AI Article Synopsis

  • RNA interference (RNAi) utilizes short double-stranded RNA (siRNA) to regulate gene expression and develop treatments, but effectively silencing genes requires multiple siRNAs, which can be complex and lengthy.
  • A new system called BstXI-based shotgun cloning (BSG) was created to simplify the process of generating multiplex siRNA vectors, using three entry vectors and a retroviral destination vector for efficient assembly.
  • In experiments, this system successfully silenced genes β-catenin and Smad4 in mesenchymal stem cells, demonstrating its potential in studying gene functions and therapeutic development.

Article Abstract

As an important post-transcriptional regulatory machinery mediated by ∼21nt short-interfering double-stranded RNA (siRNA), RNA interference (RNAi) is a powerful tool to delineate gene functions and develop therapeutics. However, effective RNAi-mediated silencing requires multiple siRNAs for given genes, a time-consuming process to accomplish. Here, we developed a user-friendly system for single-vector-based multiplex siRNA expression by exploiting the unique feature of restriction endonuclease BstXI. Specifically, we engineered a BstXI-based shotgun cloning (BSG) system, which consists of three entry vectors with siRNA expression units (SiEUs) flanked with distinct BstXI sites, and a retroviral destination vector for shotgun SiEU assembly. For proof-of-principle studies, we constructed multiplex siRNA vectors silencing β-catenin and/or Smad4 and assessed their functionalities in mesenchymal stem cells (MSCs). Pooled siRNA cassettes were effectively inserted into respective entry vectors in one-step, and shotgun seamless assembly of pooled BstXI-digested SiEU fragments into a retroviral destination vector followed. We found these multiplex siRNAs effectively silenced β-catenin and/or Smad4, and inhibited Wnt3A- or BMP9-specific reporters and downstream target expression in MSCs. Furthermore, multiplex silencing of β-catenin and/or Smad4 diminished Wnt3A and/or BMP9-induced osteogenic differentiation. Collectively, the BSG system is a user-friendly technology for single-vector-based multiplex siRNA expression to study gene functions and develop experimental therapeutics.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6760290PMC
http://dx.doi.org/10.1021/acssynbio.9b00203DOI Listing

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