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Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Towards Physiologically and Tightly Regulated Vectored Antibody Therapies
Audrey Page1, Floriane Fusil1, François-Loïc Cosset1
1CIRICentre International de Recherche en Infectiologie, Univ Lyon, Université Claude Bernard Lyon 1, Inserm, U1111, CNRS, UMR5308, ENS Lyon, 46 allée d'Italie, F-69007 Lyon, France.
Abstract:
Cancers represent highly significant health issues and the options for their treatment are often not efficient to cure the disease. Immunotherapy strategies have been developed to modulate the patient's immune system in order to eradicate cancerous cells. For instance, passive immunization consists in the administration at high doses of exogenously produced monoclonal antibodies directed either against tumor antigen or against immune checkpoint inhibitors. Its main advantage is that it provides immediate immunity, though during a relatively short period, which consequently requires frequent injections. To circumvent this limitation, several approaches, reviewed here, have emerged to induce in vivo antibody secretion at physiological doses. Gene delivery vectors, such as adenoviral vectors or adeno-associated vectors, have been designed to induce antibody secretion in vivo after in situ cell modification, and have driven significant improvements in several cancer models. However, anti-idiotypic antibodies and escape mutants have been detected, probably because of both the continuous expression of antibodies and their expression by unspecialized cell types. To overcome these hurdles, adoptive transfer of genetically modified B cells that secrete antibodies either constitutively or in a regulated manner have been developed by ex vivo transgene insertion with viral vectors. Recently, with the emergence of gene editing technologies, the endogenous B cell receptor loci of B cells have been modified with the clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR-associated endonuclease (Cas-9) system to change their specificity in order to target a given antigen. The expression of the modified BCR gene hence follows the endogenous regulation mechanisms, which may prevent or at least reduce side effects. Although these approaches seem promising for cancer treatments, major questions, such as the persistence and the re-activation potential of these engineered cells, remain to be addressed in clinically relevant animal models before translation to humans.
Insights
New cancer immunotherapy strategies focus on inducing in vivo antibody secretion. Gene editing of B cells offers a promising approach to enhance cancer treatment by improving antibody specificity and regulation.
Area of Science:
- Oncology
- Immunology
- Biotechnology
Background:
- Cancer remains a significant health challenge with limited curative treatment options.
- Immunotherapy aims to harness the patient's immune system to eliminate cancer cells.
- Current passive immunization methods using monoclonal antibodies have limitations such as short duration and frequent administration.
Purpose of the Study:
- To review emerging strategies for inducing in vivo antibody secretion for cancer treatment.
- To discuss the advantages and limitations of various gene delivery and cell modification techniques.
- To explore the potential of gene editing technologies, like CRISPR/Cas9, for enhancing cancer immunotherapy.
Main Methods:
- Review of gene delivery vectors (adenoviral, adeno-associated) for in vivo antibody secretion.
- Analysis of adoptive transfer of genetically modified B cells for antibody production.
- Exploration of CRISPR/Cas9 gene editing to modify B cell receptor specificity for targeted antigen recognition.
Main Results:
- Gene delivery vectors have shown improvements in cancer models but face challenges like anti-idiotypic antibodies and escape mutants.
- Genetically modified B cells offer regulated antibody secretion, potentially reducing side effects.
- CRISPR/Cas9-mediated modification of endogenous B cell receptors allows for antigen-specific antibody production following natural regulatory mechanisms.
Conclusions:
- In vivo antibody induction strategies, particularly B cell modification using gene editing, show promise for cancer therapy.
- Further research is needed to address the persistence and reactivation potential of engineered cells in clinically relevant models before human translation.
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