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Biomedical subjects

T F Robinson

Publications and source records attributed to T F Robinson.

At least 19 recordsLinked to original sources

Analysis and pharmacokinetics of cimaterol in growing Holstein steers.

Pharmacokinetic parameters for the beta 2-adrenergic agonist, cimaterol (CIM), were determined in growing Holstein steers. Compartmental analysis was used after measurement of CIM in body fluids by affinity chromatography and HPLC using UV detection. Recoveries from spiked plasma and urine standards were 70 +/- 1.2% and 68 +/- 1.1%, respectively. The minimum detection level in plasma was 1 ng/mL and the average CV was 5.1% for concentrations that ranged from 1 to 30 ng/mL. Four steers (276 +/- 24 kg) received 15 mg of CIM by bolus intravenous injection. Plasma CIM levels declined in a biphasic manner with half-lives of 2.5 min for the distribution phase and 54 min for the elimination phase. A two-compartment open model was used to describe the disappearance of CIM and the following pharmacokinetic parameters were obtained: central compartment volume (Vc) = .76 L/kg, apparent volume of distribution (Vd) = 4.1 L/kg, and transfer rate constants from the central to peripheral compartment (k12) = .177/min, from the peripheral to central compartment (k21) = .054/min and elimination from the central compartment (kel) = .074/min. After 8 h, total urinary CIM accounted for only 18.3% of the administered dose. Results suggest that circulating concentrations of CIM in growing steers are influenced by its accumulation in an unidentified peripheral pool and its conversion into unknown metabolite(s) before elimination.

Adrenergic beta-Agonists

Abomasal casein infusion and exogenous somatotropin enhance nitrogen utilization by growing lambs.

Growing Dorset wether lambs (23 kg initial body weight) were used to determine whether the magnitude of nitrogen retention response to daily administration of exogenous somatotropin is limited by post-ruminal amino acid availability in growing ruminants. Eight lambs surgically fitted with abomasal cannulae were fed a total mixed ration of 85% of ad libitum intake. All lambs received a continuous abomasal infusion of 2 L of water or casein and twice daily subcutaneous injections of 0 or 100 micrograms recombinant bovine somatotropin (rbST)/kg body wt for 15 d per treatment in a 2 x 2 single reversal design. The casein solution was infused at a rate (4 to 5 g nitrogen/d) to achieve 25% of nitrogen intake observed with ad libitum feeding prior to initiation of treatments. Each lamb received all four treatments. Nitrogen balance was determined on d 8 to 14 of each treatment. Casein infusion increased nitrogen balance 43.4% (P less than 0.001), and rbST increased nitrogen balance 33.5% (P less than 0.001), without significant interaction (P less than 0.88). Combined effects of casein and rbST were additive, resulting in an 89% increase in nitrogen balance when compared with water plus excipient treatment. Results suggest that the quantity or composition of absorbed amino acids, or both, limit nitrogen retention by growing lambs, and that rbST increases the efficiency of utilization of absorbed amino acids for protein deposition.

Abomasum

Localization of types I, III and IV collagen mRNAs in rat heart cells by in situ hybridization.

Previous studies investigating the cellular origins of several collagens in young adult rat hearts (Eghbali et al., 1988) demonstrated that the mRNAs for types I and III collagen occurred in non-myocyte cells, mostly fibroblasts, whereas the mRNA for type IV collagen was observed in both myocytes and non-myocyte cells. In the present study, cellular localization of collagen mRNAs has been achieved by in situ hybridization in rat heart tissue and in isolated heart cells. Frozen tissue sections, isolated cardiomyocytes, cultured neonatal cardiomyocytes and fibroblasts were hybridized with DNA probes for type-specific collagens, actin, and myosin heavy chain. Silver grains were visualized by dark field imaging. In heart sections, types I and III mRNAs were observed predominantly adjacent to myocytes and in the interstitium, where fibroblasts are known to be present. In contrast, type IV collagen mRNA was identified both within the myocytes and the interstitium. In freshly isolated adult cardiomyocytes and in cultured neonatal cardiomyocytes, collagen type IV mRNA was observed but type I collagen mRNA was not. In cultured neonatal fibroblasts, both types IV and I collagen mRNAs were abundant.

Animals

Collagen accumulation in heart ventricles as a function of growth and aging.

