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Method Article

Subconjunctival Administration of Adeno-associated Virus Vectors in Small Animal Models

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DOI:

10.3791/63532

March 16th, 2022

In This Article

Summary

In this manuscript, subconjunctival injection is demonstrated as a valid vector delivery method for ocular tissues in mice using an injection system consisting of an infusion/withdrawal syringe pump and a gastight removable syringe coupled with microinjection needles. This injection system is also adaptable for other intraocular administration routes.

Abstract

Ocular diseases include a wide range of inherited genetic and acquired disorders that are appealing targets for local drug delivery due to their relative ease of accessibility via multiple administration routes. Subconjunctival (SCJ) injections offer advantages over other intraocular administration routes as they are simple, safe, and usually performed in an outpatient setting. SCJ injections in small animals usually require the assistance of an operating microscope due to the size of the eye. Previous work has demonstrated that SCJ injection of specific adeno-associated virus (AAV) serotypes is a valid gene delivery strategy for targeted transduction of the ocular surface, eye muscle, cornea, and optic nerve, providing a potential approach for the treatment of many ocular diseases.

Herein, a detailed protocol is presented for SCJ injections in a mouse model using an injection system consisting of a programmable infusion/withdrawal syringe pump (which allows for consistent and precise injection speed and pressure) and a gastight removable syringe coupled with microinjection needles. The injection system is also adaptable for other intraocular administration routes such as intrastromal, intracameral, intravitreal, and subretinal injections in small animals. Although the delivery of adeno-associated viral vectors for ocular gene therapy studies is described, the protocol herein can also be adapted for a variety of ophthalmic solutions in small animal models. The key practical steps in the administration route, setup for the injection platform, preparation of the injection, and tips from direct experience will be discussed in detail. In addition, common validation techniques for AAV delivery confirmation to the desired tissues will also be briefly discussed.

Introduction

Ocular diseases encompass a broad range of both genetic and acquired disorders. In 2015, an estimated 36 million people were legally blind worldwide, and over 1 billion people suffer from at least some level of visual impairment, highlighting the need to scale up alleviation efforts at all levels1. The main methods for delivering ocular medications include both topical and local administration, such as eye drops or subconjunctival (SCJ), intracameral, intravitreal, and subretinal injections. Although noninvasive topical therapy is the most common delivery method for ophthalmic drugs and is extensively used for many anterior segment disorders, t....

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Protocol

All animal procedures were performed in accordance with the regulations of the Institutional Animal Care and Use Committee at the University of North Carolina at Chapel Hill. The use of AAV vectors is a Biosafety Level 1 biohazard risk. Wear proper personal protective equipment, including a lab coat, gloves, and goggles when handling AAV. For the experiment described herein, a recombinant AAV vector packaged with the serotype 8 capsid and encoding a generic ubiquitous cytomegalovirus (CMV) promoter controlling the expression of green fluorescence protein (GFP) was utilized.

1. AAV vector handling and storage

  1. Sto....

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Results

Solution injected into the subconjunctival space presents as a bleb depending on the injection volume.
In this experiment, 7 µL of AAV (7 × 109 viral genomes (vg)/eye) mixed with fluorescein at a final concentration of 0.1% was injected with a 36 G needle under a stereomicroscope, and the injection speed/pressure was held constant using a programmable syringe pump at 1 µL/s. A bleb can appear upon injection (arrow). A microscopic view of AAV vector administration to the murine SCJ compartm.......

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Discussion

AAV-mediated gene therapy holds great potential for the treatment of ocular diseases. Current ocular gene therapy relies on two major local administration routes, intravitreal and subretinal injections. Unfortunately, both routes are invasive and can cause serious complications, including retinal detachment, cataract formation, and endophthalmitis. Thus, the investigation of relatively less invasive routes, such as SCJ injection, is of great interest.

Although this technique is relatively stra.......

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Disclosures

The authors have no conflicts of interest to disclose.

Acknowledgements

The authors thank the Vector Core at the University of North Carolina for providing the scAAV8-GFP vectors used in this study, the CGIBD Histology Core, and the laboratory of Dr. Brian C. Gilger for their assistance with the clinical assessment aspects of this study. This study was supported by the Pfizer-NC Biotech Distinguished Postdoctoral Fellowship and a Career Development Award from the American Society of Gene & Cell Therapy and the Cystic Fibrosis Foundation. The content is solely the responsibility of the authors and does not necessarily represent the official views of the American Society of Gene & Cell Therapy or the Cystic Fibrosis Foundation.....

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
36 G NanoFil NeedlesWorld Precision InstrumentsNF36BV-2
AAV vector  University of North Carolina at Chapel Hill  /
AcepromazineHenry ScheinNDC 11695-0079-8
anti-GFP antibodyAVES labs Inc.
Digital cameraCannonCannon EOS T5i
DNA/RNA extraction kitQiagen80204
 ForcepsFine Science ToolsF6521
Hamilton syringeHamilton7654-01
India inkStatLabNC9903975
Ketamine hydrochloride injection solutionHenry ScheinNDC 0409-2051-05
Moisture-resistant filmParafilm807-6
Polyethylene tubingBecton Dickinson and Company427401
Proparacaine 0.1%Bausch Health USNDC 24208-730-06
Rebound tonometerTonovet/
Sodium fluorescein solutionSigma-Aldich46960
Standard Infuse/Withdraw Pump 11 Pico Plus Elite Programmable Syringe PumpHarvard Bioscience70-4504
Stereo microscopyeLeicaMz6
Tetracaine Hydrochloride Ophthalmic Solution 0.5%Bausch and LombRx only
Topical ointmentGenTealNDC 0078-0429-47
XylazineAkornNDC 59399-110-20
Zone-Quick Phenol Red Thread Box 100 ThreadsZONE-QUICKPO6448

References

  1. Bourne, R. R. A., et al. Magnitude, temporal trends, and projections of the global prevalence of blindness and distance and near vision impairment: a systematic review and meta-analysis. The Lancet Global Health. 5 (9), 888-897 (2017).
  2. Swetledge, S., Jung, J. P., Carter, R., Sabliov, C.

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Tags

Subconjunctival InjectionAAV VectorsOcular Gene TherapyInjection SystemSyringe PumpMicroinjection NeedlesImmunofluorescence StainingQuantitative PCROcular Drug Delivery