The short version of Dual agonist fits in a sentence. The long version — which is the one that helps — is below.
Reviewed 2026-04-01. Anything still debated is marked as such rather than presented as settled.
Identity and purity are established with reversed-phase high-performance liquid chromatography, often paired with mass spectrometry for confirmation of the expected mass. Peptide mapping after enzymatic digestion verifies the primary sequence and detects substitutions. Size-exclusion chromatography quantifies aggregates and fragments, which are the impurities most often tracked for peptides of this size. Residual solvents, counterions, and water content fall under separate tests described in pharmacopeial chapters. Circular dichroism or nuclear magnetic resonance may be used in research settings to probe secondary structure, though such methods are less common in routine release testing.
Peptide active ingredients of this type are typically supplied as lyophilized powder because the dry form resists hydrolysis during transport. The material is hygroscopic, so vials are usually equilibrated to room temperature before opening to avoid condensation on the solid. Repeated freeze-thaw cycles can promote aggregation and are generally avoided by aliquoting stock into single-use portions. Personnel handling the powder work in controlled environments to limit inhalation of fine particles. Written procedures usually specify these steps rather than leaving them to individual judgment.
Long-term storage of the solid generally relies on temperatures at or below minus twenty degrees Celsius, while short-term working stocks may be held refrigerated. Light exposure is limited because photodegradation can alter side chains over extended periods. Solutions prepared for analysis are less stable than the dry powder and are typically used within the same working day. Buffer choice matters, since some aqueous conditions favor deamidation or oxidation at specific residues. Stability data are usually generated under defined accelerated conditions and then extrapolated with stated assumptions.
Degradation pathways for tirzepatide include deamidation, oxidation, and aggregation, which are common for therapeutic peptides. These processes can be monitored by size-exclusion chromatography (SEC) for aggregates and ion-exchange chromatography for charge variants. Forced degradation studies under acidic, basic, oxidative, and thermal stress help identify potential impurities. The exact stability profile depends on formulation, concentration, and container-closure system.
Analytical characterization of tirzepatide typically employs reversed-phase high-performance liquid chromatography (RP-HPLC) for purity assessment and peptide mapping. Mass spectrometry, often coupled with electrospray ionization, confirms molecular weight and sequence integrity. Amino acid analysis and capillary electrophoresis may also be used to detect impurities or degradation products. These methods are essential for batch release and stability studies.
Storage recommendations for tirzepatide generally specify refrigeration at 2–8 °C to maintain stability. The peptide should be protected from light and kept in its original packaging to prevent aggregation or adsorption. Freezing is not recommended because freeze-thaw cycles can cause aggregation or precipitation. Once dispensed, storage conditions and in-use periods follow product-specific labeling, which may allow room temperature storage for a limited time.
| Property | Value | Notes |
|---|---|---|
| Typical supplied form | Lyophilized powder | Hygroscopic, seal promptly after opening |
| Long-term storage temperature | At or below minus 20 C | Protect from repeated freeze-thaw |
| Working solution stability | Hours when refrigerated | Use within the same working day |
| Primary purity method | Reversed-phase HPLC | Often paired with mass spectrometry |
| Aggregate measurement | Size-exclusion chromatography | Reports high-molecular-weight species |
After subcutaneous injection, absorption is gradual, and peak plasma levels are generally reached within one to three days. Albumin binding extends the apparent half-life to roughly five days, which supports a weekly administration schedule. Metabolism proceeds mainly through proteolytic cleavage of the peptide backbone and beta-oxidation of the fatty acid chain, rather than through cytochrome P450 pathways. Eliminated fragments are largely recycled through general protein turnover, and excretion of intact drug in urine is minimal. These properties distinguish the molecule from short-acting incretin mimetics.
Tirzepatide is a synthetic peptide of 39 amino acids engineered from the native glucose-dependent insulinotropic polypeptide sequence. Its structure incorporates several non-natural residues and a C-terminal segment derived from glucagon-like peptide-1, together with a C20 fatty diacid moiety attached through a linker. The lipophilic side chain promotes binding to serum albumin, which slows renal clearance after administration. The compound is classified as a dual incretin receptor agonist and is supplied as a lyophilized powder for reconstitution or as a preformulated solution, depending on the presentation.
The peptide activates two G protein-coupled receptors, GIPR and GLP-1R. Binding triggers adenylyl cyclase activity and raises intracellular cyclic AMP in pancreatic beta cells, which potentiates insulin release when glucose is elevated. Signaling in the central nervous system is associated with reduced appetite and lower energy intake, while effects on gastric emptying and glucagon secretion are also reported. Because activity at both receptors is retained, the pharmacological profile is often described as incretin-based rather than selective for a single receptor.
Published work supports the view that engaging two incretin receptors produces changes in glucose handling and body weight larger than those seen with single-receptor activation. Why that difference arises is not fully settled. Open questions include how much of the observed weight effect depends on central versus peripheral signaling, and whether the two receptors form interacting complexes. Most reported findings come from controlled trials and animal models, and translation between species is imperfect. Further research is expected to refine these points over time.
Tirzepatide is a synthetic peptide built from 39 amino acid residues. Its sequence is related to human glucose-dependent insulinotropic polypeptide, with modifications that include a C-terminal extension and a C20 fatty diacid joined through a linker. Those changes raise the molecule's affinity for serum albumin, which slows renal filtration and lengthens the time it stays in circulation. The free base has an average molecular mass near 4813.5 daltons. The compound is made by solid-phase peptide synthesis followed by chromatographic purification.
At the receptor level, tirzepatide activates both the glucose-dependent insulinotropic polypeptide receptor and the glucagon-like peptide-1 receptor. Both belong to the class B family of G protein-coupled receptors and signal largely through cyclic AMP accumulation. The compound binds the two receptors with differing affinity, and the pattern of signaling at each site is described in the literature as biased rather than simply proportional to occupancy. Tissues carrying these receptors include pancreatic islets, adipose tissue, the central nervous system, and the gastrointestinal tract. The relative weight of each receptor population in producing metabolic effects continues to be studied.
