CLIA Kit for Macrophage Migration Inhibitory Factor (MIF)
GIF; GLIF; MMIF; Glycosylation-Inhibiting Factor; L-dopachrome isomerase; L-dopachrome tautomerase; Phenylpyruvate tautomerase
- UOM
- FOB US$ 605.00 US$ 864.00 US$ 3,888.00 US$ 7,344.00 US$ 60,480.00
- Quantity
Overview
Properties
- Product No.SCA698Mu
- Organism SpeciesMus musculus (Mouse) Same name, Different species.
- ApplicationsChemiluminescent immunoassay for Antigen Detection.
Research use only - DownloadInstruction Manual
- CategoryCytokineInfection immunityRheumatologyAutoimmunity
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Recovery
Matrices listed below were spiked with certain level of recombinant Macrophage Migration Inhibitory Factor (MIF) and the recovery rates were calculated by comparing the measured value to the expected amount of Macrophage Migration Inhibitory Factor (MIF) in samples.
Matrix | Recovery range (%) | Average(%) |
serum(n=5) | 78-95 | 87 |
EDTA plasma(n=5) | 90-101 | 96 |
heparin plasma(n=5) | 80-88 | 85 |
Precision
Intra-assay Precision (Precision within an assay): 3 samples with low, middle and high level Macrophage Migration Inhibitory Factor (MIF) were tested 20 times on one plate, respectively.
Inter-assay Precision (Precision between assays): 3 samples with low, middle and high level Macrophage Migration Inhibitory Factor (MIF) were tested on 3 different plates, 8 replicates in each plate.
CV(%) = SD/meanX100
Intra-Assay: CV<10%
Inter-Assay: CV<12%
Linearity
The linearity of the kit was assayed by testing samples spiked with appropriate concentration of Macrophage Migration Inhibitory Factor (MIF) and their serial dilutions. The results were demonstrated by the percentage of calculated concentration to the expected.
Sample | 1:2 | 1:4 | 1:8 | 1:16 |
serum(n=5) | 88-101% | 81-94% | 97-105% | 78-90% |
EDTA plasma(n=5) | 91-98% | 79-89% | 89-98% | 85-99% |
heparin plasma(n=5) | 88-102% | 90-101% | 93-102% | 80-92% |
Stability
The stability of kit is determined by the loss rate of activity. The loss rate of this kit is less than 5% within the expiration date under appropriate storage condition.
To minimize extra influence on the performance, operation procedures and lab conditions, especially room temperature, air humidity, incubator temperature should be strictly controlled. It is also strongly suggested that the whole assay is performed by the same operator from the beginning to the end.
Reagents and materials provided
Reagents | Quantity | Reagents | Quantity |
Pre-coated, ready to use 96-well strip plate | 1 | Plate sealer for 96 wells | 4 |
Standard | 2 | Standard Diluent | 1×20mL |
Detection Reagent A | 1×120µL | Assay Diluent A | 1×12mL |
Detection Reagent B | 1×120µL | Assay Diluent B | 1×12mL |
Substrate A | 1×10mL | Substrate B | 1×2mL |
Wash Buffer (30 × concentrate) | 1×20mL | Instruction manual | 1 |
Assay procedure summary
1. Prepare all reagents, samples and standards;
2. Add 100µL standard or sample to each well. Incubate 1 hours at 37°C;
3. Aspirate and add 100µL prepared Detection Reagent A. Incubate 1 hour at 37°C;
4. Aspirate and wash 3 times;
5. Add 100µL prepared Detection Reagent B. Incubate 30 minutes at 37°C;
6. Aspirate and wash 5 times;
7. Add 100µL Substrate Solution. Incubate 10 minutes at 37°C;
8. Read RLU value immediately.

Test principle
The microplate provided in this kit has been pre-coated with an antibody specific to Macrophage Migration Inhibitory Factor (MIF). Standards or samples are then added to the appropriate microplate wells with a biotin-conjugated antibody specific to Macrophage Migration Inhibitory Factor (MIF). Next, Avidin conjugated to Horseradish Peroxidase (HRP) is added to each microplate well and incubated. Then the mixture of substrate A and B is added to generate glow light emission kinetics. Upon plate development, the intensity of the emitted light is proportional to the Macrophage Migration Inhibitory Factor (MIF) level in the sample or standard.;
Giveaways
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Citations
- Targeted reduction of advanced glycation improves renal function in obesityPubMed: 21412218
- Macrophage Migration Inhibitory Factor Plays a Role in the Regulation of Microfold (M) Cell-Mediated Transport in the GutJimmunol: 5673
- Involvement of exercise-induced macrophage migration inhibitory factor in the prevention of fatty liver diseasePubMed: PMC3757527
- Role of macrophage migration inhibitory factor in the regulatory T cell response of tumor-bearing micePubMed: PMC3466372
- Deletion of bone-marrow-derived receptor for AGEs (RAGE) improves renal function in an experimental mouse model of diabetesPubmed:24957662
- The Potential Role of Polymethyl Methacrylate as a New Packaging Material for the Implantable Medical Device in the BladderPubMed: 25705692
- Combined NOX1/4 inhibition with GKT137831 in mice provides dose-dependent reno- and atheroprotection even in established micro- and macrovascular disease.pubmed:28160092
- Protective effect of chlorogenic acid on the inflammatory damage of pancreas and lung in mice with l-arginine-induced pancreatitis pubmed:28919396
- Cytokine MIF Enhances Blood-Brain Barrier Permeability: Impact for Therapy in Ischemic StrokePubmed:29335619
- Immune Response and Mechanisms of IFN-γ in Administration for KeratomycosisPubmed: 30307777
- Effect of voluntary running on expression of myokines in brains of rats with depressionPubmed: 30834799
- Biomarkers in Heart Failure and Associated Diseases
- Autophagy mediates the secretion of macrophage migration inhibitory factor from cardiomyocytes upon serum-starvationPubmed: 31209799
- Beneficial effects of voluntary over forced exercise on skeletal muscle structure and myokines expressionPubmed: 31802473
- Deletion of macrophage migration inhibitory factor ameliorates inflammation in mice model severe acute pancreatitisPubmed: 32062385
- Association between MIF gene promoter rs755622 and susceptibility to coronary artery disease and inflammatory cytokines in the Chinese Han population33850223
- Macrophage migration inhibitory factor is overproduced through EGR1 in TET2low resting monocytesPubmed:35115654