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Background And Dual Receptor Pharmacology — Explained

By Editorial Desk · published 2025-09-04 · last reviewed 2025-10-13 · Faq

双受体激动 is one of those subjects where the details matter more than the headlines. This page pulls together the background, the mechanisms, and the practical points readers ask about most.

Updated 2025-10-13. Numbers and descriptions here follow the published literature rather than marketing material.

Background and Dual Receptor Pharmacology

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.

Tirzepatide Pharmacology and Development History

The peptide backbone contains 39 amino acids and includes alpha-aminoisobutyric acid residues, which are not among the standard proteinogenic set. A C20 fatty diacid moiety is attached through a linker, allowing the compound to bind serum albumin and extend its circulation time. This albumin binding is the main reason the molecule supports once-weekly administration rather than more frequent dosing. The measured molecular mass is approximately 4,813 daltons, placing it firmly in the peptide rather than small-molecule class.

Tirzepatide is a synthetic peptide that activates both the glucose-dependent insulinotropic polypeptide (GIP) and glucagon-like peptide-1 (GLP-1) receptors. This dual agonist profile distinguishes it from earlier incretin-based compounds that act on a single receptor. The molecule was engineered from the native GIP sequence and carries several non-natural residues that slow enzymatic breakdown. Researchers designed it to combine the insulinotropic effects of GIP signaling with the appetite and gastric-emptying effects associated with GLP-1 activation.

Tirzepatide at a glance

PropertyValueNotes
Molecular formulaC225H348N48O68Unmodified peptide backbone
Molecular massapprox. 4,813 Da39-residue linear chain
Receptor targetsGIP and GLP-1Dual agonist activity
RouteSubcutaneous injectionWeekly administration interval
Elimination half-lifeapprox. 5 daysSupports weekly dosing schedule

Analytical Characterisation and Storage Practice

Long-term storage of lyophilised peptide powder is generally at minus twenty degrees Celsius or colder, with desiccant and protection from light. Short-term storage at two to eight degrees Celsius is common during active use. In solution, stability depends strongly on pH, concentration, and the presence of preservatives, and hydrolysis or aggregation can develop over weeks. Published stability data specific to this molecule are limited, so recommended conditions for research material are usually extrapolated from general peptide handling practice rather than from a dedicated study.

Bulk peptide material is normally characterised by reversed-phase high-performance liquid chromatography, which separates the target sequence from truncation products and other closely related impurities. Ultraviolet detection near 214 nanometres is common because the peptide backbone absorbs in that region. Mass spectrometry, usually electrospray ionisation coupled to a mass analyser, is used to confirm the molecular mass. Because the molecule carries a lipophilic side chain, gradient methods often need a relatively high organic modifier fraction to elute it within a practical retention window.

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Analytical Methods, Stability and Verification

Verification of research-grade material involves checking purity, sequence and counter-ion content against a certificate of analysis. Reported purity figures usually reflect chromatographic area percentage and do not by themselves establish biological activity. Independent laboratories may repeat mass confirmation and peptide mapping to detect substitutions or truncations. Open questions concern how residual solvents, trace metals and subtle conformational variants affect measured behavior, and how consistently different suppliers define their specifications. Documentation of analytical methods matters as much as the headline purity number when results are compared across studies.

Routine characterization relies on reversed-phase high-performance liquid chromatography, often coupled to mass spectrometry, to confirm identity and estimate purity. Peptide mapping after enzymatic digestion verifies the amino acid sequence and locates appended groups such as the fatty acid chain. Size-exclusion chromatography detects aggregates and fragments, while ion-exchange chromatography resolves charge variants. Circular dichroism and nuclear magnetic resonance supply secondary and higher-order structural information in research settings. No single technique covers every attribute, so laboratories combine orthogonal methods and compare outcomes against a reference standard where one exists.

Purified material is typically handled as a lyophilized powder kept at or below minus twenty degrees Celsius, shielded from light and moisture. In that state the solid remains stable for extended periods, although repeated freeze-thaw cycling can encourage aggregation. Once dissolved, aqueous solutions are less durable and are generally held cold and used within a brief window. Buffer composition, pH and ionic strength all influence degradation rates, and mildly acidic to neutral conditions are commonly examined. Actual shelf life depends on formulation, concentration and container, so stability limits are established experimentally rather than assumed.

Background And Receptor Pharmacology

Tirzepatide activates both the glucose-dependent insulinotropic polypeptide receptor and the glucagon-like peptide-1 receptor, making it a dual agonist rather than a selective agent. Engagement of the GLP-1 receptor is linked to glucose-dependent insulin release, slower gastric emptying, and reduced appetite signalling. The relative contribution of the GIP arm remains an active research question; proposed roles include improved insulin sensitivity and altered adipose tissue handling. Receptor occupancy studies suggest the molecule interacts with both targets at circulating concentrations achieved during therapy.

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.

Tirzepatide 分子背景与靶点

Tirzepatide 是一种由 39 个氨基酸组成的合成肽,分子结构上以 GIP 序列为骨架并引入脂肪酸侧链修饰,使其能够同时与葡萄糖依赖性促胰岛素多肽(GIP)受体和胰高血糖素样肽-1(GLP-1)受体结合。这种双重激动特性使它在同类肽类药物中区别于选择性 GLP-1 受体激动剂。该分子最早由一家制药公司在 2010 年代报道,随后进入糖尿病与体重管理领域的临床研究。

在生理层面,GIP 与 GLP-1 均为肠道内分泌细胞分泌的肠促胰素,进食后参与胰岛素分泌调节与胃排空抑制。Tirzepatide 通过同时激活这两条信号通路,使胰岛素分泌的葡萄糖依赖性增强,并延缓冲胃排空、降低食欲信号。与单一 GLP-1 激动相比,双靶点作用在血糖控制和体重变化上的效应幅度更大,但具体贡献比例仍在研究之中。

Supporting material

=== Pituitary === Pituitary prolactin is controlled by the Pit-1 transcription factor, which binds to the gene at several sites including a proximal promoter. This promoter is inhibited by dopamine and stimulated by estrogens, neuropeptides, and growth factors. Estrogens can also suppress dopamine. Interaction with neuropeptides is still a matter of active research: no specific prolactin-releasing hormone has been identified. It is known that mice react to both VIP and TRH, but humans seem to only react to TRH. There are prolactin-releasing peptides that work in vitro, but whether they deserve their name has been questioned. Oxytocin does not play a large role. Mice without a posterior pituitary do not raise their prolactin levels even with suckling and oxytocin injection, but scientists have yet to identify which specific hormone produced by this region is responsible. In birds (turkeys), VIP is a powerful prolactin-releasing factor, while peptide histidine isoleucine has almost no effect.

