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Biomedical subjects

J Wikman-Coffelt

Publications and source records attributed to J Wikman-Coffelt.

At least 91 records · Page 5Linked to original sources

Modification of the rapidly reacting thiols of atrial and ventricular myosins. Evidence for structural variances around the SH-1 thiol of the two isozymes.

Environmental variances were noted around the rapidly reacting SH-1 thiol of ventricular versus atrial myosin, based on electron paramagnetic resonance studies. Further studies, in which either SH-1 or SH-1 + SH-2 thiols were modified with N-ethylmaleimide, indicated the importance of the SH-2 moiety of both isozymes for generation of tension, when analyzed as synthetic actomyosin threads. Comparative EPR studies showed that the spin label was more strongly immobilized when complexed to ventricular SH-1 thiol as compared to when it was complexed to atrial myosin. Likewise, addition of PPi, ATP or ADP created a greater mobility in the spin label when added to ventricular spin-labeled myosin as compared to that of atrial myosin. comparative studies of spin-labeled actomyosin versus myosin analyzed at different EPR power settings also demonstrated disparaties surrounding the SH-1 thiol between the two myosin isozymes.

Adenosine Triphosphatases↗

Comparative force-velocity relation and analyses of myosin of dog atria and ventricles.

The isolated muscle and purified myofibrillar proteins of canine atria and ventricles were compared relative to force-velocity relations and rate of adenosine 5'-triphosphatase (ATPase) activity as a function of calcium concentrations. The maximal stress development of isolated trabeculae of canine atria was similar to that of canine right ventricular papillary muscles when analyzed at saturating calcium concentrations (7.5 mM); however, stress was less in the atria when studied at normal calcium concentrations (2.5 mM). The maximal velocity of shortening of atrial trabeculae was about 2.3 times higher than that of ventricular muscle. Regulated actomyosin characterized from the myofibrillar proteins of the two tissues gave directionally similar calcium sensitivity. The maximum velocity of shortening for actin-activated atrial myosin of the dog was approximately 1.8 times higher when the latter was analyzed as a function of actin concentration. Both maximal tension of isolated muscle and regulated actomyosin ATPase activity were dependent on calcium concentration.

Adenosine Triphosphatases↗

Verapamil preserves myocardial contractility in the hereditary cardiomyopathy of the Syrian hamster.

We attempted to alter the inherited myocardial damage and loss of contractility of the cardiomyopathic Syrian hamster (strain U-MX7-1) by giving cardiac drugs that altered intracellular calcium and myocardial workload. Thirty-seven 21-day-old cardiomyopathic and thirty-seven 21-day-old normal hamsters were divided into five groups each: verapamil-, propranolol-, digoxin-, hydralazine-, and saline-injected. On their 90th day of life, the hamsters were killed. Of the five cardiomyopathic groups, only verapamil reduced myocardial damage. When both "control" and cardiomyopathic hamsters were treated with saline, digoxin, or propranolol, the cardiomyopathic hamsters had significantly less contractile force, maximal rate of force development, and maximum velocity of unloaded shortening. When both groups were treated with verapamil or hydralazine, there were no significant group differences in the indices of contractility. However, when saline-treated cardiomyopathic hamsters were compared with drug-treated cardiomyopathic hamsters, only verapamil preserved myocardial contractility. There was also a weak correlation between the Vmax and the actin-activated ATPase activity of the cardiomyopathic hamsters (r = 0.63, P less than 0.001). We conclude that verapamil helped protect the myocardium of genetically cardiomyopathic hamsters against structural damage, and helped preserve myocardial contractility.

Actins↗

Influence of myosin heavy chains on the Ca2+-binding properties of light chain, LC2.

