Intranasal route 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 2025-08-25. Where a claim depends on a specific study, the study is described rather than over-claimed.
Animal studies have examined behaviour in tests of anxiety, memory retention and stress response, and several report changes in neurotrophic or neurotransmitter-related markers. The human evidence base is much smaller, consisting mainly of short trials conducted in Russia with limited reporting in English-language journals. Sample sizes are modest and outcome measures vary between studies, so the findings are best described as preliminary. Independent replication under modern trial standards has not been widely reported.
Outside its country of origin the compound is generally handled as a research chemical rather than an approved medicine. No regulatory approval from the United States Food and Drug Administration or the European Medicines Agency has been granted for human use. Identity and purity are normally checked by reverse-phase high-performance liquid chromatography, with mass spectrometry used to confirm the molecular mass. Lyophilised material is stored cold and desiccated, and repeated freeze-thaw cycles are avoided.
Proposed mechanisms center on modulation of the GABA system, but no single molecular target has been confirmed. Rodent studies report changes in GABA-A receptor expression and in the turnover of serotonin, dopamine, and norepinephrine in several brain regions. Increases in brain-derived neurotrophic factor and its receptor have also been described after repeated administration. These findings come largely from animal models, and the degree to which they describe human neurochemistry remains an open question. The mechanism is best characterized as multi-system and not fully resolved.
Pharmacokinetic data are limited. Like most short peptides, Selank is vulnerable to plasma and tissue peptidases, and its measured half-life in circulation is short, on a minutes scale. The Pro-Gly-Pro tail slows this degradation but does not eliminate it. Intranasal administration is the route described in most reports, with absorption through the nasal mucosa and a hypothesized path into the central nervous system that avoids the blood-brain barrier. Direct measurements of human brain exposure are unavailable, so distribution claims rest on inference from animal work.
| Property | Value | Notes |
|---|---|---|
| Common route | Intranasal | Also injected in some animal work |
| Solubility class | Freely soluble in water | Solid form is hygroscopic |
| Typical storage | About -20 degrees Celsius | Keep desiccated and dark |
| Purity method | Reverse-phase HPLC | Reported as area percent |
| Confirmatory method | Mass spectrometry | Verifies expected molecular mass |
Laboratory work relies on standard behavioral paradigms. Rodents are tested in the elevated plus maze, open field, and passive avoidance tasks, with outcomes compared against diazepam or vehicle controls. Intranasal dosing is used most often because it bypasses first-pass metabolism, though intraperitoneal and intravenous routes also appear in published protocols. Biochemical endpoints include tissue BDNF concentrations, cytokine levels, and monoamine metabolites. Human data are limited to small Russian trials reporting reduced anxiety scores; most were not prospectively registered, and few employed independent outcome assessment.
Measuring peptide exposure inside the brain is technically difficult. Selank is degraded rapidly in plasma, and assays must separate intact peptide from fragments, which favors targeted mass spectrometry over immunoassays alone. Reported half-lives are short, on the order of minutes, so effects observed hours later are attributed to downstream signaling rather than to the parent compound. Blood-brain barrier permeability is debated and rarely quantified directly. Gaps include absent dose-response characterization, inconsistent reporting of purity, and almost no pharmacokinetic data from human participants.
Selank is studied chiefly as an animal-model anxiolytic with proposed secondary effects on memory and immune signaling. Reported mechanisms include modulation of the GABA-A receptor complex, inhibition of enkephalin-degrading enzymes, and shifts in monoamine turnover within limbic structures. Some experiments describe increased expression of brain-derived neurotrophic factor in the hippocampus after repeated dosing. No single molecular target has been confirmed, and the peptide does not bind any receptor with the selectivity typical of a conventional small-molecule drug. Mechanism therefore remains a set of hypotheses rather than an established pathway.
Selank is a synthetic heptapeptide developed in Russia during the 1990s. Researchers at the Institute of Molecular Genetics of the Russian Academy of Sciences designed it as a stabilized analog of tuftsin, a naturally occurring immunomodulatory tetrapeptide. The compound has been studied primarily for its reported anxiolytic and nootropic effects. It remains largely unknown in Western pharmacology and is not approved as a medicine by major regulators such as the FDA or the EMA.
The primary structure of Selank is Thr-Lys-Pro-Arg-Pro-Gly-Pro, corresponding to the molecular formula C33H57N11O9 and a monoisotopic mass of roughly 751.9 daltons. The N-terminal threonine and the arginine residue in the fourth position are shared with tuftsin, which carries the sequence Thr-Lys-Pro-Arg. The three additional residues at the C-terminus, Pro-Gly-Pro, extend the chain and are associated with greater resistance to enzymatic degradation. This extension also separates Selank from the shorter parent peptide.