== Adverse effects == In clinical trials, the most common adverse effects of sildenafil use included headache, flushing, indigestion, nasal congestion, and impaired vision, including photophobia and blurred vision. Some sildenafil users have complained of seeing everything tinted blue (cyanopsia). This cyanopsia can be explained because sildenafil, while selective for PDE5, does have some affinity for PDE6, which is the phosphodiesterase found in the retina. Patients thus taking the drug may experience colorvision abnormalities. Some complained of blurriness and loss of peripheral vision. In July 2005, the US Food and Drug Administration (FDA) updated labeling for tadalafil (Cialis), vardenafil (Levitra), and sildenafil (Viagra) to reflect a small number of post-marketing reports of sudden vision loss, while acknowledging that "...it is not possible to determine whether these oral medicines for erectile dysfunction were the cause of the loss of eyesight or whether the problem is related to other factors such as high blood pressure or diabetes, or to a combination of these problems." A careful review of pooled data from clinical trials containing well documented information about the dose and duration of exposure to the drug for a large number of patients, yields no evidence for an increased risk of non-arteritic anterior ischemic optic neuropathy or other adverse ocular events associated with PDE5 inhibitor use.

=== Controversy === The lack of drugs and unavailability of experimental treatment in the most affected regions of the West African Ebola virus outbreak spurred some controversy. The fact that the drug was first given to Americans and a European and not to Africans, according to the Los Angeles Times, "provoked outrage, feeding into African perceptions of Western insensitivity and arrogance, with a deep sense of mistrust and betrayal still lingering over the exploitation and abuses of the colonial era". Salim S. Abdool Karim, the director of an AIDS research center in South Africa, placed the issue in the context of the history of exploitation and abuses. Responding to a question on how people might have reacted if ZMapp and other drugs had first been used on Africans, he said "It would have been the front-page screaming headline: 'Africans used as guinea pigs for American drug company's medicine'". In August 2014, the World Health Organization called for convening a panel of medical authorities "to consider whether experimental drugs should be more widely released." In a statement, Peter Piot (co-discoverer of the Ebola virus); Jeremy Farrar, the director of the Wellcome Trust; and David Heymann of the Chatham House Center on Global Health Security, called for the release of experimental drugs for the 2014 West Africa Ebola outbreak. At an August 2014 press conference, Barack Obama, the President of the United States, was questioned regarding whether the cocktail should be fast-tracked for approval or be made available to sick patients outside of the United States.

It contains food bars and a drink mix. Similarly, the Food Packet, Survival, Abandon Ship (FPSAS) and Food Packet, Survival, Aircraft, Life Raft (FPSALR) are fitted into the storage areas on lifeboats. The "Jimmy Dean", a pre-packaged shelf-stable ration containing, among other items, a pre-made Jimmy Dean brand deli-style sandwich, is often issued in the field to U.S. servicemen as an alternative to MREs.

