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Biology subjects

Papadopoulos, P.

Publications and source records attributed to Papadopoulos, P..

3 recordsLinked to original sources

Genetic coupling of hydathode formation with leaf morphogenesis maintains water homeostasis

Hydathodes are specialized leaf structures present across vascular plants that allow guttation by connecting the xylem to the external environment through epithem tissue and permanently open water pores. However, the genetic mechanisms controlling their formation and physiological roles remain poorly understood. Here, we identify a genetic regulatory network that controls hydathode formation and links this process to leaf morphogenesis. This network converges on auxin signaling to coordinate the formation of the three hydathode cell types. We further show that epithem development requires sustained cell proliferation with limited endoreduplication. Analysis of hydathode mutants demonstrates that hydathode size and number are required to prevent reversible leaf flooding. Together, these findings establish a genetic framework for hydathode morphogenesis and uncover a central role for hydathodes in maintaining leaf water homeostasis under fluctuating environmental conditions.

plant biology↗

Developmental rewiring of the NGAL/CUC/KLU network associated with pleiotropic roles of NGAL genes

Gene Regulatory Networks (GRNs) play prominent roles in regulating developmental processes, and their modulation across species is a major source for evolutionary innovation. However, it remains poorly understood how GRNs are rewired between different organs within a single species. This question is particularly relevant for pleiotropic genes, which may exhibit organ-specific GRN modulations potentially reflecting their diverse functions. To address this, we investigated the NGATHA-like (NGAL) genes, as a model for pleiotropic genes that regulate growth or patterning in multiple Arabidopsis organs via two distinct pathways involving the CUP-SHAPED COTYLEDON (CUC) and KLUH (KLU) genes. By combining genetic analysis with gene expression characterization, we uncovered significant organ-specific rewiring of the NGAL/CUC/KLU regulatory module. Our findings highlight that changes in gene expression patterns, potentially arising from developmental constraints, play a pivotal role in the organ-specific modulation of GRNs. Furthermore, GRNs at the molecular and functional levels do not always align perfectly, potentially due to the influence of additional regulatory mechanisms. Altogether, our findings reveal significant modulation of the GRNs associated with pleiotropic genes. We propose that this flexibility in GRNs facilitates gene pleiotropy.

plant biology↗

Tissue-resident regulatory T cells exert dualistic anti-tumour and pro-repair function in the exocrine pancreas

Regulatory T cells are fundamentally important for maintaining immune homeostasis, and their potent immune-suppressive roles make them attractive immunotherapeutic targets in cancer. Recent work suggests potential functions of tissue-resident Tregs (trTregs) in tissue-repair and epithelial cell homeostasis. Here, we describe a rare population of trTreg in the exocrine pancreas. We show that these cells share common features of trTregs, including expression of the IL-33 receptor ST2 and production of the epithelial growth factor Amphiregulin, and display an oligoclonal T cell receptor repertoire. Using a mouse model of acute pancreatitis, we show that pancreatic Tregs rapidly expand upon release of IL-33 by fibroblasts. Moreover, depletion of Tregs after initiation of pancreatic injury impairs the regeneration of the exocrine parenchyma. This effect is due, in part, through a direct effect of Tregs on acinar cell proliferation. Finally, we show that transient Treg depletion in established orthotopic pancreatic tumours leads to tumour rejection yet provokes long-lasting damages to surrounding exocrine parenchyma. In all, our results demonstrate the tissue-repair capacity of pancreatic Tregs, and highlight a dualistic role of these cells in the pancreatic tumour ecosystem, with their harmful immune-suppressive function in the tumour coupled to a beneficial tissue-repair function in the surrounding tissue.

immunology↗