Receptor activation by tirzepatide raises intracellular cyclic AMP through Gs-coupled signalling at both targets. At the GLP-1 receptor the downstream effect includes glucose-dependent insulin release, suppressed glucagon secretion, delayed gastric emptying, and reduced appetite signalling in the hypothalamus. GIP receptor engagement adds insulinotropic activity and appears to influence lipid handling in adipose tissue. Because both receptors are stimulated at the same time, the pharmacological profile differs from that of selective GLP-1 receptor agonists, and the relative contribution of each arm remains an area of active investigation.
Clinical development proceeded through large phase 3 programmes in type 2 diabetes and in obesity or overweight with at least one weight-related comorbidity. Regulatory approvals followed in several jurisdictions for both indications. Weekly subcutaneous dosing reflects an elimination half-life of roughly five days. Open questions include the durability of metabolic effects after treatment stops, long-term cardiovascular and hepatic outcomes beyond completed trials, and whether the dual mechanism confers benefits independent of total receptor occupancy. Published literature continues to expand on these points. Substantial uncertainty remains about interindividual variability in response.
Tirzepatide is a synthetic linear peptide of 39 amino acids that acts as a dual agonist at the glucose-dependent insulinotropic polypeptide (GIP) and glucagon-like peptide-1 (GLP-1) receptors. Its sequence derives from native GIP but incorporates non-natural residues and a C20 fatty diacid moiety linked to a lysine side chain. The lipophilic chain promotes albumin binding, which slows renal clearance and extends circulation time. The unmodified peptide has a molecular formula of C225H348N48O68 and a molecular mass near 4,813 daltons.
Development began in the 2010s, when researchers modified a GIP-based scaffold to add GLP-1 activity and then attached the fatty diacid to lengthen its half-life. Clinical evaluation proceeded through large phase 3 programmes in type 2 diabetes and in obesity, and regulators in the United States cleared the compound for type 2 diabetes in 2022 and for chronic weight management in 2023. Several cardiovascular and metabolic outcome studies are still reporting, so the picture of long-term benefit and risk is incomplete. Approvals in other regions followed on different timelines.
Tirzepatide is a synthetic peptide of 39 amino acids that carries a C20 fatty diacid side chain attached through a linker. Its molecular formula is C225H348N48O68, and its molecular weight is about 4813 daltons. The compound belongs to the incretin mimetic class and is administered by subcutaneous injection. The fatty acid chain promotes binding to serum albumin, which slows renal clearance and extends the circulation time of the molecule. It was identified during screening of sequences derived from glucose-dependent insulinotropic polypeptide.
=== Effect on Tumour Cells === Cancer-associated fibroblasts negatively influence the outcome of oncological diseases. These cells create a stromal niche for cancer cells and especially cancer stem cells, where they employ both paracrine and direct cell-contact to maintain stemness in cancer stem cells. In turn, this enables these cancer stem cells to escape chemotherapy and radiotherapy, while the cancer-associated fibroblasts also create an environment that allows cancer cells to escape the action anti-tumour immunity. In turn, this promotes the cancer process through tumour growth and also fosters angiogenesis, metastasis and immune evasion. CAF express various cytokines and factors, which activate and contribute to pathways favouring tumorigenesis. They may disrupt normal cell functions, such as cell cycle regulation and cell death, or signal to specific types of cells to mobilize and activate their pro-tumour actions. Furthermore, it has been found that the effect of CAF on neoplastic cells is unique to the type of tumour cells. Cytokine release from CAFs have been linked to breast carcinomas through the metabolism and production of androgen synthesis enzymes. Furthermore, on the topic of the progression of breast cancer, CAFs induces the release growth factors such as FGF and HGF which in turn induces the hyperproliferation of epithelial cells of the breast. EMT and ECM reorganisation are further mechanisms by which the CAFs induce cancer. FSP1, which is secreted by CAFs, promotes tumours through another method - by altering the tumour microenvironment (TME).
== Material advances == Recent advances in out of autoclave (OOA) processes hold promise for improving performance and lowering costs for composite structures. Using vacuum-bag-only (VBO) for atmospheric pressures, the new OOA processes promise to deliver less than 1 percent void content required for aerospace primary structures. Led by material scientists at Air Force Research Lab, the technique would save the costs of constructing and installing large structure autoclaves ($100M saved at NASA) and making small production runs of 100 aircraft economically viable.
Abacus – The Aztec and Maya of Mesoamerica performed arithmetic operations using an abacus. It served as a more accurate and faster alternative to a written solution or relying on memory. Archaeologists have recorded the Mesoamerican abacus, or Nepohualtzintzin, as being present in Mesoamerica from at least between 900 and 1000 CE. Abstract art – Abstract art was used by nearly all societies of North and South America. Members of European art world believed tribal art was "primitive" until the 1890s when it served as inspiration for the modern American abstract art movement. See also Visual arts by indigenous peoples of the Americas.
