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Published in: Journal of Neuroinflammation 1/2015

Open Access 01-12-2015 | Research

Differences in the distribution, phenotype and gene expression of subretinal microglia/macrophages in C57BL/6N (Crb1rd8/rd8) versus C57BL6/J (Crb1wt/wt) mice

Authors: Bogale Aredo, Kaiyan Zhang, Xiao Chen, Cynthia Xin-Zhao Wang, Tao Li, Rafael L Ufret-Vincenty

Published in: Journal of Neuroinflammation | Issue 1/2015

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Abstract

Background

Microglia/macrophages (MG/MΦ) are found in the subretinal space in both mice and humans. Our goal was to study the spatial and temporal distribution, the phenotype, and gene expression of subretinal MG/MΦ in mice with normal retinas and compare them to mice with known retinal pathology.

Methods

We studied C57BL/6 mice with (C57BL/6N), or without (C57BL/6J) the rd8 mutation in the Crb1 gene (which, in the presence of yet unidentified permissive/modifying genes, leads to a retinal degeneration), and documented their fundus appearance and the change with aging. Immunostaining of retinal pigment epithelium (RPE) flat mounts was done for 1) Ionized calcium binding adaptor (Iba)-1, 2) FcγIII/II Receptor (CD16/CD32, abbreviated as CD16), and 3) Macrophage mannose receptor (MMR). Reverse-transcription quantitative PCR (RT-qPCR) was done for genes involved in oxidative stress, complement activation and inflammation.

Results

The number of yellow fundus spots correlated highly with subretinal Iba-1+ cells. The total number of subretinal MG/MΦ increased with age in the rd8 mutant mice, but not in the wild-type (WT) mice. There was a centripetal shift in the distribution of the subretinal MG/MΦ with age. Old rd8 mutant mice had a greater number of CD16+ MG/MΦ. CD16+ cells had morphological signs of activation, and this was most prominent in old rd8 mutant mice (P <1×10−8 versus old WT mice). Subretinal MG/MΦ in rd8 mutant mice also expressed iNOS and MHC-II, and had ultrastructural signs of activation. Finally, rd8 mutant mouse RPE/ MG/MΦ RNA isolates showed an upregulation of Ccl2, CFB, C3, NF-kβ, CD200R and TNF-alpha. The retinas of rd8 mutant mice showed upregulation of HO-1, C1q, C4, and Nrf-2.

Conclusions

When compared to C57BL/6J mice, C57BL/6N mice demonstrate increased accumulation of subretinal MG/MΦ, displaying phenotypical, morphological, and gene-expression characteristics consistent with a pro-inflammatory shift. These changes become more prominent with aging and are likely due to the combination of the rd8 mutation and yet unidentified permissive/modulatory genes in the C57BL/6N mice. In contrast, aging leads to a scavenging phenotype in the C57BL/6J subretinal microglia/macrophages.
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Literature
1.
2.
go back to reference Ridolfi E, Barone C, Scarpini E, Galimberti D. The role of the innate immune system in Alzheimer’s disease and frontotemporal lobar degeneration: an eye on microglia. Clin Dev Immunol. 2013;2013:939786.PubMedCentralPubMedCrossRef Ridolfi E, Barone C, Scarpini E, Galimberti D. The role of the innate immune system in Alzheimer’s disease and frontotemporal lobar degeneration: an eye on microglia. Clin Dev Immunol. 2013;2013:939786.PubMedCentralPubMedCrossRef
3.
go back to reference Li Y, Liu L, Liu D, Woodward S, Barger SW, Mrak RE, et al. Microglial activation by uptake of fDNA via a scavenger receptor. J Neuroimmunol. 2004;147:50–5.PubMedCentralPubMedCrossRef Li Y, Liu L, Liu D, Woodward S, Barger SW, Mrak RE, et al. Microglial activation by uptake of fDNA via a scavenger receptor. J Neuroimmunol. 2004;147:50–5.PubMedCentralPubMedCrossRef
4.
go back to reference Penfold PL, Killingsworth MC, Sarks SH. Senile macular degeneration. The involvement of giant cells in atrophy of the retinal pigment epithelium. Invest Ophthalmol Vis Sci. 1986;27:364–71.PubMed Penfold PL, Killingsworth MC, Sarks SH. Senile macular degeneration. The involvement of giant cells in atrophy of the retinal pigment epithelium. Invest Ophthalmol Vis Sci. 1986;27:364–71.PubMed
5.
go back to reference Penfold PL, Killingsworth MC, Sarks SH. Senile macular degeneration: the involvement of immunocompetent cells. Graefes Arch Clin Exp Ophthalmol. 1985;223:69–76.PubMedCrossRef Penfold PL, Killingsworth MC, Sarks SH. Senile macular degeneration: the involvement of immunocompetent cells. Graefes Arch Clin Exp Ophthalmol. 1985;223:69–76.PubMedCrossRef
6.
