EP1451225A1 - Agonists of recombinant human histamine h3 receptor - Google Patents

Agonists of recombinant human histamine h3 receptor

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Publication number
EP1451225A1
EP1451225A1 EP01989822A EP01989822A EP1451225A1 EP 1451225 A1 EP1451225 A1 EP 1451225A1 EP 01989822 A EP01989822 A EP 01989822A EP 01989822 A EP01989822 A EP 01989822A EP 1451225 A1 EP1451225 A1 EP 1451225A1
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EP
European Patent Office
Prior art keywords
receptor
human histamine
histamine
dna
human
Prior art date
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EP01989822A
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German (de)
French (fr)
Inventor
Timothy Lovenberg
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Janssen Pharmaceuticals Inc
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Ortho McNeil Pharmaceutical Inc
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Publication of EP1451225A1 publication Critical patent/EP1451225A1/en
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    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K14/00Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
    • C07K14/435Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans
    • C07K14/705Receptors; Cell surface antigens; Cell surface determinants
    • C07K14/72Receptors; Cell surface antigens; Cell surface determinants for hormones
    • C07K14/723G protein coupled receptor, e.g. TSHR-thyrotropin-receptor, LH/hCG receptor, FSH receptor
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K31/00Medicinal preparations containing organic active ingredients
    • A61K31/33Heterocyclic compounds
    • A61K31/395Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins
    • A61K31/41Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins having five-membered rings with two or more ring hetero atoms, at least one of which being nitrogen, e.g. tetrazole
    • A61K31/4151,2-Diazoles
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N33/00Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
    • G01N33/48Biological material, e.g. blood, urine; Haemocytometers
    • G01N33/50Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
    • G01N33/74Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing involving hormones or other non-cytokine intercellular protein regulatory factors such as growth factors, including receptors to hormones and growth factors
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K38/00Medicinal preparations containing peptides
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N2799/00Uses of viruses
    • C12N2799/02Uses of viruses as vector
    • C12N2799/021Uses of viruses as vector for the expression of a heterologous nucleic acid
    • C12N2799/026Uses of viruses as vector for the expression of a heterologous nucleic acid where the vector is derived from a baculovirus
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N2500/00Screening for compounds of potential therapeutic value
    • G01N2500/04Screening involving studying the effect of compounds C directly on molecule A (e.g. C are potential ligands for a receptor A, or potential substrates for an enzyme A)

Definitions

  • Histamine is a multifunctional chemical transmitter that signals through cell surface receptors that are linked to intracellular pathways via guanine nucleotide binding proteins. This class of cell surface receptors is called G-protein coupled receptors or GPCRs. There are currently three subtypes of histamine receptors that have been defined pharmacologically and have been divided into HI, H2, and H3 classifications (HiU et al. (1997)). The HI histamine receptor has been cloned (Yamashita et al. (1991)) and is the target of drugs such as diphenhydramine to block the effects of histamine in allergic responses. The H2 histamine receptor has been cloned (Gantz et al.
  • histamine H3 receptors are thus expressed in the central nervous system, but have also been pharmacologically identified in heart, lung, and stomach, and have been hypothesized to exist in other tissues.
  • H3 antagonists i.e. compounds that block the effect of histamine at the H3 receptor
  • H3 agonists i.e. compounds that mimic the effect of histamine at the H3 receptor
  • H3 cDNA can be expressed in mammalian cells and exhibits characteristics similar to those predicted in mammalian tissues with respect to most known agonists and antagonists. It was also proposed that the H3 cDNA expressed in mammalian cells could be used to identify agonist compounds.
  • mammalian tissues, particularly human, to identify agonists and antagonists is often confounded by the complexity of the receptor systems controlling tissue function. The use of recombinant receptors circumvents some of the complexities that can confound data interpretation from tissues.
  • a DNA molecule encoding a human histamine H3 receptor has been cloned and characterized and it represents a novel member of the class of receptors that couple to G- proteins.
  • Using a recombinant expression system functional DNA molecules encoding the human histamine H3 receptor have been isolated. The biological and structural properties of these proteins are disclosed, as is the amino acid and nucleotide sequence.
  • the recombinant protein is useful for a variety of purposes, including but not limited to identifying modulators of the human histamine H3 receptor. Modulators identified in the assays disclosed herein are useful, for example, as therapeutic agents, and diagnostic agents.
  • Indications for said therapeutic agents include, but are not limited to, central nervous system disorders, for example depression, anxiety, psychoses (for example schizophrenia), tardive dyskinesia, Parkinson's disease, obesity, hypertension, Tourette's syndrome, sexual dysfunction, drug addiction, drug abuse, cognitive disorders, Alzheimer's disease, senile dementia, obsessive- compulsive behavior, panic attacks, pain, social phobias, eating disorders and anorexia, cardiovascular and cerebrovascular disorders, non-insulin dependent diabetes mellitus, hyperglycemia, constipation, arehythmia, disorders of the neuroendrocrine system, stress, and spasticity, as well as acid secretin, ulcers, airway constriction, asthma, allergy, inflammation, and prostate dysfunction.
  • the recombinant DNA molecules, and portions thereof are useful for isolating homologues of the DNA molecules, identifying and isolating genomic equivalents of the DNA molecules, and identifying, detecting or isolating mutant forms of the DNA molecules.
  • the present invention demonstrates how a simple recombinant system can show properties of molecules that are not predicted based on effects in tissues.
  • Exemplified are several molecules (including burimamide, chloroproxyfan, and GT-2331) that are believed to be or have been reported to be histamine H3 receptor antagonists. These molecules, when tested in recombinant H3 receptor assays behave as full or partial receptor agonists. This feature of these molecules is not predicted based on their reported properties in tissues.
  • the agonism exhibited by these compounds is similar that seen by histamine itself and furthermore can be blocked by known H3 receptor antagonists such as clobenpropit.
  • the present invention relates to the identification compounds having agonist activity on recombinant human histamine H3 receptor, and the uses thereof.
  • FIG. 1 Panels A and B: The complete nucleotide sequence of human histamine H3 receptor including untranslated regions is shown.
  • Figure 2 The nucleotide sequence of the coding region for the human histamine H3 receptor is shown.
  • Figure 3 The amino acid sequence of human histamine H3 receptor is shown.
  • FIG. 4 The tissue distribution of the human histamine H3 receptor is shown.
  • Figure 5 Modulation of human histamine H3 receptor by a known H3 agonists (R-alpha-methylhistamine) and a known H3 antagonist (thioperamide) is shown.
  • FIG. 6 The nucleotide sequence of the pH3R probe is shown.
  • Panels A and B Saturation binding of [ 3 H]-N-alpha-methyl-histamine to pH3R expressing L cells is shown.
  • Figure 8 The Histamine H3 receptor agonist activity of chloroproxyfan is shown.
  • Figure 9 The Histamine H3 receptor agonist activity of burimamide is shown.
  • FIG. 10 The Histamine H3 receptor agonist activity of chloroproxyfan, burimamide, impromidine and GT-2331 is shown.
  • Panels A and B The Histamine H3 receptor agonist activity of histamine blocked by the antagonist activity of clobenpropit is shown.
  • Panels A and B The Histamine H3 receptor agonist activity of GT-2331 blocked by the antagonist activity of clobenpropit is shown.
  • the present invention relates to DNA encoding human histamine H3 receptor which was isolated from a cDNA library from human thalamus.
  • the human histamine H3 receptor refers to protein which can specifically function as a receptor for histamine of the H3 subclass.
  • human histamine H3 receptor The complete amino acid sequence of human histamine H3 receptor was not previously known, nor was the complete nucleotide sequence encoding human histamine H3 receptor known. This is the first reported cloning of a full-length DNA molecule encoding human histamine H3 receptor. It is predicted that a wide variety of cells and cell types will contain the described human histamine H3 receptor. Vertebrate cells capable of producing human histamine H3 receptor include, but are not limited to human histamme H3 receptor cells isolated from cells that show sensitivity to or bind histamine.
  • Other cells and cell lines may also be suitable for use to isolate human histamine H3 receptor cDNA. Selection of suitable cells may be done by screening for inhibition of adenylate cyclase in response to histamine. Human histamine H3 receptor activity can be monitored by performing a 3 H-alphamethylhistamine binding assay (Pollard et al. (1993)) or by direct measurement of inhibition of adenylate cyclase due to human histamine H3 receptor activation or by incorporation of GTP-gamma-S (Clark et al. (1993)) Cells which possess human histamine H3 receptor activity in this assay may be suitable for the isolation of human histamine H3 receptor DNA or mRNA.
  • any of a variety of procedures known in the art may be used to molecularly clone human histamine H3 receptor DNA. These methods include, but are not limited to, direct functional expression of the human histamine H3 receptor genes following the construction of a human histamine H3 receptor-containing cDNA library in an appropriate expression vector system. Another method is to screen human histamine H3 receptor-containing cDNA library constructed in a bacteriophage or plasmid shuttle vector with a labelled oligonucleotide probe designed from the amino acid sequence of the human histamine H3 receptor subunits.
  • An additional method consists of screening a human histamine H3 receptor-containing cDNA library constructed in a bacteriophage or plasmid shuttle vector with a partial cDNA encoding the human histamine H3 receptor protein.
  • This partial cDNA is obtained by the specific PCR amplification of human histamine H3 receptor DNA fragments through the design of degenerate oligonucleotide primers from the amino acid sequence of the purified human histamine H3 receptor protein.
  • Another method is to isolate RNA from human histamine H3 receptor-producing cells and translate the RNA into protein via an
  • the translation of the RNA into a peptide or a protein will result in the production of at least a portion of the human histamine H3 receptor protein which can be identified by, for example, immunological reactivity with an anti-human histamine H3 receptor antibody or by biological activity of human histamine H3 receptor protein.
  • pools of RNA isolated from human histamine H3 receptor-producing cells can be analyzed for the presence of an RNA which encodes at least a portion of the human histamine H3 receptor protein.
  • RNA pool can be done to purify the human histamine H3 receptor RNA from non-human histamine H3 receptor RNA.
  • the peptide or protein produced by this method may be analyzed to provide amino acid sequences which in turn are used to provide primers for production of human histamine H3 receptor cDNA, or the RNA used for translation can be analyzed to provide nucleotide sequences encoding human histamine H3 receptor and produce probes for this production of human histamine H3 receptor cDNA.
  • This method is known in the art and can be found in, for example, T. Maniatis, E. F. Fritsch and J. Sambrook, Molecular Cloning: A Laboratory Manual, 2 Edition. Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 1989.
  • libraries as well as libraries constructed from other cells or cell types, may be useful for isolating human histamine H3 receptor-encoding DNA.
  • Other types of libraries include, but are not limited to, cDNA libraries derived from other cells, from organisms other than human, and genomic DNA libraries that include YAC (yeast artificial chromosome) and cosmid libraries.
  • suitable cDNA libraries may be prepared from cells or cell lines which have human histamine H3 receptor activity.
  • the selection of cells or cell lines for use in preparing a cDNA library to isolate human histamine H3 receptor cDNA may be done by first measuring cell associated human histamine H3 receptor activity using the measurement of human histamine H3 receptor-associated biological activity or a H-histamine ligand binding assay or H-N-methylhistamine ligand binding assay or any radioligand binding involving a ligand that has the ability to bind to the human histamine H3 receptor.
  • cDNA libraries can be performed by standard techniques well known in the art. Well known cDNA library construction techniques can be found for example, in T. Maniatis, E. F. Fritsch and J. Sambrook, Molecular Cloning: A Laboratory Manual. 2 nd Edition, Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 1989.
  • DNA encoding human histamine H3 receptor may also be isolated from a suitable genomic DNA library. Construction of genomic DNA libraries can be performed by standard techniques well known in the art. Well known genomic DNA library construction techniques can be found in T. Maniatis, E. F. Fritsch and J. Sambrook, Molecular Cloning: A Laboratory Manual, 2 nd Edition. Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 1989.
  • human histamine H3 receptor protein may be purified and partial amino acid sequence determined by automated sequenators. It is not necessary to determine the entire amino acid sequence, but the linear sequence of two regions of six to eight amino acids from the protein is determined for the production of primers for PCR amplification of a partial human histamine H3 receptor DNA fragment.
  • the DNA sequences capable of encoding them are synthesized. Because the genetic code is degenerate, more than one codon may be used to encode a particular amino acid, and therefore, the amino acid sequence can be encoded by any of a set of similar DNA oligonucleotides. Only one member of the set will be identical to the human histamine H3 receptor sequence but will be capable of hybridizing to human histamine H3 receptor DNA even in the presence of DNA oligonucleotides with mismatches. The mismatched DNA oligonucleotides may still sufficiently hybridize to the human histamine H3 receptor DNA to permit identification and isolation of human histamine H3 receptor encoding DNA. DNA isolated by these methods can be used to screen DNA libraries from a variety of cell types, from invertebrate and vertebrate sources, and to isolate homologous genes.
  • Human histamine H3 receptor may exist as a full-length nascent or unprocessed polypeptide, or as partially processed polypeptides or combinations of processed polypeptides.
  • the full-length nascent human histamine H3 receptor polypeptide may be post-translationally modified by specific proteolytic cleavage events which result in the formation of fragments of the full-length nascent polypeptide.
  • a fragment, or physical association of fragments may have the full biological activity associated with human histamine H3 receptor, however, the degree of human histamine H3 receptor activity may vary between individual human histamine H3 receptor fragments and physically associated human histamine H3 receptor polypeptide fragments.
  • the cloned human histamine H3 receptor DNA obtained through the methods described herein may be recombinantly expressed by molecular cloning into an expression vector containing a suitable promoter and other appropriate transcription regulatory elements, and transferred into prokaryotic or eukaryotic host cells to produce recombinant human histamine H3 receptor protein. Techniques for such manipulations are fully described in Maniatis et al., supra, and are well known in the art.
  • Expression vectors are defined herein as DNA sequences that are required for the transcription of cloned copies of genes and the translation of their mRNAs in an appropriate host. Such vectors can be used to express eukaryotic genes in a variety of hosts such as bacteria including E. coli, blue-green algae, plant cells, insect cells, fungal cells including yeast cells, and animal cells.
  • RNA- yeast or bacteria-animal cells or bacteria-fungal cells or bacteria-invertebrate cells allow the shuttling of DNA between hosts such as bacteria- yeast or bacteria-animal cells or bacteria-fungal cells or bacteria-invertebrate cells.
  • An appropriately constructed expression vector should contain: an origin of replication for autonomous replication in host cells, selectable markers, a limited number of useful restriction enzyme sites, a potential for high copy number, and active promoters.
  • a promoter is defined as a DNA sequence that directs RNA polymerase to bind to DNA and initiate RNA synthesis.
  • a strong promoter is one which causes mRNAs to be initiated at high frequency.
  • Expression vectors may include, but are not limited to, cloning vectors, modified cloning vectors, specifically designed plasmids or viruses.
  • mammalian expression vectors may be used to express recombinant human histamine H3 receptor in mammalian cells.
  • Commercially available mammalian expression vectors which may be suitable for recombinant human histamine H3 receptor expression, include but are not limited to, pMAMneo (Clontech), pcDNA3 (invitrogen), pMClneo (Stratagene), pXTl (Stratagene), pSG5 (Stratagene), pCIneo (Promega), EBO-pSV2-neo (ATCC 37593) pBPV-l(8-2) (ATCC 37110), pdBPV-MMTneo(342-12) (ATCC 37224), pRSVgpt (ATCC 37199), pRSVneo (ATCC 37198), pSV2-dhfr (ATCC 37146), pUCTag (ATCC 37460), and 1ZD35 (ATCC 37565).
  • bacterial expression vectors may be used to express recombinant human histamine H3 receptor in bacterial cells.
  • Commercially available bacterial expression vectors which may be suitable for recombinant human histamine H3 receptor expression include, but are not limited to pET vectors (Novagen) and pQE vectors (Qiagen).
  • fungal cell expression vectors may be used to express recombinant human histamine H3 receptor in fungal cells such as yeast.
