Everything below reports findings from cell cultures, isolated tissue and animals. This material is for research use only, not for human or veterinary use.
A genuine preclinical programme from Radius Health reports neuroprotection in cultured neurons and lesioned rats [1]. It also reports growth inhibition across breast cancer xenograft models with a defined mechanism [2]. The compound even earned an international nonproprietary name, vosilasarm, which few compounds in this catalogue carry.
Indexed clinical papers and case reports exist [7][8] and [9]. Those human endpoints sit outside the scope of this profile. A 2023 mouse study found the compound raised frailty status and mortality risk while failing to improve strength [6]. What follows covers the chemistry, the receptor pharmacology, the rodent and xenograft file, the detection work, and how to verify the material.
Chemical identity: what you are actually handling
RAD-140 is a non-steroidal oxadiazole carrying two nitrile groups.
| Property | Value |
|---|---|
| IUPAC name | 2-chloro-4-[[(1R,2S)-1-[5-(4-cyanophenyl)-1,3,4-oxadiazol-2-yl]-2-hydroxypropyl]amino]-3-methylbenzonitrile |
| INN | Vosilasarm |
| Common names | RAD-140, Testolone |
| CAS | 1182367-47-0 |
| Molecular formula | C20H16ClN5O2 |
| Molecular weight | 393.83 g/mol |
| PubChem CID | 44200882 |
| InChIKey | XMBUPPIEVAFYHO-KPZWWZAWSA-N |
| Stereocentres | Two, (1R,2S) |
| Chemical class | Phenyl-oxadiazole |
| Originator | Radius Health |
The oxadiazole class
Anti-doping chemists classify RAD-140 among the phenyl-oxadiazoles, a category distinct from the aryl propionamides such as ostarine, from the quinolinones such as LGD-3303, and from the tropanol derivatives [10].
That classification matters practically. Methods validated for one chemical class do not automatically transfer to another, and fragmentation behaviour differs between them.
The scaffold carries no steroid nucleus, which is the structural premise of the whole class. A molecule binding the androgen receptor without a steroid ring system cannot serve as a substrate for aromatase or 5α-reductase. It therefore converts to neither an oestrogen nor dihydrotestosterone.
Two stereocentres
The (1R,2S) configuration is defined. Diastereomers share the molecular formula and accurate mass exactly.
Chiral analysis is therefore a requirement rather than a refinement here, and the section on characterisation returns to it.
RAD-140 receptor pharmacology
RAD-140 binds the androgen receptor with high affinity and specificity [2]. It activated the receptor in breast cancer cells but not in prostate cancer cells, which is the tissue-selective behaviour the class is named for [2].
The mechanistic basis of that selectivity remains contested across the class. Two accounts compete. One invokes tissue-specific expression of 5α-reductase. Prostate amplifies testosterone to the more potent dihydrotestosterone while muscle does not, and a non-steroidal ligand receives no such amplification [11]. The other invokes ligand-induced receptor conformation, determining which coregulatory proteins the receptor recruits [12].
Neither account has been tested specifically for RAD-140.
The preclinical case
Two independent lines of work make a positive case for the compound, and both are more interesting than the muscle claims usually attached to it.
Neuroprotection
Jayaraman and colleagues investigated the compound in cultured rat neurons and in male rat brain. They asked whether it reproduced the neuroprotective actions of endogenous androgens [1].
In cultured hippocampal neurons, RAD-140 matched testosterone at reducing cell death induced by apoptotic insults [1]. Protection depended on MAPK signalling. Elevated ERK phosphorylation supported that, as did loss of protection when a MAPK kinase inhibitor was applied [1].
The in vivo work used the kainate lesion model in gonadectomised adult male rats. Three findings emerged together. Peripheral tissue-specific androgen action that largely spared prostate, activation of androgenic gene regulation in brain, and protection of hippocampal neurons against cell death caused by systemic kainate [1].
That is a coherent result: target engagement in brain, a defined signalling pathway, and protection in a lesion model, with prostate largely spared.
Breast cancer models
The second line is more developed and led to clinical interest.
