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Biomedical subjects

J F Battey

Publications and source records attributed to J F Battey.

87 records · Page 5Linked to original sources

Swiss 3T3 mouse embryo fibroblasts transfected with a human prepro-GRP gene synthesize and secrete pro-GRP rather than GRP.

A prepro-gastrin-releasing peptide (GRP) gene was introduced into Swiss 3T3 mouse embryo fibroblasts by DNA transfection in an attempt to establish autocrine growth stimulation. Clonal transfectants expressed varying amounts of GRP encoding mRNA. They synthesized and secreted a approximately 15-kd pro-GRP hormone but not fully processed 2.8-kd GRP. Accordingly, no changes in growth properties were associated with GRP gene expression. We postulate that Swiss 3T3 fibroblasts lack the enzymes necessary to process significantly pro-GRP into biologically active peptides and that this deficiency may be responsible for the failure to establish autocrine growth stimulation in the transfected cells.

Animals↗

Posttranslational processing of endogenous and of baculovirus-expressed human gastrin-releasing peptide precursor.

The 27-amino-acid gastrin-releasing peptide (GRP1-27) is a neuropeptide and growth factor that is synthesized by various neural and neuroendocrine cells. The major pro-GRP hormone (isoform I) contains both GRP1-27 and a novel C-terminal extension peptide termed pro-GRP31-125. In order to define potentially active neuropeptides that could be generated from this novel protein domain, we analyzed the posttranslational processing of endogenous human pro-GRP1-125 in a small-cell lung cancer cell line. Because such studies are much easier in an overexpression system, we investigated at the same time the posttranslational processing of baculovirus-expressed human pro-GRP1-125 in an insect ovary cell line. In the small-cell lung cancer cell line, GRP1-27 was cleaved as expected from the endogenous prohormone at a pair of basic amino acids (29 and 30) and alpha-amidated at its C-terminal methionine; however, a number of novel peptides were generated by additional cleavages in the pro-GRP31-125 domain. In the insect ovary cell line, GRP1-27 was cleaved from the expressed prohormone by a different mechanism, as were a number of other peptides that appeared to be similar in size to those produced by the human neuroendocrine tumor cell line. These data show for the first time that an insect ovary cell line that is widely used to overexpress proteins can process a human neuropeptide precursor. They also reveal the existence of novel pro-GRP-derived peptides that are candidates for biologically active ligands.

Amino Acid Sequence↗

Gastrin-releasing peptide gene-associated peptides are expressed in normal human fetal lung and small cell lung cancer: a novel peptide family found in man.

Mammalian gastrin-releasing peptide (GRP) is found in cells of neuroendocrine and neural origin, and GRP mediates a variety of physiological and trophic responses when it binds to high affinity cell surface receptors on effector cells. Analysis of cDNA clones derived from prepro-GRP mRNAs predict the concurrent expression of a unique series of peptide hormones, the GRP gene-associated peptides (GGAPs). Alternative RNA splicing of the primary GRP gene transcript results in mRNAs that could encode 3 distinct forms of GGAPs. Using specific antisera directed against synthetic peptides representing portions of the predicted GGAPs, we found multiple GGAP forms in the endocrine cells of human fetal lung and in human small cell lung cancer cells (SCLC). Within a single pulmonary endocrine cell, at least 2 of these 3 predicted forms could be demonstrated using immunohistochemical techniques. In addition, concordant expression of GRP and GGAPs was found in 10 SCLC cell lines and 3 human SCLC tumors. These findings establish GGAPs as a novel peptide family in man and warrant further investigation into their potential role in normal and malignant growth.

Amino Acid Sequence↗

The rat prepro gastrin releasing peptide gene is transcribed from two initiation sites in the brain.

The gastrin-releasing peptide (GRP) is a gastrointestinal hormone, a neuropeptide, and a growth factor. To study systematically GRP gene expression in embryonic and in adult mammals, we cloned the rat prepro-GRP gene from brain cDNA libraries. Analysis of these cDNA clones along with organ-specific mRNA studies show that there are prepro-GRP transcripts initiating in the brain, but not in the duodenum, from a novel promoter. The latter is located at least four hundred base pairs upstream from a second promoter that is active in both duodenum and in brain. In contrast to human prepro-GRP, there is no alternative processing of the 3'-region of rat brain and duodenum prepro-GRP transcripts; hence, these mRNAs encode a single 147 amino acid prepro-GRP hormone that is homologous to the third isoform of the human prepro-GRP hormone.

Amino Acid Sequence↗

Expression of biologically active and antigenically authentic parainfluenza type 3 virus hemagglutinin-neuraminidase glycoprotein by a recombinant baculovirus.

The hemagglutinin-neuraminidase (HN) gene of human type 3 parainfluenza virus has been inserted into a baculovirus expression vector under the control of the polyhedrin promoter. HN protein produced in insect cells by the recombinant baculovirus appeared to be glycosylated, was transported to the cell surface, and was biologically active. All of the HN epitopes previously mapped functionally to a region(s) involved in neuraminidase and/or hemagglutination activities were conformationally unaltered on the recombinant protein. The HN produced in this system also induced a protective immune response in immunized cotton rats. From these studies we conclude that the HN expressed in insect cells represents a source of authentic HN glycoprotein suitable for structural analysis and immunization.

