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T cell unresponsiveness in a pediatric cystic fibrosis patient: a case report
Rahul Kushwah, Stéphane Gagnon, Neil B Sweezey1
1Respiratory Medicine, Physiology and Experimental Medicine, The Hospital for Sick Children, 555 University Avenue, Toronto, ON M5G 1X8, Canada. neil.sweezey@sickkids.ca.
Insights
A cystic fibrosis patient exhibited impaired T cell differentiation and exhaustion, contributing to severe lung disease progression. This suggests intrinsic immune defects may worsen cystic fibrosis outcomes.
Area of Science:
- Immunology
- Genetics
- Pulmonology
Background:
- Cystic Fibrosis (CF) is a genetic disorder caused by mutations in the CF transmembrane conductance regulator (CFTR) gene.
- Severe lung disease is a hallmark of CF, often requiring aggressive treatment and lung transplantation.
- T cell dysfunction can impact immune responses in chronic diseases.
Observation:
- A young female with CF and F508del mutations presented with unusually severe lung disease.
- Her peripheral blood T cells showed a lack of IFN-γ production and failed to differentiate into Th1, Th17, and Treg lineages.
- T cells displayed markers of exhaustion, even without typical viral triggers.
Findings:
- Naïve T cells from the CF patient demonstrated intrinsic defects in differentiation potential.
- T cell exhaustion was identified as a potential cause for the impaired T cell response.
- This immune dysfunction was observed despite comparable CF severity in other patients.
Implications:
- Intrinsic T cell differentiation impairment may contribute to accelerated lung disease progression in CF.
- Understanding these immune defects could reveal novel therapeutic targets for severe CF.
- This case highlights the complex interplay between genetic factors and immune responses in CF pathogenesis.
Abstract:
A girl was diagnosed with cystic fibrosis (CF) at birth, with repeatedly positive sweat tests and homozygous F508del mutations of her CF transmembrane conductance regulator (CFTR) gene. From an early age, her lung disease was more severe than her birth cohort peers despite aggressive treatment. At the age of 16 she was listed for lung transplantation, but prior to transplant was not on systemic corticosteroids or other immunosuppressive agents. In response to ex vivo stimulation, her pre-transplant peripheral blood T cells unexpectedly failed to produce detectable levels of IFN-γ, unlike cells from healthy controls or from another girl with CF and lung disease of comparable severity. Furthermore, naïve T cells freshly isolated from her peripheral blood showed a complete block of T cell differentiation into Th1, Th17 and Treg lineages, even in the presence of cytokines known to promote differentiation into the respective lineages. Her serology has been remarkably devoid of evidence of exposure to viruses that have been associated with T cell exhaustion. However, her freshly isolated naïve T cells showed sustained expression of markers of T cell exhaustion, which were further induced upon ex vivo stimulation, pointing to T cell exhaustion as the cause of the failure of naïve T cells to undergo differentiation in response to cytokine stimulation. Although excessive inflammation in CF lung can be both ineffective at clearing certain pathogens as well as destructive to the lung tissue itself, adequate inflammation is a component of an effective overall immune response to microbial pathogens. Our present findings suggest that intrinsic impairment of T cell differentiation may have contributed to the greater severity and more rapid progression of her CF lung disease than of the lung disease of most of her peers.
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