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Biomedical subjects

E E Büllesbach

Publications and source records attributed to E E Büllesbach.

At least 19 recordsLinked to original sources

Control of ovarian steroidogenesis by insulin-like peptides in the blowfly (Phormia regina).

This study investigated the ability of insulin and of insect insulin-like peptides (ILPs) to stimulate ovarian steroidogenesis in the blowfly Phormia regina. Bovine insulin was active on ovaries isolated in vitro, which showed an age-dependent sensitivity; this peptide progressively stimulated steroidogenesis in ovaries isolated from the third day after adult molt, but not in younger ones, and had maximal activity after the fifth day. This stimulatory effect was observed equally from females reared in the presence or in the absence of males, excluding a regulatory effect of mating. The mode of action of insulin in blowflies did not involve cAMP, but triggered a specific and well-conserved transduction cascade. In particular, a peroxovanadium compound, known to activate specifically the insulin receptor in mammals, also stimulated blowfly ovarian steroidogenesis in vitro. Conversely, chemicals known to inhibit the mammalian insulin receptor or downstream elements of its signaling pathway, such as LY294002, an inhibitor of phosphatidylinositol 3-kinase (PI3K), were able to prevent the steroidogenic action of bovine insulin on fly ovaries. Extracts from the median neurosecretory cells (MNCs) of blowfly brains, which are known to contain endogenous ILPs, stimulated ovarian steroidogenesis very efficiently and were also sensitive to inhibition by LY294002. These experiments indicated the involvement of PI3K in the mode of action of MNC extracts and substantiated that their endogenous ILPs are involved in the regulation of ovarian steroidogenesis. This conclusion was corroborated by the effects of synthetic bombyxin II, an ILP originating from silkworm MNCs, which also stimulated steroidogenesis in isolated blowfly ovaries. Altogether, these data suggest that insulinlike neurohormones from MNCs play a crucial role as steroidogenic gonadotropins in female flies.

Animals↗

Topography of the neurotensin (NT)(8-9) binding site of human NT receptor-1 probed with NT(8-13) analogs.

A series of neurotensin (NT)(8-13) analogs featuring substitution of the Arg8 and/or Arg9 residues with non-natural cationic amino acids was synthesized and evaluated for binding to the human NT receptor-1 (hNTR-1). The modifications were designed to probe specific steric and electrostatic requirements in the N-terminal cationic region of NT(8-13) for receptor binding as a general evaluation of the feasibility of incorporating minor structural changes into a peptide at a crucial polar receptor binding site. Many of the non-natural amino acids are more or less isosteric to Arg but more lipophilic as a result of addition of alkyl groups or through removal or replacement of NH character with methylene or methyl substituents, whereas others vary the distance between the cation and the alpha-amino acid carbon. Substitution of Arg8 with N(G)-alkylated Arg derivatives or homolysine (Hlys) maintained the subnanomolar affinity of NT(8-13) to the hNTR-1. Position 8 incorporation of Hlys produced the most favorable primary amine side-chain substitution to date. Moderate losses in affinity observed with position 9 substitutions were attributed to adverse steric effects. Doubly substituted [Hlys8, DAB9]NT(8-13), in which DAB is 2,4-diaminobutyric acid, was also prepared and tested as the shorter side-chain of DAB is known to be favored in position 9 of NT(8-13). This analog maintained 60% of NT(8-13) binding affinity making it the most favored des-guanidinium-containing analog known. These results demonstrate that adequate receptor binding affinity can be maintained over a structural range of Arg analogs, thus providing a range of peptides expected to exhibit altered pharmacokinetic properties. From the standpoint of the hNTR-1 cationic binding sites, these results help to map out the structural stringency inherent in the formation of a tight binding complex with NT(8-13) and related analogs.

Amino Acid Substitution↗

Synthesis and conformational analysis of the insulin-like 4 gene product.

Insulin-like 4 (INSL-4) is a protein expressed in the early placenta. Its primary structure is insulin-like with reference to the distribution of cysteine residues and the single chain pro-form. Insulin-like 4 was generated by solid-phase peptide synthesis of the two chains followed by the sequential synthesis of the three disulfide bonds. Two disulfide isomers were produced, one with an insulin-like disulfide bonding pattern and the other with a reversed chain orientation. The CD spectra of the two disulfide isomers were indistinguishable without any features produced by periodic structures. In addition, the hydrodynamic properties of the two isomers were identical which implied a very open structure of the disulfide-bonded two-chain molecules. It appears that insulin-likeness cannot be defined solely on the basis of the primary structure of cDNA.

