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R V Storti

Publications and source records attributed to R V Storti.

36 records · Page 2Linked to original sources

Drosophila P element-enhanced transfection in mammalian cells.

We constructed a gene transfer vector containing the herpes simplex virus type 1 thymidine kinase (TK) gene flanked by Drosophila P element terminal repeats (W. R. Engels, Annu. Rev. Genet. 17:315-344). This vector was introduced into mouse LTK- cells and enhanced the frequency of stable transformation to the TK+ phenotype by approximately 50-fold relative to a similar plasmid lacking the P element terminal repeats.

Animals↗

Alternative splicing of a Drosophila tropomyosin gene generates muscle tropomyosin isoforms with different carboxy-terminal ends.

The muscle tropomyosin I (mTm I) gene from Drosophila melanogaster has been analyzed and shown to express a complex transcription unit consisting of two sets of tissue-specific mRNAs. A 1.3- and 1.6-kilobase set of mRNAs is expressed during myogenesis in embryos, and in myogenic cell cultures. The mRNAs encode a 34,000-dalton muscle tropomyosin isoform. The same mTm I gene expresses a different set of 1.7- and 1.9-kilobase mRNAs in thoracic flight muscle tissue of the adult. The thorax RNAs encode a new tropomyosin isoform resolved on two-dimensional gels. The structure of the gene has been determined, and we show that the embryonic and thoracic mRNAs are generated by alternative splicing. The alternate exon splicing patterns determine a different 27 amino acids at the carboxy-terminal end of the two tropomyosin isoforms. These results show that the carboxy-terminal domain of tropomyosin is highly regulated in determining tropomyosin function. The results also show that contractile protein isoforms can be generated by single as well as multiple genes.

Amino Acid Sequence↗

Identification of a cytoplasmic tropomyosin gene linked to two muscle tropomyosin genes in Drosophila.

A Drosophila cytoplasmic tropomyosin gene has been identified and is located on the same genomic DNA clone as two Drosophila muscle tropomyosin genes previously identified. A positive hybrid-selection translation assay using the subcloned gene and RNA from non-muscle cell sources yielded a protein with a size (Mr, 31,000) and isoelectric point (5.0) similar to vertebrate cytoplasmic tropomyosin. A modified protocol for the purification of vertebrate cytoplasmic tropomyosin was used to partially purify cytoplasmic tropomyosin from the Drosophila Kc cell line. The Kc cell protein was identified as a cytoplasmic form of tropomyosin on the basis of its size, isoelectric point, and crossreactivity with a polyclonal vertebrate antitropomyosin antibody in a two-step binding assay. The Kc cell cytoplasmic tropomyosin comigrates in two dimensions with the hybrid-selected in vitro translation product of the region 3 gene, and both proteins show a mobility shift in NaDodSO4/urea/polyacrylamide gels that is characteristic of vertebrate tropomyosins. The cytoplasmic tropomyosin gene hybridizes to both Drosophila muscle tropomyosin genes under decreased stringency conditions. This cross-hybridization spans several internal restriction endonuclease sites in each muscle tropomyosin gene and indicates an overall partial homology among the three Drosophila tropomyosin genes. These results show that Drosophila tropomyosins are encoded by a closely linked family of differentially regulated genes.

Animals↗

One- and two-dimensional polyacrylamide gel analysis of the heat shock proteins of the virilis group of Drosophila.

The heat shock proteins of the virilis group of Drosophila are analyzed by one- and two-dimensional polyacrylamide gel analysis. This group consists of the two closely related but distinct virilis and montana phylads. The analysis reveals that some of the heat shock proteins are highly conserved among the two phylads while others are not. The 83-, 72-, and 69-kdalton proteins comigrate in all species examined. There is, however, a noticeable trend toward greater molecular weight variability in the smaller heat shock proteins. In general, the heat shock protein patterns within each phylad follow the proposed phylogenetic relationships with some exceptions. D. ezoana and D. littoralis, both members of the montana phylad, exhibit heat shock protein patterns more similar to those of the virilis phylad. The data also demonstrate that the montana phylad has almost two times the heat shock allele members that the virilis phylad has. It is also shown that F1 and F2 hybrid flies of crosses between Drosophila species having different patterns of heat shock proteins show Mendelian segregation of alleles. After several generations of inbred growth, however, the pattern of heat shock protein synthesis in reciprocal hybrids each resembles that of the paternal parent. The implications of these findings are discussed.