go back to reference Löffler KU, Lee WR. Basal linear deposit in the human macula. Graefes Arch Clin Exp Ophthalmol. 1986;224:493–501.PubMedCrossRef Löffler KU, Lee WR. Basal linear deposit in the human macula. Graefes Arch Clin Exp Ophthalmol. 1986;224:493–501.PubMedCrossRef
7.
go back to reference Grossniklaus HE, Miskala PH, Green WR, Bressler SB, Hawkins BS, Toth C, et al. Histopathologic and ultrastructural features of surgically excised subfoveal choroidal neovascular lesions: submacular surgery trials report no. 7. Arch Ophthalmol. 2005;123:914–21.PubMedCrossRef Grossniklaus HE, Miskala PH, Green WR, Bressler SB, Hawkins BS, Toth C, et al. Histopathologic and ultrastructural features of surgically excised subfoveal choroidal neovascular lesions: submacular surgery trials report no. 7. Arch Ophthalmol. 2005;123:914–21.PubMedCrossRef
8.
go back to reference Gupta N, Brown KE, Milam AH. Activated microglia in human retinitis pigmentosa, late-onset retinal degeneration, and age-related macular degeneration. Exp Eye Res. 2003;76:463–71.PubMedCrossRef Gupta N, Brown KE, Milam AH. Activated microglia in human retinitis pigmentosa, late-onset retinal degeneration, and age-related macular degeneration. Exp Eye Res. 2003;76:463–71.PubMedCrossRef
9.
go back to reference Combadière C, Feumi C, Raoul W, Keller N, Rodéro M, Pézard A, et al. CX3CR1-dependent subretinal microglia cell accumulation is associated with cardinal features of age-related macular degeneration. J Clin Invest. 2007;117:2920–8.PubMedCentralPubMedCrossRef Combadière C, Feumi C, Raoul W, Keller N, Rodéro M, Pézard A, et al. CX3CR1-dependent subretinal microglia cell accumulation is associated with cardinal features of age-related macular degeneration. J Clin Invest. 2007;117:2920–8.PubMedCentralPubMedCrossRef
10.
go back to reference McMenamin PG, Loeffler KU. Cells resembling intraventricular macrophages are present in the subretinal space of human foetal eyes. Anat Rec. 1990;227:245–53.PubMedCrossRef McMenamin PG, Loeffler KU. Cells resembling intraventricular macrophages are present in the subretinal space of human foetal eyes. Anat Rec. 1990;227:245–53.PubMedCrossRef
11.
go back to reference Ng TF, Streilein JW. Light-induced migration of retinal microglia into the subretinal space. Invest Ophthalmol Vis Sci. 2001;42:3301–10.PubMed Ng TF, Streilein JW. Light-induced migration of retinal microglia into the subretinal space. Invest Ophthalmol Vis Sci. 2001;42:3301–10.PubMed
12.
go back to reference Xu H, Chen M, Mayer EJ, Forrester JV, Dick AD. Turnover of resident retinal microglia in the normal adult mouse. Glia. 2007;55:1189–98.PubMedCrossRef Xu H, Chen M, Mayer EJ, Forrester JV, Dick AD. Turnover of resident retinal microglia in the normal adult mouse. Glia. 2007;55:1189–98.PubMedCrossRef
13.
go back to reference Luhmann UF, Robbie S, Munro PM, Barker SE, Duran Y, Luong V, et al. The drusenlike phenotype in aging Ccl2-knockout mice is caused by an accelerated accumulation of swollen autofluorescent subretinal macrophages. Invest Ophthalmol Vis Sci. 2009;50:5934–43.PubMedCentralPubMedCrossRef Luhmann UF, Robbie S, Munro PM, Barker SE, Duran Y, Luong V, et al. The drusenlike phenotype in aging Ccl2-knockout mice is caused by an accelerated accumulation of swollen autofluorescent subretinal macrophages. Invest Ophthalmol Vis Sci. 2009;50:5934–43.PubMedCentralPubMedCrossRef
14.
go back to reference Chinnery HR, McLenachan S, Humphries T, Kezic JM, Chen X, Ruitenberg MJ, et al. Accumulation of murine subretinal macrophages: effects of age, pigmentation and CX(3)CR1. Neurobiol Aging. 2012;33:1769–76.PubMedCrossRef Chinnery HR, McLenachan S, Humphries T, Kezic JM, Chen X, Ruitenberg MJ, et al. Accumulation of murine subretinal macrophages: effects of age, pigmentation and CX(3)CR1. Neurobiol Aging. 2012;33:1769–76.PubMedCrossRef
15.
