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Quantification of Monocyte Chemotactic Activity In Vivo and Characterization of Blood Monocyte Derived Macrophages
Published on: August 12, 2019
Loss of CMAH during Human Evolution Primed the Monocyte-Macrophage Lineage toward a More Inflammatory and Phagocytic
Jonathan J Okerblom1,2,3, Flavio Schwarz1,2,3, Josh Olson4,5
1Glycobiology Research and Training Center, University of California, San Diego, La Jolla, CA 92093.
Abstract:
Humans and chimpanzees are more sensitive to endotoxin than are mice or monkeys, but any underlying differences in inflammatory physiology have not been fully described or understood. We studied innate immune responses in Cmah-/- mice, emulating human loss of the gene encoding production of Neu5Gc, a major cell surface sialic acid. CMP-N-acetylneuraminic acid hydroxylase (CMAH) loss occurred ∼2-3 million years ago, after the common ancestor of humans and chimpanzees, perhaps contributing to speciation of the genus HomoCmah-/- mice manifested a decreased survival in endotoxemia following bacterial LPS injection. Macrophages from Cmah-/- mice secreted more inflammatory cytokines with LPS stimulation and showed more phagocytic activity. Macrophages and whole blood from Cmah mice also killed bacteria more effectively. Metabolic reintroduction of Neu5Gc into Cmah-/- macrophages suppressed these differences. Cmah-/- mice also showed enhanced bacterial clearance during sublethal lung infection. Although monocytes and monocyte-derived macrophages from humans and chimpanzees exhibited marginal differences in LPS responses, human monocyte-derived macrophages killed Escherichia coli and ingested E. coli BioParticles better. Metabolic reintroduction of Neu5Gc into human macrophages suppressed these differences. Although multiple mechanisms are likely involved, one cause is altered expression of C/EBPβ, a transcription factor affecting macrophage function. Loss of Neu5Gc in Homo likely had complex effects on immunity, providing greater capabilities to clear sublethal bacterial challenges, possibly at the cost of endotoxic shock risk. This trade-off may have provided a selective advantage when Homo transitioned to butchery using stone tools. The findings may also explain why the Cmah-/- state alters severity in mouse models of human disease.
Insights
Mice lacking Neu5Gc, a sialic acid found in humans, showed enhanced bacterial clearance but increased susceptibility to endotoxic shock. This immune system difference may have aided early human evolution and tool use.
Area of Science:
- Immunology
- Evolutionary Biology
- Genetics
Background:
- Humans and chimpanzees exhibit higher endotoxin sensitivity than other primates, suggesting distinct inflammatory pathways.
- The gene encoding Neu5Gc, a key sialic acid, was lost in the human lineage after divergence from chimpanzees, potentially influencing immune evolution.
Purpose of the Study:
- To investigate the impact of Neu5Gc deficiency on innate immune responses and bacterial clearance.
- To explore the evolutionary implications of altered sialic acid metabolism in the genus Homo.
Main Methods:
- Studied Cmah-/- mice, lacking Neu5Gc, to model human sialic acid loss.
- Assessed inflammatory cytokine production, phagocytic activity, and bacterial killing in macrophages and whole blood.
- Utilized LPS stimulation and bacterial infection models (endotoxemia and lung infection).
- Investigated the effect of metabolic reintroduction of Neu5Gc.
Main Results:
- Cmah-/- mice exhibited reduced survival in endotoxemia but enhanced bacterial clearance and macrophage phagocytic activity.
- Neu5Gc reintroduction reversed these immune alterations in mouse and human cells.
- Human macrophages showed improved bacterial killing and ingestion compared to other primates, linked to Neu5Gc loss and C/EBPβ expression.
Conclusions:
- Loss of Neu5Gc in Homo may confer advantages in clearing bacterial infections at the expense of increased endotoxic shock risk.
- This evolutionary trade-off could have provided a selective advantage during early human development and tool use.
- The findings offer insights into human disease models and evolutionary immune adaptations.
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