Pro-Gly-Pro comes up often in conversation and rarely with the context attached. Here we lay out the basics in order, then work through the practical considerations.
Last reviewed on 2026-06-09. Where a claim depends on a specific study, the study is described rather than over-claimed.
Selank is a synthetic heptapeptide with the sequence Thr-Lys-Pro-Arg-Pro-Gly-Pro. It was designed as a stabilized analogue of tuftsin, a naturally occurring tetrapeptide fragment derived from the immunoglobulin heavy chain. The additional Pro-Gly-Pro segment at the carboxyl terminus is intended to slow enzymatic cleavage. The compound is usually described in the literature as a synthetic peptide with anxiolytic and cognitive-related activity, a label that reflects a research context rather than an approved therapeutic category.
Most published work on selank originates from a small number of research groups in the Russian Federation. A large share of that record appears in Russian-language journals, which limits access for readers who rely on English-indexed databases. Independent replication by laboratories outside the original research network is sparse in publicly available sources. This concentration of origin and language is a frequently noted feature when the compound is summarized in broader reviews of synthetic peptides.
Reported pharmacological effects center on reduced anxiety-like behavior in animal models and on measures of memory and learning. Proposed contributing mechanisms include modulation of GABAergic signaling, shifts in monoamine turnover, and changes in the activity of enzymes that degrade neuropeptides. Effects on the expression of genes linked to neuroplasticity have also been described. No single molecular target is widely accepted, and whether the behavioral findings arise from one pathway or several remains an open question.
Characterization of Selank in laboratory settings relies on standard peptide analytical techniques. Reverse-phase high-performance liquid chromatography separates the peptide from related impurities and degradation products, while mass spectrometry confirms molecular identity through accurate mass measurement. Amino acid analysis and peptide sequencing verify the primary structure when reference material is unavailable. Because Selank is a short chain, fragmentation-based analysis produces a diagnostic ion pattern that supports confident identification.
Peptide stability depends strongly on temperature, moisture, and pH. Lyophilized Selank is generally most stable when stored cold and dry, with freezer temperatures commonly used for long-term storage. In solution, the compound is susceptible to hydrolysis and to microbial growth if it is not handled aseptically. The C-terminal proline-rich extension appears to slow enzymatic cleavage relative to tuftsin, though quantitative degradation rates vary with the matrix and the conditions tested. Published stability data specific to Selank remain sparse.
Quality assessment of Selank samples typically combines purity determination with identity confirmation and counter-ion analysis. Purity is usually reported as a percentage by chromatographic area, with values above 95 percent often quoted for research-grade material. Water content and residual solvents are checked in lyophilized batches because they affect both stability and accurate mass determination. A reported purity figure does not by itself establish that a sample is the intended sequence, so orthogonal methods are needed to rule out sequence isomers or truncation products.
| Property | Value | Notes |
|---|---|---|
| Molecular formula | C33H57N11O9 | Derived from the seven-residue sequence |
| Molecular weight | About 751.9 g/mol | Average mass; the monoisotopic value is slightly lower |
| Residue count | Seven amino acids | Thr-Lys-Pro-Arg-Pro-Gly-Pro |
| Parent compound | Tuftsin (Thr-Lys-Pro-Arg) | Selank extends tuftsin at the C-terminus |
| Compound class | Synthetic short peptide | Studied in a research setting; not a licensed drug in most markets |
Purity assessment relies mainly on reverse-phase high-performance liquid chromatography with ultraviolet detection. Because the peptide lacks a strong chromophore, detection often uses backbone absorbance near 214 nm. Identity is confirmed by mass spectrometry, typically electrospray ionization or matrix-assisted laser desorption, comparing the measured mass against the expected value. Amino acid analysis can verify composition after acid hydrolysis. Diastereomer content and residual counterions are reported less often, although both can influence biological assays.
Lyophilized material is generally stable for extended periods when kept dry at or below minus twenty degrees Celsius. Working solutions are less stable, and common practice is to aliquot and freeze them so that repeated freeze-thaw cycles are avoided. Aqueous solutions are sensitive to pH extremes and to microbial growth, so short-term storage at refrigerator temperature is typical. Oxidation and hydrolysis are the principal degradation routes. Reconstitution with sterile water or a mild buffer is standard, and solutions should be protected from light.