Yu and colleagues evaluated RAD-140 in models of androgen-receptor-positive and oestrogen-receptor-positive breast cancer [2]. Oral administration substantially inhibited growth of patient-derived xenografts.
The mechanism reported is specific rather than generic. Treatment activated the androgen receptor while suppressing oestrogen receptor signalling, including repression of the ESR1 gene itself [2]. It also suppressed a subset of androgen-repressed genes associated with DNA replication. Combining the compound with the cell cycle inhibitor palbociclib appeared to enhance that effect [2].
Combination treatment showed improved efficacy over either agent alone across the xenograft models [2].
This is the strongest preclinical work on the compound, and its limits deserve stating. It is a xenograft study supporting further clinical investigation, not a clinical result.
Metabolism and detection
The doping-control literature is well developed for this compound, and it supplies the most practical analytical detail available.
Mass spectrometric characterisation
Thevis and colleagues characterised the compound under both electrospray and electron ionisation conditions. They synthesised reference material and elucidated its dissociation pathways [3].
They proposed diagnostic product ions at m/z 223 and 205 under electrospray tandem mass spectrometry, and at m/z 421 and 349 under electron ionisation [3]. The m/z 421 ion involves an unusual intramolecular migration of a trimethylsilyl residue. They corroborated that assignment across several analytical approaches [3].
Those numbers are directly usable for anyone building a method, and they provide an external reference point that supplier documentation cannot.
Equine metabolism and detection windows
So and colleagues studied biotransformation in horses. The work covered in vitro incubation with homogenised liver and in vivo administration to three retired Thoroughbred geldings [4].
Four in vitro pathways dominated: hydrolysis, hydroxylation, glucuronidation and sulfation [4]. Most identified metabolites appeared in post-administration urine.
The detection windows are the useful output. In hydrolysed urine, parent compound and its sulfate metabolite gave the longest detection at up to six days post-administration. In plasma, parent compound alone was detectable for up to thirteen days [4].
Most of the metabolites described in that work had never been reported previously [4]. Hydrolysis of the oxadiazole is the parent-level cleavage. It is also why an ester of this lot (RAD-150) adds a second labile bond rather than the first. Name which bond a method is watching.
Thevis and colleagues already published diagnostic product ions at m/z 223 and 205 under electrospray tandem mass spectrometry, and at m/z 421 and 349 under electron ionisation [3]. The m/z 421 ion involves an intramolecular migration of a trimethylsilyl residue. Match those ions before treating a certificate mass as finished. A lot that fails the published fragments is not RAD-140, whatever the label says.
Biomarker approaches
A further study took a different route. It applied label-free proteomics to plasma from castrated horses given the compound [5].
The resulting predictive model comprised 75 proteins and separated treated from control samples [5]. Upregulated proteins included androgen-regulated clusterin, several tied to inflammation, and one tied to erythropoiesis [5].
That approach detects the physiological signature of exposure rather than the molecule, which extends the detection window beyond what parent-compound measurement allows.
Mouse strength and frailty
Brown and colleagues asked whether the compound would help against sarcopenia. They ran a ten-week study in young and adult female mice at 5 mg/kg [6].
Dorsiflexor muscles underwent repeated bouts of eccentric contractions, with torque measured before and after each bout. Frailty status and mortality risk served as health-span measures [6].
The results ran against the hypothesis. Treatment raised frailty status and mortality risk in both young and adult treated groups against controls [6]. Adaptive potential fell in young mice. Torque did not differ between groups after two to three weeks of recovery [6].
The authors concluded that long-term treatment reduced indices of overall health and failed to improve strength in that model [6]. Ten weeks in female mice is not a xenograft and is not a neuron culture. Name the system.
Limits of the published record
Indexed clinical papers and self-administration case reports exist [7][8] and [9]. Human endpoints sit outside the scope of this profile. The papers stay in the reference list so a reader can find them.
Preclinical work used defined doses in controlled models, examining neuroprotection and tumour growth [1][2]. Case reports describe unsupervised intake of material of unknown provenance. Those are different exposures. A favourable xenograft result does not become a use document. A case report does not invalidate a xenograft result.
