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The secretory pathway of protists: spatial and functional organization and evolution
1Botanisches Institut, Universität zu Köln, Germany. bbecker@biolan.uni-koeln.de
Microbiological Reviews
|December 1, 1996
Summary
The eukaryotic secretory pathway, conserved across species, shows variations in Golgi apparatus structure among diverse protists. This suggests the Golgi evolved as a crucial sorting compartment early in eukaryotic evolution.
Area of Science:
- Cell Biology
- Evolutionary Biology
- Protistology
Background:
- Eukaryotic cells utilize a complex secretory pathway for macromolecule secretion.
- Research on this pathway has primarily utilized mammalian cells and yeasts.
- The secretory system in protists remains less explored.
Purpose of the Study:
- To review and synthesize current knowledge on the secretory pathway in five diverse protist groups.
- To compare protist secretory systems with those of yeast and mammalian cells.
- To understand the evolutionary trajectory of the secretory pathway, particularly the Golgi apparatus.
Main Methods:
- Literature review and comparative analysis of existing research on protist secretory pathways.
- Examination of the secretory pathway components in *Giardia lamblia*, kinetoplastids, *Dictyostelium discoideum*, alveolates (ciliates, *Plasmodium*), and green algae.
- Comparison with established models from yeast and mammalian cells.
Main Results:
- Most components of the secretory pathway are conserved across eukaryotes, suggesting ancient origins.
- Significant variation exists in the structure and presence of the Golgi stack among different protist lineages.
- The fundamental elements of the secretory pathway likely existed in early eukaryotic organisms.
Conclusions:
- The Golgi apparatus likely evolved as a necessary sorting compartment, facilitating the separation of cellular functions.
- The observed variations in Golgi structure reflect adaptations to the specific needs of diverse protist organisms.
- The secretory pathway provides insights into the early evolution and diversification of eukaryotic cells.
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