Identity and purity of selank are established with reversed-phase high-performance liquid chromatography coupled to mass spectrometry. The peptide elutes from C18 columns with acetonitrile gradients in water containing trifluoroacetic acid or formic acid, and detection is usually performed by ultraviolet absorbance near 214 nm. Electrospray ionization in positive mode gives a doubly protonated ion near m/z 377, consistent with a mass of about 752 Da. Amino acid analysis or tandem mass spectrometry of fragment ions confirms the sequence. Because the molecule has no aromatic residues, it lacks a usable 280 nm chromophore, so low-wavelength detection or mass spectrometry is required.
Peptide bonds in selank are susceptible to hydrolysis under strongly acidic or basic conditions, and the terminal proline residues are vulnerable to exopeptidase activity in biological samples. Lyophilized powder stored dry at -20 °C typically remains stable for extended periods, whereas aqueous solutions degrade faster and may lose measurable purity within days to weeks depending on pH, temperature, and microbial load. Repeated freeze-thaw cycles promote aggregation and adsorption to container surfaces. For analytical work, solutions are usually prepared fresh, kept cold, and used within a single working day.
allele One of multiple alternative versions of an individual gene, each of which is a viable DNA sequence occupying a given position, or locus, on a chromosome. For example, in humans, one allele of the eye-color gene produces blue eyes and another allele of the same gene produces brown eyes.
* The daily recommended amounts of niacin and magnesium are higher than the tolerable upper limit because, for both nutrients, the ULs identify the amounts that will not increase the risk of adverse effects when the nutrients are consumed as a serving of a dietary supplement. Magnesium supplementation above the UL may cause diarrhea. Supplementation with niacin above the UL may cause flushing of the face and a sensation of body warmth. Each country or regional regulatory agency decides on a safety margin below when symptoms occur so that the ULs may differ based on the source. EAR U.S. Estimated Average Requirements. RDA U.S. Recommended Dietary Allowances; higher for adults than children and may be even higher for pregnant or lactating women. AI U.S. Adequate Intake; AIs are established when there is insufficient information to set EARs and RDAs. PRI Population Reference Intake is the European Union equivalent of RDA; it is higher for adults than for children and maybe even higher for pregnant or lactating women. For Thiamin and Niacin, the PRIs are expressed as amounts per megajoule (239 kilocalories) of food energy consumed. Upper Limit Tolerable upper intake levels. ND ULs have not been determined. NE EARs, PRIs, or AIs have not yet been established or will not be (EU does not consider chromium an essential nutrient).
=== MP for Henley: 1974–2001 === Heseltine, by now a junior minister in the Heath government, was now forced to apply for a new candidacy, often in competition with other sitting Conservative MPs whose seats were also due for abolition. He applied for Mid Sussex in competition with Ian Gilmour, but they lost to Tim Renton. He also applied for Mid-Oxfordshire but lost to Douglas Hurd. In 1972 Edward Heath attempted to persuade Heseltine, a strong supporter of his, to challenge Powellite MP Ronald Bell for the Conservative nomination for the new seat of Beaconsfield. Heseltine wrote that he was "tempted" to enter the lists at Beaconsfield, but did not actually do so. Crick writes that he reached the final shortlist of four against Bell, before being "apparently persuaded" to withdraw. Bell's campaign within the local Conservative ranks was masterminded by Hugh Simmonds, chairman of the Young Conservatives, and he narrowly won. Heseltine was one of 180 applicants for the safe Conservative seat of Henley (the constituency association of which was known as North Oxfordshire), whose MP John Hay was stepping down. He reached the final shortlist of three along with two other sitting MPs, William Shelton and Norman Fowler, and in September 1972 was selected as candidate with a clear majority at the first ballot. Part of the reason was that the Association wanted a wealthy MP who would not be distracted by the need to earn money in business as Hay had been. He maintained a constituency home in Crocker End, near Nettlebed, and still maintained a London home at Wilton Crescent.
