Formation of actin filament bundles in the ring canals of developing Drosophila follicles.
Open Access
- 1 April 1996
- journal article
- Published by Rockefeller University Press in The Journal of cell biology
- Vol. 133 (1) , 61-74
- https://doi.org/10.1083/jcb.133.1.61
Abstract
Growing the intracellular bridges that connect nurse cells with each o ther and to the developing oocyte is vital for egg development. These ring canals increase from 0.5 microns in diameter at stage 2 to 10 microns in diameter at stage 11. Thin sections cut horizontally as you would cut a bagel, show that there is a layer of circumferentially oriented actin filaments attached to the plasma membrane at the periphery of each canal. By decoration with subfragment 1 of myosin we find actin filaments of mixed polarities in the ring such as found in the "contractile ring" formed during cytokinesis. In vertical sections through the canal the actin filaments appear as dense dots. At stage 2 there are 82 actin filaments in the ring, by stage 6 there are 717 and by stage 10 there are 726. Taking into account the diameter, this indicates that there is 170 microns of actin filaments/canal at stage 2 (pi x 0.5 microns x 82), 14,000 microns at stage 9 and approximately 23,000 microns at stage 11 or one inch of actin filament! The density of actin filaments remains unchanged throughout development. What is particularly striking is that by stages 4-5, the ring of actin filaments has achieved its maximum thickness, even though the diameter has not yet increased significantly. Thereafter, the diameter increases. Throughout development, stages 2-11, the canal length also increases. Although the density (number of actin filaments/micron2) through a canal remains constant from stage 5 on, the actin filaments appear as a net of interconnected bundles. Further information on this net of bundles comes from studying mutant animals that lack kelch, a protein located in the ring canal that has homology to the actin binding protein, scruin. In this mutant, the actin filaments form normally but individual bundles that comprise the fibers of the net are not bound tightly together. Some bundles enter into the ring canal lumen but do not completely occlude the lumen. all these observations lay the groundwork for our understanding of how a noncontractile ring increases in thickness, diameter, and length during development.Keywords
This publication has 24 references indexed in Scilit:
- Sequence and domain organization of scruin, an actin-cross-linking protein in the acrosomal process of Limulus sperm.The Journal of cell biology, 1995
- Cytoskeleton of theDrosophila egg chamber: New observations on microfilament distribution during oocyte growthCell Motility, 1995
- The POZ domain: a conserved protein-protein interaction motif.Genes & Development, 1994
- Three-dimensional structure of a single filament in the Limulus acrosomal bundle: scruin binds to homologous helix-loop-beta motifs in actinThe Journal of cell biology, 1994
- chickadee encodes a profilin required for intercellular cytoplasm transport during Drosophila oogenesisCell, 1992
- Crystallographic analysis of acrosomal bundle from Limulus spermJournal of Molecular Biology, 1991
- Three-dimensional reconstruction of an actin bundle.The Journal of cell biology, 1988
- A change in twist of actin provides the force for the extension of the acrosomal process in Limulus sperm: the false-discharge reaction.The Journal of cell biology, 1982
- Actin filaments elongate from their membrane-associated endsThe Journal of cell biology, 1981
- Actin filaments in the acrosomal reaction of Limulus sperm. Motion generated by alterations in the packing of the filaments.The Journal of cell biology, 1975