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Biomedical subjects

T C Hall

Publications and source records attributed to T C Hall.

At least 37 records · Page 2Linked to original sources

Paraneoplastic syndromes: mechanisms.

Neoplasms may affect distant host tissues, but they always involve normal physiologic mechanisms. Van R. Potter said that "Oncogeny is blocked ontogeny," so tumors are committed to their organ anlagen. Paraneoplastic mediators are appropriate to their blocked anlagen stages. Mediators may have autocrine, paracrine, or endocrine actions. However, their release and distribution depend on the mode of cell death, and the spatial relations to host vascularity. Invasiveness and metastasis are means of normal embryonic development, and not new cancer-specific properties. Nor do human cancers acquire new foreign genetic information; thus, they cannot express neoantigens nor be recognized by the host. However, tumors breach the blood-brain barrier and basement membrane separations of ectoderm from mesenchyme and release "forbidden" self-antigens, to which host immunocytes may respond causing cell- and antibody-mediated autoimmunity. This can damage normal host tissues by a "bystander" effect. Paraneoplastic mechanisms can also be analyzed as arising from three-way interactions between cells blocked in ontogeny, their molecular messengers, and the host tissues they target.

Apoptosis↗

A 68 bp element of the beta-phaseolin promoter functions as a seed-specific enhancer.

In beans, expression of the beta-phaseolin gene (phas), encoding the major seed storage protein of bean (Phaseolus vulgaris) is confined to the cotyledons of developing embryos. Phaseolin has not been detected in the endosperm, which remains liquid and is lost early in development. However, fusion constructs between the phas promoter and the gus-coding region yield expression in both embryo and endosperm of developing seeds from transgenic tobacco (Nicotiana tabacum) plants. Although elements extending 1470 bp upstream of the transcription start site are known to modulate phas expression, the proximal 295 bp (p295) are sufficient to drive high levels of seed-specific GUS activity. This region was dissected into three elements: a 68 bp element (seed specific enhancer, SSE: -295 to -227), a middle region (-227 to -109) and a basal phas promoter (-109 to +20: p109). Different promoter constructs containing the SSE or middle region upstream of p109 or a CaMV 35S basal promoter (-64 to +6) were fused to gus. Each construct was expressed in seed, but not in vegetative tissues. Use of the various phas promoter regions yielded notable differences in relative GUS activity in embryo or endosperm. Addition of both the SSE and middle region resulted in higher activity than the sum of adding either element alone to p109, indicating synergistic interaction between these elements. Seeds from plants transformed with the proximal 227 bp of promoter (p227) showed embryo-specific GUS activity. In contrast, constructs containing two copies of the SSE element were preferentially expressed in the endosperm. These results illustrate the modular nature of the proximal phas promoter, where distinct elements contribute to high levels of expression in different parts of the seed.

Base Sequence↗

Analysis of kafirin promoter activity in transgenic tobacco seeds.

Sequences corresponding to 855 bp of 5' promoter region and the transit peptide from lambdaGK.1,a genomic clone encoding a 22 kDa alpha-kafirin seed protein from sorghum, were translationally fused to a cloned beta-glucuronidase (GUS) coding sequence from uidA and transferred to tobacco via Agrobacterium tumefaciens-mediated transformation. No GUS expression was detectable at any stage of growth in stems or leaves of these plants. However, GUS expression was detected in both embryo and endosperm tissues of resulting tobacco seeds 10-15 days after flowering. Dissected tissues indicate endosperm expression was localized within the bulk endosperm and not within the parenchyma cell layer underlying the integument. These studies also demonstrate that within dissected tobacco embryos, expression from the kafirin promoter was restricted to the mesocotyl region.

Cloning, Molecular↗

Intron position affects expression from the tpi promoter in rice.

A series of promoter-GUS fusion constructs containing a portion of the rice triosephosphate isomerase (tpi) promoter, the first tpi intron, and the gene encoding bacterial beta-glucuronidase (GUS) were made. These constructs were electroporated into rice protoplasts and transient expression was monitored. Inclusion of the first intron from the rice tpi gene enhanced expression of the GUS gene from the tpi promoter when it was placed 5' of the GUS gene. When the tpi intron was placed in the 3'-untranslated region no enhancement of GUS gene expression was observed, indicating the importance of position in intron-mediated enhancement of gene expression.

