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Pinealon is a synthetic peptide just three amino acids in length. It has been shown to modify behavior and protect a number of cell types against the effects of hypoxia. It has undergone extensive research for its ability to alter circadian rhythm, improve memory, and enhance learning. It has been shown to offset the effects of aging, particularly in the central nervous system, and may be useful in treating cognitive disorders like Alzheimer’s disease. Product Usage: This PRODUCT IS INTENDED AS A RESEARCH CHEMICAL ONLY. This designation allows the use of research chemicals strictly for in vitro testing and laboratory experimentation only. All product information available on this website is for educational purposes only. Bodily introduction of any kind into humans or animals is strictly forbidden by law. This product should only be handled by licensed, qualified professionals. This product is not a drug, food, or cosmetic and may not be misbranded, misused or mislabled as a drug, food or cosmetic.
What Is Pinealon?
Pinealon is a short peptide consisting of just three amino acids. It is one of a handful of synthetic peptides referred to as peptide bioregulators for their ability to interact directly with DNA to alter gene expression levels. Pinealon has been linked to behavior modification and is thought to help protect a number of cell types, including neurons, against the effects of hypoxia. By direct effect on the pineal gland, pinealon may reduce problems with drug metabolism, circadian rhythm disorders, memory, learning, and more.
Pinealon Structure

Pinealon Interacts Directly with DNA
Unlike most peptides, pinealon does not appear to bind to cell surface or cytoplasmic receptors. This has led scientists to wonder how the short peptide can have any effect. In the past, it was suggested that pinealon may be small enough to cross lipid bilayers (e.g. the cell membrane, nuclear membrane) and may therefore be able to interact directly with DNA. Testing in cell cultures (HeLa cells) indicates that pinealon directly penetrates the cell membrane as well as the nuclear membrane to interact with DNA[1]. This makes pinealon a regulator of gene expression and explains the peptide’s myriad effects that cannot be explained by receptor interactions.
Pinealon Research
Pinealon Research and Aging
Pinealon may have anti-aging effects in the central nervous system. Research from Russia indicates that pinealon and a similar peptide, vesugen, are anabolic in the brain and can actually slow the rate of aging when calculated using biological age indicators[2]. Pinealon is active in cells outside of the central nervous system as well. Research shows that the peptide also has effects on muscle cells where it alters the expression of irisin[3]. Irisin is important to protecting muscle cells during exercise, promotes fat burning, and is thought to induce telomere elongation as well. By increasing the lifespan of irisin, pinealon boosts telomere protection and helps to fight off the effects of aging and oxidative stress. In fact, plasma irisin levels are directly linked to telomere length in healthy adults and levels of the enzyme have been directly linked to calorie restriction, one of the few activities known beyond doubt to prolong life and improve overall fitness[4]. Interestingly, there is evidence that irisin is active outside of muscle cells and that pinealon may therefore have anti-aging effects that are broadly distributed throughout the body, including the brain.
Pinealon Research and Neuron Protection
Research in prenatal rats indicates that pinealon protects neurons against oxidative stress and thus protects cognitive function and motor coordination[5]. The study showed marked decreases in both reactive oxygen species accumulation as well as number of necrotic cells in the brain in these rats. In other words, pinealon protects neurons from dying. The findings of the prental rat study discussed above have been confirmed in separate studies and extended in others. Confirmation that pinealon protects against reactive oxygen species and reduces necrotic cell death also came with the understanding that the peptide modifies the cell cycle as part of its protection against cell death[6]. This was one of the first indications that pinealon was almost certainly interacting at the level of DNA. Interestingly, pinealon modulates the cell cycle by activating proliferation pathways. Under normal circumstances, this would lead to an increase in cell number, but under the setting of oxidative stress, this effect simply offsets some of the damaging effects of reactive oxygen species. 
Pinealon research and Depression
Research in cultures of brain cortex cells indicate that pinealon can boost expression of 5-tryptophan hydroxylase via epigenetic changes. 5-tryptophan hydroxylase is critical to the production and secretion of serotonin, a peptide known to have neuroprotective and geroprotective features[9]. It is also the signaling molecule most often targeted by anti-depressive drugs called selective-serotonin reuptake inhibitors (SSRIs). SSRIs have a number of side effects, however, and the ability to boost serotonin production organically could offer a means of fighting depression that is more physiologic and thus reduce side effects.
Pinealon Protects Cells from Caspase-3 and Cell Death
The initial understanding that pinealon could affect the cell cycle came from research into the effects of the peptide in rat models of ischemic stroke. These studies revealed that pinealon affects cytokine signaling that normally leads to an increase in levels of the caspase-3 enzyme[10]. Caspase-3 is directly responsible for initiating apoptosis, or the controlled death of a cell via genetic instruction. By modulating caspase-3, pinealon shuts down at least one pathway to cell death and thus reduces the effects of oxygen deprivation during stroke. Caspase-3 is not only active in neurologic tissue though, it is almost universal. Research using models of heart attack indicates that pinealon may reduce caspase-3 levels following myocardial infarction[11]. The short peptide may have application both in treating heart attack and in preventing the long-term remodeling that causes so much dysfunction following a myocardial infarction. The benefit of pinealon in suppressing caspase-3 expression has been demonstrated in skin cells. By reducing apoptosis in the skin, pinealon promotes cell proliferation in both young and old animals alike. This leads to an increase in the regenerative process and has been shown to offset age-related pathology in the skin[12]. Pinealon may eventually form part of a multi-faceted approach to wound healing and could have application in everything from sun protection to serious burn treatment.
