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Ex vivo clonotype primer-directed gene amplification to identify malignant T cell repertoires
1Department of Neurology, Roswell Park Cancer Institute, Buffalo, NY 14263.
Abstract:
A novel strategy that utilizes input genomic DNA and overcomes limitations encountered with traditional RNA reverse transcription-polymerase chain reaction (PCR) amplification methodology is described to screen for T cell receptor (TCR) repertoires. The methodology has been developed to identify individual T cell clonotypes with regard to their unique receptor beta chain variable/diversity/joining (VDJ) region gene rearrangement. The technique avoids preselection for a given antigen specificity and is therefore independent of artificial bias introduced by in vitro cell population expansion. This technique was used to detect and identify genetically of malignant clones from heterogeneous mononuclear cell populations from an array of hemato-oncological disorders, including mycosis fungoides/Sézary Syndrome, adult T cell leukemia, and large granular lymphoproliferative disease. An initial primary PCR, directed by a TCR-J beta generic primer and a complement of family-specific TCR-V beta primers, defines predominant T cell receptor variable gene usage. Use of a TCR-J beta generic primer supplants the use of a constant region primer anchor and thus eliminates the need to target mRNA. The process of variable gene screening also expedites gene sequencing. By sequencing through the VDJ juxtaposed region, i.e., the third complementarity determinant region, clonotype-specific primers are developed and used in a secondary clonotype primer-directed PCR (CPD-PCR) to detect, with extreme sensitivity and specificity, unique T cell clonal repertoires. Analysis of the products of the CPD-PCR permits the detection of a single malignant cell among one million polyclonal cells and supercedes the constraints of prior studies that provide a limited evaluation of family variable gene repertoire usage. This strategy may be applied in the detection of minimal residual disease, in surveillance after induction of disease-free states, and in analyzing the effectiveness of purging autologous bone marrow of malignant clones.
Insights
This study introduces a new DNA-based method for screening T cell receptor (TCR) repertoires, identifying malignant clones with high sensitivity. The novel approach bypasses traditional RNA methods, enabling precise detection of T cell clonotypes in various blood cancers.
Area of Science:
- Immunology
- Molecular Biology
- Oncology
Background:
- Traditional T cell receptor (TCR) repertoire screening relies on RNA reverse transcription-polymerase chain reaction (PCR), which has limitations.
- Existing methods can introduce bias through in vitro cell expansion and preselection for antigen specificity.
Purpose of the Study:
- To develop and validate a novel DNA-based strategy for screening T cell receptor (TCR) repertoires.
- To identify individual T cell clonotypes based on their unique VDJ gene rearrangements.
- To detect malignant clones in hemato-oncological disorders with high sensitivity and specificity.
Main Methods:
- Utilizes genomic DNA, bypassing the need for RNA reverse transcription.
- Employs an initial primary PCR with TCR-J beta and TCR-V beta primers to define variable gene usage.
- Develops clonotype-specific primers from VDJ sequencing for a secondary clonotype primer-directed PCR (CPD-PCR).
Main Results:
- The methodology successfully detects and identifies genetically malignant clones in various hematologic malignancies.
- Achieves extreme sensitivity, capable of detecting a single malignant cell among one million polyclonal cells.
- Demonstrates independence from artificial bias introduced by in vitro cell expansion.
Conclusions:
- The novel DNA-based TCR screening strategy overcomes limitations of traditional RNA-based methods.
- This technique offers highly sensitive and specific detection of T cell clonotypes and malignant clones.
- Potential applications include minimal residual disease detection, post-treatment surveillance, and autologous bone marrow purging assessment.