=== EC 2.4.1: Hexosyltransferases === EC 2.4.1.1: Glycogen phosphorylase EC 2.4.1.2: dextrin dextranase EC 2.4.1.3: deleted, included in EC 2.4.1.25 EC 2.4.1.4: amylosucrase EC 2.4.1.5: dextransucrase EC 2.4.1.6: deleted EC 2.4.1.7: sucrose phosphorylase EC 2.4.1.8: maltose phosphorylase EC 2.4.1.9: inulosucrase EC 2.4.1.10: levansucrase EC 2.4.1.11: glycogen(starch) synthase EC 2.4.1.12: cellulose synthase (UDP-forming) EC 2.4.1.13: sucrose synthase EC 2.4.1.14: sucrose-phosphate synthase EC 2.4.1.15: α,α-trehalose-phosphate synthase (UDP-forming) EC 2.4.1.16: chitin synthase EC 2.4.1.17: glucuronosyltransferase EC 2.4.1.18: ,4-α-glucan branching enzyme EC 2.4.1.19: cyclomaltodextrin glucanotransferase EC 2.4.1.20: cellobiose phosphorylase EC 2.4.1.21: starch synthase EC 2.4.1.22: lactose synthase EC 2.4.1.23: sphingosine β-galactosyltransferase EC 2.4.1.24: 1,4-α-glucan 6-α-glucosyltransferase EC 2.4.1.25: 4-α-glucanotransferase EC 2.4.1.26: DNA α-glucosyltransferase EC 2.4.1.27: DNA β-glucosyltransferase EC 2.4.1.28: glucosyl-DNA β-glucosyltransferase EC 2.4.1.29: cellulose synthase (GDP-forming) EC 2.4.1.30: 1,3-β-oligoglucan phosphorylase EC 2.4.1.31: laminaribiose phosphorylase EC 2.4.1.32: glucomannan 4-β-mannosyltransferase EC 2.4.1.33: mannuronan synthase EC 2.4.1.34: 1,3-β-glucan synthase EC 2.4.1.35: phenol β-glucosyltransferase EC 2.4.1.36: α,α-trehalose-phosphate synthase (GDP-forming) EC 2.4.1.37: fucosylgalactoside 3-α-galactosyltransferase EC 2.4.1.38: β-N-acetylglucosaminylglycopeptide β-1,4-galactosyltransferase EC 2.4.1.39: steroid N-acetylglucosaminyltransferase EC 2.4.1.40: glycoprotein-fucosylgalactoside α-N-acetylgalactosaminyltransferase EC 2.4.1.41: polypeptide N-acetylgalactosaminyltransferase EC 2.4.1.42: deleted, included in EC 2.4.1.17 EC 2.4.1.43: polygalacturonate 4-α-galacturonosyltransferase EC 2.4.1.44: lipopolysaccharide 3-α-galactosyltransferase EC 2.4.1.45: now included with EC 2.4.1.47, N-acylsphingosine galactosyltransferase EC 2.4.1.46: monogalactosyldiacylglycerol synthase EC 2.4.1.47: N-acylsphingosine galactosyltransferase EC 2.4.1.48: heteroglycan α-mannosyltransferase EC 2.4.1.49: cellodextrin phosphorylase EC 2.4.1.50: procollagen galactosyltransferase EC 2.4.1.51: now covered by EC 2.4.1.101, EC 2.4.1.143, EC 2.4.1.144 and EC 2.4.1.145 EC 2.4.1.52: poly(glycerol-phosphate) α-glucosyltransferase EC 2.4.1.53: poly(ribitol-phosphate) β-glucosyltransferase EC 2.4.1.54: undecaprenyl-phosphate mannosyltransferase EC 2.4.1.55: Now EC 2.7.8.14, CDP-ribitol ribitolphosphotransferase EC 2.4.1.56: lipopolysaccharide N-acetylglucosaminyltransferase EC 2.4.1.57: Newer studies have shown that this is catalysed by two independent activities now covered by EC 2.4.1.345, phosphatidyl-myo-inositol α-mannosyl transferase and EC 2.4.1.346, phosphatidyl-myo-inositol dimannoside synthase EC 2.4.1.58: lipopolysaccharide glucosyltransferase I EC 2.4.1.59: deleted, included in EC 2.4.1.17 EC 2.4.1.60: CDP-abequose:α-D-Man-(1→4)-α-L-Rha-(1→3)-α-D-Gal-PP-Und α-1,3-abequosyltransferase EC 2.4.1.61: deleted, included in EC 2.4.1.17 EC 2.4.1.62: ganglioside galactosyltransferase EC 2.4.1.63: linamarin synthase EC 2.4.1.64: α,α-trehalose phosphorylase EC 2.4.1.65: 3-galactosyl-N-acetylglucosaminide 4-α-L-fucosyltransferase EC 2.4.1.66: procollagen glucosyltransferase EC 2.4.1.67: galactinol—raffinose galactosyltransferase EC 2.4.1.68: glycoprotein 6-α-L-fucosyltransferase EC 2.4.1.69: type 1 galactoside α-(1,2)-fucosyltransferase EC 2.4.1.70: poly(ribitol-phosphate) α-N-acetylglucosaminyltransferase EC 2.4.1.71: arylamine glucosyltransferase EC 2.4.1.72: now EC 2.4.2.24, 1,4-β-D-xylan synthase EC 2.4.1.73: lipopolysaccharide glucosyltransferase II EC 2.4.1.74: glycosaminoglycan galactosyltransferase EC 2.4.1.75: deleted entry, insufficient evidence to conclude that this is a different enzyme from EC 2.4.1.43 EC 2.4.1.76: deleted, included in EC 2.4.1.17 EC 2.4.1.77: deleted, included in EC 2.4.1.17 EC 2.4.1.78: phosphopolyprenol glucosyltransferase EC 2.4.1.79: globotriaosylceramide 3-β-N-acetylgalactosaminyltransferase EC 2.4.1.80: ceramide glucosyltransferase EC 2.4.1.81: flavone 7-O-β-glucosyltransferase EC 2.4.1.82: galactinol—sucrose galactosyltransferase EC 2.4.1.83: dolichyl-phosphate β-D -mannosyltransferase EC 2.4.1.84: deleted, included in EC 2.4.1.17 EC 2.4.1.85: cyanohydrin β-glucosyltransferase EC 2.4.1.86: N-acetyl-β-D-glucosaminide β-(1,3)-galactosyltransferase EC 2.4.1.87: N-acetyllactosaminide 3-α-galactosyltransferase EC 2.4.1.88: globoside α-N-acetylgalactosaminyltransferase EC 2.4.1.89: deleted, included in EC 2.4.1.69, type 1 galactoside α-(1,2)-fucosyltransferase EC 2.4.1.90: N-acetyllactosamine synthase EC 2.4.1.91: flavonol 3-O-glucosyltransferase EC 2.4.1.92: (N-acetylneuraminyl)-galactosylglucosylceramide N-acetylgalactosaminyltransferase EC 2.4.1.93: Now EC 4.2.2.18, inulin fructotransferase (DFA-III-forming) EC 2.4.1.94: protein N-acetylglucosaminyltransferase EC 2.4.1.95: deleted EC 2.4.1.96: sn-glycerol-3-phosphate 1-galactosyltransferase EC 2.4.1.97: 1,3-β-D-glucan phosphorylase EC 2.4.1.98: deleted, Now included with EC 2.4.1.90, N-acetyllactosamine synthase EC 2.4.1.99: sucrose:sucrose fructosyltransferase EC 2.4.1.100: 2,1-fructan:2,1-fructan 1-fructosyltransferase EC 2.4.1.101: α-1,3-mannosyl-glycoprotein 2-β-N-acetylglucosaminyltransferase EC 2.4.1.102: β-1,3-galactosyl-O-glycosyl-glycoprotein β-1,6-N-acetylglucosaminyltransferase EC 2.4.1.103: alizarin 2-β-glucosyltransferase EC 2.4.1.104: o-dihydroxycoumarin 7-O-glucosyltransferase EC 2.4.1.105: vitexin β-glucosyltransferase EC 2.4.1.106: isovitexin β-glucosyltransferase EC 2.4.1.107: deleted, now included with EC 2.4.1.17, glucuronosyltransferase EC 2.4.1.108: deleted, now included with EC 2.4.1.17, glucuronosyltransferase EC 2.4.1.109: dolichyl-phosphate-mannose—protein mannosyltransferase EC 2.4.1.110: tRNA-queuosine β-mannosyltransferase EC 2.4.1.111: coniferyl-alcohol glucosyltransferase EC 2.4.1.112: The protein referred to in this entry is now known to be glycogenin so the entry has been incorporated into EC 2.4.1.186, glycogenin glucosyltransferase EC 2.4.1.113: α-1,4-glucan-protein synthase (ADP-forming) EC 2.4.1.114: 2-coumarate O-β-glucosyltransferase EC 2.4.1.115: anthocyanidin 3-O-glucosyltransferase EC 2.4.1.116: cyanidin 3-O-rutinoside 5-O-glucosyltransferase EC 2.4.1.117: dolichyl-phosphate β-glucosyltransferase EC 2.4.1.118: cytokinin 7-β-glucosyltransferase EC 2.4.1.119: transferred to EC 2.4.99.18, dolichyl-diphosphooligosaccharideprotein glycotransferase EC 2.4.1.120: sinapate 1-glucosyltransferase EC 2.4.1.121: indole-3-acetate β-glucosyltransferase EC 2.4.1.122: N-acetylgalactosaminide β-1,3-galactosyltransferase EC 2.4.1.123: inositol 3-α-galactosyltransferase EC 2.4.1.124: Now EC 2.4.1.87, N-acetyllactosaminide 3-α-galactosyltransferase EC 2.4.1.125: sucrose—1,6-α-glucan 3(6)-α-glucosyltransferase EC 2.4.1.126: hydroxycinnamate 4-β-glucosyltransferase EC 2.4.1.127: monoterpenol β-glucosyltransferase EC 2.4.1.128: scopoletin glucosyltransferase EC 2.4.1.129: peptidoglycan glycosyltransferase EC 2.4.1.130: Now covered by EC 2.4.1.258, EC 2.4.1.259, EC 2.4.1.260 and EC 2.4.1.261 EC 2.4.1.131: GDP-Man:Man3GlcNAc2-PP-dolichol α-1,2-mannosyltransferase EC 2.4.1.132: GDP-Man:Man1GlcNAc2-PP-dolichol α-1,3-mannosyltransferase EC 2.4.1.133: xylosylprotein 4-β-galactosyltransferase EC 2.4.1.134: galactosylxylosylprotein 3-β-galactosyltransferase EC 2.4.1.135: galactosylgalactosylxylosylprotein 3-β-glucuronosyltransferase EC 2.4.1.136: gallate 1-β-glucosyltransferase EC 2.4.1.137: sn-glycerol-3-phosphate 2-α-galactosyltransferase EC 2.4.1.138: mannotetraose 2-α-N-acetylglucosaminyltransferase EC 2.4.1.139: maltose synthase EC 2.4.1.140: alternansucrase EC 2.4.1.141: N-acetylglucosaminyldiphosphodolichol N-acetylglucosaminyltransferase EC 2.4.1.142: chitobiosyldiphosphodolichol β-mannosyltransferase EC 2.4.1.143: α-1,6-mannosyl-glycoprotein 2-β-N-acetylglucosaminyltransferase EC 2.4.1.144: β-1,4-mannosyl-glycoprotein 4-β-N-acetylglucosaminyltransferase EC 2.4.1.145: α-1,3-mannosyl-glycoprotein 4-β-N-acetylglucosaminyltransferase EC 2.4.1.146: β-1,3-galactosyl-O-glycosyl-glycoprotein β-1,3-N-acetylglucosaminyltransferase EC 2.4.1.147: acetylgalactosaminyl-O-glycosyl-glycoprotein β-1,3-N-acetylglucosaminyltransferase EC 2.4.1.148: acetylgalactosaminyl-O-glycosyl-glycoprotein β-1,6-N-acetylglucosaminyltransferase EC 2.4.1.149: N-acetyllactosaminide β-1,3-N-acetylglucosaminyltransferase EC 2.4.1.150: N-acetyllactosaminide β-1,6-N-acetylglucosaminyltransferase EC 2.4.1.151: now included with EC 2.4.1.87 N-acetyllactosaminide 3-α-galactosyltransferase EC 2.4.1.152: 4-galactosyl-N-acetylglucosaminide 3-α-L-fucosyltransferase EC 2.4.1.153: UDP-N-acetylglucosamine—dolichyl-phosphate N-acetylglucosaminyltransferase EC 2.4.1.154: identical to EC 2.4.1.79, globotriaosylceramide 3-β-N-acetylgalactosaminyltransferase EC 2.4.1.155: α-1,6-mannosyl-glycoprotein 6-β-N-acetylglucosaminyltransferase EC 2.4.1.156: indolylacetyl-myo-inositol galactosyltransferase EC 2.4.1.157: 1,2-diacylglycerol 3-glucosyltransferase, now classified as EC 2.4.1.336, monoglucosyldiacylglycerol synthase, and EC 2.4.1.337, 1,2-diacylglycerol 3-α-glucosyltransferase EC 2.4.1.158: 13-hydroxydocosanoate 13-β-glucosyltransferase EC 2.4.1.159: flavonol-3-O-glucoside L-rhamnosyltransferase EC 2.4.1.160: pyridoxine 5′-O-β-D-glucosyltransferase EC 2.4.1.161: oligosaccharide 4-α-D-glucosyltransferase EC 2.4.1.162: aldose β-D-fructosyltransferase