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Biology subjects

Kreider, G.

Publications and source records attributed to Kreider, G..

2 recordsLinked to original sources

SGEF coordinates epithelial morphogenesis by regulating junction stability, collective migration, and extracellular matrix remodeling

Polarized epithelia are essential for organ function, and disruption of epithelial polarity is a hallmark of many diseases, including cancer. We previously showed that the RhoG-specific guanine nucleotide exchange factor SGEF interacts with the Scribble polarity complex to regulate epithelial junction assembly in 2D monolayers. However, its role in epithelial morphogenesis and lumen formation in 3D remains unknown. Here, we combined quantitative morphometric analysis with long-term live-cell imaging to investigate the role of SGEF during MDCK cyst development. SGEF KD disrupted normal lumenogenesis, producing enlarged cysts with multiple collapsed lumens accompanied by reduced E-cadherin, {beta}-catenin, and ZO-1 expression. Loss of SGEF also altered the distribution of the actomyosin network. Re-expression of WT SGEF restored the normal phenotype, whereas restoration of E-cadherin and ZO-1 partially rescued lumen architecture, identifying the loss of junction integrity as a key driver of the morphogenetic defects. Unexpectedly, live-cell imaging revealed increased motility and frequent cyst fusion in SGEF-KD cysts. Restoring E-cadherin levels abolished cyst migration, while inhibition of matrix metalloproteinases markedly restored normal cyst volume and lumen architecture, identifying extracellular matrix remodeling as an additional contributor to the SGEF-deficient phenotype. Together, these findings identify SGEF as a key regulator of epithelial morphogenesis, coordinating junction integrity, actomyosin organization, lumen formation, and collective migration.

cell biology↗

A membrane-permeable small molecule biosensor accesses intractable cells and animals without genetic manipulation

Fluorescent biosensors have proven valuable for revealing the spatio-temporal dynamics of protein conformation in live cells and animals. The great majority of biosensors are genetically encoded, but genetic encoding is difficult or impossible to apply in many cases, including cells or animals with poorly understood genomes, no DNA, or sensitive to manipulation. Using biosensors without genetic manipulation could greatly simplify studies in animals, expand the range of accessible organisms, and ultimately enable application in humans. Here we explore using a membrane-permeable small molecule as a fluorescent biosensor. The drug trifluoperazine, which binds only to the active conformation of calmodulin, was covalently linked to an environment-sensing merocyanine dye to create CaMero, a biosensor of calmodulin activation. Simple incubation of CaMero in the extracellular medium, or injection in the tail vein of mice, led to sensitive real time reporting of calmodulin activity. The dye underwent a 12-fold change in fluorescence intensity upon binding to activated calmodulin, revealing waves of activation in peristaltic intestine, localization and kinetics of calmodulin activation during serum stimulation in fibroblasts, and localized activation in the single-celled marine protist foraminifera.

cell biology↗