  • Commercially available fungal cell expression vectors which may be suitable for recombinant human histamine H3 receptor expression include but are not limited to pYES2 (Invitrogen) and Pichia expression vector (Invitrogen).
  • insect cell expression vectors may be used to express recombinant human histamine H3 receptor in insect cells.
  • Commercially available insect cell expression vectors which may be suitable for recombinant expression of human histamine H3 receptor include but are not limited to pBlueBacII (Invitrogen).
  • DNA encoding human histamine H3 receptor may be cloned into an expression vector for expression in a recombinant host cell.
  • Recombinant host cells may be prokaryotic or eukaryotic, including but not limited to bacteria such as E, coli, fungal cells such as yeast, mammalian cells including but not limited to cell lines of human, bovine, porcine, monkey and rodent origin, and insect cells including but not limited to drosophila and silkworm derived cells.
  • Cell lines derived from mammalian species which may be suitable and which are commercially available, include but are not limited to, CV-1 (ATCC CCL 70), COS-1 (ATCC CRL 1650), COS-7 (ATCC CRL 1651), CHO-K1 (ATCC CCL 61), 3T3 (ATCC CCL 92), NLH/3T3 (ATCC CRL 1658), HeLa (ATCC CCL 2), C127I (ATCC CRL 1616), BS-C-1 (ATCC CCL 26), MRC-5 (ATCC CCL 171), L-cells, and HEK-293 (ATCC CRL1573).
  • CV-1 ATCC CCL 70
  • COS-1 ATCC CRL 1650
  • COS-7 ATCC CRL 1651
  • CHO-K1 ATCC CCL 61
  • 3T3 ATCC CCL 92
  • NLH/3T3 ATCC CRL 1658
  • HeLa ATCC CCL 2
  • C127I ATCC CRL 1616
  • the expression vector may be introduced into host cells via any one of a number of techniques including but not limited to transformation, transfection, protoplast fusion, lipofection, and electroporation.
  • the expression vector-containing cells are clonally propagated and individually analyzed to determine whether they produce human histamine H3 receptor protein. Identification of human histamine H3 receptor expressing host cell clones may be done by several means, including but not limited to immunological reactivity with anti-human histamine H3 receptor antibodies, and the presence of host cell-associated human histamine H3 receptor activity.
  • Human histamine H3 receptor DNA may also be performed using in vitro produced synthetic niRNA.
  • Synthetic mRNA or rnRNA isolated from human histamine H3 receptor producing cells can be efficiently translated in various cell-free systems, including but not limited to wheat germ extracts and reticulocyte extracts, as well as efficiently translated in cell based systems, including but not limited to microinjection into frog oocytes, with microinjection into frog oocytes being generally prefened.
  • human histamine H3 receptor DNA molecules including, but not limited to, the following can be constructed: the full-length open reading frame of the human histamine H3 receptor cDNA encoding the 48656 kDa protein from approximately base 299 to approximately base 1634 (these numbers correspond to first nucleotide of first methionine and last nucleotide before the first stop codon) and several constructs containing portions of the cDNA encoding human histamine H3 receptor protein.
  • All constructs can be designed to contain none, all or portions of the 5' or the 3' untranslated region of human histamine H3 receptor cDNA.
  • Human histamine H3 receptor activity and levels of protein expression can be determined following the introduction, both singly and in combination, of these constructs into appropriate host cells.
  • this human histamine H3 receptor DNA construct is transferred to a variety of expression vectors, for expression in host cells including, but not limited to, mammalian cells, baculovirus-infected insect cells, E. coli, and the yeast S. cerevisiae.
  • Host cell transfectants and microinjected oocytes may be used to assay both the levels of human histamine H3 receptor activity and levels of human histamine H3 receptor protein by the following methods. In the case of recombinant host cells, this involves the co- transfection of one or possibly two or more plasmids, containing the human histamine H3 receptor DNA encoding one or more fragments or subunits. In the case of oocytes, this involves the co-injection of RNAs encoding human histamine H3 receptor protein.
  • cellular protein is metabolically labelled with, for example - ⁇ S-methionine f or twenty-four hours, after which cell lysates and cell culture supernatants are harvested and subjected to immunoprecipitation with polyclonal antibodies directed against the human histamine H3 receptor protein.
  • human histamine H3 receptor activity involves the direct measurement of human histamine H3 receptor activity in whole cells transfected with human histamine H3 receptor cDNA or oocytes injected with human histamine H3 receptor mRNA. Human histamine H3 receptor activity is measured by specific ligand binding and biological characteristics of the host cells expressing human histamine H3 receptor DNA. In the case of recombinant host cells and oocytes expressing human histamine H3 receptor cAMP quantitation and receptor binding techniques are suitable examples of methods that can be used to measure human histamine H3 receptor activity and quantitate human histamine H3 receptor protein.
  • Levels of human histamine H3 receptor protein in host cells are also quantitated by immunoaffmity and/or ligand affinity techniques.
  • Cells expressing human histamine H3 receptor can be assayed for the number of human histamine H3 receptor molecules expressed by measuring the amount of radioactive histamine or histamine H3 ligand binding to cell membranes.
  • Human histamine H3 receptor-specific affinity beads or human histamine H3 receptor-specific antibodies are used to isolate for example 35 S-methionine labeled or unlabelled human histamine H3 receptor protein.
  • Labelled human histamine H3 receptor protein is analyzed by SDS-PAGE. Unlabelled human histamine H3 receptor protein is detected by Western blotting, ELISA or RIA assays employing human histamine H3 receptor specific antibodies.
  • the amino acid sequence can be encoded by any of a set of similar DNA oligonucleotides. Only one member of the set will be identical to the human histamine H3 receptor sequence but will be capable of hybridizing to human histamine H3 receptor DNA even in the presence of DNA oligonucleotides with mismatches under appropriate conditions. Under alternate conditions, the mismatched DNA oligonucleotides may still hybridize to the human histamine H3 receptor DNA to permit identification and isolation of human histamine H3 receptor encoding DNA.
  • DNA encoding human histamine H3 receptor from a particular organism may be used to isolate and purify homologues of human histamine H3 receptor from other organisms.
  • the first human histamine H3 receptor DNA may be mixed with a sample containing DNA encoding homologues of human histamine H3 receptor under appropriate hybridization conditions.
  • the hybridized DNA complex may be isolated and the DNA encoding the homologous DNA may be purified therefrom.
  • this invention is also directed to those DNA sequences which contain alternative codons which code for the eventual translation of the identical amino acid.
  • a sequence bearing one or more replaced codons will be defined as a degenerate variation.
  • mutations either in the DNA sequence or the translated protein which do not substantially alter the ultimate physical properties of the expressed protein. For example, substitution of valine for leucine, arginine for lysine, or asparagine for glutamine may not cause a change in functionality of the polypeptide.
  • DNA sequences coding for a peptide may be altered so as to code for a peptide having properties that are different than those of the naturally occurring peptide.
  • Methods of altering the DNA sequences include, but are not limited to site directed mutagenesis.
  • altered properties include but are not limited to changes in the affinity of an enzyme for a substrate or a receptor for a ligand.
  • a “functional derivative” of human histamine H3 receptor is a compound that possesses a biological activity (either functional or structural) that is substantially similar to the biological activity of human histamine H3 receptor.
  • the term “functional derivatives” is intended to include the “fragments,” “variants,” “degenerate variants,” “analogs” and “homologues” or to "chemical derivatives” of human histamine H3 receptor.
  • fragment is meant to refer to any polypeptide subset of human histamine H3 receptor.
  • variant is meant to refer to a molecule substantially similar in structure and function to either the entire human histamine H3 receptor molecule or to a fragment thereof.
  • a molecule is "substantially similar" to human histamine H3 receptor if both molecules have substantially similar structures or if both molecules possess similar biological activity. Therefore, if the two molecules possess substantially similar activity, they are considered to be variants even if the structure of one of the molecules is not found in the other or even if the two amino acid sequences are not identical.
  • the term “analog” refers to a molecule substantially similar in function to either the entire human histamine H3 receptor molecule or to a fragment thereof.
  • Monospecific antibodies to human histamine H3 receptor are purified from mammalian antisera containing antibodies reactive against human histamine H3 receptor or are prepared as monoclonal antibodies reactive with human histamine H3 receptor using the technique of Kohler and Milstein, Nature (1975) 256:495-497.
  • Monospecific antibody as used herein is defined as a single antibody species or multiple antibody species with homogenous binding characteristics for human histamine H3 receptor.
  • Homogenous binding as used herein refers to the ability of the antibody species to bind to a specific antigen or epitope, such as those associated with the human histamine H3 receptor, as described above.
  • Human histamine H3 receptor specific antibodies are raised by immunizing animals such as mice, rats, guinea pigs, rabbits, goats, horses and the like, with rabbits being preferred, with an appropriate concentration of human histamine H3 receptor either with or without an immune adjuvant.
  • Pre-immune serum is collected prior to the first immunization.
  • Each animal receives between about 0.1 mg and about 1000 mg of human histamine H3 receptor associated with an acceptable immune adjuvant.
  • acceptable adjuvants include, but are not limited to, Freund's complete, Freund's incomplete, alum-precipitate, water in oil emulsion containing Corvnebacterium parvum and tRNA.
  • the initial immunization consists of human histamine H3 receptor in, preferably, Freund's complete adjuvant at multiple sites either subcutaneously (SC), intraperitoneally (IP) or both.
  • SC subcutaneously
  • IP intraperitoneally
  • Each animal is bled at regular intervals, preferably weekly, to determine antibody titer. The animals may or may not receive booster injections following the initial immunization.
  • Booster injections are given at about three week intervals until maximal titers are obtained. At about seven days after each booster immunization or about weekly after a single immunization, the animals are bled, the serum collected, and aliquots are stored at about - 20°C.
  • Monoclonal antibodies (mAb) reactive with human histamine H3 receptor are prepared by immunizing inbred mice, preferably Balb/c, with human histamine H3 receptor and any fragments thereof.
  • the mice are immunized by the IP or SC route with about 0.1 mg to about 10 mg, preferably about 1 mg, of human histamine H3 receptor in about 0.5 ml buffer or saline incorporated in an equal volume of an acceptable adjuvant, as discussed above. Freund's complete adjuvant is preferred.
  • mice receive an initial immunization on Day 0 and are rested for about three to thirty weeks, immunized mice are given one or more booster immunizations of about 0.1 to about 10 mg of human histamine H3 receptor in a buffer solution such as phosphate buffered saline by the intravenous (IV) route.
  • Lymphocytes from antibody positive mice, preferably splenic lymphocytes, are obtained by removing spleens from immunized mice by standard procedures known in the art.
  • Hybridoma cells are produced by mixing the splenic lymphocytes with an appropriate fusion partner, preferably myeloma cells, under conditions which will allow the formation of stable hybridomas.
  • Fusion partners may include, but are not limited to: mouse myelomas P3/NSl/Ag 4-1; MPC- 11; S-194 and Sp 2/0, with Sp 2/0 being generally preferred.
  • the antibody producing cells and myeloma cells are fused in polyethylene glycol, about 1000 mol. wt, at concentrations from about 30% to about 50%.
  • Fused hybridoma cells are selected by growth in hypoxanthine, thymidine and aminopterin supplemented Dulbecco's Modified Eagles Medium (DMEM) by procedures known in the art.
  • DMEM Dulbecco's Modified Eagles Medium
  • Supernatant fluids are collected from growth positive wells on about Days 14, 18, and 21 and are screened for antibody production by an immunoassay such as solid phase immunoradioassay (SPIRA) using human histamine H3 receptor as the antigen.
  • SPIRA solid phase immunoradioassay
  • the culture fluids are also tested in the Ouchterlony precipitation assay to determine the isotype of the mAb.
  • Hybridoma cells from antibody positive wells are cloned by a technique such as the soft agar technique of MacPherson, "Soft Agar Techniques", Tissue Culture Methods and Applications (Kruse and Paterson, (Eds.) Academic Press, 1973).
  • Monoclonal antibodies are produced in vivo by injection of pristane primed Balb/c mice, approximately 0.5 ml per mouse, with about 2 x 10" to about 6 x 10" hybridoma cells about four days after priming. Ascites fluid is collected at approximately eight to twelve days after cell transfer and the monoclonal antibodies are purified by techniques known in the art.
  • In vitro production of anti-human histamine H3 receptor mAb is carried out by growing the hydridoma in DMEM containing about 2% fetal calf serum to obtain sufficient quantities of the specific mAb.
  • the mAb are purified by techniques known in the art.
  • Antibody titers of ascites or hybridoma culture fluids are determined by various serological or immunological assays which include, but are not limited to, precipitation, passive agglutination, enzyme-linked immunosorbent antibody (ELISA) technique and radioimmunoassay (RIA) techniques. Similar assays are used to detect the presence of human histamine H3 receptor in body fluids or tissue and cell extracts.
  • monospecific antibodies may be utilized to produce antibodies specific for human histamine H3 receptor polypeptide fragments, or full-length nascent human histamine H3 receptor polypeptide, or the individual human histamine H3 receptor subunits.
  • monospecific antibodies may be generated which are specific for only one human histamine H3 receptor subunit or the fully functional histamine H3 receptor.
  • pH3R DNA clones, termed pH3R, are identified which encode proteins that, when expressed in any recombinant host, including but not limited to mammalian cells or insect cells or bacteria, form a human histamine H3 receptor sensitive to histamine or other histamine H3 ligands, including but not limited to histamine or R-alpha-methylhistamine.
  • human histamine H3 receptor DNA results in the expression of the properties observed with human histamine H3 receptor. These include: direct activation with histamine or R-alpha- methylhistamine or any other histamine H3 ligand known to those in the field.
  • Histamine is a biogenic amine transmitter that functions in some capacity in nearly all physiological and pathophysiological situations. Histamine acts as a neurotransmitter and neuromodulator in the central nervous system, mediates inflammatory and allergic responses, regulates airway function, controls acid secretion in the stomach, regulates cardiovascular function as well as arterial and venous responses and is without doubt involved in processes yet to be determined. The histamine receptors that mediate these effects are not completely characterized. One way to understand which histamine receptors are involved in these processes is to develop chemical modulators (agonists, antagonists) of the receptors as research tools and therapeutic entities. Recombinant host cells expressing the human histamine H3 receptor can be used to provide materials for a screening method to identify such agonists and antagonists. As such, this invention of the human histamine H3 receptor directly teaches a way to identify new agonists and antagonists that may prove useful as research tools or may be used as therapeutics to treat disorders directly or indirectly involving histamine receptors.
  • the present invention is also directed to methods for screening for compounds which modulate the expression of DNA or RNA encoding human histamine H3 receptor as well as the function of human histamine H3 receptor protein in vivo.
  • Compounds which modulate these activities may be DNA, RNA, peptides, proteins, or non-proteinaceous organic molecules.
  • Compounds may modulate by increasing or attenuating the expression of DNA or RNA encoding human histamine H3 receptor, or the function of human histamine H3 receptor protein.
  • Compounds may also modulate the recombinant human histamine H3 receptor function by modulating intracellular second messenger formation that is mediated by the human histamine H3 receptor.
  • Compounds that modulate the expression of DNA or RNA encoding human histamine H3 receptor or the function of human histamine H3 receptor protein may be detected by a variety of assays.
  • the assay may be a simple "yes/no" assay to determine whether there is a change in expression or function.
  • the assay may be made quantitative by comparing the expression or function of a test sample with the levels of expression or function in a standard sample. Modulators identified in this process are useful as therapeutic agents, research tools, and diagnostic agents.
  • Kits containing human histamine H3 receptor DNA or RNA, antibodies to human histamine H3 receptor, or human histamine H3 receptor protein may be prepared. Such kits are used to detect DNA which hybridizes to human histamine H3 receptor DNA or to detect the presence of human histamine H3 receptor protein or peptide fragments in a sample. Such characterization is useful for a variety of purposes including but not limited to forensic analyses, diagnostic applications, and epidemiological studies.
