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Biomedical subjects

A F Grimm

Publications and source records attributed to A F Grimm.

12 recordsLinked to original sources

Functional heterogeneity in a multipinnate muscle.

Many mammalian muscles have a complex internal architecture. This type of structure could allow a single muscle to produce a variety of force vectors through selective regional contractions. This hypothesis was tested electromyographically in the multipinnate pig masseter by recording simultaneously from several intramuscular sites. It was found that the activity in different portions of the masseter varied systematically during the various phases of mastication. anatomical correlates of the differential activity included fasciculus orientation and length, sarcomere length in specific jaw positions, and histochemical fiber type. The usual assumptions made about muscles for biomechanical analysis, such as uniform contraction and constant line of action, are inappropriate for complex muscles such as the pig masseter.

Animals

"Silver dust"--a tool to study growth interrelationships between bone, periosteum and muscle.

A cylinder of gelatin containing silver spongy granules was placed in and lay within the masseter muscle, the periosteum, and the mandible, and terminated in the medial pterygoid muscle of young (3 month-old) growing miniature pigs. On the basis of an animal sacrificed one week after placement of the cylinder, it was found that the suspending gelatin was removed by cellular activity. Nine months later the remaining animals were sacrificed. Periodic X-rays were taken during the course of the experiment. After sacrifice, the mandible and associated tissues were histologically examined. The results of this study suggest that the silver granules in the muscles maintained their location during growth; the silver granules in the mandible moved forward with mandibular growth. "Slippage" appeared to occur external to the fibrous layer of the periosteum; the site of movement was revealed by the trail of the silver granules. The described method should prove of value in studying the growth interrelationships between bone, periosteum, and muscle.

Animals

Relationship between sarcomere length and active force in rabbit papillary muscle.

Isometric peak twitch force (stimulation frequency 0.5/s; 29.5-30.5 degrees C) was correlated with sarcomere length in isolated papillary muscles of the rabbit. Sarcomere length was measured from photographic recordings (1.5 ms exposure time) performed at rest between contractions and at the time of isometric peak twitch force. The sarcomere length at rest was found to be relatively uniform throughout the preparation and to be linearly related to the overall muscle length within the range Lmax-0.85Lmax. The distribution of sarcomere lengths increased considerably as the muscle went from rest to activity. Studies of surface markers showed different degrees of shortening (or elongation) of individual segments along the length of the preparation. The mean resting sarcomere length at Lmax (the optimum muscle length for force production) was 2.44 +/- 0.01 micron (grand mean +/- S.E., 7 muscles). The means active sarcomere length at Lmax was 2.29 +/- 0.04 micron. Active force declined steeply as the muscle length was reduced below Lmax. At a resting sarcomere length of 2.0 micron, active force was approximately 1/3 of the maximum. The observed differences between the length-tension relat-onships in myocardium (twitch responses) and skeletal muscle (tetanic contractions) are discussed on the basis of a length dependency of the activation process in cardiac muscle.

Animals

Functional morphology of the pressure- and the volume-hypertrophied rat heart.

We studied hearts in which hypertrophy was caused by both pressure and volume overload. Pressure hypertrophy was induced by an aortic constriction; volume hypertrophy was induced by an iron-copper deficiency (anemia). The ventricular weight was increased by 34% in the pressure-hypertrophied hearts at the end of 6 weeks. The ventricular weight was increased by 54% in the volume-hypertrophied hearts at the end of 3 months. A potassium arrest-formalin fixation technique was used to produce a "diastole-like" ventricle. In the pressure-hypertrophied ventricle, the ventricular wall thickness and external radii were significantly increased, whereas the valve-to-apex distance and internal radii remained unchanged. We also found that in the volume-hypertrophied ventricle there was an increase in the valve-to-apex distance, external radii, internal radii, and wall thickness. Although external and internal dimensions increased, the ventricular shape did not change significantly in the volume-hypertrophied ventricle.

Animals

Tendon shortening in striated muscle.

Tendon shortening in the digastric muscle of the rabbit resulted in a short term increase in gross muscle length and sarcomere length. Subsequently, muscle and sarcomere lengths decreased to less than control values. Long-term measurements suggested that a return to control sarcomere length may have been achieved by a reduction in sarcomere number.

Animals

Papillary muscle shortening in the intact dog; a cinderadiographic study of tranquilized dogs in the upright position.