Amino Acid Sequence↗

Relaxin-like factor (RLF) serum concentrations and gubernaculum RLF receptor display in relation to pre- and neonatal development of rats.

Deletion of the relaxin-like factor (RLF) gene in mice causes retention of testicles and infertility. The development of a synthetic RLF has made it possible to investigate the events that connect the genomic event and the basic biological responses that cause gonadal positioning. Anti-RLF antibodies were raised against synthetic RLF, allowing determination of RLF concentrations during the critical period, testing for RLF receptors on the gubernaculum and exploration of the temporal relationship between receptor display and migration of the testes in developing rats. In male rat pups, serum RLF concentrations were high at day 2 before parturition (2.4 ng ml(-1)) and decreased sharply just before parturition. Thereafter, males and females had the same low serum concentrations until RLF concen-trations began to increase in males only, starting at day 10 after parturition and continuing until adult RLF concentrations (0.6 ng ml(-1)) were reached on day 39 after parturition. The testicles are descending into the scrotum during this phase of increasing RLF concentrations and are descended fully by day 19-21 after parturition, before adult hormone concentrations are established. The high prenatal serum RLF concentration coincides with high expression of RLF receptors in the gubernaculum tissue. Competitive binding of RLF per mg of membrane protein prepared from rat gubernacula at various developmental stages showed no increase in receptor density as sexual maturity was reached. Gubernaculum cells in primary culture showed an increased uptake of 5-bromo-2'-deoxyuridine in the presence of RLF compared with controls. These studies demonstrate that the synthetic RLF is biologically active and indicate that the cryptorchid phenotype INSL3(-/-) is a direct consequence of defective gubernaculum growth, caused by the absence of RLF during early phases of development.

Amino Acid Sequence↗

The relaxin receptor-binding site geometry suggests a novel gripping mode of interaction.

Relaxin has a unique, clearly identifiable, mixed function receptor-binding region comprising amino acid residues that evolve sequentially from the central portion of the B chain alpha-helix. Two arginine residues in positions B13 and B17 that project like forefinger and middle finger from the helix provide the electrostatic element opposed by the hydrophobic (thumb) element isoleucine (B20), offset from the arginines by about 40 degrees. The binding intensity of relaxin to its receptor decreases by 3 orders of magnitude if alanine is substituted for the newly discovered binding component isoleucine in position B20. The arginine residues cannot be replaced by other positive charges, nor can the guanidinium group be presented on a longer or shorter hydrocarbon chain. In contrast, the hydrophobic interaction is incremental in nature, and the contribution to the total binding energy is roughly proportional to the number of hydrocarbon units in the side chain. It appears that a hydrophobic surface exists on the receptor that offers optimal van der Waals' interaction with beta-branched hydrophobic amino acids. The binding energy increases roughly 10-fold with each methylene group whereby beta-branching is more effective per surface unit than chain elongation. Aromatic side chains appear to demarcate the extent of the binding region in so far as residues larger than phenylalanine decrease receptor binding. The exceptional clarity of binding site geometry in relaxin makes for an excellent opportunity to design peptido-mimetics.

Amino Acid Sequence↗

The receptor binding conformation of bombyxin is induced by alanine(B15).

Bombyxin is an insect hormone with an insulin-like structure which affects the reduction of stored carbohydrates in the silkworm Bombyx mori. The receptor binding surface of bombyxin includes a trough on the interface between the B chain helix and the N-terminal A chain helix. Alanine(B15) is located on the edge of this feature, whereas the bottom is formed by hydrophobic core residues Ile(A2) and Leu(B14). Replacement of alanine(B15) with bulkier residues produces a negative steric effect on bombyxin receptor binding; alpha-aminobutyric acid reduced the affinity to 6.5%, valine to 1.1%, norvaline to 0.88%, and leucine to 0.05%. CD spectra of these analogues were indistinguishable from each other and identical to that of bombyxin. Changing the backbone structure by replacing alanine with glycine and alpha-aminoisobutyric acid resulted in analogues with activities of 3.7 and 1.4%, respectively, but also a disturbed structure as determined by CD spectroscopy. Replacement of other residues on the periphery of the trough, i.e., arginines at positions B12 and B16, also reduced the level of receptor binding but to a lesser extent than the replacement of alanine(B15). The level of receptor binding for citrulline(B12) bombyxin was 17% and for citrulline(B16) bombyxin was 45%. When it is considered that glycine(A1) is located on the edge of the same trough but across from Ala(B15) and is required for maintenance of the overall structure of bombyxin, it is proposed that the bombyxin receptor binding site forms a contiguous hydrophobic area consisting of residues Ile(A2), Leu(B14), and Ala(B15).

