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Sequential disassembly of myofibrils induced by myristate acetate in cultured myotubes
Z X Lin1, J R Eshelman, S Forry-Schaudies
1Department of Anatomy, School of Medicine, University of Pennsylvania, Philadelphia 19104-6058.
Abstract:
The phorbol ester TPA induces the sequential disassembly of myofibrils. First the alpha-actin thin filaments are disrupted and then, hours later, the myosin heavy chain (MHC) thick filaments. TPA does not induce the disassembly of the beta- and gamma-actin thin filaments of stress fibers in presumptive myoblasts or fibroblasts, nor does it block the reemergence of stress fibers in 72-h myosacs that have been depleted of all myofibrillar molecules. There are differences in where, when, and how myofibrillar alpha-actin and MHC are degraded and eliminated from TPA-myosacs. Though the anisodiametric myotubes have begun to retract into isodiametric myosacs after 5 h in TPA, staining with anti-MHC reveals normal tandem A bands. In contrast, staining with mAb to muscle actin fails to reveal tandem I bands. Instead, both mAb to muscle actin and rhophalloidin brilliantly stain numerous disk-like bodies approximately 3.0 micron in diameter. These muscle actin bodies do not fuse with one another, nor do they costain with anti-MHC. All muscle actin bodies and/or molecules disappear in 36-h myosacs. The collapse of A bands is first initiated in 10-h myosacs. Their loss correlates with the appearance of immense, amorphous MHC patches. MHC patches range from a few micrometers to over 60 micron in size. They do not costain with antimuscle actin or rho-phalloidin. While diminishing in number and fluorescence intensity, MHC aggregates are present in 30% of the 72-h myosacs. Myosacs removed from TPA rapidly elongate, and after 48 h display normal newly assembled myofibrils. TPA reversibly blocks incorporation of [35S]methionine into myofibrillar alpha-actin, MHC, myosin light chains 1 and 2, the tropomyosins, and troponin C. It does not block the synthesis of beta- or gamma-actins, the nonmyofibrillar MHC or light chains, tubulin, vimentin, desmin, or most household molecules.
Insights
The phorbol ester TPA sequentially disassembles myofibrils, first disrupting alpha-actin filaments and then myosin heavy chain (MHC) filaments. This process is reversible, with myofibrils reforming after TPA removal.
Area of Science:
- Cell Biology
- Muscle Biology
- Biochemistry
Background:
- Myofibrils are essential for muscle contraction and are composed of actin and myosin filaments.
- The phorbol ester TPA is known to affect cellular structures, but its precise impact on myofibril disassembly is not fully understood.
Purpose of the Study:
- To investigate the sequential effects of TPA on myofibril components, specifically alpha-actin and myosin heavy chain (MHC).
- To determine the reversibility of TPA-induced myofibril disassembly and its impact on cellular actin types.
Main Methods:
- Treatment of myotubes and myosacs with TPA.
- Immunofluorescence staining using antibodies against muscle actin and MHC.
- Analysis of actin and MHC distribution and aggregation.
- Assessment of protein synthesis using [35S]methionine incorporation.
Main Results:
- TPA induces sequential disassembly of myofibrils, with alpha-actin filaments disrupted before MHC filaments.
- Distinct actin bodies form and disappear, while MHC forms large amorphous patches.
- TPA reversibly blocks the synthesis of myofibrillar proteins, but not non-myofibrillar actins or other cytoskeletal proteins.
Conclusions:
- TPA triggers a specific and sequential degradation pathway for myofibrillar alpha-actin and MHC.
- The observed actin bodies and MHC patches represent intermediate structures during myofibril disassembly.
- TPA's effect on myofibril disassembly is reversible, highlighting the dynamic nature of muscle structure.