=== EC 2.1.1: Methyltransferases === EC 2.1.1.1: nicotinamide N-methyltransferase EC 2.1.1.2: guanidinoacetate N-methyltransferase EC 2.1.1.3: thetin—homocysteine S-methyltransferase EC 2.1.1.4: acetylserotonin O-methyltransferase EC 2.1.1.5: betaine—homocysteine S-methyltransferase EC 2.1.1.6: catechol O-methyltransferase EC 2.1.1.7: nicotinate N-methyltransferase EC 2.1.1.8: histamine N-methyltransferase EC 2.1.1.9: thiol S-methyltransferase EC 2.1.1.10: homocysteine S-methyltransferase EC 2.1.1.11: magnesium protoporphyrin IX methyltransferase EC 2.1.1.12: methionine S-methyltransferase EC 2.1.1.13: methionine synthase EC 2.1.1.14: 5-methyltetrahydropteroyltriglutamate—homocysteine S-methyltransferase EC 2.1.1.15: fatty-acid O-methyltransferase EC 2.1.1.16: methylene-fatty-acyl-phospholipid synthase EC 2.1.1.17: phosphatidylethanolamine N-methyltransferase EC 2.1.1.18: polysaccharide O-methyltransferase EC 2.1.1.19: trimethylsulfonium—tetrahydrofolate N-methyltransferase EC 2.1.1.20: glycine N-methyltransferase EC 2.1.1.21: methylamine—glutamate N-methyltransferase EC 2.1.1.22: carnosine N-methyltransferase EC 2.1.1.23: now covered by EC 2.1.1.124, EC 2.1.1.125 and EC 2.1.1.126 EC 2.1.1.24: now covered by EC 2.1.1.77, EC 2.1.1.80 and EC 2.1.1.100 EC 2.1.1.25: phenol O-methyltransferase EC 2.1.1.26: iodophenol O-methyltransferase EC 2.1.1.27: tyramine N-methyltransferase EC 2.1.1.28: phenylethanolamine N-methyltransferase EC 2.1.1.29: Now covered by EC 2.1.1.202, EC 2.1.1.203 and EC .1.1.204 EC 2.1.1.30: tRNA (purine-2- or -6-)-methyltransferase: Reactions previously described are due to EC 2.1.1.32 EC 2.1.1.31: Now covered by EC 2.1.1.221 and EC 2.1.1.228 EC 2.1.1.32: Now covered by EC 2.1.1.213, EC 2.1.1.214, EC 2.1.1.215 and EC 2.1.1.216 EC 2.1.1.33: tRNA (guanine46-N7)-methyltransferase EC 2.1.1.34: tRNA (guanosine18-2′-O)-methyltransferase EC 2.1.1.35: tRNA (uracil54-C5)-methyltransferase EC 2.1.1.36: Now covered by EC 2.1.1.217, EC 2.1.1.218, EC 2.1.1.219, EC 2.1.1.220 EC 2.1.1.37: DNA (cytosine-5-)-methyltransferase EC 2.1.1.38: O-demethylpuromycin O-methyltransferase EC 2.1.1.39: inositol 3-methyltransferase EC 2.1.1.40: inositol 1-methyltransferase EC 2.1.1.41: sterol 24-C-methyltransferase EC 2.1.1.42: flavone 3′-O-methyltransferase EC 2.1.1.43: Now described by EC 2.1.1.354, EC 2.1.1.355, EC 2.1.1.356, EC 2.1.1.357, EC 2.1.1.358, EC 2.1.1.359, EC 2.1.1.360, EC 2.1.1.361 and EC 2.1.1.362 EC 2.1.1.44: L-histidine Nα-methyltransferase EC 2.1.1.45: thymidylate synthase EC 2.1.1.46: isoflavone 4′-O-methyltransferase EC 2.1.1.47: indolepyruvate C-methyltransferase EC 2.1.1.48: Now covered by EC 2.1.1.181, EC 2.1.1.182, EC 2.1.1.183 and EC 2.1.1.184 EC 2.1.1.49: amine N-methyltransferase EC 2.1.1.50: loganate O-methyltransferase EC 2.1.1.51: Now covered by EC 2.1.1.187 and EC 2.1.1.188 EC 2.1.1.52: Now covered by EC 2.1.1.171, EC 2.1.1.172, EC 2.1.1.173 and EC 2.1.1.174 EC 2.1.1.53: putrescine N-methyltransferase EC 2.1.1.54: deoxycytidylate C-methyltransferase EC 2.1.1.55: tRNA (adenine-N6-)-methyltransferase EC 2.1.1.56: mRNA (guanine-N7)-methyltransferase EC 2.1.1.57: methyltransferase cap1 EC 2.1.1.58: deleted, included in EC 2.1.1.57 EC 2.1.1.59: [cytochrome c]-lysine N-methyltransferase EC 2.1.1.60: calmodulin-lysine N-methyltransferase EC 2.1.1.61: tRNA (5-methylaminomethyl-2-thiouridylate)-methyltransferase EC 2.1.1.62: mRNA (2′-O-methyladenosine-N6-)-methyltransferase EC 2.1.1.63: methylated-DNA—[protein]-cysteine S-methyltransferase EC 2.1.1.64: 3-demethylubiquinol 3-O-methyltransferase EC 2.1.1.65: licodione 2′-O-methyltransferase EC 2.1.1.66: Now covered by EC 2.1.1.230 EC 2.1.1.67: thiopurine S-methyltransferase EC 2.1.1.68: caffeate O-methyltransferase EC 2.1.1.69: 5-hydroxyfuranocoumarin 5-O-methyltransferase EC 2.1.1.70: 8-hydroxyfuranocoumarin 8-O-methyltransferase EC 2.1.1.71: phosphatidyl-N-methylethanolamine N-methyltransferase EC 2.1.1.72: site-specific DNA-methyltransferase (adenine-specific) EC 2.1.1.73: deleted: reaction is that of EC 2.1.1.37, DNA (cytosine-5-)-methyltransferase EC 2.1.1.74: methylenetetrahydrofolate—tRNA-(uracil54-C5)-methyltransferase [NAD(P)H-oxidizing] EC 2.1.1.75: apigenin 4′-O-methyltransferase EC 2.1.1.76: quercetin 3-O-methyltransferase EC 2.1.1.77: protein-L-isoaspartate(D-aspartate) O-methyltransferase EC 2.1.1.78: isoorientin 3′-O-methyltransferase EC 2.1.1.79: cyclopropane-fatty-acyl-phospholipid synthase EC 2.1.1.80: protein-glutamate O-methyltransferase EC 2.1.1.81: deleted, included in EC 2.1.1.49 EC 2.1.1.82: 3-methylquercetin 7-O-methyltransferase EC 2.1.1.83: 3,7-dimethylquercetin 4′-O-methyltransferase EC 