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Background And Regulatory History — Beginner to Advanced

By Editorial Desk · published 2026-06-20 · last reviewed 2026-07-10 · Info

If you have been reading about carcinogenicity and want a single page that covers the useful parts, this is it: definitions, context, how it is studied, and the questions that come up repeatedly.

Last reviewed on 2026-07-10. Where a claim depends on a specific study, the study is described rather than over-claimed.

Background and Regulatory History

GW501516 acts on PPARδ, a nuclear receptor that helps regulate fatty acid oxidation and energy homeostasis. In animal studies, activation of this receptor was associated with increased endurance and changes in lipid metabolism. Human trials examined effects on blood lipids and other metabolic markers, but the compound did not advance to approval. Rodent studies later reported tumors in multiple tissues at doses used in those experiments. Whether those findings translate to human risk remains uncertain, and the clinical relevance of the animal data is still debated.

Regulatory bodies treat GW501516 as a prohibited substance in competitive sport. The World Anti-Doping Agency added it to the prohibited list, and it falls under classes covering metabolic modulators and hormone-related agents. It is not approved by drug regulators for human use, and it is not a lawful dietary supplement. Products sold under the cardarine name may contain unlisted ingredients or different compounds. Because no approved product exists, quality and identity are not guaranteed by pharmaceutical manufacturing standards.

Preclinical Findings and Safety Signals

Laboratory studies indicate that GW501516 activates PPARδ, a nuclear receptor involved in fatty acid oxidation and energy metabolism. In rodent experiments, treated animals often showed increased endurance and reduced fat mass. These effects were observed under controlled conditions and do not establish safe or effective use in humans. The exact dose-response relationship in humans remains poorly characterized. Species differences in metabolism can affect how results translate across animals and people.

Safety concerns emerged from long-term animal studies. In rodents given the compound for extended periods, researchers found an increased incidence of certain cancers, including liver and bladder tumors. These findings contributed to the discontinuation of clinical development. Whether similar risks apply to short-term or low-level exposure in humans is not established, and controlled human safety data are limited. The relevance of high-dose rodent carcinogenicity findings to human use remains a subject of debate.

Human trials of GW501516 were small and short in duration. They examined lipid levels, glucose handling, and other metabolic markers, but the programs were halted after the animal cancer findings. No approved therapeutic product exists, and published human data are insufficient for establishing long-term safety. Reports of use for athletic performance come mainly from non-clinical settings and cannot be verified through controlled trials. Independent testing of products sold as cardarine has found inconsistent purity and labeling.

Cardarine at a glance

PropertyValueNotes
Common nameCardarineCommon internet and media name.
Research codeGW501516Also written GW-1516.
Drug classPPARδ agonistNot a selective androgen receptor modulator.
Development statusDiscontinuedClinical development halted after rodent cancer findings.
Regulatory statusProhibited in sportListed by WADA; not approved as medicine.

Mechanism and Laboratory Detection

GW501516 binds and activates PPARδ, a nuclear receptor that influences transcription of genes involved in fatty acid oxidation and energy use. Activation shifts some metabolic pathways in preclinical models, which is why the compound has been studied for lipid disorders and exercise-related endpoints. The exact downstream effects in humans are incompletely mapped. PPARδ is expressed in many tissues, including skeletal muscle, liver, and adipose tissue, so broad activation may have varied consequences. Researchers continue to examine how selective or partial activation might alter the balance between benefits and risks.

Published human data are sparse and mostly come from early-phase trials. Those studies examined short-term changes in lipids, glucose, and exercise capacity, but they were not large enough to establish efficacy or long-term safety. Some animal experiments reported increased running endurance, yet such findings do not prove a performance benefit in people. Anti-doping laboratories detect GW501516 and its metabolites in urine or blood using liquid chromatography-tandem mass spectrometry. Detection windows depend on dose, sample type, and individual metabolism. The method is sensitive enough to identify trace residues in tested samples.

