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Biomedical subjects

L Birnbaumer

Publications and source records attributed to L Birnbaumer.

At least 127 records · Page 7Linked to original sources

Molecular diversity and function of G proteins and calcium channels.

General features of signal transduction by G proteins and structural properties of G-protein-modulated calcium channels are described. Recent results on roles of beta gamma dimers in signal transduction, on the kinetic properties of Gi alpha subunits and structural diversity of Go alpha subunits are discussed, as are the background and current state of our knowledge of the modulation of calcium channels by G proteins.

Amino Acid Sequence↗

Abnormal guanine nucleotide regulatory protein in MVP dysautonomia: evidence from reconstitution of Gs.

We and others have used the term MVP dysautonomia for a particular subset of hyperadrenergic dysautonomia patients. The role of the stimulatory guanine nucleotide regulatory protein (Gs) in this dysautonomia was studied by cholate extraction of Gs from erythrocytes from 11 normal subjects and 14 symptomatic dysautonomic patients and reconstitution into cyc-S49 lymphoma membranes, which have normal receptor and adenylyl cyclase but lack Gs. Isoproterenol-stimulated adenylyl cyclase activity in the dysautonomia group was increased compared to that in controls [3.66 +/- 0.20 (mean +/- SE; n = 14) vs. 2.87 +/- 0.14 (n = 11) U cyc- reconstituted activity/mg erythrocyte protein; P less than 0.05]. beta-Adrenergic receptor high affinity state formation was greatest in the severely symptomatic group [KL/KH: severe symptoms, 130 +/- 48 (n = 6); mild symptoms, 33 +/- 7 (n = 7); control, 27 +/- 6 (n = 11); severe dysautonomia distinct, P less than 0.017]. Sodium dodecyl sulfate-polyacrylamide gels of cholera toxin-dependent ADP-ribosylated G-proteins yielded no gross distinction between severely symptomatic and control groups. This subset of hyperadrenergic dysautonomia patients, thus, has supercoupled beta 2-adrenergic receptors (increase in both agonist binding and cyclase activation) conferred by an abnormal Gs, whose effects on agonist binding reflect the severity of illness.

Adenosine Diphosphate Ribose↗

The use of PCR to probe calcium channel diversity.

Voltage-dependent calcium channels are a diverse set of proteins that can be classified into at least 3 classes based on their electrophysiological and pharmacological behavior. Our studies have focused on the dihydropyridine-sensitive L-type class, which has two isoforms that have been cloned and expressed. In this report we describe the development of a polymerase chain reaction (PCR, Cetus) to probe for the expression of L-type calcium channel isoforms. We describe the optimization of the PCR reaction in terms of the following: methods for producing the template cDNA, concentration of primers, and magnesium concentration. In addition, we discuss our efforts to understand the factors involved in the design of oligonucleotides for PCR primers. These studies led to the following conclusions: 1) that primers should be less than 30 base pairs in length, 2) that the addition of extraneous polylinker sequences on the 5' end of the primer has no effect, 3) that the primer should not be located in regions where secondary structure may exist, and 4) that non-degenerate primers can be used to amplify homologous gene family members. We also present methods for subcloning PCR fragments, which allow the product of a single reaction to be subcloned and sequenced. We illustrate the use of all these techniques with RNA from mouse ovary, where we have discovered the expression of the cardiac isoform of the dihydropyridine-sensitive L-type calcium channel, and the expression of a novel sequence that we postulate to be an isoform of L-type calcium channels.

Amino Acid Sequence↗

Urea gradient/SDS-PAGE; a useful tool in the investigation of signal transducing G proteins.

We describe an updated and improved protocol to perform urea gradient/SDS-PAGE in which proteins are electrophoresed through 9% polyacrylamide gel slabs in the presence of a linear 4 M to 8 M gradient of urea using Laemmli's separation buffers. We provide examples of this technique to separate PTX labeled G protein alpha subunits, as well as unlabeled alpha and beta subunits of G proteins. Applications of the technique are exemplified in which (1) the chromatographic separations of G proteins in DEAE-Toyopearl and MonoQ columns are compared, (2) the complexity of PTX substrates expressed in human erythrocytes, bovine brain, dog ventricle, FRTL-5 cells, HIT cells, GH4C1 cells and RIN cells are compared, and (3) the polypeptide composition of G protein beta gamma subunits, as expressed in several tissues and found in three distinct G proteins from a single cell population, are analyzed.

