Javascript must be enabled to continue!
Macrophage SHP2 Deficiency Alleviates Diabetic Nephropathy via Suppression of MAPK/NF-κB-Dependent Inflammation
View through CrossRef
Increasing evidence implicates chronic inflammation as the main pathological cause of diabetic nephropathy (DN). Exploration of key targets in the inflammatory pathway may provide new treatment options for DN. Here, we aim to investigate the role of Src Homology 2 Containing Protein Tyrosine Phosphatase 2 (SHP2) in macrophages and its association with DN. The upregulated phosphorylation of SHP2 was detected in macrophages of both diabetic patients and mouse model. Using the macrophage-specific SHP2 knockout mice (SHP2-MKO) and SHP2<sup>fl/fl </sup>mice injected with streptozotocin (STZ), we showed that SHP2-MKO significantly attenuated renal dysfunction, collagen deposition, fibrosis, and inflammatory response in STZ-induced diabetic mice. RNA-sequencing analysis using primary mouse peritoneal macrophages (MPMs) showed that SHP2 deletion mainly affects mitogen-activated protein kinases (MAPKs) and nuclear factor kappa B (NF-κB) signaling pathway and MAPKs/NF-κB-dependent inflammatory cytokine release in MPMs. Further study indicated that SHP2-deficient macrophages failed to release cytokines that induce phenotype transition and fibrosis in renal cells. Administration with a pharmacological SHP2 inhibitor, SHP099, remarkably protected kidneys in both type 1 and type 2 diabetic mice. In conclusion, these results identify macrophage SHP2 as a new accelerator of DN and suggest that SHP2 inhibition may be a therapeutic option for DN patients.<p></p>
American Diabetes Association
Title: Macrophage SHP2 Deficiency Alleviates Diabetic Nephropathy via Suppression of MAPK/NF-κB-Dependent Inflammation
Description:
Increasing evidence implicates chronic inflammation as the main pathological cause of diabetic nephropathy (DN).
Exploration of key targets in the inflammatory pathway may provide new treatment options for DN.
Here, we aim to investigate the role of Src Homology 2 Containing Protein Tyrosine Phosphatase 2 (SHP2) in macrophages and its association with DN.
The upregulated phosphorylation of SHP2 was detected in macrophages of both diabetic patients and mouse model.
Using the macrophage-specific SHP2 knockout mice (SHP2-MKO) and SHP2<sup>fl/fl </sup>mice injected with streptozotocin (STZ), we showed that SHP2-MKO significantly attenuated renal dysfunction, collagen deposition, fibrosis, and inflammatory response in STZ-induced diabetic mice.
RNA-sequencing analysis using primary mouse peritoneal macrophages (MPMs) showed that SHP2 deletion mainly affects mitogen-activated protein kinases (MAPKs) and nuclear factor kappa B (NF-κB) signaling pathway and MAPKs/NF-κB-dependent inflammatory cytokine release in MPMs.
Further study indicated that SHP2-deficient macrophages failed to release cytokines that induce phenotype transition and fibrosis in renal cells.
Administration with a pharmacological SHP2 inhibitor, SHP099, remarkably protected kidneys in both type 1 and type 2 diabetic mice.
In conclusion, these results identify macrophage SHP2 as a new accelerator of DN and suggest that SHP2 inhibition may be a therapeutic option for DN patients.
<p></p>.
Related Results
Macrophage SHP2 Deficiency Alleviates Diabetic Nephropathy via Suppression of MAPK/NF-κB-Dependent Inflammation
Macrophage SHP2 Deficiency Alleviates Diabetic Nephropathy via Suppression of MAPK/NF-κB-Dependent Inflammation
Increasing evidence implicates chronic inflammation as the main pathological cause of diabetic nephropathy (DN). Exploration of key targets in the inflammatory pathway may provide ...
Macrophage SHP2 Deficiency Alleviates Diabetic Nephropathy via Suppression of MAPK/NF-κB– Dependent Inflammation
Macrophage SHP2 Deficiency Alleviates Diabetic Nephropathy via Suppression of MAPK/NF-κB– Dependent Inflammation
Increasing evidence implicates chronic inflammation as the main pathological cause of diabetic nephropathy (DN). Exploration of key targets in the inflammatory pathway may provide ...
Tau associates with protein tyrosine phosphatase SHP2
Tau associates with protein tyrosine phosphatase SHP2
<p>The microtubule-associated protein tau normally functions to bind to and stabilize microtubules. However, evidence now indicates that tau may also play a critical role in ...
Abstract 920: COP1 E3 ligase regulates response to oncogenic MAPK pathway inhibition
Abstract 920: COP1 E3 ligase regulates response to oncogenic MAPK pathway inhibition
Abstract
Oncogenically activated RAS-MAPK pathway is the driver of several cancers including the majority of non-small cell lung adenocarcinomas (NSCLC). RAS-MAPK pa...
Diabetic Nephropathy: Advancement in Molecular Mechanism, Pathogenesis, and Management by Pharmacotherapeutics and Natural Compounds
Diabetic Nephropathy: Advancement in Molecular Mechanism, Pathogenesis, and Management by Pharmacotherapeutics and Natural Compounds
The primary cause of End-stage Renal Disease (ESRD) and a possible chronic microvascular
consequence of diabetes mellitus is Diabetic Nephropathy (DN). The early stages of diabetic...
The Number of Teeth Is Associated with Diabetic Nephropathy
The Number of Teeth Is Associated with Diabetic Nephropathy
Background: Progression of diabetic nephropathy has serious effects on the life expectancy of diabetic patients. Although diagnoses, lifestyle interventions, and treatment of diabe...
CD4 and CXCR5 in Patients with Diabetic Nephropathy
CD4 and CXCR5 in Patients with Diabetic Nephropathy
Background: Diabetes is a metabolic condition characterized by hyperglycemia caused by defects in insulin secretion, insulin activity, or both. Diabetic nephropathy (DN) is one of ...
Dissecting protein tyrosine phosphatase signaling by engineered chemogenetic control of its activity
Dissecting protein tyrosine phosphatase signaling by engineered chemogenetic control of its activity
Protein tyrosine phosphatases (PTPases) are critical mediators of dynamic cell signaling. A tool capable of identifying transient signaling events downstream of PTPases is essentia...

