bioRxiv Science⌕ Search

Biology subjects

Tadi, S. K.

Publications and source records attributed to Tadi, S. K..

3 recordsLinked to original sources

Enhanced anti-tumor activity by Zinc Finger Repressor-driven epigenetic silencing of immune checkpoints and TGFBR2 in CAR-T cells and TILs

CAR-T therapies have shown remarkable success in treating hematological malignancies. However, effectiveness against solid tumors remains limited due to the immunosuppressive tumor microenvironment (TME), such as TGF-{beta} signaling and upregulated immune checkpoints (ICs). Furthermore, identifying universal, tumor-specific targets for CAR-T cells in solid tumors is challenging, but using reinvigorated, immunosuppressive-resistant tumor-infiltrating lymphocytes (TILs) could be a promising alternative approach. Unlike nucleases, which may induce genotoxic DNA double-strand breaks, multiplexed Zinc Finger Repressors (ZFR) offer a safer alternative for knocking out TME-related immunosuppressive factors. We epigenetically repressed PD-1 expression both in CAR-T cells and TILs from colorectal liver metastases. PD-1 repression did not affect T cell viability, proliferation, or functionality. In a murine B cell lymphoma model, PD-1-repressed CD19-CAR-T cells exhibited enhanced anti-tumor activity and improved survival. Notably, PD-1 repression alone did not increase cytotoxicity against a PD-L1-positive colorectal cell line in vitro. To further increase anti-tumor potency in this context, ZFR-expressing lentiviral vectors targeting PD-1 and other ICs (LAG-3, TIM-3, TIGIT) or TGFBR2 were developed, improving significantly the cytotoxic activity in TILs. This strategy highlights the potential to enhance tumor-reactive T cells and improve anti-cancer immunotherapies by epigenetically repressing immunosuppressive factors in the TME using multiplexed ZFRs.

cancer biology↗

Epigenetic control of multiple genes with a single lentiviral vector encoding transcriptional repressors fused to compact zinc finger arrays

Gene silencing without gene editing holds great potential for the development of safe therapeutic applications. Here, we describe a novel strategy to concomitantly repress multiple genes using zinc finger proteins fused to Kruppel-Associated Box repression domains (ZF-Rs). This was achieved via the optimization of a lentiviral system tailored for the delivery of ZF-Rs in hematopoietic cells. We showed that an optimal design of the lentiviral backbone is crucial to multiplex up to three ZF-Rs or two ZF-Rs and a chimeric antigen receptor. ZF-R expression had no impact on the integrity and functionality of transduced cells. Furthermore, gene repression in ZF-R-expressing T cells was highly efficient in vitro and in vivo during the entire monitoring period (up to ten weeks), and it was accompanied by epigenetic remodeling events. Finally, we described an approach to improve ZF-R specificity to illustrate the path towards the generation of ZF-Rs with a safe clinical profile. In conclusion, we successfully developed an epigenetic-based cell engineering approach for concomitant modulation of multiple gene expressions that bypass the risks associated with DNA editing.

bioengineering↗

Ku-binding motifs in RAG2, XLF, PAXX and MRI support functional redundancy during V(D)J recombination

The interaction of several partners with Ku through Ku-binding motifs (KBMs) in their sequences governs their enrolment in NHEJ repair complexes. Here, we first established more specifically the function of KBMs in V(D)J recombination as the molecular basis of functional redundancy between XLF and the NHEJ proteins MRI and PAXX. Then, given the functional redundancy between RAG2 and XLF, we explored the hypothesis of a KBM-mediated interaction between RAG2 and Ku. Through sequence alignment and biophysical methods, we identified a KBM at the C-terminus of RAG2 (R2CT) that mediates its interaction with Ku both in vitro and in cellulo. Notably, we showed that R2CT/Ku interaction is independent of the RAG nuclease activity. Finally, we demonstrated that the respective KBMs of RAG2 and XLF support their functional redundancy for V(D)J recombination.

molecular biology↗