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Mendoza, C. P.

Publications and source records attributed to Mendoza, C. P..

2 recordsLinked to original sources

Cytokinesis genes regulate ring canal patterning and follicle cell differentiation in Drosophila

Stable intercellular bridges that form through incomplete cytokinesis are present in a wide variety of cell types but their function in somatic cell differentiation is not well understood. Using super-resolution confocal microscopy, we identified a stepwise process of ring canal development in the follicle cells of the Drosophila ovary. Using a custom-trained deep learning model to aid in 3D image segmentation and follicle cell quantification, we found that ring canals are more heterogeneous at the early prefollicle stages compared to the more differentiated later stages. In addition, we found that depletion of the septin, peanut, caused cytokinetic defects but did not disrupt ring canal formation, whereas depletion of the ESCRT III gene, shrub, increased ring canal number in prefollicle cells and caused proliferation and differentiation phenotypes. Our findings identify cytokinesis and ring canal formation as a point of regulation in the patterning of proliferation and differentiation in the Drosophila follicle stem cell lineage.

cell biology↗

ACD15, ACD21, and SLN regulate accumulation and mobility of MBD6 to silence genes and transposable elements.

DNA methylation mediates silencing of transposable elements and genes in part via recruitment of the Arabidopsis MBD5/6 complex, which contains the methyl-CpG-binding domain (MBD) proteins MBD5 and MBD6, and the J-domain containing protein SILENZIO (SLN). Here we characterize two additional complex members: -crystalline domain containing proteins ACD15 and ACD21. We show that they are necessary for gene silencing, bridge SLN to the complex, and promote higher order multimerization of MBD5/6 complexes within heterochromatin. These complexes are also highly dynamic, with the mobility of complex components regulated by the activity of SLN. Using a dCas9 system, we demonstrate that tethering the ACDs to an ectopic site outside of heterochromatin can drive massive accumulation of MBD5/6 complexes into large nuclear bodies. These results demonstrate that ACD15 and ACD21 are critical components of gene silencing complexes that act to drive the formation of higher order, dynamic assemblies. One-Sentence SummaryArabidopsis ACD21 and ACD15 drive accumulation of MBD5/6 complex silencing assemblies at methyl-CG sites and recruit SLN to maintain protein mobility in these assemblages.

cell biology↗