This is a working overview of REV-ERB agonist, written for readers who want more than a one-paragraph summary but less than a textbook.
Reviewed 2025-09-08. Anything still debated is marked as such rather than presented as settled.
Detection in biological samples can be complicated by rapid metabolism and low circulating concentrations. Some studies report phase I and phase II metabolites, and analytical methods may need to target those species in addition to the parent compound. Immunoassays are not broadly available, so mass spectrometry remains the main confirmatory approach. For anti-doping testing, laboratories look for SR9009 and its metabolites using validated LC-MS methods. Open questions include how long metabolites remain detectable and how different routes of administration alter detection windows.
In laboratory settings, SR9009 is typically characterized by liquid chromatography–mass spectrometry (LC-MS) or high-performance liquid chromatography with ultraviolet detection (HPLC-UV). These methods can confirm identity and estimate purity, but they require reference standards for accurate quantification. Because SR9009 is not a licensed pharmaceutical, no harmonized pharmacopeial monograph exists. Laboratories often validate in-house methods for matrices such as plasma, urine, or cell culture media. Sample preparation may involve protein precipitation or liquid-liquid extraction before analysis.
Physicochemical behavior influences handling. SR9009 is described as a solid with limited aqueous solubility, so organic solvents such as dimethyl sulfoxide or ethanol are common in research stock solutions. Aqueous dilution can produce precipitates if the organic content is too low. Light, heat, and repeated freeze-thaw cycles may affect stability. Storage recommendations usually specify a desiccated freezer environment protected from light, but exact stability data depend on the formulation and matrix.
Regulatory treatment of SR9009 varies by country and context. It is not approved as a therapeutic drug by agencies such as the United States Food and Drug Administration or the European Medicines Agency. Sports authorities list it as a prohibited substance; the World Anti-Doping Agency classifies it among hormone and metabolic modulators. Legal status for personal possession or sale differs across jurisdictions, and some countries may restrict it under analog or research chemical laws. Buyers who seek verified material often rely on independent laboratory testing because online product labels may not match contents.
Laboratory samples of SR9009 are typically handled as research chemicals rather than pharmaceuticals. Suppliers usually state that the material is for research use only and not for human or veterinary administration. Storage recommendations generally call for a freezer at approximately −20 °C, protection from light, and a desiccated environment. The solid is often described as a white to off-white powder. Solubility is commonly reported in organic solvents such as dimethyl sulfoxide and ethanol, with low solubility in water.
| Property | Value | Notes |
|---|---|---|
| Appearance | Off-white to pale yellow solid | Visual description varies with purity and source |
| Solubility | Soluble in DMSO and ethanol; poorly soluble in water | Organic stock solutions are common in research |
| Typical storage | -20 °C, desiccated, protected from light | Avoid repeated freeze-thaw cycles |
| Typical analytical method | LC-MS or HPLC-UV | Reference standards are needed for quantification |
| Molar mass | Approximately 437.9 g/mol | Calculated from the reported free-base formula |
Regulatory and sporting contexts treat SR9009 as a prohibited substance in many elite competitions. Its presence on banned lists reflects concerns about performance enhancement and unknown long-term safety. Analytical chemists have developed methods to detect the parent compound and its metabolites in urine and blood. Literature discussions distinguish between in vitro potency, animal pharmacology, and anecdotal human reports. The latter are difficult to verify because products sold online may lack purity or contain different compounds.
SR9009 is a synthetic small molecule studied as an agonist of the nuclear receptors REV-ERBα and REV-ERBβ. These receptors help regulate circadian rhythms, lipid metabolism, and inflammatory gene expression. In cell and animal experiments, SR9009 alters transcription of clock-controlled genes and metabolic pathways. The compound is not a hormone and does not resemble classical steroid structures. Its activity depends on binding to the ligand-binding domain of REV-ERB, where it can modify corepressor recruitment.
Research interest in SR9009 grew from studies of circadian biology and metabolic disease. Preclinical reports describe effects on exercise capacity, muscle metabolism, and blood lipid levels in rodents, but these findings come from controlled laboratory settings. The compound has low oral bioavailability in animals, which limits systemic exposure after swallowing. Investigators often use injected routes in experiments to achieve measurable plasma concentrations. Human clinical data are sparse, no approved therapeutic product exists, and whether animal effects translate to humans remains an open question.
