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Updated: Jul 15, 2026

Examination of Thymic Positive and Negative Selection by Flow Cytometry
Published on: October 8, 2012
T cell activation deficiency associated with an aberrant pattern of protein tyrosine phosphorylation after CD3
I Scotese1, L Gaetaniello, G Matarese
1Department of Pediatrics, Federico II University, Naples, Italy.
Insights
Children with Down's syndrome (DS) exhibit immune system abnormalities, specifically a T cell activation defect. This involves impaired early signaling through the T cell receptor/CD3 complex, notably a failure in ZAP-70 tyrosine phosphorylation.
Area of Science:
- Immunology
- Cellular Biology
- Genetics
Background:
- Children with Down's syndrome (DS) have increased susceptibility to infections and leukemia due to immune system abnormalities.
- Previous studies reported a depressed proliferative response of lymphocytes in DS individuals.
Purpose of the Study:
- To investigate the qualitative nature of T cell defects in Down's syndrome.
- To identify abnormalities in early T cell activation events and signal transduction pathways.
Main Methods:
- Examined lymphocyte proliferation in DS individuals after CD3 cross-linking.
- Assessed T cell activation using phorbol ester and ionomycin.
- Analyzed phosphotyrosine-containing proteins and ZAP-70 phosphorylation in DS lymphocytes.
Main Results:
- DS lymphocytes showed impaired proliferation after CD3 cross-linking but could be activated by phorbol ester and ionomycin.
- A defect in early T cell receptor/CD3 complex signal transduction, upstream of protein kinase C, was suggested.
- Selective failure of ZAP-70 tyrosine phosphorylation was observed in DS lymphocytes during T cell activation.
Conclusions:
- Down's syndrome is associated with a T cell activation defect characterized by partial signal transduction through the T cell receptor/CD3 complex.
- The defect is linked to a failure in ZAP-70 tyrosine phosphorylation, impacting early T cell signaling pathways.
Abstract:
Children affected by Down's syndrome (DS) have an increased susceptibility to viral or bacterial infections and leukemia, associated with several abnormalities of the immune system. We investigated whether the T cell defect was qualitative in nature and associated with abnormalities of the early events occurring during cell activation. The proliferative response of lymphocytes from DS individuals after CD3 cross-linking was clearly depressed, as already reported. In contrast, phorbol ester and ionomycin were able to induce cell cycle progression in DS, suggesting a defect in the early stages of the signal transduction through a T cell receptor/CD3 (TCR/CD3) complex upstream of protein kinase C activation. The functional impairment in DS was not related either to a decrease of circulating mature-type CD3+ cells, which express high levels of surface of CD3 molecules, or to a decrease of the CD4+ subpopulation. The analysis of phosphotyrosine-containing proteins after the cross-linking of CD3 molecules in DS lymphocytes revealed a partial signaling, characterized by increased phosphorylation of proteins of 42-44 kD, comparable to that observed in control subjects, but not of proteins of 70 and 21 kD. Moreover, although the "anti-anergic" gamma element of IL-2, IL-4, IL-7, and IL-15 receptors was normally tyrosine-phosphorylated during cell activation, the CD3 zeta-associated protein kinase (ZAP-70) was not. Our results indicate that in DS there is a T cell activation defect, characterized by partial signal transduction through a TCR/CD3 complex, and associated with a selective failure of ZAP-70 tyrosine phosphorylation.
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