Expression of colony-stimulating factor 1 and interleukin-34 in gingival tissue and gingival fibroblasts from periodontitis patients and controls
JOURNAL OF PERIODONTOLOGY
Authors: Clark, Reuben; Zwicker, Stephanie; Bureik, Daniela; Johannsen, Gunnar; Bostrom, Elisabeth A.
Abstract
Background Colony-stimulating factor 1 (CSF-1) and interleukin (IL)-34 are important for the functions of myeloid lineage cells and are involved in several chronic inflammatory conditions associated with tissue degeneration. The aim of this study is to evaluate the expression of CSF-1 and IL-34 in gingival tissue and gingival fibroblasts (GF) from patients with periodontitis and controls. Methods Gingival biopsies were obtained from 19 periodontitis patients and 15 controls. Expression of CSF-1 and IL-34 in gingival tissue was assessed by western blot and localization by immunohistochemistry. Expression of CSF1 and IL34 mRNA in GF was analyzed by real-time polymerase chain reaction and protein expression visualized by immunofluorescence stainings. CSF-1 and IL-34 secretion from GF was evaluated in response to tumor necrosis factor-alpha (TNF-alpha), IL-1 beta, Escherichia coli lipopolysaccharide (Ec-LPS) and Porphyromonas gingivalis lipopolysaccharide (Pg-LPS) stimulation, using enzyme-linked immunosorbent assays. Results CSF-1 was increased in gingival tissue from periodontitis patients compared with controls (P < 0.05) whereas IL-34 expression was similar. In GF from a non-periodontitis donor, stimulation with either TNF-alpha, IL-1 beta, Ec-LPS, or Pg-LPS, increased the secretion of CSF-1 (P < 0.05) and Ec-LPS stimulation increased IL-34 (P < 0.05). CSF-1 and IL-34 were expressed and secreted constitutively from GF, with comparable levels in GF from periodontitis patients and controls. Inflammatory stimuli increased the secretion of CSF-1 and IL-34 with comparable levels measured from GF from periodontitis patients and controls (P < 0.05). Conclusion The expression of CSF-1 and IL-34 in gingival tissue and fibroblasts suggests involvement in myeloid cell functions during periodontal inflammation.
Human Interleukin-34 facilitates microglia-like cell differentiation and persistent HIV-1 infection in humanized mice
MOLECULAR NEURODEGENERATION
Authors: Mathews, Saumi; Woods, Amanda Branch; Katano, Ikumi; Makarov, Edward; Thomas, Midhun B.; Gendelman, Howard E.; Poluektova, Larisa Y.; Ito, Mamoru; Gorantla, Santhi
Abstract
BackgroundMicroglia are the principal innate immune defense cells of the centeral nervous system (CNS) and the target of the human immunodeficiency virus type one (HIV-1). A complete understanding of human microglial biology and function requires the cell's presence in a brain microenvironment. Lack of relevant animal models thus far has also precluded studies of HIV-1 infection. Productive viral infection in brain occurs only in human myeloid linage microglia and perivascular macrophages and requires cells present throughout the brain. Once infected, however, microglia become immune competent serving as sources of cellular neurotoxic factors leading to disrupted brain homeostasis and neurodegeneration.MethodsHerein, we created a humanized bone-marrow chimera producing human microglia like cells in NOD.Cg-Prkdc(scid)Il2rg(tm1Sug)Tg(CMV-IL34)1/Jic mice. Newborn mice were engrafted intrahepatically with umbilical cord blood derived CD34+ hematopoietic stem progenitor cells (HSPC). After 3 months of stable engraftment, animals were infected with HIV-1(ADA), a myeloid-specific tropic viral isolate. Virologic, immune and brain immunohistology were performed on blood, peripheral lymphoid tissues, and brain.ResultsHuman interleukin-34 under the control of the cytomegalovirus promoter inserted in NSG mouse strain drove brain reconstitution of HSPC derived peripheral macrophages into microglial-like cells. These human cells expressed canonical human microglial cell markers that included CD14, CD68, CD163, CD11b, ITGB2, CX3CR1, CSFR1, TREM2 and P2RY12. Prior restriction to HIV-1 infection in the rodent brain rested on an inability to reconstitute human microglia. Thus, the natural emergence of these cells from ingressed peripheral macrophages to the brain could allow, for the first time, the study of a CNS viral reservoir. To this end we monitored HIV-1 infection in a rodent brain. Viral RNA and HIV-1p24 antigens were readily observed in infected brain tissues. Deep RNA sequencing of these infected mice and differential expression analysis revealed human-specific molecular signatures representative of antiviral and neuroinflammatory responses.ConclusionsThis humanized microglia mouse reflected human HIV-1 infection in its known principal reservoir and showed the development of disease-specific innate immune inflammatory and neurotoxic responses mirroring what can occur in an infected human brain.