SR9009 is often grouped with compounds studied for circadian and metabolic regulation rather than with classical anabolic steroids. Its interactions with nuclear receptors differ from those of androgen receptor ligands, and its proposed mechanisms involve transcriptional control rather than direct hormone signaling. Some sources classify it as a metabolic modulator because of observed effects on energy utilization. The distinction matters for regulation and for interpreting research results across different compound classes.
SR9009 is a synthetic small molecule developed as a REV-ERB agonist. It binds to REV-ERBα and REV-ERBβ, nuclear receptors that help regulate circadian rhythms and metabolic gene expression. In cell and animal studies, the compound alters lipid and glucose handling and influences skeletal muscle oxidative capacity. Its exact effects in humans remain largely uncharacterized because controlled clinical trials have not been reported. The molecule is frequently described in preclinical literature as a metabolic modulator.
Research interest in SR9009 grew from studies showing improved running endurance in mice after short treatment periods. Those experiments linked the compound to increased mitochondrial content and fatty acid oxidation in muscle, but the findings come from animal models and specific dosing schedules. Independent replication has been limited, and the pathways connecting REV-ERB activation to exercise performance are still being mapped. Whether similar responses occur in humans is an open question.
=== Mental tools === FM can cause negative mental effects. German guidance encourages FM patients to focus on coping with symptoms (instead of fighting the syndrome), on aspects of life which are important to them, on ceasing perfectionism, and on establishing and respecting their limits. In a 2020 Cochrane review, cognitive behavioral therapy (CBT) was found to have a small but beneficial effect for reducing pain and distress, but adverse events were not well evaluated. CBT and related psychological and behavioral therapies have a small to moderate effect in reducing symptoms of fibromyalgia. Effect sizes tend to be small when psychological therapies are used as treatment for patients with fibromyalgia, and are comparable to the effect sizes seen with other drug and pain treatments. Multicomponent treatment appears to have greater efficacy than any individual treatment. Several reviews have found that CBT has no significant effect in pain reduction, although it does improve sleep quality. There is also limited evidence that acceptance and commitment therapy improves outcomes such as health-related quality of life and pain acceptance. Patient education is recommended by the European League Against Rheumatism (EULAR) as an important treatment component. As of 2022, there is only low-quality evidence showing that patient education can decrease pain and fibromyalgia impact. Sleep hygiene interventions show low effectiveness in improving insomnia in people with chronic pain.
The cyclic product has a bond between the 2'-OH of GMP and the 5'-phosphate of AMP and another between the 3'-OH of AMP and 5'-phosphate of GMP. This cGAMP is a second messenger that binds to and activates the endoplasmic reticulum protein STING to trigger type-I IFNs production. Mice lacking cGAS are more vulnerable to lethal infection by DNA viruses and RNA viruses. In addition, cGAS has been shown to be an innate immune sensor of retroviruses including HIV. Human cGAS has been shown to produce less 2'3' cGAMP than mouse cGAS . This difference can be explained by the structural differences between mcGAS and hcGAS. Human cGAS is activated in a strongly DNA length-dependent manner . Indeed, human cGAS exhibits a higher affinity for DNA fragments of over 45 bp, whereas mouse cGAS is preferentially activated by shorter DNA sequences. Two amino acids, K187 and L195 in the N-terminus of hcGAS, have been shown to be responsible for human-specific control of 2'3' cGAMP synthesis . The opposing responses of hcGAS and mcGAS to short DNA are completely reversed by the human-specific K187/L195 substitution .
=== Later elections === Gnassingbé was re-elected for a second term in 2010. In the April 2015 presidential election, Gnassingbé won a third term, defeating his main challenger, Jean-Pierre Fabre, by a margin of about 59% to 35%, according to official results. In the February 2020 presidential elections, Gnassingbé won his fourth presidential term in office as the president of Togo. According to the official result, he won with a margin of around 72% of the vote share. This enabled him to defeat his closest challenger, the former prime minister Agbeyome Kodjo who had 18%. The legitimacy of elections in Togo was widely disputed.