Increase in resting tension of left ventricular papillary muscle with age has been attributed to the amount of collagen present. We therefore studied the total amount and structure of myocardial collagen as a function of age in the hearts of male Fischer 344 rats. Using amino acid analysis and quantification of hydroxyproline, we showed that collagen accumulates in relation to ventricular protein after 3 months of age and continues in that mode with increased age of the animal, levelling off at 22 months. In this strain of rats, collagen increased in the left ventricle from 5.5% of total protein in a 1 month old animal to approximately 12% in 22 and 26 month old animals; in the right ventricle the increase was from 7% in the 1 month old animal to approximately 19.5% in 22-26 month old animals. The larger percentages of collagen in the right ventricle relative to the left agree with findings of others. Collagen accumulates in intrinsic collagenous structures where the pre-existing fibres are thickened and are more extensive. These structures were detected with light microscopy and scanning electron microscopy and include perimysial weaves, coiled perimysial fibres and struts. Regions of fibrosis were also increased in size and volume in older animals.

Aging

Alterations in collagen cross-linking impair myocardial contractility in the mouse heart.

A number of genetic disorders in humans are associated with defects in the synthesis and metabolism of collagen, which are accompanied by multiple cardiovascular disease processes. To determine whether genetically determined cross-linking abnormalities of collagen may alter cardiac function, left ventricular papillary muscles of mice with a genetic defect in the cross-linking of collagen (Movbr) were studied in vitro. With respect to controls, increases in time to peak tension, from 102 +/- 1.4 to 125 +/- 5.4 msec (p less than 0.001), and time to one-half relaxation, from 76 +/- 3.0 to 98 +/- 6.1 msec (p less than 0.05), were measured. Moreover, resting tension at the length associated with maximum developed isometric force (L) was elevated, from 11.1 +/- 1.7 to 19.3 +/- 1.1 mN/mm2 (p less than 0.001), and a similar difference was also seen throughout the physiological range of muscle lengths. In contrast, developed tension was depressed at 93-97% of L. Peak rate of tension rise and decay were diminished whereas time to peak rate of tension rise was prolonged. Isotonically, a decrease in the magnitude of peak shortening at L, from 4.0 +/- 0.5 to 2.0 +/- 0.2% (p less than 0.04), and an increase in time to peak shortening, from 100 +/- 2.3 to 129 +/- 2.8 msec (p less than 0.001), were seen. In addition, peak velocities of shortening and relengthening were diminished in the Movbr mouse heart. In conclusion, the impairment in collagen cross-linking alters cardiac mechanics by a reduction in force-generating ability and a prolongation of the timing parameters of the systolic and diastolic phases of contraction in vitro.

Animals

Visualization of collagenase-sensitive acetylcholinesterase in isolated cardiomyocytes and in heart tissue.

Previous studies have indicated that the asymmetric form of acetylcholinesterase (collagen-tailed) is localized in the basal lamina of the neuromuscular junction of skeletal muscle. The present study shows localization of the asymmetric acetylcholinesterase in the heart of the rat. Antiserum to 14 + 18 S acetylcholinesterase of the electric eel was raised in rabbits. The purified antibody did not react with collagen type I or laminin. Collagenase reduced the immunoreactivity of the enzyme with the purified antibody. Isolated cardiomyocytes and frozen sections of the heart were stained for acetylcholinesterase with the antibody. Diffuse immunofluorescence appeared over the surface of the cardiomyocytes. In the frozen sections, the immunofluorescence was most intense at the cell boundaries. These data suggest that collagenase-sensitive acetylcholinesterase in the heart is present in the myocytes and occurs in the vicinity of the basal lamina.

Acetylcholinesterase

Differentiating cardiac elastin, collagen and microfibrils with NaOH at the ultrastructural level.

NaOH solutions extract elastin and collagen from epoxy-embedded thin sections containing rat cardiac connective tissue. Extraction results in a reverse staining effect of elastin and collagen ultrastructure. Microfibril contrast is enhanced by NaOH treatment. This phenomenon finds application in the possibility of differentiating elastin, collagen, and microfibrils at the ultrastructural level.

Actin Cytoskeleton

The effects of acutely increased ventricular cavity pressure on intrinsic myocardial connective tissue.