Laboratory handling focuses on identity, purity, and stability. Reference standards are typically stored cold and dry, protected from light, because solutions can degrade over time. Analytical checks may use high-performance liquid chromatography with ultraviolet detection or mass spectrometry. Impurities and related substances can be separated chromatographically and compared with a known standard. Because cardarine is not an approved drug, compendial monographs are absent, and laboratories often rely on in-house methods. Reported purity varies among unregulated products and should not be assumed from a label.

Related pages on this site

Cardarine Identity and Mechanism

At the molecular level, GW501516 binds and activates PPARδ, a nuclear receptor that regulates transcription. Activation shifts expression of genes involved in fatty acid oxidation, energy expenditure, and lipid transport in skeletal muscle and liver. Animal studies report increased endurance and altered lipid profiles after exposure. Human data are limited to small trials and do not establish long-term safety or efficacy. PPARδ also has roles in cell proliferation, so the relationship between activation and cancer risk remains an open question.

Published literature on cardarine includes in vitro assays, rodent experiments, and a small number of human studies. Reports describe effects on exercise capacity and lipid metabolism in animals, while human evidence is sparse. Many online descriptions present the compound as a proven endurance aid, a claim not supported by regulatory approval or large clinical trials. Analytical studies focus on identifying the parent compound and its metabolites in biological samples. Important uncertainties include species differences, dose-response relationships, and the relevance of rodent tumor findings to humans.

Notes from published material

== Coevolution == Coevolution is the long-term outcome of the algae-bacteria interaction. Algae and bacteria interact through mutualism, competition, and antagonistic interactions. Bacteria have evolved mechanisms to utilize algal organic matter or lyse algal cells, while algae have developed defence mechanisms such as resting stages, induced resistance, and chemical signalling responses. This reciprocal adaptation is an evolutionary arms race between algae and bacteria.