Naming conventions place Selank in the same research family as Semax, another Russian-developed peptide investigated for cognitive effects. The two compounds share a lineage but differ in sequence and in the biological systems proposed as their targets. Semax descends from ACTH fragments, whereas Selank descends from tuftsin. Publications sometimes identify Selank by its full peptide sequence or by laboratory codes rather than one uniform trade name. Because replication outside Russia is limited, reports on its properties are best read alongside the study design and the purity of the material tested.
Proposed mechanisms centre on the GABAergic system. Animal and tissue studies report changes in GABA-A receptor expression and reduced activity of GABA transaminase, the enzyme that degrades GABA. Effects on monoamine turnover, including serotonin and dopamine pathways, are also described, and a separate line of work links the peptide to increased expression of brain-derived neurotrophic factor in hippocampal tissue. Most of these findings come from rodent models and cell preparations. How the individual observations combine into a single coherent mode of action is not settled.
Pharmacokinetic data are sparse and largely derived from animal work. After intranasal administration the peptide appears in plasma within minutes, and reported half-lives are short, on the order of minutes to tens of minutes. Degradation proceeds through ordinary proteolytic cleavage into constituent amino acids and smaller fragments. Direct evidence that intact Selank reaches brain tissue in meaningful amounts is limited, and the extent of blood-brain barrier penetration is debated. Some authors argue that fragments, not the parent peptide, carry much of the observed activity.
Published clinical work is concentrated in Russian-language journals and generally involves small samples without independent replication. Systematic reviews in English note the shortage of randomised, placebo-controlled trials and the difficulty of verifying methods from translated reports. Outcome measures vary between studies, which complicates pooling of results. Interest in the compound as a cognitive or anxiolytic agent therefore rests on a thinner evidence base than the volume of citations suggests. Replication in well-powered trials with preregistered endpoints would be needed before firm conclusions about efficacy can be drawn.
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Selenocysteine synthesis occurs on a specialized tRNA, which also functions to incorporate it into nascent polypeptides. The primary and secondary structure of selenocysteine-specific tRNA, tRNASec, differ from those of standard tRNAs in several respects, most notably in having an 8-base-pair (bacteria) or 10-base-pair (eukaryotes) acceptor stem, a long variable region arm, and substitutions at several well-conserved base positions. The selenocysteine tRNAs are initially charged with serine by seryl-tRNA ligase, but the resulting Ser-tRNASec is not used for translation because it is not recognised by the normal translation elongation factor (EF-Tu in bacteria, eEF1A in eukaryotes).
=== Elastase-like === Elastase-like proteases have a much smaller S1 cleft than either trypsin- or chymotrypsin-like proteases. Consequently, residues such as alanine, glycine and valine tend to be preferred.
Sources: en.wikipedia.org
===== MeSH D08.811.682.047 – alcohol oxidoreductases ===== MeSH D08.811.682.047.050 – acetoin dehydrogenase MeSH D08.811.682.047.070 – alcohol dehydrogenase MeSH D08.811.682.047.150 – carbohydrate dehydrogenases MeSH D08.811.682.047.150.225 – fructuronate reductase MeSH D08.811.682.047.150.250 – galactose dehydrogenases MeSH D08.811.682.047.150.270 – glucose dehydrogenases MeSH D08.811.682.047.150.270.500 – glucose 1-dehydrogenase MeSH D08.811.682.047.150.300 – glucosephosphate dehydrogenase MeSH D08.811.682.047.150.600 – phosphogluconate dehydrogenase MeSH D08.811.682.047.150.650 – phosphoglycerate dehydrogenase MeSH D08.811.682.047.150.700 – sugar alcohol dehydrogenases MeSH D08.811.682.047.150.700.075 – aldehyde reductase MeSH D08.811.682.047.150.700.237 – d-xylulose reductase MeSH D08.811.682.047.150.700.400 – glycerolphosphate dehydrogenase MeSH D08.811.682.047.150.700.400.500 – glycerol-3-phosphate dehydrogenase (nad+) MeSH D08.811.682.047.150.700.437 – l-gulonolactone oxidase MeSH D08.811.682.047.150.700.475 – l-iditol 2-dehydrogenase MeSH D08.811.682.047.150.700.649 – mannitol