go back to reference Joly S, Francke M, Ulbricht E, Beck S, Seeliger M, Hirrlinger P, et al. Cooperative phagocytes: resident microglia and bone marrow immigrants remove dead photoreceptors in retinal lesions. Am J Pathol. 2009;174:2310–23.PubMedCentralPubMedCrossRef Joly S, Francke M, Ulbricht E, Beck S, Seeliger M, Hirrlinger P, et al. Cooperative phagocytes: resident microglia and bone marrow immigrants remove dead photoreceptors in retinal lesions. Am J Pathol. 2009;174:2310–23.PubMedCentralPubMedCrossRef
16.
go back to reference Eter N, Engel DR, Meyer L, Helb HM, Roth F, Maurer J, et al. In vivo visualization of dendritic cells, macrophages, and microglial cells responding to laser-induced damage in the fundus of the eye. Invest Ophthalmol Vis Sci. 2008;49:3649–58.PubMedCrossRef Eter N, Engel DR, Meyer L, Helb HM, Roth F, Maurer J, et al. In vivo visualization of dendritic cells, macrophages, and microglial cells responding to laser-induced damage in the fundus of the eye. Invest Ophthalmol Vis Sci. 2008;49:3649–58.PubMedCrossRef
17.
18.
go back to reference Hughes EH, Schlichtenbrede FC, Murphy CC, Sarra GM, Luthert PJ, Ali RR, et al. Generation of activated sialoadhesin-positive microglia during retinal degeneration. Invest Ophthalmol Vis Sci. 2003;44:2229–34.PubMedCrossRef Hughes EH, Schlichtenbrede FC, Murphy CC, Sarra GM, Luthert PJ, Ali RR, et al. Generation of activated sialoadhesin-positive microglia during retinal degeneration. Invest Ophthalmol Vis Sci. 2003;44:2229–34.PubMedCrossRef
19.
go back to reference Raoul W, Feumi C, Keller N, Lavalette S, Houssier M, Behar-Cohen F, et al. Lipid-bloated subretinal microglial cells are at the origin of drusen appearance in CX3CR1-deficient mice. Ophthalmic Res. 2008;40:115–9.PubMedCentralPubMedCrossRef Raoul W, Feumi C, Keller N, Lavalette S, Houssier M, Behar-Cohen F, et al. Lipid-bloated subretinal microglial cells are at the origin of drusen appearance in CX3CR1-deficient mice. Ophthalmic Res. 2008;40:115–9.PubMedCentralPubMedCrossRef
20.
go back to reference Tuo J, Bojanowski CM, Zhou M, Shen D, Ross RJ, Rosenberg KI, et al. Murine ccl2/cx3cr1 deficiency results in retinal lesions mimicking human age-related macular degeneration. Invest Ophthalmol Vis Sci. 2007;48:3827–36.PubMedCentralPubMedCrossRef Tuo J, Bojanowski CM, Zhou M, Shen D, Ross RJ, Rosenberg KI, et al. Murine ccl2/cx3cr1 deficiency results in retinal lesions mimicking human age-related macular degeneration. Invest Ophthalmol Vis Sci. 2007;48:3827–36.PubMedCentralPubMedCrossRef
21.
go back to reference Ufret-Vincenty RL, Aredo B, Liu X, McMahon A, Chen PW, Sun H, et al. Transgenic mice expressing variants of complement factor H develop AMD-like retinal findings. Invest Ophthalmol Vis Sci. 2010;51:5878–87.PubMedCrossRef Ufret-Vincenty RL, Aredo B, Liu X, McMahon A, Chen PW, Sun H, et al. Transgenic mice expressing variants of complement factor H develop AMD-like retinal findings. Invest Ophthalmol Vis Sci. 2010;51:5878–87.PubMedCrossRef
22.
go back to reference Mehalow AK, Kameya S, Smith RS, Hawes NL, Denegre JM, Young JA, et al. CRB1 is essential for external limiting membrane integrity and photoreceptor morphogenesis in the mammalian retina. Hum Mol Genet. 2003;12:2179–89.PubMedCrossRef Mehalow AK, Kameya S, Smith RS, Hawes NL, Denegre JM, Young JA, et al. CRB1 is essential for external limiting membrane integrity and photoreceptor morphogenesis in the mammalian retina. Hum Mol Genet. 2003;12:2179–89.PubMedCrossRef
23.
go back to reference Mattapallil MJ, Wawrousek EF, Chan CC, Zhao H, Roychoudhury J, Ferguson TA, et al. The Rd8 mutation of the Crb1 gene is present in vendor lines of C57BL/6N mice and embryonic stem cells, and confounds ocular induced mutant phenotypes. Invest Ophthalmol Vis Sci. 2012;53:2921–7.PubMedCentralPubMedCrossRef Mattapallil MJ, Wawrousek EF, Chan CC, Zhao H, Roychoudhury J, Ferguson TA, et al. The Rd8 mutation of the Crb1 gene is present in vendor lines of C57BL/6N mice and embryonic stem cells, and confounds ocular induced mutant phenotypes. Invest Ophthalmol Vis Sci. 2012;53:2921–7.PubMedCentralPubMedCrossRef
24.