Studies of normal hearts have revealed a variety of intrinsic connective tissue structures that surround and interconnect myocytes and ventricular mural layers. Among these structures, springlike coiled perimysial fibers, arrayed parallel to myocytes in the interstitial space, have been described in papillary muscle and ventricle. To evaluate the role of the coiled perimysial fibers under perturbed conditions, rat ventricles were filled with barium-gelatin under different pressures and fixed, and then the myocardium was impregnated with silver to visualize the connective tissue. Ventricles were filled at 30, 70 and 100 to 120 mm Hg. The coiled perimysial fibers were studied for their orientation, stretch, integrity and relation to sarcomere length. The coils were noted to embed within the fibrous anulus and to knot into an umbilical-like mass at the apex, thus anchoring them at both ends of the ventricle. They underwent focal straightening even at 30 mm Hg, with generalized straightening and disruption at the highest pressure; changes were most pronounced in the midventricle. Sarcomeres were maintained below 2.2 micron at 30 and 70 mm Hg of cavity pressure in regions of coiled perimysial fiber stretch; only with fiber disruption at 100 to 120 mm Hg were sarcomeres significantly lengthened. Other findings included connective tissue disruption between ventricular wall layers that allowed slippage of myocytes and mural thinning. These observations suggest that coiled perimysial fibers may act as a buffer to protect myocytes from damage under the effects of high cavity pressure.

Animals

Coiled perimysial fibers of papillary muscle in rat heart: morphology, distribution, and changes in configuration.

The morphology, distribution, and configuration of coiled perimysial fibers of rat heart papillary muscle were studied. Methods included bright-field light microscopy of silver-stained sections, scanning and transmission electron microscopy, and differential interference contrast light microscopy of unfixed and unstained specimens. Coiled fibers, elliptical in cross section, are arranged in a branched network that diverges from the muscle-tendon junction and is continuous throughout the length of the muscle and into the ventricle wall. Most fibers range in diameter from less than 1 micron to 10 micron and are parallel with the long axis of the muscle, although branching is common and oblique orientations are seen. Several myocytes are associated with each coiled perimysial fiber. Constituent fibrils (diameter, 40-50 nm) occur in bundles twisted within the fiber. Small satellite elastic fibers are parallel to the collagen fiber axes. Stereo analysis of the coiled perimysial fibers reveals helical configurations, as opposed to planar waviness, that become less convoluted or even straighten as the resting muscle is stretched. Calculations based on cross-sectional areas of fibers, changes in fiber configurations, and tensile moduli reported for collagen fibers of other tissues show that the potential tensile strength of the network of coiled perimysial fibers is sufficient to contribute significantly to the mechanical properties of papillary muscle. Detailed evaluations of possible roles of the coiled perimysial collagen fiber system as a function of passive stretch and contraction in ventricular wall, as well as in papillary muscle, warrant further study.

Animals

Comparative connective tissue structure-function relationships in biologic pumps.

A complex connective tissue framework exists in mammalian hearts that surrounds and interconnects individual myocytes and fascicles of cells. Recent evidence suggests that this connective tissue plays a role in maintaining shape, modulating contractile forces, and mediating elastic recoil during cavity filling and contraction. In order to analyze the involvement of connective tissue in pump contraction and recoil, we examined silver impregnated connective tissue in rat hearts which spontaneously jet through fluid ex vivo by contracting their cavities forcefully and then sucking fluid for the next cycle, and compared them to frog hearts which beat actively under the same conditions, but do not demonstrate jet propulsion. A further analysis was carried out in unrelated but analogous models: the squid and octopus. The former jets rapidly through the ocean, while the latter moves sinuously along the seabed. We observed highly interconnected myocytes in the rat heart, whereas frog myocytes are individually wrapped by connective tissue but are not interconnected. The squid mantle muscle is surrounded by a complex connective tissue grid that is tethered to each muscle cell, whereas the octopus mantle muscle cells are surrounded by connective tissue but are not tethered. These observations suggest that myocyte connective tissue tethering may be necessary for muscle cavities to generate forceful and coordinated contractions sufficient for rapid ejection and suction of fluid.

Animals

Structure and function of connective tissue in cardiac muscle: collagen types I and III in endomysial struts and pericellular fibers.