Amino Acid Sequence↗

Interaction of host proteins with the plus-strand promoter of brome mosaic virus RNA-2.

The binding of five barley proteins (Mr: 37, 36, 35, 34, and 30 kDa) to the ICR2 motif present at the 5' end of brome mosaic virus (BMV) RNA-2 was identified using UV cross-linking. Evidence that the interaction is specific included the observation that these proteins did not recognize a similar-size RNA fragment transcribed from a nonviral (beta-glucuronidase) gene, nor did they bind to the 3' end of the plus strand of RNA-3. Replication-defective BMV RNA-2 mutants bearing substitution mutations at nucleotides 9 and 10 of the ICR2 motif were used to show that these positions were involved in the interaction of the five barley proteins with BMV RNA-2. Surprisingly, the profile of barley proteins interacting with the 3' end of the minus strand of RNA-2 was similar to that seen for the 5' end of the plus strand. Further, the profile of proteins binding to minus-sense probes bearing substitution mutations in the ICR2 region differed from that found for the wild-type sequence. These findings support the concept that host proteins are involved in genome replication and that their ability to interact with both plus and minus strands of the viral RNA is probably involved with the initiation of plus-strand synthesis.

Base Sequence↗

Characterization of a rice gene family encoding root-specific proteins.

Two cDNA clones (RCc2 and RCc3) corresponding to mRNAs highly expressed only in root tissues of rice (Oryza sativa L.) seedlings were characterized. Respectively, they encode polypeptides of 146 (14.5 kDa) and 133 amino acids (13.4 kDa) that share high (> 70%) sequence similarity with a polypeptide encoded by a cDNA (ZRP3) encoding an mRNA preferentially expressed in young maize roots. Genomic DNA blot analysis revealed that they are members of a small gene family and RCg2, the gene corresponding to RCc2, was isolated. A 1656 bp 5'-upstream sequence of RCg2 was translationally fused to a beta-glucuronidase (GUS) reporter gene and stable introduction of the chimeric construct into rice was confirmed by PCR and genomic DNA blot analyses. Histochemical analysis of transgenic rice plants containing the full-length chimeric gene showed high levels of GUS activity in mature cells and the elongation and maturation zones of primary and secondary roots, and in the root caps, but no GUS activity was detected in root meristematic regions. Surprisingly, high GUS activity was also detected in leaves of the same plants. This raises the possibility that the RCg2 5'-upstream element may not be sufficient for the proper spatial control of root specificity in transgenic rice.

Amino Acid Sequence↗

Complete sequence of the binary vector Bin 19.

Despite the widespread use of Bin 19 as a vector for plant transformation, detailed sequence information on its T-DNA region has only recently become available. We now show that the non-T-DNA region, like the T-DNA region, contains several superfluous insertions and find that some functional elements may not contain optimal sequences. Knowledge of the complete 11,777 bp sequence will aid in the construction of exceptionally efficient derivative vectors of approximately half this size. Precise knowledge of restriction sites and removal of unnecessary sequences will facilitate plasmid manipulations and plant transformation.

Base Sequence↗

Common replication strategies emerging from the study of diverse groups of positive-strand RNA viruses.

Studies using brome mosaic virus (BMV), Sindbis virus and poliovirus have provided evidence that disparate groups of plant and animal positive strand RNA viruses have remarkably similar replication strategies. The conservation of several functional domains within virus-encoded nonstructural proteins implies that, although the precise character of these and interacting host components varies for each virus, they employ similar mechanisms for RNA replication. For (+) strand replication, similarities in cis-acting sequence motifs and RNA secondary structures within 5' termini of genomic (+) strands have been identified and have been shown to participate in binding of host factors. The model presented for replication of BMV RNA suggests that binding of these factors to internal control region (ICR) sequence motifs in the double-stranded replication intermediate releases a single-stranded 3' terminus on the (-) strand that may be essential for initiation of genomic (+) strand synthesis. ICR sequences internal to the BMV genome were also found to be required for efficient replication. Asymmetric production of excess genomic (+) over (-) strand RNA, characteristic of all (+) strand viruses, may be accomplished through transition of the replicase from competence for (-) to (+) strand synthesis by the recruitment of additional host factors.