go back to reference Luhmann UF, Lange CA, Robbie S, Munro PM, Cowing JA, Armer HE, et al. Differential modulation of retinal degeneration by Ccl2 and Cx3cr1 chemokine signalling. PLoS One. 2012;7:e35551.PubMedCentralPubMedCrossRef Luhmann UF, Lange CA, Robbie S, Munro PM, Cowing JA, Armer HE, et al. Differential modulation of retinal degeneration by Ccl2 and Cx3cr1 chemokine signalling. PLoS One. 2012;7:e35551.PubMedCentralPubMedCrossRef
25.
go back to reference Luhmann UF, Carvalho LS, Holthaus SM, Cowing JA, Greenaway S, Chu CJ, et al. The severity of retinal pathology in homozygous Crb1rd8/rd8 mice is dependent on additional genetic factors. Hum Mol Genet. 2015;24:128–41.PubMedCentralPubMedCrossRef Luhmann UF, Carvalho LS, Holthaus SM, Cowing JA, Greenaway S, Chu CJ, et al. The severity of retinal pathology in homozygous Crb1rd8/rd8 mice is dependent on additional genetic factors. Hum Mol Genet. 2015;24:128–41.PubMedCentralPubMedCrossRef
26.
go back to reference Luhmann UF, Carvalho LS, Robbie SJ, Cowing JA, Duran Y, Munro PM, et al. Ccl2, Cx3r1 and Ccl2/Cx3cr1 chemokine deficiencies are not sufficient to cause age-related retinal degeneration. Exp Eye Res. 2013;107:80–7.PubMedCentralPubMedCrossRef Luhmann UF, Carvalho LS, Robbie SJ, Cowing JA, Duran Y, Munro PM, et al. Ccl2, Cx3r1 and Ccl2/Cx3cr1 chemokine deficiencies are not sufficient to cause age-related retinal degeneration. Exp Eye Res. 2013;107:80–7.PubMedCentralPubMedCrossRef
27.
go back to reference Raoul W, Auvynet C, Camelo S, Guillonneau X, Feumi C, Combadière C, et al. CCL2/CCR2 and CX3CL1/CX3CR1 chemokine axes and their possible involvement in age-related macular degeneration. J Neuroinflammation. 2010;7:87.PubMedCentralPubMedCrossRef Raoul W, Auvynet C, Camelo S, Guillonneau X, Feumi C, Combadière C, et al. CCL2/CCR2 and CX3CL1/CX3CR1 chemokine axes and their possible involvement in age-related macular degeneration. J Neuroinflammation. 2010;7:87.PubMedCentralPubMedCrossRef
28.
go back to reference Mata NL, Weng J, Travis GH. Biosynthesis of a major lipofuscin fluorophore in mice and humans with ABCR-mediated retinal and macular degeneration. Proc Natl Acad Sci U S A. 2000;97:7154–9.PubMedCentralPubMedCrossRef Mata NL, Weng J, Travis GH. Biosynthesis of a major lipofuscin fluorophore in mice and humans with ABCR-mediated retinal and macular degeneration. Proc Natl Acad Sci U S A. 2000;97:7154–9.PubMedCentralPubMedCrossRef
29.
go back to reference Charbel Issa P, Singh MS, Lipinski DM, Chong NV, Delori FC, Barnard AR, et al. Optimization of in vivo confocal autofluorescence imaging of the ocular fundus in mice and its application to models of human retinal degeneration. Invest Ophthalmol Vis Sci. 2012;53:1066–75.PubMedCrossRef Charbel Issa P, Singh MS, Lipinski DM, Chong NV, Delori FC, Barnard AR, et al. Optimization of in vivo confocal autofluorescence imaging of the ocular fundus in mice and its application to models of human retinal degeneration. Invest Ophthalmol Vis Sci. 2012;53:1066–75.PubMedCrossRef
30.
go back to reference Terada N, Ohno N, Li Z, Fujii Y, Baba T, Ohno S. Application of in vivo cryotechnique to the examination of cells and tissues in living animal organs. Histol Histopathol. 2006;21:265–72.PubMed Terada N, Ohno N, Li Z, Fujii Y, Baba T, Ohno S. Application of in vivo cryotechnique to the examination of cells and tissues in living animal organs. Histol Histopathol. 2006;21:265–72.PubMed
31.
go back to reference Ohno N, Terada N, Murata S-I, Katoh R, Ohno S. Application of cryotechniques with freeze-substitution for the immunohistochemical demonstration of intranuclear pCREB and chromosome territory. J Histochem Cytochem. 2005;53:55–62.PubMedCrossRef Ohno N, Terada N, Murata S-I, Katoh R, Ohno S. Application of cryotechniques with freeze-substitution for the immunohistochemical demonstration of intranuclear pCREB and chromosome territory. J Histochem Cytochem. 2005;53:55–62.PubMedCrossRef
32.
