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Updated: Jul 26, 2025

Mouse Naïve CD4+ T Cell Isolation and In vitro Differentiation into T Cell Subsets
Published on: April 16, 2015
PKCζ activation promotes maturation of cord blood T cells towards a Th1 IFN-γ propensity
Khalida Perveen1,2, Alex Quach1,2, Michael J Stark2,3
1Department of Immunology, SA Pathology at Women's and Children's Hospital, North Adelaide, Australia.
Insights
Low protein kinase C zeta (PKCζ) in newborns impairs T cell maturation, increasing allergy risk. PKCζ signaling is crucial for T cells to shift from a Th2 to a Th1 cytokine profile, preventing allergic sensitization.
Area of Science:
- Immunology
- Cell Biology
- Neonatal Research
Background:
- Neonatal T cells often exhibit low protein kinase C zeta (PKCζ) levels.
- This is linked to impaired Th2-to-Th1 cytokine bias transition and increased allergy risk.
- The specific role of PKCζ signaling in this T cell differentiation remains unclear.
Purpose of the Study:
- To investigate the role of PKCζ signaling in regulating the differentiation of neonatal T cells.
- To understand how PKCζ influences the shift from a Th2 to a Th1 cytokine phenotype.
Main Methods:
- Developed a neonatal T cell maturation model using cord blood T cells (CBTC).
- Treated cells with phytohaemagglutinin and phorbol 12-myristate 13-acetate (PMA), a PKCζ-non-activating agonist.
- Compared with CBTC transfected to express constitutively active PKCζ.
- Monitored PKCζ activation via western blot and confocal microscopy.
Main Results:
- PMA treatment failed to activate PKCζ in CBTC.
- PMA-treated cells maintained a Th2 bias (high IL-4, low IFN-γ, absent T-bet).
- Constitutively active PKCζ promoted a Th1 profile (high IFN-γ).
Conclusions:
- PKCζ signaling is essential for neonatal T cells to transition from a Th2 to a Th1 cytokine bias.
- This transition is critical for preventing allergic sensitization in newborns.
Abstract:
A significant number of babies present transiently with low protein kinase C zeta (PKCζ) levels in cord blood T cells (CBTC), associated with reduced ability to transition from a neonatal Th2 to a mature Th1 cytokine bias, leading to a higher risk of developing allergic sensitisation, compared to neonates whose T cells have 'normal' PKCζ levels. However, the importance of PKCζ signalling in regulating their differentiation from a Th2 to a Th1 cytokine phenotype propensity remains undefined. To define the role of PKCζ signalling in the regulation of CBTC differentiation from a Th2 to a Th1cytokine phenotype we have developed a neonatal T cell maturation model which enables the cells to develop to CD45RA- /CD45RO+ T cells while maintaining the Th2 immature cytokine bias, despite having normal levels of PKCζ. The immature cells were treated with phytohaemagglutinin, but in addition with phorbol 12-myristate 13-acetate (PMA), an agonist which does not activate PKCζ. This was compared to development in CBTC in which the cells were transfected to express constitutively active PKCζ. The lack of PKCζ activation by PMA was monitored by western blot for phospho-PKCζ and translocation from cell cytosol to the membrane by confocal microscopy. The findings demonstrate that PMA fails to activate PKCζ in CBTC. The data show that CBTC matured under the influence of the PKC stimulator, PMA, maintain a Th2 cytokine bias, characterised by robust IL-4 and minimal interferon gamma production (IFN-γ), and lack of expression of transcriptional factor, T-bet. This was also reflected in the production of a range of other Th2/Th1 cytokines. Interestingly, introduction of a constitutively active PKCζ mutant into CBTC promoted development towards a Th1 profile with high IFN-γ production. The findings demonstrate that PKCζ signalling is essential for the immature neonatal T cells to transition from a Th2 to a Th1 cytokine production bias.
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