Search PubMed⌕ Search

Biomedical subjects

R Zak

Publications and source records attributed to R Zak.

At least 73 records · Page 4Linked to original sources

Transitions in cardiac isomyosin expression during differentiation of the embryonic chick heart.

The expression of different isoforms of the contractile protein myosin plays a major role in determining contractile characteristics in both cardiac and skeletal muscle in the adult. There is little evidence pertaining to putative changes in myosin phenotype during cardiac embryogenesis or if such changes could play a role in modulating the contractile characteristics of the developing heart. We examined isomyosin expression during cardiogenesis in the chick by indirect immunofluorescence microscopy with monoclonal antibodies to adult ventricular and atrial myosin heavy chains. Antibody specificity was characterized in the adult on the basis of immunofluorescence localization, ELISA, and protein blot immunoassay. Results show that the early embryonic chick heart has a different myosin phenotype than the later embryonic or adult heart. Both the embryonic ventricular and atrial myocardia initially expressed a myosin heavy chain that was recognized by antibody specific (in the adult) for ventricular myosin heavy chain. The ventricles remained reactive throughout life with the ventricular antibody, but reactivity of the atrial myocardium was confined to the initial 6 days of embryonic development. On the other hand, reactivity of the embryonic heart with multiple antibodies specific (in the adult) for atrial myosin was confined to the atrial myocardium throughout development. Thus, the distribution of myosin isoforms became similar to that of the adult myocardium by the time the embryonic heart achieved a 4-chambered configuration at 6 days in ovo.

Aging↗

Molecular biology of myocardial proteins.

There are many possible applications of molecular biology to cardiovascular research. Specific examples discussed in this article include the following: Molecular diversity of ventricular myosin. Myosin heavy chain (HC) structure can be described both at the protein and cDNA levels. Change in the expression of myosin genes. Transitions in the myosin HCs during normal development and after experimental manipulation of the heart can be obtained. Control of gene transcription. There have been recent studies of total mRNA and myosin HC-specific mRNAs using techniques of molecular biology. Structure of the myosin HC gene.

Amino Acid Sequence↗

Evoked potentials elicited by brief vernier offsets: estimating vernier thresholds and properties of the neural substrate.

The characteristics of the neural generator producing an evoked potential in response to the brief presentation of a vernier offset was investigated in three experiments. In the first study, averaged evoked potentials (EPs) recorded in response to a single vernier offset stimulus consisting of a horizontal line which changed from colinearity to noncolinearity for 100 msec every 1.5 sec were compared to responses elicited by other vernier configurations consisting of: stimuli with multiple offsets; stimuli presented in different orientations; targets with different offset features; and with the simple displacement of a colinear line. The results showed that a single vernier offset elicited a robust response if the offset was located in the central zone (1 degree) of the target. Other features of the target configuration were unimportant. Displacement of a colinear line over the same range without an offset evoked little, if any, response. In the second study, EPs were recorded in response to a single offset target which varied in magnitude from 21 to 82 sec of visual angle on different trials. The latency and amplitude of the EP response varied systematically with the amplitude of the vernier offset. Plots of EP amplitude against log of the offset magnitude were linear over the range of offsets employed. Straight lines fitted to the data and extrapolated to zero amplitude provided estimates of vernier threshold. These estimates agreed closely with psychophysical measures taken with the same targets and confirm the initial observations by Levi et al. (1983). In the third experiment, irrelevant contours were added to the vernier target in various spatial and temporal configurations. The addition of stationary, contiguous contours to the vernier target reduced the amplitude of the EP response when the contours were within 4-8 min of the offset, producing progressively less EP attenuation with increasing distance from the offset. However, brief presentation of the irrelevant contour (e.g. a single line passing through the offset) with an onset asynchrony relative to the vernier offset stimulus appropriate to assure simultaneity of the line-elicited EP and the offset-elicited EP yielded an enhanced response, i.e. to two responses added algebraically. The long latency of the offset evoked response and the summation results of the EPs generated by an offset and by a briefly presented linear contour suggests independence of the neural generators producing the response to these two targets.