The association of myosin light chains with heavy chains, i.e. the intact oligomeric structure, profoundly affects the Ca(2+)-binding properties of the light chains. The Ca(2+)-binding affinity of the light chains is more than two magnitudes higher in the presence of heavy chains than in its absence. Modification of the reactive SH(2) thiol of myosin results in an alteration in the conformation of heavy chains of the molecule that influences the Ca(2+)-binding properties of light chains and generation of tension. When the SH(2) moiety is blocked with N-ethylmaleimide the influence of the heavy chains on the Ca(2+)-binding properties of light chain LC(2) is lost; under these conditions the Ca(2+)-binding affinity value of SH(2)-N-ethylmaleimide-blocked myosin (3.3x10(4)m(-1)) decreases to near that expressed with the dissociated light chain LC(2) (0.7x10(4)m(-1)). Conversely, the presence of actin, nucleotides or modification of either the reactive lysyl residue or SH(2) thiol does not affect Ca(2+) binding. The native secondary and tertiary structure of myosin seem to be required for Ca(2+) binding; binding does not occur in the presence of 6m-urea with either native myosin or the dissociated light chains. With SH(2)-N-ethylmaleimide-blocked myosin normal Ca(2+)- and (Mg(2+)+actin)-stimulated ATPase activities are expressed; however, there is a loss in K(+)-stimulated ATPase activity and the synthetic actomyosin threads of such myosin express no isometric tension. There are also variances in the binding of Ca(2+) with alterations in pH values. In the absence of Ca(2+)/EGTA buffer the biphasic Ca(2+)-binding affinity of myosin is twice as high at pH7.4 (site one: 1.2x10(6)m(-1) and site two: 0.4x10(6)m(-1)) as compared with values obtained at pH6.5 (site one: 0.64x10(6)m(-1) and site two: 0.2x10(6)m(-1)). The Ca(2+)-binding affinity of light chain LC(2) and S(1), where the (S-1)-(S-2) junction was absent, were not influenced by changes in pH values. Both expressed a low Ca(2+)-binding affinity, approx. 0.7x10(4)m(-1), whereas heavy meromyosin, where both (S-1) and (S-2) myosin subfragments were present, expressed a Ca(2+)-binding affinity value similar to that of native myosin, but was not biphasic. However, it is important to point out than in preparation of S(1) myosin subfragment light chain LC(2) was lost and thus was added back to the purified S(1) fraction. Light chain LC(2) was not, however, added to the heavy meromyosin fraction because it was not lost during preparation of the heavy meromyosin subfragment. In conclusion, it appears that the (S-1)-(S-2) junction is needed for the positioning of light chain LC(2) and thus influences its essential conformation for Ca(2+) binding.

Adenosine Triphosphatases↗

A high acceleration programmable centrifuge used in purification of myocardial and skeletal muscle myosins.

Protein purification can be improved by using high acceleration - deceleraton centrifugation. This study describes a high acceleration programmable centrifuge which reaches 5,000 x g in 3 sec and brakes from 5,000 to 0 x g in 4.3 sec. This study further describes the use of this centrifuge in myosin purification and thus demonstrates that protein purification can be improved by separating particles with a high acceleration - deceleration centrifuge for the following reasons: (1) biological and chemical equilibria are immediately terminated, (2) proteolysis is reduced, (3) working time is decreased, and (4) the native state of labile proteins are better preserved. Rapid acceleration and deceleration is advantageous in reducing centrifugation time for separation of particles because it decreases diffusion time of particles and non-desirable interactions.

Adenosine Triphosphatases↗

Methylation of canine cardiac myosin in culture.

N epsilon, N epsilon, N epsilon, trimethyllysine and an unidentified methylated amino acid which co-electrophoresed and co-chromatographed with the hydrolysis product of S-adenosyl-L-methionine, occur in fetal canine cardiac myosin and are isotopically labeled in vitro with S-adenosyl-L-(methyl 3H) methionine between the 10th and 12th day of culture.

Amino Acids↗

Properties of the non-specific calcium-binding sites of rabbit skeletal-muscle myosin.

The non-specific Ca2+-binding sites of skeletal-muscle myosin are located on the light chains; with the dissociation of light chains there is a corresponding decrease in the number of Ca2+-binding sites on light-chain-deficient myosin. The released light chains have a decreased binding affinity. Myosin heavy chains indirectly influence the Ca2+-binding properties of light chains by increasing the affinity of light chains for bivalent cations; this influence varies with pH. Because of light-chain dissociation at low Ca2+ and/or Mg2+ concentrations, anomalies may exist when analyses of non-specific Ca2+-binding properties of myosin are assessed by dialysis equilibrium.

Animals↗

Freezing and thawing of myosin with no alteration in ATPase activity.

Myosin can be frozen in liquid nitrogen (-70 degrees C) and stored at this temperature for 5 months with no loss in K+, Ca2+, or actin + Mg2+ -stimulated ATPase activities. Furthermore, myosin can be refrozen and thawed in this manner for at least 5 consecutive times with no alteration in ATPase activity.

Actins↗

In vivo phosphorylation of a cardiac myosin-like protein.

Cardiac myosin heavy chains synthesized in vivo were identified by labeling of N epsilon, N epsilon, N epsilon trimethyllysine with S-adenosyl-L-(methyl 3H) methionine. A similar assessment of in vivo phosphorylation of this myosin fraction indicated that phosphate incorporation may not be occurring in cardiac myosin heavy chains, but rather in another cardiac myosin-like protein which co-purifies with myosin heavy chains.

Animals↗