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Krüppel-like factor 4 regulates macrophage polarization
Xudong Liao, Nikunj Sharma, Fehmida Kapadia, Guangjin Zhou, Yuan Lu, Hong Hong, Kaavya Paruchuri, Ganapati H. Mahabeleshwar, Elise Dalmas, Nicolas Venteclef, Chris A. Flask, Julian Kim, Bryan W. Doreian, Kurt Q. Lu, Klaus H. Kaestner, Anne Hamik, Karine Clément, Mukesh K. Jain
Xudong Liao, Nikunj Sharma, Fehmida Kapadia, Guangjin Zhou, Yuan Lu, Hong Hong, Kaavya Paruchuri, Ganapati H. Mahabeleshwar, Elise Dalmas, Nicolas Venteclef, Chris A. Flask, Julian Kim, Bryan W. Doreian, Kurt Q. Lu, Klaus H. Kaestner, Anne Hamik, Karine Clément, Mukesh K. Jain
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Research Article Inflammation

Krüppel-like factor 4 regulates macrophage polarization

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Abstract

Current paradigms suggest that two macrophage subsets, termed M1 and M2, are involved in inflammation and host defense. While the distinct functions of M1 and M2 macrophages have been intensively studied — the former are considered proinflammatory and the latter antiinflammatory — the determinants of their speciation are incompletely understood. Here we report our studies that identify Krüppel-like factor 4 (KLF4) as a critical regulator of macrophage polarization. Macrophage KLF4 expression was robustly induced in M2 macrophages and strongly reduced in M1 macrophages, observations that were recapitulated in human inflammatory paradigms in vivo. Mechanistically, KLF4 was found to cooperate with Stat6 to induce an M2 genetic program and inhibit M1 targets via sequestration of coactivators required for NF-κB activation. KLF4-deficient macrophages demonstrated increased proinflammatory gene expression, enhanced bactericidal activity, and altered metabolism. Furthermore, mice bearing myeloid-specific deletion of KLF4 exhibited delayed wound healing and were predisposed to developing diet-induced obesity, glucose intolerance, and insulin resistance. Collectively, these data identify KLF4 as what we believe to be a novel regulator of macrophage polarization.

Authors

Xudong Liao, Nikunj Sharma, Fehmida Kapadia, Guangjin Zhou, Yuan Lu, Hong Hong, Kaavya Paruchuri, Ganapati H. Mahabeleshwar, Elise Dalmas, Nicolas Venteclef, Chris A. Flask, Julian Kim, Bryan W. Doreian, Kurt Q. Lu, Klaus H. Kaestner, Anne Hamik, Karine Clément, Mukesh K. Jain

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Figure 7

Myeloid-specific deficiency of KLF4 exaggerates HFD-induced obesity and insulin resistance state in mice.

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Myeloid-specific deficiency of KLF4 exaggerates HFD-induced obesity and ...
(A) Impairment of IL-4–mediated lipid uptake (left panel) and β-oxidation (right panel) in KLF4-deficient macrophages. [3H] counts were normalized to protein content and expressed as fold increase relative to untreated controls. n = 8 in each group. (B) KLF4-deficient macrophages exhibit enhanced glucose uptake before and after LPS stimulation (left panel) and release more L(+)-lactate (right panel), a product of glycolysis. [3H] counts from 2-deoxy-[3H]-d-glucose in the cell lysate and L(+)-lactate concentration in the conditioned medium were normalized to protein content and expressed as fold increase over untreated controls. n = 8 in each group. (C and D) Mye-KO mice on HFD gained more weight (C) and stored more fat (D) than Mye-WT controls. n = 6 in each group. Subc., subcutaneous. (E and F) After 10–12 weeks of HFD, Mye-KO mice show impaired glucose metabolism as revealed by glucose intolerance (E) and resistance to exogenous insulin (F). n = 6 per genotype. *P < 0.05, **P < 0.01, Student’s t test with Bonferroni correction.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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