Alanine↗

Synthesis of neurotensin(9-13) analogues exhibiting enhanced human neurotensin receptor binding affinities.

Recent evidence is consistent with neurotensin (NT)(8-13) adopting a Type I beta-turn conformation while binding the NT receptor, which would place the cationic side-chains of Arg(8) and Arg(9) in close proximity. This was the basis for the design, synthesis and analysis of truncated NT(9-13) analogues 1-5 with dicationic position 9 side-chains to emulate the functions of the 8 and 9 side-chains of NT(8-13).

Animals↗

Specific, high affinity relaxin-like factor receptors.

The relaxin-like factor (RLF) is a circulating hormone that binds to specific membrane-bound uterine receptors in the mouse. Mono-iodinated RLF tracers were produced and characterized specifically to study the properties of the RLF receptor. The tracers bound to the RLF receptor in uterine crude membrane preparations with high affinity (73 nM for (125)I-Tyr(A9) RLF and 90 nM for (125)I-Tyr(A26) RLF) as determined by Scatchard analysis. The specificity of binding was confirmed by chemical cross-linking experiments. Binding of (125)I-Tyr(A9) RLF to the putative receptor was inhibited in the presence of a 640-fold excess of unlabeled human RLF but not by the same excess of human relaxin. SDS-gel electrophoresis of the RLF-receptor complex revealed a molecular mass of >200 kDa, which remained unchanged upon reduction. The size and the lack of subunit structure of the receptor is similar to the features reported for the relaxin receptor. In this regard both, the RLF and the relaxin receptor are different from the insulin- and the insulin-like growth factor-type 1 receptors. This observation supports the relaxin-likeness of this new factor not only toward potential target tissues but also as regards receptor features.

Amino Acid Sequence↗

Tryptophan B27 in the relaxin-like factor (RLF) is crucial for RLF receptor-binding.

The relaxin-like factor (RLF) is a circulating hormone that is synthesized in the gonads of mammals and released into the bloodstream. The distribution of its receptor and a trace of cross-reactivity to relaxin receptors implied that this relatively new factor is more relaxin- than insulin-like. The chemical synthesis of RLF analogues with specific modifications in positions B27 and B25, or the truncated form des(B27-31)RLF, clearly indicate that the intact indole ring in position B27 is crucial for high RLF receptor-binding. Receptor-binding was reduced by 2 orders of magnitude for Leu(B27)RLF (3%), Ala(B27)RLF (2.1%), and des(B27-31)RLF (0.4%), whereas slightly better binding was observed for His(B27)RLF (7.5%), Phe(B27)RLF (21%), D-Trp(B27) (26%), and the oxindole(B27)RLF (41%). On the basis of these observation it seems that an aromatic ring system in the beta- or gamma-position is required for binding. Structure prediction of the C-terminal region of the B chain indicated a possible type I or type III turn for residues C-G-G-P-R (B22-26) preceding the tryptophan. Exchanging Pro(B25) for D-Pro within the turn caused a severe structural rearrangement at the C terminus and a 96% drop in activity. It appears that the steric effect of L-Pro(B25) is important for the proper positioning of Trp(B27).

Amino Acid Sequence↗

Bombyxin exhibits an insulin-like response to modification in the N-terminal region of the A chain.

Bombyxin is an insect neurohormone with an insulin-like structure. The N-terminal A chain helix, a region which is considered part of the active site in insulin, is almost identical between the two hormones. Bombyxin analogues with modifications at the N-terminus of the A-chain were synthesized and investigated for their ability to bind to bombyxin-specific receptors. While N-acetylation reduced the affinity to the bombyxin receptor to 18% the removal of glycine (A1) inactivated the hormone completely. Replacement of glycine (A1) by L-amino acids caused a significant loss in activity (11%) while its replacement by D-amino acid resulted in active bombyxin analogues (55%). Comparative CD spectroscopy indicated a change in structure for desGly(A1)bombyxin. Although the insect hormone does not have an insulin-like function it exhibits mammalian insulin-like structural sensitivity for A chain modifications.

Amino Acid Sequence↗

The relaxin-like factor is a hormone.

