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Precursors of thymic peptides as stress sensors

Review · human · Expert opinion on biological therapy · 2020 · DOI 10.1080/14712598.2020.1800636 · PMID 32700610

Plain-language summary

Paraphrased from the published abstract below — not a verdict on whether anything works.

This review article (species not specified) examines thymic hormones, including thymulin, thymopoietin, thymosin-alpha, thymosin-beta, and thymic humoral factor-y2, and their range of biological activities. The authors note existing data on thymic peptides has generally been divided into effects on immune cells and interconnections with neuroendocrine systems, and they propose a third aspect: that abundant intranuclear precursors of thymic peptides, present in many somatic cells, may be cleaved under stress-related conditions into immunologically active peptides that leave the nucleus to signal the immune system, functioning as stress sensors. The authors suggest this model may help explain mechanisms underlying immune homeostasis and could inform development of new therapeutic approaches involving thymic peptides.

Abstract

A large volume of data indicates that the known thymic hormones, thymulin, thymopoietin, thymosin-α, thymosin-β, and thymic humoral factor-y2, exhibit different spectra of activities. Although large in volume, available data are rather fragmented, resulting in a lack of understanding of the role played by thymic hormones in immune homeostasis. Existing data compartmentalizes the effect of thymic peptides into 2 categories: influence on immune cells and interconnection with neuroendocrine systems. The current study draws attention to a third aspect of the thymic peptide effect that has not been clarified yet, wherein ubiquitous and highly abundant intranuclear precursors of so called 'thymic peptides' play a fundamental role in all somatic cells. Our analysis indicated that, under certain stress-related conditions, these precursors are cleaved to form immunologically active peptides that rapidly leave the nucleus and intracellular spaces, to send 'distress signals' to the immune system, thereby acting as stress sensors. We propose that these peptides may form a link between somatic cells and immune as well as neuroendocrine systems. This model may provide a better understanding of the mechanisms underlying immune homeostasis, leading thereby to the development of new therapeutic regimes utilizing the characteristics of thymic peptides.

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