  • the DNA molecules, RNA molecules, recombinant protein and antibodies of the present invention may be used to screen and measure levels of human histamine H3 receptor DNA, human histamine H3 receptor RNA or human histamine H3 receptor protein.
  • kits suitable for the detection and typing of human histamine H3 receptor Such a kit would comprise a compartmentalized carrier suitable to hold in close confinement at least one container.
  • the carrier would further comprise reagents such as recombinant human histamine H3 receptor protein or anti-human histamine H3 receptor antibodies suitable for detecting human histamine H3 receptor.
  • the canier may also contain a means for detection such as labeled antigen or enzyme substrates or the like.
  • Nucleotide sequences that are complementary to the human histamine H3 receptor encoding DNA sequence can be synthesized for antisense therapy.
  • These antisense molecules may be DNA, stable derivatives of DNA such as phosphorothioates or methylphosphonates, RNA, stable derivatives of RNA such as 2'-O-alkylRNA, or other human histamine H3 receptor anti-sense oligonucleotide mimetics.
  • Human histamine H3 receptor antisense molecules may be introduced into cells by microinjection, liposome encapsulation or by expression from vectors harboring the antisense sequence. Human histamine H3 receptor antisense therapy may be particularly useful for the treatment of diseases where it is beneficial to reduce human histamine H3 receptor activity.
  • Human histamine H3 receptor gene therapy may be used to introduce human histamine H3 receptor into the cells of target organisms.
  • the human histamine H3 receptor gene can be ligated into viral vectors which mediate transfer of the human histamine H3 receptor DNA by infection of recipient host cells.
  • Suitable viral vectors include retrovirus, adenovirus, adeno- associated virus, herpes virus, vaccinia virus, polio virus and the like.
  • human histamine H3 receptor DNA can be transferred into cells for gene therapy by non-viral techniques including receptor-mediated targeted DNA transfer using ligand-DNA conjugates or adenovirus-ligand-DNA conjugates, lipofection membrane fusion or direct microinjection. These procedures and variations thereof are suitable for ex vivo as well as in vivo human histamine H3 receptor gene therapy.
  • Human histamine H3 receptor gene therapy may be particularly useful for the treatment of diseases where it is beneficial to elevate human histamine H3 receptor activity.
  • compositions comprising human histamine H3 receptor DNA, human histamine H3 receptor RNA, or human histamine H3 receptor protein, or modulators of human histamine H3 receptor activity, may be formulated according to known methods such as by the admixture of a pharmaceutically acceptable carrier. Examples of such carriers and methods of formulation may be found in Remington's Pharmaceutical Sciences. To form a pharmaceutically acceptable composition suitable for effective administration, such compositions will contain an effective amount of the protein, DNA, RNA, or modulator.
  • compositions of the invention are administered to an individual in amounts sufficient to treat or diagnose disorders in which modulation of human histamine H3 receptor-related activity is indicated.
  • the effective amount may vary according to a variety of factors such as the individual's condition, weight, sex and age. Other factors include the mode of administration.
  • the pharmaceutical compositions may be provided to the individual by a variety of routes such as subcutaneous, topical, oral and intramuscular.
  • chemical derivative describes a molecule that contains additional chemical moieties which are not normally a part of the base molecule. Such moieties may improve the solubility, half-life, absorption, etc. of the base molecule. Alternatively the moieties may attenuate undesirable side effects of the base molecule or decrease the toxicity of the base molecule. Examples of such moieties are described in a variety of texts, such as Remington's Pharmaceutical Sciences.
  • compositions containing compounds or modulators identified according to this invention as the active ingredient for use in the modulation of human histamine H3 receptor receptors can be administered in a wide variety of therapeutic dosage forms in conventional vehicles for administration.
  • the compounds or modulators can be administered in such oral dosage forms as tablets, capsules (each including timed release and sustained release formulations), pills, powders, granules, elixirs, tinctures, solutions, suspensions, syrups and emulsions, or by injection.
  • they may also be administered in intravenous (both bolus and infusion), intraperitoneal, subcutaneous, topical with or without occlusion, or intramuscular form, all using forms well known to those of ordinary skill in the pharmaceutical arts.
  • An effective but non-toxic amount of the compound desired can be employed as a human histamine H3 receptor modulating agent.
  • the daily dosage of the products may be varied over a wide range from 0.01 to 1,000 mg per patient, per day.
  • the compositions are preferably provided in the form of scored or un-scored tablets containing 0.01, 0.05, 0.1, 0.5, 1.0, 2.5, 5.0, 10.0, 15.0, 25.0, and 50.0 milligrams of the active ingredient for the symptomatic adjustment of the dosage to the patient to be treated.
  • An effective amount of the drug is ordinarily supplied at a dosage level of from about 0.0001 mg/kg to about 100 mg/kg of body weight per day. The range is more particularly from about 0.001 mg/kg to 10 mg/kg of body weight per day.
  • the dosages of the human histamine H3 receptor modulators are adjusted when combined to achieve desired effects. On the other hand, dosages of these various agents may be independently optimized and combined to achieve a synergistic result wherein the pathology is reduced more than it would be if either agent were used alone.
  • compounds or modulators of the present invention may be administered in a single daily dose, or the total daily dosage may be administered in divided doses of two, three or four times daily.
  • compounds or modulators for the present invention can be administered in intranasal form via topical use of suitable intranasal vehicles, or via transdermal routes, using those forms of transdermal skin patches well known to those of ordinary skill in that art.
  • the dosage administration will, of course, be continuous rather than intermittent throughout the dosage regimen.
  • the active agents can be administered concurrently, or they each can be administered at separately staggered times.
  • the dosage regimen utilizing the compounds or modulators of the present invention is selected in accordance with a variety of factors including type, species, age, weight, sex and medical condition of the patient; the severity of the condition to be treated; the route of administration; the renal and hepatic function of the patient; and the particular compound thereof employed.
  • a physician or veterinarian of ordinary skill can readily determine and prescribe the effective amount of the drug required to prevent, counter or arrest the progress of the condition.
  • Optimal precision in achieving concentrations of drug within the range that yields efficacy without toxicity requires a regimen based on the kinetics of the drug's availability to target sites. This involves a consideration of the distribution, equilibrium, and elimination of a drug.
  • the compounds or modulators herein described in detail can form the active ingredient, and are typically administered in admixture with suitable pharmaceutical diluents, excipients or carriers (collectively referred to herein as "carrier” materials) suitably selected with respect to the intended form of administration, that is, oral tablets, capsules, elixirs, syrups and the like, and consistent with conventional pharmaceutical practices.
  • carrier suitable pharmaceutical diluents, excipients or carriers
  • the active drug component can be combined with an oral, non-toxic pharmaceutically acceptable inert carrier such as ethanol, glycerol, water and the like.
  • suitable binders, lubricants, disintegrating agents and coloring agents can also be incorporated into the mixture.
  • suitable binders include, without limitation, starch, gelatin, natural sugars such as glucose or beta-lactose, corn sweeteners, natural and synthetic gums such as acacia, tragacanth or sodium alginate, carboxymethylcellulose, polyethylene glycol, waxes and the like.
  • Lubricants used in these dosage forms include, without limitation, sodium oleate, sodium stearate, magnesium stearate, sodium benzoate, sodium acetate, sodium chloride and the like.
  • Disintegrators include, without limitation, starch, methyl cellulose, agar, bentonite, xanthan gum and the like.
  • the active drug component can be combined in suitably flavored suspending or dispersing agents such as the synthetic and natural gums, for example, tragacanth, acacia, methyl-cellulose and the like.
  • suspending or dispersing agents such as the synthetic and natural gums, for example, tragacanth, acacia, methyl-cellulose and the like.
  • Other dispersing agents which may be employed include glycerin and the like.
  • sterile suspensions and solutions are desired.
  • Isotonic preparations which generally contain suitable preservatives are employed when intravenous administration is desired.
  • Topical preparations containing the active drag component can be admixed with a variety of carrier materials well known in the art, such as, e.g., alcohols, aloe vera gel, allantoin, glycerine, vitamin A and E oils, mineral oil, PPG2 myristyl propionate, and the like, to form, e.g., alcoholic solutions, topical cleansers, cleansing creams, skin gels, skin lotions, and shampoos in cream or gel formulations.
  • carrier materials well known in the art, such as, e.g., alcohols, aloe vera gel, allantoin, glycerine, vitamin A and E oils, mineral oil, PPG2 myristyl propionate, and the like, to form, e.g., alcoholic solutions, topical cleansers, cleansing creams, skin gels, skin lotions, and shampoos in cream or gel formulations.
  • the compounds or modulators of the present invention can also be administered in the form of liposome delivery systems, such as small unilamellar vesicles, large unilamellar vesicles and multilamellar vesicles.
  • Liposomes can be formed from a variety of phospholipids, such as cholesterol, stearylamine or phosphatidylcholines.
  • Compounds of the present invention may also be delivered by the use of monoclonal antibodies as individual carriers to which the compound molecules are coupled.
  • the compounds or modulators of the present invention may also be coupled with soluble polymers as targetable drug carriers.
  • Such polymers can include polyvinyl-pyrrolidone, pyran copolymer, polyhydroxypropylmethacryl-amidephenol, polyhydroxy-ethylaspartamide- phenol, or polyethyl-eneoxidepolylysine substituted with palmitoyl residues.
  • the compounds or modulators of the present invention may be coupled to a class of biodegradable polymers useful in achieving controlled release of a drug, for example, polylactic acid, polyepsilon caprolactone, polyhydroxy butyric acid, polyorthoesters, polyacetals, polydihydro-pyrans, polycyanoacrylates and cross-linked or amphipathic block copolymers of hydrogels.
  • biodegradable polymers useful in achieving controlled release of a drug
  • a drug for example, polylactic acid, polyepsilon caprolactone, polyhydroxy butyric acid, polyorthoesters, polyacetals, polydihydro-pyrans, polycyanoacrylates and cross-linked or amphipathic block copolymers of hydrogels.
  • the compounds or modulators may be administered in capsule, tablet, or bolus form or alternatively they can be mixed in the animals feed.
  • the capsules, tablets, and boluses are comprised of the active ingredient in combination with an appropriate carrier vehicle such as starch, talc, magnesium stearate, or di-calcium phosphate.
  • suitable carrier vehicle such as starch, talc, magnesium stearate, or di-calcium phosphate.
  • These unit dosage forms are prepared by intimately mixing the active ingredient with suitable finely-powdered inert ingredients including diluents, fillers, disintegrating agents, and/or binders such that a uniform mixture is obtained.
  • An inert ingredient is one that will not react with the compounds or modulators and which is non-toxic to the animal being treated.
  • Suitable inert ingredients include starch, lactose, talc, magnesium stearate, vegetable gums and oils, and the like. These formulations may contain a widely variable amount of the active and inactive ingredients depending on numerous factors such as the size and type of the animal species to be treated and the type and severity of the infection.
  • the active ingredient may also be administered as an additive to the feed by simply mixing the compound with the feedstuff or by applying the compound to the surface of the feed. Alternatively the active ingredient may be mixed with an inert carrier and the resulting composition may then either be mixed with the feed or fed directly to the animal.
  • Suitable inert carriers include corn meal, citrus meal, fermentation residues, soya grits, dried grains and the like.
  • the active ingredients are intimately mixed with these inert carriers by grinding, stirring, milling, or tumbling such that the final composition contains from 0.001 to 5% by weight of the active ingredient.
  • the compounds or modulators may alternatively be administered parenterally via injection of a formulation consisting of the active ingredient dissolved in an inert liquid carrier. Injection may be either intramuscular, intraruminal, intratracheal, or subcutaneous.
  • the injectable formulation consists of the active ingredient mixed with an appropriate inert liquid carrier.
  • Acceptable liquid carriers include the vegetable oils such as peanut oil, cotton seed oil, sesame oil and the like as well as organic solvents such as solketal, glycerol formal and the like.
  • aqueous parenteral formulations may also be used.
  • the vegetable oils are the preferred liquid carriers.
  • the formulations are prepared by dissolving or suspending the active ingredient in the liquid earner such that the final formulation contains from 0.005 to 10% by weight of the active ingredient.
  • Topical application of the compounds or modulators is possible through the use of a liquid drench or a shampoo containing the instant compounds or modulators as an aqueous solution or suspension.
  • These formulations generally contain a suspending agent such as bentonite and normally will also contain an antifoaming agent.
  • Formulations containing from 0.005 to 10% by weight of the active ingredient are acceptable.
  • Preferred formulations are those containing from 0.01 to 5% by weight of the instant compounds or modulators.
  • First strand synthesis Approximately 5 ⁇ g of human thalamus mRNA (Clonetech) was used to synthesize cDNA using the cDNA synthesis kit (Life Technologies). 2 ⁇ l of Not 1 primer adapter was added to 5 ⁇ l of mRNA and the mixture was heated to 70 ° C for ten minutes and placed on ice . The following reagents were added on ice: 4 ⁇ l of 5x first strand buffer (250mM TRIS-HCl (pH8.3), 375mM KC1, 15mMMgCl 2 ), 2 ⁇ l of 0.1M DTT, lOmM dNTP (nucleotide triphosphates) mix and l ⁇ l of DEPC treated water. The reaction was incubated at 42 ° C for five minutes. Finally, 5 ⁇ l of Superscript RT II was added and incubated at 42 ° C for two additional hours. The reaction was terminated on ice.
  • 5x first strand buffer 250mM TRIS-HCl (p
  • Second strand synthesis The first strand product was adjusted to 93 ⁇ l with water and the following reagents were added on ice: 30 ⁇ l of 5x 2nd strand buffer (100 mM TRIS-HCl (pH6.9), 450 mM KC1, 23 mM MgCl 2 , 0.75 mM ⁇ -NAD+, 50mM (NH 4 )
  • the pellet was washed with 70% ethanol and dried down at 37°C to remove the residual ethanol.
  • the double stranded DNA pellet was re-suspended in 25 ⁇ l of water and the following reagents were added: 10 ⁇ l of 5x T4 DNA ligase buffer, 10 ⁇ l of Sail adapters and 5 ⁇ l of T4 DNA ligase.
  • the ingredients were mixed gently and ligated overnight at 16° C.
  • the ligation mix was extracted with phenol :chloroform:isoamyl alcohol, vortexed thoroughly and centrifuged at room temperature for five minutes at 14,000 x g to separate the phases.
  • the aqueous phase was transferred to a new tube and the volume adjusted to 100 ml with water.
  • the purified DNA was size selected on a chromaspin 1000 column (Clontech) to eliminate the smaller cDNA molecules.
  • the double stranded DNA was digested with Notl restriction enzyme for three to four hours at 37° C.
  • the restriction digest was electrophoresed on a 0.8 % low melt agarose gel.
  • the cDNA in the range of 1 to 5 kb was cut out and purified using Gelzyme (Invitrogen).
  • the product was extracted with phenol: chloroform and precipitated with NH OAc and absolute ethanol.
  • the pellet was washed with 70% ethanol and re-suspended in 10 ml of water.
  • the cDNA was split up into 5 tubes (2 ⁇ l each) and the ligation reactions were set up by adding 4.5 ⁇ l of water, 2 ⁇ l of 5x ligation buffer, 1 ⁇ l of p-Sport vector DNA (cut with Sal- 1/Notl and phosphatase treated) and 0.5 ⁇ l of T4 DNA ligase. The ligation was incubated at 40° C overnight.
  • the ligation reaction volume was adjusted to a total volume of 20 ⁇ l with water. 5 ml of yeast tRNA, 12.5 ml of 7.5M NH 4 OAc and 70 ml of absolute ethanol (-20°C) was added. The mixture was vortexed thoroughly, and immediately centrifuged at room temperature for twenty minutes at 14,000 x g. The pellets were washed in 70% ethanol and each pellet was re-suspended in 5 ml of water.