Sources: en.wikipedia.org
=== EC 1.3.1 With NAD+ or NADP+ as acceptor === EC 1.3.1.1: dihydrouracil dehydrogenase (NAD+) EC 1.3.1.2: dihydropyrimidine dehydrogenase (NADP+) EC 1.3.1.3: Δ4-3-oxosteroid 5β-reductase EC 1.3.1.4: transferred to EC 1.3.1.22, 3-oxo-5α-steroid 4-dehydrogenase (NADP+) EC 1.3.1.5: cucurbitacin Δ23-reductase EC 1.3.1.6: fumarate reductase (NADH) EC 1.3.1.7: meso-tartrate dehydrogenase EC 1.3.1.8: acyl-CoA dehydrogenase (NADP+) EC 1.3.1.9: enoyl-[acyl-carrier-protein] reductase (NADH) EC 1.3.1.10: enoyl-[acyl-carrier-protein] reductase (NADPH, Si-specific) EC 1.3.1.11: 2-coumarate reductase EC 1.3.1.12: prephenate dehydrogenase EC 1.3.1.13: prephenate dehydrogenase (NADP+) EC 1.3.1.14: dihydroorotate dehydrogenase (NAD+) EC 1.3.1.15: dihydroorotate dehydrogenase (NADP+) EC 1.3.1.16: β-nitroacrylate reductase EC 1.3.1.17: 3-methyleneoxindole reductase EC 1.3.1.18: kynurenate-7,8-dihydrodiol dehydrogenase EC 1.3.1.19: cis-1,2-dihydrobenzene-1,2-diol dehydrogenase EC 1.3.1.20: trans-1,2-dihydrobenzene-1,2-diol dehydrogenase EC 1.3.1.21: 7-dehydrocholesterol reductase EC 1.3.1.22: 3-oxo-5α-steroid 4-dehydrogenase (NADP+) EC 1.3.1.23: Identical to EC 1.3.1.3, Δ4-3-oxosteroid 5β-reductase EC 1.3.1.24: biliverdin reductase EC 1.3.1.25: 1,6-dihydroxycyclohexa-2,4-diene-1-carboxylate dehydrogenase EC 1.3.1.26: Now EC 1.17.1.8, 4-hydroxy-tetrahydrodipicolinate reductase EC 1.3.1.27: 2-hexadecenal reductase EC 1.3.1.28: 2,3-dihydro-2,3-dihydroxybenzoate dehydrogenase EC 1.3.1.29: cis-1,2-dihydro-1,2-dihydroxynaphthalene dehydrogenase EC 1.3.1.30: transferred to EC 1.3.1.22, 3-oxo-5α-steroid 4-dehydrogenase (NADP+) EC 1.3.1.31: 2-enoate reductase EC 1.3.1.32: maleylacetate reductase EC 1.3.1.33: protochlorophyllide reductase EC 1.3.1.34: 2,4 Dienoyl-CoA reductase (NADPH) EC 1.3.1.35: Now EC 1.14.19.22, microsomal oleoyl-lipid 12-desaturase EC 1.3.1.36: geissoschizine dehydrogenase EC 1.3.1.37: cis-2-enoyl-CoA reductase (NADPH) EC 1.3.1.38: trans-2-enoyl-CoA reductase (NADPH) EC 1.3.1.39: trans-2-enoyl-CoA reductase (NADPH) EC 1.3.1.40: 2-hydroxy-6-oxo-6-phenylhexa-2,4-dienoate reductase EC 1.3.1.41: xanthommatin reductase EC 1.3.1.42: 12-oxophytodienoate reductase EC 1.3.1.43: arogenate dehydrogenase EC 1.3.1.44: trans-2-enoyl-CoA reductase (NAD+) EC 1.3.1.45: 2′-hydroxyisoflavone reductase EC 1.3.1.46: biochanin-A reductase EC 1.3.1.47: α-santonin 1,2-reductase EC 1.3.1.48: 13,14-dehydro-15-oxoprostaglandin 13-reductase EC 1.3.1.49: cis-3,4-dihydrophenanthrene-3,4-diol dehydrogenase EC 1.3.1.50: n Now EC 1.1.1.252 tetrahydroxynaphthalene reductase EC 1.3.1.51: 2′-hydroxydaidzein reductase EC 1.3.1.52: Now EC 1.3.8.5, 2-methyl-branched-chain-enoyl-CoA reductase EC 1.3.1.53: (3S,4R)-3,4-dihydroxycyclohexa-1,5-diene-1,4-dicarboxylate dehydrogenase EC 1.3.1.54: precorrin-6A reductase EC 1.3.1.55: identical to EC 1.3.1.25, 1,6-dihydroxycyclohexa-2,4-diene-1-carboxylate dehydrogenase EC 1.3.1.56: cis-2,3-dihydrobiphenyl-2,3-diol dehydrogenase EC 1.3.1.57: phloroglucinol reductase EC 1.3.1.58: 2,3-dihydroxy-2,3-dihydro-p-cumate dehydrogenase EC 1.3.1.59: There is no evidence that the enzyme exists EC 1.3.1.60: dibenzothiophene dihydrodiol dehydrogenase EC 1.3.1.61: identical to EC 1.3.1.53, (3S,4R)-3,4-dihydroxycyclohexa-1,5-diene-1,4-dicarboxylate dehydrogenase EC 1.3.1.62: pimeloyl-CoA dehydrogenase EC 1.3.1.63: Now EC 1.21.1.2, 2,4-dichlorobenzoyl-CoA reductase EC 1.3.1.64: phthalate 4,5-cis-dihydrodiol dehydrogenase EC 1.3.1.65: 5,6-dihydroxy-3-methyl-2-oxo-1,2,5,6-tetrahydroquinoline dehydrogenase EC 1.3.1.66: cis-dihydroethylcatechol dehydrogenase EC 1.3.1.67: cis-1,2-dihydroxy-4-methylcyclohexa-3,5-diene-1-carboxylate dehydrogenase EC 1.3.1.68: 1,2-dihydroxy-6-methylcyclohexa-3,5-dienecarboxylate dehydrogenase EC 1.3.1.69: zeatin reductase EC 1.3.1.70: Δ14-sterol reductase EC 1.3.1.71: Δ24(241)-sterol reductase EC 1.3.1.72: Δ24-sterol reductase EC 1.3.1.73: 1,2-dihydrovomilenine reductase EC 1.3.1.74: 2-alkenal reductase [NAD(P)+] EC 1.3.1.75: 3,8-divinyl protochlorophyllide a 8-vinyl-reductase (NADPH) EC 1.3.1.76: precorrin-2 dehydrogenase EC 1.3.1.77: anthocyanidin reductase [(2R,3R)-flavan-3-ol-forming] EC 1.3.1.78: arogenate dehydrogenase (NADP+) EC 1.3.1.79: arogenate dehydrogenase (NAD(P)+) EC 1.3.1.80: Now classified as EC 1.3.7.12, red chlorophyll catabolite reductase EC 1.3.1.81: (+)-pulegone reductase EC 1.3.1.82: (-)-isopiperitenone reductase EC 1.3.1.83: geranylgeranyl diphosphate reductase EC 1.3.1.84: acrylyl-CoA reductase (NADPH) EC 1.3.1.85: crotonyl-CoA carboxylase/reductase EC 1.3.1.86: crotonyl-CoA reductase EC 1.3.1.87: 3-(cis-5,6-dihydroxycyclohexa-1,3-dien-1-yl)propanoate dehydrogenase EC 1.3.1.88: tRNA-dihydrouridine16/17 synthase (NAD(P)+) EC 1.3.1.89: tRNA-dihydrouridine47 synthase (NAD(P)+) EC 1.3.1.90: tRNA-dihydrouridine20a/20b synthase (NAD(P)+) EC 1.3.1.91: tRNA-dihydrouridine20 synthase (NAD(P)+) EC 1.3.1.92: artemisinic aldehyde Δ11(13)-reductase EC 1.3.1.93: very-long-chain enoyl-CoA reductase EC 1.3.1.94: polyprenol reductase EC 1.3.1.95: acrylyl-CoA reductase (NADH) EC 1.3.1.96: Botryococcus squalene synthase EC 1.3.1.97: botryococcene synthase EC 1.3.1.98: Now known to be catalyzed by two different enzymes, EC 1.3.1.122, (S)-8-oxocitronellyl enol synthase, and EC 5.5.1.34, (+)-cis,trans-nepetalactol synthase EC 1.3.1.100: chanoclavine-I aldehyde reductase EC 1.3.1.101: 2,3-bis-O-geranylgeranyl-sn-glycerol 1-phosphate reductase [NAD(P)H] EC 1.3.1.102: 2-alkenal reductase (NADP+) EC 1.3.1.103: 2-haloacrylate reductase EC 1.3.1.104: enoyl-[acyl-carrier-protein] reductase (NADPH) EC 1.3.1.105: 2-methylene-furan-3-one reductase EC 1.3.1.106: cobalt-precorrin-6A reductase EC 1.3.1.107: sanguinarine reductase EC 1.3.1.108: caffeoyl-CoA reductase EC 1.3.1.109: butanoyl-CoA dehydrogenase complex (NAD+, ferredoxin) EC 1.3.1.110: lactate dehydrogenase (NAD+,ferredoxin) EC 1.3.1.111: geranylgeranyl-bacteriochlorophyllide a reductase EC 1.3.1.112: anthocyanidin reductase [(2S)-flavan-3-ol-forming] EC 1.3.1.113: (4-alkanoyl-5-oxo-2,5-dihydrofuran-3-yl)methyl phosphate reductase EC 1.3.1.114: 3-dehydro-bile acid Δ4,6-reductase EC 1.3.1.115: 3-oxocholoyl-CoA 4-desaturase EC 1.3.1.116: 7β-hydroxy-3-oxochol-24-oyl-CoA 4-desaturase EC 1.3.1.117: hydroxycinnamoyl-CoA reductase EC 1.3.1.118: meromycolic acid enoyl-[acyl-carrier-protein] reductase EC 1.3.1.119: chlorobenzene dihydrodiol dehydrogenase EC 1.3.1.120: cyclohexane-1-carbonyl-CoA reductase NADP+) EC 1.3.1.121: 4-amino-4-deoxyprephenate dehydrogenase EC 1.3.1.122: (S)-8-oxocitronellyl enol synthase EC 1.3.1.123: 8-oxogeranial reductase EC 1.3.1.124: 2,4-dienoyl-CoA reductase [(3E)-enoyl-CoA-producing]
There is also in vitro evidence of synergy for colistimethate sodium used in combination with other antipseudomonal antibiotics. Colistimethate sodium aerosol (Promixin; Colomycin Injection) is used to treat pulmonary infections, especially in cystic fibrosis. In the UK, the recommended adult dose is 1–2 million units (80–160 mg) nebulised colistimethate twice daily. Nebulized colistin has also been used to decrease severe exacerbations in patients with chronic obstructive pulmonary disease and infection with Pseudomonas aeruginosa.
=== Legal status === Icatibant received orphan drug status in Australia, the EU, Switzerland, and the US for the treatment of hereditary angioedema (HAE). In the EU, the approval by the European Commission (July 2008) allows Jerini to market Firazyr in the European Union's 27 member states, as well as Switzerland, Liechtenstein and Iceland, making it the first product to be approved in all EU countries for the treatment of hereditary angioedema. In the US, the drug was granted FDA approval in August 2011.
Sources: en.wikipedia.org
Selank is a synthetic heptapeptide with the sequence Thr-Lys-Pro-Arg-Pro-Gly-Pro, designed as a metabolically stabilized analogue of the endogenous tetrapeptide tuftsin. It has been studied mainly against anxiety-related and cognitive endpoints rather than as an approved medicine in most jurisdictions.
Tuftsin contains four residues, while selank carries an additional Pro-Gly-Pro segment at the carboxyl end. That extension is intended to reduce enzymatic cleavage. Comparative pharmacokinetic data in humans remain limited.
No single receptor target is widely accepted as the definitive mediator of the reported effects. Proposed contributors include GABAergic modulation, shifts in monoamine turnover, and altered neuropeptide degradation. The mechanism is treated in the literature as unresolved.
The most common approach combines reverse-phase liquid chromatography with mass spectrometry. Chromatography separates the components while mass spectrometry confirms the molecular mass. Peptide sequencing or tandem mass analysis can further verify the amino acid order.