Adult↗

The expression of myosin heavy chain isoforms in normal and hypertrophied chicken slow muscle.

Hypertrophy was produced in the anterior latissimus dorsi (ALD) muscle of 5-wk-old chickens by application of a load to the humerus. After 4 wk, hypertrophied ALD muscles were greater than 2.5 times heavier than contralateral control ALD muscles. Two isomyosins are distinguishable in normal ALD muscles by their different electrophoretic mobilities. It is shown here that the faster migrating SM-1 isomyosin decreases in abundance with age and that the application of an overload enhances both the rate and extent of this process. Monoclonal antibodies were selected by an immunotransfer technique that were specific for the heavy chains associated with either SM-1 or SM-2, or cross-reacted with both isoforms. The cellular distribution of the SM-1 and SM-2 isomyosins was analyzed by immunofluorescent technique using these antibodies. Anti-SM-1 and anti-SM-2 antibodies reacted with separate populations of cells, whereas the third antibody reacted with all myocytes in the normal ALD muscle. These data suggest that there is an exclusive cellular distribution of myosin heavy chains associated with SM-1 and SM-2 proteins. Immunofluorescent analysis of hypertrophied muscle showed the anti-SM-2-specific antibody reacting with all myocytes, whereas the anti-SM-1-specific antibody reacted with none. This is consistent with the elimination of the SM-1 isoform in hypertrophied muscles.

Animals↗

Expression of myosin heavy chains during thyroid hormone-induced cardiac growth.

The expression of mRNAs for two cardiac myosins has been studied in the ventricles of hypo- and hyperthyroid rabbits by using cloned cDNA sequences corresponding to the mRNAs of the alpha- and beta-myosin heavy chains (HCs). The temporal change in relative levels of the alpha and beta HC mRNAs after triiodothyronine (T3) treatment of hypothyroid rabbits was determined by nuclease S1 mapping. In the hypothyroid state, only NC beta-mRNA was expressed in the ventricles. The HC alpha-mRNA was first detectable 4 h after administration of T3 (200 micrograms/kg) to hypothyroid animals. By 12, 24, and 72 h, HC alpha-mRNA represented 20, 50, and 90% of total myosin mRNA. The relationship between the relative mRNA levels and relative synthesis rates of myosin HCs was evaluated in 5- to 6-wk-old normal and thyrotoxic rabbits. Myosin synthesis rates were determined by labeling of protein in vivo with [2H]leucine. The V1 (HC alpha) and V3 (HC beta) isomyosins were separated by immune affinity chromatography and the HCs were isolated electrophoretically. In a normal euthyroid group of animals and in animals 12 and 24 h after administration of 200 micrograms of thyroxine, the relative mRNA levels and relative synthesis rates of the alpha and beta HCs were not significantly different. Our results show that, first, thyroid hormone causes a rapid accumulation of HC alpha-mRNA and loss of HC alpha-mRNA, and second, in normal and thyrotoxic rabbits, the relative synthesis rates of HC alpha and HC beta reflect the relative abundance of their respective mRNAs. These data are consistent with the thyroid hormones regulating synthesis of ventricular myosin at steps that precede translation of its message.

Animals↗

Distribution of isomyosin in cultured cardiac myocytes as determined by monoclonal antibodies and adenosine triphosphatase activity.