  • ligations 25 ml were pooled and 100 ⁇ l of DH10B electro-competent cells (Life Technologies) were electroporated with 1 ml of DNA (total of twenty electroporations), then plated out on ampicillin plates to determine the number of recombinants (cfu) per ⁇ l.
  • the entire library was seeded into 2 liters of Super Broth and maxipreps were made using Promega Maxi Prep kit and purified on cesium chloride gradients.
  • Electromax DH10B cells (Life Technologies). The volume was adjusted to 1 ml with SOC media and incubated for one hour at 37°C with shaking. The library was then plated out on 50 150cm 2 plates containing LB to a density of 5000 colonies per plate. These were grown overnight at 37°C.
  • a histamine H3 receptor probe was generated by polymerase chain reaction using the following primer pair. 5' oligo: 5* ACTGGTACGAAACCTCCTTCTGGCTC 3* [SEQ.ID. NO.: 2] and 3' oligo: 5' CACCCAGCCTCCAGTCCAGCCAGTGAG 3' [SEQ ID NO: 1].
  • the final probe sequence is shown in Figure 6. Amplification was cycled 35 times with a 50 to 60°C annealing temperature and human thalamus cDNA as template. The PCR fragment that was generated (400-500 bp) was 32P-labelled using the Klenow fragment of DNA polymerase I and a oligo labeling kit (Pharmacia). The fragment was then cleaned by one passage through a S-200 column (Pharmacia).
  • the library colonies are lifted on nitrocellulose filters and cross-linked via UV irradiation (Stratagene). Filters were washed three times in buffer (50 mM TRIS, 1 M NaCl, 2mM EDTA, 1% SDS) at 42°C . Filters were then pre-hybridized in 1:1 Southern Prehyb: Formamide with salmon sperm DNA (50mg, boiled) for six hours at 42°C. Filters were then hybridized with the probe (1x10 counts/ml) overnight. The filters were then washed one time with 2 x SSC/0.2 % SDS at room temperature for fifteen minutes, two times with 0.2 x SSC/0.1 % SDS at 45°C for thirty minutes each. Filters were then wrapped in plastic wrap and exposed to film (Kodak) overnight at -80°C.
  • buffer 50 mM TRIS, 1 M NaCl, 2mM EDTA, 1% SDS
  • Filters were then pre-hybridized in 1:1 Southern Preh
  • the human histamine H3 receptor cDNAs (collectively referred to as pH3R) were cloned into the mammalian expression vector pCIneo.
  • the human histamine H3 receptor cDNA clone was isolated from the human thalamus cDNA library.
  • the full length cDNA was used as the template for PCR using specific primers with EcoRl (5'AAC GTT GAA TTC GCC ACC ATG GAG CGC GCG CCG CCC GAC GGG CCG CTG AAC3') [SEQ.ID.NO.:3] and Notl (5'AAC GTT GCG GCC GCA GGC TCT GGT GGG CCA CTC ACT TCC AG3') [SEQ.ID.NO.:4] sites for cloning.
  • the PCR product was purified on a column (Wizard PCR DNA purification kit from Promega) and digested with Not I and EcoRl (NEB) to create cohesive ends. The product was purified by a low melting agarose gel electrophoresis.
  • the pCIneo vector was digested with EcoRl and Notl enzymes and subsequently purified on a low melt agarose gel.
  • the linear vector was used to ligate to the human histamine H3 receptor cDNA inserts. Recombinants were isolated, designated human histamine H3 receptor, and used to transfect mammalian cells (L-cells) by CaPO ⁇ DNA precipitation.
  • Stable cell clones were selected by growth in the presence of G418. Single G418 resistant clones were isolated and shown to contain the intact human histamine H3 receptor gene. Clones containing the human histamine H3 receptor cDNAs were analyzed for pH3R expression by measuring inhibition of adenylate cyclase in response to histamine ( Figure 5) according to the method of (Konig et al. (1991)) or by directly measuring cAMP accumulation by radioimmunoassay using Flashplates (NEN). Expression was also analyzed using [ 3 H]-N-alpha-methylhistamine binding assays (Clark et al. (1992)). Recombinant plasmids containing human histamine H3 receptor encoding DNA were used to transform the mammalian COS or CHO cells or HEK293 or L-cells.
  • Cells expressing human histamine H3 receptor are used to test for expression of human histamine H3 receptor and for [ 3 H]-N-alpha-methylhistamine binding activity. These cells are used to identify and examine other compounds for their ability to modulate, inhibit or activate the human histamine H3 receptor and to compete for radioactive histamine binding.
  • Cassettes containing the human histamine H3 receptor cDNA in the positive orientation with respect to the promoter are ligated into appropriate restriction sites 3' of the promoter and identified by restriction site mapping and/or sequencing.
  • These cDNA expression vectors are introduced into fibroblastic host cells for example COS-7 (ATCC# CRL1651), and CV-1 tat rSackevitz et al., Science (1987) 238:1575], 293, L (ATCC# CRL6362)] by standard methods including but not limited to electroporation, or chemical procedures (cationic liposomes, DEAE dextran, calcium phosphate).
  • Transfected cells and cell culture supernatants are harvested and analyzed for human histamine H3 receptor expression as described herein.
  • All of the vectors used for mammalian transient expression can be used to establish stable cell lines expressing human histamine H3 receptor.
  • Unaltered human histamine H3 receptor cDNA constructs cloned into expression vectors are expected to program host cells to make human histamine H3 receptor protein.
  • the transfection host cells include, but are not limited to, CV-l-P [Sackevitz et al., Science (1987) 238:1575], tk-L fWigler et al., Cell (1977) 11:223], NS/0, and dHFr- CHO [Kaufman and Sharp, J. Mol. Biol. (1982) 159:601].
  • Co-transfection of any vector containing human histamine H3 receptor cDNA with a drug selection plasmid including, but not limited to G418, aminoglycoside phosphotransferase; hygromycin, hygromycin-B phosphotransferase; APRT, xanthine-guanine phosphoribosyl- transferase, will allow for the selection of stably transfected clones.
  • Levels of human histamine H3 receptor are quantitated by the assays described herein.
  • Human histamine H3 receptor cDNA constructs are also ligated into vectors containing amplif ⁇ able drug-resistance markers for the production of mammalian cell clones synthesizing the highest possible levels of human histamine H3 receptor. Following introduction of these constructs into cells, clones containing the plasmid are selected with the appropriate agent, and isolation of an over-expressing clone with a high copy number of plasmids is accomplished by selection in increasing doses of the agent.
  • the expression of recombinant human histamine H3 receptor is achieved by transfection of full-length human histamine H3 receptor cDNA into a mammalian host cell. Characterization of Human Histamine H3 Receptor
  • Mouse L cells were transfected with pH3R and selected in the presence of neomycin for ten days. Individual colonies were picked and grown in 6-well dishes. Cells were then plated onto 96-well plates and grown to confluency. Cells were incubated for twenty minutes with isobutylmethylxanthine (1 mM). Cells were then stimulated with histamine (lOOnM - lOOuM) for five minutes. Cells were then stimulated with forskolin (3uM) and allowed to incubate at 37°C for twenty minutes. Cells were then treated with 0.1N hydrochloric acid. Cells were then frozen and thawed.
  • L cells that inhibited forskolin-stimulated cAMP accumulation as described above were grown in 150 cm 2 tissue culture dishes. Cells were washed with saline solution, scraped with a cell scraper and collected by centrifugation (1000 rpm, five minutes). L cells expressing
  • the nucleotide sequences of pH3R receptor revealed a single large open reading frame of about 1335 base pairs.
  • the cDNA's have 5' and 3 '-untranslated extensions of about 298 and about 1066 nucleotides for pH3R.
  • the first in-frame methionine was designated as the initiation codon for an open reading frame that predicts a human histamine H3 receptor protein with an estimated molecular mass (M r ) of about 48656.
  • the predicted human histamine H3 receptor protein was aligned with nucleotide and protein databases and found to be related to the human histamine HI and human histamine H2 receptors. Approximately 25% of the amino acids in human histamine H3 receptor were highly conserved, showing at least 25% amino acid identity within the histamine H2 receptor, 28% with the histamine HI receptor, and approximately 25% with the family of biogenic amine G-protein coupled receptors. The conserved motifs found in this family of receptors, such as seven conserved hydrophobic domains, were also found in the human histamine H3 receptor sequence. The human histamine H3 receptor protein contained the conserved aspartate residue found in the third transmembrane domain of all biogenic amine receptors.
  • the human histamine H3 receptor protein contained the conserved asparagine residue found in the first transmembrane domain of all biogenic amine receptors.
  • the human histamine H3 receptor protein contained the conserved arginine residue found in the third transmembrane domain of all biogenic amine receptors.
  • the human histamine H3 receptor protein contained the conserved tryptophan residue found in the fourth transmembrane domain of all biogenic amine receptors.
  • the human histamine H3 receptor protein contained the conserved phenylalanine residue found in the fifth transmembrane domain of all biogenic amine receptors.
  • the human histamine H3 receptor protein contained the conserved proline residue found in the sixth transmembrane domain of all biogenic amine receptors.
  • the human histamine H3 receptor protein contained the conserved tyrosine residue found in the seventh transmembrane domain of all biogenic amine receptors.
  • Recombinant human histamine H3 receptor is produced in E. coli following the transfer of the human histamine H3 receptor expression cassette into K coli expression vectors, including but not limited to, the pET series (Novagen).
  • the pET vectors place human histamine H3 receptor expression under control of the tightly regulated bacteriophage T7 promoter.
  • expression of human histamine H3 receptor is induced when an appropriate lac substrate (IPTG) is added to the culture.
  • IPTG lac substrate
  • Baculovirus vectors which are derived from the genome of the AcNPV virus, are designed to provide high-level expression of cDNA in the Sf9 line of insect cells (ATCC CRL# 1711).
  • Recombinant baculovirases expressing human histamine H3 receptor cDNA is produced by the following standard methods (InVitrogen Maxbac Manual): the human histamine H3 receptor cDNA constructs are ligated into the polyhedrin gene in a variety of baculovirus transfer vectors, including the pAC360 and the BlueBac vector (InVitrogen).
  • Recombinant baculovirases are generated by homologous recombination following co-transfection of the baculovirus transfer vector and linearized AcNPV genomic DNA [P. A. Kitts, Nuc. Acid. Res. (1990) 18:5667] into Sf9 cells.
  • Recombinant pAC360 viruses are identified by the absence of inclusion bodies in infected cells and recombinant pBlueBac viruses are identified on the basis of ⁇ -galactosidase expression (M. D. Summers and G. E. Smith, Texas Agriculture Exp. Station Bulletin No. 1555). Following plaque purification, human histamine H3 receptor expression is measured by the assays described herein.
  • the cDNA encoding the entire open reading frame for human histamine H3 receptor is inserted into the BamHI site of pBlueBacII. Constructs in the positive orientation are identified by sequence analysis and used to transfect Sf9 cells in the presence of linear AcNPV mild type DNA.
  • Authentic, active human histamine H3 receptor is found in the cytoplasm of infected cells. Active human histamine H3 receptor is extracted from infected cells by hypotonic or detergent lysis.
  • Example 7 CLONING OF HUMAN HISTAMINE H3 RECEPTOR cDNA INTO A YEAST EXPRESSION
  • Recombinant human histamine H3 receptor is produced in the yeast S. cerevisiae following the insertion of the optimal human histamine H3 receptor cDNA cistron into expression vectors designed to direct the intracellular or extracellular expression of heterologous proteins.
  • vectors such as EmBLyex4 or the like are ligated to the human histamine H3 receptor cistron [Rinas et al., Biotechnology (1999) 8:543- 545; Horowitz et al., J. Biol. Chem. (1989) 265:4189-4192].
  • the human histamine H3 receptor cistron is ligated into yeast expression vectors which fuse a secretion signal (a yeast or mammalian peptide) to the NH2 terminus of the human histamine
  • H3 receptor protein [M. A. Jacobson, Gene (1989) 85:511-516; L. Riett and N. Bellon, Biochem. (1989) 28:2941-2949].
  • vectors include, but are not limited to pAVEl>6, which fuses the human serum albumin signal to the expressed cDNA [O. Steep, Biotechnology (1990) 8:42-46], and the vector pL8PL which fuses the human lysozyme signal to the expressed cDNA [Y. Yamamoto, Biochem. 28:2728-2732].
  • human histamine H3 receptor is expressed in yeast as a fusion protein conjugated to ubiquitin utilizing the vector pVEP [D. J. Ecker, J. Biol. Chem. (1989) 264:7715-7719; E. A. Sabin, Biotechnology (1989) 7:705-709; D. P. McDonnell, Mol. Cell Biol. (1989) 9:5517-5523].
  • the levels of expressed human histamine H3 receptor are determined by the assays described herein.
  • Figure 11 shows that using recombinant host cells expressing the human histamine H3 receptor, the expected inhibition of histamine activity in increasing amounts of antagonist.
  • Figure 12 shows that the compound GT-2331 acts as an agonist of the human histamine H3 receptor, and that its agonist activity is blocked by a known histamine H3 receptor antagonist.

Abstract

DNAs encoding the human histamine H3 receptor have been cloned and characterized. The recombinant protein is capable of forming biologically active histamine H3 receptor protein. The cDNA's have been expressed in recombinant host cells which produce active recombinant protein. The recombinant protein is also purified from the recombinant host cells. In addition, the recombinant host cells are utilized to establish a method for identifying modulators of the receptor activity, and receptor modulators are identified.

Description

TITLE OF THE INVENTION
AGONISTS OF RECOMBINANT HUMAN HISTAMINE H3 RECEPTOR
BACKGROUND OF THE INVENTION
Histamine is a multifunctional chemical transmitter that signals through cell surface receptors that are linked to intracellular pathways via guanine nucleotide binding proteins. This class of cell surface receptors is called G-protein coupled receptors or GPCRs. There are currently three subtypes of histamine receptors that have been defined pharmacologically and have been divided into HI, H2, and H3 classifications (HiU et al. (1997)). The HI histamine receptor has been cloned (Yamashita et al. (1991)) and is the target of drugs such as diphenhydramine to block the effects of histamine in allergic responses. The H2 histamine receptor has been cloned (Gantz et al. (1991)) and is the target of drugs such as ranitidine to block the effects of histamine on acid secretion in the stomach. The third subtype of histamine receptor was hypothesized to exist in 1983 (Arrang et al. (1983)). It is believed to function as a presynaptic auto-receptor in histamine containing neurons in the central nervous system and as a presynaptic hetero-receptor in non-histamine containing neurons. One of the functions of the H3 receptor is to regulate neurotransmitter release at the presynaptic site. Histamine H3 receptors are thus expressed in the central nervous system, but have also been pharmacologically identified in heart, lung, and stomach, and have been hypothesized to exist in other tissues.
H3 antagonists, (i.e. compounds that block the effect of histamine at the H3 receptor), have been hypothesized to be useful for the treatment of a variety of central and peripheral nervous system disorders. H3 agonists (i.e. compounds that mimic the effect of histamine at the H3 receptor) have been hypothesized to be useful for the treatment of cardiovascular function, immune function, asthma, and gastrointestinal disorders. We have previously shown that the H3 receptor cDNA can be expressed in mammalian cells and exhibits characteristics similar to those predicted in mammalian tissues with respect to most known agonists and antagonists. It was also proposed that the H3 cDNA expressed in mammalian cells could be used to identify agonist compounds. The use of mammalian tissues, particularly human, to identify agonists and antagonists is often confounded by the complexity of the receptor systems controlling tissue function. The use of recombinant receptors circumvents some of the complexities that can confound data interpretation from tissues.
