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Ayesha, A.

Publications and source records attributed to Ayesha, A..

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Common Gene Networks Orchestrate Organelle Architecture and Inter-Organelle Metabolic Flows for Mucin Production in High Endothelial and Goblet Cells

High endothelial cells (HECs) are specialized vascular gatekeepers that control lymphocyte entry into lymph nodes, a process essential for immune surveillance and adaptive responses. However, how HECs coordinate their high biosynthetic demands with the secretory apparatus to support immune function remains unclear. Using multi-omic approaches, we identify IRE1-XBP1-centered transcriptional networks that, together with CREB3L2-associated gene programs, coordinate inter-organelle metabolic and secretory pathways required for glycosylation and assembly of peripheral node addressin (PNAd), a sulfated sialomucin critical for lymphocyte homing. Genetic or pharmacological perturbation of these pathways disrupts HEC morphology and lymphocyte recruitment during homeostasis and impairs HEC induction during inflammation. Parallel transcriptional programs operate in mucin-producing intestinal goblet cells, suggesting common regulatory pathways linking metabolism and sulfated mucin specialization with the associated expansion of secretory organelles across immune and barrier tissues. Thus, our findings identify transcriptional programs that coordinately scale metabolic pathways and secretory organelles to support the biosynthetic infrastructure underlying the morphology and immune trafficking functions of HEVs. Key pointsXBP1-centered transcriptional networks coordinate metabolic and secretory programs for PNAd biosynthesis. IRE1 or S1P inhibition flattens HEVs, prevents ectopic HEV formation and, reduces lymphocyte recruitment Endothelial XBP1 deletion disrupts HEV morphology and lymphocyte trafficking. Goblet cells share secretory transcriptional programs and regulatory logic with HEV.

immunology↗