Reviews of pharmacotherapy for muscle wasting sit in the same unread pile [14]. This profile will not quote human adverse-event rates or bodybuilding-use narratives from those papers.
Where RAD-140 sits among SARMs
Placing the compound against its class members clarifies both its evidence base and its risk profile.
| Compound | Chemical class | Strongest published evidence |
|---|---|---|
| Enobosarm | Aryl propionamide | Indexed clinical papers exist; human endpoints out of scope |
| LGD-4033 | Pyrrolidinyl-benzonitrile | Preclinical plus indexed clinical papers |
| LGD-3303 | Quinolinone | Preclinical only |
| AC-262536 | Tropanol | One pharmacology paper |
| RAD-140 | Phenyl-oxadiazole | Neuroprotection and oncology preclinical [1][2] |
RAD-140 has better mechanistic preclinical work behind it than most of the class, in domains unrelated to muscle. The neuroprotection and oncology programmes were serious efforts with defined signalling pathways, not opportunistic screening.
Indexed case reports exist for this lot [7][8] and [9]. They stay cited and unread as use documents. A laboratory choosing a full-agonist reference has alternatives. The choice should account for the rodent file and the certificate, not a case narrative.
Physicochemical properties and handling
The molecule carries two nitriles, an oxadiazole, a secondary aryl amine, a secondary alcohol and an aryl chloride.
What each handle does
None of these groups is strongly labile under ordinary storage. The oxadiazole ring resists hydrolysis at neutral pH, though strongly basic conditions can open it. The secondary alcohol is the most reactive handle, oxidising to the ketone under forcing conditions. That ketone is the degradant a stability-indicating method should hunt.
Two nitriles and a chlorine give the molecule a distinctive elemental composition and strong ultraviolet absorbance, which makes HPLC-UV detection straightforward. Five nitrogens plus one chlorine is an unusual count in this catalogue. Ostarine has three nitrogens and no chlorine. LGD-4033 has two nitrogens and six fluorines. A certificate that quotes the wrong elemental set has already failed.
The (1R,2S) alcohol is also the site that a sloppy esterification could occupy. RAD-150 is the benzoate of this lot. Intact mass 393.83 is the parent. Intact mass 497.94 is the ester. Do not treat those two labels as interchangeable.
Solvent and storage
Aqueous solubility is low. Dimethyl sulfoxide is the usual stock solvent. State the vehicle. A methods section that names RAD-140 and then omits the cosolvent has not described the exposure.
Store the solid sealed, dry, cold and dark. Weigh on a dedicated balance. Keep dedicated spatulas. Equine plasma still held parent for up to thirteen days [4]. Shared benches transfer analytically meaningful quantities.
Storage guidance is a house recommendation. Analytical documentation is per-lot release testing.
Dilute solutions lose material to plastic. Aliquot on dissolution rather than sampling one vial repeatedly. Freeze-thaw is less of a peptide problem here, but it still concentrates impurities at the meniscus. Residual solvent belongs on the certificate next to the free-base mass. Do not infer the salt from the free-base formula.
Related write-ups sit at ostarine, LGD-4033 and RAD-150.
Analytical characterisation
Four checks cover this compound, ranked by how much each changes what is in the vial.
Stereochemical purity comes first. Two defined centres mean diastereomers share formula and accurate mass, and only a chiral method reports the difference.
Accurate mass confirms C20H16ClN5O2 at 393.83. Five nitrogens with one chlorine is an unusual composition, and the chlorine isotope pattern gives an M+2 peak near one third of the molecular ion.
Fragmentation should match the published diagnostic ions, at m/z 223 and 205 under electrospray conditions [3]. Reference fragmentation data exists for this compound, which is not true of most in this catalogue.
Structural confirmation by NMR establishes the oxadiazole and the substitution pattern, distinguishing it from other SARM chemical classes [10].
What a rigorous certificate should contain
Chiral purity, by a stated method, with the value given.
Accurate mass with the chlorine isotope envelope shown.
Chromatographic purity with column and detection conditions.
Fragmentation data, ideally matched against the published diagnostic ions [3].
Residual solvents from synthesis.