SUMMARY OF THE INVENTION
A DNA molecule encoding a human histamine H3 receptor has been cloned and characterized and it represents a novel member of the class of receptors that couple to G- proteins. Using a recombinant expression system functional DNA molecules encoding the human histamine H3 receptor have been isolated. The biological and structural properties of these proteins are disclosed, as is the amino acid and nucleotide sequence. The recombinant protein is useful for a variety of purposes, including but not limited to identifying modulators of the human histamine H3 receptor. Modulators identified in the assays disclosed herein are useful, for example, as therapeutic agents, and diagnostic agents. Indications for said therapeutic agents include, but are not limited to, central nervous system disorders, for example depression, anxiety, psychoses (for example schizophrenia), tardive dyskinesia, Parkinson's disease, obesity, hypertension, Tourette's syndrome, sexual dysfunction, drug addiction, drug abuse, cognitive disorders, Alzheimer's disease, senile dementia, obsessive- compulsive behavior, panic attacks, pain, social phobias, eating disorders and anorexia, cardiovascular and cerebrovascular disorders, non-insulin dependent diabetes mellitus, hyperglycemia, constipation, arehythmia, disorders of the neuroendrocrine system, stress, and spasticity, as well as acid secretin, ulcers, airway constriction, asthma, allergy, inflammation, and prostate dysfunction. The recombinant DNA molecules, and portions thereof, are useful for isolating homologues of the DNA molecules, identifying and isolating genomic equivalents of the DNA molecules, and identifying, detecting or isolating mutant forms of the DNA molecules.
The present invention demonstrates how a simple recombinant system can show properties of molecules that are not predicted based on effects in tissues. Exemplified are several molecules (including burimamide, chloroproxyfan, and GT-2331) that are believed to be or have been reported to be histamine H3 receptor antagonists. These molecules, when tested in recombinant H3 receptor assays behave as full or partial receptor agonists. This feature of these molecules is not predicted based on their reported properties in tissues. The agonism exhibited by these compounds is similar that seen by histamine itself and furthermore can be blocked by known H3 receptor antagonists such as clobenpropit.
The present invention relates to the identification compounds having agonist activity on recombinant human histamine H3 receptor, and the uses thereof.
BRIEF DESCRIPTION OF THE DRAWING
Figure 1, Panels A and B: The complete nucleotide sequence of human histamine H3 receptor including untranslated regions is shown.
Figure 2: The nucleotide sequence of the coding region for the human histamine H3 receptor is shown.
Figure 3: The amino acid sequence of human histamine H3 receptor is shown.
Figure 4: The tissue distribution of the human histamine H3 receptor is shown.
Figure 5: Modulation of human histamine H3 receptor by a known H3 agonists (R-alpha-methylhistamine) and a known H3 antagonist (thioperamide) is shown.
Figure 6: The nucleotide sequence of the pH3R probe is shown.
Figure 7, Panels A and B: Saturation binding of [3H]-N-alpha-methyl-histamine to pH3R expressing L cells is shown.
Figure 8: The Histamine H3 receptor agonist activity of chloroproxyfan is shown. Figure 9: The Histamine H3 receptor agonist activity of burimamide is shown.
Figure 10: The Histamine H3 receptor agonist activity of chloroproxyfan, burimamide, impromidine and GT-2331 is shown.
Figure 11, Panels A and B: The Histamine H3 receptor agonist activity of histamine blocked by the antagonist activity of clobenpropit is shown.
Figure 12, Panels A and B: The Histamine H3 receptor agonist activity of GT-2331 blocked by the antagonist activity of clobenpropit is shown.
DETAILED DESCRIPTION
The present invention relates to DNA encoding human histamine H3 receptor which was isolated from a cDNA library from human thalamus. The human histamine H3 receptor, as used herein, refers to protein which can specifically function as a receptor for histamine of the H3 subclass.
The complete amino acid sequence of human histamine H3 receptor was not previously known, nor was the complete nucleotide sequence encoding human histamine H3 receptor known. This is the first reported cloning of a full-length DNA molecule encoding human histamine H3 receptor. It is predicted that a wide variety of cells and cell types will contain the described human histamine H3 receptor. Vertebrate cells capable of producing human histamine H3 receptor include, but are not limited to human histamme H3 receptor cells isolated from cells that show sensitivity to or bind histamine.
Other cells and cell lines may also be suitable for use to isolate human histamine H3 receptor cDNA. Selection of suitable cells may be done by screening for inhibition of adenylate cyclase in response to histamine. Human histamine H3 receptor activity can be monitored by performing a 3H-alphamethylhistamine binding assay (Pollard et al. (1993)) or by direct measurement of inhibition of adenylate cyclase due to human histamine H3 receptor activation or by incorporation of GTP-gamma-S (Clark et al. (1993)) Cells which possess human histamine H3 receptor activity in this assay may be suitable for the isolation of human histamine H3 receptor DNA or mRNA.
Any of a variety of procedures known in the art may be used to molecularly clone human histamine H3 receptor DNA. These methods include, but are not limited to, direct functional expression of the human histamine H3 receptor genes following the construction of a human histamine H3 receptor-containing cDNA library in an appropriate expression vector system. Another method is to screen human histamine H3 receptor-containing cDNA library constructed in a bacteriophage or plasmid shuttle vector with a labelled oligonucleotide probe designed from the amino acid sequence of the human histamine H3 receptor subunits. An additional method consists of screening a human histamine H3 receptor-containing cDNA library constructed in a bacteriophage or plasmid shuttle vector with a partial cDNA encoding the human histamine H3 receptor protein. This partial cDNA is obtained by the specific PCR amplification of human histamine H3 receptor DNA fragments through the design of degenerate oligonucleotide primers from the amino acid sequence of the purified human histamine H3 receptor protein.
Another method is to isolate RNA from human histamine H3 receptor-producing cells and translate the RNA into protein via an |n vitro or an in vivo translation system. The translation of the RNA into a peptide or a protein will result in the production of at least a portion of the human histamine H3 receptor protein which can be identified by, for example, immunological reactivity with an anti-human histamine H3 receptor antibody or by biological activity of human histamine H3 receptor protein. In this method, pools of RNA isolated from human histamine H3 receptor-producing cells can be analyzed for the presence of an RNA which encodes at least a portion of the human histamine H3 receptor protein. Further fractionation of the RNA pool can be done to purify the human histamine H3 receptor RNA from non-human histamine H3 receptor RNA. The peptide or protein produced by this method may be analyzed to provide amino acid sequences which in turn are used to provide primers for production of human histamine H3 receptor cDNA, or the RNA used for translation can be analyzed to provide nucleotide sequences encoding human histamine H3 receptor and produce probes for this production of human histamine H3 receptor cDNA. This method is known in the art and can be found in, for example, T. Maniatis, E. F. Fritsch and J. Sambrook, Molecular Cloning: A Laboratory Manual, 2 Edition. Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 1989.
It is readily apparent to those skilled in the art that other types of libraries, as well as libraries constructed from other cells or cell types, may be useful for isolating human histamine H3 receptor-encoding DNA. Other types of libraries include, but are not limited to, cDNA libraries derived from other cells, from organisms other than human, and genomic DNA libraries that include YAC (yeast artificial chromosome) and cosmid libraries.
It is readily apparent to those skilled in the art that suitable cDNA libraries may be prepared from cells or cell lines which have human histamine H3 receptor activity. The selection of cells or cell lines for use in preparing a cDNA library to isolate human histamine H3 receptor cDNA may be done by first measuring cell associated human histamine H3 receptor activity using the measurement of human histamine H3 receptor-associated biological activity or a H-histamine ligand binding assay or H-N-methylhistamine ligand binding assay or any radioligand binding involving a ligand that has the ability to bind to the human histamine H3 receptor.
Preparation of cDNA libraries can be performed by standard techniques well known in the art. Well known cDNA library construction techniques can be found for example, in T. Maniatis, E. F. Fritsch and J. Sambrook, Molecular Cloning: A Laboratory Manual. 2nd Edition, Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 1989.
It is also readily apparent to those skilled in the art that DNA encoding human histamine H3 receptor may also be isolated from a suitable genomic DNA library. Construction of genomic DNA libraries can be performed by standard techniques well known in the art. Well known genomic DNA library construction techniques can be found in T. Maniatis, E. F. Fritsch and J. Sambrook, Molecular Cloning: A Laboratory Manual, 2nd Edition. Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 1989.
In order to clone the human histamine H3 receptor gene by the above methods, the amino acid sequence of human histamine H3 receptor may be necessary. To accomplish this, human histamine H3 receptor protein may be purified and partial amino acid sequence determined by automated sequenators. It is not necessary to determine the entire amino acid sequence, but the linear sequence of two regions of six to eight amino acids from the protein is determined for the production of primers for PCR amplification of a partial human histamine H3 receptor DNA fragment.
Once suitable amino acid sequences have been identified, the DNA sequences capable of encoding them are synthesized. Because the genetic code is degenerate, more than one codon may be used to encode a particular amino acid, and therefore, the amino acid sequence can be encoded by any of a set of similar DNA oligonucleotides. Only one member of the set will be identical to the human histamine H3 receptor sequence but will be capable of hybridizing to human histamine H3 receptor DNA even in the presence of DNA oligonucleotides with mismatches. The mismatched DNA oligonucleotides may still sufficiently hybridize to the human histamine H3 receptor DNA to permit identification and isolation of human histamine H3 receptor encoding DNA. DNA isolated by these methods can be used to screen DNA libraries from a variety of cell types, from invertebrate and vertebrate sources, and to isolate homologous genes.
Purified biologically active human histamine H3 receptor may have several different physical forms. Human histamine H3 receptor may exist as a full-length nascent or unprocessed polypeptide, or as partially processed polypeptides or combinations of processed polypeptides. The full-length nascent human histamine H3 receptor polypeptide may be post-translationally modified by specific proteolytic cleavage events which result in the formation of fragments of the full-length nascent polypeptide. A fragment, or physical association of fragments may have the full biological activity associated with human histamine H3 receptor, however, the degree of human histamine H3 receptor activity may vary between individual human histamine H3 receptor fragments and physically associated human histamine H3 receptor polypeptide fragments.
The cloned human histamine H3 receptor DNA obtained through the methods described herein may be recombinantly expressed by molecular cloning into an expression vector containing a suitable promoter and other appropriate transcription regulatory elements, and transferred into prokaryotic or eukaryotic host cells to produce recombinant human histamine H3 receptor protein. Techniques for such manipulations are fully described in Maniatis et al., supra, and are well known in the art.
Expression vectors are defined herein as DNA sequences that are required for the transcription of cloned copies of genes and the translation of their mRNAs in an appropriate host. Such vectors can be used to express eukaryotic genes in a variety of hosts such as bacteria including E. coli, blue-green algae, plant cells, insect cells, fungal cells including yeast cells, and animal cells.
Specifically designed vectors allow the shuttling of DNA between hosts such as bacteria- yeast or bacteria-animal cells or bacteria-fungal cells or bacteria-invertebrate cells. An appropriately constructed expression vector should contain: an origin of replication for autonomous replication in host cells, selectable markers, a limited number of useful restriction enzyme sites, a potential for high copy number, and active promoters. A promoter is defined as a DNA sequence that directs RNA polymerase to bind to DNA and initiate RNA synthesis. A strong promoter is one which causes mRNAs to be initiated at high frequency. Expression vectors may include, but are not limited to, cloning vectors, modified cloning vectors, specifically designed plasmids or viruses.
A variety of mammalian expression vectors may be used to express recombinant human histamine H3 receptor in mammalian cells. Commercially available mammalian expression vectors which may be suitable for recombinant human histamine H3 receptor expression, include but are not limited to, pMAMneo (Clontech), pcDNA3 (invitrogen), pMClneo (Stratagene), pXTl (Stratagene), pSG5 (Stratagene), pCIneo (Promega), EBO-pSV2-neo (ATCC 37593) pBPV-l(8-2) (ATCC 37110), pdBPV-MMTneo(342-12) (ATCC 37224), pRSVgpt (ATCC 37199), pRSVneo (ATCC 37198), pSV2-dhfr (ATCC 37146), pUCTag (ATCC 37460), and 1ZD35 (ATCC 37565).
A variety of bacterial expression vectors may be used to express recombinant human histamine H3 receptor in bacterial cells. Commercially available bacterial expression vectors which may be suitable for recombinant human histamine H3 receptor expression include, but are not limited to pET vectors (Novagen) and pQE vectors (Qiagen).
A variety of fungal cell expression vectors may be used to express recombinant human histamine H3 receptor in fungal cells such as yeast. Commercially available fungal cell expression vectors which may be suitable for recombinant human histamine H3 receptor expression include but are not limited to pYES2 (Invitrogen) and Pichia expression vector (Invitrogen).
A variety of insect cell expression vectors may be used to express recombinant human histamine H3 receptor in insect cells. Commercially available insect cell expression vectors which may be suitable for recombinant expression of human histamine H3 receptor include but are not limited to pBlueBacII (Invitrogen).
DNA encoding human histamine H3 receptor may be cloned into an expression vector for expression in a recombinant host cell. Recombinant host cells may be prokaryotic or eukaryotic, including but not limited to bacteria such as E, coli, fungal cells such as yeast, mammalian cells including but not limited to cell lines of human, bovine, porcine, monkey and rodent origin, and insect cells including but not limited to drosophila and silkworm derived cells. Cell lines derived from mammalian species which may be suitable and which are commercially available, include but are not limited to, CV-1 (ATCC CCL 70), COS-1 (ATCC CRL 1650), COS-7 (ATCC CRL 1651), CHO-K1 (ATCC CCL 61), 3T3 (ATCC CCL 92), NLH/3T3 (ATCC CRL 1658), HeLa (ATCC CCL 2), C127I (ATCC CRL 1616), BS-C-1 (ATCC CCL 26), MRC-5 (ATCC CCL 171), L-cells, and HEK-293 (ATCC CRL1573).
The expression vector may be introduced into host cells via any one of a number of techniques including but not limited to transformation, transfection, protoplast fusion, lipofection, and electroporation. The expression vector-containing cells are clonally propagated and individually analyzed to determine whether they produce human histamine H3 receptor protein. Identification of human histamine H3 receptor expressing host cell clones may be done by several means, including but not limited to immunological reactivity with anti-human histamine H3 receptor antibodies, and the presence of host cell-associated human histamine H3 receptor activity.
Expression of human histamine H3 receptor DNA may also be performed using in vitro produced synthetic niRNA. Synthetic mRNA or rnRNA isolated from human histamine H3 receptor producing cells can be efficiently translated in various cell-free systems, including but not limited to wheat germ extracts and reticulocyte extracts, as well as efficiently translated in cell based systems, including but not limited to microinjection into frog oocytes, with microinjection into frog oocytes being generally prefened.
To determine the human histamine H3 receptor DNA sequence(s) that yields optimal levels of human histamine H3 receptor activity and/or human histamine H3 receptor protein, human histamine H3 receptor DNA molecules including, but not limited to, the following can be constructed: the full-length open reading frame of the human histamine H3 receptor cDNA encoding the 48656 kDa protein from approximately base 299 to approximately base 1634 (these numbers correspond to first nucleotide of first methionine and last nucleotide before the first stop codon) and several constructs containing portions of the cDNA encoding human histamine H3 receptor protein. All constructs can be designed to contain none, all or portions of the 5' or the 3' untranslated region of human histamine H3 receptor cDNA. Human histamine H3 receptor activity and levels of protein expression can be determined following the introduction, both singly and in combination, of these constructs into appropriate host cells. Following determination of the human histamine H3 receptor DNA cassette yielding optimal expression in transient assays, this human histamine H3 receptor DNA construct is transferred to a variety of expression vectors, for expression in host cells including, but not limited to, mammalian cells, baculovirus-infected insect cells, E. coli, and the yeast S. cerevisiae.
Host cell transfectants and microinjected oocytes may be used to assay both the levels of human histamine H3 receptor activity and levels of human histamine H3 receptor protein by the following methods. In the case of recombinant host cells, this involves the co- transfection of one or possibly two or more plasmids, containing the human histamine H3 receptor DNA encoding one or more fragments or subunits. In the case of oocytes, this involves the co-injection of RNAs encoding human histamine H3 receptor protein. Following an appropriate period of time to allow for expression, cellular protein is metabolically labelled with, for example -^S-methionine for twenty-four hours, after which cell lysates and cell culture supernatants are harvested and subjected to immunoprecipitation with polyclonal antibodies directed against the human histamine H3 receptor protein.
