, coinciding with reduced cartilage HA content, consistent with altered HA turnover. Importantly, genetic ablation of Tmem2 in chondrocytes markedly exacerbated osteoarthritis progression, resulting in accelerated cartilage delamination, increased chondrocyte apoptosis, reduced proliferative activity, and enhanced hypertrophic differentiation. These changes occurred without detectable abnormalities in the synovium, subchondral bone, or osteophyte formation, indicating a cartilage-intrinsic phenotype. Collectively, these findings identify TMEM2 as an important regulator of hyaluronan homeostasis within the cartilage ECM and provide in vivo genetic evidence that TMEM2- dependent HA turnover contributes to the maintenance of articular cartilage integrity during osteoarthritis progression.

molecular biology↗