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Biomedical subjects

E Bandman

Publications and source records attributed to E Bandman.

At least 55 records · Page 3Linked to original sources

Unusual fast myosin isozyme pattern in the lateral gastrocnemius of the chicken.

The myosin isozyme composition of the lateral gastrocnemius muscle of the chicken leg was investigated during various stages of development utilizing non-denaturing pyrophosphate gel electrophoresis, two-dimensional gel electrophoresis and peptide mapping techniques. An unusual isoform pattern for fast myosin in the lateral gastrocnemius muscle of the adult chicken leg was demonstrated which consisted of a predominance of myosin homodimers and lesser amounts of myosin heterodimer. In addition, a different myosin heavy chain isoform was present in the adult chicken lateral gastrocnemius muscle when compared to other adult fast-twitch muscles. While the adult lateral gastrocnemius muscle contained a different myosin heavy chain isoform from other adult fast-twitch muscles, the embryonic lateral gastrocnemius muscle contained a myosin heavy chain identical to that of the embryonic pectoralis major.

Aging↗

Electrophoretic comparison of myosins from masticatory muscles and selected limb muscles in the dog.

Myosins from canine limb muscles (triceps brachii [medial and long heads], anconeus, and extensor carpi radialis) were compared biochemically with myosins from canine masticatory muscles (temporalis and masseter). Compared with the limb muscles, the temporalis and masseter muscles had: a unique myosin isoform pattern as determined by nondenaturing pyrophosphate gel electrophoresis; unique light chains as determined by 1-dimensional sodium dodecyl sulfate polyacrylamide gel electrophoresis, 2-dimensional gel electrophoresis, and peptide mapping; and a unique heavy chain as determined by peptide mapping.

Animals↗

Myosin components of the latissimus dorsi and the pectoralis major muscles in the dystrophic chicken.

The myosin composition of the anterior latissimus dorsi, the posterior latissimus dorsi, and the pectoralis major muscles was examined in the inbred White Leghorn dystrophic chicken and its isogenic normal line at different ages during development and maturation. Using the biochemical methods of native gel electrophoresis, one- and two-dimensional sodium dodecyl sulfate polyacrylamide gel electrophoresis (SDS PAGE), and peptide mapping, it was found that myosin isozyme changes occurred normally in the anterior latissimus dorsi muscle. However, in the posterior latissimus dorsi muscle, slow myosin components which were not present in the adult normal muscle were present in the adult dystrophic muscle. In addition, the pectoralis major muscle of the dystrophic chicken failed to undergo the neonatal to adult fast myosin isozyme transition. Our data also showed that muscle cell cultures derived from the pectoralis major muscle of dystrophic chickens expressed identical myosin components to cultures derived from normal embryos. However, since these cultures only produced embryonic myosins even after 1 month in culture, it implied that cells in tissue culture were phenotypically normal because present cell culture conditions were insufficient to induce the fetal to adult isozyme changes.

Age Factors↗

Regional differences in the expression of myosin light chains and tropomyosin subunits during development of chicken breast muscle.

Types of myosin light chains and tropomyosins present in various regions and at different developmental stages of embryonic and posthatched chicken breast muscle (pectoralis major) have been characterized by two-dimensional gel electrophoresis. In the embryonic muscle all areas appear to accumulate both slow and fast forms of myosin light chains in addition to alpha and beta forms of tropomyosin. During development regional differences in myosin and tropomyosin expression become apparent. Slow myosin subunits become gradually restricted to areas of the anterior region of the muscle and finally become localized to a small red strip found on its anterior deep surface. This red region is characterized by the presence of slow and fast myosin light chains, alpha-fast, alpha-slow, and beta-tropomyosin. In all other areas of the muscle examined only fast myosin light chains, beta-tropomyosin and the alpha-fast form of tropomyosin, are found. In addition, beta-tropomyosin also gradually becomes lost in the posterior regions of the developing breast muscle. In the adult, the red strip area represents less than 1% of the total pectoralis major mass and of the myosin extracted from this area approximately 15% was present as an isozyme that comigrated on nondenaturing gels with myosin from a slow muscle (anterior latissimus dorsi). The red region accumulates therefore fast as well as slow muscle myosin. Thus while the adult chicken pectoralis major is over 99% fast white muscle, the embryonic muscle displays a significant and changing capacity to accumulate both fast and slow muscle peptides.

Animals↗

Myosin heavy chains from two different adult fast-twitch muscles have different peptide maps but identical mRNAs.

Myosin heavy chains prepared from the pectoralis major and from the posterior latissimus dorsi of the same adult chicken exhibit different peptide maps when cleaved with Staphylococcus aureus V8 protease. These differences were observed at five different enzyme concentrations and in chickens of various strains. The cleavage pattern of pectoralis major myosin heavy chain from different adult chickens was always identical, as was that of posterior latissimus dorsi myosin heavy chain, demonstrating the reproducibility of the technique. However, when RNAs extracted from the pectoralis major and from the posterior latissimus dorsi were translated in a cell-free reticulocyte lysate, the myosin heavy chain encoded by pectoralis major RNA and the myosin heavy chain encoded by posterior latissimus dorsi RNA exhibited identical peptide maps. These results suggest that the different peptide maps of myosin heavy chains from the pectoralis major and posterior latissimus dorsi may arise from posttranslational modifications.