2.1.1.84: methylquercetagetin 6-O-methyltransferase EC 2.1.1.85: protein-histidine N-methyltransferase EC 2.1.1.86: Now covered by EC 7.2.1.4 EC 2.1.1.87: pyridine N-methyltransferase EC 2.1.1.88: 8-hydroxyquercetin 8-O-methyltransferase EC 2.1.1.89: tetrahydrocolumbamine 2-O-methyltransferase EC 2.1.1.90: methanol—5-hydroxybenzimidazolylcobamide Co-methyltransferase EC 2.1.1.91: isobutyraldoxime O-methyltransferase EC 2.1.1.92: Now included with EC 2.1.1.69 EC 2.1.1.93: is identical to EC 2.1.1.70, 8-hydroxyfuranocoumarin 8-O-methyltransferase EC 2.1.1.94: tabersonine 16-O-methyltransferase EC 2.1.1.95: tocopherol C-methyltransferase EC 2.1.1.96: thioether S-methyltransferase EC 2.1.1.97: 3-hydroxyanthranilate 4-C-methyltransferase EC 2.1.1.98: diphthine synthase EC 2.1.1.99: 3-hydroxy-16-methoxy-2,3-dihydrotabersonine N-methyltransferase EC 2.1.1.100: protein-S-isoprenylcysteine O-methyltransferase EC 2.1.1.101: macrocin O-methyltransferase EC 2.1.1.102: demethylmacrocin O-methyltransferase EC 2.1.1.103: phosphoethanolamine N-methyltransferase EC 2.1.1.104: caffeoyl-CoA O-methyltransferase EC 2.1.1.105: N-benzoyl-4-hydroxyanthranilate 4-O-methyltransferase EC 2.1.1.106: tryptophan 2-C-methyltransferase EC 2.1.1.107: uroporphyrinogen-III C-methyltransferase EC 2.1.1.108: 6-hydroxymellein O-methyltransferase EC 2.1.1.109: demethylsterigmatocystin 6-O-methyltransferase EC 2.1.1.110: sterigmatocystin 8-O-methyltransferase EC 2.1.1.111: anthranilate N-methyltransferase EC 2.1.1.112: glucuronoxylan 4-O-methyltransferase EC 2.1.1.113: site-specific DNA-methyltransferase (cytosine-N4-specific) EC 2.1.1.114: polyprenyldihydroxybenzoate methyltransferase EC 2.1.1.115: (RS)-1-benzyl-1,2,3,4-tetrahydroisoquinoline N-methyltransferase EC 2.1.1.116: 3′-hydroxy-N-methyl-(S)-coclaurine 4′-O-methyltransferase EC 2.1.1.117: (S)-scoulerine 9-O-methyltransferase EC 2.1.1.118: columbamine O-methyltransferase EC 2.1.1.119: 10-hydroxydihydrosanguinarine 10-O-methyltransferase EC 2.1.1.120: 12-hydroxydihydrochelirubine 12-O-methyltransferase EC 2.1.1.121: 6-O-methylnorlaudanosoline 5′-O-methyltransferase EC 2.1.1.122: (S)-tetrahydroprotoberberine N-methyltransferase EC 2.1.1.123: [cytochrome-c]-methionine S-methyltransferase EC 2.1.1.124: Now covered by EC 2.1.1.319, EC 2.1.1.320, EC 2.1.1.321 and EC 2.1.1.322 EC 2.1.1.125: Now covered by EC 2.1.1.319, EC 2.1.1.320 and EC 2.1.1.321 EC 2.1.1.126: Now covered by EC 2.1.1.319, EC 2.1.1.320 and EC 2.1.1.321 EC 2.1.1.127: [ribulose-bisphosphate carboxylase]-lysine N-methyltransferase EC 2.1.1.128: (RS)-norcoclaurine 6-O-methyltransferase EC 2.1.1.129: inositol 4-methyltransferase EC 2.1.1.130: precorrin-2 C20-methyltransferase EC 2.1.1.131: precorrin-2 C17-methyltransferase EC 2.1.1.132: precorrin-6B C5,15-methyltransferase (decarboxylating) EC 2.1.1.133: precorrin-4 C11-methyltransferase EC 2.1.1.134: now with EC 2.1.1.129 EC 2.1.1.135: now EC 1.16.1.8 EC 2.1.1.136: chlorophenol O-methyltransferase EC 2.1.1.137: arsenite methyltransferase EC 2.1.1.138: deleted: Reaction due to EC 2.1.1.137 EC 2.1.1.139: 3′-demethylstaurosporine O-methyltransferase EC 2.1.1.140: (S)-coclaurine-N-methyltransferase EC 2.1.1.141: jasmonate O-methyltransferase EC 2.1.1.142: cycloartenol 24-C-methyltransferase EC 2.1.1.143: 24-methylenesterol C-methyltransferase EC 2.1.1.144: trans-aconitate 2-methyltransferase EC 2.1.1.145: trans-aconitate 3-methyltransferase EC 2.1.1.146: (iso)eugenol O-methyltransferase EC 2.1.1.147: corydaline synthase EC 2.1.1.148: thymidylate synthase (FAD) EC 2.1.1.149: Now covered by EC 2.1.1.267, flavonoid 3′,5′-methyltransferase EC 2.1.1.150: isoflavone 7-O-methyltransferase EC 2.1.1.151: cobalt-factor II C20-methyltransferase EC 2.1.1.152: precorrin-6A synthase (deacetylating) EC 2.1.1.153: vitexin 2′′-O-rhamnoside 7-O-methyltransferase EC 2.1.1.154: isoliquiritigenin 2′-O-methyltransferase EC 2.1.1.155: kaempferol 4′-O-methyltransferase EC 2.1.1.156: glycine/sarcosine N-methyltransferase EC 2.1.1.157: sarcosine/dimethylglycine N-methyltransferase EC 2.1.1.158: 7-methylxanthosine synthase EC 2.1.1.159: theobromine synthase EC 2.1.1.160: caffeine synthase EC 2.1.1.161: dimethylglycine N-methyltransferase EC 2.1.1.162: glycine/sarcosine/dimethylglycine N-methyltransferase EC 2.1.1.163: demethylmenaquinone methyltransferase EC 2.1.1.164: demethylrebeccamycin-D-glucose O-methyltransferase EC 2.1.1.165: methyl halide transferase EC 2.1.1.166: 23S rRNA (uridine2552-2′-O)-methyltransferase EC 2.1.1.167: 27S pre-rRNA (guanosine2922-2′-O)-methyltransferase EC 2.1.1.168: 21S rRNA (uridine2791-2′-O)-methyltransferase EC 2.1.1.169: tricetin 