Adenosine Diphosphate Ribose↗

G alpha i-3 regulates epithelial Na+ channels by activation of phospholipase A2 and lipoxygenase pathways.

Polarized renal epithelial cells have pertussis toxin-sensitive Gi proteins at their apical membrane capable of modulating Na+ channel activity (Cantiello, H.F., Patenaude, C.R., and Ausiello, D.A. (1989) J. Biol. Chem. 264, 20867-20870). In this study, the patch clamp technique was used to assess if this Gi-mediated regulation of Na+ channels is a component of a phospholipid signal transduction pathway. In excised inside-out patches of apical membranes of A6 cells, guanosine 5'-(3-O-thio)triphosphate (GTP gamma S)-stimulated Na+ channel activity (percent open time and channel number) was inhibited by the phospholipase inhibitor mepacrine (50 microM), which had no effect on single channel conductance. In contrast, Na+ channel activity increased in a Ca2(+)-dependent manner following the addition of 100 nM mellitin to untreated or pertussis toxin-treated patches. Addition of 10 microM arachidonic acid in the presence of mepacrine increased Na+ channel activity. Both percent open time and Na+ channel number induced by GTP gamma S, the exogenous alpha i-3 subunit, or arachidonic acid were inhibited by the addition of the 5-lipoxygenase inhibitor nordihydroguaiaretic acid. Na+ channel activity was restored with the addition of leukotriene D4 (100 nM) or the parental leukotriene substrate 5-hydroperoxyeicosatetraenoic acid (10 microM). Thus, Gi activation of apical membrane epithelial Na+ channels is mediated through the regulation of phospholipase and lipoxygenase activities. This apically located signal transduction pathway may be sensitive to, or independent of, classical second messengers generated at the basolateral membrane and known to be responsible for modulation of Na+ channel activity in epithelia.

Animals↗

Molecular diversity of L-type calcium channels. Evidence for alternative splicing of the transcripts of three non-allelic genes.

The diversity of L-type calcium channels was probed using the polymerase chain reaction and primers based on regions conserved in the L-type skeletal muscle (CaCh 1) and cardiac calcium channels (CaCh 2). Related sequences were amplified from human heart, hamster heart, rabbit heart, mouse ovary, mouse BC3H1 cells, and hamster insulin-secreting (HIT) cells. Sequencing of various clones revealed the presence of alternate splicing in gene products coding for CaCh 1, CaCh 2, and a related calcium channel. This related gene product, which we refer to as neuroendocrine or CaCh 3, is expressed in brain and endocrine cells. The diverse products can be explained by the use of alternate exons of equal size, which account for changes in amino acid composition, in combination with an alternate splice acceptor site or an exon skipping event, which produces channels of variable length. Four variants were defined for the gene 3 product, subtypes 3a, 3b, 3c, and 3d that differed in both the sequence of the third membrane spanning segment of the fourth repeat unit (IVS3) and in the size of the linker between this and the fourth membrane spanning segment (IVS4). Three CaCh 2 variants were cloned, subtypes 2a, 2c, and 2d, that are homologous to the a, c, and d variants of CaCh 3. For the skeletal muscle calcium channel only two variants were isolated. They are homologous to those of the a and c subtypes of CaCh 2 or 3, in that they differ only in the size of the IVS3 to IVS4 linker. These results demonstrate that calcium channel diversity is created by both the expression of distinct genes and the alternate splicing of these genes.

Alleles↗

At least three alternatively spliced mRNAs encoding two alpha subunits of the Go GTP-binding protein can be expressed in a single tissue.