The distribution of isomyosin in cardiac muscle cells in culture has been investigated with monoclonal antibodies and Ca2+-activated myosin ATPase cytochemical staining. With immunofluorescent studies using monoclonal antibodies to isomyosins V1 and V3, the cardiac myocytes grown in a serum-free and thyroxine (T4)-free medium for 7 days contained a predominant population of cells which were strongly reactive to anti-V3 antibody. A small population of myocytes in this culture exhibited weak or no reaction to anti-V3 antibody. When cultures were exposed to anti-V1 antibody, the predominant cardiac myocyte population showed little or no reactivity to this antibody, whereas a small population of the myocytes were strongly reactive. The myosin ATPase staining reaction of the positive myocyte population was significantly less pronounced than that of the V3-negative population which showed a strong reaction. The staining pattern changed dramatically after exposure of cultured myocytes to thyroid hormone for 7 days. Most of the cells were found to react strongly with anti-V1 antibody, while some cells showed little reactivity and some were not stained at all. A small number of cardiac myocytes in this culture showed little or no reactivity to anti-V1 antibody but were strongly reactive to anti-V3 antibody. The predominant anti-V1-positive myocyte population exhibited strong myosin ATPase staining as compared to a smaller V3-positive myocyte population which showed very weak staining. The cytochemical results of ATPase staining in cardiac myocytes agreed well with ATPase activity as determined on pyrophosphate gels containing isomyosin derived from cultured cardiac myocytes with or without T4. This study has demonstrated that cultured myocytes contain a small population of muscle cells which is not responsive to thyroid hormone or to the lack of it.

Adenosine Triphosphatases↗

Nuclear-cytoplasmic interactions affecting DNA synthesis during induced cardiac muscle growth in the rat.

Nuclear-cytoplasmic interactions affecting DNA synthesis during induced cardiac muscle growth were examined in 29 to 46 day old rats. DNA synthesis was examined in vitro using isolated nuclei from rat heart and adult X. laevis spleen. Cytoplasmic extract (CE) was obtained from a 105 000 g supernatant of rat heart and fetal liver homogenates. To measure DNA synthesis we utilised DNA within the isolated quiescent nucleus as the template and measured the effect of CE on the incorporation of 3H-TTP into an acid precipitable product. In a homologous system of rat heart nuclei from weanling rats and CE from cardiac muscle undergoing induced growth, no stimulation of 3H-TTP incorporation was observed. Cardiac muscle CE however, did possess stimulatory factor(s) since quiescent X. laevis nuclei could be stimulated with the rat heart CE. Furthermore, CE from hearts undergoing induced growth had greater activity than extract from control hearts. While cardiac muscle nuclei were not stimulated by heart CE, they showed substantial stimulation by CE from fetal rat liver, which contains a large population of proliferating cells. Stimulation by fetal rat liver was greater with nuclei obtained from hearts undergoing induced growth than from control hearts. Stimulatory factor(s) in CE was distinct from DNA polymerase-alpha activity, as shown by separation of the two activities on a 5 to 15% glycerol gradient.

Animals↗

Transmural distribution of isomyosin in rabbit ventricle during maturation examined by immunofluorescence and staining for calcium-activated adenosine triphosphatase.

Mammalian ventricle contains two major isomyosins, V1 and V3, which differ in the primary structure of their heavy chains (HC alpha alpha and HC beta beta, respectively) and in their adenosine triphosphatase activity. The distribution of the HC alpha isomyosin in the left ventricle of the rabbit was followed as a function of age and transmural location. HC alpha was detected with a monoclonal antibody found to be specific for the hinge region of V1 myosin molecules when viewed in the electron microscope after low-angle rotary shadowing. Frozen sections were observed with indirect immunofluorescence developed to this anti-HC alpha hinge antibody. Serial sections were observed with the histochemical assay for calcium-activated myosin adenosine triphosphatase, using preincubation at various pH levels. Results show that all the ventricular myocytes in baby rabbits (2 weeks) are stained by the HC alpha-antibody from the epi- to endocardium. The isomyosin content of myocytes varies through the epi- to endocardium of the right ventricular wall of the adult (1-year-old) rabbit, with the HC alpha form predominating in the outer epicardial third of the wall and the lowest amount of HC alpha in the middle third of the wall. A mixture of stained and unstained myocytes is seen in the endo- and subendocardial regions. The spatial distribution of HC alpha in 4-month-old rabbits varies between that of the baby and adult. There is good agreement between myocyte classifications made by histochemical and antibody staining methods.(ABSTRACT TRUNCATED AT 250 WORDS)

Aging↗

Developmental aspects of cardiac contractile proteins.

