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Brain dynein crossbridges microtubules into bundles
1MRC Laboratory of Molecular Biology, Cambridge, UK.
Abstract:
Cytoplasmic dynein was purified from pig brain, using a modified version of published procedures, in order to study its interaction with microtubules. Since the preparation produces ATP-dependent sliding of taxol-stabilized purified microtubules over glass and runs on SDS-containing gels as a major band exceeding 300,000 Mr plus a medium chain band at about 75,000 Mr, it is assumed to be identical to the mammalian brain dynein (MAP 1C) purified by Vallee and colleagues. When viewed by electron microscopy in negative stain, individual particles show two distinct configurations. Some are clearly similar to the two-headed bouquet structure already shown for MAP 1C. A larger number of molecules in the present preparation appear to have two heads fused together, forming a dimeric globular particle with two separate tails. They are referred to as phiparticles, because of their resemblance to the greek letter phi. A model for the structural relationship between the two molecular forms is presented. The stems of two associated dynein subunits may separate beyond the base, to form a bouquet, or they may remain fused to form the larger tail of a phi-particle. The smaller tail probably represents a combined pair of features equivalent to the 'stalks' shown to emanate from axonemal dynein heads by Goodenough and colleagues. Both tails of a phi-particle can bind to microtubules, even in the presence of ATP, and cause microtubule bundling. These results suggest a complete structural homology between axonemal and cytoplasmic dynein.
Insights
Researchers purified cytoplasmic dynein from pig brains to study its microtubule interactions. This motor protein exhibits two distinct structures, suggesting a structural homology with axonemal dynein.
Area of Science:
- Cell Biology
- Molecular Motors
- Cytoskeletal Dynamics
Background:
- Cytoplasmic dynein is a crucial motor protein involved in intracellular transport.
- Understanding dynein's structure is key to elucidating its function in cellular processes.
- Previous studies have characterized mammalian brain dynein (MAP 1C).
Purpose of the Study:
- To purify and characterize cytoplasmic dynein from pig brain.
- To investigate the structural forms and microtubule-binding properties of cytoplasmic dynein.
- To explore the structural relationship between cytoplasmic and axonemal dynein.
Main Methods:
- Modified published procedures for cytoplasmic dynein purification from pig brain.
- Analysis of protein complexes using SDS-PAGE.
- Electron microscopy (negative stain) to visualize molecular structures.
- Functional assays involving microtubule sliding and bundling.
Main Results:
- Purified cytoplasmic dynein exhibited ATP-dependent microtubule sliding and bundling.
- Electron microscopy revealed two distinct dynein particle structures: a "bouquet" form and a "phi-particle" form.
- The "phi-particle" form features fused heads and two separate tails capable of microtubule binding.
- A structural model was proposed explaining the relationship between the two observed dynein forms.
Conclusions:
- Cytoplasmic dynein exists in at least two distinct structural configurations.
- The observed structural plasticity suggests a mechanism for dynein's diverse cellular functions.
- Results indicate a complete structural homology between cytoplasmic dynein and axonemal dynein.