Kimera publishes third-party certificates of analysis for every lot in its COA database. Laboratories source RAD-140 (Testolone) as a full-agonist reference, often alongside AC-262536 as a partial-agonist comparator or LGD-3303 from the quinolinone class. Related receptor chemistry appears in the SARMs category.
Detection context
Anti-doping authorities list SARMs among anabolic agents under section S1.2 [13]. Validated screening and confirmation methods cover the compound explicitly [10]. Forensic practice now includes testing supplements, hair and nail clippings when a urine ion needs a source [13].
Common misclassifications
Four errors recur.
Suppliers describe RAD-140 as well tolerated. Indexed case reports exist [7][8] and [9], alongside an animal study reporting raised mortality risk [6]. Human adverse-event rates sit outside this profile.
Copy presents its preclinical results as clinical. The neuroprotection and oncology work are cell culture and animal studies [1][2].
Marketing describes it as a muscle-building agent supported by the literature. The strongest published preclinical results concern neuroprotection and tumour growth inhibition, and the one long-term strength study found no improvement [1][2] and [6].
Summaries treat its stereochemistry as incidental. Two defined centres, diastereomers sharing accurate mass, and no mass-based way to tell them apart.
Experimental design considerations
Verify stereochemistry before use. This is the single check most likely to be missing and most likely to matter.
Match the published fragmentation. Diagnostic ions exist for this compound, which allows identity confirmation against an external standard rather than against supplier assertion [3].
Account for long plasma persistence. Parent compound remained detectable in equine plasma for up to thirteen days [4], so washout in crossover designs needs planning.
Do not assume muscle benefit. The longest published strength study reported none, alongside increased frailty [6]. Indexed case reports exist and stay unread here as use documents [7][8] and [9].
Specify the model system in any claim. Neuroprotection was shown in rat neurons and rat brain [1]; growth inhibition in breast cancer xenografts [2]. Neither transfers to the other.
Frequently asked questions
What is RAD-140? A non-steroidal phenyl-oxadiazole selective androgen receptor modulator from Radius Health, CAS 1182367-47-0, with the INN vosilasarm. Kimera supplies it as a laboratory research material.
What does the preclinical literature support? Neuroprotection in cultured neurons and lesioned rats [1], and growth inhibition in breast cancer xenograft models with suppression of oestrogen receptor signalling [2].
Does this page report human outcomes? No. Indexed case reports exist [7][8] and [9]. This profile stops at chemistry, rodent systems and detection. A mouse study reported increased frailty and mortality risk [6].
Does it improve strength? The one long-term study measuring strength in mice found no improvement over ten weeks [6].
How long is it detectable? In horses, up to six days in hydrolysed urine and up to thirteen days in plasma [4].
Does it need a chiral method? Yes. Two defined stereocentres, and diastereomers share formula and accurate mass.
How do laboratories find it? Validated screening covers the compound [10]. Equine plasma held parent up to thirteen days [4]. Detection methods list it under WADA section S1.2 [13].
What does the name vosilasarm signify? It is the international nonproprietary name. Most compounds in this catalogue never receive one. Its presence reflects the oncology programme, not a use label.
Why does it activate the receptor in breast cancer cells but not prostate cells? That tissue difference is the reported observation [2]. The mechanism behind it remains contested across the whole class, with tissue enzymology and coregulator recruitment both proposed and neither tested for this compound [11][12].
Does this page quote the case reports? No. Indexed papers exist [7][8] and [9]. Human endpoints sit outside this profile. The mouse frailty finding stays, because it is an animal result [6].
Summary of the evidence
Identity: C20H16ClN5O2, 393.83 g/mol, phenyl-oxadiazole class, two defined stereocentres.
Receptor profile: high-affinity androgen receptor binding, activating the receptor in breast cancer cells but not prostate cancer cells [2].
Neuroprotection: equivalent to testosterone against apoptotic insult in cultured hippocampal neurons, MAPK-dependent, with in vivo protection in a kainate lesion model [1].
Oncology: growth inhibition across androgen and oestrogen receptor positive breast cancer xenografts, with ESR1 repression and additive effect alongside palbociclib [2].
Detection: diagnostic fragmentation published [3], equine metabolism characterised with six-day urine and thirteen-day plasma windows [4], and a proteomic biomarker model developed [5].