=== EC 1.14.19 With oxidation of a pair of donors resulting in the reduction of O2 to two molecules of water === EC 1.14.19.1: stearoyl-CoA 9-desaturase EC 1.14.19.2: stearoyl-[acyl-carrier-protein] 9-desaturase EC 1.14.19.3: linoleoyl-CoA desaturase EC 1.14.19.4: acyl-lipid (11-3)-desaturase EC 1.14.19.5: acyl-CoA 11-(Z)-desaturase EC 1.14.19.6: acyl-CoA (9+3)-desaturase EC 1.14.19.7: Now EC 1.11.1.23, (S)-2-hydroxypropylphosphonic acid epoxidase EC 1.14.19.8: pentalenolactone synthase EC 1.14.19.9: tryptophan 7-halogenase EC 1.14.19.10: icosanoyl-CoA 5-desaturase EC 1.14.19.11: acyl-[acyl-carrier-protein] 4-desaturase EC 1.14.19.12: acyl-lipid ω-(9-4) desaturase EC 1.14.19.13: acyl-CoA 15-desaturase EC 1.14.19.14: linoleoyl-lipid Δ9 conjugase EC 1.14.19.15: (11Z)-hexadec-11-enoyl-CoA conjugase EC 1.14.19.16: linoleoyl-lipid Δ12 conjugase (11E,13Z-forming) EC 1.14.19.17: sphingolipid 4-desaturase EC 1.14.19.18: sphingolipid 8-(E)-desaturase EC 1.14.19.19: sphingolipid 10-desaturase EC 1.14.19.20: Δ7-sterol 5(6)-desaturase EC 1.14.19.21: cholesterol 7-desaturase EC 1.14.19.22: acyl-lipid ω-6 desaturase (cytochrome b5) EC 1.14.19.23: acyl-lipid (n+3)-(Z)-desaturase (ferredoxin) EC 1.14.19.24: acyl-CoA 11-(E)-desaturase EC 1.14.19.25: acyl-lipid ω-3 desaturase (cytochrome b5) EC 1.14.19.26: acyl-[acyl-carrier-protein] 6-desaturase EC 1.14.19.27: sn-2 palmitoyl-lipid 9-desaturase EC 1.14.19.28: sn-1 stearoyl-lipid 9-desaturase EC 1.14.19.29: sphingolipid 8-(E/Z)-desaturase EC 1.14.19.30: acyl-lipid (8-3)-desaturase EC 1.14.19.31: acyl-lipid (7-3)-desaturase EC 1.14.19.32: palmitoyl-CoA 14-(E/Z)-desaturase EC 1.14.19.33: Δ12 acyl-lipid conjugase (11E,13E-forming) EC 1.14.19.34: acyl-lipid (9+3)-(E)-desaturase EC 1.14.19.35: sn-2 acyl-lipid ω-3 desaturase (ferredoxin) EC 1.14.19.36: sn-1 acyl-lipid ω-3 desaturase (ferredoxin) EC 1.14.19.37: acyl-CoA 5-desaturase EC 1.14.19.38: acyl-lipid Δ6-acetylenase EC 1.14.19.39: acyl-lipid Δ12-acetylenase EC 1.14.19.40: hex-5-enoyl-[acyl-carrier protein] acetylenase EC 1.14.19.41: sterol 22-desaturase EC 1.14.19.42: palmitoyl-[glycerolipid] 7-desaturase EC 1.14.19.43: palmitoyl-[glycerolipid] 3-(E)-desaturase EC 1.14.19.44: acyl-CoA (8-3)-desaturase EC 1.14.19.45: sn-1 oleoyl-lipid 12-desaturase EC 1.14.19.46: sn-1 linoleoyl-lipid 6-desaturase EC 1.14.19.47: acyl-lipid (9-3)-desaturase EC 1.14.19.48: tert-amyl alcohol desaturase EC 1.14.19.49: tetracycline 7-halogenase EC 1.14.19.50: noroxomaritidine synthase EC 1.14.19.51: (S)-corytuberine synthase EC 1.14.19.52: camalexin synthase EC 1.14.19.53: all-trans-retinol 3,4-desaturase EC 1.14.19.54: 1,2-dehydroreticuline synthase EC 1.14.19.55: 4-hydroxybenzoate brominase (decarboxylating) EC 1.14.19.56: 1H-pyrrole-2-carbonyl-[peptidyl-carrier protein] chlorinase EC 1.14.19.57: 1H-pyrrole-2-carbonyl-[peptidyl-carrier protein] brominase EC 1.14.19.58: tryptophan 5-halogenase EC 1.14.19.59: tryptophan 6-halogenase EC 1.14.19.60: 7-chloro-L-tryptophan 6-halogenase EC 1.14.19.61: dihydrorhizobitoxine desaturase EC 1.14.19.62: secologanin synthase EC 1.14.19.63: pseudobaptigenin synthase EC 1.14.19.64: (S)-stylopine synthase EC 1.14.19.65: (S)-cheilanthifoline synthase EC 1.14.19.66: berbamunine synthase EC 1.14.19.67: salutaridine synthase EC 1.14.19.68: (S)-canadine synthase EC 1.14.19.69: biflaviolin synthase EC 1.14.19.70: mycocyclosin synthase EC 1.14.19.71: fumitremorgin C synthase EC 1.14.19.72: (–)-pluviatolide synthase EC 1.14.19.73: (S)-nandinine synthase EC 1.14.19.74: (+)-piperitol/(+)-sesamin synthase EC 1.14.19.75: very-long-chain acyl-lipid ω-9 desaturase EC 1.14.19.76: flavone synthase II EC 1.14.19.77: plasmanylethanolamine desaturase EC 1.14.19.78: decanoyl-[acyl-carrier protein] acetylenase

=== Air pollution control === In addition to water treatment and environmental remediation, nanotechnology is currently improving air quality. Nanoparticles can be engineered to catalyze, or hasten, the reaction to transform environmentally pernicious gases into harmless ones. For example, many industrial factories that produce large amounts harmful gases employ a type of nanofiber catalyst made of magnesium oxide (Mg2O) to purify dangerous organic substances in the smoke. Although chemical catalysts already exist in the gaseous vapors from cars, nanotechnology has a greater chance of reacting with the harmful substances in the vapors. This greater probability comes from the fact that nanotechnology can interact with more particles because of its greater surface area. Nanotechnology has been used to remediate air pollution including car exhaust pollution, and potentially greenhouse gases due to its high surface area. Based on research done by the Environmental Science Pollution Research International, nanotechnology can specifically help to treat carbon-based nanoparticles, greenhouse gases, and volatile organic compounds. There is also work being done to develop antibacterial nanoparticles, metal oxide nanoparticles, and amendment agents for phytoremediation processes. Nanotechnology can also give the possibility of preventing air pollution in the first place due to its extremely small scale.