Pinealon Research and Sleep Regulation
It should come as no surprise, given its names, that pinealon affects that sleep-wake cycle as well as sleep behavior. Research indicates, that pinealon may help to regulate the dysfunction caused by shift-work and other activities (e.g. long-distance travel) that interfere with normal sleep patterns. The peptide actually appears to reset the pineal gland to baseline in the setting of circadian rhythm disruption, improving sleep, depression, mood, blood pressure, and more as a result[13]. The ability to regulate sleep actually corresponds strongly with rates of aging. Disturbed sleep is a recipe for disaster in the body and affects cognition, cardiac health, wound healing, mood, and more. Pinealon may therefore help to reduce the impact of sleep disturbance and thus offset the effects that it has on aging. This could be beneficial not only to those forced into disorder sleep due to their jobs, but to individuals suffering from organic disease that impacts sleep-wake cycles. Pinealon exhibits minimal side effects, low oral and excellent subcutaneous bioavailability in mice. Per kg dosage in mice does not scale to humans. Pinealon for sale at Peptide Gurus is limited to educational and scientific research only, not for human consumption. Only buy Pinealon if you are a licensed researcher.
Article Author
The above literature was researched, edited and organized by Dr. Logan, M.D. Dr. Logan holds a doctorate degree from Case Western Reserve University School of Medicine and a B.S. in molecular biology.
Scientific Journal Author

Referenced Citations
- L. I. Fedoreyeva, I. I. Kireev, V. K. Khavinson, and B. F. Vanyushin, “Penetration of short fluorescence-labeled peptides into the nucleus in HeLa cells and in vitro specific interaction of the peptides with deoxyribooligonucleotides and DNA,” Biochem. Biokhimiia, vol. 76, no. 11, pp. 1210–1219, Nov. 2011.
- V. N. Meshchaninov, E. L. Tkachenko, S. V. Zharkov, I. V. Gavrilov, and I. E. Katyreva, “[EFFECT OF SYNTHETIC PEPTIDES ON AGING OF PATIENTS WITH CHRONIC POLYMORBIDITY AND ORGANIC BRAIN SYNDROME OF THE CENTRAL NERVOUS SYSTEM IN REMISSION],” Adv. Gerontol. Uspekhi Gerontol., vol. 28, no. 1, pp. 62–67, 2015.
- V. K. Khavinson, B. I. Kuznik, S. I. Tarnovskaya, and N. S. Lin’kova, “Short Peptides and Telomere Length Regulator Hormone Irisin,” Bull. Exp. Biol. Med., vol. 160, no. 3, pp. 347–349, Jan. 2016.
- K. S. Rana et al., “Plasma irisin levels predict telomere length in healthy adults,” Age Dordr. Neth., vol. 36, no. 2, pp. 995–1001, Apr. 2014.
- A. Arutjunyan, L. Kozina, S. Stvolinskiy, Y. Bulygina, A. Mashkina, and V. Khavinson, “Pinealon protects the rat offspring from prenatal hyperhomocysteinemia,” Int. J. Clin. Exp. Med., vol. 5, no. 2, pp. 179–185, 2012.
- V. Khavinson et al., “Pinealon increases cell viability by suppression of free radical levels and activating proliferative processes,” Rejuvenation Res., vol. 14, no. 5, pp. 535–541, Oct. 2011.
- L. S. Kozina, “[Investigation of antihypoxic properties of short peptides],” Adv. Gerontol. Uspekhi Gerontol., vol. 21, no. 1, pp. 61–67, 2008.
- J. Zhang and W. Zhang, “Can irisin be a linker between physical activity and brain function?,” Biomol. Concepts, vol. 7, no. 4, pp. 253–258, Aug. 2016.
- V. K. Khavinson, N. S. Lin’kova, S. I. Tarnovskaya, R. S. Umnov, E. V. Elashkina, and A. O. Durnova, “Short peptides stimulate serotonin expression in cells of brain cortex,” Bull. Exp. Biol. Med., vol. 157, no. 1, pp. 77–80, May 2014.
- A. M. MendzheritskiÄ, G. V. Karantysh, G. A. Ryzhak, and S. V. Dem’ianenko, “[Regulation of content of cytokines in blood serum and of caspase-3 activity in brains of old rats in model of sharp hypoxic hypoxia with Cortexin and Pinealon],” Adv. Gerontol. Uspekhi Gerontol., vol. 27, no. 1, pp. 94–97, 2014.
- “Serum Caspase-3 p17 Fragment Is Elevated in Patients With ST-Segment Elevation Myocardial Infarction | JACC: Journal of the American College of Cardiology.” [Online]. Available: http://www.onlinejacc.org/content/57/2/220. [Accessed: 11-Jun-2019].
- M. A. Voicekhovskaya, N. I. Chalisova, E. A. Kontsevaya, and G. A. Ryzhak, “Effect of bioregulatory tripeptides on the culture of skin cells from young and old rats,” Bull. Exp. Biol. Med., vol. 152, no. 3, pp. 357–359, Jan. 2012.
- A. S. Bashkireva and V. G. Artamonova, “[The peptide correction of neurotic disorders among professional truck-drivers],” Adv. Gerontol. Uspekhi Gerontol., vol. 25, no. 4, pp. 718–728, 2012.
ALL ARTICLES AND PRODUCT INFORMATION PROVIDED ON THIS WEBSITE ARE FOR INFORMATIONAL AND EDUCATIONAL PURPOSES ONLY. The products offered on this website are furnished for in-vitro studies only. In-vitro studies (Latin: in glass) are performed outside of the body. These products are not medicines or drugs and have not been approved by the FDA to prevent, treat or cure any medical condition, ailment or disease. Bodily introduction of any kind into humans or animals is strictly forbidden by law.