Bromovirus↗

Cyclophilins are encoded by a small gene family in rice.

cDNA clones were isolated and sequenced that encode two related but distinct rice cyclophilins, Cyp1 and Cyp2. The predicted amino acid sequences of each are 72% identical to human T-cell cyclophilin. Genomic DNA gel blot analysis suggests cyclophilins in rice are encoded by a small, 6-10-member gene family. Both Cyp1 and Cyp2 have seven extra amino acid residues in the N-terminal portion of the proteins that are not found in human or other non-plant cyclophilins, suggesting that this is a characteristic of plant cyclophilins. Cyp2 was expressed as 1000 nt transcripts in leaf and root tissues. Cyp1 was expressed as 800 and 900 nt transcripts. Whereas the 900 nt transcript was present in both root and leaf mRNA, the 800 nt transcript was only detectable in root mRNA. A genomic clone of Cyp2 was isolated, sequenced and shown to lack introns. A single transcriptional start site was identified 27 residues downstream of a putative TATA box. The 5' end of the transcript was shown to contain a region rich in adenyl residues (27 of 35). This region would not be conducive to secondary structure formation, which raises the possibility that Cyp2 might be preferentially translated during stress conditions.

Amino Acid Isomerases↗

Internalization of an intact doxorubicin immunoconjugate.

An immunoconjugate between doxorubicin and anti-(carcinoembryonic antigen) (CEA) was prepared by using aminodextran (M(r) = 40,000) as the intermediate carrier, and the carbohydrate moiety of the antibody as the linking site. The resulting immunoconjugate was subjected to an in vitro evaluation for the internalization on the target cells (Lo Vo), and compared to that of unconjugated antibody, as well as the cellular uptake of unconjugated doxorubicin. The internalization was evaluated microscopically by following the translocation of the red fluorescence of doxorubicin and the green fluorescence of the fluorescein-isothiocyanate-labeled goat anti-(mouse Ig) antibody, which visualizes the location of the primary mouse antibody. Anti-CEA monoclonal antibody (NP-4) was found to internalize into Lo Vo cells. The immunoconjugate made with this antibody was similarly internalized, and the doxorubicin was found to distribute with the primary antibody. The cell surface and cytoplasm were the major compartments of their distribution. These results indicate that the drug molecules were indeed delivered into the cells by the antibody as an intact conjugate. Unconjugated doxorubicin, on the contrary, was quickly absorbed by the cells and concentrated in the nucleus within 30 min, and never showed a distribution in the cytoplasm or cell membrane as in the nucleus by this procedure. The intermediate drug conjugate, doxorubicin-dextran, did not show internalization. The internalization of NP-4 antibody (or the doxorubicin conjugate) was also confirmed by studying the intracellular catabolism of the cell-bound antibody (or conjugate). The release of the degraded antibody by the cells, as differentiated by trichloroacetic acid precipitation techniques, was considered an indication of internalization. Lysosomes were involved in the degradation, since the process was markedly inhibited in the presence of the lysosomal enzyme inhibitor, ammonium chloride.

Antibodies, Monoclonal↗

Minus sense transcripts of brome mosaic virus RNA-3 intercistronic region interfere with viral replication.

Interference with virus replication through the use of defective viral sequences is providing new insight to replication strategies and novel approaches for induced resistance. Because replication of brome mosaic virus (BMV) is potentiated by the intercistronic region of RNA-3, we examined the effect of adding various (-)sense RNAs corresponding to this region in co-transfections with wild type BMV RNAs. Progeny accumulation in barley protoplasts transfected with RNAs 1+2 was decreased by 90% in the presence of (-)RNA-3 delta HindIII, the longest (-)sense transcript tested, and by 85% when RNA-3 was also present. This trans interference was concentration dependent, and the use of deletion derivatives of (-)RNA-3 delta HindIII revealed that previously identified regulatory sequences within the intercistronic region were responsible for the observed interference. These deletion mutants were found to be of differing stabilities and several served as effective substrates for host-encoded polymerase to yield complementary (+)strands. Indeed, it is possible that the copying of viral RNA by the host polymerase serves as a hybrid arrest mechanism for discriminating against viral RNA functions. However, neither the ability of these sequences to serve as templates for host polymerase nor their (+)strand products contributed to the interference phenomenon, which may provide a new approach for engineering resistance to viral infection.