Sources: en.wikipedia.org

Further detail

Counter-Strike: Source retains its team-based objective-oriented first-person shooter style gameplay. The aim of playing a map is to accomplish a map's objective: defusing the bomb, rescuing all hostages, or killing the entire opposing team. The ultimate goal of the game is to win more rounds than the opposing team. Once players are killed, they do not respawn until the next round, though this depends on which server people play on. This gameplay feature distinguishes Counter-Strike from other first-person shooter games, where players respawn instantly or after a short delay. Shooting while moving dramatically decreases accuracy, and holding the trigger down to continuously shoot produces severe recoil. The severity of damage induced by weaponry is dependent upon the specific locations of hits, with hits to the head being most lethal and shots which make contact elsewhere causing lesser loss of health. Damage is also affected by the distance, and if the target wears protection.

== As a performance-enhancing drug == The possibility of using insulin in an attempt to improve athletic performance was suggested as early as the 1998 Winter Olympics in Nagano, Japan, as reported by Peter Sönksen in the July 2001 issue of Journal of Endocrinology. The question of whether non-diabetic athletes could legally use insulin was raised by a Russian medical officer. Whether insulin would actually improve athletic performance is unclear, but concerns about its use led the International Olympic Committee to ban use of the hormone by non-diabetic athletes in 1998. The book Game of Shadows (2001), by reporters Mark Fainaru-Wada and Lance Williams, included allegations that baseball player Barry Bonds used insulin (as well as other drugs) in the apparent belief that it would increase the effectiveness of the growth hormone he was alleged to be taking. Bonds eventually testified in front of a federal grand jury as part of a government investigation of BALCO. Bodybuilders in particular are claimed to be using exogenous insulin and other drugs in the belief that they will increase muscle mass. Bodybuilders have been described as injecting up to 10 IU of regular synthetic insulin before eating sugary meals. A 2008 report suggested that insulin is sometimes used in combination with anabolic steroids and growth hormone (GH), and that "Athletes are exposing themselves to potential harm by self‐administering large doses of GH, IGF‐I and insulin". Insulin abuse has been mentioned as a possible factor in the deaths of bodybuilders Ghent Wakefield and Rich Piana.

In biology, a substitution model, also called models of sequence evolution, are Markov models that describe changes over evolutionary time. These models describe evolutionary changes in macromolecules, such as DNA sequences or protein sequences, that can be represented as a sequence of symbols (e.g., A, C, G, and T in the case of DNA or the 20 "standard" proteinogenic amino acids in the case of proteins). Substitution models are used to calculate the likelihood of phylogenetic trees using multiple sequence alignment data. Thus, substitution models are central to maximum likelihood estimation of phylogeny as well as Bayesian inference in phylogeny. Estimates of evolutionary distances (numbers of substitutions that have occurred since a pair of sequences diverged from a common ancestor) are typically calculated using substitution models (evolutionary distances are used as input for distance methods such as neighbor joining). Substitution models are also central to phylogenetic invariants because they are necessary to predict site pattern frequencies given a tree topology. Substitution models are also necessary to simulate sequence data for a group of organisms related by a specific tree.

Sources: en.wikipedia.org

Frequently asked questions

Is cardarine a selective androgen receptor modulator?

No. Cardarine is a PPARδ agonist, while selective androgen receptor modulators act on androgen receptors. The two classes differ in receptor target and downstream effects.

Why did clinical development stop?

Preclinical rodent studies reported cancers, including liver and bladder tumors, at tested doses. The human relevance of those findings is uncertain, but development was discontinued. No approved human product resulted.

Is cardarine approved for medical use?

No. It remains an investigational compound without approved therapeutic labeling. Sports regulators prohibit its use, and health agencies have warned against consuming it.

What did animal studies show?

Rodent studies reported increased endurance and fat oxidation after GW501516 exposure. Long-term studies also found higher rates of some tumors, which led to halted development.

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