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Updated: Sep 25, 2026

Cloning and Large-Scale Production of High-Capacity Adenoviral Vectors Based on the Human Adenovirus Type 5
Published on: January 28, 2016
Production and Storage of High-Capacity Adenoviral Vectors for the Delivery of Advanced CRISPR Systems
Xiaoling Wang1, Jin Liu1, Josephine M Janssen1
1Department of Cell and Chemical Biology, Leiden University Medical Center, Einthovenweg 20, Leiden, 2333 ZC, The Netherlands.
Abstract:
Genome editing based on engineered CRISPR systems is advancing rapidly, with the field increasingly moving toward approaches that avoid the induction of mutagenic double-stranded DNA breaks (e.g., RNA-programmable base editing, prime editing, and donor DNA transposition). These nuclease-free strategies often rely on large or multi-component molecular assemblies that can include gene-sized donor DNA substrates. There is, nonetheless, a paucity of vehicles capable of delivering such large and complex genome-editing components effectively and, ideally, in defined stoichiometric ratios. High-capacity adenoviral vector particles (AdVPs) offer an attractive set of features to address these challenges, including robust cell transduction levels regardless of mitotic status, exceptional payload capacity (up to ~36 kb), strict chromosomal nonintegrating character, and the complete absence of viral coding sequences. Hence, AdVPs can serve as biological nanoparticles suitable for the evaluation and application of next-generation CRISPR technologies in physiologically relevant cellular contexts, regardless of the size and number of the attendant tools. Here, after summarizing the key characteristics of earlier- and latest-generation adenoviral vector platforms, we describe protocols for producing AdVPs, including vectors that deliver multiplexing, prime-editing, and orthogonal nuclease constructs. Finally, we highlight important considerations for designing AdVP production reagents and validate a storage buffer that preserves AdVP functionality after repeated freeze-thaw cycles.