Capsid↗

Interference with brome mosaic virus replication by targeting the minus strand promoter.

Sense and antisense strategies for interfering with the replication of brome mosaic virus (BMV) were examined. The effects of 200 nucleotide-long sense and antisense transcripts, corresponding to the viral 3' end (-) strand promoter, on the accumulation of progeny viral RNAs were studied by co-inoculation with wildtype BMV RNAs. Progeny accumulation in barley protoplasts transfected with either sense or antisense transcripts of the (-) strand promoter and BMV RNAs-1 and -2 was decreased by more than 90%, and by 60 to 80% when RNA-3 was also present. This trans interference was concentration-dependent, and reduced both (+) and (-) strand progeny accumulation to a similar extent. The appearance of complementary (-) strands indicated that sense interfering transcripts could serve as templates for (-) strand synthesis, and the use of deletion mutants revealed that the observed interference was in part mediated by this template activity. The reproducibility of the protoplast assay used here allows rapid evaluation of interference strategies and comparisons to be made of alternative approaches to engineered resistance. The results presented here suggest that targeting viral (-) strand promoters with sense and antisense transcripts may be an effective method for engineering plant resistance to viral infection.

Base Sequence↗

Cytosolic triosephosphate isomerase is a single gene in rice.

A cDNA clone encoding rice (Oryza sativa L.) cytosolic triosephosphate isomerase (TPI), an important glycolytic enzyme, was isolated and characterized. The clone (pRTPI-6) contains an open reading frame of 759 base pairs, encoding a polypeptide chain of 253 amino acid residues (M(r) 27,060). The identity of this clone was defined by its high homology (85% nucleotide sequence and 89% amino acid sequence identical match) with a maize mRNA sequence encoding the cytosolic TPI and with TPIs from other species. Genomic DNA blot analysis using the cDNA as a probe showed that the cytosolic TPI gene is present as a single copy per haploid rice genome, as opposed to that found in maize, in which multiple TPI gene copies exist. A single TPI mRNA species of about 1100 nucleotides was detected by gel blot hybridization analysis of RNA isolated from root, culm, and leaf tissues, indicating that its expression is ubiquitous. Based on sequence comparison and molecular analysis, we propose that the chloroplast-located TPI may be encoded by divergent structural nuclear genes in rice.

Amino Acid Sequence↗

Identification of domains in brome mosaic virus RNA-1 and coat protein necessary for specific interaction and encapsidation.

Even though many single-stranded RNAs are present in the cytoplasm of infected cells, encapsidation by brome mosaic virus (BMV) coat protein is specific for BMV RNA. Although the highly conserved 3' region of each of the three BMV genomic RNAs is an attractive candidate for the site of recognition by the coat protein, band shift and UV cross-linking assays in the presence of specific and nonspecific competitors revealed only nonspecific interactions. However, BMV RNA-1 formed a retarded complex (complex I) with the coat protein in the absence of competitors, and two domains of RNA-1 that specifically bound coat protein in a small complex (complex II), presumably early in the encapsidation process, were identified. Strong nonspecific, cooperative binding was observed in the presence of high concentrations of coat protein, suggesting that this provides the mechanism leading to rapid encapsidation seen in vivo. In contrast, no binding to a coat protein mutant lacking the N-terminal 25 amino acids that has been shown to be incapable of encapsidation in vivo (R. Sacher and P. Ahlquist, J. Virol. 63:4545-4552, 1989) was detected in vitro. The use of deletion mutants of RNA-1 revealed the presence of domains within the coding region of protein 1a that formed complexes with purified coat protein. One deletion mutant (B1SX) lacking these domains was only slightly more effective in dissociating RNA-1-coat protein complexes than were nonspecific competitors, further suggesting that regions other than the 3' end can participate in the selective encapsidation of BMV RNAs.

Bromovirus↗

Recombination and polymerase error facilitate restoration of infectivity in brome mosaic virus.

