Literature DB >> 27150100

Bright-Field Imaging and Optical Coherence Tomography of the Mouse Posterior Eye.

Mark P Krebs1, Mei Xiao2, Keith Sheppard2, Wanda Hicks2, Patsy M Nishina2.   

Abstract

Noninvasive live imaging has been used extensively for ocular phenotyping in mouse vision research. Bright-field imaging and optical coherence tomography (OCT) are two methods that are particularly useful for assessing the posterior mouse eye (fundus), including the retina, retinal pigment epithelium, and choroid, and are widely applied due to the commercial availability of sophisticated instruments and software. Here, we provide a guide to using these approaches with an emphasis on post-acquisition image processing using Fiji, a bundled version of the Java-based public domain software ImageJ. A bright-field fundus imaging protocol is described for acquisition of multi-frame videos, followed by image registration to reduce motion artifacts, averaging to reduce noise, shading correction to compensate for uneven illumination, filtering to improve image detail, and rotation to adjust orientation. An OCT imaging protocol is described for acquiring replicate volume scans, with subsequent registration and averaging to yield three-dimensional datasets that show reduced motion artifacts and enhanced detail. The Fiji algorithms used in these protocols are designed for batch processing and are freely available. The image acquisition and processing approaches described here may facilitate quantitative phenotyping of the mouse eye in drug discovery, mutagenesis screening, and the functional cataloging of mouse genes by individual laboratories and large-scale projects, such as the Knockout Mouse Phenotyping Project and International Mouse Phenotyping Consortium.

Entities:  

Keywords:  Bright-field fundus imaging; Mouse eye phenotyping; Mouse vision research; Noninvasive ocular imaging; Optical coherence tomography

Mesh:

Year:  2016        PMID: 27150100     DOI: 10.1007/978-1-4939-3661-8_20

Source DB:  PubMed          Journal:  Methods Mol Biol        ISSN: 1064-3745


  9 in total

1.  Identification of Arhgef12 and Prkci as genetic modifiers of retinal dysplasia in the Crb1rd8 mouse model.

Authors:  Sonia M Weatherly; Gayle B Collin; Jeremy R Charette; Lisa Stone; Nattaya Damkham; Lillian F Hyde; James G Peterson; Wanda Hicks; Gregory W Carter; Jürgen K Naggert; Mark P Krebs; Patsy M Nishina
Journal:  PLoS Genet       Date:  2022-06-08       Impact factor: 6.020

2.  Using Vascular Landmarks to Orient 3D Optical Coherence Tomography Images of the Mouse Eye.

Authors:  Mark P Krebs
Journal:  Curr Protoc Mouse Biol       Date:  2017-09-08

3.  Analysis of Damage and Wound Healing in the Retinal Pigmented Epithelium.

Authors:  K J Donaldson; W F Wu; H Skelton; S Markand; S Ferdous; J Sellers; M A Chrenek; I Gefke; S M Kim; J Rha; K L Liao; H E Grossniklaus; Y Jiang; J Kong; J H Boatright; John M Nickerson
Journal:  Adv Exp Med Biol       Date:  2019       Impact factor: 2.622

4.  Identification of genes required for eye development by high-throughput screening of mouse knockouts.

Authors:  Bret A Moore; Brian C Leonard; Lionel Sebbag; Sydney G Edwards; Ann Cooper; Denise M Imai; Ewan Straiton; Luis Santos; Christopher Reilly; Stephen M Griffey; Lynette Bower; David Clary; Jeremy Mason; Michel J Roux; Hamid Meziane; Yann Herault; Colin McKerlie; Ann M Flenniken; Lauryl M J Nutter; Zorana Berberovic; Celeste Owen; Susan Newbigging; Hibret Adissu; Mohammed Eskandarian; Chih-Wei Hsu; Sowmya Kalaga; Uchechukwu Udensi; Chinwe Asomugha; Ritu Bohat; Juan J Gallegos; John R Seavitt; Jason D Heaney; Arthur L Beaudet; Mary E Dickinson; Monica J Justice; Vivek Philip; Vivek Kumar; Karen L Svenson; Robert E Braun; Sara Wells; Heather Cater; Michelle Stewart; Sharon Clementson-Mobbs; Russell Joynson; Xiang Gao; Tomohiro Suzuki; Shigeharu Wakana; Damian Smedley; J K Seong; Glauco Tocchini-Valentini; Mark Moore; Colin Fletcher; Natasha Karp; Ramiro Ramirez-Solis; Jacqueline K White; Martin Hrabe de Angelis; Wolfgang Wurst; Sara M Thomasy; Paul Flicek; Helen Parkinson; Steve D M Brown; Terrence F Meehan; Patsy M Nishina; Stephen A Murray; Mark P Krebs; Ann-Marie Mallon; K C Kent Lloyd; Christopher J Murphy; Ala Moshiri
Journal:  Commun Biol       Date:  2018-12-21

5.  A Splicing Mutation in Slc4a5 Results in Retinal Detachment and Retinal Pigment Epithelium Dysfunction.

Authors:  Gayle B Collin; Lanying Shi; Minzhong Yu; Nurten Akturk; Jeremy R Charette; Lillian F Hyde; Sonia M Weatherly; Martin F Pera; Jürgen K Naggert; Neal S Peachey; Patsy M Nishina; Mark P Krebs
Journal:  Int J Mol Sci       Date:  2022-02-17       Impact factor: 5.923

6.  Genetic Interaction between Mfrp and Adipor1 Mutations Affect Retinal Disease Phenotypes.

Authors:  Navdeep Gogna; Sonia Weatherly; Fuxin Zhao; Gayle B Collin; Jai Pinkney; Lisa Stone; Jürgen K Naggert; Gregory W Carter; Patsy M Nishina
Journal:  Int J Mol Sci       Date:  2022-01-30       Impact factor: 5.923

7.  A Dpagt1 Missense Variant Causes Degenerative Retinopathy without Myasthenic Syndrome in Mice.

Authors:  Lillian F Hyde; Yang Kong; Lihong Zhao; Sriganesh Ramachandra Rao; Jieping Wang; Lisa Stone; Andrew Njaa; Gayle B Collin; Mark P Krebs; Bo Chang; Steven J Fliesler; Patsy M Nishina; Jürgen K Naggert
Journal:  Int J Mol Sci       Date:  2022-10-09       Impact factor: 6.208

Review 8.  Mouse Models of Inherited Retinal Degeneration with Photoreceptor Cell Loss.

Authors:  Gayle B Collin; Navdeep Gogna; Bo Chang; Nattaya Damkham; Jai Pinkney; Lillian F Hyde; Lisa Stone; Jürgen K Naggert; Patsy M Nishina; Mark P Krebs
Journal:  Cells       Date:  2020-04-10       Impact factor: 7.666

9.  Mouse models of human ocular disease for translational research.

Authors:  Mark P Krebs; Gayle B Collin; Wanda L Hicks; Minzhong Yu; Jeremy R Charette; Lan Ying Shi; Jieping Wang; Jürgen K Naggert; Neal S Peachey; Patsy M Nishina
Journal:  PLoS One       Date:  2017-08-31       Impact factor: 3.240

  9 in total

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