go back to reference Terada N, Ohno S. Immunohistochemical appilication of crytechniques to native morphology of cells and tissues. Acta Histochem Cytochem. 2004;37:339–45.CrossRef Terada N, Ohno S. Immunohistochemical appilication of crytechniques to native morphology of cells and tissues. Acta Histochem Cytochem. 2004;37:339–45.CrossRef
34.
go back to reference McDonald KL, Morphew M, Verkade P, Muller-Reichert T. Recent Advances in High-Pressure Freezing. In: Kuo J, editor. Methods in Molecular Biology, Volume 369: Electron Microscopy: Methods and Protocols. 2nd ed. Totowa, NJ: Humana Press inc; 2007. p. 143–73. McDonald KL, Morphew M, Verkade P, Muller-Reichert T. Recent Advances in High-Pressure Freezing. In: Kuo J, editor. Methods in Molecular Biology, Volume 369: Electron Microscopy: Methods and Protocols. 2nd ed. Totowa, NJ: Humana Press inc; 2007. p. 143–73.
35.
go back to reference Xin-Zhao Wang C, Zhang K, Aredo B, Lu H, Ufret-Vincenty RL. Novel method for the rapid isolation of RPE cells specifically for RNA extraction and analysis. Exp Eye Res. 2012;102:1–9.PubMedCrossRef Xin-Zhao Wang C, Zhang K, Aredo B, Lu H, Ufret-Vincenty RL. Novel method for the rapid isolation of RPE cells specifically for RNA extraction and analysis. Exp Eye Res. 2012;102:1–9.PubMedCrossRef
36.
37.
go back to reference Chen X, Kezic J, Bernard C, McMenamin PG. Rd8 mutation in the Crb1 gene of CD11c-eYFP transgenic reporter mice results in abnormal numbers of CD11c-positive cells in the retina. J Neuropathol Exp Neurol. 2013;72:782–90.PubMedCrossRef Chen X, Kezic J, Bernard C, McMenamin PG. Rd8 mutation in the Crb1 gene of CD11c-eYFP transgenic reporter mice results in abnormal numbers of CD11c-positive cells in the retina. J Neuropathol Exp Neurol. 2013;72:782–90.PubMedCrossRef
38.
go back to reference Low BE, Krebs MP, Joung JK, Tsai SQ, Nishina PM, Wiles MV. Correction of the Crb1rd8 allele and retinal phenotype in C57BL/6N mice via TALEN-mediated homology-directed repair. Invest Ophthalmol Vis Sci. 2014;55:387–95.PubMedCentralPubMedCrossRef Low BE, Krebs MP, Joung JK, Tsai SQ, Nishina PM, Wiles MV. Correction of the Crb1rd8 allele and retinal phenotype in C57BL/6N mice via TALEN-mediated homology-directed repair. Invest Ophthalmol Vis Sci. 2014;55:387–95.PubMedCentralPubMedCrossRef
39.
go back to reference Kezic J, McMenamin PG. Differential turnover rates of monocyte-derived cells in varied ocular tissue microenvironments. J Leukoc Biol. 2008;84:721–9.PubMedCrossRef Kezic J, McMenamin PG. Differential turnover rates of monocyte-derived cells in varied ocular tissue microenvironments. J Leukoc Biol. 2008;84:721–9.PubMedCrossRef
40.
go back to reference Kaczmarek M, Nowicka A, Kozłowska M, Zurawski J, Batura-Gabryel H, Sikora J. Evaluation of the phenotype pattern of macrophages isolated from malignant and non-malignant pleural effusions. Tumour Biol. 2011;32:1123–32.PubMedCrossRef Kaczmarek M, Nowicka A, Kozłowska M, Zurawski J, Batura-Gabryel H, Sikora J. Evaluation of the phenotype pattern of macrophages isolated from malignant and non-malignant pleural effusions. Tumour Biol. 2011;32:1123–32.PubMedCrossRef
41.
go back to reference Kigerl KA, Gensel JC, Ankeny DP, Alexander JK, Donnelly DJ, Popovich PG. Identification of two distinct macrophage subsets with divergent effects causing either neurotoxicity or regeneration in the injured mouse spinal cord. J Neurosci. 2009;29:13435–44.PubMedCentralPubMedCrossRef Kigerl KA, Gensel JC, Ankeny DP, Alexander JK, Donnelly DJ, Popovich PG. Identification of two distinct macrophage subsets with divergent effects causing either neurotoxicity or regeneration in the injured mouse spinal cord. J Neurosci. 2009;29:13435–44.PubMedCentralPubMedCrossRef
42.
go back to reference Li K, Xu W, Guo Q, Jiang Z, Wang P, Yue Y, et al. Differential macrophage polarization in male and female BALB/c mice infected with coxsackievirus B3 defines susceptibility to viral myocarditis. Circ Res. 2009;105:353–64.PubMedCrossRef Li K, Xu W, Guo Q, Jiang Z, Wang P, Yue Y, et al. Differential macrophage polarization in male and female BALB/c mice infected with coxsackievirus B3 defines susceptibility to viral myocarditis. Circ Res. 2009;105:353–64.PubMedCrossRef
43.
