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Biomedical subjects

H Holtzer

Publications and source records attributed to H Holtzer.

At least 91 records · Page 5Linked to original sources

Selective binding of antibody against gizzard 10-nm filaments to different cell types in myogenic cultures.

Antibody against the intermediate-sized filaments from gizzard smooth muscle was used to determine the presence or absence of reacting 10-nm filaments in different cell types. The antibody against gizzard 10-nm filaments reacted with filaments in cultured smooth muscle cells, skeletal myotubes and postmitotic skeletal myoblasts. It did not bind to the 10-nm filaments present in replicating presumptive myoblasts and fibroblasts, or the 10-nm filaments in spinal ganglion cells.

Animals↗

Differences among 100-A filamentilament subunits from different cell types.

The protein subunit of 100-A filaments constitutes approximately 50% of the cytoskeleton protein of chick fibroblasts. In addition to the 43,000-dalton protein (constitutive actin) common to all cell types, fibroblast cytoskeletons contain a 58,000-dalton protein likely to be the 100-A filament subunit, whereas smooth muscle contains, instead, a 55,000-dalton protein. Additional differences among 100-A filaments are shown by immunofluorescence using antibodies angainst chick fibroblast 58,000-dalton component (anti-F58K) and against chick brain 100-A filament subunits (anti-BF). Anti-F58K binds to 100-A filaments in chick fibroblasts, presumptive myoblasts, chondroblasts, pigment cells, and neurons, but not to 100-A filaments in mouse or human fibroblasts. This antibody stains cables of 100-A filaments induced by sequentially treating cells with cytochalasin B and Colcemid. Anti-BF binds only to neurofilaments and not to 100-A filaments of other cell types studied. Absorption or antibodies with purified subunits from gizzard 100-A filaments eliminates binding of anti-F58K to the filaments of all cell types but does not diminish binding of anti-BF to neurofilaments. Various IgGs also bind nonspecifically to induced cables of 100-A filaments. The problem of nonspecific binding of labeled antibodies, as well as the problem of cell and species specificity of the 100-A filaments, is discussed.

Actins↗

DNA polymerase activity in muscle cultures.

Nuclei within myotubes do not synthesize DNA for replication. Accordingly, cultures of myotubes display low levels of DNA polymerase activity. The coincidental decline in DNA polymerase activity and increased formation of multinucleated myotubes during culture does not prove that the loss of capacity to synthesize DNA is a consequence of fusion. Tne experiments described demonstrate that myogenic cells prevented from fusing have low levels of DNA polymerase activity. This is consistent with the notion that, in myogenic cultures, there is a population of mononucleated cells, the myoblasts, which have withdrawn from the mitotic cycle before fusion.

Cell Cycle↗

Biochemical and immunological heterogeneity of 100 A filament subunits from different chick cell types.

The 100 A filament subunit proteins of chick fibroblasts and gizzard smooth muscle were compared. These proteins are major cellular components in these cell types, constituting up to 98% of the cell's total protein. Co-electrophoresis of cytoskeletal fractions of fibroblasts and smooth muscle revealed that the subunit proteins differed in their molecular weights: 58,000 daltons in fibroblasts and 55,000 daltons in smooth muscle. Cytoskeletal fractions from other cell types were also examined: chondroblasts contained the 58,000 dalton subunit, and cytoskeletons of skeletal muscle and cardiac muscle contained both 55,000 and 58,000 dalton proteins. Chick skin and rat kangaroo Pt K2 cells had more complex subunit patterns which resemble prekeratin. The peptide patterns resulting from proteolytic digestion of the 58,000 dalton protein of fibroblasts, the 55,000 dalton proteins of smooth muscle and PT K2 cells, and chick brain tubulin differed from one another. Two-dimensional electrophoresis of reconstituted gizzard smooth muscle 100 A filaments showed the 55,000 dalton subunit to be composed of two major components, differing in their isoelectric points. Antibodies prepared against electrophoretically purified 55,000 dalton subunit protein reacted in immunodiffusion against the original smooth muscle antigen and cytoskeletal fractions from skeletal and cardiac muscle, but not from fibroblasts, brain, liver, or skin cells. A specific antigenic determinant common to subunit proteins in smooth, skeletal, and cardiac muscle, is therefore indicated. A previously described antibody against fibroblast subunit protein reacted weakly against smooth muscle filament protein in immunodiffusion revealing the presence of a common antigenic determinant between the two subunit proteins. These data demonstrate striking antigenic and primary structural differences in 100 A filament subunits from even such closely related cell types as fibroblasts on the one hand and muscle cells on the other.

