
Neil Alexis
· Curriculum in Toxicology & Environmental MedicineVerifiedUniversity of North Carolina at Chapel Hill · Toxicology
Active 1991–2024
Research topics
- Cell biology
- Biochemistry
- Biology
- Immunology
Selected publications
PLoS ONE · 2023 · 81 citations
- Cell biology
- Biology
- Immunology
Respiratory macrophage subpopulations exhibit unique phenotypes depending on their location within the respiratory tract, posing a challenge to in vitro macrophage model systems. Soluble mediator secretion, surface marker expression, gene signatures, and phagocytosis are among the characteristics that are typically independently measured to phenotype these cells. Bioenergetics is emerging as a key central regulator of macrophage function and phenotype but is often not included in the characterization of human monocyte-derived macrophage (hMDM) models. The objective of this study was to expand the phenotype characterization of naïve hMDMs, and their M1 and M2 subsets by measuring cellular bioenergetic outcomes and including an expanded cytokine profile. Known markers of M0, M1 and M2 phenotypes were also measured and integrated into the phenotype characterization. Peripheral blood monocytes from healthy volunteers were differentiated into hMDM and polarized with either IFN-γ + LPS (M1) or IL-4 (M2). As expected, our M0, M1, and M2 hMDMs exhibited cell surface marker, phagocytosis, and gene expression profiles indicative of their different phenotypes. M2 hMDMs however were uniquely characterized and different from M1 hMDMs by being preferentially dependent on oxidativte phosphorylation for their ATP generation and by secreting a distinct cluster of soluble mediators (MCP4, MDC, and TARC). In contrast, M1 hMDMs secreted prototypic pro-inflammatory cytokines (MCP1, eotaxin, eotaxin-3, IL12p70, IL-1α, IL15, TNF-β, IL-6, TNF-α, IL12p40, IL-13, and IL-2), but demonstrated a relatively constitutively heightened bioenergetic state, and relied on glycolysis for ATP generation. These data are similar to the bioenergetic profiles we previously observed in vivo in sputum (M1) and BAL (M2)-derived macrophages in healthy volunteers, supporting the notion that polarized hMDMs can provide an acceptable in vitro model to study specific human respiratory macrophage subtypes.
Recent grants
Core B: Sample Acquisition and Repository Core
NIH · $33.0M · 2020
NIH · $31.3M · 2012
Frequent coauthors
- 110 shared
David B. Peden
University of North Carolina at Chapel Hill
- 88 shared
Nadia N. Hansel
- 86 shared
Jeffrey L. Curtis
University of Michigan–Ann Arbor
- 84 shared
Russell P. Bowler
University of Colorado Denver
- 84 shared
Fernando J. Martínez
Cornell University
- 77 shared
Richard C. Boucher
University of North Carolina at Chapel Hill
- 77 shared
Wanda K. O’Neal
University of North Carolina at Chapel Hill
- 76 shared
R. Graham Barr
Columbia University Irving Medical Center
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