EC 2.4.1.163: now included in EC 2.4.1.149, N-acetyllactosaminide β-1,3-N-acetylglucosaminyltransferase EC 2.4.1.164: now included with EC 2.4.1.150, N-acetyllactosaminide β-1,6-N-acetylglucosaminyltransferase EC 2.4.1.165: N-acetylneuraminylgalactosylglucosylceramide β-1,4-N-acetylgalactosaminyltransferase EC 2.4.1.166: raffinose—raffinose α-galactosyltransferase EC 2.4.1.167: sucrose 6F-α-galactosyltransferase EC 2.4.1.168: xyloglucan 4-glucosyltransferase EC 2.4.1.169: now EC 2.4.2.39, xyloglucan 6-xylosyltransferase EC 2.4.1.170: isoflavone 7-O-glucosyltransferase EC 2.4.1.171: methyl-ONN-azoxymethanol β-D-glucosyltransferase EC 2.4.1.172: salicyl-alcohol β-D-glucosyltransferase EC 2.4.1.173: sterol 3β-glucosyltransferase EC 2.4.1.174: glucuronylgalactosylproteoglycan 4-β-N-acetylgalactosaminyltransferase EC 2.4.1.175: glucuronosyl-N-acetylgalactosaminyl-proteoglycan 4-β-N-acetylgalactosaminyltransferase EC 2.4.1.176: gibberellin β-D-glucosyltransferase EC 2.4.1.177: cinnamate β-D-glucosyltransferase EC 2.4.1.178: hydroxymandelonitrile glucosyltransferase EC 2.4.1.179: lactosylceramide β-1,3-galactosyltransferase EC 2.4.1.180: lipopolysaccharide N-acetylmannosaminouronosyltransferase EC 2.4.1.181: hydroxyanthraquinone glucosyltransferase EC 2.4.1.182: lipid-A-disaccharide synthase EC 2.4.1.183: α-1,3-glucan synthase EC 2.4.1.184: galactolipid galactosyltransferase EC 2.4.1.185: flavanone 7-O-β-glucosyltransferase EC 2.4.1.186: glycogenin glucosyltransferase EC 2.4.1.187: N-acetylglucosaminyldiphosphoundecaprenol N-acetyl-β-D-mannosaminyltransferase EC 2.4.1.188: N-acetylglucosaminyldiphosphoundecaprenol glucosyltransferase EC 2.4.1.189: uteolin 7-O-glucuronosyltransferase EC 2.4.1.190: luteolin-7-O-glucuronide 2′′-O-glucuronosyltransferase EC 2.4.1.191: luteolin-7-O-diglucuronide 4′-O-glucuronosyltransferase EC 2.4.1.192: nuatigenin 3β-glucosyltransferase EC 2.4.1.193: sarsapogenin 3β-glucosyltransferase EC 2.4.1.194: 4-hydroxybenzoate 4-O-β-D-glucosyltransferase EC 2.4.1.195: N-hydroxythioamide S-β-glucosyltransferase EC 2.4.1.196: nicotinate glucosyltransferase EC 2.4.1.197: high-mannose-oligosaccharide β-1,4-N-acetylglucosaminyltransferase EC 2.4.1.198: phosphatidylinositol N-acetylglucosaminyltransferase EC 2.4.1.199: β-mannosylphosphodecaprenol—mannooligosaccharide 6-mannosyltransferase EC 2.4.1.200: now EC 4.2.2.17, inulin fructotransferase (DFA-I-forming) EC 2.4.1.201: α-1,6-mannosyl-glycoprotein 4-β-N-acetylglucosaminyltransferase EC 2.4.1.202: 2,4-dihydroxy-7-methoxy-2H-1,4-benzoxazin-3(4H)-one 2-D-glucosyltransferase EC 2.4.1.203: trans-zeatin O-β-D-glucosyltransferase EC 2.4.1.204: now EC 2.4.2.40, zeatin O-β-D-xylosyltransferase EC 2.4.1.205: galactogen 6β-galactosyltransferase EC 2.4.1.206: lactosylceramide 1,3-N-acetyl-β-D-glucosaminyltransferase EC 2.4.1.207: xyloglucan:xyloglucosyl transferase EC 2.4.1.208: diglucosyl diacylglycerol synthase (1,2-linking) EC 2.4.1.209: cis-p-coumarate glucosyltransferase EC 2.4.1.210: limonoid glucosyltransferase EC 2.4.1.211: 1,3-β-galactosyl-N-acetylhexosamine phosphorylase EC 2.4.1.212: hyaluronan synthase EC 2.4.1.213: glucosylglycerol-phosphate synthase EC 2.4.1.214: glycoprotein 3-α-L-fucosyltransferase EC 2.4.1.215: cis-zeatin O-β-D-glucosyltransferase EC 2.4.1.216: trehalose 6-phosphate phosphorylase EC 2.4.1.217: mannosyl-3-phosphoglycerate synthase EC 2.4.1.218: hydroquinone glucosyltransferase EC 2.4.1.219: vomilenine glucosyltransferase EC 2.4.1.220: indoxyl-UDPG glucosyltransferase EC 2.4.1.221: peptide-O-fucosyltransferase EC 2.4.1.222: O-fucosylpeptide 3-β-N-acetylglucosaminyltransferase EC 2.4.1.223: glucuronosyl-galactosyl-proteoglycan 4-α-N-acetylglucosaminyltransferase EC 2.4.1.224: glucuronosyl-N-acetylglucosaminyl-proteoglycan 4-α-N-acetylglucosaminyltransferase EC 2.4.1.225: N-acetylglucosaminyl-proteoglycan 4-β-glucuronosyltransferase EC 2.4.1.226: N-acetylgalactosaminyl-proteoglycan 3-β-glucuronosyltransferase EC 2.4.1.227: undecaprenyldiphospho-muramoylpentapeptide β-N-acetylglucosaminyltransferase EC 2.4.1.228: lactosylceramide 4-α-galactosyltransferase EC 2.4.1.229: [Skp1-protein]-hydroxyproline N-acetylglucosaminyltransferase EC 2.4.1.230: kojibiose phosphorylase EC 2.4.1.231: α,α-trehalose phosphorylase (configuration-retaining) EC 2.4.1.232: initiation-specific α-1,6-mannosyltransferase EC 2.4.1.233: deleted: identical to EC 2.4.1.115, anthocyanidin 3-O-glucosyltransferase EC 2.4.1.234: kaempferol 3-O-galactosyltransferase EC 2.4.1.235: deleted: identical to EC 2.4.1.116, cyanidin 3-O-rutinoside 5-O-glucosyltransferase EC 2.4.1.236: flavanone 7-O-glucoside 2′′-O-β-L-rhamnosyltransferase EC 2.4.1.237: flavonol 7-O-β-glucosyltransferase EC 2.4.1.238: delphinidin 3,5-di-O-glucoside 3′-O-glucosyltransferase EC 