Shortening of the anterior papillary muscle of the left ventricle was demonstrated in six intact, tranquilized dogs. Two small metal markers that had been surgically implanted 3-50 months earlier were cineradiographically photographed during approximately ten sequential cardiac cycles in each of two orthogonal positions. Distances between markers were plotted for successive frames. The resulting curves were used to obtain maximum velocities of papillary muscle shortening and lengthening: 1.08 plus or minus 0.29 muscle lengths/sec and 1.39 plus or minus 0.48 muscle lengths/sec, respectively. From the two orthogonal planes, the average maximum spatial distance and the average minimum spatial distance between the markers were calculated. The mean percent shortening of 22.8 plus or minus 6.5% was surprisingly large: it approximated the distance from the foot to the peak of the ascending limb of the myocardial length-tension curve derived from isolated muscle studies. Mechanical studies on isolated papillary muscle have consistently shown reduced shortening with increasing loads. Since the in vivo dog papillary muscle has been reported to be under considerable tension during systole, there appears to be some contradiction between the degree of shortening found in the present study and the shortening observed in isolated papillary muscle studies.

Animals

Fiber bundle direction in the mammalian heart. An extension of the "nested shells" model.

The orientation of the muscle fiber bundles within the mammalian left ventricle was examined in a variety of mammals. The hearts were arrested in situ in animals with an intact thorax by means of an isotonic K+ solution perfused via the aorta and coronaries. The hearts were then fixed by formalin perfusion through the same vessels and the hearts embedded in gelatin. Serial sections were prepared perpendicular to the Apex-Valve axis. On close examination, the muscle fibers show the change in orientation from endocardium to epicardium previously described by others. In addition, the clefts and voids of the inner one-third to inner one-half of the left ventricular wall add another dimension to the fiber direction: the fiber bundles appear to take a curving course from the middle of the wall to the endocardial surface. This pattern was visible in all studied hearts. Speculations are made on the significance of this anatomic arrangement.

Animals

Editorial: Myocardial sarcomeres and the functioning mammalian heart.

Previously the length-tension properties of the isolated papillary muscle have been related to myocardial sarcomere lengths. Though past studies have relied upon fixed material, recentlly, living muscles have been used. Sarcomere lengths have now been measured on the same specimens in both living and fixed material and the sarcomere length at optimum muscle length established. These lengths are extremely uniform. Studies on the sarcomere lengths through the wall of the left ventricle have also been carried out. Surprisingly sarcomere lengths were relatively uniform from endocardium to epicardium over a wide range of intraventricular pressures. Furthermore, enddiastolic sacarcomere lengths were 91% to 94% of optimum sarcomere length over a physiologic pressure range. Since the papillary muscle in function has been shown to shorten by 23% (to 70% of optimum sarcomere length), these results suggest that the papillary muscle uses the entire ascending limb of the length-tension curve during function.

Animals

Left ventricular shape-luminal pressure relationship. An open-chest study.

Left ventricular dimensions were measured in Cd2+ arrested (presumably diastolic), open-chest rats. Aortic pressure was maintained at 137 cm H2O (100 mm Hg) and left-ventricular (luminal) pressures were established and maintained at their chosen values, each by means of reservoir systems. The selected left-ventricular pressures were chosen to be within or to even broaden the range of conceivable diastolic pressures (-3 to 48 cm H2O). After in situ fixation with 4% formaldehyde and gelatin embedding, the hearts were serially sectioned in the apex base direction to obtain information at 11 levels (10, 20, . . . 90, 100%). Tracings of selected sections were made along the edge of the left ventricular lumen and the pericardial surface. Volumes, surface areas, and mean external and internal radii of the left ventricle were derived. To quantify the circularity of sections a form factor (FF) was introduced (FF = 1 for a circular cross-section and less than one for other shapes). Ventricular lengths, radial dimensions, endocardial and epicardial surface areas, and total and luminal volumes increased with the increasing intraventricular pressures; as expected, the wall simultaneously thinned. Though its appearance was altered by the wall thinning, the curving muscle fascicular pattern was present over the entire pressure range examined. Endocardial surface areas increased more than did the epicardial surface areas. The endocardial FF value increased (more circular) at each section level as the pressure increased. The epicardial FF relationship was apparently constant (0.798 +/- 0.014) for all section levels from 10% through 90%, regardless of luminal pressure. These results, when taken in conjunction with the results of our previous published studies, prompted the following speculation. The wall of the diastolic ventricle is a fluid-filled chamber with intramyocardial pressures that may be higher than ventricular pressures.

Animals