The tRNA-like structure present in the 3' noncoding region of each of the four virion RNAs of brome mosaic virus possesses a conserved A-67-U-A-65 (67AUA65) sequence. Four mutations in this region (67UAA65, 67GAA65, and 67CAA65, each with a double base change, and 67GUA65, containing a single point mutation), previously shown in vitro to be defective in minus-strand promoter function, were introduced into full-length genomic RNAs 2 and 3, and their replicative competence was analyzed in barley protoplasts. All four RNA 3 mutants were capable of replication, although progeny plus-sense RNA 3 accumulation was only 12 to 42% of that of the wild type. Replication of RNA 2 transcripts bearing these mutations was even more severely debilitated; the accumulation of each mutant progeny plus-strand RNA 2 was < 10% of that of the wild type. Analysis of mutant RNA 3 progeny recovered from local lesions induced in Chenopodium hybridum and systemic infections in barley (Hordeum vulgare) plants revealed that the mutant base at position 67 from the 3' end had in each case been modified to an A. These changes generated RNAs with functional pseudorevertant (67AAA65 for mutants 67UAA65, 67GAA65, and 67CAA65) or revertant (67GUA65-->67AUA65) sequences. In most instances, the presence of internal markers permitted discrimination between polymerase error and RNA recombination as the process by which sequence restoration occurred. The pseudorevertant sequence was found to be capable of persistence during subsequent propagation in plants when present on RNA 3 but not when present on RNA 2. These data document the fluidity of the RNA genome and reveal situations in which polymerase error or recombination can function preferentially to restore an optimal sequence. They also support the concept that RNA viruses frequently exist as quasispecies and have implications concerning evolutionary strategies for positive-strand RNA viruses.

Base Sequence↗

Contributions of the brome mosaic virus RNA-3 3'-nontranslated region to replication and translation.

Sequences upstream of the 3'-terminal tRNA-like structure of brome mosaic virus RNAs have been predicted to fold into several stem-loop and pseudoknot structures. To elucidate the functional role of this upstream region, a series of deletions was made in cDNA clones of RNA-3, a genomic component not required for replication. These deletion mutants were transcribed in vitro and cotransfected with RNA-1 and RNA-2 into barley protoplasts. Deletion of single stem-loop structures gave progeny retaining near-wild-type accumulation levels. Constructions representing deletion of two or three stem-loops substantially lowered the accumulation of progeny RNA-3 relative to wild-type levels. RNA-3 mutants bearing deletions of longer sequences or of the entire region (delta PsKs RNA-3) replicated poorly, yielding no detectable RNA-3 or RNA-4 progeny. Levels of RNA-1 and RNA-2, in the presence of a mutant RNA-3, were found to increase relative to the accumulation observed in a complete wild-type transfection. The stability of delta PsKs RNA-3 in protoplasts was somewhat lower than that of wild-type RNA during the first 3 h postinoculation. Little difference in translatability in vitro of wild-type and RNA-3 constructs bearing deletions within the stem-loop region was observed, and Western immunoblot analysis of viral coat protein produced in transfected protoplasts showed that protein accumulation paralleled the amount of RNA-4 message produced from the various sequences evaluated. These results indicate that the RNA-3 pseudoknot region plays a minor role in translational control but contributes substantially to the overall replication of the brome mosaic virus genome.

Base Sequence↗

Unique nucleotide differences in the conserved 3' termini of brome mosaic virus RNAs are maintained through their optimization of genome replication.

To explore the functionality and conservation of specific base differences in the 3' 200 nucleotides of brome mosaic virus (BMV) RNA-1 (1t) and RNA-2 (2t) with respect to the 3' end of RNA-3 (3t), all possible permutations were used to exchange these regions among the genomic RNAs. When all RNAs bore the 1t promoter, total RNA accumulation was only 15% of wild type; when the 2t or 3t promoter was present on all three RNAs total RNA accumulation was reduced to 30 or 35% of wild type. Two major processes were found to be involved in these dramatic differences. The first reflects the distinct and competitive strengths of the (-)-strand promoters in these sequences, which were shown to have a 3t greater than 1t greater than 2t hierarchy. The second is the importance of the context of upstream sequences in which the 3' promoter is placed. Important contributions of the 3t promoter in preferential amplification of RNA-3 were apparent from changed RNA 1 + 2: 3 ratios and reduced progeny accumulation from transfections using the RNA-3/1t chimera. These interactions contribute to temporal modulation as well as overall optimization of viral RNA functions, leading to selection and maintenance of the specific base differences present in the otherwise highly conserved 3' 200 nucleotides of each genomic RNA component of BMV.

Base Composition↗