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Published on: November 21, 2016
Comparing the Effects of Rocaglates on Energy Metabolism and Immune Modulation on Cells of the Human Immune System
Susanne Schiffmann1,2, Marina Henke1, Michelle Seifert1
1Fraunhofer Institute for Translational Medicine and Pharmacology ITMP, Theodor-Stern-Kai 7, 60596 Frankfurt am Main, Germany.
Abstract:
A promising new approach to broad spectrum antiviral drugs is the inhibition of the eukaryotic translation initiation factor 4A (elF4A), a DEAD-box RNA helicase that effectively reduces the replication of several pathogenic virus types. Beside the antipathogenic effect, modulation of a host enzyme activity could also have an impact on the immune system. Therefore, we performed a comprehensive study on the influence of elF4A inhibition with natural and synthetic rocaglates on various immune cells. The effect of the rocaglates zotatifin, silvestrol and CR-31-B (-), as well as the nonactive enantiomer CR-31-B (+), on the expression of surface markers, release of cytokines, proliferation, inflammatory mediators and metabolic activity in primary human monocyte-derived macrophages (MdMs), monocyte-derived dendritic cells (MdDCs), T cells and B cells was assessed. The inhibition of elF4A reduced the inflammatory potential and energy metabolism of M1 MdMs, whereas in M2 MdMs, drug-specific and less target-specific effects were observed. Rocaglate treatment also reduced the inflammatory potential of activated MdDCs by altering cytokine release. In T cells, the inhibition of elF4A impaired their activation by reducing the proliferation rate, expression of CD25 and cytokine release. The inhibition of elF4A further reduced B-cell proliferation, plasma cell formation and the release of immune globulins. In conclusion, the inhibition of the elF4A RNA helicase with rocaglates suppressed the function of M1 MdMs, MdDCs, T cells and B cells. This suggests that rocaglates, while inhibiting viral replication, may also suppress bystander tissue injury by the host immune system. Thus, dosing of rocaglates would need to be adjusted to prevent excessive immune suppression without reducing their antiviral activity.
Insights
Inhibiting eukaryotic translation initiation factor 4A (elF4A) with rocaglates reduces viral replication and suppresses immune cell functions like M1 macrophages, dendritic cells, T cells, and B cells, requiring careful dosing for antiviral efficacy without immune suppression.
Area of Science:
- Immunology
- Virology
- Molecular Biology
Background:
- Eukaryotic translation initiation factor 4A (elF4A) is a target for broad-spectrum antiviral drugs.
- Modulating host enzyme activity can impact the immune system.
- Rocaglates are natural and synthetic compounds that inhibit elF4A.
Purpose of the Study:
- To comprehensively study the influence of elF4A inhibition on various human immune cells.
- To assess the effects of rocaglates on immune cell function, including surface marker expression, cytokine release, proliferation, and metabolism.
Main Methods:
- Primary human monocyte-derived macrophages (MdMs), monocyte-derived dendritic cells (MdDCs), T cells, and B cells were treated with rocaglates (zotatifin, silvestrol, CR-31-B (-), and CR-31-B (+)).
- Assessed were expression of surface markers, cytokine release, proliferation, inflammatory mediators, and metabolic activity.
Main Results:
- elF4A inhibition reduced inflammatory potential and energy metabolism in M1 MdMs.
- Rocaglate treatment decreased inflammatory potential in activated MdDCs by altering cytokine release.
- elF4A inhibition impaired T cell activation, reducing proliferation, CD25 expression, and cytokine release.
- B cell proliferation, plasma cell formation, and immunoglobulin release were reduced.
- M2 MdMs showed drug-specific and less target-specific effects.
Conclusions:
- Rocaglate-mediated elF4A inhibition suppressed the function of M1 MdMs, MdDCs, T cells, and B cells.
- Rocaglates may suppress immune-mediated bystander tissue injury alongside inhibiting viral replication.
- Dosing requires careful adjustment to balance antiviral activity and prevent excessive immune suppression.