Animals↗

Immunofluorescent visualization of 100 A filaments in different cultured chick embryo cell types.

Antibody prepared against the 55,000 dalton subunit of reconstituted chick gizzard 100 A filaments (anti-G55K) bound to the 100 A filaments of chick smooth muscle, cardiac muscle, and skeletal muscle cells, and to the 100 A filaments of Schwann cells and satellite glial cells of the peripheral nervous system. Anti-G55K did not bind to replicating presumptive myoblasts, fibroblasts, chondroblasts, pigment cells, neurons, or to central nervous system glial cells. This contrasted with the wider range of binding of antibody to the 58,000 dalton subunit of chick fibroblast 100 A filaments (anti-F58K) which bound to the 100 A filaments of all cell types examined except hepatocytes and skin epithelial cells. Anti-G55K) staining revealed a morphologically distinct distribution of 100 A filaments in the three types of muscle cells. Spindle shaped smooth muscle cells exhibited dense fluorescent staining near the poles of the cells, and also exhibited unique patches of fluorescent material after cytochalasin B and Colcemid treatment. In myotubes, the fluorescence was limited to longitudinal bundles of filaments between the striated myofibrils. Cardiac cells contained uniformly distributed fine filaments. Lastly, smooth muscle cells in various phases of mitosis bound the anti-G55K, whereas replicating presumptive skeletal myoblasts failed to bind the anti-G55K.

Animals↗

Effects of phorbol-12-myristate-13-acetate on the phenotypic program of cultured chondroblasts and fibroblasts.

Phorbol-12-myristate-13-acetate (PMA) has a prompt, differential, and partially reversible effect on cultured chick chondroblasts. Within 36 hr PMA transforms sessile, polygonal, epithelioid chondroblasts into motile, multilayered, fibroblastic cells. In PMA chick chondroblasts rapidly cease to synthesize two of their terminal luxury molecules, the type IV sulfated proteoglycan that characterizes the extracell matrix and a glycosylated protein with an apparent molecular weight of 180,000. This glycosylated protein constitutes approximately 5% of the total protein in normal chondroblasts. If returned to normal medium after 4 days in PMA, virtually 100% of the cells reinitiate the synthesis of their type IV sulfated proteoglycan, of the 180,000-dalton protein, and reacquire their polygonal, epithelioid morphology. If returned to normal medium after 12 days in PMA, the cells fail to synthesize their two characteristic luxury molecules, and 100% of the cells remain fibroblastic. PMA alters the morphology of chick fibroblasts but does not block synthesis of their characteristic type III sulfated proteoglycan. PMA proves to be a mitogen for chondroblasts but not for fibroblasts, in spite of the phenotypic similarities of these two cell types.

Animals↗

Failure of cultured chick embryo fibroblasts to incorporate collagen into their extracellular matrix when transformed by Rous sarcoma virus. An effect of transformation but not of virus production.

Whole chick embryo fibroblasts were infected with the Prague wild type Rous sarcoma virus and with a temperature sensitive mutant of this strain, RSVtsLA24. Normal fibroblasts and fibroblasts infected with the temperature-sensitive mutant and cultured at the nonpermissive temperature-sensitive mutant and cultured at the nonpermissive temperature, secreted procollagen into the medium and incorporated collagen into their extracellular matrix. On the other hand, transformed fibroblasts and fibroblasts infected with the temperature-sensitive mutant and cultured at the permissive temperature, were able to secrete procollagen into the medium, but there was no evidence that they were able to convert procollagen to collagen and incorporate collagen into an extracellular matrix. The inability of the infected cells to incorporate collagen into an extracellular matrix was found to be a result of transformation rather than of virus production in these cells.

Animals↗

Effects of a tumor-promoting agent on chondrogenesis.

Chondroblasts exposed to the phorbol ester, PMA, rapidly lose their polygonal morphology, and rapidly cease to synthesize or accumulate the chondroblast-specific Type IV sulfated proteoglycan. This striking effect is reversible if the cells are kept in PMA for up to 72 hours. A longer exposure induces irreversible effects and results in a population of cells, the vast majority of which lack the phenotypic properties of terminal chondroblasts.

Animals↗

Transformation of chicken embryo retinal melanoblasts by a temperature-sensitive mutant of Rous sarcoma virus.

