| Literature DB >> 27293321 |
Liam M Ashander1, Binoy Appukuttan1, Yuefang Ma1, Dione Gardner-Stephen1, Justine R Smith1.
Abstract
Targeting the endothelial adhesion molecules that control leukocyte trafficking into a tissue has been explored as a biological therapy for inflammatory diseases. However, these molecules also participate in leukocyte migration for immune surveillance, and inhibiting the physiological level of an adhesion molecule might promote infection or malignancy. We explored the concept of targeting endothelial adhesion molecule transcription during inflammation in a human system. Intercellular adhesion molecule 1 (ICAM-1) mediates leukocyte migration across the retinal endothelium in noninfectious posterior uveitis. We observed an increase in the transcription factor, nuclear factor of kappa light polypeptide gene enhancer in B-cells 1 (NF-κB1), in parallel with ICAM-1, in human retinal endothelial cells treated with tumor necrosis factor-alpha (TNF-α), and identified putative binding sites for NF-κB1 within the ICAM-1 regulatory region. We targeted induced NF-κB1 expression in endothelial cells with small interfering (si)RNA. Knockdown of NF-κB1 significantly decreased cell surface expression of ICAM-1 protein induced by TNF-α but did not reduce constitutive ICAM-1 expression. Consistently, NF-κB1 knockdown significantly reduced leukocyte binding to cell monolayers in the presence of TNF-α but did not impact baseline binding. Findings of this proof-of-concept study indicate that induced transcription of endothelial adhesion molecules might be targeted therapeutically for inflammatory disease in humans.Entities:
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Year: 2016 PMID: 27293321 PMCID: PMC4884830 DOI: 10.1155/2016/7945848
Source DB: PubMed Journal: Mediators Inflamm ISSN: 0962-9351 Impact factor: 4.711
Primer pairs and product sizes for gene transcripts studied in human retinal endothelial cells. References are provided for primer sequences sourced from the literature. For primer pairs designed in-house, products were confirmed by sequencing.
| Gene transcript | Primer pair | Product size (bp) |
|---|---|---|
| NF- | Forward: 5′-CCCAGTGAAGACCACCTCTC-3′ | 132 |
| Reverse: 5′-CTGAGTTTGCGGAAGGATGT-3′ | ||
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| ICAM-1 [ | Forward: 5′-TAAGCCAAGAGGAAGGAGCA-3′ | 282 |
| Reverse: 5′-CATATCATCAAGGGTTGGGG-3′ | ||
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| ICAM-1 | Forward: 5′-GGCCTCAGTCAGTGTGA-3′ | 218 |
| Reverse: 5′-AACCCCATTCAGCGTCA-3′ | ||
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| 18S rRNA | Forward: 5′-GTAACCCGTTGAACCCCATT-3′ | 151 |
| Reverse: 5′-CCATCCAATCGGTAGTAGCG-3′ | ||
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| Cyclophilin A | Forward: 5′-GACCTCTGGAGAGAAAGGATTT-3′ | 355 |
| Reverse: 5′-GGTGATCTTCTTGCTGGTCTT-3′ | ||
NF-κB1 = nuclear factor κ-light-chain-enhancer of activated B-cells 1; ICAM-1 = intercellular adhesion molecule 1; 18S rRNA = 18S ribosomal RNA.
Figure 1Graphs showing relative ICAM-1 transcript expression in human retinal endothelial cell monolayers, following stimulation with TNF-α for 60 minutes or 24 hours, as determined by qRT-PCR using two ICAM-1 primer pairs. Reference gene was 18S rRNA. The same result was obtained when data were normalized to cyclophilin A reference gene. (a) shows the result obtained using ICAM-1 primer pair listed in Table 1 that yields 282 bp product. (b) shows similar result obtained using ICAM-1 primer pair listed in Table 1 that yields 218 bp product. Bars represent mean relative expression, with error bars showing standard error of the mean. n = 5 monolayers/condition. Data were analyzed by two-tailed Student's t-test. Human retinal endothelial RNA samples used for this experiment were used for PCR array profiling study presented in Table 2.
Transcription factors with putative binding sites within the regulatory region of intercellular adhesion molecule 1 (ICAM-1) that increase in human retinal endothelial cells treated with tumor necrosis factor-alpha (TNF-α). For the purposes of this analysis, the ICAM-1 regulatory region was defined as 5000 bp of sequence immediately upstream of the ICAM-1 gene transcription start site and the first 2 introns. The ICAM-1 gene sequence was interrogated in the JASPAR database [21].
| Transcription factor | Induction with TNF- | Number of binding sites | |||
|---|---|---|---|---|---|
| 60 minutes | 24 hours | ||||
| Fold increase |
| Fold increase |
| ||
| ETS1 | 1.65 | <10−5 | 2.15 | <10−5 | 48 |
| EGR1 | 1.36 | <10−5 | 2.31 | <10−5 | 268 |
| JunB | 2.95 | <10−5 | 5.73 | <10−5 | 148 |
| IRF1 | 4.77 | <10−5 | 5.11 | <10−5 | 83 |
| NF- | 1.24 | <10−3 | 2.75 | <10−5 | 25 |
| c-Rel | 1.55 | <10−3 | 1.38 | <10−4 | 101 |
| TGIF1 | 1.31 | <10−4 | 1.70 | <10−5 | 6 |
ETS1 = E26 transformation-specific 1; EGR1 = early growth response 1; IRF1 = interferon regulatory factor 1; NF-κB1 = nuclear factor κ-light-chain-enhancer of activated B-cells 1; TGIF1 = TGFB-induced factor homeobox 1.
