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Molecular control of PDPNhi macrophage subset induction by ADAP as a host defense in sepsis
Pengchao Zhang, Xinning Wang, Xiaodong Yang, Hebin Liu
Pengchao Zhang, Xinning Wang, Xiaodong Yang, Hebin Liu
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Research Article Immunology Inflammation

Molecular control of PDPNhi macrophage subset induction by ADAP as a host defense in sepsis

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Abstract

Induction of podoplanin (PDPN) expression is a critical response of macrophages to LPS stimulation or bacterial infection in sepsis, but how this key process of TLR4-stimulated PDPN upregulation is regulated and the effect of PDPN expression on macrophage function remain elusive. Here, we determined how this process is regulated in vitro and in vivo. PDPN failed to be upregulated in TLR4-stimulated macrophages deficient in adhesion and degranulation-promoting adapter protein (ADAP), which could be rescued by the reconstitution of ADAP. A distinct PDPNhi peritoneal macrophage (PM) subset, which exhibited an M2-like phenotype and enhanced phagocytic activity, was generated in WT but not in ADAP-deficient septic mice. The blockade of PDPNhi PMs mimicked the effect of ADAP deficiency, which exacerbated sepsis. Mechanistically, Bruton’s tyrosine kinase–mediated (BTK-mediated) tyrosine phosphorylation of ADAP at Y571 worked together with mTOR to converge on STAT3 activation for the transactivation of the PDPN promoter. Moreover, agonist activation of STAT3 profoundly potentiated the PDPNhi PM subset generation and alleviated sepsis severity in mice. Together, our findings reveal a mechanism whereby ADAP resets macrophage function by controlling the TLR4-induced upregulation of PDPN as a host innate immune defense during sepsis.

Authors

Pengchao Zhang, Xinning Wang, Xiaodong Yang, Hebin Liu

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Figure 2

ADAP deficiency is associated with increased inflammation and disease severity in sepsis.

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ADAP deficiency is associated with increased inflammation and disease se...
(A) Kaplan-Meier survival curves of WT and Adap–/– mice challenged with E. coli (2 × 107 CFU, i.p.) (n = 15 each, log-rank test). (B and C) Bacterial burden in the peritoneal lavage fluid (B) and blood (C) of WT and Adap–/– septic mice 18 hours after injection of saline or E. coli (WT E. coli, n = 7; Adap–/– E. coli, n = 5; unpaired t test). (D) mRNA levels of Il6, Tnf, and Il1b in lung tissues of WT and Adap–/– mice 18 hours after i.p. injection of saline or E. coli (WT saline or Adap–/– saline, n = 3; WT E. coli, n = 10; Adap–/– E. coli, n = 8; 2-way ANOVA, Šidák’s multiple-comparison test). Relative mRNA levels were normalized to Gapdh. (E) Representative H&E-stained lung sections of WT and Adap–/– mice 18 hours after E. coli injection. Scale bars: 100 μm. Lung injury was scored and compared between the groups (WT saline or Adap–/– saline, n = 4; WT E. coli, n = 8; Adap–/– E. coli, n = 6; 2-way ANOVA, Tukey’s multiple-comparison test). (F) Flow cytometric analysis of myeloid cells (CD45+CD11b+), macrophages (CD45+CD11b+F4/80+), and neutrophils (CD45+CD11b+Ly6G+) from leukocytes (CD45+) in the peritoneal lavage fluid of WT and Adap–/– septic mice (WT saline or Adap–/– saline, n = 4; WT E. coli, n = 8; Adap–/– E. coli, n = 6; 2-way ANOVA, Šidák’s multiple-comparison test). (G) Kaplan-Meier survival curves of E. coli–injected WT and Adap–/– mice transplanted with WT or Adap–/– BMDMs (n = 13 each, log-rank test).

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