Mammals Produce Cyclo-octasulfur to Protect Cells from Lipid Damage

Elemental sulfur is well known in microorganisms, plants, and fungi, but whether mammals produce and use elemental sulfur has remained unclear.

A collaborative research team has now discovered that mammalian cells and tissues produce and store cyclo-octasulfur, S₈, which is a stable form of elemental sulfur composed of eight sulfur atoms arranged in a ring. The team included researchers from Tohoku University, Max Planck Institute for Polymer Research, Akita University, Institute of Science Tokyo, Shimadzu Corporation, and other collaborating institutions. Their findings were published in the journal Science on September 24, 2026.

To detect this elusive molecule, the researchers used two complementary methods: mass spectrometry with a polyaromatic capsule that captures and stabilizes S₈, and Raman microscopy to directly visualize S₈ inside cells and tissues. These approaches revealed that S₈ is present in mammalian mitochondria and lipid droplets, with particularly high accumulation in lipid droplets.

The study also found striking S₈ accumulation in human breast cancer tissues. S₈ levels were much higher in cancerous breast tissues than in non-cancerous breast tissues from the same patients, in some cases exceeding 100 mM. Raman microscopy confirmed S₈ signals in lipid droplets isolated from breast tumor tissues. In addition, analysis of exhaled breath condensate from breast cancer patients showed increased levels of supersulfide metabolites compared with healthy controls. These findings suggest that sulfur metabolism may be changed in the breast cancer microenvironment and that such changes may be detectable through non-invasive breath analysis.

Mammalian cells and tissues produce and store cyclo-octasulfur, S₈, in mitochondria and lipid droplets. S₈ accumulates at high levels in human breast cancer tissues and is associated with changes in supersulfide-related metabolites in exhaled breath condensate. S₈ reacts with glutathione to generate antioxidant supersulfides, suppressing lipid peroxidation and ferroptosis. Local S₈ administration also reduces lipid peroxidation in a mouse osteoarthritis model. ©Uladzimir Barayeu, Seiryo Ogata, Tsuyoshi Takata, Minkyung Jung, et al.

The researchers also found that nitric oxide synthases (NOS), including endothelial NOS, contribute to S₈ production in lipid droplets. Rather than focusing only on nitric oxide (NO) production, this study reveals an additional role for these enzymes in elemental sulfur metabolism.

S₈ appears to protect cells from lipid damage. When endogenous S₈ was depleted, lipid peroxidation and ferroptosis, a form of cell death driven by oxidized lipids, increased. Conversely, supplying S₈ protected adipocytes and endothelial cells from ferroptosis. The team found that S₈ reacts with glutathione (GSH), a common antioxidant molecule in cells, to generate antioxidant supersulfides that suppress lipid peroxidation.

The team further tested S₈ in a mouse model of osteoarthritis. Local administration of solubilized S₈ into the knee joint reduced levels of 4-hydroxynonenal (4-HNE), a marker of lipid peroxidation, suggesting that S₈ may protect joint tissues from oxidative injury.

These findings reveal a previously unknown mammalian elemental sulfur system. Understanding how S₈ is produced, stored, and used may lead to new strategies for diagnosing, preventing, or treating diseases linked to lipid peroxidation and ferroptosis, including breast cancer, osteoarthritis, inflammatory diseases, metabolic disorders, and aging-related conditions.

Publication Details:

Title: Mammals produce cyclo-octasulfur to suppress lipid peroxidation and ferroptosis

Authors: U. Barayeu, S. Ogata, T. Takata, M. Jung, T. Matsunaga, M. Morita, T. Ida, M. Lange, Y. Unno, S. Boushehri, P. Greicius, A. Nishimura, L. Catti, Y. Pan, T. Zhang, T. Shimizu, R. Ushioda, T. Nakabayashi, S. Asamitsu, K. Fusegawa, T. Suzuki, T. Ishida, N. Tanda, Y. Watanabe, Y. Tsuchiya, R. Yamaguchi, S. Noguchi, E. Mishima, F. Yano, M. Arisawa, D. J. Stuehr, N. Xia, H. Li, B. Moosmann, F. Gräter, C. Aponte-Santamaría, J. A. Olzmann, M. Conrad, A. van der Vliet, T. P. Dick, H. Motohashi, M. Yoshizawa & T. Akaike

Journal: Science

DOI: 10.1126/science.aec5473

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