Hybridization blot (Northern) analysis of mRNA coding for alpha subunits of the Go signal-transducing protein detects three bands at 5.7, 4.2, and 3.2 kilobases (kb). We showed previously that the largest is a splice variant coding for the type 2 form of the polypeptide (alpha o2) and the two smaller RNAs react with a probe specific for the seventh of the eight exons that code for the type 1 form (alpha o1). In the present work we demonstrate that the 3.2- and 4.2-kb mRNAs also result from alternative splicing, the splice site being located 31 nucleotides downstream from the termination codon of the open reading frame, and that therefore the alpha o mRNA is made up of at least nine exons. All three alpha o mRNAs are expressed in both heart and brain, more in the latter than the former, as well as in the hamster insulin-secreting tumor (HIT) cell from which the cDNAs encoding the splice variants had been cloned. In contrast, in lung and testis we found only the 5.7-kb alpha o2 mRNA. The same analysis was unable to detect alpha o-specific sequences in either kidney, pancreas (whole), spleen, or liver, while at the same time detecting strong bands for alpha s mRNA. A comparison of the nucleotide sequences of the 5'- and 3'-untranslated regions of the hamster cDNAs cloned here indicated that previously cloned alpha o cDNAs all belong to the same alpha o1A slice subclass derived from 3.2-kb mRNA. The comparison also revealed that the sequences of the untranslated regions are highly conserved among three species (rat, hamster, and brain). Their 3' tails are 99.1% (HIT versus bovine, 200 known bases) and 99.7% (HIT versus rat, 229 bases) identical, and their 5' leader sequences are 92.7% (HIT versus bovine, 165 known bases) and 90.7% (HIT versus rat, 670 bases) identical. This indicates that untranslated regions of mRNAs need not exhibit high degrees of species variation.

Animals↗

Heart rate regulation by G proteins acting on the cardiac pacemaker channel.

Heart rate is determined by pacemaker currents, of which the most important is the hyperpolarization-activated current I(f). Heart rate and I(f) are increased by beta-adrenergic agonists and decreased by muscarinic agonists released from cardiac sympathetic and vagal nerves, respectively. The hypothesis that the receptors for each agonist are directly coupled to I(f) channels by G proteins was tested. Under substrate-free conditions, preactivated G protein Gs stimulated and preactivated G protein G(o) inhibited I(f) channels of sinoatrial node pacemaker cells. These effects were mimicked by the corresponding preactivated alpha subunits of the G proteins. Unexpectedly, the two G proteins acted simultaneously, with G(o) being the more potent. This result may explain in molecular terms the classical observation in cardiac physiology, that vagal inhibition of heart rate is much greater on a background of sympathetic stimulation.

Animals↗

Beta gamma dimers of G proteins inhibit atrial muscarinic K+ channels.

It has been proposed that beta gamma dimers of signal-transducing G proteins mediate muscarinic activation of atrial K+ channels. We examined this hypothesis by testing the effects of beta gamma dimers from four sources (human erythrocytes, human placenta, bovine brain, and bovine retina) on single channel muscarinic K+ (K+[acetylcholine (ACh)]) currents in inside-out membrane patches of adult guinea pig atria. None of the four beta gamma dimer preparations stimulated K+[ACh] currents; on the contrary, each inhibited the currents whether the currents were activated with GTP alone (agonist-independent activity) or with GTP plus a muscarinic agonist (agonist-dependent activity). Detergents at concentrations used to suspend erythrocyte, brain, and placental beta gamma dimers had no effect by themselves, and detergents were not used with the retinal beta gamma dimers. We conclude that beta gamma dimers do not mediate stimulatory effects of the endogenous G protein that regulates the K+ channels. In fact beta gamma dimers appear to inhibit activation by the endogenous G alpha subunits. Further insight into the role of beta gamma dimers came from the observation that agonist-independent GTP-activated K+[ACh] currents were inhibited by beta gamma dimers at about one-tenth the concentration required to inhibit agonist-dependent activation. One possibility is that dimeric beta gamma may have a higher affinity for free alpha subunits than for alpha subunits associated with agonist-occupied receptors. Thus, in addition to the known requirement of beta gamma dimers for the interaction of alpha subunits with receptors, beta gamma dimers may also improve the signal-to-noise ratio for agonists by reducing agonist-independent background activities.

