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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Expression of macrophage migration inhibitory factor in the mouse neocortex and posterior piriform cortices during
Wei Zhang1, Lingling Li, Jiutao Wang
1College of Veterinary Medicine, Northwest A&F University, Yangling, 712100, Shaanxi, People's Republic of China.
Abstract:
Macrophage migration inhibitory factor (MIF) functions as a pleiotropic protein, participating in a vast array of cellular and biological processes. Abnormal expression of MIF has been implicated in many neurological diseases, including Parkinson's disease, epilepsy, Alzheimer's Disease, stroke, and neuropathic pain. However, the expression patterns of mif transcript and MIF protein from the early postnatal period through adulthood in the mouse brain are still poorly understood. We therefore investigated the temporal and spatial expression of MIF in the mouse neocortex during postnatal development in detail and partially in posterior piriform cortices (pPC). As determined by quantitative real-time PCR (qPCR), mif transcript gradually increased during development, with the highest level noted at postnatal day 30 (P30) followed by a sharp decline at P75. In contrast, Western blotting results showed that MIF increased constantly from P7 to P75. The highest level of MIF was at P75, while the lowest level of MIF was at P7. Immunofluorescence histochemistry revealed that MIF-immunoreactive (ir) cells were within the entire depth of the developed neocortex, and MIF was heterogeneously distributed among cortical cells, especially at P7, P14, P30, and P75; MIF was abundant in the pyramidal layer within pPC. Double immunostaining showed that all the mature neurons were MIF-ir and all the intensely stained MIF-ir cells were parvalbumin positive (Pv +) at adult. Moreover, it was demonstrated that MIF protein localized in the perikaryon, processes, presynaptic structures, and the nucleus in neurons. Taken together, the developmentally regulated expression and the subcellular localization of MIF should form a platform for an analysis of MIF neurodevelopmental biology and MIF-related nerve diseases.
Insights
Macrophage migration inhibitory factor (MIF) expression in the developing mouse brain shows distinct temporal patterns for its transcript and protein. This study details MIF
Area of Science:
- Neuroscience
- Molecular Biology
- Developmental Biology
Background:
- Macrophage migration inhibitory factor (MIF) is a pleiotropic protein involved in numerous cellular processes.
- Abnormal MIF expression is linked to various neurological disorders, including Alzheimer's disease and Parkinson's disease.
- The developmental expression of MIF in the mouse brain remains largely uncharacterized.
Purpose of the Study:
- To investigate the temporal and spatial expression patterns of mif transcript and MIF protein in the developing mouse neocortex and posterior piriform cortices (pPC).
- To elucidate the cellular localization of MIF within neurons during postnatal development.
Main Methods:
- Quantitative real-time PCR (qPCR) to analyze mif transcript levels.
- Western blotting to assess MIF protein expression.
- Immunofluorescence histochemistry and double immunostaining to determine MIF localization and cell-type specificity.
Main Results:
- Mif transcript levels increased postnatally, peaking at P30, then declining by P75.
- MIF protein levels showed a continuous increase from P7 to P75, with the highest levels at P75.
- MIF was found in neocortical cells, particularly abundant in the pyramidal layer of pPC, and localized within neuronal perikarya, processes, presynaptic structures, and nuclei. All mature neurons were MIF-immunoreactive, with intensely stained cells being parvalbumin-positive.
Conclusions:
- MIF exhibits developmentally regulated expression in the mouse brain, with distinct temporal profiles for its transcript and protein.
- The observed subcellular localization of MIF within neurons suggests diverse functional roles.
- These findings provide a foundation for understanding MIF's role in neurodevelopment and its implications in neurological diseases.
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