== Post-translational modifications == Conjugated proteins are synthesized by post-translational modifications where additional chemical groups are attached to the protein structure that has already been formed by a ribosome in a different biological process called translation. Modifications in conjugated proteins occur mainly because of specific enzymes. These modifications can happen in many different areas all around the cell. One form of a modification is glycosylation. Glycosylation is when carbohydrates are attached to proteins making glycoproteins. Glycosylation mostly happens in the endoplasmic reticulum and Golgi apparatus. Glycosylation aids in the folding of proteins, the stability, and in cell signaling. Another form of a modification is phosphorylation. Phosphorylation is when a kinase, a type of enzyme, adds a phosphate group to the protein. This process is reversible and the phosphate group can be removed from the protein when a phosphatase, another type of enzyme, is present. Phosphorylation plays an important role in the regulation of the activity of many different protein molecules. Metalloproteins also go through a modification to attach their metal ions. Similarly, hemoproteins also go through a post-translational modification to have their heme group attached to the protein.
=== Necrotizing fasciitis === A study has found botox effective against necrotizing fasciitis caused by S. pyogenes in mice. Its mechanism of action is by blocking CGRP receptor of nerve cells, which trigger intense pain and activate CGRP cascade, which prevents the immune system attacks to control the pathogen. Botox blocks the CGRP cascade of nerve cells.
Sources: en.wikipedia.org
Acral nevus (melanocytic nevus of acral skin, melanocytic nevus with intraepidermal ascent of cells) Amelanotic blue nevus (hypomelanotic blue nevus) Balloon cell nevus Bannayan–Riley–Ruvalcaba syndrome Becker's nevus (Becker's melanosis, Becker's pigmentary hamartoma, nevoid melanosis, pigmented hairy epidermal nevus) Benign melanocytic nevus (banal nevus, common acquired melanocytic nevus, mole, nevocellular nevus, nevocytic nevus) Blue nevus (blue neuronevus, dermal melanocytoma, nevus bleu) Blue nevus of Jadassohn–Tièche (common blue nevus, nevus ceruleus) Carney complex (LAMB syndrome, NAME syndrome) Cellular blue nevus Centrofacial lentiginosis Congenital melanocytic nevus Deep penetrating nevus Dysplastic nevus (atypical mole, atypical nevus, B-K mole, Clark's nevus, dysplastic melanocytic nevus, nevus with architectural disorder) Dysplastic nevus syndrome (B-K mole syndrome, familial atypical multiple mole–melanoma syndrome, familial melanoma syndrome) Ephelis (freckle) Epithelioid blue nevus Generalized lentiginosis Giant pigmented nevus (bathing trunk nevus, congenital nevomelanocytic nevus, garment nevus, giant hairy nevus, nevus pigmentosus et pilosus) Halo nevus (leukoderma acquisitum centrifugum, perinevoid vitiligo, Sutton nevus) Hori's nevus (acquired bilateral nevus of Ota-like macules) Inherited patterned lentiginosis in black persons Ink spot lentigo (sunburn lentigo) Laugier–Hunziker syndrome Lentigo simplex (simple lentigo) Malignant blue nevus Medium-sized congenital nevocytic nevus Melanoacanthoma Melanocytic tumors of uncertain malignant potential Moynahan syndrome Mucosal lentigines (labial and penile and vulvar melanosis, melanotic macules) Nevus of Ito (nevus fuscoceruleus acromiodeltoideus) Nevus of Ota (congenital melanosis bulbi, melanosis bulborum and aberrant dermal melanocytosis, nevus fuscoceruleus ophthalmomaxillaris, oculodermal melanocytosis, oculomucodermal melanocytosis) Nevus spilus (speckled lentiginous nevus, zosteriform lentiginous nevus) Partial unilateral lentiginosis (segmental lentiginosis) Peutz–Jeghers syndrome Pigmented spindle cell nevus (pigmented spindle cell tumor of Reed, pigmented variant of Spitz nevus) Pseudomelanoma (recurrent melanocytic nevus, recurrent nevus) PUVA lentigines Small-sized congenital nevocytic nevus Spitz nevus (benign juvenile melanoma, epithelioid and spindle cell nevus, Spitz's juvenile melanoma) Solar lentigo (lentigo senilis, liver spot, old age spot, senile freckle)
doi:10.1038/s41443-022-00636-7. PMID 36307732. Rushton, J.Philippe; Bogaert, Anthony F (1987). "Race differences in sexual behavior: Testing an evolutionary hypothesis". Journal of Research in Personality. 21 (4): 529–51. doi:10.1016/0092-6566(87)90038-9. Sutherland, Ronald S; Kogan, Barry A; Baskin, Laurence S; Mevorach, Robert A; Conte, Felix; Kaplan, Selna L; Grumbach, Melvin M (1996). "The Effect of Prepubertal Androgen Exposure on Adult Penile Length". The Journal of Urology. 156 (2): 783–7, discussion 787. doi:10.1016/S0022-5347(01)65814-2. PMID 8683783.