Animals↗

Human creatine kinase-B complementary DNA. Nucleotide sequence, gene expression in lung cancer, and chromosomal assignment to two distinct loci.

Using a small cell lung cancer (SCLC) cDNA library, we obtained clones for the creatine kinase-B (CK-B) gene and determined the nucleotide sequence for the protein coding and 3' untranslated region (3' UT). The human translated protein spans 381 residues and the amino acid homology with rabbit CK-B is greater than 98%. We have demonstrated that a nucleic acid probe encompassing the protein coding region will also hybridize to CK-M sequences while a probe derived from the 3' UT region is CK-B specific. When a B-isoenzyme specific sequence is hybridized to Eco RI cut genomic DNA, two independent restriction fragment polymorphisms are detected. We have subsequently localized these two CK-B homologous sequences to chromosomes 14q32 and 16. Finally, we show that increased levels of CK-B seen in SCLC are not accompanied by gene amplification or rearrangement, but reflect a greatly enhanced level of CK-B specific mRNA that is not seen in non-SCLC lines thus far examined.

Amino Acid Sequence↗

Expression of the gastrin-releasing peptide gene in human small cell lung cancer. Evidence for alternative processing resulting in three distinct mRNAs.

cDNA clones to human prepro-gastrin-releasing peptide (prepro-GRP) mRNA detect synthesis of prepro-GRP-related transcripts in 4 of 7 small cell lung cancer (SCLC) cell lines and 1 of 2 metastatic SCLC tumors examined. A correlation is noted between prepro-GRP gene expression and the occurrence of bombesin-related immunoreactivity in SCLC cell lines. Examination of the structure of prepro-GRP transcripts found in SCLC reveals three types of prepro-GRP mRNA which differ in the structure of a putative GRP-associated peptide in the pro-GRP precursor. The subcellular distribution of prepro-GRP-related RNAs and structure of SCLC-derived prepro-GRP cDNA clones suggest that all three types of transcript could function as mRNAs, although there are differences in the prevalence of the different RNA types in different cellular compartments. Comparison of the sequence of cDNA clones with the sequence of a genomic prepro-GRP clone reveals that the three forms of prepro-GRP mRNA arise from a single primary transcript which undergoes alternative processing from two splice donor sites to two splice acceptor sites. The predicted amino acid sequence of the translated products of the three mRNAs are quite distinct, leading to predicted pro-GRP molecules of differing structure.

Amino Acid Sequence↗

Human small-cell lung cancers show amplification and expression of the N-myc gene.

We have found that 6 of 31 independently derived human small-cell lung cancer (SCLC) cell lines have 5- to 170-fold amplified N-myc gene sequences. The amplification is seen with probes from two separate exons of N-myc, which are homologous to either the second or the third exon of the c-myc gene. Amplified N-myc sequences were found in a tumor cell line started prior to chemotherapy, in SCLC tumor samples harvested directly from tumor metastases at autopsy, and from a resected primary lung cancer. Several N-myc-amplified tumor cell lines also exhibited N-myc hybridizing fragments not in the germ-line position. In one patient's tumor, an additional amplified N-myc DNA fragment was observed and this fragment was heterogenously distributed in liver metastases. In contrast to SCLC with neuroendocrine properties, no non-small-cell lung cancer lines examined were found to have N-myc amplification. Fragments encoding two N-myc exons also detect increased amounts of a 3.1-kilobase N-myc mRNA in N-myc-amplified SCLC lines and in one cell line that does not show N-myc gene amplification. Both DNA and RNA hybridization experiments show that in any one SCLC cell line, only one myc-related gene is amplified and expressed. We conclude that N-myc amplification is both common and potentially significant in the tumorigenesis or tumor progression of SCLC.

Carcinoma, Small Cell↗

Molecular genetic analysis reveals chromosomal deletion, gene amplification, and autocrine growth factor production in the pathogenesis of human lung cancer.

