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Updated: Jul 9, 2026

A GMP-Compliant Procedure for the Generation of Gene-Modified T cells
Published on: October 6, 2023
Multifactorial optimization of gammaretroviral gene transfer into human T lymphocytes for clinical application
Alfonso Quintás-Cardama1, Raymond K Yeh, Daniel Hollyman
1Department of Medicine, Memorial Sloan Kettering Cancer Center, New York, NY 10021, USA.
Abstract:
The ability to genetically modify human T cells to target tumor antigens through retroviral gene transfer constitutes a potentially powerful approach to cancer immunotherapy. However, low transduction efficiencies may hamper the efficacy of such therapeutic strategies in the clinical setting. Most commonly, gammaretroviral gene transfer into T cells is conducted through spinoculation, that is, centrifugation of retroviral particles and T cells on RetroNectin-coated non-tissue culture vessels. Here we present data investigating the impact of temperature, speed, and frequency of spinoculation on T cell transduction efficiencies. We found that all three variables independently impacted gene transfer, with increasing temperature, speed, and frequency of spinoculation all enhancing the transduction of T cells. These improved conditions were additive, with the greatest proportion of transduced T cells being generated at the highest tested temperature and speed, after daily spinoculation for 2 to 3 days. Under these conditions, enhanced gene transfer was observed in T cells derived from healthy donors, using research-grade vector stocks. Whereas both RetroNectin and spinoculation were critical to optimal gene transduction, preloading of gammaretroviral particles before spinoculation did not enhance gene transfer. Significantly, application of these enhanced transduction conditions to T cells derived from previously treated patients with chronic lymphocytic leukemia allowed for adequate gene transfer under both small-scale and large-scale clinically applicable conditions using either preclinical or current Good Manufacturing Practice-grade gammaretroviral vector stocks.
Insights
Optimizing spinoculation conditions, including temperature, speed, and frequency, significantly enhances retroviral gene transfer into T cells for cancer immunotherapy. These findings improve T cell transduction efficiency for clinical applications.
Area of Science:
- Immunology
- Molecular Biology
- Biotechnology
Background:
- Genetic modification of T cells via retroviral gene transfer is a promising cancer immunotherapy strategy.
- Low transduction efficiencies currently limit the clinical efficacy of T cell-based therapies.
- Spinoculation on RetroNectin is a common method for T cell gene transfer.
Purpose of the Study:
- To investigate the impact of spinoculation parameters on T cell transduction efficiency.
- To identify optimal conditions for enhancing retroviral gene transfer into human T cells.
- To assess the applicability of enhanced transduction in clinical settings.
Main Methods:
- Systematic variation of temperature, speed, and frequency during spinoculation.
- Assessment of T cell transduction efficiencies using retroviral vectors.
- Testing conditions with T cells from healthy donors and chronic lymphocytic leukemia patients.
- Utilizing both research-grade and Good Manufacturing Practice-grade vector stocks.
Main Results:
- Increasing temperature, speed, and frequency of spinoculation independently enhanced T cell transduction.
- Optimal conditions (high temperature, high speed, daily spinoculation for 2-3 days) maximized transduction.
- Enhanced transduction was achieved in T cells from healthy donors and chronic lymphocytic leukemia patients.
- RetroNectin and spinoculation were crucial; preloading vectors did not improve efficiency.
Conclusions:
- Optimized spinoculation parameters significantly improve retroviral gene transfer efficiency in human T cells.
- Enhanced transduction methods are effective for both healthy donor and patient-derived T cells.
- These findings support the clinical translation of T cell-based immunotherapies.
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