A Combinatorial Polymer Library Approach Yields Insight into Nonviral Gene Delivery
Top Cited Papers
- 29 May 2008
- journal article
- research article
- Published by American Chemical Society (ACS) in Accounts of Chemical Research
- Vol. 41 (6) , 749-759
- https://doi.org/10.1021/ar7002336
Abstract
The potential of gene therapy to benefit human health is tremendous because almost all human diseases have a genetic component, from untreatable monogenic disorders to cancer and heart disease. Unfortunately, a method for gene therapy that is both effective and safe has remained elusive. It has been said that “there are only three problems in gene therapy - delivery, delivery, and delivery.” (quote from I. M. Verma in Jaroff, L. TIME, 1999; Jan 11). This Account describes an alternative strategy to viral gene delivery: the design of biodegradable polymers that are able to deliver DNA like a synthetic virus. Using high-throughput synthesis and screening techniques, we have created libraries of over 2000 structurally unique poly(β-amino esters) (PBAEs). PBAEs are formed by the conjugate addition of amines to diacrylates. These biomaterials are promising for nonviral gene delivery due to their ability to condense plasmid DNA into small and stable nanoparticles and their ability to promote cellular uptake and endosomal escape. Our laboratory has iteratively improved PBAE nanoparticles through polymer end modifications and nanoparticle coatings. Lead PBAEs have high gene delivery efficacy and low cytotoxicity both in vitro and in vivo. Certain polymer structural characteristics are important for effective gene delivery. The best PBAEs are linear polymers of ∼10 kDa that contain hydroxyl side chains and primary amine end groups. These polymers bind DNA to form nanoparticles that are small (in vitro gene delivery to human primary cells. In vivo, these PBAE/DNA particles are promising as cancer therapeutics. This Account summarizes the results of our laboratory in using a combinatorial polymer library approach to elucidate polymer structure/function relationships and enable the development of polymeric gene delivery nanoparticles with viral-like efficacy.Keywords
This publication has 43 references indexed in Scilit:
- Combinatorial Modification of Degradable Polymers Enables Transfection of Human Cells Comparable to AdenovirusAdvanced Materials, 2007
- Rapid Optimization of Gene Delivery by Parallel End-modification of Poly(β-amino ester)sMolecular Therapy, 2007
- Nanoparticulate delivery of suicide DNA to murine prostate and prostate tumorsThe Prostate, 2007
- Rapid Optimization of Gene Delivery by Parallel End-modification of Poly(β-amino ester)sMolecular Therapy, 2007
- Synthesis of Poly(β-amino ester)s with Thiol-Reactive Side Chains for DNA DeliveryJournal of the American Chemical Society, 2006
- Biodegradable Polymeric Vectors for Gene Delivery to Human Endothelial CellsBioconjugate Chemistry, 2006
- Polymers for gene delivery across length scalesNature Materials, 2006
- Parallel Synthesis and Biophysical Characterization of a Degradable Polymer Library for Gene DeliveryJournal of the American Chemical Society, 2003
- Integrin targeting using RGD‐PEI conjugates for in vitro gene transferThe Journal of Gene Medicine, 2003
- Measuring the pH environment of DNA delivered using nonviral vectors: Implications for lysosomal traffickingBiotechnology & Bioengineering, 2002