Literature DB >> 25902507

siRNA-based spherical nucleic acids reverse impaired wound healing in diabetic mice by ganglioside GM3 synthase knockdown.

Pratik S Randeria1, Mark A Seeger2, Xiao-Qi Wang2, Heather Wilson2, Desmond Shipp2, Chad A Mirkin3, Amy S Paller4.   

Abstract

Spherical nucleic acid (SNA) gold nanoparticle conjugates (13-nm-diameter gold cores functionalized with densely packed and highly oriented nucleic acids) dispersed in Aquaphor have been shown to penetrate the epidermal barrier of both intact mouse and human skin, enter keratinocytes, and efficiently down-regulate gene targets. ganglioside-monosialic acid 3 synthase (GM3S) is a known target that is overexpressed in diabetic mice and responsible for causing insulin resistance and impeding wound healing. GM3S SNAs increase keratinocyte migration and proliferation as well as insulin and insulin-like growth factor-1 (IGF1) receptor activation under both normo- and hyperglycemic conditions. The topical application of GM3S SNAs (50 nM) to splinted 6-mm-diameter full-thickness wounds in diet-induced obese diabetic mice decreases local GM3S expression by >80% at the wound edge through an siRNA pathway and fully heals wounds clinically and histologically within 12 d, whereas control-treated wounds are only 50% closed. Granulation tissue area, vascularity, and IGF1 and EGF receptor phosphorylation are increased in GM3S SNA-treated wounds. These data capitalize on the unique ability of SNAs to naturally penetrate the skin and enter keratinocytes without the need for transfection agents. Moreover, the data further validate GM3 as a mediator of the delayed wound healing in type 2 diabetes and support regional GM3 depletion as a promising therapeutic direction.

Entities:  

Keywords:  GM3 synthase; SNA; diabetic wound healing; nanoparticle; siRNA

Mesh:

Substances:

Year:  2015        PMID: 25902507      PMCID: PMC4426446          DOI: 10.1073/pnas.1505951112

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  36 in total

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6.  Inhibiting glycosphingolipid synthesis improves glycemic control and insulin sensitivity in animal models of type 2 diabetes.

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7.  Epidermal growth factor and insulin-like growth factor I enhance keratinocyte migration.

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10.  Pharmacological inhibition of glucosylceramide synthase enhances insulin sensitivity.

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Journal:  Diabetes       Date:  2007-02-07       Impact factor: 9.461

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  53 in total

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Review 3.  Enabling Technologies for Personalized and Precision Medicine.

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7.  Attenuation of Abnormal Scarring Using Spherical Nucleic Acids Targeting Transforming Growth Factor Beta 1.

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Review 9.  Nucleic acid delivery into skin for the treatment of skin disease: Proofs-of-concept, potential impact, and remaining challenges.

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