Longitudinal expression profiling of CD4+ and CD8+ cells in patients with active to quiescent giant cell arteritis
Elisabeth De Smit1, Samuel W Lukowski2, Lisa Anderson3
1Centre for Eye Research Australia, The University of Melbourne, Royal Victorian Eye & Ear Hospital, 32 Gisborne Street, East Melbourne, 3002, Australia. elisabethdesmit@gmail.com.
Insights
Researchers identified novel gene expression profiles in CD4+ and CD8+ T lymphocytes to aid in diagnosing Giant Cell Arteritis (GCA). These transcriptomic biomarkers may help predict disease severity and guide patient management.
Area of Science:
- Immunology
- Genetics
- Ophthalmology
Background:
- Giant Cell Arteritis (GCA) is a common vasculitis in the elderly, posing diagnostic challenges due to variable symptoms.
- Current diagnosis relies on temporal artery biopsy, lacking specific biochemical markers.
- Identifying less invasive diagnostic methods and predictive biomarkers is crucial for GCA management.
Purpose of the Study:
- To identify transcriptomic biomarkers for diagnosing Giant Cell Arteritis (GCA).
- To ascertain clinically relevant biomarkers for predicting GCA disease severity.
- To study gene expression profiles in purified peripheral CD4+ and CD8+ T lymphocytes in GCA patients.
Main Methods:
- Recruited 16 GCA patients and 16 age-matched controls.
- Collected blood samples at six time points over 12 months post-diagnosis.
- Isolated CD4+ and CD8+ T-cells using magnetic-assisted cell sorting for RNA sequencing.
Main Results:
- Identified 179 (CD4+) and 4 (CD8+) statistically significant transcripts with altered expression.
- Two transcripts (SGTB, FCGR3A) in CD8+ cells remained differentially expressed after 12 months.
- Discovered gene-phenotype associations, including IL32 in CD8+ cells linked to Polymyalgia Rheumatica and blindness.
Conclusions:
- This is the first longitudinal gene expression study for GCA biomarkers.
- Results reveal cell type-specific transcript profiles and novel gene-phenotype associations.
- Identified gene-phenotype relationships in the acute phase may predict disease severity and guide management.
Background:
Giant cell arteritis (GCA) is the most common form of vasculitis affecting elderly people. It is one of the few true ophthalmic emergencies but symptoms and signs are variable thereby making it a challenging disease to diagnose. A temporal artery biopsy is the gold standard to confirm GCA, but there are currently no specific biochemical markers to aid diagnosis. We aimed to identify a less invasive method to confirm the diagnosis of GCA, as well as to ascertain clinically relevant predictive biomarkers by studying the transcriptome of purified peripheral CD4+ and CD8+ T lymphocytes in patients with GCA.
Methods:
We recruited 16 patients with histological evidence of GCA at the Royal Victorian Eye and Ear Hospital, Melbourne, Australia, and aimed to collect blood samples at six time points: acute phase, 2-3 weeks, 6-8 weeks, 3 months, 6 months and 12 months after clinical diagnosis. CD4+ and CD8+ T-cells were positively selected at each time point through magnetic-assisted cell sorting. RNA was extracted from all 195 collected samples for subsequent RNA sequencing. The expression profiles of patients were compared to those of 16 age-matched controls.
Results:
Over the 12-month study period, polynomial modelling analyses identified 179 and 4 statistically significant transcripts with altered expression profiles (FDR < 0.05) between cases and controls in CD4+ and CD8+ populations, respectively. In CD8+ cells, two transcripts remained differentially expressed after 12 months; SGTB, associated with neuronal apoptosis, and FCGR3A, associatied with Takayasu arteritis. We detected genes that correlate with both symptoms and biochemical markers used for predicting long-term prognosis. 15 genes were shared across 3 phenotypes in CD4 and 16 across CD8 cells. In CD8, IL32 was common to 5 phenotypes including Polymyalgia Rheumatica, bilateral blindness and death within 12 months.
Conclusions:
This is the first longitudinal gene expression study undertaken to identify robust transcriptomic biomarkers of GCA. Our results show cell type-specific transcript expression profiles, novel gene-phenotype associations, and uncover important biological pathways for this disease. In the acute phase, the gene-phenotype relationships we have identified could provide insight to potential disease severity and as such guide in initiating appropriate patient management.
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