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Activation of mTOR (mechanistic target of rapamycin) in rheumatic diseases
1Division of Rheumatology, Departments of Medicine, Microbiology and Immunology, and Biochemistry and Molecular Biology, State University of New York, Upstate Medical University, College of Medicine, 750 East Adams Street, Syracuse, New York 13210, USA.
Abstract:
Mechanistic target of rapamycin (mTOR, also known as mammalian target of rapamycin) is a ubiquitous serine/threonine kinase that regulates cell growth, proliferation and survival. These effects are cell-type-specific, and are elicited in response to stimulation by growth factors, hormones and cytokines, as well as to internal and external metabolic cues. Rapamycin was initially developed as an inhibitor of T-cell proliferation and allograft rejection in the organ transplant setting. Subsequently, its molecular target (mTOR) was identified as a component of two interacting complexes, mTORC1 and mTORC2, that regulate T-cell lineage specification and macrophage differentiation. mTORC1 drives the proinflammatory expansion of T helper (TH) type 1, TH17, and CD4(-)CD8(-) (double-negative, DN) T cells. Both mTORC1 and mTORC2 inhibit the development of CD4(+)CD25(+)FoxP3(+) T regulatory (TREG) cells and, indirectly, mTORC2 favours the expansion of T follicular helper (TFH) cells which, similarly to DN T cells, promote B-cell activation and autoantibody production. In contrast to this proinflammatory effect of mTORC2, mTORC1 favours, to some extent, an anti-inflammatory macrophage polarization that is protective against infections and tissue inflammation. Outside the immune system, mTORC1 controls fibroblast proliferation and chondrocyte survival, with implications for tissue fibrosis and osteoarthritis, respectively. Rapamycin (which primarily inhibits mTORC1), ATP-competitive, dual mTORC1/mTORC2 inhibitors and upstream regulators of the mTOR pathway are being developed to treat autoimmune, hyperproliferative and degenerative diseases. In this regard, mTOR blockade promises to increase life expectancy through treatment and prevention of rheumatic diseases.
Insights
Mechanistic target of rapamycin (mTOR) regulates cell growth and immune responses. Inhibiting mTOR with rapamycin shows promise for treating autoimmune and degenerative diseases, potentially increasing lifespan.
Area of Science:
- Immunology
- Cell Biology
- Pharmacology
Background:
- Mechanistic target of rapamycin (mTOR) is a kinase regulating cell growth, proliferation, and survival.
- mTOR functions within two complexes, mTORC1 and mTORC2, influencing immune cell differentiation and function.
- Rapamycin, an mTOR inhibitor, was initially used for organ transplant rejection.
Purpose of the Study:
- To elucidate the role of mTOR complexes in immune cell regulation.
- To explore the therapeutic potential of mTOR inhibitors in autoimmune, hyperproliferative, and degenerative diseases.
Main Methods:
- Review of existing literature on mTOR signaling pathways.
- Analysis of the effects of mTORC1 and mTORC2 on various immune cell types (T cells, macrophages).
- Examination of mTOR's role in non-immune cells like fibroblasts and chondrocytes.
Main Results:
- mTORC1 promotes pro-inflammatory T cell expansion (TH1, TH17, DN T cells).
- Both mTORC1 and mTORC2 inhibit regulatory T cell (TREG) development; mTORC2 promotes T follicular helper (TFH) cells.
- mTORC1 can also promote anti-inflammatory macrophage polarization.
- mTORC1 impacts fibroblast proliferation and chondrocyte survival, relevant to fibrosis and osteoarthritis.
Conclusions:
- mTOR signaling plays a complex, context-dependent role in immune homeostasis and tissue function.
- Pharmacological inhibition of mTOR (e.g., with rapamycin) is a promising strategy for treating inflammatory, autoimmune, and degenerative conditions.
- mTOR blockade may offer benefits in increasing life expectancy through disease prevention and treatment, particularly for rheumatic diseases.
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