The change in the isomyosin complement of avian and mammalian hearts was examined during the embryonic period in primary cultures of embryonic myocytes and in the cross-section of the adult ventricular wall. The type of myosin was determined by immunofluorescence using Abs specific for heavy chains of V1 and V3 isomyosins and by cytochemical staining for Ca2+ activated myosin ATPase. Our analysis indicates that the first isomyosin to appear in both chambers of avian heart is of the V3 type (HC beta). With advancing development, however, the atria initiate the expression of HC alpha and repress that of HC beta while the ventricle retains HC beta. In cultured myocytes derived from rat embryos cellular heterogeneity was detected in response to thyroid hormone. The cells are not synchronized in their response. Two populations are discernible with the minor one being thyroid hormone insensitive. Heterogeneity of the cellular populations was also seen in the left ventricle of adult rabbits. Myocytes with a similar isomyosin complement appear clustered with a predominance of V1 in the epicardium. Heterogeneous myocytes are, however, also frequently seen connected by an intercalated disc.

Aging↗

Comparison of myosin heavy chains in atria and ventricles from hyperthyroid, hypothyroid, and euthyroid rabbits.

The structural similarities of the heavy chains (HC) of myosin isolated from atria and ventricles of hyper-, hypo-, and euthyroid rabbits were compared by immunological analysis, by one- and two-dimensional peptide mapping, and by electrophoresis under nondenaturing conditions. Monoclonal and polyclonal antibodies, which are specific for HC alpha of ventricular myosin, cross-reacted equally with the HCs of euthyroid atrial myosin. Our immunological analysis identified multiple epitopes common to euthyroid atrial HC and ventricular HC alpha. One- and two-dimensional gel electrophoretic analysis of peptides produced by partial proteolytic digestion of each type of HC reveal no differences between euthyroid atrial HCs and ventricular HC alpha, whereas marked differences are apparent between atrial HC and ventricular HC beta. Nondenaturing gel electrophoresis separates ventricular myosin from hyper- and hypothyroid rabbits into two forms, V1 and V3, respectively. In euthyroid atria, two isomyosins, A1 and A2, were resolved; with the slower moving A2 isomyosin having the same mobility as that of the V1 isomyosin. After cross-hybridization of light chains of ventricular myosin with euthyroid atrial HCs, only a single band having a mobility identical with that of the V1 isomyosin was seen. Furthermore, atrial myosin HCs isolated from hyper- and hypothyroid rabbits were indistinguishable from euthyroid atrial HC and from ventricular HC alpha by these procedures. We conclude that ventricular HC alpha and atrial HC are indistinguishable proteins, and that the type of HC expressed in the atria is unaffected by the thyroid state of the rabbit.

Animals↗

Regulation of myosin isoenzyme composition in fetal and neonatal rat ventricle by endogenous thyroid hormones.

