New anti-actin drugs in the study of the organization and function of the actin cytoskeleton
- 30 September 1999
- journal article
- topical paper
- Published by Wiley in Microscopy Research and Technique
Abstract
The high degree of structural and molecular complexity of the actin‐based cytoskeleton, combined with its ability to reorganize rapidly and locally in response to stimuli, and its force‐generating properties, have made it difficult to assess how the different actin structures are assembled in cells, and how they regulate cell behavior. An obvious approach to study the relationships between actin organization, dynamics, and functions is the specific perturbation of actin structures using pharmacological means. Until recently there were only a few agents available that interfered with cellular activities by binding to actin and most of our knowledge concerning the involvement of actin in basic cellular processes was based on the extensive use of the cytochalasins. In recent years we have identified an increasing number of actin‐targeted marine natural products, including the latrunculins, jasplakinolides (jaspamides), swinholide A, misakinolide A, halichondramides, and pectenotoxin II, which are discussed in this article. All these marine‐sponge‐derived compounds are unusual macrolides and can be classified into several major families, each with its own distinct chemical structures. We describe the current state of knowledge concerning the actin‐binding properties of these compounds and show that each class of drugs alters the distribution patterns of actin in a unique way, and that even within a chemical class, structurally similar compounds can have different biochemical properties and cellular effects. We also discuss the effects of these new drugs on fenestrae formation in liver endothelial cells as an example of their usefulness as powerful tools to selectively unmask actin‐mediated dynamic processes. Microsc. Res. Tech. 47:18–37, 1999.Keywords
This publication has 99 references indexed in Scilit:
- [2] Use of latrunculin-A, an actin monomer-binding drugPublished by Elsevier ,2004
- The Rho GTPases Have Multiple Effects on the Actin CytoskeletonExperimental Cell Research, 1999
- A novel structure involved in the formation of liver endothelial cell fenestrae revealed by using the actin inhibitor misakinolideProceedings of the National Academy of Sciences, 1998
- Role of Actin in Anchoring Postsynaptic Receptors in Cultured Hippocampal Neurons: Differential Attachment of NMDA versus AMPA ReceptorsJournal of Neuroscience, 1998
- Comparison of fixed and living liver endothelial cells by atomic force microscopyApplied Physics A, 1998
- Myosins: matching functions with motorsCurrent Opinion in Cell Biology, 1998
- High Rates of Actin Filament Turnover in Budding Yeast and Roles for Actin in Establishment and Maintenance of Cell Polarity Revealed Using the Actin Inhibitor Latrunculin-AThe Journal of cell biology, 1997
- Microfilament–Disrupting Agent Latrunculin A Induces and Increased Number of Fenestrae in Rat Liver Sinusoidal Endothelial Cells: Comparison With Cytochalasin BHepatology, 1996
- Clostridial ADP-ribosylating toxins: effects on ATP and GTP-binding proteinsMolecular and Cellular Biochemistry, 1994
- CytoskeletonPublished by Springer Nature ,1988