2.4.1.239: flavonol-3-O-glucoside glucosyltransferase EC 2.4.1.240: flavonol-3-O-glycoside glucosyltransferase EC 2.4.1.241: flavonol-3-O-glycoside glucosyltransferase EC 2.4.1.242: NDP-glucose—starch glucosyltransferase EC 2.4.1.243: 6G-fructosyltransferase EC 2.4.1.244: N-acetyl-β-glucosaminyl-glycoprotein 4-β-N-acetylgalactosaminyltransferase EC 2.4.1.245: α,α-trehalose synthase EC 2.4.1.246: mannosylfructose-phosphate synthase EC 2.4.1.247: β-D-galactosyl-(1→4)-L-rhamnose phosphorylase EC 2.4.1.248: cycloisomaltooligosaccharide glucanotransferase EC 2.4.1.249: delphinidin 3′,5′-O-glucosyltransferase EC 2.4.1.250: D-inositol-3-phosphate glycosyltransferase EC 2.4.1.251: GlcA-β-(1→2)-D-Man-α-(1→3)-D-Glc-β-(1→4)-D-Glc-α-1-diphospho-ditrans,octacis-undecaprenol 4-β-mannosyltransferase EC 2.4.1.252: GDP-mannose:cellobiosyl-diphosphopolyprenol α-mannosyltransferase EC 2.4.1.253: baicalein 7-O-glucuronosyltransferase EC 2.4.1.254: cyanidin-3-O-glucoside 2′′-O-glucuronosyltransferase EC 2.4.1.255: protein O-GlcNAc transferase EC 2.4.1.256: dolichyl-P-Glc:Glc2Man9GlcNAc2-PP-dolichol α-1,2-glucosyltransferase EC 2.4.1.257: GDP-Man:Man2GlcNAc2-PP-dolichol α-1,6-mannosyltransferase EC 2.4.1.258: dolichyl-P-Man:Man5GlcNAc2-PP-dolichol α-1,3-mannosyltransferase EC 2.4.1.259: dolichyl-P-Man:Man6GlcNAc2-PP-dolichol α-1,2-mannosyltransferase EC 2.4.1.260: dolichyl-P-Man:Man7GlcNAc2-PP-dolichol α-1,6-mannosyltransferase EC 2.4.1.261: dolichyl-P-Man:Man8GlcNAc2-PP-dolichol α-1,2-mannosyltransferase EC 2.4.1.262: soyasapogenol glucuronosyltransferase EC 2.4.1.263: abscisate β-glucosyltransferase EC 2.4.1.264: D-Man-α-(1→3)-D-Glc-β-(1→4)-DD-Glc-α-1-diphosphoundecaprenol 2-β-glucuronosyltransferase EC 2.4.1.265: olichyl-P-Glc:Glc1Man9GlcNAc2-PP-dolichol α-1,3-glucosyltransferase EC 2.4.1.266: glucosyl-3-phosphoglycerate synthase EC 2.4.1.267: dolichyl-P-Glc:Man9GlcNAc2-PP-dolichol α-1,3-glucosyltransferase EC 2.4.1.268: glucosylglycerate synthase EC 2.4.1.269: mannosylglycerate synthase EC 2.4.1.270: mannosylglucosyl-3-phosphoglycerate synthase EC 2.4.1.271: crocetin glucosyltransferase EC 2.4.1.272: soyasapogenol B glucuronide galactosyltransferase EC 2.4.1.273: soyasaponin III rhamnosyltransferase EC 2.4.1.274: glucosylceramide β-1,4-galactosyltransferase EC 2.4.1.275: neolactotriaosylceramide β-1,4-galactosyltransferase EC 2.4.1.276: zeaxanthin glucosyltransferase EC 2.4.1.277: glycosyltransferase DesVII EC 2.4.1.278: desosaminyl transferase EryCIII EC 2.4.1.279: nigerose phosphorylase EC 2.4.1.280: N,N′-diacetylchitobiose phosphorylase EC 2.4.1.281: 4-O-β-D-mannosyl-D-glucose phosphorylase EC 2.4.1.282: 3-O-α-D-glucosyl-L-rhamnose phosphorylase EC 2.4.1.283: 2-deoxystreptamine N-acetyl-D-glucosaminyltransferase EC 2.4.1.284: 2-deoxystreptamine glucosyltransferase EC 2.4.1.285: UDP-GlcNAc:ribostamycin N-acetylglucosaminyltransferase EC 2.4.1.286: chalcone 4′-O-glucosyltransferase EC 2.4.1.287: rhamnopyranosyl-N-acetylglucosaminyl-diphospho-decaprenol β-1,4/1,5-galactofuranosyltransferase EC 2.4.1.288: galactofuranosylgalactofuranosylrhamnosyl-N-acetylglucosaminyl-diphospho-decaprenol β-1,5/1,6-galactofuranosyltransferase EC 2.4.1.289: N-acetylglucosaminyl-diphospho-decaprenol L-rhamnosyltransferase EC 2.4.1.290: N,N′-diacetylbacillosaminyl-diphospho-undecaprenol α-1,3-N-acetylgalactosaminyltransferase EC 2.4.1.291: N-acetylgalactosamine-N,N′-diacetylbacillosaminyl-diphospho-undecaprenol 4-α-N-acetylgalactosaminyltransferase EC 2.4.1.292: GalNAc-α-(1→4)-GalNAc-α-(1→3)-diNAcBac-PP-undecaprenol α-1,4-N-acetyl-D-galactosaminyltransferase EC 2.4.1.293: GalNAc5-diNAcBac-PP-undecaprenol β-1,3-glucosyltransferase EC 2.4.1.294: cyanidin 3-O-galactosyltransferase EC 2.4.1.295: anthocyanin 3-O-sambubioside 5-O-glucosyltransferase EC 2.4.1.296: anthocyanidin 3-O-coumaroylrutinoside 5-O-glucosyltransferase EC 2.4.1.297: anthocyanidin 3-O-glucoside 2′′-O-glucosyltransferase EC 2.4.1.298: anthocyanidin 3-O-glucoside 5-O-glucosyltransferase EC 2.4.1.299: cyanidin 3-O-glucoside 5-O-glucosyltransferase (acyl-glucose) EC 2.4.1.300: cyanidin 3-O-glucoside 7-O-glucosyltransferase (acyl-glucose) EC 2.4.1.301: 2′-deamino-2′-hydroxyneamine 1-α-D-kanosaminyltransferase EC 2.4.1.302: L-demethylnoviosyl transferase EC 2.4.1.303: UDP-Gal:α-D-GlcNAc-diphosphoundecaprenol β-1,3-galactosyltransferase EC 2.4.1.304: UDP-Gal:α-D-GlcNAc-diphosphoundecaprenol β-1,4-galactosyltransferase EC 2.4.1.305: UDP-Glc:α-D-GlcNAc-glucosaminyl-diphosphoundecaprenol β-1,3-glucosyltransferase EC 2.4.1.306: UDP-GalNAc:α-D-GalNAc-diphosphoundecaprenol α-1,3-N-acetylgalactosaminyltransferase EC 2.4.1.307: UDP-Gal:α-D-GalNAc-1,3-α-D-GalNAc-diphosphoundecaprenol β-1,3-galactosyltransferase. Now included in EC 2.4.1.122, N-acetylgalactosaminide β-1,3-galactosyltransferase EC 