Animal safety: increased frailty status and mortality risk, decreased adaptive potential in young animals, no strength gain across ten weeks [6].
Indexed case reports exist [7][8] and [9]. Human endpoints sit outside this profile.
Write the name, the mass and both stereocentres on the first notebook line. A certificate that omits chiral chromatography is not finished. Keep the oxadiazole lot on its own label, away from the benzoate ester and from any arylpropionamide. Status: supplied for laboratory research use only. Detection methods list it under section S1.2 [13].
References
- Jayaraman A, Christensen A, Moser VA, et al. Selective androgen receptor modulator RAD140 is neuroprotective in cultured neurons and kainate-lesioned male rats. Endocrinology. 2014;155(4):1398-1406. PMID 24428527. DOI
- Yu Z, He S, Wang D, et al. Selective androgen receptor modulator RAD140 inhibits the growth of androgen/estrogen receptor-positive breast cancer models with a distinct mechanism of action. Clin Cancer Res. 2017;23(24):7608-7620. PMID 28974548. DOI
- Thevis M, Piper T, Beuck S, Geyer H, Schänzer W. Expanding sports drug testing assays: mass spectrometric characterization of the selective androgen receptor modulator drug candidates RAD140 and ACP-105. Rapid Commun Mass Spectrom. 2013;27(11):1173-1182. PMID 23650030. DOI
- So YM, Wong JKY, Choi TLS, et al. Metabolic studies of selective androgen receptor modulators RAD140 and S-23 in horses. Drug Test Anal. 2021;13(2):318-337. PMID 32853476. DOI
- Cheung HW, Wong KS, To NS, et al. Label-free proteomics for discovering biomarker candidates of RAD140 administration to castrated horses. Drug Test Anal. 2021;13(5):1034-1047. PMID 33277807. DOI
- Brown AM, Ganjayi MS, Baumann CW. RAD140 (Testolone) negatively impacts skeletal muscle adaptation, frailty status and mortality risk in female mice. Clin Exp Pharmacol Physiol. 2023;50(12):973-983. PMID 37758180. DOI
- Padappayil RP, Chandini Arjun A, Vivar Acosta J, Ghali W, Mughal MS. Acute myocarditis from the use of selective androgen receptor modulator (SARM) RAD-140 (Testolone). Cureus. 2022;14(1):e21663. PMID 35233331. DOI
- Schwartzman KH, Kohli U, Chaudhuri NR, Hoda M. Myopericarditis following use of selective androgen receptor modifier “RAD-140”. JACC Case Rep. 2024;29(15):102423. PMID 39157568. DOI
- Skorupski WJ, Marko A, Janus M, et al. Selective androgen receptor modulator abuse-induced heart failure: catastrophic effects of RAD-140 (Testolone). Pol Arch Intern Med. 2024;134(7-8):16770. PMID 38864168. DOI
- Stacchini C, Botrè F, Comunità F, et al. Simultaneous detection of different chemical classes of selective androgen receptor modulators in urine by liquid chromatography-mass spectrometry-based techniques. J Pharm Biomed Anal. 2021;195:113849. PMID 33383501. DOI
- Gao W, Dalton JT. Ockham’s razor and selective androgen receptor modulators (SARMs): are we overlooking the role of 5alpha-reductase? Mol Interv. 2007;7(1):10-13. PMID 17339601. DOI
- Zhang X, Sui Z. Deciphering the selective androgen receptor modulators paradigm. Expert Opin Drug Discov. 2013;8(2):191-218. PMID 23231475. DOI
- Kintz P. The forensic response after an adverse analytical finding (doping) involving a selective androgen receptor modulator (SARM) in human athlete. J Pharm Biomed Anal. 2022;207:114433. PMID 34715583. DOI
- Hardee JP, Lynch GS. Current pharmacotherapies for sarcopenia. Expert Opin Pharmacother. 2019;20(13):1645-1657. PMID 31120352. DOI
RAD-140 is sold for laboratory research use only. Not for human consumption, nor medical, veterinary, or household uses.
Literature retrieved from PubMed.