Acetylcholine↗

Molecular cloning and sequence determination of four different cDNA species coding for alpha-subunits of G proteins from Xenopus laevis oocytes.

A cDNA library prepared from Xenopus laevis oocytes in lambda gt10 was screened with a mixture of three oligonucleotide probes designed to detect sequences found in different mammalian genes coding for alpha-subunits of G-proteins. In addition to a clone coding for a G alpha o-type subunit previously reported [(1989) FEBS Lett. 244, 188-192] four additional clones have been found coding for different G alpha protein subunits. By comparison with mammalian alpha-subunits, these oocyte cDNAs correspond to two closely related G alpha s-1a, to a G alpha i-1 and to a G alpha i-3 species. The derived amino acid sequences showed that both G alpha s species contain 379 residues, corresponding to the short species without the serine residue and with a calculated Mr of 42720. The G alpha i-1 gene encodes a 354 amino acid protein with an Mr of 39,000 and the G alpha i-3 encodes an incomplete open reading frame of 345 residues, lacking the first 9 amino acid residues at the NH2 terminus. All these G alpha-subunits showed high identity with their respective mammalian counterparts (75-80%), indicating a great degree of conservation through the evolution and the important cellular regulatory function that they play.

Amino Acid Sequence↗

Studies on the structural requirements for the activity of the skeletal muscle dihydropyridine receptor/slow Ca2+ channel. Allosteric regulation of dihydropyridine binding in the absence of alpha 2 and beta components of the purified protein complex.

A rabbit skeletal muscle dihydropyridine (DHP) receptor can be purified as an alpha 1-alpha 2-delta-beta-gamma complex, of which alpha 2 and delta are disulfide bonded. This complex has Ca2+ channel activity when incorporated into lipid bilayers. We reported recently that expression of alpha 1 in murine L cells (LCa cells) leads to appearance of both DHP binding and Ca2+ currents, and that we failed to detect alpha 2 by immunoblotting. LCa cell Ca2+ channel currents resembled those in rabbit skeletal muscle in their sensitivity to both voltage and the DHP agonist Bay K 8644, but differed in that they responded to depolarization much more slowly. We now report details of the molecular cloning of the cDNA encoding the 1857-amino acid long alpha 1 transfected into the L cells and results from studies on expression of beta, as well as, on allosteric regulation of DHP binding to these cells. The alpha 1 cDNA was cloned by a combination of cDNA library screening (5355 base pairs) and chemical synthesis (508 base pairs). Using rabbit labeled beta cDNA, which cross-reacts with murine beta mRNA, we failed to observe cross-hybridizing beta mRNA in LCa cells. Using a labeled single stranded 200-base long rabbit alpha 2 cDNA that cross-reacts with mouse alpha 2 mRNA, we likewise failed to observe cross-hybridizing alpha 2 mRNA in LCa cells and hence confirmed the absence of an endogenous murine alpha 2 in these cells. Using LCa cell membranes as DHP receptor source we found the binding of the DHP antagonist (+)-[3H]PN200-110 to be regulated by both verapamil and diltiazem as it is in rabbit skeletal muscle membranes. However, we noted a difference; at concentrations above 10(-6) M, verapamil inhibited residual DHP binding in LCa but not in skeletal muscle membranes. We conclude that neither alpha 2 nor beta are essential for expression of alpha 1 on the cell surface, or for its functioning as a voltage-gated Ca2+ channel, or for its allosteric regulation of DHP binding by Ca2+ channel antagonists. The studies neither exclude roles for gamma and delta, nor for alpha 2 or beta in determining more subtle properties of this channel.

Allosteric Regulation↗

Molecular cloning of a novel splice variant of the alpha subunit of the mammalian Go protein.

