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Biology subjects

ZHOU, Y.

Publications and source records attributed to ZHOU, Y..

3 recordsLinked to original sources

A Multi-modal LLM-Knowledge Fusion Framework for Predicting Single-cell Genetic Perturbation Effects

Understanding cellular responses to genetic perturbations is fundamental for drug discovery, yet experimental approaches face significant limitations in coverage and cost that prevent comprehensive mapping of cellular behavior. This has motivated the development of virtual cells--computational models that learn the relationship between cell state and function to predict the consequences of perturbations across diverse contexts. However, current computational methods suffer from limited accuracy in complex genetic interactions, poor biological interpretability, and inadequate generalization to unseen genes, severely constraining virtual cell capabilities. We present scPert, a multi-modal framework based on Transformer architecture that integrates large language model embeddings with structured biological knowledge to predict single-cell transcriptomic responses to genetic perturbations. Through hierarchical fusion of knowledge graph representations, contextual embeddings from foundation models, and gene-specific encodings, scPert achieves significant performance improvements in both single-gene and combinatorial perturbations over existing methods. In cancer-relevant applications, scPert demonstrates the capability to reveal p53 pathway dynamics and immune checkpoint regulatory mechanisms. Systematic evaluation on 42 cancer dependency genes demonstrates scPerts ability to identify critical potential therapeutic targets. Our framework establishes a powerful computational foundation for virtual cell construction and accelerates drug target discovery.

bioinformatics↗

MXRA7 Alleviates Epididymitis from Exercise-Induced Fatigue by Inhibiting Pyroptosis

AimsTo explore exercise-induced fatigue (EIF)s effects on the male reproductive system and MXRA7s regulatory role herein. MethodsWe recruited EIF volunteers for semen/serum tests, established a mouse EIF model via weight-loaded swimming to assess epididymal segmental injury, and constructed pyroptosis models of PC-1/DC-2 cells. Public database transcriptomic analysis identified MXRA7 expression and enriched pathways in epididymitis; MXRA7s function was verified via its knockdown/overexpression in DC-2 cells. PKC-MXRA7 association was explored by phosphorylation assays and CO-IP, and sperm incubation experiments evaluated MXRA7s effect on sperm function. ResultsEIF impaired human sperm motility, reduced mouse sperm quality and induced epididymitis with segment-specific pyroptosis. MXRA7 expression differed in PC-1/DC-2 cells and correlated with pyroptosis; it was phosphorylated by PKC, inhibited the NF-{kappa}B pathway to alleviate inflammation, and mitigated pyroptosis-induced sperm motility damage. ConclusionEIF induces epididymal epithelial pyroptosis and epididymitis, and MXRA7 exerts a protective effect mainly in caudal epididymal cells by alleviating pyroptosis, thus reducing sperm quality damage.

molecular biology↗

RIPK3-dependent sequential recruitment of MLKL and RIPK1 drives PANoptotic cell death and chemokine production

PANoptosis, an immunogenic programmed cell death (PCD) modality, integrates features of pyroptosis, apoptosis, and necroptosis through assembly of the PANoptosome complex. Despite its conceptualization as a distinct PCD form, PANoptosis remains controversial due to insufficient characterization of its morphological hallmarks and molecular regulation. This study aimed to investigate the molecular mechanisms underlying the assembly of PANoptosomes in the PANoptotic pathway. We identified a novel receptor-interacting protein kinase 3 (RIPK3)-initiated PANoptotic pathway that functions without pattern recognition receptors (PRRs) and the ASC (apoptosis-associated speck-like protein containing a CARD) inflammasome. Using multimodal imaging and biochemical approaches, we identify unique morphological signatures distinguishing PANoptotic cells from canonical pyroptotic, apoptotic, or necroptotic counterparts. Mechanistically, RIPK3 forms round homopolymeric scaffolds--distinct from necroptotic amyloid-like fibers--to sequentially recruit MLKL and RIPK1, forming a dynamic RIPK3-MLKL-RIPK1-FADD-caspase-8 complex (RIPK3-PANoptosome). This platform coordinates concurrent activation of pyroptotic, apoptotic, and necroptotic effectors. Cross-regulatory interactions between these pathways establish a homeostatic system where perturbations bias death modality into a certain cell death type, altering the death process and outcomes. Functionally, PANoptotic cells orchestrate chemokine secretion through parallel kinase-dependent (RIPK3-MLKL) and kinase-independent (RIPK1-IKK-NF-{kappa}B) mechanisms, driving macrophage recruitment. Our findings resolve the molecular logic of PANoptosome assembly, redefine PANoptosis as a tunable PCD paradigm, and establish its role in immunomodulation, providing a framework for targeting inflammatory cell death in disease.

cell biology↗