Other methods for detecting human histamine H3 receptor activity involve the direct measurement of human histamine H3 receptor activity in whole cells transfected with human histamine H3 receptor cDNA or oocytes injected with human histamine H3 receptor mRNA. Human histamine H3 receptor activity is measured by specific ligand binding and biological characteristics of the host cells expressing human histamine H3 receptor DNA. In the case of recombinant host cells and oocytes expressing human histamine H3 receptor cAMP quantitation and receptor binding techniques are suitable examples of methods that can be used to measure human histamine H3 receptor activity and quantitate human histamine H3 receptor protein.
Levels of human histamine H3 receptor protein in host cells are also quantitated by immunoaffmity and/or ligand affinity techniques. Cells expressing human histamine H3 receptor can be assayed for the number of human histamine H3 receptor molecules expressed by measuring the amount of radioactive histamine or histamine H3 ligand binding to cell membranes. Human histamine H3 receptor-specific affinity beads or human histamine H3 receptor-specific antibodies are used to isolate for example 35S-methionine labeled or unlabelled human histamine H3 receptor protein. Labelled human histamine H3 receptor protein is analyzed by SDS-PAGE. Unlabelled human histamine H3 receptor protein is detected by Western blotting, ELISA or RIA assays employing human histamine H3 receptor specific antibodies.
Because the genetic code is degenerate, more than one codon may be used to encode a particular amino acid, and therefore, the amino acid sequence can be encoded by any of a set of similar DNA oligonucleotides. Only one member of the set will be identical to the human histamine H3 receptor sequence but will be capable of hybridizing to human histamine H3 receptor DNA even in the presence of DNA oligonucleotides with mismatches under appropriate conditions. Under alternate conditions, the mismatched DNA oligonucleotides may still hybridize to the human histamine H3 receptor DNA to permit identification and isolation of human histamine H3 receptor encoding DNA.
DNA encoding human histamine H3 receptor from a particular organism may be used to isolate and purify homologues of human histamine H3 receptor from other organisms. To accomplish this, the first human histamine H3 receptor DNA may be mixed with a sample containing DNA encoding homologues of human histamine H3 receptor under appropriate hybridization conditions. The hybridized DNA complex may be isolated and the DNA encoding the homologous DNA may be purified therefrom.
It is known that there is a substantial amount of redundancy in the various codons which code for specific amino acids. Therefore, this invention is also directed to those DNA sequences which contain alternative codons which code for the eventual translation of the identical amino acid. For purposes of this specification, a sequence bearing one or more replaced codons will be defined as a degenerate variation. Also included within the scope of this invention are mutations either in the DNA sequence or the translated protein which do not substantially alter the ultimate physical properties of the expressed protein. For example, substitution of valine for leucine, arginine for lysine, or asparagine for glutamine may not cause a change in functionality of the polypeptide.
It is known that DNA sequences coding for a peptide may be altered so as to code for a peptide having properties that are different than those of the naturally occurring peptide. Methods of altering the DNA sequences include, but are not limited to site directed mutagenesis. Examples of altered properties include but are not limited to changes in the affinity of an enzyme for a substrate or a receptor for a ligand.
As used herein, a "functional derivative" of human histamine H3 receptor is a compound that possesses a biological activity (either functional or structural) that is substantially similar to the biological activity of human histamine H3 receptor. The term "functional derivatives" is intended to include the "fragments," "variants," "degenerate variants," "analogs" and "homologues" or to "chemical derivatives" of human histamine H3 receptor. The term "fragment" is meant to refer to any polypeptide subset of human histamine H3 receptor. The term "variant" is meant to refer to a molecule substantially similar in structure and function to either the entire human histamine H3 receptor molecule or to a fragment thereof. A molecule is "substantially similar" to human histamine H3 receptor if both molecules have substantially similar structures or if both molecules possess similar biological activity. Therefore, if the two molecules possess substantially similar activity, they are considered to be variants even if the structure of one of the molecules is not found in the other or even if the two amino acid sequences are not identical. The term "analog" refers to a molecule substantially similar in function to either the entire human histamine H3 receptor molecule or to a fragment thereof.
Monospecific antibodies to human histamine H3 receptor are purified from mammalian antisera containing antibodies reactive against human histamine H3 receptor or are prepared as monoclonal antibodies reactive with human histamine H3 receptor using the technique of Kohler and Milstein, Nature (1975) 256:495-497. Monospecific antibody as used herein is defined as a single antibody species or multiple antibody species with homogenous binding characteristics for human histamine H3 receptor. Homogenous binding as used herein refers to the ability of the antibody species to bind to a specific antigen or epitope, such as those associated with the human histamine H3 receptor, as described above. Human histamine H3 receptor specific antibodies are raised by immunizing animals such as mice, rats, guinea pigs, rabbits, goats, horses and the like, with rabbits being preferred, with an appropriate concentration of human histamine H3 receptor either with or without an immune adjuvant.
Pre-immune serum is collected prior to the first immunization. Each animal receives between about 0.1 mg and about 1000 mg of human histamine H3 receptor associated with an acceptable immune adjuvant. Such acceptable adjuvants include, but are not limited to, Freund's complete, Freund's incomplete, alum-precipitate, water in oil emulsion containing Corvnebacterium parvum and tRNA. The initial immunization consists of human histamine H3 receptor in, preferably, Freund's complete adjuvant at multiple sites either subcutaneously (SC), intraperitoneally (IP) or both. Each animal is bled at regular intervals, preferably weekly, to determine antibody titer. The animals may or may not receive booster injections following the initial immunization. Those animals receiving booster injections are generally given an equal amount of the antigen in Freund's incomplete adjuvant by the same route. Booster injections are given at about three week intervals until maximal titers are obtained. At about seven days after each booster immunization or about weekly after a single immunization, the animals are bled, the serum collected, and aliquots are stored at about - 20°C.
Monoclonal antibodies (mAb) reactive with human histamine H3 receptor are prepared by immunizing inbred mice, preferably Balb/c, with human histamine H3 receptor and any fragments thereof. The mice are immunized by the IP or SC route with about 0.1 mg to about 10 mg, preferably about 1 mg, of human histamine H3 receptor in about 0.5 ml buffer or saline incorporated in an equal volume of an acceptable adjuvant, as discussed above. Freund's complete adjuvant is preferred. The mice receive an initial immunization on Day 0 and are rested for about three to thirty weeks, immunized mice are given one or more booster immunizations of about 0.1 to about 10 mg of human histamine H3 receptor in a buffer solution such as phosphate buffered saline by the intravenous (IV) route. Lymphocytes, from antibody positive mice, preferably splenic lymphocytes, are obtained by removing spleens from immunized mice by standard procedures known in the art. Hybridoma cells are produced by mixing the splenic lymphocytes with an appropriate fusion partner, preferably myeloma cells, under conditions which will allow the formation of stable hybridomas. Fusion partners may include, but are not limited to: mouse myelomas P3/NSl/Ag 4-1; MPC- 11; S-194 and Sp 2/0, with Sp 2/0 being generally preferred. The antibody producing cells and myeloma cells are fused in polyethylene glycol, about 1000 mol. wt, at concentrations from about 30% to about 50%. Fused hybridoma cells are selected by growth in hypoxanthine, thymidine and aminopterin supplemented Dulbecco's Modified Eagles Medium (DMEM) by procedures known in the art. Supernatant fluids are collected from growth positive wells on about Days 14, 18, and 21 and are screened for antibody production by an immunoassay such as solid phase immunoradioassay (SPIRA) using human histamine H3 receptor as the antigen. The culture fluids are also tested in the Ouchterlony precipitation assay to determine the isotype of the mAb. Hybridoma cells from antibody positive wells are cloned by a technique such as the soft agar technique of MacPherson, "Soft Agar Techniques", Tissue Culture Methods and Applications (Kruse and Paterson, (Eds.) Academic Press, 1973).
Monoclonal antibodies are produced in vivo by injection of pristane primed Balb/c mice, approximately 0.5 ml per mouse, with about 2 x 10" to about 6 x 10" hybridoma cells about four days after priming. Ascites fluid is collected at approximately eight to twelve days after cell transfer and the monoclonal antibodies are purified by techniques known in the art.
In vitro production of anti-human histamine H3 receptor mAb is carried out by growing the hydridoma in DMEM containing about 2% fetal calf serum to obtain sufficient quantities of the specific mAb. The mAb are purified by techniques known in the art. Antibody titers of ascites or hybridoma culture fluids are determined by various serological or immunological assays which include, but are not limited to, precipitation, passive agglutination, enzyme-linked immunosorbent antibody (ELISA) technique and radioimmunoassay (RIA) techniques. Similar assays are used to detect the presence of human histamine H3 receptor in body fluids or tissue and cell extracts.
It is readily apparent to those skilled in the art that the above described methods for producing monospecific antibodies may be utilized to produce antibodies specific for human histamine H3 receptor polypeptide fragments, or full-length nascent human histamine H3 receptor polypeptide, or the individual human histamine H3 receptor subunits. Specifically, it is readily apparent to those skilled in the art that monospecific antibodies may be generated which are specific for only one human histamine H3 receptor subunit or the fully functional histamine H3 receptor.
DNA clones, termed pH3R, are identified which encode proteins that, when expressed in any recombinant host, including but not limited to mammalian cells or insect cells or bacteria, form a human histamine H3 receptor sensitive to histamine or other histamine H3 ligands, including but not limited to histamine or R-alpha-methylhistamine. The expression of human histamine H3 receptor DNA results in the expression of the properties observed with human histamine H3 receptor. These include: direct activation with histamine or R-alpha- methylhistamine or any other histamine H3 ligand known to those in the field.
Histamine is a biogenic amine transmitter that functions in some capacity in nearly all physiological and pathophysiological situations. Histamine acts as a neurotransmitter and neuromodulator in the central nervous system, mediates inflammatory and allergic responses, regulates airway function, controls acid secretion in the stomach, regulates cardiovascular function as well as arterial and venous responses and is without doubt involved in processes yet to be determined. The histamine receptors that mediate these effects are not completely characterized. One way to understand which histamine receptors are involved in these processes is to develop chemical modulators (agonists, antagonists) of the receptors as research tools and therapeutic entities. Recombinant host cells expressing the human histamine H3 receptor can be used to provide materials for a screening method to identify such agonists and antagonists. As such, this invention of the human histamine H3 receptor directly teaches a way to identify new agonists and antagonists that may prove useful as research tools or may be used as therapeutics to treat disorders directly or indirectly involving histamine receptors.
The present invention is also directed to methods for screening for compounds which modulate the expression of DNA or RNA encoding human histamine H3 receptor as well as the function of human histamine H3 receptor protein in vivo. Compounds which modulate these activities may be DNA, RNA, peptides, proteins, or non-proteinaceous organic molecules. Compounds may modulate by increasing or attenuating the expression of DNA or RNA encoding human histamine H3 receptor, or the function of human histamine H3 receptor protein. Compounds may also modulate the recombinant human histamine H3 receptor function by modulating intracellular second messenger formation that is mediated by the human histamine H3 receptor. Compounds that modulate the expression of DNA or RNA encoding human histamine H3 receptor or the function of human histamine H3 receptor protein may be detected by a variety of assays. The assay may be a simple "yes/no" assay to determine whether there is a change in expression or function. The assay may be made quantitative by comparing the expression or function of a test sample with the levels of expression or function in a standard sample. Modulators identified in this process are useful as therapeutic agents, research tools, and diagnostic agents.
Kits containing human histamine H3 receptor DNA or RNA, antibodies to human histamine H3 receptor, or human histamine H3 receptor protein may be prepared. Such kits are used to detect DNA which hybridizes to human histamine H3 receptor DNA or to detect the presence of human histamine H3 receptor protein or peptide fragments in a sample. Such characterization is useful for a variety of purposes including but not limited to forensic analyses, diagnostic applications, and epidemiological studies. The DNA molecules, RNA molecules, recombinant protein and antibodies of the present invention may be used to screen and measure levels of human histamine H3 receptor DNA, human histamine H3 receptor RNA or human histamine H3 receptor protein. The recombinant proteins, DNA molecules, RNA molecules and antibodies lend themselves to the formulation of kits suitable for the detection and typing of human histamine H3 receptor. Such a kit would comprise a compartmentalized carrier suitable to hold in close confinement at least one container. The carrier would further comprise reagents such as recombinant human histamine H3 receptor protein or anti-human histamine H3 receptor antibodies suitable for detecting human histamine H3 receptor. The canier may also contain a means for detection such as labeled antigen or enzyme substrates or the like.
Nucleotide sequences that are complementary to the human histamine H3 receptor encoding DNA sequence can be synthesized for antisense therapy. These antisense molecules may be DNA, stable derivatives of DNA such as phosphorothioates or methylphosphonates, RNA, stable derivatives of RNA such as 2'-O-alkylRNA, or other human histamine H3 receptor anti-sense oligonucleotide mimetics. Human histamine H3 receptor antisense molecules may be introduced into cells by microinjection, liposome encapsulation or by expression from vectors harboring the antisense sequence. Human histamine H3 receptor antisense therapy may be particularly useful for the treatment of diseases where it is beneficial to reduce human histamine H3 receptor activity.
Human histamine H3 receptor gene therapy may be used to introduce human histamine H3 receptor into the cells of target organisms. The human histamine H3 receptor gene can be ligated into viral vectors which mediate transfer of the human histamine H3 receptor DNA by infection of recipient host cells. Suitable viral vectors include retrovirus, adenovirus, adeno- associated virus, herpes virus, vaccinia virus, polio virus and the like. Alternatively, human histamine H3 receptor DNA can be transferred into cells for gene therapy by non-viral techniques including receptor-mediated targeted DNA transfer using ligand-DNA conjugates or adenovirus-ligand-DNA conjugates, lipofection membrane fusion or direct microinjection. These procedures and variations thereof are suitable for ex vivo as well as in vivo human histamine H3 receptor gene therapy. Human histamine H3 receptor gene therapy may be particularly useful for the treatment of diseases where it is beneficial to elevate human histamine H3 receptor activity.
Pharmaceutically useful compositions comprising human histamine H3 receptor DNA, human histamine H3 receptor RNA, or human histamine H3 receptor protein, or modulators of human histamine H3 receptor activity, may be formulated according to known methods such as by the admixture of a pharmaceutically acceptable carrier. Examples of such carriers and methods of formulation may be found in Remington's Pharmaceutical Sciences. To form a pharmaceutically acceptable composition suitable for effective administration, such compositions will contain an effective amount of the protein, DNA, RNA, or modulator.
Therapeutic or diagnostic compositions of the invention are administered to an individual in amounts sufficient to treat or diagnose disorders in which modulation of human histamine H3 receptor-related activity is indicated. The effective amount may vary according to a variety of factors such as the individual's condition, weight, sex and age. Other factors include the mode of administration. The pharmaceutical compositions may be provided to the individual by a variety of routes such as subcutaneous, topical, oral and intramuscular.
The term "chemical derivative" describes a molecule that contains additional chemical moieties which are not normally a part of the base molecule. Such moieties may improve the solubility, half-life, absorption, etc. of the base molecule. Alternatively the moieties may attenuate undesirable side effects of the base molecule or decrease the toxicity of the base molecule. Examples of such moieties are described in a variety of texts, such as Remington's Pharmaceutical Sciences.
Compounds identified according to the methods disclosed herein may be used alone at appropriate dosages defined by routine testing in order to obtain optimal inhibition of the human histamine H3 receptor or its activity while minimizing any potential toxicity. In addition, co-administration or sequential administration of other agents may be desirable. The present invention also has the objective of providing suitable topical, oral, systemic and parenteral pharmaceutical formulations for use in the novel methods of treatment of the present invention. The compositions containing compounds or modulators identified according to this invention as the active ingredient for use in the modulation of human histamine H3 receptor receptors can be administered in a wide variety of therapeutic dosage forms in conventional vehicles for administration. For example, the compounds or modulators can be administered in such oral dosage forms as tablets, capsules (each including timed release and sustained release formulations), pills, powders, granules, elixirs, tinctures, solutions, suspensions, syrups and emulsions, or by injection. Likewise, they may also be administered in intravenous (both bolus and infusion), intraperitoneal, subcutaneous, topical with or without occlusion, or intramuscular form, all using forms well known to those of ordinary skill in the pharmaceutical arts. An effective but non-toxic amount of the compound desired can be employed as a human histamine H3 receptor modulating agent.
