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Tomer, D.

Publications and source records attributed to Tomer, D..

2 recordsLinked to original sources

Mitochondrial morphology dynamics and ROS regulate apical polarity and differentiation in Drosophila follicle cells

Mitochondrial morphology dynamics regulate signaling pathways during epithelial cell formation and differentiation. The mitochondrial fission protein Drp1 affects the appropriate activation of EGFR and Notch signaling-driven differentiation of posterior follicle cells in Drosophila oogenesis. The mechanisms by which Drp1 regulates epithelial polarity during differentiation are not known. In this study, we show that Drp1 depleted follicle cells are constricted in early stages and present in multiple layers at later stages with decreased levels of apical polarity protein aPKC. This defect is suppressed by additional depletion of mitochondrial fusion protein Opa1. Opa1 depletion leads to mitochondrial fragmentation and increased reactive oxygen species (ROS) in follicle cells. We find that increasing ROS by depleting the ROS scavengers, mitochondrial SOD2, and catalase also leads to mitochondrial fragmentation. Further, the loss of Opa1, SOD2, and catalase partially restores the defects in epithelial polarity and aPKC along with EGFR and Notch signaling in Drp1 depleted follicle cells. Our results show a crucial interaction between mitochondrial morphology, ROS generation, and epithelial cell polarity formation during the differentiation of follicle epithelial cells in Drosophila oogenesis. Summary statementMitochondrial fission protein Drp1 regulates epithelial follicle cell differentiation in Drosophila oogenesis. Increasing ROS and mitochondrial fragmentation suppresses the defects in epithelial polarity, and differentiation in Drp1 depleted follicle cells.

developmental biology↗

New mechanism of fibronectin fibril assembly revealed by live imaging and super-resolution microscopy.

Fn1 fibrils have long been viewed as continuous fibers composed of extended, periodically aligned Fn1 molecules. However, our live imaging and single-molecule localization microscopy (SMLM) are inconsistent with this traditional view and show that Fn1 fibrils are composed of roughly spherical nanodomains containing 6-11 Fn1 dimers. As they move toward the cell center, Fn1 nanodomains become organized into linear arrays, wherein nanodomains are spaced at the average periodicity of 105{+/-}17 nm. Periodical Fn1 nanodomain arrays are bona fide fibrils: they are resistant to deoxycholate treatment and retain nanodomain periodicity in the absence of cells. The nanodomain periodicity in fibrils remained constant when probed with antibodies recognizing distinct Fn1 epitopes or combinations of antibodies recognizing epitopes spanning the length of Fn1. FUD, a bacterial peptide that binds Fn1 N-terminus and disrupts Fn1 fibrillogenesis does not disrupt the formation of Fn1 nanodomains, instead, it blocks the organization of Fn1 nanodomains into periodical arrays. These studies establish a new paradigm of Fn1 fibrillogenesis.

cell biology↗