Heart myocytes and capillaries are enmeshed in a complex array of connective tissue structures arranged in several levels of organization: epimysium, the sheath of connective tissue that surrounds muscles; perimysium, which is associated with groups of cells; and endomysium, which surrounds and interconnects individual cells. The present paper is a review of work in this field with an emphasis on new, unpublished findings, including composition of endomysial fibers and disposition of newly described perimysial fibers. The role of scanning electron microscopy in the development of current understanding is also outlined. Biaxially arranged epimysial fibers form a sheath around papillary muscles and trabeculae that becomes increasingly well-oriented with the muscle axis during stretch. Perimysial structures are associated with groups of cells, and include weaves and septa of collagen, tendon-like fibers between weaves, ribbon-like fibers perpendicular to myocytes, and the newly described coiled perimysial fibers, which form an array in parallel with the myocytes and the epimysial net. The endomysium includes struts that bridge cells and pericellular fibers; both contain collagen types I and III. The evidence for the latter is presented in this paper and depends upon the use of antibody localization with fluorescent markers in light microscopy and colloidal gold for scanning electron microscopy. The implications of the composition of collagen fibers for myocardial function are discussed in relation to intra-cellular and other extra-cellular structures.

Animals

Morphology, composition, and function of struts between cardiac myocytes of rat and hamster.

The morphology, composition, and function of struts that interconnect the lateral surfaces of cardiomyocytes were examined in the hearts of rats and hamsters. Methods included brightfield and fluorescent light microscopy, secondary and backscatter scanning electron microscopy, and transmission electron microscopy in conjunction with silver stain, cationic dye, and antibody to type-I collagen. These studies reveal a twisted, beaded appearance and a complex substructure of collagen fibrils embedded in a ground substance that has a positive reaction with cationic dye. A hierarchy of patterns of branching and attachment was seen among intercellular struts ranging in diameter from 0.1 micron to several micron. The hypothesis that struts tether not only the surfaces but the contractile lattices of laterally adjacent myocytes is supported by the following: (a) the attachments of struts to the collagen weave of the sarcolemma, often lateral to the level of Z bands, (b) the presence of collagen type I in a composite material arrangement, (c) the relative dispositions and configurational changes of struts and myocyte surfaces in various physiological states and induced, non-physiological perturbations of cardiac muscle, (d) the corrugated sarcolemmas with infoldings near Z bands, and (e) the continuity of intracellular filaments from Z bands to the inner aspect of the sarcolemma in relaxed and contracted myocytes. Implications of struts acting as tethers and sites for storage of energy in the motions of myocytes during the cardiac cycle are discussed.

Animals

Enzyme-antibody histochemistry. A method for detection of collagens collectively.

Different types of distinct molecular forms of collagen are components of the extracellular matrix in most tissues. The common types can usually be detected by immunohistochemical methods but others may escape detection for lack of specific antisera. However, all these collagens are substrates for the collagenase of Clostridium histolyticum. In this report we describe a method that allows the visualization of collagens, collectively, in a tissue preparation. The method is based on the affinity between clostridial collagenase and collagen on one hand, and collagenase and its antibody on the other. Under the conditions of low temperature used in the procedure, collagenase binds to collagen, but digestion does not occur. Subsequent reaction of the bound collagenase with the specific collagenase antibody is followed by reaction with a tagged anti-IgG reagent. This allows the visualization of the enzyme-substrate complex. The procedure is illustrated in sections of the heart and the aorta, as well as in the isolated cardiomyocytes and the collagen distribution is verified using collagens type I and IV specific antibodies. In all instances the collagenase staining pattern includes all structural features seen individually with the type specific anticollagen antibodies.

Animals

Profound structural alterations of the extracellular collagen matrix in postischemic dysfunctional ("stunned") but viable myocardium.