We screened a HIT (hamster insulin-secreting tumor) cell cDNA library constructed in lambda gt11 with a Go-specific oligonucleotide probe and isolated six recombinant phages. The inserts of these phages encoded two forms of alpha o, called here alpha o1 and alpha o2. The deduced amino acid sequence of alpha o1 is identical in all of its 354 amino acids to that reported previously for rat and bovine alpha o; that of alpha o2, also of 354 amino acids, is identical to alpha o1 up to and including amino acid 248 and differs thereafter in 26 amino acids. At the nucleotide level, alpha o1 and alpha o2 are identical up to and including the second base of the codon that specifies amino acid 243 and differs thereafter in 88 nucleotides of the remaining open reading frame and has no similarity to alpha o1 in its 3'-untranslated region. We propose that alpha o1 and alpha o2 result as a consequence of alternative splicing of a single alpha o transcript. Northern analysis with specifically designed oligonucleotides indicates that both forms of alpha o are expressed in normal tissues, e.g. brain. After in vitro transcription and translation, the peptides encoded in the alpha o1 and alpha o2 cDNAs could be ADP-ribosylated by pertussis toxin in the presence of added beta gamma dimers. The count of distinct G proteins keeps increasing.

Adenosine Diphosphate Ribose↗

Cellular responses to stimulation of the M5 muscarinic acetylcholine receptor as seen in murine L cells.

The membrane signaling properties of the neuronal type-5 muscarinic acetylcholine receptor (M5 AChR) as expressed in murine L cells were studied. Recipient Ltk- cells responded to ATP acting through a P2-purinergic receptor by increasing phosphoinositide hydrolysis 2-fold but were unresponsive to 17 receptor agonists that are stimulatory in other cells. L cells expressing the M5 AChR responded to carbachol (CCh) with an approximately 20-fold increase in phospholipase C activity, mobilization of Ca2+ from endogenous stores, causing a transient peak increase in the intracellular concentration of Ca2+ ([Ca2+]i), influx of extracellular Ca2+, causing a sustained increase in [Ca2+]i dependent on extracellular Ca2+, and release of [3H]arachidonic acid from prelabeled cells, without altering resting or prostaglandin E1-elevated intracellular cAMP levels. None of the effects of the M5 AChR were inhibited by pertussis toxin. The regulation of L cell [Ca2+]i was studied further. ATP had the same effects as CCh and the two agonists acted on a shared intracellular pool of Ca2+. The peak and sustained [Ca2+]i increases were reduced by cholera toxin and forskolin, neither of which altered significantly phosphoinositide hydrolysis. This is consistent with interference with the action of inositol 1,4,5-trisphosphate (IP3) through cAMP-mediated phosphorylation and suggests a continued involvement of IP3 during the sustained phase of [Ca+]i increases. The temporal pattern of the sustained [Ca2+]i increase differed whether elicited by CCh or ATP, and was enhanced in pertussis toxin-treated cells. This is consistent with existence of a kinetic control of the sustained [Ca2+]i change by a receptor-G protein-dependent mechanism independent of the IP3 effector site(s) (e.g. pulsatile activation of phospholipase C and/or pulsatile activation of a receptor/G protein-operated plasma membrane Ca2+ channel). Thus, the non-excitable L cell may be a good model for studying [Ca2+]i regulations, as may occur in other nonexcitable cells of which established cell lines do not exist, and for studying of receptors that as yet cannot be studied in their natural environment.

Adenosine Triphosphate↗

[3H]PN200-110 binding in a fibroblast cell line transformed with the alpha 1 subunit of the skeletal muscle L-type Ca2+ channel.

We examined the binding of the 1,4-dihydropyridine (DHP) [3H]PN200-110 to membranes from a fibroblast cell line transfected with the alpha 1 subunit (DHP receptor) of the L-type Ca2+ channel from rabbit skeletal muscle. Binding site affinity (KD) and density (Bmax) were 1.16 +/- 0.31 nM and 142 +/- 17 fmoles/mg protein, respectively. This affinity corresponded closely with that observed in native skeletal muscle. The Ca2+ channel antagonists diltiazem and MDL 12,330A stimulated [3H]PN200-110 binding in a dose-dependent manner while flunarizine, quinacrine and trifluoperazine inhibited binding. Surprisingly, D600 also stimulated [3H]PN200-110 binding in a dose-dependent and stereoselective manner. It is concluded that the fibroblast cells used in this study provide a unique system for interactions of the Ca2+ channel ligands with the alpha 1 subunit of the skeletal muscle L-type Ca2+ channel.