dehydrogenase MeSH D08.811.682.047.150.900 – uridine diphosphate glucose dehydrogenase MeSH D08.811.682.047.180 – choline dehydrogenase MeSH D08.811.682.047.210 – galactose oxidase MeSH D08.811.682.047.239 – glucose oxidase MeSH D08.811.682.047.370 – homoserine dehydrogenase MeSH D08.811.682.047.370.060 – aspartokinase homoserine dehydrogenase MeSH D08.811.682.047.385 – 3-hydroxyacyl coa dehydrogenases MeSH D08.811.682.047.385.415 – hydroxymethylglutaryl coa reductases MeSH D08.811.682.047.385.415.250 – hydroxymethylglutaryl-coa reductases, nad-dependent MeSH D08.811.682.047.385.415.750 – hydroxymethylglutaryl-coa-reductases, nadp-dependent MeSH D08.811.682.047.393 – hydroxybutyrate dehydrogenase MeSH D08.811.682.047.428 – Hydroxyprostaglandin dehydrogenase MeSH D08.811.682.047.432 – hydroxypyruvate reductase MeSH D08.811.682.047.436 – hydroxysteroid dehydrogenases MeSH D08.811.682.047.436.174 – 11-beta-hydroxysteroid dehydrogenases MeSH D08.811.682.047.436.174.300 – 11-beta-hydroxysteroid dehydrogenase type 1 MeSH D08.811.682.047.436.174.600 – 11-beta-hydroxysteroid dehydrogenase type 2 MeSH D08.811.682.047.436.350 – 3-hydroxysteroid dehydrogenases MeSH D08.811.682.047.436.350.100 – 3alpha-hydroxysteroid dehydrogenase (B-specific) MeSH D08.811.682.047.436.350.150 – cholesterol oxidase MeSH D08.811.682.047.436.350.700 – progesterone reductase MeSH D08.811.682.047.436.375 – 17-hydroxysteroid dehydrogenases MeSH D08.811.682.047.436.375.280 – estradiol dehydrogenases MeSH D08.811.682.047.436.400 – 20-hydroxysteroid dehydrogenases MeSH D08.811.682.047.436.400.074 – 20alpha-hydroxysteroid dehydrogenase MeSH D08.811.682.047.436.400.150 – cortisone reductase MeSH D08.811.682.047.485 – imp dehydrogenase MeSH D08.811.682.047.497 – isocitrate dehydrogenase MeSH D08.811.682.047.500 – 3-isopropylmalate dehydrogenase MeSH D08.811.682.047.524 – ketol-acid reductoisomerase MeSH D08.811.682.047.551 – lactate dehydrogenases MeSH D08.811.682.047.551.249 – epsilon-crystallins MeSH D08.811.682.047.551.400 – l-lactate dehydrogenase MeSH D08.811.682.047.551.500 – l-lactate dehydrogenase (cytochrome) MeSH D08.811.682.047.605 – malate dehydrogenase MeSH D08.811.682.047.748 – malate dehydrogenase (nadp+) MeSH D08.811.682.047.892 – xanthine dehydrogenase MeSH D08.811.682.047.928 – xanthine oxidase
The resulting viral mRNA looks is identical to host mRNA, allowing endogenous cellular machinery to carry out processing and nuclear export. The de-capped host mRNAs are targeted degradation, which lead to the downregulation of cellular mRNA. Influenza RdRp also interacts with the cell Polymerase II (Pol II) C terminal domain, which potentially promotes viral transcription by changing the conformation of the RdRp. Additionally, by reducing Pol II abundance, influenza can begin to shut off critical host transcription. Cap snatching is not used during replication. Instead, the RdRp performs a "prime and realign" step ensure that the genome is fully copied. In this mechanism, the RdRp sets down a primer internally, then the vRNA is realigned to continue replication. Influenza's PB2 cap-binding domain has a unique fold, but it uses aromatic stacking to execute m7G cap-binding similar to other cap-binding proteins. PA is a member of the PD(D/E)XK nuclease family, which uses divalent metal ions to cleave nucleic acid. However, it has a peculiar active site histidine residue which ligates the Mn2+ ion used for cleavage.
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Sources: en.wikipedia.org
Most published work uses intranasal application, either as drops or as a nasal spray. Injection routes appear in a smaller set of animal experiments. Oral use is uncommon in the literature because peptide breakdown and poor absorption limit this route.
Reported human trials are few, brief and originate mainly from one country. They describe effects on anxiety-related measures, but sample sizes are small and reporting is limited. The results are widely regarded as preliminary rather than confirmed.
Reverse-phase liquid chromatography is used to assess purity and separation of related impurities. Mass spectrometry confirms that the observed molecular mass matches the expected peptide. A certificate of analysis from the supplier is the usual document of record.
Reports describe effects on GABA-A receptor expression, monoamine turnover, and neurotrophic factor levels. These are proposed mechanisms drawn mainly from animal models. No single molecular target has been established.