go back to reference Ziegler-Heitbrock L. The CD14+ CD16+ blood monocytes: their role in infection and inflammation. J Leukoc Biol. 2007;81:584–92.PubMedCrossRef Ziegler-Heitbrock L. The CD14+ CD16+ blood monocytes: their role in infection and inflammation. J Leukoc Biol. 2007;81:584–92.PubMedCrossRef
44.
go back to reference Buttari B, Segoni L, Profumo E, D’Arcangelo D, Rossi S, Facchiano F, et al. 7-Oxo-cholesterol potentiates pro-inflammatory signaling in human M1 and M2 macrophages. Biochem Pharmacol. 2013;86:130–7.PubMedCrossRef Buttari B, Segoni L, Profumo E, D’Arcangelo D, Rossi S, Facchiano F, et al. 7-Oxo-cholesterol potentiates pro-inflammatory signaling in human M1 and M2 macrophages. Biochem Pharmacol. 2013;86:130–7.PubMedCrossRef
45.
46.
go back to reference Murinello S, Mullins RF, Lotery AJ, Perry VH, Teeling JL. Fcγ receptor upregulation is associated with immune complex inflammation in the mouse retina and early age-related macular degeneration. Invest Ophthalmol Vis Sci. 2014;55:247–58.PubMedCentralPubMedCrossRef Murinello S, Mullins RF, Lotery AJ, Perry VH, Teeling JL. Fcγ receptor upregulation is associated with immune complex inflammation in the mouse retina and early age-related macular degeneration. Invest Ophthalmol Vis Sci. 2014;55:247–58.PubMedCentralPubMedCrossRef
47.
go back to reference Liu C, Li Y, Yu J, Feng L, Hou S, Liu Y, et al. Targeting the shift from M1 to M2 macrophages in experimental autoimmune encephalomyelitis mice treated with fasudil. PLoS One. 2013;8:e54841.PubMedCentralPubMedCrossRef Liu C, Li Y, Yu J, Feng L, Hou S, Liu Y, et al. Targeting the shift from M1 to M2 macrophages in experimental autoimmune encephalomyelitis mice treated with fasudil. PLoS One. 2013;8:e54841.PubMedCentralPubMedCrossRef
48.
go back to reference Guerrero AR, Uchida K, Nakajima H, Watanabe S, Nakamura M, Johnosn WE, et al. Blockade of interleukin-6 signaling inhibits the classic pathway and promotes an alternative pathway of macrophage activation after spinal cord injury in mice. J Neuroinflammation. 2012;9:40.PubMedCentralPubMedCrossRef Guerrero AR, Uchida K, Nakajima H, Watanabe S, Nakamura M, Johnosn WE, et al. Blockade of interleukin-6 signaling inhibits the classic pathway and promotes an alternative pathway of macrophage activation after spinal cord injury in mice. J Neuroinflammation. 2012;9:40.PubMedCentralPubMedCrossRef
49.
go back to reference Hirai T, Uchida K, Nakajima H, Guerrero AR, Takeura N, Watanabe S, et al. The prevalence and phenotype of activated microglia/macrophages within the spinal cord of the hyperostotic mouse (twy/twy) changes in response to chronic progressive spinal cord compression: implications for human cervical compressive myelopathy. PLoS One. 2013;8:e64528.PubMedCentralPubMedCrossRef Hirai T, Uchida K, Nakajima H, Guerrero AR, Takeura N, Watanabe S, et al. The prevalence and phenotype of activated microglia/macrophages within the spinal cord of the hyperostotic mouse (twy/twy) changes in response to chronic progressive spinal cord compression: implications for human cervical compressive myelopathy. PLoS One. 2013;8:e64528.PubMedCentralPubMedCrossRef
50.
go back to reference Anower AK, Shim JA, Choi B, Kwon HJ, Sohn S. The role of classical and alternative macrophages in the immunopathogenesis of herpes simplex virus-induced inflammation in a mouse model. J Dermatol Sci. 2013;73:198–208.PubMedCrossRef Anower AK, Shim JA, Choi B, Kwon HJ, Sohn S. The role of classical and alternative macrophages in the immunopathogenesis of herpes simplex virus-induced inflammation in a mouse model. J Dermatol Sci. 2013;73:198–208.PubMedCrossRef
51.
go back to reference Mantovani A, Sica A, Sozzani S, Allavena P, Vecchi A, Locati M. The chemokine system in diverse forms of macrophage activation and polarization. Trends Immunol. 2004;25:677–86.PubMedCrossRef Mantovani A, Sica A, Sozzani S, Allavena P, Vecchi A, Locati M. The chemokine system in diverse forms of macrophage activation and polarization. Trends Immunol. 2004;25:677–86.PubMedCrossRef
52.
