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Optimized Staining and Proliferation Modeling Methods for Cell Division Monitoring using Cell Tracking Dyes
Published on: December 13, 2012
A genome-scale screen for synthetic drivers of T cell proliferation
Mateusz Legut1,2,3,4, Zoran Gajic5,6,7,8, Maria Guarino5,6,7,8
1New York Genome Center, New York, NY, USA. mateusz.legut@gmail.com.
Abstract:
The engineering of autologous patient T cells for adoptive cell therapies has revolutionized the treatment of several types of cancer1. However, further improvements are needed to increase response and cure rates. CRISPR-based loss-of-function screens have been limited to negative regulators of T cell functions2-4 and raise safety concerns owing to the permanent modification of the genome. Here we identify positive regulators of T cell functions through overexpression of around 12,000 barcoded human open reading frames (ORFs). The top-ranked genes increased the proliferation and activation of primary human CD4+ and CD8+ T cells and their secretion of key cytokines such as interleukin-2 and interferon-γ. In addition, we developed the single-cell genomics method OverCITE-seq for high-throughput quantification of the transcriptome and surface antigens in ORF-engineered T cells. The top-ranked ORF-lymphotoxin-β receptor (LTBR)-is typically expressed in myeloid cells but absent in lymphocytes. When overexpressed in T cells, LTBR induced profound transcriptional and epigenomic remodelling, leading to increased T cell effector functions and resistance to exhaustion in chronic stimulation settings through constitutive activation of the canonical NF-κB pathway. LTBR and other highly ranked genes improved the antigen-specific responses of chimeric antigen receptor T cells and γδ T cells, highlighting their potential for future cancer-agnostic therapies5. Our results provide several strategies for improving next-generation T cell therapies by the induction of synthetic cell programmes.
Insights
Researchers identified new ways to enhance T cell therapies by overexpressing specific genes. These genetic modifications boost T cell function and improve cancer treatment potential.
Area of Science:
- Immunology
- Cell Biology
- Genetics
Background:
- Adoptive T cell therapy shows promise in cancer treatment but requires improvement in efficacy.
- Current genetic engineering methods for T cells have limitations, including safety concerns and focus on gene inhibition.
Purpose of the Study:
- To identify positive regulators of T cell function through gene overexpression.
- To develop novel strategies for enhancing T cell-based cancer therapies.
Main Methods:
- Conducted CRISPR-based loss-of-function screens to identify negative regulators.
- Performed overexpression screens of approximately 12,000 barcoded human open reading frames (ORFs).
- Developed and utilized the OverCITE-seq single-cell genomics method for transcriptome and surface antigen analysis.
Main Results:
- Identified top-ranked genes that enhance T cell proliferation, activation, and cytokine secretion (IL-2, IFN-γ).
- Discovered that lymphotoxin-β receptor (LTBR) overexpression in T cells promotes effector functions and resistance to exhaustion via NF-κB pathway activation.
- Demonstrated that LTBR and other identified genes improve antigen-specific responses in chimeric antigen receptor (CAR) T cells and γδ T cells.
Conclusions:
- Gene overexpression is a viable strategy to enhance T cell functions for adoptive cell therapies.
- LTBR is a key positive regulator that can be leveraged to improve T cell therapy efficacy.
- These findings offer new avenues for developing next-generation, cancer-agnostic T cell therapies.