The effect of thyroid hormone on the expression of ventricular isomyosins V1, V2, and V3 was studied in fetal and neonatal rats. Between 15 and 21 days gestation, V3 accounts for 80-90% of fetal ventricular myosin. After birth, there is a rapid transition from the fetal V3 isotype to an equal mixture of V1 and V3 at 3 days, and to 100% V1 at 3 weeks of age. The endogenous serum levels of thyroxine (T4) and triiodothyronine (T3) increase from trace amounts in the fetus to adult levels at 2-3 weeks of age; this increase correlates with the maximal expression of V1 during the same period. Expression of the V1 isomyosin can be eliminated in the neonatal rat if endogenous thyroid hormone synthesis is suppressed by propylthiouracil (PTU) treatment. In the PTU-treated rats, V3 is the only isomyosin synthesized between 1 and 30 days of age. In fetal ventricle, the amount of V1 is also decreased but not completely eliminated by PTU treatment. Conversely, the relative amount of V1 can be increased in the fetal ventricle by increasing the fetal serum concentrations of T4 and T3 to adult physiological levels. In these fetal ventricles, V1 represents greater than 85% of the total myosin. Likewise, the expression and accumulation of V1 could be stimulated in ventricles of PTU-treated, 12-day-old rats by administration of pharmacological or physiological doses of T3. Within 4 to 8 h after an initial dose of T3, V1 accumulates to 5-10% of the ventricular myosin, and by 72 h comprises 60-80% of the myosin. These results indicate that endogenous thyroid hormone induces the synthesis of ventricular heavy chain alpha, which as a dimer forms the V1 isomyosin, or plays a permissive role for the continued synthesis of heavy chain alpha in ventricles of fetal and neonatal rats.

Animals↗

Diazepam and midazolam increase light slow-wave sleep (SWS1) and decrease wakefulness in rats.

Rats implanted with electrodes for polygraphic recordings were injected with diazepam (5 mg/kg, i.p.) or midazolam (10 mg/kg, i.p.) and recorded for 6 h during the 8 h of darkness of a 16 h light/8 h dark cycle. The results show that administration of diazepam reduced SWS1 latency by 92%, and increased SWS1 and total sleep by 255% and 59%, respectively, in comparison to control. Administration of midazolam increased SWS1 by 158% and total sleep by 57% when compared to control. These findings correlate well with the effects of benzodiazepines on sleep stage 2 in humans and indicate that benzodiazepine hypnotics increase only the behaviorally lighter stage of SWS in rats as well as in human subjects.

Animals↗

Cellular location of rat muscle ferritins and their preferential loss during cell isolation.

Heart and other muscles of the rat contain two forms of ferritin separable in polyacrylamide gel electrophoresis. The cellular location of the fast- and slow-migrating ferritins was investigated using primary cultures of hindlimb skeletal muscle, and isolated myocardial cell populations. Muscle and non-muscle cells were isolated in good yield from hearts of adult rats pretreated with large doses of iron to increase their ferritin content. In virtually all cases, the isolated muscle cells contained traces only of the fast-migrating species and the non-muscle cells contained small amounts of the slow-migrating ferritin. During cell isolation, 90-100% of both ferritins was lost and could be recovered in the perfusates and solutions employed, while one third of the total tissue protein, and a larger percentage of creatine phosphokinase, was recovered in the isolated cells. Primary cultures of thigh muscle from adult rats which had differentiated into multi-nucleated myotubes, were incubated for 1-3 days with chelated iron. These cells contained substantial amounts of the electrophoretically fast migrating ferritin, with its characteristic larger Stokes' radius (determined by quantitative polyacrylamide gel electrophoresis). None of the slow-migrating ferritin species was detected, although hindlimb muscle from iron-treated rats contained both forms. It is concluded that the fast-migrating ferritin of muscle, which is much larger and more asymmetric than other ferritins, is confined to the muscle cell population, while the other form is predominantly or exclusively in the non-muscle cells. Both ferritins are lost preferentially over other proteins during procedures which injure muscle tissue.

Animals↗

Regulation of myosin synthesis by thyroid hormone: relative change in the alpha- and beta-myosin heavy chain mRNA levels in rabbit heart.

