Literature DB >> 29879653

A "top-down" approach to actuate poly(amine-co-ester) terpolymers for potent and safe mRNA delivery.

Yuhang Jiang1, Alice Gaudin1, Junwei Zhang2, Tushar Agarwal1, Eric Song1, Amy C Kauffman1, Gregory T Tietjen1, Yongheng Wang1, Zhaozhong Jiang1, Christopher J Cheng3, W Mark Saltzman4.   

Abstract

Gene delivery is known to be a complicated multi-step biological process. It has been observed that subtle differences in the structure and properties of polymeric materials used for gene delivery can lead to dramatic differences in transfection efficiency. Therefore, screening of properties is pivotal to optimizing the polymer. So far, most polymeric materials are built in a "bottom-up" manner, i.e. synthesized from monomers that allow modification of polymer composition or structural factors. With this method, we previously synthesized and screened a library of biodegradable poly(amine-co-ester) (PACE) terpolymers for optimized DNA delivery. However, it can be tedious and time consuming to synthesize a polymer library for screening, particularly when small changes of a factor need to be tested, when multiple factors are involved, and when the effects of different factors are synergistic. In the present work, we evaluate the potential of PACE to deliver mRNA. After observing that mRNA transfection efficiency was highly dependent on both end group composition and molecular weight (MW) of PACE in a synergistic manner, we developed a "top-down" process we called actuation, to simultaneously vary these two factors. Some of the actuated PACE (aPACE) materials presented superior mRNA delivery properties compared to regular PACE, with up to a 106-fold-increase in mRNA transfection efficiency in vitro. Moreover, when aPACE was used to deliver mRNA coding for erythropoietin (EPO) in vivo, it produced high levels of EPO in the blood for up to 48 h without inducing systemic toxicity. This polymer constitutes a new delivery vehicle for mRNA-based treatments that provides safe yet potent protein production.
Copyright © 2018 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Erythropoitin; Gene delivery; Nanoparticle; Poly(amine-co-ester); Polyplex; mRNA

Mesh:

Substances:

Year:  2018        PMID: 29879653      PMCID: PMC6038928          DOI: 10.1016/j.biomaterials.2018.05.043

Source DB:  PubMed          Journal:  Biomaterials        ISSN: 0142-9612            Impact factor:   12.479


  37 in total

1.  mRNA transcript therapy.

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Authors:  D V Schaffer; N A Fidelman; N Dan; D A Lauffenburger
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Review 2.  mRNA-based modalities for infectious disease management.

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5.  Quantitating Endosomal Escape of a Library of Polymers for mRNA Delivery.

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