Alleles↗

Reversible phosphorylation and dephosphorylation of the 20,000-dalton light chain of myosin during the contraction-relaxation-contraction cycle of arterial smooth muscle.

The myosin light chain of intact arterial smooth muscle displayed a cyclic phosphorylation-dephosphorylation and rephosphorylation in consort with contraction, followed by relaxation, followed by a second contraction of the muscle. Application of pharmacological contractile agonists and antagonists of vascular smooth muscle revealed that the level of light chain phosphorylation is related to the contractile state of the muscle. The central role of Ca2+ in regulation of light chain phosphorylation was shown by the effect of ethylene glycol bis(beta-aminoethyl ether)N,N,N',N'-tetraacetic acid (EGTA) in inhibiting contraction and light chain phosphorylation and in inducing relaxation and light chain dephosphorylation. Furthermore, studies with antipsychotic drugs, inhibitors of calmodulin, suggested that the Ca2+-dependent regulatory protein is intimately involved in both light chain phosphorylation and contraction of intact smooth muscle. In addition to the myosin light chain, several other proteins were also found to be phosphorylated in intact smooth muscle.

Animals↗

Translational control of protein synthesis in response to heat shock in D. melanogaster cells.

In response to elevated temperature, Drosophila cells synthesize a small set of proteins known as the heat-shock proteins, while synthesis of most other proteins ceases. In vitro translation has been used to demonstrate that the messenger RNAs encoding the normal (25 degrees) spectrum of proteins are not broken down or irreversibly inactivated in response to the temperature change. During the heat shock only the heat-shock mRNAs plus a small number of preexisting mRNAs are translated, while most other messages are stored and can be reactivated upon return of the cells to their normal temperature. After recovery from heat shock, cells translate both the normal mRNA and the remaining heat-shock mRNA. The translational control operating in intact cells has been reproduced in cell-free translation systems directed by purified mRNA from normal and heat-shocked cells. Lysates prepared from heat-shocked Drosophila cells preferentially translated the heat-shock messages, while the lysate made from normally growing Drosophila cells indiscriminately translated both normal and heat-shock messages. Therefore there must be stable alterations in the translational components of heat-shocked cells which are capable of causing selective translation of the heat-shock messages. In addition there must be information encoded in the heat-shock messages that allows their selection.

Animals↗

Cell-free protein synthesis in lysates of Drosophila melanogaster cells.

A procedure is described for preparing cell-free protein synthesizing lysates from Drosophila melanogaster tissue culture cells and embryos. Preparation of translationally active lysates from tissue culture cells is dependent on the presence of rat liver supernatant during cell lysis to inhibit ribonuclease activity. After micrococcal nuclease treatment of the lysate, protein synthesis is dependent on the addition of exogenous messenger RNA. The fidelity of translation is very high. The conditions for optimal translation have been determined. In addition, the effects on translation of a variety of supplements, including rat liver supernatant, have been analyzed. The products of translation by the Drosophila lysate have been compared with those of wheat germ extracts and of micrococcal nuclease treated rabbit reticulocyte lysates. Translation in vitro of bovine parathyroid hormone messenger RNA yielded two products tentatively identified as preproparathyroid hormone and proparathyroid hormone, as well as an unidentified third product. This result suggests that insect enzymes can accurately process mammalian precursor proteins.

Animals↗

Multiple actins in Drosophila melanogaster.