The relaxin-like factor (RLF) circulates in the bloodstream of humans, interacts with a membrane protein with all the characteristics of ligand-receptor binding, and must therefore be considered a hormone by definition. The polyclonal antibody raised against synthetic human RLF showed no crossreactivity to other structurally related hormones, like insulin and relaxin. The sensitivity of this assay (ED50 at 100 pM) allowed the direct measurement of RLF concentrations in serum. The highest levels were detected in the serum of postpuberty males (190 pM), whereas in females and children, the RLF concentration was one order of magnitude lower.

Adolescent↗

Identification of a glycosylated relaxin-like molecule from the male Atlantic stingray, Dasyatis sabina.

The alkaline gland fluid of the Atlantic stingray (Dasyatis sabina) contains a molecule that cross-reacts weakly to anti-porcine relaxin antibodies. This material was isolated and purified to homogeneity by reversed-phase high-performance liquid chromatography. In SDS gel electrophoresis, the molecule showed an apparent molecular mass of 13 kDa which upon reduction formed two polypeptide chains of 4 and 9 kDa, respectively. Sequence analyses revealed a 27-amino acid residue A chain and a 54-amino acid residue B chain which contained an N-glycosylation site in position B37. The distribution of the six cysteines and possibly the disulfide bonding is identical to that found in insulins and most relaxins. Although the stingray relaxin-like molecule contains the structurally relevant glycine residues within the A chain, in the midregion of the B chain it has only one of the two requisite binding site arginines, which explains the lack of relaxin bioactivity in standard mammalian assays. Stingray relaxin is the first member of the relaxin family identified in a nonhomeotherm male. Carbohydrate analysis of relaxin revealed an N-linked asialo, agalacto, bisected biantennary, and a core-fucosylated oligosaccharide in the position of Asn B37 which makes it the first reported glycosylated relaxin-like molecule.

Amino Acid Sequence↗

The prothoracicotropic hormone bombyxin has specific receptors on insect ovarian cells.

Bombyxin II, a product of the brain of the adult silkmoth, Bombyx mori, binds to ovarian cells of three different species of lepidoptera, i.e. B. mori (silkmoth), Samia cynthia ricini (ailanthus moth), and an ovarian cell line of Spodoptera frugiperda (Sf9) (fall armyworm). Crude Sf9 cell membrane preparations were used to show that the purported bombyxin receptor binds its ligand in a specific, saturable, and reversible manner. The dissociation constant of the bombyxin-receptor complex is 260+/-90 pM. Quantitative binding studies and Scatchard analysis suggest that every Sf9 cell displays 20000 receptors on the surface. The cross-linked bombyxin-receptor ligand complex has an apparent molecular mass of about 300 kDa as determined by SDS/PAGE. Reduction causes the bombyxin receptor to dissociate into two subunits with molecular masses of 90 kDa and 116 kDa. The size and subunit structure of the putative bombyxin receptor on Sf9 cells show some similarities to the mammalian insulin receptor.

Amino Acid Sequence↗

Bombyxin: an insect neurohormone targets the ovaries in Lepidoptera.

Bombyxin, an insect hormone structurally related to insulin, was chemically synthesized and defined radioactively labeled probes were generated in order to detect and characterize bombyxin receptors in insect tissue. In all species tested, Bombyx mori (silkmoth), Samia cynthia ricini (Ailanthus moth). Manduca sexta (tobacco hornworm) and Spodoptera frugiperda (fall armyworm), bombyxin receptors were found in ovaries. A radioactive photolabeled bombyxin analog was crosslinked to the potential bombyxin receptor and the hormone-receptor complex identified by SDS PAGE. The bombyxin-receptor has an apparent molecular mass of about 300 kDa which after reduction forms a binding subunit of 90 to 110 kDa. The presence of bombyxin-receptors on ovaries suggests a function of this hormone in reproduction.

Amino Acid Sequence↗

The chemical synthesis of rat relaxin and the unexpectedly high potency of the synthetic hormone in the mouse.