Animals↗

Receptor-effector coupling by G proteins.

The primary structure of G proteins as deduced from purified proteins and cloned subunits is presented. When known, their functions are discussed, as are recent data on direct regulation of ionic channels by G proteins. Experiments on expression of alpha subunits, either in bacteria or by in vitro translation of mRNA synthesized from cDNA are presented as tools for definitive assignment of function to a given G protein. The dynamics of G protein-mediated signal transduction are discussed. Key points include the existence of two superimposed regulatory cycles in which upon activation by GTP, G proteins dissociate into alpha and beta gamma and their dissociated alpha subunits hydrolyze GTP. The action of receptors to catalyze rather than regulate by allostery the activation of G proteins by GTP is emphasized, as is the role of subunit dissociation, without which receptors could not act as catalysts. To facilitate the reading of this review, we have presented the various subtopics of this rapidly expanding field in sections 1-1X, each of which is organized as a self-contained sub-chapter that can be read independently of the others.

Amino Acid Sequence↗

Distinct guanine nucleotide binding and release properties of the three Gi proteins.

The native pertussis toxin sensitive GTP-binding proteins (Gi proteins) were individually resolved, and their guanine nucleotide binding and release properties were studied. Gi2 and Gi3, the two major GTP-binding proteins of human erythrocytes, were purified to apparent homogeneity by fast protein liquid chromatography. Gi1 was purified from bovine brain. The three proteins bound 0.6-0.85 mol of guanosine 5'-O-(thio-triphosphate (GTP gamma S)/mol of protein with similar affinities (KD(app) = 50-100 nM). The rate of [35S]GTP gamma S binding to Gi2 was 5-8-fold faster than to Gi1 or Gi3 at 2 mm Mg2+. There were no observable differences in the binding characteristics between bovine brain Gi1 and human erythrocyte Gi3. At 50 mM Mg2+, all three Gi proteins exhibited fast binding, although Gi1 and Gi3 were marginally slower than Gi2. All three Gi proteins exhibited different rates of [32P]GDP release at 2 mM Mg2+. GDP release from Gi2 was severalfold faster than that from Gi1 or Gi3. GDP release rates from Gi1 and Gi3 were similar, although Gi3 was somewhat (60-80%) faster than Gi1. These data indicate that rates of GDP release and GTP binding may be independently regulated for these three proteins and that the relative proportions of Gi2/Gi1 or Gi2/Gi3 will be a crucial factor in determining the kinetics of signal transduction through Gi-coupled effectors.

Animals↗

Direct coupling of the somatostatin receptor to potassium channels by a G protein.

G proteins couple receptors to ionic channels indirectly by acting on membrane enzymes which modulate channel activity through second or third messengers such as cytoplasmic kinases, IP3 or Ca++. Recently, it has been shown that G proteins can act on ionic channels in a membrane-delimited or direct manner; from our experience this phenomenon seems to be widespread. A G protein purified from human red blood cells (hRBC) Gk when preactivated with GTP gamma S acts directly on muscarinic acetylcholine receptor-regulated K+ channels (K+[ACh]) in atrial cells and the stimulatory regulator of adenylyl cyclase, Gs from hRBCs acts directly on two distinct voltage-gated Ca++ channels, one in cardiac muscle and the other in skeletal muscle T-tubules. In many cells, including clonal GH3 pituitary cells, somatostatin (SST) inhibits secretion by a complex mechanism that involves a pertussis toxin (PTX)-sensitive step. This is not due to lowering cAMP since secretion induced by cAMP analogs and K+ depolarization are also inhibited. SST also causes membrane hyperpolarization, which is similar to the effect of ACh on cardiac pacemaking cells and may lead to decreases in intracellular Ca++ needed for secretion. ACh acting through a muscarinic recpetor in GH3 cells has the same effects as SST.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