3′,4′,5′-O-trimethyltransferase EC 2.1.1.170: 16S rRNA (guanine527-N7)-methyltransferase EC 2.1.1.171: 16S rRNA (guanine966-N2)-methyltransferase EC 2.1.1.172: 16S rRNA (guanine1207-N2))-methyltransferase EC 2.1.1.173: 23S rRNA (guanine2445-N2)-methyltransferase EC 2.1.1.174: 23S rRNA (guanine1835-N2)-methyltransferase EC 2.1.1.175: tricin synthase EC 2.1.1.176: 16S rRNA (cytosine967-C5)-methyltransferase EC 2.1.1.177: 23S rRNA (pseudouridine1915-N3)-methyltransferase EC 2.1.1.178: 16S rRNA (cytosine1407-C5)-methyltransferase EC 2.1.1.179: 16S rRNA (guanine1405-N7)-methyltransferase EC 2.1.1.180: 16S rRNA (adenine1408-N1)-methyltransferase EC 2.1.1.181: 23S rRNA (adenine1618-N6)-methyltransferase EC 2.1.1.182: 16S rRNA (adenine1518-N6/adenineadenine1519-N6)-dimethyltransferase EC 2.1.1.183: 18S rRNA (adenine1779-N6/adenine1780-N6)-dimethyltransferase EC 2.1.1.184: 23S rRNA (adenine2085-N6)-dimethyltransferase EC 2.1.1.185: 23S rRNA (guanosine2251-2′-O)-methyltransferase EC 2.1.1.186: 23S rRNA (cytidine2498-2′-O)-methyltransferase EC 2.1.1.187: 23S rRNA (guanine745-N1)-methyltransferase EC 2.1.1.188: 23S rRNA (guanine748-N1)-methyltransferase EC 2.1.1.189: 23S rRNA (uracil747-C5)-methyltransferase EC 2.1.1.190: 23S rRNA (uracil1939-C5)-methyltransferase EC 2.1.1.191: 23S rRNA (cytosine1962-C5)-methyltransferase EC 2.1.1.192: 23S rRNA (adenine2503-C2)-methyltransferase EC 2.1.1.193: 16S rRNA (uracil1498-N3)-methyltransferase EC 2.1.1.194: A mixture of EC 2.1.1.192 and EC 2.1.1.224 EC 2.1.1.195: cobalt-precorrin-5B (C1)-methyltransferase EC 2.1.1.196: cobalt-precorrin-7 (C15)-methyltransferase (decarboxylating) EC 2.1.1.197: malonyl-[acyl-carrier protein] O-methyltransferase EC 2.1.1.198: 16S rRNA (cytidine1402-2′-O)-methyltransferase EC 2.1.1.199: 16S rRNA (cytosine1402-N4)-methyltransferase EC 2.1.1.200: tRNA (cytidine32/uridine32-2′-O)-methyltransferase EC 2.1.1.201: 2-methoxy-6-polyprenyl-1,4-benzoquinol methylase EC 2.1.1.202: multisite-specific tRNA:(cytosine-C5)-methyltransferase EC 2.1.1.203: tRNA (cytosine34-C5)-methyltransferase EC 2.1.1.204: tRNA (cytosine38-C5)-methyltransferase EC 2.1.1.205: tRNA (cytidine32/guanosine34-2′-O)-methyltransferase EC 2.1.1.206: tRNA (cytidine56-2′-O)-methyltransferase EC 2.1.1.207: tRNA (cytidine34-2′-O)-methyltransferase EC 2.1.1.208: 23S rRNA (uridine2479-2′-O)-methyltransferase EC 2.1.1.209: 23S rRNA (guanine2535-N1)-methyltransferase EC 2.1.1.210: demethylspheroidene O-methyltransferase EC 2.1.1.211: tRNASer(uridine44-2′-O)-methyltransferase EC 2.1.1.212: 2,7,4′-trihydroxyisoflavanone 4′-O-methyltransferase EC 2.1.1.213: tRNA (guanine110-N2)-dimethyltransferase EC 2.1.1.214: tRNA (guanine10-N2)-methyltransferase EC 2.1.1.215: tRNA (guanine26-N2/guanine27-N2)-dimethyltransferase EC 2.1.1.216: tRNA (guanine26-N2)-dimethyltransferase EC 2.1.1.217: tRNA (adenine22-N1)-methyltransferase EC 2.1.1.218: tRNA (adenine9-N1)-methyltransferase EC 2.1.1.219: tRNA (adenine57-N1/adenine58-N1)-methyltransferase EC 2.1.1.220: tRNA (adenine58-N1)-methyltransferase EC 2.1.1.221: tRNA (guanine9-N1)-methyltransferase EC 2.1.1.222: 2-polyprenyl-6-hydroxyphenyl methylase EC 2.1.1.223: tRNA1Val (adenine937-N6)-methyltransferase EC 2.1.1.224: 23S rRNA (adenine2503-C8)-methyltransferase EC 2.1.1.225: tRNA:m4X modification enzyme EC 2.1.1.226: 23S rRNA (cytidine1920-2′-O)-methyltransferase EC 2.1.1.227: 16S rRNA (cytidine1409-2′-O)-methyltransferase EC 2.1.1.228: tRNA (guanine37-N1)-methyltransferase EC 2.1.1.229: tRNA (carboxymethyluridine34-5-O)-methyltransferase EC 2.1.1.230: 23S rRNA (adenosine1067-2′-O)-methyltransferase EC 2.1.1.231: flavonoid 4′-O-methyltransferase EC 2.1.1.232: naringenin 7-O-methyltransferase EC 2.1.1.233: [phosphatase 2A protein]-leucine-carboxy methyltransferase EC 2.1.1.234: dTDP-3-amino-3,4,6-trideoxy-α-D-glucopyranose N,N-dimethyltransferase EC 2.1.1.235: dTDP-3-amino-3,6-dideoxy-α-D-glucopyranose N,N-dimethyltransferase EC 2.1.1.236: dTDP-3-amino-3,6-dideoxy-α-D-galactopyranose N,N-dimethyltransferase EC 2.1.1.237: mycinamicin III 3′′-O-methyltransferase EC 2.1.1.238: mycinamicin VI 2′′-O-methyltransferaseD EC 2.1.1.239: L-olivosyl-oleandolide 3-O-methyltransferase EC 2.1.1.240: trans-resveratrol di-O-methyltransferase EC 2.1.1.241: 2,4,7-trihydroxy-1,4-benzoxazin-3-one-glucoside 7-O-methyltransferase EC 2.1.1.242: 16S rRNA (guanine1516-N2)-methyltransferase EC 2.1.1.243: 2-ketoarginine methyltransferase EC 2.1.1.244: protein N-terminal methyltransferase EC 2.1.1.245: 5-methyltetrahydrosarcinapterin—corrinoid/iron-sulfur protein Co-methyltransferase EC 2.1.1.246: [methyl-Co(III) methanol-specific corrinoid protein]—coenzyme M methyltransferase