Rat relaxin, as isolated from ovaries, has been described in the literature as a low potency hormone in the mouse symphysis pubis assay. Searching for an explanation, a helix-breaking glycine residue in the B chain seemed to be the most auspicious perturbation. Rat relaxin was chemically synthesized and analyzed by reverse-phase high performance liquid chromatography, amino acid composition, mass spectrometry and circular dichroic spectroscopy. Analogs of rat relaxin were synthesized either with aspartic acid in place of the helix-breaking glycine residue in the receptor-binding region of the B chain or with Asp-Leu-Val instead of Gly-Tyr-Val at positions B14-B16. In receptor-binding assays [B14D, B15L, B16V]relaxin was a better ligand than rat relaxin, whereas the [B14D]relaxin was less potent. In the mouse symphysis pubis assay, both analogs were less potent than unmodified rat relaxin, but the [B14D, B15L, B16V]relaxin was better than [B14D]relaxin. In contrast to previous reports on native rat relaxin, the chemically synthesized rat relaxin proved to be as active as human and porcine relaxin with respect to the standard mouse assay system. Glycine, which is considered to be a perturbator in an alpha helix, is not only tolerated in the B14 position but is required for full biological potency.

Amino Acid Sequence↗

Chemical synthesis of a Zwitterhormon, insulaxin, and of a relaxin-like bombyxin derivative.

The structural motif of insulin and relaxin is frequently seen in molecules of divergent functions and origins. The insect developmental factor bombyxin, the relaxin-like factor from Leydig cells, and the insulin-like factor 4 (INSL4) all are made of two disulfide-linked chains and have one disulfide bond within the A-chain. The polyclonal antibody R6, which was raised against porcine relaxin, reacts with a wide variety of naturally occurring relaxins from primates, marine and terrestrial mammals, and elasmobranchs but does not recognize insulin. The antibody binds mainly to the arginines that occur in the N, N+4 positions in the B-chains of all relaxins which also constitute the receptor-binding site. The receptor-binding haptens were incorporated by total synthesis into human despentapeptide insulin and bombyxin II, a developmental factor from the silk moth Bombyx mori. In the process the insect factor became a perfect antigen for the anti-relaxin antibody, whereas the human insulin was transformed into a bona fide relaxin. The conversion was affected by changing four critical residues so that the insulin activity was retained to the extent of 10% of the original level. This, to the best of our knowledge, is the first designer protein to incorporate two unrelated biological functions in one primary sequence, and we are therefore proposing that, analogous to zwitterion, the generic name "Zwitterhormon" (German spelling) be used for this type of construct.

Amino Acid Sequence↗

Use of synthetic canine relaxin to develop a rapid homologous radioimmunoassay.

Canine relaxin (cRlx) was synthesized by a combination of solid-phase methods and sequential site-directed disulfide bond formation. Proof that the intended molecule had been synthesized was obtained by analytical HPLC of the intact and reduced molecule, by amino acid and sequence analysis, and by receptor binding and in vivo mouse interpubic ligament bioassays. Antisera to synthetic cRlx were raised in six male rabbits; these cross-reacted with relaxins of other species, but not with insulin, LH, FSH, hCG, or prolactin (PRL). Three of the antisera neutralized relaxin-induced interpubic ligament formation in estrogen-primed mice in vivo. A new homologous cRlx RIA was developed through the use of rabbit antiserum 79888, synthetic cRlx for standards and 125l-labeled trace, and a goat anti-rabbit lgG-polyethylene glycol precipitant. The new RIA can be completed in 26 h and has a sensitivity of 0.195-0.39 ng cRlx/tube. Intra- and interassay coefficients of variation were 3% and 12.5%. During pregnancy in bitches, serum cRlx rose to about 10 micrograms/ml. Immunoactive cRlx was also detected in serum, colostrum, and milk of lactating bitches, but not in large volumes (100-300 microliters) of serum of pseudopregnant or estrous bitches. Immunoreactive cRlx was also found in seminal plasma, but not in serum, of male dogs. The new homologous cRlx RIA is simple, rapid, sensitive, and specific, and will be used in future studies of canine relaxin physiology.

Amino Acid Sequence↗

Introduction of relaxin properties into other hormones of insulin-like structure.

Sequence comparison of natural relaxins and the investigation of the structure function relationship of chemically synthesized relaxin analogs have been used to identify two arginine residues on the surface of the main helix of the B chain as hormone-receptor interaction site. This site is sensitive to structural changes, in particular the conformation of the A chain loop. Introducing the active site of relaxin into noncrossreacting structural analogs such as insulin and bombyxin required a four amino acid exchange. Both hybrid hormones bound to the anti-porcine relaxin antibody R6 with high affinity, and the insulin analog, with an additional C-terminal truncation of the B chain, crossreacted with rat relaxin-receptors.

Amino Acid Sequence↗