The daily dosage of the products may be varied over a wide range from 0.01 to 1,000 mg per patient, per day. For oral administration, the compositions are preferably provided in the form of scored or un-scored tablets containing 0.01, 0.05, 0.1, 0.5, 1.0, 2.5, 5.0, 10.0, 15.0, 25.0, and 50.0 milligrams of the active ingredient for the symptomatic adjustment of the dosage to the patient to be treated. An effective amount of the drug is ordinarily supplied at a dosage level of from about 0.0001 mg/kg to about 100 mg/kg of body weight per day. The range is more particularly from about 0.001 mg/kg to 10 mg/kg of body weight per day. The dosages of the human histamine H3 receptor modulators are adjusted when combined to achieve desired effects. On the other hand, dosages of these various agents may be independently optimized and combined to achieve a synergistic result wherein the pathology is reduced more than it would be if either agent were used alone.
Advantageously, compounds or modulators of the present invention may be administered in a single daily dose, or the total daily dosage may be administered in divided doses of two, three or four times daily. Furthermore, compounds or modulators for the present invention can be administered in intranasal form via topical use of suitable intranasal vehicles, or via transdermal routes, using those forms of transdermal skin patches well known to those of ordinary skill in that art. To be administered in the form of a transdermal delivery system, the dosage administration will, of course, be continuous rather than intermittent throughout the dosage regimen.
For combination treatment with more than one active agent, where the active agents are in separate dosage formulations, the active agents can be administered concurrently, or they each can be administered at separately staggered times.
The dosage regimen utilizing the compounds or modulators of the present invention is selected in accordance with a variety of factors including type, species, age, weight, sex and medical condition of the patient; the severity of the condition to be treated; the route of administration; the renal and hepatic function of the patient; and the particular compound thereof employed. A physician or veterinarian of ordinary skill can readily determine and prescribe the effective amount of the drug required to prevent, counter or arrest the progress of the condition. Optimal precision in achieving concentrations of drug within the range that yields efficacy without toxicity requires a regimen based on the kinetics of the drug's availability to target sites. This involves a consideration of the distribution, equilibrium, and elimination of a drug.
In the methods of the present invention, the compounds or modulators herein described in detail can form the active ingredient, and are typically administered in admixture with suitable pharmaceutical diluents, excipients or carriers (collectively referred to herein as "carrier" materials) suitably selected with respect to the intended form of administration, that is, oral tablets, capsules, elixirs, syrups and the like, and consistent with conventional pharmaceutical practices.
For instance, for oral administration in the form of a tablet or capsule, the active drug component can be combined with an oral, non-toxic pharmaceutically acceptable inert carrier such as ethanol, glycerol, water and the like. Moreover, when desired or necessary, suitable binders, lubricants, disintegrating agents and coloring agents can also be incorporated into the mixture. Suitable binders include, without limitation, starch, gelatin, natural sugars such as glucose or beta-lactose, corn sweeteners, natural and synthetic gums such as acacia, tragacanth or sodium alginate, carboxymethylcellulose, polyethylene glycol, waxes and the like. Lubricants used in these dosage forms include, without limitation, sodium oleate, sodium stearate, magnesium stearate, sodium benzoate, sodium acetate, sodium chloride and the like. Disintegrators include, without limitation, starch, methyl cellulose, agar, bentonite, xanthan gum and the like.
For liquid forms the active drug component can be combined in suitably flavored suspending or dispersing agents such as the synthetic and natural gums, for example, tragacanth, acacia, methyl-cellulose and the like. Other dispersing agents which may be employed include glycerin and the like. For parenteral administration, sterile suspensions and solutions are desired. Isotonic preparations which generally contain suitable preservatives are employed when intravenous administration is desired.
Topical preparations containing the active drag component can be admixed with a variety of carrier materials well known in the art, such as, e.g., alcohols, aloe vera gel, allantoin, glycerine, vitamin A and E oils, mineral oil, PPG2 myristyl propionate, and the like, to form, e.g., alcoholic solutions, topical cleansers, cleansing creams, skin gels, skin lotions, and shampoos in cream or gel formulations.
The compounds or modulators of the present invention can also be administered in the form of liposome delivery systems, such as small unilamellar vesicles, large unilamellar vesicles and multilamellar vesicles. Liposomes can be formed from a variety of phospholipids, such as cholesterol, stearylamine or phosphatidylcholines.
Compounds of the present invention may also be delivered by the use of monoclonal antibodies as individual carriers to which the compound molecules are coupled. The compounds or modulators of the present invention may also be coupled with soluble polymers as targetable drug carriers. Such polymers can include polyvinyl-pyrrolidone, pyran copolymer, polyhydroxypropylmethacryl-amidephenol, polyhydroxy-ethylaspartamide- phenol, or polyethyl-eneoxidepolylysine substituted with palmitoyl residues. Furthermore, the compounds or modulators of the present invention may be coupled to a class of biodegradable polymers useful in achieving controlled release of a drug, for example, polylactic acid, polyepsilon caprolactone, polyhydroxy butyric acid, polyorthoesters, polyacetals, polydihydro-pyrans, polycyanoacrylates and cross-linked or amphipathic block copolymers of hydrogels.
For oral administration, the compounds or modulators may be administered in capsule, tablet, or bolus form or alternatively they can be mixed in the animals feed. The capsules, tablets, and boluses are comprised of the active ingredient in combination with an appropriate carrier vehicle such as starch, talc, magnesium stearate, or di-calcium phosphate. These unit dosage forms are prepared by intimately mixing the active ingredient with suitable finely-powdered inert ingredients including diluents, fillers, disintegrating agents, and/or binders such that a uniform mixture is obtained. An inert ingredient is one that will not react with the compounds or modulators and which is non-toxic to the animal being treated. Suitable inert ingredients include starch, lactose, talc, magnesium stearate, vegetable gums and oils, and the like. These formulations may contain a widely variable amount of the active and inactive ingredients depending on numerous factors such as the size and type of the animal species to be treated and the type and severity of the infection. The active ingredient may also be administered as an additive to the feed by simply mixing the compound with the feedstuff or by applying the compound to the surface of the feed. Alternatively the active ingredient may be mixed with an inert carrier and the resulting composition may then either be mixed with the feed or fed directly to the animal. Suitable inert carriers include corn meal, citrus meal, fermentation residues, soya grits, dried grains and the like. The active ingredients are intimately mixed with these inert carriers by grinding, stirring, milling, or tumbling such that the final composition contains from 0.001 to 5% by weight of the active ingredient. The compounds or modulators may alternatively be administered parenterally via injection of a formulation consisting of the active ingredient dissolved in an inert liquid carrier. Injection may be either intramuscular, intraruminal, intratracheal, or subcutaneous. The injectable formulation consists of the active ingredient mixed with an appropriate inert liquid carrier. Acceptable liquid carriers include the vegetable oils such as peanut oil, cotton seed oil, sesame oil and the like as well as organic solvents such as solketal, glycerol formal and the like. As an alternative, aqueous parenteral formulations may also be used. The vegetable oils are the preferred liquid carriers. The formulations are prepared by dissolving or suspending the active ingredient in the liquid earner such that the final formulation contains from 0.005 to 10% by weight of the active ingredient.
Topical application of the compounds or modulators is possible through the use of a liquid drench or a shampoo containing the instant compounds or modulators as an aqueous solution or suspension. These formulations generally contain a suspending agent such as bentonite and normally will also contain an antifoaming agent. Formulations containing from 0.005 to 10% by weight of the active ingredient are acceptable. Preferred formulations are those containing from 0.01 to 5% by weight of the instant compounds or modulators.
The following examples illustrate the present invention without, however, limiting the same thereto.
Example 1 CLONING OF HUMAN HISTAMINE H3 RECEPTOR DNA (pH3R)
cDNA Synthesis:
First strand synthesis: Approximately 5 μg of human thalamus mRNA (Clonetech) was used to synthesize cDNA using the cDNA synthesis kit (Life Technologies). 2 μl of Not 1 primer adapter was added to 5μl of mRNA and the mixture was heated to 70 ° C for ten minutes and placed on ice . The following reagents were added on ice: 4μl of 5x first strand buffer (250mM TRIS-HCl (pH8.3), 375mM KC1, 15mMMgCl2), 2μl of 0.1M DTT, lOmM dNTP (nucleotide triphosphates) mix and lμl of DEPC treated water. The reaction was incubated at 42 ° C for five minutes. Finally, 5μl of Superscript RT II was added and incubated at 42 ° C for two additional hours. The reaction was terminated on ice.
Second strand synthesis: The first strand product was adjusted to 93 μl with water and the following reagents were added on ice: 30 μl of 5x 2nd strand buffer (100 mM TRIS-HCl (pH6.9), 450 mM KC1, 23 mM MgCl2, 0.75 mM β-NAD+, 50mM (NH 4)
2SO4), 3 μl of 10 mM dNTP (nucleotide triphosphates), 1 μl R cofi DNA ligase (10 units) 1 μl RNase H (2 units), 4 μl DNA pol I (10 units). The reaction was incubated at 16°C for two hours. The DNA from second strand synthesis was treated with T4 DNA polymerase and placed at 16° C to blunt the DNA ends. The double stranded cDNA was extracted with 150 μl of a mixture of phenol and chloroform (1:1, v:v) and precipitated with 0.5 volumes of 7.5 M NH4OAc and 2 volumes of absolute ethanol. The pellet was washed with 70% ethanol and dried down at 37°C to remove the residual ethanol. The double stranded DNA pellet was re-suspended in 25 μl of water and the following reagents were added: 10 μl of 5x T4 DNA ligase buffer, 10 μl of Sail adapters and 5 μl of T4 DNA ligase. The ingredients were mixed gently and ligated overnight at 16° C. The ligation mix was extracted with phenol :chloroform:isoamyl alcohol, vortexed thoroughly and centrifuged at room temperature for five minutes at 14,000 x g to separate the phases. The aqueous phase was transferred to a new tube and the volume adjusted to 100 ml with water. The purified DNA was size selected on a chromaspin 1000 column (Clontech) to eliminate the smaller cDNA molecules. The double stranded DNA was digested with Notl restriction enzyme for three to four hours at 37° C. The restriction digest was electrophoresed on a 0.8 % low melt agarose gel. The cDNA in the range of 1 to 5 kb was cut out and purified using Gelzyme (Invitrogen). The product was extracted with phenol: chloroform and precipitated with NH OAc and absolute ethanol. The pellet was washed with 70% ethanol and re-suspended in 10 ml of water. Ligation ofcDNA to the Vector:
The cDNA was split up into 5 tubes (2 μl each) and the ligation reactions were set up by adding 4.5 μl of water, 2 μl of 5x ligation buffer, 1 μl of p-Sport vector DNA (cut with Sal- 1/Notl and phosphatase treated) and 0.5 μl of T4 DNA ligase. The ligation was incubated at 40° C overnight.
Introduction ofLigated cDNA into E. coli by Electroporation:
The ligation reaction volume was adjusted to a total volume of 20 μl with water. 5 ml of yeast tRNA, 12.5 ml of 7.5M NH4OAc and 70 ml of absolute ethanol (-20°C) was added. The mixture was vortexed thoroughly, and immediately centrifuged at room temperature for twenty minutes at 14,000 x g. The pellets were washed in 70% ethanol and each pellet was re-suspended in 5 ml of water. All five ligations (25 ml) were pooled and 100 μl of DH10B electro-competent cells (Life Technologies) were electroporated with 1 ml of DNA (total of twenty electroporations), then plated out on ampicillin plates to determine the number of recombinants (cfu) per μl. The entire library was seeded into 2 liters of Super Broth and maxipreps were made using Promega Maxi Prep kit and purified on cesium chloride gradients.
Screening of Library:
1 μl aliquots of the library constructed above were electroporated into Electromax DH10B cells (Life Technologies). The volume was adjusted to 1 ml with SOC media and incubated for one hour at 37°C with shaking. The library was then plated out on 50 150cm2 plates containing LB to a density of 5000 colonies per plate. These were grown overnight at 37°C.
A histamine H3 receptor probe was generated by polymerase chain reaction using the following primer pair. 5' oligo: 5* ACTGGTACGAAACCTCCTTCTGGCTC 3* [SEQ.ID. NO.: 2] and 3' oligo: 5' CACCCAGCCTCCAGTCCAGCCAGTGAG 3' [SEQ ID NO: 1]. The final probe sequence is shown in Figure 6. Amplification was cycled 35 times with a 50 to 60°C annealing temperature and human thalamus cDNA as template. The PCR fragment that was generated (400-500 bp) was 32P-labelled using the Klenow fragment of DNA polymerase I and a oligo labeling kit (Pharmacia). The fragment was then cleaned by one passage through a S-200 column (Pharmacia).
The library colonies are lifted on nitrocellulose filters and cross-linked via UV irradiation (Stratagene). Filters were washed three times in buffer (50 mM TRIS, 1 M NaCl, 2mM EDTA, 1% SDS) at 42°C . Filters were then pre-hybridized in 1:1 Southern Prehyb: Formamide with salmon sperm DNA (50mg, boiled) for six hours at 42°C. Filters were then hybridized with the probe (1x10 counts/ml) overnight. The filters were then washed one time with 2 x SSC/0.2 % SDS at room temperature for fifteen minutes, two times with 0.2 x SSC/0.1 % SDS at 45°C for thirty minutes each. Filters were then wrapped in plastic wrap and exposed to film (Kodak) overnight at -80°C.
Positive clones were identified. Resulting positives were cored from the original plate, incubated in LB for forty-five minutes at 37°C and re-plated overnight. The filter lifting/hybridizing/washing/colony picking procedure was replicated until a single clone or clones were isolated, representing an individual cDNA.
From the screen for human histamine H3 receptor, all cDNA clones were isolated and sequenced. One clone, pH3R, contained a 2699 bp insert (Figure 1). This sequence had an apparent open reading frame from nucleotide 299 to 1335 (Figure 2). This open reading frame encoded a protein of 445 amino acids (Figure 3).
Example 2 CLONING OF HUMAN HISTAMINE H3 RECEPTOR cDNA INTO A MAMMALIAN
EXPRESSION VECTOR
The human histamine H3 receptor cDNAs (collectively referred to as pH3R) were cloned into the mammalian expression vector pCIneo. The human histamine H3 receptor cDNA clone was isolated from the human thalamus cDNA library. The full length cDNA was used as the template for PCR using specific primers with EcoRl (5'AAC GTT GAA TTC GCC ACC ATG GAG CGC GCG CCG CCC GAC GGG CCG CTG AAC3') [SEQ.ID.NO.:3] and Notl (5'AAC GTT GCG GCC GCA GGC TCT GGT GGG CCA CTC ACT TCC AG3') [SEQ.ID.NO.:4] sites for cloning. The PCR product was purified on a column (Wizard PCR DNA purification kit from Promega) and digested with Not I and EcoRl (NEB) to create cohesive ends. The product was purified by a low melting agarose gel electrophoresis. The pCIneo vector was digested with EcoRl and Notl enzymes and subsequently purified on a low melt agarose gel. The linear vector was used to ligate to the human histamine H3 receptor cDNA inserts. Recombinants were isolated, designated human histamine H3 receptor, and used to transfect mammalian cells (L-cells) by CaPO^DNA precipitation.