Ultrastructural studies of the extracellular collagen matrix were made on the "stunned" myocardium using scanning, conventional and high voltage transmission electron microscopy and light microscopy. Regional myocardial dysfunction was produced by 12 sequential 5 minute occlusions of the left anterior descending coronary artery, separated by 10 minute intervals of reperfusion. A final 90 minute reperfusion period documented persistent myocardial dysfunction. At the end of the final reperfusion period, the percent systolic shortening, measured by sonomicrometers, was depressed significantly to 35 +/- 9% of baseline. The heart was then perfusion fixed, and samples were taken from both control and stunned areas. No changes associated with irreversible cellular damage were noted in the stunned region. However, scanning electron microscopy of the stunned area showed that the extracellular collagen matrix underwent profound structural changes. Collagen cables were roughened, uncoiled and discontinuous. Linear grooves on the surface of the myocytes were frequently seen, indicating complete loss of collagen cables. The usual dense collagen weave surrounding myocytes became patchy or absent. Myocyte to myocyte struts were sparse and frequently absent, with remnant nodular or nublike structures indicative of breakage. High voltage electron microscopy of the stunned area showed that the collagen struts were discontinuous and vacuolated with rounded tips. Light microscopy of silver-stained sections of the stunned tissue demonstrated large patchy areas that were devoid of silver, indicating absence of the collagen matrix. There was a progressive increase in percent systolic bulging during each sequential coronary occlusion, suggesting increasing myocardial compliance. These results indicate that the myocardial collagen matrix is severely damaged from reversible ischemic cell injury. The greater myocardial compliance and less effective contractile effort in the stunned myocardium might be explained on a structural basis: disruption of the mechanical coupling function provided by the extracellular collagen matrix.

Animals

Alterations of the myocardial skeletal framework in acute myocardial infarction with and without ventricular rupture. A preliminary report.

Thinning and dilatation (expansion) of the infarct region and complete rupture of the ventricular wall are significant complications of acute transmural myocardial infarction associated with increased morbidity and mortality. The pathogenesis of these related events is unknown. Recent studies of myocardial connective tissue have delineated an extensive array of intercellular and pericellular structures which serve as a skeletal framework and which may modulate contractile activity. We have employed a modified silver impregnation method to visualize the connective tissue components by light microscopy. To explore whether the skeletal framework is altered in acute myocardial infarction with and without ventricular rupture, we studied 9 human hearts at autopsy, and 4 canine infarcts of known duration. The human infarctions included 4 nonruptured cases with infarcts 1-5 days old, and 5 ruptured cases with infarcts 3-10 days old. Sections from normal, lateral, and central infarct or ventricular rupture sites were stained with silver. The normal tissue from each heart served as a control. Silver staining was moderately decreased in the lateral infarct zones, and markedly decreased in the central non-ruptured infarct zones. In the 5 ventricular rupture cases, the rupture site had no silver staining. A similar pattern was observed in the 4 canine infarcts. Thus, we conclude that the skeletal framework is markedly altered in the central zone of acute myocardial infarction. The acute changes of silver stained connective tissue may contribute significantly to the development of infarct expansion or ventricular wall rupture.

Animals

Intrinsic connective tissue abnormalities in the heart muscle of cardiomyopathic Syrian hamsters.

Significant connective tissue abnormalities occurring in hearts of cardiomyopathic Syrian hamsters are reported. These abnormalities include a pronounced loss of the intrinsic connective tissue skeletal framework around foci of myocytolytic necrosis within the non-necrotic myocardium. These changes were demonstrated by a silver impregnation technique, and they were confirmed by scanning electron microscopy. Quantitation demonstrated more than a twofold increase in the area of ventricular wall affected by pathologic changes, when the connective tissue alterations were included with the myocardial necrosis. In addition, the authors also observed focal, thick "tethering" connective tissue fibers at the termini of necrotic lesions, seemingly connecting them to normal muscle. These connective tissue abnormalities may contribute to the progressive loss of ventricular function that occurs in this model of cardiomyopathy. They may permit greater wall thinning than would occur with focal necrosis alone, and they may increase focal mural stiffness in the tethered regions. Further investigation of the pathogenesis of these changes and their mechanical significance is indicated.

Animals

Extracellular structures in heart muscle.

The extracellular matrix of heart muscle contains a considerable variety of structures. We have systematically studied the morphology of these structures using several methods of fixation and microscopy. Endomysial connections between cells are comprised of struts of collagen [1] as well as combinations of elastin fibers, collagen fibers, and microfibrils. The rest of the extracellular matrix is filled with a polyanionic lattice of unit collagen fibrils, microthreads, and granules. In the course of these investigations, we have observed regions of structural continuity across the sarcolemma, from endomysial collagen struts to Z-bands. We have also correlated the mechanical resistance to stretch with orientation of epimysial collagen fibers and sarcomere lengths in living as well as fixed rat papillary muscles. Our observations suggest that the extracellular skeletal framework plays an important role in normal cardiac function.

Animals