2.4.1.308: GDP-Fuc:β-D-Gal-1,3-α-D-GalNAc-1,3-α-GalNAc-diphosphoundecaprenol α-1,2-fucosyltransferase EC 2.4.1.309: UDP-Gal:α-L-Fuc-1,2-β-Gal-1,3-α-GalNAc-1,3-α-GalNAc-diphosphoundecaprenol α-1,3-galactosyltransferase EC 2.4.1.310: vancomycin aglycone glucosyltransferase EC 2.4.1.311: chloroorienticin B synthase EC 2.4.1.312: protein O-mannose β-1,4-N-acetylglucosaminyltransferase EC 2.4.1.313: protein O-mannose β-1,3-N-acetylgalactosaminyltransferase EC 2.4.1.314: ginsenoside Rd glucosyltransferase EC 2.4.1.315: diglucosyl diacylglycerol synthase (1,6-linking) EC 2.4.1.316: tylactone mycaminosyltransferase EC 2.4.1.317: O-mycaminosyltylonolide 6-deoxyallosyltransferase EC 2.4.1.318: demethyllactenocin mycarosyltransferase EC 2.4.1.319: β-1,4-mannooligosaccharide phosphorylase EC 2.4.1.320: 1,4-β-mannosyl-N-acetylglucosamine phosphorylase EC 2.4.1.321: cellobionic acid phosphorylase EC 2.4.1.322: devancosaminyl-vancomycin vancosaminetransferase EC 2.4.1.323: 7-deoxyloganetic acid glucosyltransferase EC 2.4.1.324: 7-deoxyloganetin glucosyltransferase EC 2.4.1.325: TDP-N-acetylfucosamine:lipid II N-acetylfucosaminyltransferase EC 2.4.1.326: aklavinone 7-L-rhodosaminyltransferase EC 2.4.1.327: aclacinomycin-T 2-deoxy-L-fucose transferase EC 2.4.1.328: erythronolide mycarosyltransferase EC 2.4.1.329: sucrose 6F-phosphate phosphorylase EC 2.4.1.330: β-D-glucosyl crocetin β-1,6-glucosyltransferase EC 2.4.1.331: 8-demethyltetracenomycin C L-rhamnosyltransferase EC 2.4.1.332: 1,2-α-glucosylglycerol phosphorylase EC 2.4.1.333: 1,2-β-oligoglucan phosphorylase EC 2.4.1.334: 1,3-α-oligoglucan phosphorylase EC 2.4.1.335: dolichyl N-acetyl-α-D-glucosaminyl phosphate 3-β-D-2,3-diacetamido-2,3-dideoxy-β-D-glucuronosyltransferase EC 2.4.1.336: monoglucosyldiacylglycerol synthase EC 2.4.1.337: 1,2-diacylglycerol 3-α-glucosyltransferase EC 2.4.1.338: validoxylamine A glucosyltransferase EC 2.4.1.339: β-1,2-mannobiose phosphorylase EC 2.4.1.340: 1,2-β-oligomannan phosphorylase EC 2.4.1.341: α-1,2-colitosyltransferase EC 2.4.1.342: α-maltose-1-phosphate synthase EC 2.4.1.343: UDP-Gal:α-D-GlcNAc-diphosphoundecaprenol α-1,3-galactosyltransferase EC 2.4.1.344: type 2 galactoside α-(1,2)-fucosyltransferase EC 2.4.1.345: phosphatidyl-myo-inositol α-mannosyltransferase EC 2.4.1.346: phosphatidyl-myo-inositol dimannoside synthase EC 2.4.1.347: α,α-trehalose-phosphate synthase (ADP-forming) EC 2.4.1.348: N-acetyl-α-D-glucosaminyl-diphospho-ditrans,octacis-undecaprenol 3-α-mannosyltransferase EC 2.4.1.349: mannosyl-N-acetyl-α-D-glucosaminyl-diphospho-ditrans,octacis-undecaprenol 3-α-mannosyltransferase EC 2.4.1.350: mogroside IE synthase EC 2.4.1.351: rhamnogalacturonan I rhamnosyltransferase EC 2.4.1.352: glucosylglycerate phosphorylase EC 2.4.1.353: sordaricin 6-deoxyaltrosyltransferase EC 2.4.1.354: (R)-mandelonitrile β-glucosyltransferase EC 2.4.1.355: poly(ribitol-phosphate) β-N-acetylglucosaminyltransferase EC 2.4.1.356: glucosyl-dolichyl phosphate glucuronosyltransferase EC 2.4.1.357: phlorizin synthase EC 2.4.1.358: acylphloroglucinol glucosyltransferase EC 2.4.1.359: glucosylglycerol phosphorylase (configuration-retaining) EC 2.4.1.360: 2-hydroxyflavanone C-glucosyltransferase EC 2.4.1.361: GDP-mannose:di-myo-inositol-1,3′-phosphate β-1,2-mannosyltransferase EC 2.4.1.362: α-(1→3) branching sucrase EC 2.4.1.363: ginsenoside 20-O-glucosyltransferase EC 2.4.1.364: protopanaxadiol-type ginsenoside 3-O-glucosyltransferase EC 2.4.1.365: protopanaxadiol-type ginsenoside-3-O-glucoside 2′′-O-glucosyltransferase EC 2.4.1.366: ginsenoside F1 6-O-glucosyltransferase EC 2.4.1.367: ginsenoside 6-O-glucosyltransferase EC 2.4.1.368: oleanolate 3-O-glucosyltransferase EC 2.4.1.369: enterobactin C-glucosyltransferase EC 2.4.1.370: inositol phosphorylceramide mannosyltransferase EC 2.4.1.371: polymannosyl GlcNAc-diphospho-ditrans,octacis-undecaprenol 2,3-α-mannosylpolymerase EC 2.4.1.372: mutansucrase EC 2.4.1.373: α-(1→2) branching sucrase EC 2.4.1.374: β-1,2-mannooligosaccharide synthase EC 2.4.1.375: rhamnogalacturonan I galactosyltransferase EC 2.4.1.376: EGF-domain serine glucosyltransferase EC 2.4.1.377: dTDP-Rha:α-D-Gal-diphosphoundecaprenol α-1,3-rhamnosyltransferase EC 2.4.1.378: GDP-mannose:α-L-Rha-(1→3)-α-D-Gal-PP-Und α-1,4-mannosyltransferase EC 2.4.1.379: GDP-Man:α-D-Gal-diphosphoundecaprenol α-1,3-mannosyltransferase EC 2.4.1.380: GDP-Man:α-D-Man-(1→3)-α-D-Gal diphosphoundecaprenol α-1,2-mannosyltransferase EC 2.4.1.381: dTDP-Rha:α-D-Man-(1→3)-α-D-Gal diphosphoundecaprenol α-1,2-rhamnosyltransferase EC 2.4.1.382: CDP-abequose:α-L-Rha2OAc-(1→2)-α-D-Man-(1→2)-α-D-Man-(1→3)-α-D-Gal-PP-Und α-1,3-abequosyltransferase EC 2.4.1.383: GDP-Man:α-L-Rha-(1→3)-α-D-Gal-PP-Und β-1,4-mannosyltransferase EC 2.4.1.384: NDP-glycosyltransferase