Retinal melanoblasts were transformed by a temperature-sensitive mutant of Rous sarcoma virus (ts-RSV). At the permissive temperature for transformation, the cells cease melanin synthesis, degrade their melanosomes and release much of their accumulated melanin into the medium. At the nonpermissive temperature, the cells assume an epithelioid morphology, actively synthesize melanin and become difficult to distinguish from normal uninfected control cultures. Both the transformed phenotype and the differentiated cell phenotype are temperature-dependent. Infected retinal melanoblasts which are incubated at the nonpermissive temperature and which accumulate a large amount of melanin are unable to transform in response to a temperature shift; instead, the cells degenerate and die. Retinal melanoblasts can be infected by subgroups A, B, C and D of RSV; however, their level of susceptibility to infection is about 1/40 compared to fibroblasts. Cultures infected by ts-RSV produce virus at both temperatures, suggesting that cell phenotype does not regulate virus synthesis.

Animals↗

Transformation of chondroblasts by Rous sarcoma virus and synthesis of the sulfated proteoglycan matrix.

The presence of the extracellular matrix synthesized by chondroblasts provides a barrier to virus penetration. Chondroblasts can be infected and transformed following treatment with proteolytic enzymes. Using a temperature-sensitive transformation mutant of Rous sarcoma virus and rearing the cells at permissive temperature, we demonstrate that transformed chondroblasts stop synthesizing their cell-unique sulfated proteoglycan. If such transformed chondroblasts are shifted to nonpermissive temperature, the cells reinitiate the synthesis of their cell-unique sulfated proteoglycan.

Animals↗

Myosin types during the development of embryonic chicken fast and slow muscles.

We have studied the myosin types present in developing fast and slow muscles of the chicken embryo. Myosin light chains were characterized by their mobility on sodium dodecyl sulfate/polyacrylamide gels; myosin heavy chains were identified by their reaction with antibodies specific for adult fast or adult slow myosin heavy chains. During development, the pectoralis muscle, a fast muscle in the adult, contains heavy chains and two of the three light chains characteristic of adult fast muscle myosin. However, the anterior latissimus dorsi muscle, a slow muscle in the adult, also contains fast myosin light and heavy chains during early development. Only after the time of innervation does this muscle begin synthesizing predominantly the slow myosin heavy and light chains. We hypothesize that the synthesis of fast myosin in both early fast and slow muscles is the result of the endogenous program for muscle development; initiation of the synthesis of slow myosin, however, is dependent upon exogenous factors.

Aging↗

The localization of skeletal light meromyosin in cells of myogenic cultures.

Fluorescent antibodies against skeletal light meromyosin were used to study the localization of this muscle-specific antigen in myotubes, myoblasts, presumptive myoblasts and fibroblasts found in six-day myogenic cultures. The labelled antibody bound only to the lateral edges of the A-bands in myofibrils. The antibody did not bind to antigens in the nucleus, cytoplasm or in the microfilaments beneath the plasmalemma in any of the cell types examined. Similarly, the external face of the cell surface of unfixed, living myotubes and mononucleated cells did not bind the antibody. Immunodiffusion tests confirm these results: high salt extracts of myotube-containing cultures reacted against anti-skeletal light meromyosin, whereas extracts of fibroblasts and presumptive myoblast cultures failed to precipitate the antibody. It is proposed that if myosin is present in the plasmalemma of these cells, as is suggested bhe myofibrils of definitive muscle.

Cell Membrane↗

Effect of 5-bromo-2'-deoxyuridine or cytosine-B-D-arabinofuranoside hydrochloride on myelination in newborn rat cerebellum cultures following removal of myelination inhibiting antiserum to whole cord or cerebroside.

Myelination was inhibited in cultures of newborn rat cerebellum by exposure to antisera prepared by injecting rabbits with whole guinea pig spinal cord or cerebrosixde mixed with bovine serum albumin. At 15 days in vitro (DIV), when 90-100% of our control cultures were myelinated, antiserum inhibited cultures were washed and refed routine culture medium or medium containing 5-bromo-2'-deoxyuridine (BUdR) or cytosine-B-D-arabinofuranoside hydrochloride (ara-C) in concentrations previously shown to inhibit myelination in our system. The disinhibited cultures myelinated within 2-5 days of removal of antiserum regardless of the presence of BUdR or ara-C. The evidence suggests that the myelin-forming oligodendrocytes do not undergo cell division before myelination during disinhibition from antiserum. In addition, cultures exposed to BUdR on 5-7 DIV in the presence of antiserum and disinhibited at 10 DIV did not have myelinated axons as observed by light microscopy at 15 DIV. Thus, the BUdR sensitive oligodendrocyte division remained intact in antiserum inhibited cultures. We conclude that the antisera inhibit myelin formation without interrupting the pattern of cell division or the covert differentiation of oligodendrocytes.

Animals↗