In 1813, Lieutenant-Colonel, Sir Thomas Sydney Beckwith arrived in Bermuda to command a force tasked with raiding the Atlantic Seaboard of the United States, specifically in the region of Chesapeake Bay, with the 102d Regiment's Commanding Officer, Lieutenant-Colonel Charles James Napier, as his Second-in-Command. Beckwith split the force into two brigades. One, was the 102d Regiment, Royal Marines from the Bermudian naval base, and two companies recruited from French prisoners-of-war that had been sent to reinforce the Bermuda garrison, was under Napier's command, and the other under Lieutenant-Colonel Williams of the Royal Marines. Embarking aboard naval vessels engaged on the American coast on the 8 June 1813, they took part in the Battle of Craney Island on 22 June 1813. On 8 August 1813, 15 British ships blockaded the mouth of the Patapsco River as part of a ruse to make the Americans believe Baltimore was under threat. After a few days the ships headed south towards Annapolis. However, Rear Admiral George Cockburn believed Annapolis too heavily defended, and instead had the 102d Regiment and Royal Marines construct a base on Kent Island. The 102d Regiment fought a small skirmish against local militia on the island, before assisting with construction of the base. After carrying out raids on the Atlantic coast of the United States, and minus the two companies of Frenchmen, they left the Chesapeake and landed at Halifax, Nova Scotia, on 20 September 1813.
== Coordination chemistry principles == Metalloproteins bind metal ions in one of two ways: either directly by amino acids, or in the form of larger ligands containing metal ions. Metal ions are usually coordinated directly by nitrogen, oxygen or sulfur centers belonging to amino acid residues of the protein. These donor groups are often provided by side-chains on the amino acid residues. Especially important are the imidazole substituent in histidine residues, thiolate substituents in cysteine residues, and carboxylate groups provided by aspartate and glutamate. Given the diversity of the metalloproteome, virtually all amino acid residues have been shown to bind metal centers. The peptide backbone also provides donor groups; these include deprotonated amides and the amide carbonyl oxygen centers. Lead(II) binding in natural and artificial proteins has been reviewed. In addition to donor groups that are provided by amino acid residues, many organic cofactors function as ligands. Perhaps most famous are the tetradentate N4 macrocyclic ligands incorporated into the heme protein and similar porphyrinoid structures. Inorganic ligands such as sulfide and oxide are also common, e.g in iron-sulfur clusters.
=== MHC-I === MHC-I heavy chains may work as chaperones with the aid of the calnexin-calreticulin complex in the ER. In addition to this, β2-microglobulin (β2m) is attached to the heavy chains of the heterodimers and as a whole they act as receptors for antigenic peptides. When MHC-I chains are empty, they are recruited by calreticulin and form a transient PLC. Tapasin regularly plays a role in the stabilization of MHC-I. Only after MHC-I heterodimers are deployed for peptide proofreading or editing, stable pMHC-I (peptide-MHC-I) complexes are released to the cell surface for recognition and destruction of virus-infected or malignantly neoplastic cells. In general, each individual organism owns a collection of six MHC-I molecules (three from each parent). Thus, in autoimmune emergencies, compatible donors are relatives who own a similar collection of MHC-I molecules, apart from those of the recipient.
Sources: en.wikipedia.org
It is usually detected by LC-MS or HPLC-UV against a reference standard. In biological matrices, metabolite targeting can improve detection. No universal immunoassay is widely available.
The compound is generally handled as light-sensitive and stored cold and dry. Stability in solution depends on solvent, concentration, and storage time. Specific degradation rates are not fully standardized.
Limited water solubility affects formulation for cell and animal studies. Organic co-solvents are often used to dissolve it. Precipitation can confound assay results if not controlled.
Legality depends on the country and the intended use. In many places it is sold as a research chemical, but sports and medicine regulations restrict it.