Sources: en.wikipedia.org

Notes from published material

=== Independent induction of LTP === LTP can be induced by artificially injecting CaMKII. When CaMKII is infused in postsynaptically in the hippocampal slices and intracellular perfusion or viral expression, there is a two- to threefold increase in the response of the synapse to glutamate and other chemical signals.

The current in an LED or other diodes rises exponentially with the applied voltage (see Shockley diode equation), so a small change in voltage can cause a large change in current. Current through the LED must be regulated by an external circuit such as a constant current source to prevent damage. LEDs are sensitive to voltage. They must be supplied with a voltage above their threshold voltage and a current below their rating. Current and lifetime change greatly with a small change in applied voltage. They thus require a current-regulated supply (usually just a series resistor for indicator LEDs). Efficiency droop: The efficiency of LEDs decreases as the electric current increases. Heating also increases with higher currents, which compromises LED lifetime. These effects put practical limits on the current through an LED in high power applications.

For services to Public Health in Scotland. Gerard Anthony Lemos, CMG. Non-Executive Chair, HM Prisons and Probation Service Agency Board. For Public and Voluntary Service. Zoe Ann Lewis. Principal and Chief Executive Officer, Middlesbrough College. For services to Further Education. Dr. Andrew John Mackintosh. Adviser, The Knowledge Assets Initiative. For services to Science and Technology, and to Enterprise Development. Barbara Hilary Manning. Lately Head of Payments, Banking and Shared Services, Department for Work and Pensions. For services to the Public and to the State Funeral of Her Majesty Queen Elizabeth II. Anthony McGee. Director, Ukraine Task Force, Ministry of Defence. For Public Service. Michael Messinger, LVO, QPM. Lately Chancellor, Order of St. John (England) and Deputy Chairman, St John Ambulance. For voluntary service to St John Ambulance. Colin Morrison, OBE. Founder and Chair, Boarding School Partnerships. For services to Education. Katherine Louise Mosse, OBE. Author. For services to Literature, to Women and to Charity. Ciaran Michael Murphy, KC. Senior Counsel. For services to Criminal Justice. Stuart Neil Luke Murphy. Chief Executive, English National Opera. For services to Opera. Professor Joseph Gerard Nellis. Professor of Global Economy, School of Management Cranfield University. For services to Higher Education, to Economics, to Business and to Charity. Dr. Vanessa Jane Ogden. Chief Executive Officer, Mulberry Schools Trust. For services to Education. René Olivieri. For services to the Charitable Sector. Lynn Margaret Pamment.

Matured quartz arenite within Vlamy Formation yield older and more diverse ages given by well-rounded detrital zircons, which may correlate to multiple sedimentary reworking events. On the contrary, Harmony Formation in the same region has younger and homogenous ages given by euhedral detrital zircons. These two formations illustrate the possibility of relating sedimentary maturity with resulting zircon ages, meaning that rounded and well-sorted sedimentary rocks (e.g. siltstone and mudstone) may have older and more diverse ages. Turbidites in Harts Pass Formation contain homogenous detrital zircons ages. On the other hand, fluvial Winthrop Formation in another strata of the same basin has various detrital zircon age populations. Comparing the vertical detrital zircon distribution within these two formations, one can expect a narrower age population of detrital zircons from rocks which are rapidly deposited, such as turbidites. Rocks that are gradually deposited (e.g. marine mudstone), however, have a greater chance and time to incorporate zircon sediments from different localities.

==== 2004 DOE panel ==== In August 2003, the U.S. Secretary of Energy, Spencer Abraham, ordered the DOE to organize a second review of the field. This was thanks to an April 2003 letter sent by MIT's Peter L. Hagelstein, and the publication of many new papers, including the Italian ENEA and other researchers in the 2003 International Cold Fusion Conference, and a two-volume book by U.S. SPAWAR in 2002. Cold fusion researchers were asked to present a review document of all the evidence since the 1989 review. The report was released in 2004. The reviewers were "split approximately evenly" on whether the experiments had produced energy in the form of heat, but "most reviewers, even those who accepted the evidence for excess power production, 'stated that the effects are not repeatable, the magnitude of the effect has not increased in over a decade of work, and that many of the reported experiments were not well documented'". In summary, reviewers found that cold fusion evidence was still not convincing 15 years later, and they did not recommend a federal research program. They only recommended that agencies consider funding individual well-thought studies in specific areas where research "could be helpful in resolving some of the controversies in the field". They summarized its conclusions thus:

Sources: en.wikipedia.org

Frequently asked questions

What class of therapeutic is tirzepatide?

It is a dual GIP and GLP-1 receptor agonist, frequently grouped with incretin-based peptide therapeutics. It is a peptide rather than a small molecule and is given by subcutaneous injection.

How does it differ from selective GLP-1 agonists?

Selective agents engage only the GLP-1 receptor, whereas tirzepatide activates GIP and GLP-1 receptors simultaneously. This difference in receptor coverage is the principal pharmacological distinction emphasised in comparative reviews.

Is the mechanism fully understood?

Downstream signalling is partly characterised, but the quantitative contribution of GIP versus GLP-1 receptor activation to metabolic outcomes is not settled. Review articles commonly flag this as an unresolved question rather than a settled finding.

What receptors does tirzepatide target?

It binds and activates both the GIP and GLP-1 receptors, making it a dual incretin receptor agonist. Single-receptor GLP-1 agonists act on one target only. The dual profile is the defining pharmacological feature of the molecule.

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