The expression of mRNAs for two cardiac myosins has been examined in the ventricles of hypo- and hyperthyroid rabbits by means of cloned cDNA sequences corresponding to the mRNAs of the alpha- and beta-myosin heavy chains (HCs). The temporal change in the relative levels of the alpha- and beta-HC mRNAs after 3,5,3'-triiodothyronine (T3) treatment of hypothyroid rabbits was determined by nuclease S1 mapping. In the hypothyroid state, only HC beta-mRNA was expressed in the ventricles. The HC alpha-mRNA was first detectable 4 h after administration of T3 (200 micrograms/kg) to hypothyroid animals. By 12 h, HC alpha-mRNA represented 20% of total myosin mRNA, increasing to 50% by 24 h and to about 90% by 72 h. The relationship between the relative mRNA levels and relative synthesis rates of the myosin HCs was evaluated in 5-6-week-old normal and thyrotoxic rabbits. Myosin synthesis rates were determined by labeling of protein in vivo with [3H]leucine. The V1 (HC alpha) and V3 (HC beta) isomyosins were separated by affinity chromatography with monoclonal antibodies, and the HCs were isolated electrophoretically. In a normal euthyroid group of animals and in animals 12 and 24 h after administration of 200 micrograms of 3,5,3',5'-tetraiodothyronine/kg, the relative mRNA levels and relative synthesis rates of the alpha- and beta-HCs were not significantly different. Our results show that, first, thyroid hormone causes a rapid accumulation of HC alpha-mRNA and loss of HC beta-mRNA and, second, in normal and thyrotoxic rabbits, the relative synthesis rates of HC alpha and HC beta reflect the relative abundance of the alpha- and beta-HC mRNAs.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Replacement perfusion of cultured eucaryotic cells: a method for the accurate measurement of the rates of growth, protein synthesis, and protein turnover.

The fractional rates of protein synthesis (ks) and degradation (kp) were studied in the myeloma cell line SP2/0-AG14 grown at different rates (kg). Cells in spinner flask suspension cultures were maintained at constant cellular density for prolonged periods by replacement perfusion of labeling medium at a rate equivalent to the rate of growth. Total protein synthesis was calculated from the specific radioactivity of labeled L-leucine in the precursor (medium) and cellular protein. Fractional synthesis rates determined by approach to equilibrium labeling were the same as those determined by equilibrium-pulse labeling kinetics and pulse-chase kinetics. The rate of protein degradation was determined from the established relationship Kg = ks - kp. Protein synthesis rates remained constant over a threefold range in the rate of cell growth. At relatively slow growth rates (kg = 0.017/hr) turnover represented a major fraction of total synthesis (kp = 0.032/hr = 0.65ks). At rapid growth rates (kg = 0.058/hr) the value of kp was less than 0.005/hr. No major difference was observed between the ks determined for individual cellular proteins (separated by SDS-polyacrylamide (7.5%) gel electrophoresis) from rapid- and slow-growing cultures. Thus, with an invariable ks, any change in growth rate is due to an inverse change in the rate of turnover. Since turnover is the balance between synthesis and degradation and since synthesis is unchanging, then changes in the growth rate of SP2/0-AG14 should be due to changes in the rate of protein degradation. Experiments were therefore performed to determine the origin of the degradative machinery, ie, cytosolic or lysosomal; autolysis of prelabeled cellular protein (in vitro) was observed only at acidic pH (4.2) and was totally inhibited by addition of leupeptin (10 microM) and pepstatin (2 microM), the specific inhibitors of lysosomal cathepsins B (&L) and D, respectively. Since growth rate appears to be regulated by the alterations in the rate of protein degradation and degradation (in vitro) in SP2/0-AG14 appears to be lysosomal, then one should be able to alter the rate of cellular growth by interfering with rate of lysosomal proteolysis. Indeed, when the lysosomotropic amine NH4Cl (10 mM) is added to cells growing with a kg of 0.018/hr +/- 0.001 (ks = 0.050/hr +/- 0.002) the growth rate increased to 0.051/hr +/- 0.002 without change in the rate of protein synthesis (ks = 0.049/hr +/- 0.003).(ABSTRACT TRUNCATED AT 400 WORDS)

Cells↗