go back to reference Martinez-Pomares L, Wienke D, Stillion R, McKenzie EJ, Arnold JN, Harris J, et al. Carbohydrate-independent recognition of collagens by the macrophage mannose receptor. Eur J Immunol. 2006;36:1074–82.PubMedCrossRef Martinez-Pomares L, Wienke D, Stillion R, McKenzie EJ, Arnold JN, Harris J, et al. Carbohydrate-independent recognition of collagens by the macrophage mannose receptor. Eur J Immunol. 2006;36:1074–82.PubMedCrossRef
53.
go back to reference Martinez FO, Sica A, Mantovani A, Locati M. Macrophage activation and polarization. Front Biosci. 2008;13:453–61.PubMedCrossRef Martinez FO, Sica A, Mantovani A, Locati M. Macrophage activation and polarization. Front Biosci. 2008;13:453–61.PubMedCrossRef
54.
go back to reference Gordon S, Martinez FO. Alternative activation of macrophages: mechanism and functions. Immunity. 2010;32:593–604.PubMedCrossRef Gordon S, Martinez FO. Alternative activation of macrophages: mechanism and functions. Immunity. 2010;32:593–604.PubMedCrossRef
55.
go back to reference Gustafsson C, Mjösberg J, Matussek A, Geffers R, Matthiesen L, Berg G, et al. Gene expression profiling of human decidual macrophages: evidence for immunosuppressive phenotype. PLoS One. 2008;3:e2078.PubMedCentralPubMedCrossRef Gustafsson C, Mjösberg J, Matussek A, Geffers R, Matthiesen L, Berg G, et al. Gene expression profiling of human decidual macrophages: evidence for immunosuppressive phenotype. PLoS One. 2008;3:e2078.PubMedCentralPubMedCrossRef
56.
go back to reference Dace DS, Apte RS. Effect of senescence on macrophage polarization and angiogenesis. Rejuvenation Res. 2008;11:177–85.PubMedCrossRef Dace DS, Apte RS. Effect of senescence on macrophage polarization and angiogenesis. Rejuvenation Res. 2008;11:177–85.PubMedCrossRef
57.
go back to reference Ambati J, Anand A, Fernandez S, Sakurai E, Lynn BC, Kuziel WA, et al. An animal model of age-related macular degeneration in senescent Ccl-2- or Ccr-2-deficient mice. Nat Med. 2003;9:1390–7.PubMedCrossRef Ambati J, Anand A, Fernandez S, Sakurai E, Lynn BC, Kuziel WA, et al. An animal model of age-related macular degeneration in senescent Ccl-2- or Ccr-2-deficient mice. Nat Med. 2003;9:1390–7.PubMedCrossRef
58.
go back to reference Apte RS, Richter J, Herndon J, Ferguson TA. Macrophages inhibit neovascularization in a murine model of age-related macular degeneration. PLoS Med. 2006;3:e310.PubMedCentralPubMedCrossRef Apte RS, Richter J, Herndon J, Ferguson TA. Macrophages inhibit neovascularization in a murine model of age-related macular degeneration. PLoS Med. 2006;3:e310.PubMedCentralPubMedCrossRef
59.
go back to reference Kelly J, Ali Khan A, Yin J, Ferguson TA, Apte RS. Senescence regulates macrophage activation and angiogenic fate at sites of tissue injury in mice. J Clin Invest. 2007;117:3421–6.PubMedCentralPubMedCrossRef Kelly J, Ali Khan A, Yin J, Ferguson TA, Apte RS. Senescence regulates macrophage activation and angiogenic fate at sites of tissue injury in mice. J Clin Invest. 2007;117:3421–6.PubMedCentralPubMedCrossRef
60.
go back to reference Espinosa-Heidmann DG, Suner IJ, Hernandez EP, Monroy D, Csaky KG, Cousins SW. Macrophage depletion diminishes lesion size and severity in experimental choroidal neovascularization. Invest Ophthalmol Vis Sci. 2003;44:3586–92.PubMedCrossRef Espinosa-Heidmann DG, Suner IJ, Hernandez EP, Monroy D, Csaky KG, Cousins SW. Macrophage depletion diminishes lesion size and severity in experimental choroidal neovascularization. Invest Ophthalmol Vis Sci. 2003;44:3586–92.PubMedCrossRef
61.
go back to reference Cousins SW, Espinosa-Heidmann DG, Csaky KG. Monocyte activation in patients with age-related macular degeneration: a biomarker of risk for choroidal neovascularization? Arch Ophthalmol. 2004;122:1013–8.PubMedCrossRef Cousins SW, Espinosa-Heidmann DG, Csaky KG. Monocyte activation in patients with age-related macular degeneration: a biomarker of risk for choroidal neovascularization? Arch Ophthalmol. 2004;122:1013–8.PubMedCrossRef
62.