Stable cell clones were selected by growth in the presence of G418. Single G418 resistant clones were isolated and shown to contain the intact human histamine H3 receptor gene. Clones containing the human histamine H3 receptor cDNAs were analyzed for pH3R expression by measuring inhibition of adenylate cyclase in response to histamine (Figure 5) according to the method of (Konig et al. (1991)) or by directly measuring cAMP accumulation by radioimmunoassay using Flashplates (NEN). Expression was also analyzed using [3H]-N-alpha-methylhistamine binding assays (Clark et al. (1992)). Recombinant plasmids containing human histamine H3 receptor encoding DNA were used to transform the mammalian COS or CHO cells or HEK293 or L-cells.
Cells expressing human histamine H3 receptor, stably or transiently, are used to test for expression of human histamine H3 receptor and for [3H]-N-alpha-methylhistamine binding activity. These cells are used to identify and examine other compounds for their ability to modulate, inhibit or activate the human histamine H3 receptor and to compete for radioactive histamine binding.
Cassettes containing the human histamine H3 receptor cDNA in the positive orientation with respect to the promoter are ligated into appropriate restriction sites 3' of the promoter and identified by restriction site mapping and/or sequencing. These cDNA expression vectors are introduced into fibroblastic host cells for example COS-7 (ATCC# CRL1651), and CV-1 tat rSackevitz et al., Science (1987) 238:1575], 293, L (ATCC# CRL6362)] by standard methods including but not limited to electroporation, or chemical procedures (cationic liposomes, DEAE dextran, calcium phosphate). Transfected cells and cell culture supernatants are harvested and analyzed for human histamine H3 receptor expression as described herein.
All of the vectors used for mammalian transient expression can be used to establish stable cell lines expressing human histamine H3 receptor. Unaltered human histamine H3 receptor cDNA constructs cloned into expression vectors are expected to program host cells to make human histamine H3 receptor protein. The transfection host cells include, but are not limited to, CV-l-P [Sackevitz et al., Science (1987) 238:1575], tk-L fWigler et al., Cell (1977) 11:223], NS/0, and dHFr- CHO [Kaufman and Sharp, J. Mol. Biol. (1982) 159:601].
Co-transfection of any vector containing human histamine H3 receptor cDNA with a drug selection plasmid including, but not limited to G418, aminoglycoside phosphotransferase; hygromycin, hygromycin-B phosphotransferase; APRT, xanthine-guanine phosphoribosyl- transferase, will allow for the selection of stably transfected clones. Levels of human histamine H3 receptor are quantitated by the assays described herein.
Human histamine H3 receptor cDNA constructs are also ligated into vectors containing amplifϊable drug-resistance markers for the production of mammalian cell clones synthesizing the highest possible levels of human histamine H3 receptor. Following introduction of these constructs into cells, clones containing the plasmid are selected with the appropriate agent, and isolation of an over-expressing clone with a high copy number of plasmids is accomplished by selection in increasing doses of the agent.
The expression of recombinant human histamine H3 receptor is achieved by transfection of full-length human histamine H3 receptor cDNA into a mammalian host cell. Characterization of Human Histamine H3 Receptor
Mouse L cells were transfected with pH3R and selected in the presence of neomycin for ten days. Individual colonies were picked and grown in 6-well dishes. Cells were then plated onto 96-well plates and grown to confluency. Cells were incubated for twenty minutes with isobutylmethylxanthine (1 mM). Cells were then stimulated with histamine (lOOnM - lOOuM) for five minutes. Cells were then stimulated with forskolin (3uM) and allowed to incubate at 37°C for twenty minutes. Cells were then treated with 0.1N hydrochloric acid. Cells were then frozen and thawed. Aliquots of the supernatant were then analyzed for their cyclic AMP content using a standard cAMP radioimmunoassay kit (Flashplates, NEN). The forskolin treatment raises the intracellular concentration of cAMP. Any cells that responded to histamine by decreasing the cAMP content in response to forskolin were considered to be expressing active functional human histamine H3 receptor. The recombinant human histamine H3 receptor expressed from the human histamine H3 receptor-encoding DNA molecule described herein was shown to be specifically activated by a histamine H3 receptor agonist and was also shown to be inhibited by a histamine H3 receptor antagonist.
Example 3 BINDING ASSAY ON RECOMBINANT HUMAN HISTAMINE H3 RECEPTOR
L cells that inhibited forskolin-stimulated cAMP accumulation as described above were grown in 150 cm2 tissue culture dishes. Cells were washed with saline solution, scraped with a cell scraper and collected by centrifugation (1000 rpm, five minutes). L cells expressing
3 human histamine H3 receptor bound H-N-alpha-methylhistamine with high affinity (Figure 7). Cell membranes were prepared by homogenization of the cell pellet in 20 mM TRIS-HCl with a polytron tissue homogenizer for ten seconds at high speed. Homogenate was centrifuged at 1000 rpm for five minutes at 4°C. The supernatant was then collected and centrifuged at 20,000x g for twenty-five minutes at 4°C. The final pellet is re-suspended in
50 mM Tris-HCl. Cell membranes were incubated with ^H- N-alpha-methylhistamine (.01 nM - 25 nM) in the presence or absence of excess histamine (10000 nM). Incubation was done at room temperature for forty-five minutes. Membranes were harvested by rapid filtration over Whatman GF/C filters and washed four times with ice cold 50 mM TRIS HC1. Filters were then dried, mixed with scintillant and counted for radioactivity. L cells expressing human histamine H3 receptor were used to measure the affinity of binding of
3 other compounds and their ability to displace H-ligand binding by incubating the above- described reaction in the presence of various concentrations of inhibitor or compound to be tested.
Example 4 PRIMARY STRUCTURE OF THE HUMAN HISTAMINE H3 RECEPTOR PROTEIN
The nucleotide sequences of pH3R receptor revealed a single large open reading frame of about 1335 base pairs. The cDNA's have 5' and 3 '-untranslated extensions of about 298 and about 1066 nucleotides for pH3R. The first in-frame methionine was designated as the initiation codon for an open reading frame that predicts a human histamine H3 receptor protein with an estimated molecular mass (Mr) of about 48656.
The predicted human histamine H3 receptor protein was aligned with nucleotide and protein databases and found to be related to the human histamine HI and human histamine H2 receptors. Approximately 25% of the amino acids in human histamine H3 receptor were highly conserved, showing at least 25% amino acid identity within the histamine H2 receptor, 28% with the histamine HI receptor, and approximately 25% with the family of biogenic amine G-protein coupled receptors. The conserved motifs found in this family of receptors, such as seven conserved hydrophobic domains, were also found in the human histamine H3 receptor sequence. The human histamine H3 receptor protein contained the conserved aspartate residue found in the third transmembrane domain of all biogenic amine receptors. The human histamine H3 receptor protein contained the conserved asparagine residue found in the first transmembrane domain of all biogenic amine receptors. The human histamine H3 receptor protein contained the conserved arginine residue found in the third transmembrane domain of all biogenic amine receptors. The human histamine H3 receptor protein contained the conserved tryptophan residue found in the fourth transmembrane domain of all biogenic amine receptors. The human histamine H3 receptor protein contained the conserved phenylalanine residue found in the fifth transmembrane domain of all biogenic amine receptors. The human histamine H3 receptor protein contained the conserved proline residue found in the sixth transmembrane domain of all biogenic amine receptors. The human histamine H3 receptor protein contained the conserved tyrosine residue found in the seventh transmembrane domain of all biogenic amine receptors.
Example 5 CLONING OF THE HUMAN HISTAMINE H3 RECEPTOR cDNA INTO E. COLI
EXPRESSION VECTORS
Recombinant human histamine H3 receptor is produced in E. coli following the transfer of the human histamine H3 receptor expression cassette into K coli expression vectors, including but not limited to, the pET series (Novagen). The pET vectors place human histamine H3 receptor expression under control of the tightly regulated bacteriophage T7 promoter. Following transfer of this construct into an K coli host which contains a chromosomal copy of the T7 RNA polymerase gene driven by the inducible lac promoter, expression of human histamine H3 receptor is induced when an appropriate lac substrate (IPTG) is added to the culture. The levels of expressed human histamine H3 receptor are determined by the assays described herein.
The cDNA encoding the entire open reading frame for human histamine H3 receptor is inserted into the Ndel site of pET [16] 11 a. Constructs in the positive orientation are identified by sequence analysis and used to transform the expression host strain BL21. Transformants are then used to inoculate cultures for the production of human histamine H3 receptor protein. Cultures may be grown in M9 or ZB media, whose formulation is known to those skilled in the art. After growth to an OD60Q = 1.5, expression of human histamine H3 receptor is induced with 1 mM IPTG for three hours at 37°C. Example 6
CLONING OF HUMAN HISTAMINE H3 RECEPTOR CDNA INTO A BACULO VIRUS
E0XPRESSION VECTOR FOR EXPRESSION IN INSECT CELLS
Baculovirus vectors, which are derived from the genome of the AcNPV virus, are designed to provide high-level expression of cDNA in the Sf9 line of insect cells (ATCC CRL# 1711). Recombinant baculovirases expressing human histamine H3 receptor cDNA is produced by the following standard methods (InVitrogen Maxbac Manual): the human histamine H3 receptor cDNA constructs are ligated into the polyhedrin gene in a variety of baculovirus transfer vectors, including the pAC360 and the BlueBac vector (InVitrogen). Recombinant baculovirases are generated by homologous recombination following co-transfection of the baculovirus transfer vector and linearized AcNPV genomic DNA [P. A. Kitts, Nuc. Acid. Res. (1990) 18:5667] into Sf9 cells. Recombinant pAC360 viruses are identified by the absence of inclusion bodies in infected cells and recombinant pBlueBac viruses are identified on the basis of β-galactosidase expression (M. D. Summers and G. E. Smith, Texas Agriculture Exp. Station Bulletin No. 1555). Following plaque purification, human histamine H3 receptor expression is measured by the assays described herein.
The cDNA encoding the entire open reading frame for human histamine H3 receptor is inserted into the BamHI site of pBlueBacII. Constructs in the positive orientation are identified by sequence analysis and used to transfect Sf9 cells in the presence of linear AcNPV mild type DNA.
Authentic, active human histamine H3 receptor is found in the cytoplasm of infected cells. Active human histamine H3 receptor is extracted from infected cells by hypotonic or detergent lysis. Example 7 CLONING OF HUMAN HISTAMINE H3 RECEPTOR cDNA INTO A YEAST EXPRESSION
VECTOR
Recombinant human histamine H3 receptor is produced in the yeast S. cerevisiae following the insertion of the optimal human histamine H3 receptor cDNA cistron into expression vectors designed to direct the intracellular or extracellular expression of heterologous proteins. In the case of intracellular expression, vectors such as EmBLyex4 or the like are ligated to the human histamine H3 receptor cistron [Rinas et al., Biotechnology (1999) 8:543- 545; Horowitz et al., J. Biol. Chem. (1989) 265:4189-4192]. For extracellular expression, the human histamine H3 receptor cistron is ligated into yeast expression vectors which fuse a secretion signal (a yeast or mammalian peptide) to the NH2 terminus of the human histamine
H3 receptor protein [M. A. Jacobson, Gene (1989) 85:511-516; L. Riett and N. Bellon, Biochem. (1989) 28:2941-2949].
These vectors include, but are not limited to pAVEl>6, which fuses the human serum albumin signal to the expressed cDNA [O. Steep, Biotechnology (1990) 8:42-46], and the vector pL8PL which fuses the human lysozyme signal to the expressed cDNA [Y. Yamamoto, Biochem. 28:2728-2732]. In addition, human histamine H3 receptor is expressed in yeast as a fusion protein conjugated to ubiquitin utilizing the vector pVEP [D. J. Ecker, J. Biol. Chem. (1989) 264:7715-7719; E. A. Sabin, Biotechnology (1989) 7:705-709; D. P. McDonnell, Mol. Cell Biol. (1989) 9:5517-5523]. The levels of expressed human histamine H3 receptor are determined by the assays described herein.
Example 8
BINDING AND FUNCTIONAL ACTIVITY ASSAYS ON RECOMBINANT HUMAN
HISTAMINE H3 RECEPTOR BY AGONISTS.
Several compounds reported to be histamine H3 receptor antagonists were tested in the biological activity assay as described in Example 2. In addition the same compounds were tested in the binding assay as described in Example 3. It has unexpectedly been found that the compounds thought to be antagonists of the human histamine H3 receptor are actually agonists of the receptor. This is shown in Figure 8 for chloroproxyfan (WO 93/14070), in Figure 9 for burimamide (Leurs et al., Prog. Drug. Res. (1992) 39:127-165), and in Figure 10 for impormidine and GT-2331 (Tedford et al., J. Pharmacology and Experimental Therapeutics (1999) 289(2): 1160-1168). Figure 11 shows that using recombinant host cells expressing the human histamine H3 receptor, the expected inhibition of histamine activity in increasing amounts of antagonist. Figure 12 shows that the compound GT-2331 acts as an agonist of the human histamine H3 receptor, and that its agonist activity is blocked by a known histamine H3 receptor antagonist. These experiments demonstrate that the compounds GT-2331, chloroproxyfan, burimamide, and impromidine function as recombinant human histamine H3 receptor agonists.
REFERENCES:
Arrang et al., "Auto-Inhibition of Brain Histamine Release Mediated by a Novel Class (H3) of Histamine Receptor", Nature (London) (1983) 302(5911):832-837.
Clark et al., "Guanine Nucleotides and Pertussis Toxin Reduce the Affinity of Histamine H3 Receptors on AtT-20 Cells", Agents Actions (1993) 40(3-4): 129-134.
Clark et al., "High Affinity Histamine H3 Receptors Regulate ACTH Release by AtT-20 Cells", Eur. J. Pharmacol. (1992) 210(l):31-35.
Gantz et al., "Molecular Cloning of a Gene Encoding the Histamine H2 Receptor", Proc. Natl. Acad. Sci. U. S. A. (1991) 88(2):429-433.
Hill et al., "International Union of Pharmacology, XIII: Classification of Histamine Receptors", Pharmacol. Rev. (1997) 49(3):253-278.
Konig et al., "Method for Identifying Ligands That Bind to Cloned Gs- or Gi-Coupled Receptors", Mol. Cell. Neurosci. (1991) 2(4):331-337.
Pollard et al., "A Detailed Autoradiographic Mapping of Histamine H3 Receptors in Rat Brain Areas", Neuroscience (Oxford) (1993) 52(1):169-189.
Yamashita et al., "Expression Cloning of a cDNA Encoding the Bovine Histamine HI Receptor", Proc. Natl. Acad. Sci. U. S. A. (1991) 88(24):11515-11519.

Claims

WHAT IS CLAIMED IS:
1. A method of identifying compounds that are agonists of recombinant human histamine H3 receptor protein activity, comprising: a) combining a compound suspected of being an antagonist of human histamine H3 receptor protein activity with recombinant human histamine H3 receptor protein; and b) measuring an agonistic effect of the compound on the recombinant human histamine H3 receptor protein.
2. The method of claim 1, wherein the effect of the modulator on the recombinant human histamine H3 receptor protein is modulation of binding of histamine H3 ligands.
3. The method of claim 1, wherein the effect of the modulator on the protein is modulation of an intracellular second messenger formation that is mediated by histamine H3 receptors .
4. The method of claim 3, wherein the intracellular second messenger is cAMP or calcium or a reporter gene product.
5. A compound active in the method of Claim 1, wherein said compound is selected from a group consisting of chloroproxyfan, impromidine, GT-2331, and burimamide.
6. A method of treating a patient having a disease or condition that is modulated by histamine H3 receptors, comprising administering to a patient in need of such treatment, a compound selected from a group consisting of chloroproxyfan, impromidine, GT-2331, and burimamide, wherein said compound is an agonist of recombinant human histamine H3 receptor. A pharmaceutical composition comprising a compound active in the method of Claim 1, wherein said compound is an agonist of recombinant human histamine H3 receptor activity.
EP01989822A 2001-11-15 2001-11-15 Agonists of recombinant human histamine h3 receptor Withdrawn EP1451225A1 (en)

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