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Published on: July 16, 2021
A ERK/RSK-mediated negative feedback loop regulates M-CSF-evoked PI3K/AKT activation in macrophages
Lijun Wang1, Caterina Iorio2, Kevin Yan1
1Department of Orthopaedics, Brown University Alpert Medical School, Rhode Island Hospital, Providence, Rhode Island, USA.
Abstract:
Activation of the RAS/ERK and its downstream signaling components is essential for growth factor-induced cell survival, proliferation, and differentiation. The Src homology-2 domain containing protein tyrosine phosphatase 2 (SHP2), encoded by protein tyrosine phosphatase, non-receptor type 11 ( Ptpn11), is a positive mediator required for most, if not all, receptor tyrosine kinase-evoked RAS/ERK activation, but differentially regulates the PI3K/AKT signaling cascade in various cellular contexts. The precise mechanisms underlying the differential effects of SHP2 deficiency on the PI3K pathway remain unclear. We found that mice with myelomonocytic cell-specific [ Tg(LysM-Cre); Ptpn11fl/fl mice] Ptpn11 deficiency exhibit mild osteopetrosis. SHP2-deficient bone marrow macrophages (BMMs) showed decreased proliferation in response to M-CSF and decreased osteoclast generation. M-CSF-evoked ERK1/2 activation was decreased, whereas AKT activation was enhanced in SHP2-deficient BMMs. ERK1/2, via its downstream target RSK2, mediates this negative feedback by negatively regulating phosphorylation of M-CSF receptor at Tyr721 and, consequently, its binding to p85 subunit of PI3K and PI3K activation. Pharmacologic inhibition of RSK or ERK phenotypically mimics the signaling defects observed in SHP2-deficient BMMs. Furthermore, this increase in PI3K/AKT activation enables BMM survival in the setting of SHP2 deficiency.-Wang, L., Iorio, C., Yan, K., Yang, H., Takeshita, S., Kang, S., Neel, B.G., Yang, W. An ERK/RSK-mediated negative feedback loop regulates M-CSF-evoked PI3K/AKT activation in macrophages.
Insights
SHP2 deficiency in macrophages impairs osteoclast formation by disrupting M-CSF signaling. An ERK/RSK feedback loop enhances PI3K/AKT activation, promoting macrophage survival.
Area of Science:
- Cellular and Molecular Biology
- Immunology
- Signaling Pathways
Background:
- SHP2 (Ptpn11) is crucial for receptor tyrosine kinase-mediated RAS/ERK activation and influences PI3K/AKT signaling.
- The exact mechanisms of SHP2's differential regulation of PI3K remain incompletely understood.
- SHP2 plays a role in macrophage function and bone homeostasis.
Purpose of the Study:
- To elucidate the role of SHP2 in regulating macrophage signaling pathways, specifically in response to M-CSF.
- To investigate the mechanisms underlying SHP2's influence on PI3K/AKT activation in macrophages.
- To understand the functional consequences of SHP2 deficiency in myeloid cells.
Main Methods:
- Utilized mice with myelomonocytic cell-specific Ptpn11 deficiency (Tg(LysM-Cre); Ptpn11fl/fl).
- Analyzed bone marrow macrophages (BMMs) for proliferation, osteoclastogenesis, and signaling pathway activation (ERK, AKT).
- Employed pharmacologic inhibitors for ERK and RSK to probe signaling mechanisms.
Main Results:
- SHP2-deficient mice exhibited mild osteopetrosis.
- SHP2-deficient BMMs showed reduced proliferation and osteoclast generation in response to M-CSF.
- M-CSF-induced ERK1/2 activation was decreased, while AKT activation was enhanced in SHP2-deficient BMMs.
- An ERK/RSK2-mediated negative feedback loop was identified, negatively regulating M-CSF receptor phosphorylation and subsequent PI3K activation.
- Pharmacologic inhibition of ERK or RSK mimicked the signaling defects observed in SHP2-deficient BMMs.
- Enhanced PI3K/AKT activation in SHP2-deficient BMMs promoted cell survival.
Conclusions:
- SHP2 deficiency in macrophages disrupts M-CSF signaling, leading to impaired osteoclastogenesis.
- A novel ERK/RSK-mediated negative feedback loop regulates M-CSF-evoked PI3K/AKT activation in macrophages.
- This feedback mechanism enhances BMM survival under conditions of SHP2 deficiency.
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