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Montague, R. A.

Publications and source records attributed to Montague, R. A..

2 recordsLinked to original sources

Loofah, a newly characterized adhesion protein, suppresses cell death in long-lived Drosophila hindgut enterocytes

Tissue maintenance in the presence of cell death-promoting insults requires a host of molecular mechanisms. Many studies focus on cell renewal through regeneration, while fewer studies explore mechanisms that promote cell longevity despite cell death stimuli. Here, we reveal that the adult Drosophila hindgut ileum is an excellent model to study tissue maintenance by long-lived cells. Hindgut ileal enterocytes resist the damaging detergent SDS and upstream caspase signaling by head-involution-defective (hid). This hid-induced death insensitivity arises early in adulthood and associates with numerous transcriptional changes. We interrogated 82 of these transcriptional changes in a candidate screen for enhancers of hid-induced death in the ileum. Top among our screen hits is an immunoglobulin family cell adhesion gene, CG15312. CG15312 maintains the adhesion protein FasIII on cell membranes. In hid-expressing ileal cells, CG15312 loss causes cell death and pyknotic nuclear clustering. We name this conserved gene low on-membrane fas and enhancer of hid (loofah). Our findings reveal a new mechanism linking cell adhesion and cell death resistance in a long-lived cell type. Our work establishes a new model to study tissue preservation.

cell biology↗

A novel intensity-specific screen identifies RpS21 as a modifier of low-intensity MAPK signaling

Signal transduction pathways are intricately fine-tuned to accomplish diverse biological processes. An example is the conserved Ras/mitogen-activated-protein-kinase (MAPK) pathway, which exhibits context-dependent signaling output dynamics and regulation. Here, by altering codon usage as a novel platform to control signaling output, we screened the Drosophila genome for modifiers specific to either weak or strong Ras-driven eye phenotypes. We mapped the underlying gene from one modifier to the ribosomal gene RpS21. RpS21 preferentially influences weak Ras/MAPK signaling outputs, and negatively regulates Ras/MAPK in multiple cell/tissue and signaling settings. In turn, MAPK signaling may regulate its own negative feedback by promoting RpS21 expression. These data show that codon usage manipulation can identify output-specific signaling regulators, and identify RpS21 as an in vivo Ras/MAPK phenotypic regulator.

genetics↗