The tissue and developmental specificities of the three Drosophila isoactins, originally identified in primary myogenic cultures and in the permanent Schneider L-2 cell line, have been investigated. Of these three isoactins (I, II, and III), actins I and II are stable and actin III is unstable. Two-dimensional polyacrylamide gel electrophoretic analyses of total cellular extracts after 1-h [(35)S]methionine pulses were performed on a large variety of embryonic, larval, and adult muscle and nonmuscle tissues. The results suggest that isoactins II and III are generalized cellular actins found in all drosophila cell types. Actin I, on the other hand, is muscle-associated and is found exclusively in supercontractile muscle (such as larval body wall and larval and adult viscera) including primary myogenic cell cultures. Although actin I synthesis is not detectable during very early embryogenesis, it is detectable by 25 h and actin I is a major stable actin in all larval muscle tissues. Actin I is synthesized in reduced amounts relative to the other actins in late third instar larvae but is again a major product of actin synthesis in the adult abdomen. A stable actin species with the same pI as actin III has been identified in the adult thorax and appears to be unique to flight muscle tissue. This new stable form of thoracic actin may be the result of a stabilization of the actin III found in other tissues or may be an entirely separate gene product.

Actins↗

Myogenesis in primary cell cultures from Drosophila melanogaster: protein synthesis and actin heterogeneity during development.

Muscle cell cultures from Drosophila melanogaster were obtained by plating dissociated gastrula stage embryo cells on protamine-treated culture dishes. They myogenic cells in these cultures fuse to form multinucleated pulsating cells by 15 hr after plating. An analysis of protein synthesis during myogenesis in these cultures, as measured by the incorporation of 35S-methionine and analyzed by two-dimensional polyacrylamide gel electrophoresis, showed profound changes in the pattern of protein synthesis. This analysis enabled us to identify three distinct classes of proteins. Class A proteins, the most abundant, are synthesized continuously throughout myogenesis, class B proteins are those proteins whose synthesis is initiated during myogenesis and continued throughout development; class C proteins are those synthesized at specific times during development. In addition, three forms of actin have been identified in these cultures. Actin I, which shows increased synthesis concomitant with the myogenic development in these cultures, is apparently a muscle-specific form of actin. Actin II, the predominant "cytoplasmic" form of actin in the nonmuscle Schneider cell line 2, is also the major form in the gastrula cultures before differentiation begins. Synthesis of this actin continues in the myogenic cultures. Actin III is a rapidly turning over form of actin which does not accumulate in either the Schneider cells or the myogenic cultures.

Actins↗

Tissue-specific forms of actin in the developing chick.

Actin has been identified in nonmuscle and muscle tissues as a highly conserved homogeneous protein. We have identified and characterized actin from embryonic and adult chick brain and muscle, and have compared these actins by SDS and urea/SDS gradient polyacrylamide gel electrophoresis. In the presence of SDS alone, embryonic or adult brain and muscle actin co-migrate as homogeneous polypeptides. Electrophoresis of both actins in the presence of urea and SDS, however, reveals that brain and muscle actins migrate with distinctly different mobilities. Actin from embryonic thigh muscle at different stages of development migrates as two separate components. In early muscle development, only the "brain" type actin is present. As muscle development progresses the "muscle" type actin becomes relatively more abundant, so that by day 20 of embryonic development, "muscle" actin becomes predominant. These results may be interpreted as due to differences in the primary structure of actin.

Actins↗

Chick cytoplasmic actin and muscle actin have different structural genes.

Actins isolated from embryonic chick brain and muscle differ in mobility when subjected to electrophoresis in gels containing urea and sodium dodecyl sulfate. Experiments were carried out to determine whether these actins are products of different structural genes and differ in primary amino acid sequence, or whether they are products of the same structural gene but are different because of post-translational modification. Messenger RNA from brain and muscle tissue was used to direct cell-free protein synthesis in wheat germ extracts. The synthesized actins were identified by conversion from globular to fibrous actin and by two-dimensional chromatographic analysis of tryptic peptides. The differences in electrophoretic mobility of brain compared to muscle actin were maintained in the cell-free protein synthetic products. Therefore, these mobility differences were not due to post-translational modification. It was concluded that brain and muscle actin are coded by different messenger RNAs and therefore arise from different structural genes. In addition, messenger RNA from 13- and 16-day embryonic thigh muscle directed the synthesis of both brain- and muscle-type actins, suggesting that muscle cell differentiation involves the regulation of at least two different actin genes.

Actins↗