These studies of lung cancer suggest that a number of molecular mechanisms may be important in the pathogenesis of lung cancer, especially SCLC. An inherited predisposition to develop SCLC may correlate with a nonfunctional, recessive allele for a gene (McKusick #18228, McKusick 1986) that maps to chromosome region 3p(14-23). Individuals at risk would be heterozygous for this allele in their germ line, carrying one copy of a normal functional gene and one mutant, recessive allele. Exposure to carcinogens, in particular cigarette smoke, can produce somatic genetic changes such as chromosomal deletion or gene mutation in the functional allele of this gene, unmasking the nonfunctional allele. Loss of this normal gene may alter the regulation of cell growth, perhaps by allowing the deregulated expression of proto-oncogenes of the myc family, or autocrine growth factors such as GRP and/or its receptor. Alternatively, loss of this gene may result in the cell returning to a less differentiated developmental state where growth regulation is less stringent. Persons with this mutant gene should be at increased risk to develop SCLC, and further RFLP analysis of the 3p region in SCLC may allow identification of specific haplotypes with increased risk of developing lung cancer. If this notion is correct, one might expect to find an increased frequency of second tumors in lung cancer patients and the presence of similar chromosomal deletions in second tumors arising in SCLC patients. In this regard, cured lung cancer patients, including those with SCLC, have a tenfold increased risk of developing a second lung cancer (Fontana 1977; Cortese et al. 1983; Johnson et al. 1986b). In fact, a chromosome 3p deletion along with other chromosomal abnormalities was identified in acute erythroleukemia cells arising in a long-term survivor of SCLC (Bradley et al. 1982), implicating this same region in the pathogenesis of both tumors. Other predictions include the correction of at least a portion of the defect by introducing a normal chromosome 3 into SCLC cells. While c-myc is expressed in many fetal and adult tissues, high-level expression of N- and L-myc is very restricted as to tissue and stage in the developing mouse, with N-myc expressed in the fetal but not adult lung, whereas the lung was the only adult tissue where L-myc expression was detected (Zimmerman et al. 1986). Could these patterns provide a clue to the differential expression of c-, N-, and L-myc found in different lung cancers (Nau et al. 1986)?(ABSTRACT TRUNCATED AT 400 WORDS)

Cell Differentiation↗

Chromosomal deletion, gene amplification, alternative processing, and autocrine growth factor production in the pathogenesis of human lung cancer.

Molecular and cell biologic studies of a large number of lung cancer cell lines of all histologic types have revealed several mechanisms active in the pathogenesis of these cells. Small cell lung cancer (also called "oat cell" lung cancer) has a deletion involving chromosome region 3p(14-23) that is confirmed by DNA restriction fragment length polymorphisms analysis (studies done in collaboration with Dr. Susan Naylor). Several lung cancers of both small cell and non-small cell type (including adeno- and squamous cell lung cancer) express the proto-oncogenes c-, N-, or L-myc, and in some cases more than one of these family members. N-myc appears restricted in its expression to the small cell lung cancer type while c-myc and L-myc can be expressed in both small cell and non-small cell lung cancers. Many lung cancers of all histologic types also express large amounts of p53, which are not correlated with the amount or type of myc gene product expressed. In small cell lung cancer, high levels of myc gene expression are usually associated with gene amplification, and not uncommonly there is rearrangement of some of the amplified copies. In non-small cell lung cancer, expression without amplification or rearrangement of myc genes is seen. In contrast, high level expression of p53 is not associated with gene amplification in any lung cancer type. In addition, to these proto-oncogenes acting at a presumed nuclear locus, there is increased expression of various ras family members and the c-raf-1 proto-oncogene (in collaboration with Dr. Ulf Rapp). Lung cancer cells in tissue culture can grow in medium without serum and few or no other growth factors added. Thus, it appears that lung cancer cells can produce their own growth factors which can act in an "autocrine" fashion. The best characterized example of this is gastrin releasing peptide (GRP, also called bombesin) produced by small cell lung cancer. In at least some small cell lung cancers, interference with GRP action by specific monoclonal antibodies results in inhibition of tumor cell growth in culture and in nude mouse xenografts. Thus, constitutively expressed GRP gene may function as a cellular oncogene under certain circumstances in small cell lung cancer. Based on these observations we are proposing to test monoclonal anti-GRP antibodies in patients.

Chromosome Deletion↗

Perturbation and change in coral reef communities.

Ninety-six percent of surveyed shallow-water Dry Tortugas reef corals died during the severe winter of 1976-1977. Data from skeletal stains indicate that death occurred during the mid-January intrusion of 14 degrees C water onto the reef. In deeper water, community parameters such as percent cover, species number, and relative abundance showed no significant change. However, an analysis of competitive interactions at the growing edges of adjacent colonies reveals a 70% reduction in space competition during this environmental disturbance. These results can explain high variability in the growth rate of Floridian reefs and demonstrate the importance of obtaining long-term spatial information to interpret successional dynamics of complex communities.

Journal Article↗

Distribution of two distinct messenger ribonucleic acids encoding gastrin-releasing peptide in rat brain.

There are two distinct mRNAs that encode the precursor to gastrin-releasing peptide (GRP) in rat brain. These two messages arise from separate transcription initiation sites located approximately 400 base pairs apart, which are presumably regulated by separate promoters. In the present study, we mapped the distribution of neurons containing GRP mRNAs by in situ hybridization using cRNA and synthetic DNA probes specific for the 1.5 kb GRP transcript and probes complementary to both the 1.5 kb and 1.1 kb transcripts. The distribution of neurons expressing GRP mRNA appears to be wider than that previously observed by immunohistochemical studies, suggesting an important functional role for this neuropeptide in a number of brain regions. We detected the 1.5 kb transcript only in cingulate cortex, Ammon's horn of the hippocampus and in subiculum. In contrast, the probe which hybridized to both GRP mRNAs labeled a broad range of brain areas, including those containing the 1.5 kb mRNA. These data suggest that the 1.5 kb mRNA encoding rat GRP is expressed only in specific parts of the limbic system, whereas the expression of the 1.1 kb GRP message is more widespread.

Animals↗