Establishment of a scalable engineered cell-line platform for direct, GMP-grade production of eVLP vectors enabling streamlined generation of gene-edited CAR-T/NK cells
An industrial-grade platform based on monoclonal producer cell lines that enables the continuous and scalable generation of engineered virus-like particles (eVLPs) co-packaging Cas9–gRNA ribonucleoproteins (RNPs) and provides a GMP-compliant and broadly adaptable strategy for the streamlined manufacturing of next-generation autologous and allogeneic gene-edited CAR-T/NK therapies.
Abstract
Introduction CRISPR–Cas9 has transformed the engineering of chimeric antigen receptor T (CAR-T) cells and chimeric antigen receptor NK (CAR-NK) cells; however, its clinical translation remains constrained by the high cost, batch-to-batch variability, and stringent regulatory requirements associated with current viral and electroporation-based manufacturing approaches. Methods We report an industrial-grade platform based on monoclonal producer cell lines that enables the continuous and scalable generation of engineered virus-like particles (eVLPs) co-packaging Cas9–gRNA ribonucleoproteins (RNPs). A progenitor cell line was established by stably integrating three core modules—Gag-Pol, Gag-Cas9, and the baboon endogenous virus (BaEV) envelope—into a single HEK293T clone. Introduction of a self-inactivating (SIN) retroviral vector encoding the gRNA cassette (exemplified here by CD7) converted this progenitor into a dedicated eVLP producer within 10 days. Results Using this platform, we generated CD7-knockout CAR-T/NK cells that retained robust in vitro cytotoxicity, confirming preserved functional activity. Owing to its modular architecture, the platform is readily extensible. For example, integration with Recombinant Adeno-associated Virus (rAAV) donor templates enables site-specific CAR insertion, while multiplexed eVLP cocktails allow simultaneous disruption of multiple genomic loci. Discussion It is worth noting that this workflow eliminates the need for electroporation, reduces serum dependency, and significantly lowers the cost of reagent consumables. Collectively, this system provides a GMP-compliant and broadly adaptable strategy for the streamlined manufacturing of next-generation autologous and allogeneic gene-edited CAR-T/NK therapies.
TcBuster-M-mediated cell engineering achieved high CD19-CAR expression in both T and NK cells while preserving cell viability and growth, and demonstrated potent, target-specific cytotoxicity and favorable cytokine secretion.
Jessica K. Fiege, R. Haugen, Ellie A. Mews et al.· Journal of Immunology· 0 citations
A virus-like particle (VLP)-based toolkit that delivers diverse CRISPR editing modalities to human monocytes, macrophages and dendritic cells with high efficiency while preserving viability and innate immune responsiveness is presented.
Hyuncheol Jung, Pascal Devant, Carter Ching et al.· Nature Biotechnology· 0 citations
Stable lentiviral vector producer cell lines represent a promising platform for scalable and cost-efficient vector manufacturing, yet their productivity is often limited by intrinsic host-cell constraints. In this study, we aimed to identify cellular factors restricting LVV production in stable doxycycline-inducible GPRTG producer cell lines and to evaluate whether targeted host-cell engineering can improve vector yield. Comparative transcriptomic analysis of high- and low-producing clones revealed distinct differences in cellular pathways related to transcription, translation, energy metabolism, lipid homeostasis, stress response, and chromatin regulation. Based on differential gene expression, candidate genes were modified by CRISPR/Cas9-mediated knockout or overexpression and functionally analyzed in a low-producing clone. Single-gene KO screening identified H1-2, ADAMTS1, INSIG1, GADD45B, and HSPA1B to increase cell-specific LVV productivity up to 2.6-fold, with H1-2 showing the strongest effect. In addition, combinatorial disruption further improved productivity. In contrast, overexpression of selected candidates did not enhance LVV production. Overall, our results demonstrate that transcriptomics-guided host-cell engineering is an effective strategy to identify and relieve intrinsic bottlenecks in stable LVV producer cell lines.
Jona Röscheise, Lena-Marie Eberle, Holger Laux et al.· Biotechnology and Bioenginee...· 0 citations
CD8 T cells play a central role in immune responses to infection and cancer. However, the diversity of T cell receptor (TCR) specificities makes it challenging to study the mechanisms that regulate T cell activation, differentiation, and effector function. Beyond TCR transgenic mouse models, various complex genome-editing approaches have been employed to overcome this challenge. However, these strategies are often technically demanding, time-intensive, and difficult to adapt. Investigators who are interested in testing de novo TCRs under their chosen experimental conditions would benefit from a standardized and accessible method. Here, we describe a protocol that combines ribonucleoprotein (RNP)-based CRISPR-Cas9 editing with retroviral transduction to enable efficient genetic manipulation of murine CD8 T cells. We show that T cells engineered via this protocol can be generated at sufficient scale for downstream in vitro assays and in vivo adoptive transfer experiments. We expect this method will be useful for investigators who require a standardized and accessible way to study how TCR specificity impacts CD8 T cell responses.
Nadine Tong, John Attanasio, Eric Fagerberg et al.· bioRxiv· 0 citations
The HEK293T model stably expressing membrane-anchored HIV-1 gp160(ΔCT) model provides a robust platform for benchmarking the targeted recognition and cytotoxic activity of antiviral antibodies, agents, and CAR-T therapies in HIV research.
Jiarui Liu, Yang Gao, Changjun Wang et al.· Sheng wu gong cheng xue bao...· 0 citations
This efficient engineering process of Iterative Nicking for Synchronous Engineered Reprogramming of T cells (INSERT) establishes a safe, simplified platform for advanced therapeutic CAR T engineering.
Joseph G. Skeate, Nicholas J. Slipek, Walker S. Lahr et al.· Molecular Therapy· 0 citations