go back to reference Jager MJ, Ly LV, El Filali M, Madigan MC. Macrophages in uveal melanoma and in experimental ocular tumor models: friends or foes? Prog Retin Eye Res. 2011;30:129–46.PubMedCrossRef Jager MJ, Ly LV, El Filali M, Madigan MC. Macrophages in uveal melanoma and in experimental ocular tumor models: friends or foes? Prog Retin Eye Res. 2011;30:129–46.PubMedCrossRef
63.
go back to reference Cousins SW, Espinosa-Heidmann DG, Alexandridou A, Sall J, Dubovy S, Csaky K. The role of aging, high fat diet and blue light exposure in an experimental mouse model for basal laminar deposit formation. Exp Eye Res. 2002;75:543–53.PubMedCrossRef Cousins SW, Espinosa-Heidmann DG, Alexandridou A, Sall J, Dubovy S, Csaky K. The role of aging, high fat diet and blue light exposure in an experimental mouse model for basal laminar deposit formation. Exp Eye Res. 2002;75:543–53.PubMedCrossRef
64.
go back to reference Weikel KA, Fitzgerald P, Shang F, Caceres MA, Bian Q, Handa JT, et al. Natural history of age-related retinal lesions that precede AMD in mice fed high or low glycemic index diets. Invest Ophthalmol Vis Sci. 2012;53:622–32.PubMedCentralPubMedCrossRef Weikel KA, Fitzgerald P, Shang F, Caceres MA, Bian Q, Handa JT, et al. Natural history of age-related retinal lesions that precede AMD in mice fed high or low glycemic index diets. Invest Ophthalmol Vis Sci. 2012;53:622–32.PubMedCentralPubMedCrossRef
65.
go back to reference Xu H, Chen M, Manivannan A, Lois N, Forrester JV. Age-dependent accumulation of lipofuscin in perivascular and subretinal microglia in experimental mice. Aging Cell. 2008;7:58–68.PubMedCrossRef Xu H, Chen M, Manivannan A, Lois N, Forrester JV. Age-dependent accumulation of lipofuscin in perivascular and subretinal microglia in experimental mice. Aging Cell. 2008;7:58–68.PubMedCrossRef
66.
go back to reference Luo C, Zhao J, Madden A, Chen M. Complement expression in retinal pigment epithelial cells is modulated by activated macrophages. Exp Eye Res. 2013;112:93–101.PubMedCrossRef Luo C, Zhao J, Madden A, Chen M. Complement expression in retinal pigment epithelial cells is modulated by activated macrophages. Exp Eye Res. 2013;112:93–101.PubMedCrossRef
67.
go back to reference Ma W, Cojocaru R, Gotoh N, Gieser L, Villasmil R, Cogliati T, et al. Gene expression changes in aging retinal microglia: relationship to microglial support functions and regulation of activation. Neurobiol Aging. 2013;34:2310–21.PubMedCentralPubMedCrossRef Ma W, Cojocaru R, Gotoh N, Gieser L, Villasmil R, Cogliati T, et al. Gene expression changes in aging retinal microglia: relationship to microglial support functions and regulation of activation. Neurobiol Aging. 2013;34:2310–21.PubMedCentralPubMedCrossRef
68.
go back to reference Wang L, Kondo N, Cano M, Ebrahimi K, Yoshida T, Barnett BP, et al. Nrf2 signaling modulates cigarette smoke-induced complement activation in retinal pigmented epithelial cells. Free Radic Biol Med. 2014;70:155–66.PubMedCrossRef Wang L, Kondo N, Cano M, Ebrahimi K, Yoshida T, Barnett BP, et al. Nrf2 signaling modulates cigarette smoke-induced complement activation in retinal pigmented epithelial cells. Free Radic Biol Med. 2014;70:155–66.PubMedCrossRef
69.
go back to reference Banerjee D, Dick AD. Blocking CD200-CD200 receptor axis augments NOS-2 expression and aggravates experimental autoimmune uveoretinitis in Lewis rats. Ocul Immunol Inflam. 2004;12:115–25.CrossRef Banerjee D, Dick AD. Blocking CD200-CD200 receptor axis augments NOS-2 expression and aggravates experimental autoimmune uveoretinitis in Lewis rats. Ocul Immunol Inflam. 2004;12:115–25.CrossRef
Metadata
Title
Differences in the distribution, phenotype and gene expression of subretinal microglia/macrophages in C57BL/6N (Crb1rd8/rd8) versus C57BL6/J (Crb1wt/wt) mice
Authors
Bogale Aredo
Kaiyan Zhang
Xiao Chen
Cynthia Xin-Zhao Wang
Tao Li
Rafael L Ufret-Vincenty
Publication date
01-12-2015
Publisher
BioMed Central
Published in
Journal of Neuroinflammation / Issue 1/2015
Electronic ISSN: 1742-2094
DOI
https://doi.org/10.1186/s12974-014-0221-4

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