Animals↗

Increased K+ inhibits spontaneous contractions reduces myosin accumulation in cultured chick myotubes.

Increasing the K+ from 5.4 mM to 12 mM in the culture medium of developing chick myotubes causes an immediate cessation of spontaneous contractions and leads to an inhibition of myosin accumulation. The synthesis of myosin continues at the same rate in 12 mM K+ as in 5.4 mM K+ as measured by [3H]leucine incorporation into myosin corrected for differences in pool specific activity. Total protein synthesis and total protein accumulation are unaffected by growth in 12 mM K+. In addition, growth in 12 mM K+ did not alter the type of myosin heavy-chain isoform expression nor did it alter the pattern of myosin light-chain synthesis. However, the rate of myosin turnover increased threefold in cultures grown in 12 mM K+ compared to cultures grown in 5.4 mM K+, while total protein turnover was only marginally increased. We conclude that suppressed electrical or contractile activity of myotubes leads to an increased rate of myofibrillar protein turnover and that spontaneous mechanical and or electrical activity is required for continued myotube maturation in culture.

Animals↗

The two myosin isoenzymes of chicken anterior latissimus dorsi muscle contain different myosin heavy chains encoded by separate mRNAs.

The two myosin isozymes (SM1 and SM2) of the anterior latissimus dorsi muscle of the chicken change in relative concentration during development. As SM1 decreases from 13 days of embryonic growth through 1 year of adult maturation, SM2 increases. In the adult muscle SM2 accounts for over 95% of the total myosin. The myosin heavy chains of the two isozymes are distinctly different and may be separated from each other by 5% SDS polyacrylamide gel electrophoresis. The faster migrating myosin heavy chain is identified as originating from SM1 and the slower migrating myosin heavy chain from SM2 myosin isozymes. The myosin heavy chains change in relative concentration during development exactly parallel with changes in SM1 and SM2 isozyme levels. Peptide map analysis also reveals that SM1 myosin heavy chains and SM2 myosin heavy chains are distinctly different. When RNA from the ALD muscle is added to reticulocyte lysate protein synthesizing systems the translation products are shown to include both SM1 and SM2 myosin heavy chains. These comigrate exactly on 5% SDS polyacrylamide gels with authentic counterparts from ALD muscle. Finally, when peptide maps of SM1 and SM2 myosin heavy chains synthesized in the reticulocyte lysate are compared they are again found to be distinctly different and each is identical to a peptide map of respective authentic SM1 and SM2 myosin heavy chains. It is concluded that the myosin heavy chains of SM1 and SM2 myosin isozymes of ALD muscle have different primary structures and that they are encoded by two distinctly different mRNAs.

Age Factors↗

Regulation of myosin accumulation by muscle activity in cell culture.

Tetrodotoxin (TTX), at concentrations that do not interfere with normal myogenesis or with myosin synthesis, causes of cultured muscle fibres to accumulate myosin heavy chain peptides. This effect is now shown to be reversible. On removal of TTX, muscle fibres begin to reaccumulate myosin heavy chains and it appears that the myosin heavy chains display a 230% increase in stability when cells are shifted from TTX to a normal medium without TTX. Total protein stability or turnover is not affected by TTX. The ability of TTX to induce failure of accumulation of myosin heavy-chain in cultured muscle fibres does not extend to cultured chick fibroblasts. TTX also does not perturb normal uptake of [3H] leucine during a 1 h pulse and the leucine-specific activity within TTX-treated cells is essentially equivalent to that within normal cells. Finally, limited proteolysis of myosin heavy chain isolated from TTX-treated and normal muscle fibres and display of cleavage products on SDS-polyacrylamide gels does not reveal any significant difference between the two myosins. We conclude that failure of TTX muscle to accumulate myosin heavy chain is not related to impaired synthesis, to changes in myosin heavy-chain primary structure, or to overall changes in muscle fibre proteolytic activity. We speculate that the increase in degradation and resulting failure to accumulate myosin heavy chain in TTX cells is related to an inability of TTX-related muscle fibres to assemble newly synthesized fibrillar proteins into structures such as filaments or fibrils. Failure of assembly would lead to increased exposure to base-line levels of muscle proteolysis and to the observed lack of accumulation of myosin heavy chain.

Animals↗

Polyadenylate-protein complexes in resting and growing 3T3 cells.

The properties of the ribonuclease resistant cytoplasmic ribonucleoprotein particles were studied in contact-inhibited and serum induced proliferating 3T3 cells. The RNP particles were fractionated by oligo (dT)-cellulose chromatography and banded in CsSO4 gradients. The main RNP fraction, eluted with 25% formamide, contained the major ribonuclease resistant RNA sequences in both resting and growing cells. The protein component of this fraction had a molecular weight of about 72,000 in contact-inhibited cells and 81,000 in serum induced cells.

Animals↗

Diazepam inhibits myoblast fusion and expression of muscle specific protein synthesis.

The presence of diazepam in culutres of chicken embryo myoblasts arrests normal muscle cell differentiation. High concentrations of the drug reversibly prevent myoblasts from fusing to form multinucleated myotubes. Lower concentrations of diazepam allow cell fusion to occur, but inhibit the synthesis and accumulation of myosin heavy chain, implying that cell fusion does not obligate myoblasts to synthesize and accumulate large quantities of muscle specific protein. The effect of diazepam on muscle cells in culture is direct and specific.

Animals↗