EC 2.1.1.247: (methyl-Co(III) methylamine-specific corrinoid protein)—coenzyme M methyltransferase EC 2.1.1.248: methylamine—corrinoid protein Co-methyltransferase EC 2.1.1.249: dimethylamine—corrinoid protein Co-methyltransferase EC 2.1.1.250: trimethylamine—corrinoid protein Co-methyltransferase EC 2.1.1.251: methylated-thiol—coenzyme M methyltransferase EC 2.1.1.252: tetramethylammonium—corrinoid protein Co-methyltransferase EC 2.1.1.253: [methyl-Co(III) tetramethylammonium-specific corrinoid protein]—coenzyme M methyltransferase EC 2.1.1.254: erythromycin 3′′-O-methyltransferase EC 2.1.1.255: geranyl diphosphate 2-C-methyltransferase EC 2.1.1.256: tRNA (guanine6-N6-methyltransferase) EC 2.1.1.257: tRNA (pseudouridine54-N1)-methyltransferase EC 2.1.1.258: 5-methyltetrahydrofolate—corrinoid/iron-sulfur protein Co-methyltransferase EC 2.1.1.259: [fructose-bisphosphate aldolase]-lysine N-methyltransferase EC 2.1.1.260: rRNA small subunit pseudouridine methyltransferase Nep1 EC 2.1.1.261: 4-dimethylallyltryptophan N-methyltransferase EC 2.1.1.262: squalene methyltransferase EC 2.1.1.263: botryococcene C-methyltransferase EC 2.1.1.264: 23S rRNA (guanine2069-N7)-methyltransferase EC 2.1.1.265: tellurite methyltransferase EC 2.1.1.266: 23S rRNA (adenine2030-N6)-methyltransferase EC 2.1.1.267: flavonoid 3′,5′-methyltransferase EC 2.1.1.268: tRNAThr (cytosine32-N3)-methyltransferase EC 2.1.1.269: dimethylsulfoniopropionate demethylase EC 2.1.1.270: (+)-6a-hydroxymaackiain 3-O-methyltransferase EC 2.1.1.271: cobalt-precorrin-4 methyltransferase EC 2.1.1.272: cobalt-factor III methyltransferase EC 2.1.1.273: benzoate O-methyltransferase EC 2.1.1.274: salicylate 1-O-methyltransferase EC 2.1.1.275: gibberellin A9 O-methyltransferase EC 2.1.1.276: gibberellin A4 carboxyl methyltransferase EC 2.1.1.277: anthranilate O-methyltransferase EC 2.1.1.278: indole-3-acetate O-methyltransferase EC 2.1.1.279: trans-anol O-methyltransferase EC 2.1.1.280: selenocysteine Se-methyltransferase EC 2.1.1.281: phenylpyruvate C3-methyltransferase EC 2.1.1.282: tRNAPhe 7-[(3-amino-3-carboxypropyl)-4-demethylwyosine37-N4]-methyltransferase EC 2.1.1.283: emodin O-methyltransferase EC 2.1.1.284: 8-demethylnovobiocic acid C8-methyltransferase EC 2.1.1.285: demethyldecarbamoylnovobiocin O-methyltransferase EC 2.1.1.286: 25S rRNA (adenine2142-N1)-methyltransferase EC 2.1.1.287: 25S rRNA (adenine645-N1)-methyltransferase EC 2.1.1.288: aklanonic acid methyltransferase EC 2.1.1.289: cobalt-precorrin-7 (C5)-methyltransferase EC 2.1.1.290: tRNAPhe [7-(3-amino-3-carboxypropyl)wyosine37-O]-methyltransferase EC 2.1.1.291: (R,S)-reticuline 7-O-methyltransferase EC 2.1.1.292: carminomycin 4-O-methyltransferase EC 2.1.1.293: 6-hydroxytryprostatin B O-methyltransferase EC 2.1.1.294: 3-O-phospho-polymannosyl GlcNAc-diphospho-ditrans,octacis-undecaprenol 3-phospho-methyltransferase EC 2.1.1.295: 2-methyl-6-phytyl-1,4-hydroquinone methyltransferase EC 2.1.1.296: methyltransferase cap2 EC 2.1.1.297: peptide chain release factor N5-glutamine methyltransferase EC 2.1.1.298: ribosomal protein L3 N5-glutamine methyltransferase EC 2.1.1.299: protein N-terminal monomethyltransferase EC 2.1.1.300: pavine N-methyltransferase EC 2.1.1.301: cypemycin N-terminal methyltransferase EC 2.1.1.302: 3-hydroxy-5-methyl-1-naphthoate 3-O-methyltransferase EC 2.1.1.303: 2,7-dihydroxy-5-methyl-1-naphthoate 7-O-methyltransferase EC 2.1.1.304: L-tyrosine C3-methyltransferase EC 2.1.1.305: 8-demethyl-8-α-L-rhamnosyltetracenomycin-C 2′-O-methyltransferase EC 2.1.1.306: 8-demethyl-8-(2-methoxy-α-L-rhamnosyl)tetracenomycin-C 3′-O-methyltransferase EC 2.1.1.307: 8-demethyl-8-(2,3-dimethoxy-α-L-rhamnosyl)tetracenomycin-C 4′-O-methyltransferase EC 2.1.1.308: cytidylyl-2-hydroxyethylphosphonate methyltransferase EC 2.1.1.309: 18S rRNA (guanine1575-N7)-methyltransferase EC 2.1.1.310: 25S rRNA (cytosine2870-C5)-methyltransferase EC 2.1.1.311: 25S rRNA (cytosine2278-C5)-methyltransferase EC 2.1.1.312: 25S rRNA (uracil2843-N3)-methyltransferase EC 2.1.1.313: 25S rRNA (uracil2634-N3)-methyltransferase EC 2.1.1.314: diphthine methyl ester synthase EC 2.1.1.315: 27-O-demethylrifamycin SV methyltransferase EC 2.1.1.316: mitomycin 6-O-methyltransferase EC 2.1.1.317: sphingolipid C9-methyltransferase EC 2.1.1.318: [trehalose-6-phosphate synthase]-L-cysteine S-methyltransferase EC 2.1.1.319: type I protein arginine methyltransferase EC 2.1.1.320: type II protein arginine methyltransferase EC 2.1.1.321: type III protein arginine methyltransferase EC 2.1.1.322: type IV protein arginine methyltransferase EC 2.1.1.323: (–)-pluviatolide 4-O-methyltransferase EC 2.1.1.324: