Flagellar gyration and midpiece rotation during extension of the acrosomal process of Thyone sperm: how and why this occurs.
Open Access
- 1 March 1987
- journal article
- research article
- Published by Rockefeller University Press in The Journal of cell biology
- Vol. 104 (3) , 407-415
- https://doi.org/10.1083/jcb.104.3.407
Abstract
The midpiece of Thyone sperm contains a large mitochondrion and a centriolar pair. Associated with one of the pair, i.e., the basal body of the flagellum, are satellite structures which apparently anchor the flagellar axoneme to the mitochondrion and to the plasma membrane covering the midpiece. Immediately before and as the acrosomal process elongates, the flagellum and the midpiece begin to rotate at 1-2 rotations per second even though the head of the sperm, by being firmly attached on its lateral surfaces to the coverslip, does not rotate at all. This rotation is not observed in the absence of flagellar beating whose frequency is much greater than that of its gyration. To understand how the midpiece rotates relative to the sperm head, it is first necessary to realize that in Thyone the flagellar axoneme projects at an acute angle to the principal axis of the sperm and is bent towards one side of this axis. Thus movement of the flagellum induces the sperm to tumble or yaw in solution. If the head is stuck, the midpiece will rotate because all that connects the sperm head to the midpiece is the plasma membrane, a liquid-like layer. A finger-like projection extends from the proximal centriole into an indentation in the basal end of the nucleus. In contrast to the asymmetry of the flagellum, this indentation is situated exactly on the principal axis of the sperm and, along with the finger-like projection, acts as a biological bearing to maintain the orderly rotation of the midpiece. The biological purpose of flagellar gyration during fertilization is discussed.This publication has 19 references indexed in Scilit:
- Distribution of sterol-specific complexes in a continually shearing region of a plasma membrane and at procaryotic-eucaryotic cell junctions.The Journal of cell biology, 1983
- Changes in internal pH associated with initiation of motility and acrosome reaction of sea urchin spermDevelopmental Biology, 1983
- Polymerization of actin without acrosomal exocytosis in starfish sperm *1Visualization with NBD-phallacidinExperimental Cell Research, 1982
- Acrosomal reaction of Thyone sperm. II. The kinetics and possible mechanism of acrosomal process elongation.The Journal of cell biology, 1982
- Acrosomal reaction of thyone sperm. I. Changes in the sperm head visualized by high resolution video microscopy.The Journal of cell biology, 1982
- Membrane movements and fluidity during rotational motility of a termite flagellate. A freeze-fracture study.The Journal of cell biology, 1979
- An ultrastructural investigation of the spermatozoa of two ophiuroids, Ophiocoma echinata and Ophiocoma wendti: Acrosomal morphology and reactionCell and tissue research, 1975
- An ultrastructural analysis of early fertilization in the sand dollar, Echinarachnius parmaCell and tissue research, 1974
- FLAGELLAR MOVEMENT AND ADENOSINE TRIPHOSPHATASE ACTIVITY IN SEA URCHIN SPERM EXTRACTED WITH TRITON X-100The Journal of cell biology, 1972
- Sperm differentiation in the sea urchins Arbacia punctulata and Strongylocentrotus purpuratusJournal of Ultrastructure Research, 1969