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Phospholipid vesicle binding and aggregation by four novel fish annexins are differently regulated by Ca2+
R Spenneberg1, D Osterloh, V Gerke
1Institute for Medical Biochemistry, ZMBE, University of Münster, Germany.
Abstract:
Four members of the annexin family, herein referred to as max (for medaka annexin) 1-4, have recently been identified through hybridization cloning in the killifish Oryzias latipes (D. Osterloh, J. Wittbrodt and V. Gerke, Characterization and developmentally regulated expression of four annexins in the killifish medaka. DNA and Cell Biol., in press). These annexins which are expressed in a developmentally regulated manner are present as a maternal pool in unfertilized eggs of another fish species, Misgurnus fossilis, and it has been proposed that they play a role in the Ca2+-regulated exocytosis of cortical granules occurring after fertilization. To characterize biochemical properties of the medaka proteins possibly relevant to their function in early development, we analyzed the ability of recombinantly expressed max 1-4 to interact with the principal structures of the egg cortex, phospholipid membranes and actin filaments. We show that all medaka annexins bind to acidic phospholipids in a Ca2+-regulated manner, although exhibiting different Ca2+ sensitivities. All medaka annexins, but max 1, are also capable of inducing, in a Ca2+-dependent manner, phospholipid vesicle aggregation, albeit only max 3 displays this activity at Ca2+ concentrations met in stimulated (i.e. fertilized) eggs. Max 3 is also the only medaka annexin able to interact with F-actin in the presence of Ca2+. These data identify by biochemical criteria max 3 as a close relative of the mammalian annexins I and II, thus supporting previous sequence-based comparisons. Max 3 is therefore the prime annexin candidate for being involved in cortical granule exocytosis, possibly by providing granule granule, granule plasma membrane and/or granule cytoskeleton contacts.
Insights
Medaka annexins (max 1-4) bind to egg cell membranes and actin. Max 3, a key protein, interacts with calcium and actin, suggesting its role in fertilization-related exocytosis.
Area of Science:
- Molecular Biology
- Developmental Biology
- Cell Biology
Background:
- Four medaka annexins (max 1-4) were identified in Oryzias latipes.
- Annexins are implicated in Ca2+-regulated exocytosis of cortical granules post-fertilization.
- These proteins are maternally provided in unfertilized eggs of other fish species.
Purpose of the Study:
- To biochemically characterize medaka annexins (max 1-4).
- To investigate their interaction with egg cortex components like phospholipid membranes and actin filaments.
- To assess their potential role in early fish development and fertilization.
Main Methods:
- Recombinant expression of medaka annexins (max 1-4).
- Analysis of binding to acidic phospholipids and F-actin in a Ca2+-dependent manner.
- Assessment of phospholipid vesicle aggregation activity.
Main Results:
- All medaka annexins bind acidic phospholipids with varying Ca2+ sensitivities.
- Max 1-4 induce phospholipid vesicle aggregation, with max 3 active at fertilization-relevant Ca2+ levels.
- Max 3 uniquely interacts with F-actin in the presence of Ca2+.
Conclusions:
- Biochemical data support max 3 as a close relative of mammalian annexins I and II.
- Max 3 is a strong candidate for involvement in cortical granule exocytosis.
- Max 3 may mediate interactions between granules, plasma membrane, and cytoskeleton during fertilization.