Sequences and locations of NF-κB1 putative binding sites within the regulatory region of intercellular adhesion molecule 1 (ICAM-1). For the purposes of this study, the ICAM-1 regulatory region was defined as 5000 bp of sequence immediately upstream of the ICAM-1 gene transcription start site and the first 2 introns. Gene sequences were obtained from the JASPAR database [21].
| Sequence | Location | |||
|---|---|---|---|---|
| Region | Start | End | Strand | |
| AGGAGAATCACCT | 5000 bp upstream of transcription start site | 282 | 294 | −1 |
| AGGTGATTCTCCT | 282 | 294 | 1 | |
| TGGGGTTTCACCA | 3008 | 3020 | −1 | |
| AGGGAGACCCCCA | 3524 | 3536 | −1 | |
| TGGGGGTCTCCCT | 3524 | 3536 | 1 | |
| GGGGGACGCCCCT | 3874 | 3886 | −1 | |
| AGGGGCGTCCCCC | 3874 | 3886 | 1 | |
| GAGGGATGCCCCT | 4751 | 4763 | −1 | |
| AGGGGCATCCCTC | 4751 | 4763 | 1 | |
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| TGGGGATTGCCGT | Intron 1 (3538 bp) | 12 | 24 | 1 |
| GGGGGAATTCCAG | 584 | 596 | 1 | |
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| CGGGGTTTCACCA | Intron 2 (8452 bp) | 1333 | 1345 | −1 |
| TGGTGAAACCCCG | 1333 | 1345 | 1 | |
| CGGGGACTTCCCT | 3433 | 3445 | −1 | |
| AGGGAAGTCCCCG | 3433 | 3445 | 1 | |
| GGGTGGATCACCA | 3748 | 3760 | −1 | |
| TGGTGATCCACCC | 3748 | 3760 | 1 | |
| CGGTGAAACCCCG | 6035 | 6047 | −1 | |
| CGGGGTTTCACCG | 6035 | 6047 | 1 | |
| AGGCGGATCACCT | 6948 | 6960 | −1 | |
| AGGTGATCCGCCT | 6948 | 6960 | 1 | |
| AGGGAGACCCCCA | 7545 | 7557 | −1 | |
| TGGGGGTCTCCCT | 7545 | 7557 | 1 | |
| AGGGGATTCTCCT | 8082 | 8094 | −1 | |
| AGGAGAATCCCCT | 8082 | 8094 | 1 | |
Figure 2TNF-α-induced expression of cellular ICAM-1 is significantly reduced by NF-κB1 silencing, but constitutive expression is not impacted. Human retinal endothelial cell monolayers were transfected with NF-κB1-targeted (NF-κB1) siRNA or nontargeted (NT) control siRNA and treated with TNF-α or no cytokine for 24 hours. Cellular ICAM-1 was fluorescently labeled by indirect immunocytochemistry; fluorescence of endothelial monolayers was read by microplate reader and adjusted for background fluorescence and cell number. (a) Graph showing relative level of ICAM-1 protein on the surface of endothelial cells. Bars represent mean relative level, with error bars showing standard error of the mean. n = 8 monolayers/condition. Data were analyzed by two-tailed Student's t-test. ns = not significant. (b) Graph showing relative NF-κB1 transcript expression in human retinal endothelial cell monolayers that were transfected in parallel. Reference gene was 18S rRNA. Bars represent mean relative expression, with error bars showing standard error of the mean. n = 4 monolayers/condition. Data were analyzed by two-tailed Student's t-test.
Figure 3Leukocyte binding to TNF-α-stimulated human retinal endothelial monolayers is significantly reduced by NF-κB1 silencing, but binding to untreated monolayers is not impacted. Human retinal endothelial cell monolayers were transfected with NF-κB1-targeted (NF-κB1) siRNA or nontargeted (NT) control siRNA and treated with TNF-α or no cytokine for 24 hours. Endothelial monolayers were incubated with THP-1 leukocytes for 20 minutes (1 × 105 cells/7.5 mm2 monolayer); monolayers were photographed, and the number of leukocytes bound per mm2 was counted. (a) Graph showing leukocytes bound to the surface of endothelial monolayers. Bars represent mean number, with error bars showing standard error of the mean. n = 5 monolayers/condition. Data were analyzed by two-tailed Student's t-test. ns = not significant. (b) Graph showing relative NF-κB1 transcript expression in human retinal endothelial cell monolayers that were transfected in parallel. Reference gene was 18S rRNA. Bars represent mean relative expression, with error bars showing standard error of the mean. n = 4 monolayers/condition. Data were analyzed by two-tailed Student's t-test.