dTDP-4-amino-2,3,4,6-tetradeoxy-D-glucose N,N-dimethyltransferase EC 2.1.1.325: juvenile hormone-III synthase EC 2.1.1.326: N-acetyldemethylphosphinothricin P-methyltransferase EC 2.1.1.327: phenazine-1-carboxylate N-methyltransferase EC 2.1.1.328: N-demethylindolmycin N-methyltransferase EC 2.1.1.329: demethylphylloquinol methyltransferase EC 2.1.1.330: 5′-demethylyatein 5′-O-methyltransferase EC 2.1.1.331: bacteriochlorophyllide d C-121-methyltransferase EC 2.1.1.332: bacteriochlorophyllide d C-82-methyltransferase EC 2.1.1.333: bacteriochlorophyllide d C-20 methyltransferase EC 2.1.1.334: methanethiol S-methyltransferase EC 2.1.1.335: 4-amino-anhydrotetracycline N4-methyltransferase EC 2.1.1.336: norbelladine O-methyltransferase EC 2.1.1.337: reticuline N-methyltransferase EC 2.1.1.338: desmethylxanthohumol 6′-O-methyltransferase EC 2.1.1.339: xanthohumol 4-O-methyltransferase EC 2.1.1.340: 3-aminomethylindole N'-methyltransferase EC 2.1.1.341: vanillate/3-O-methylgallate O-demethylase EC 2.1.1.342: anaerobilin synthase EC 2.1.1.343: 8-amino-8-demethylriboflavin N,N-dimethyltransferase EC 2.1.1.344: ornithine lipid N-methyltransferase EC 2.1.1.345: psilocybin synthase EC 2.1.1.346: U6 snRNA m6A methyltransferase EC 2.1.1.347: (+)-O-methylkolavelool synthase EC 2.1.1.348: mRNA m6A methyltransferase EC 2.1.1.349: toxoflavin synthase EC 2.1.1.350: menaquinone C8-methyltransferase EC 2.1.1.351: nocamycin O-methyltransferase EC 2.1.1.352: 3-O-acetyl-4′-O-demethylpapaveroxine 4′-O-methyltransferase EC 2.1.1.353: demethylluteothin O-methyltransferase EC 2.1.1.354: [histone H3]-lysine4 N-trimethyltransferase EC 2.1.1.355: [histone H3]-lysine9 N-trimethyltransferase EC 2.1.1.356: [histone H3]-lysine27 N-trimethyltransferase EC 2.1.1.357: [histone H3]-lysine36 N-dimethyltransferase EC 2.1.1.358: [histone H3]-dimethyl-L-lysine36 N-methyltransferase. Now known to have the activity of EC 2.1.1.359, [histone H3]-lysine36 N-trimethyltransferase. EC 2.1.1.359: [histone H3]-lysine36 N-trimethyltransferase EC 2.1.1.360: [histone H3]-lysine79 N-trimethyltransferase EC 2.1.1.361: [histone H4]-lysine20 N-methyltransferase EC 2.1.1.362: [histone H4]-N-methyl-L-lysine20 N-methyltransferase EC 2.1.1.363: pre-sodorifen synthase EC 2.1.1.364: [histone H3]-lysine4 N-methyltransferase EC 2.1.1.365: MMP 1-O-methyltransferase EC 2.1.1.366: [histone H3]-N6,N6-dimethyl-lysine9 N-methyltransferase EC 2.1.1.367: [histone H3]-lysine9 N-methyltransferase EC 2.1.1.368: [histone H3]-lysine9 N-dimethyltransferase EC 2.1.1.369: [histone H3]-lysine27 N-methyltransferase EC 2.1.1.370: [histone H3]-lysine4 N-dimethyltransferase EC 2.1.1.371: [histone H3]-lysine27 N-dimethyltransferase EC 2.1.1.372: [histone H4]-lysine20 N-trimethyltransferase EC 2.1.1.373: 2-hydroxy-4-(methylsulfanyl)butanoate S-methyltransferase EC 2.1.1.374: 2-heptyl-1-hydroxyquinolin-4(1H)-one methyltransferase EC 2.1.1.375: NNS virus cap methyltransferase EC 2.1.1.376: glycine betaine—corrinoid protein Co-methyltransferase EC 2.1.1.377: [methyl-Co(III) glycine betaine-specific corrinoid protein]—coenzyme M methyltransferase EC 2.1.1.378: [methyl-Co(III) glycine betaine-specific corrinoid protein]—tetrahydrofolate methyltransferase EC 2.1.1.379: [methyl coenzyme M reductase]-L-arginine C-5-methyltransferase
=== Center for Chemical Genomics === A high-throughput screening (HTS) facility is a central component of the Center for Chemical Genomics (CCG). This core facility is designed to assist academic researchers in carrying out high-throughput screens of chemical libraries and to identify new tools for biological research.
Sources: en.wikipedia.org
There are RGBW LEDs that combine RGB units with a phosphor white LED on the market. Doing so retains the extremely tunable color of RGB LEDs, but allows color rendering and efficiency to be optimized when a color close to white is selected. Some phosphor white LED units are "tunable white", blending two extremes of color temperatures (commonly 2700K and 6500K) to produce intermediate values. This feature allows users to change the lighting to suit the current use of a multifunction room. As illustrated by a straight line on the chromaticity diagram, simple two-white blends will have a pink bias, becoming most severe in the middle. A small amount of green light, provided by another LED, could correct the problem. Some products are RGBWW, i.e. RGBW with tunable white. A final class of white LED with mixed light is dim-to-warm. These are ordinary 2700K white LED bulbs with a small red LED that turns on when the bulb is dimmed. Doing so makes the color warmer, emulating an incandescent light bulb.
