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Updated: Jan 22, 2026

Expression of Fluorescent Fusion Proteins in Murine Bone Marrow-derived Dendritic Cells and Macrophages
Published on: October 30, 2018
Unfolded Protein Response Differentially Regulates TLR4-Induced Cytokine Expression in Distinct Macrophage
Lei Zhang1, Paul G Pavicic2, Shyamasree Datta2
1School of Medicine and Pharmacy, Ocean University of China, Qingdao, China.
Abstract:
Cellular stress responses are often engaged at sites of inflammation and can alter macrophage cytokine production. We now report that macrophages in distinct states of differentiation or in different temporal stages of inflammatory response exhibit differential sensitivity to cell stress mediated alterations in M1-like polarized inflammatory cytokine production. Tunicamycin (Tm) treatment of bone marrow derived macrophages (BMDM) cultured with M-CSF cultured bone marrow derived macrophages (M-BMDM) had markedly amplified M1-like responses to LPS, exhibiting higher levels of IL12p40 and IL12p35 mRNAs while BMDM cultured with GM-CSF, which normally express high IL12 subunit production in response to LPS, were relatively unaltered. Anti-inflammatory IL10 mRNA production in LPS-stimulated M-BMDM was greatly reduced by cell stress. These changes in cytokine mRNA levels resulted from altered rates of transcription and mRNA decay. Stress also altered cytokine protein production. Resident liver macrophages isolated from mice treated with Tm showed elevated levels of IL12 subunit mRNA production following LPS stimulation. Furthermore, macrophages infiltrating the liver during the early phase of acetaminophen injury (24 h) had little stress-mediated change in cytokine mRNA production while cells isolated in the later phase (48-72 h) exhibited higher sensitivity for stress elevated cytokine production. Hence cultured macrophages developed using different growth/differentiation factors and macrophages from different temporal stages of injury in vivo show markedly different sensitivity to cell stress for altered inflammatory cytokine production. These findings suggest that cellular stress can be an important modulator of the magnitude and character of myeloid inflammatory activity.
Insights
Cellular stress significantly alters macrophage inflammatory cytokine production, with sensitivity varying based on macrophage differentiation state and injury phase. This highlights stress as a key modulator of myeloid inflammatory activity.
Area of Science:
- Immunology
- Cellular Biology
- Molecular Biology
Background:
- Cellular stress responses are integral to inflammation and can modulate macrophage cytokine output.
- Macrophages exhibit diverse functional states influenced by differentiation and inflammatory timing.
Purpose of the Study:
- To investigate how cellular stress affects macrophage inflammatory cytokine production in distinct differentiation states and during different phases of inflammation.
- To elucidate the mechanisms underlying stress-induced alterations in M1-like polarized cytokine synthesis.
Main Methods:
- Treatment of bone marrow-derived macrophages (BMDM) with tunicamycin (Tm) under varying culture conditions (M-CSF vs. GM-CSF).
- Stimulation with lipopolysaccharide (LPS) to assess inflammatory cytokine mRNA and protein production.
- Analysis of macrophages from acetaminophen-induced liver injury models at different time points.
Main Results:
- Tunicamycin treatment amplified M1-like responses (IL12p40, IL12p35 mRNA) in M-CSF-BMDM but not GM-CSF-BMDM.
- Cellular stress reduced anti-inflammatory IL10 mRNA production in LPS-stimulated M-BMDM.
- Macrophages in later stages of acetaminophen-induced liver injury showed increased sensitivity to stress-mediated cytokine alterations.
Conclusions:
- Macrophage sensitivity to stress-induced cytokine modulation differs based on differentiation factors and temporal inflammatory stage.
- Cellular stress significantly impacts the magnitude and nature of myeloid inflammatory responses.
- These findings underscore the role of cellular stress as a critical regulator of macrophage inflammatory activity in vivo and in vitro.
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