Bowen–Conradi syndrome (BCS or BWCNS) is an autosomal recessive abnormality of the EMG1 gene, which plays a role in small ribosomal subunit (SSU) assembly. Most affected children have been from North American Hutterite families, but BWCNS can affect other population groups. Skeletal dysmorphology is seen and severe prenatal and postnatal growth failure usually leads to death by one year of age.
On March 10, Judge Ali ruled that the Trump administration must pay for projects completed by February 13 at the rate of 300 back payments a day, meaning four days for all 1,200 back payments. On March 11, ABC News reported that, until recently, no payments were being made because DOGE had disabled the payment system. On March 20, Reuters reported that the Trump administration is close to paying the $671 million owed to the organizations which sued.
=== Applications === Libraries of peptide aptamers have been used as "mutagens", in studies in which an investigator introduces a library that expresses different peptide aptamers into a cell population, selects for a desired phenotype, and identifies those aptamers that cause the phenotype. The investigator then uses those aptamers as baits, for example in yeast two-hybrid screens to identify the cellular proteins targeted by those aptamers. Such experiments identify particular proteins bound by the aptamers, and protein interactions that the aptamers disrupt, to cause the phenotype. In addition, peptide aptamers derivatized with appropriate functional moieties can cause specific post-translational modification of their target proteins, or change the subcellular localization of the targets.
De Duve's work has contributed to the emerging consensus towards accepting the endosymbiotic theory; which idea proposes that organelles in eukaryotic cells originated as certain prokaryotic cells that came to live inside eukaryotic cells as endosymbionts. According to de Duve's version, eukaryotic cells with their structures and properties, including their ability to capture food by endocytosis and digest it intracellularly, developed first. Later, prokaryotic cells were incorporated to form more organelles. De Duve proposed that peroxisomes, which allowed cells to withstand the growing amounts of free molecular oxygen in the early-Earth atmosphere, may have been the first endosymbionts. Because peroxisomes have no DNA of their own, this proposal has much less evidence than similar claims for mitochondria and chloroplasts. His later years were mostly devoted to origin of life studies, which he admitted was still a speculative field (see thioester).
Sources: en.wikipedia.org
=== EC 1.23.1 With NADH or NADPH as donor === EC 1.23.1.1: (+)-Pinoresinol reductasa EC 1.23.1.2: (+)-lariciresinol reductase EC 1.23.1.3: (–)-pinoresinol reductase EC 1.23.1.4: (–)-lariciresinol reductase
=== Relationships === Carrey dated singer Linda Ronstadt for eight months in 1983. On March 28, 1987, Carrey married former actress and Comedy Store waitress Melissa Womer. The couple had one daughter. Carrey and Womer divorced in 1995. On September 23, 1996, Carrey married his Dumb and Dumber co-star Lauren Holly; this second marriage lasted less than a year. From 1999 to 2000, Carrey was engaged to his Me, Myself & Irene co-star Renée Zellweger. In 2002, he was in a relationship with January Jones. In 2005, Carrey met model and actress Jenny McCarthy, and he made public in June 2006 that they were in a romantic relationship. They ended it in April 2010, with McCarthy noting in October 2010 that they had remained good friends. In early 2011, Carrey was seen holding hands with America's Next Top Model contestant Anchal Joseph, leading to speculation that the two were dating. In 2012, Carrey met Cathriona White, a makeup artist from County Tipperary, Ireland. They dated between 2012 and 2015. On September 28, 2015, White was found dead from a prescription drug overdose; the death was ruled a suicide by the Los Angeles County Medical Examiner. Carrey was a pallbearer at her funeral in Cappawhite, Ireland. In January 2019 when Carrey attended the Golden Globes 2019 Party, he was accompanied by his then-girlfriend Ginger Gonzaga. The couple split after less than a year of dating.
=== Streptomyces === Daptomycin is another naturally occurring lipidated peptide, produced by the Gram positive bacterium Streptomyces roseoporous. The structure of Daptomycin consists of a decanoyl lipid chain attached to a partially cyclised peptide head group. It has very potent antimicrobial properties and is used as an antibiotic to treat life-threatening conditions caused by Gram positive bacteria including MRSA (methicillin-resistant Staphylococcus aureus) and vancomycin resistant Enterococci. As with the Bacillus subtilis lipidated peptides, the permeation of the cell membrane is what gives it its properties, and the mechanism of action with daptomycin is thought to involve the insertion of the decanoyl chain into the bacterial membrane to cause disruption. This then causes a serious depolarization resulting in the inhibition of various synthesis processes including those of DNA, protein and RNA, leading to apoptosis.
Copper, an impurity in molybdenite, is separated at this stage by treatment with hydrogen sulfide. Ammonium molybdate converts to ammonium dimolybdate, which is isolated as a solid. Heating this solid gives molybdenum trioxide:
=== 17 December === Missiles were launched targeting infrastructure on Kyiv, Kharkiv, Kryvyi Rih and Zaporizhzhia. Kyiv council member Ksenia Semenova stated that approximately 60% of residents were without power and 70% were without water. Ukraine restored power and water to approximately 6 million residents in 24 hours. 37 out of the 40 missiles fired at Kyiv were intercepted. Russia started a new campaign on TV to recruit more soldiers. One advertisement showed some men leaving for Georgia. An old woman drops her groceries and men who have not left help her pick them up. She then says: "The boys have left, the men stayed."
Sources: en.wikipedia.org
Water promotes hydrolysis and deamidation, so removing it slows degradation during transport and storage. The dry solid is also less prone to microbial growth than a solution. Reconstitution is therefore performed close to the point of use.
Reversed-phase high-performance liquid chromatography is the standard method for purity and related substances. It separates the main peak from deletion sequences and oxidation products. Mass spectrometry is frequently used alongside it to confirm molecular identity.
Aggregates, truncated sequences, and oxidation products receive the most attention. Size-exclusion chromatography covers aggregates, while reversed-phase methods resolve many chemical variants. Limits are set according to the route of administration and the expected exposure.
RP-HPLC is widely used for purity and impurity profiling. Mass spectrometry confirms identity.