Literature DB >> 34201955

The Influence of Mitochondrial Dynamics and Function on Retinal Ganglion Cell Susceptibility in Optic Nerve Disease.

Nicole A Muench1, Sonia Patel1, Margaret E Maes2, Ryan J Donahue1,3, Akihiro Ikeda4,5, Robert W Nickells1,5.   

Abstract

The important roles of mitochondrial function and dysfunction in the process of neurodegeneration are widely acknowledged. Retinal ganglion cells (RGCs) appear to be a highly vulnerable neuronal cell type in the central nervous system with respect to mitochondrial dysfunction but the actual reasons for this are still incompletely understood. These cells have a unique circumstance where unmyelinated axons must bend nearly 90° to exit the eye and then cross a translaminar pressure gradient before becoming myelinated in the optic nerve. This region, the optic nerve head, contains some of the highest density of mitochondria present in these cells. Glaucoma represents a perfect storm of events occurring at this location, with a combination of changes in the translaminar pressure gradient and reassignment of the metabolic support functions of supporting glia, which appears to apply increased metabolic stress to the RGC axons leading to a failure of axonal transport mechanisms. However, RGCs themselves are also extremely sensitive to genetic mutations, particularly in genes affecting mitochondrial dynamics and mitochondrial clearance. These mutations, which systemically affect the mitochondria in every cell, often lead to an optic neuropathy as the sole pathologic defect in affected patients. This review summarizes knowledge of mitochondrial structure and function, the known energy demands of neurons in general, and places these in the context of normal and pathological characteristics of mitochondria attributed to RGCs.

Entities:  

Keywords:  dominant optic atrophy; glaucoma; metabolism; mitochondria; neurodegeneration; optic nerve; retinal ganglion cells

Year:  2021        PMID: 34201955     DOI: 10.3390/cells10071593

Source DB:  PubMed          Journal:  Cells        ISSN: 2073-4409            Impact factor:   6.600


  209 in total

1.  Opa1 is essential for retinal ganglion cell synaptic architecture and connectivity.

Authors:  Pete A Williams; Malgorzata Piechota; Christopher von Ruhland; Elaine Taylor; James E Morgan; Marcela Votruba
Journal:  Brain       Date:  2012-02-01       Impact factor: 13.501

2.  Differential progression of structural and functional alterations in distinct retinal ganglion cell types in a mouse model of glaucoma.

Authors:  Luca Della Santina; Denise M Inman; Caroline B Lupien; Philip J Horner; Rachel O L Wong
Journal:  J Neurosci       Date:  2013-10-30       Impact factor: 6.167

3.  CNS axons globally increase axonal transport after peripheral conditioning.

Authors:  Fernando M Mar; Anabel R Simões; Sérgio Leite; Marlene M Morgado; Telma E Santos; Inês S Rodrigo; Carla A Teixeira; Thomas Misgeld; Mónica M Sousa
Journal:  J Neurosci       Date:  2014-04-23       Impact factor: 6.167

4.  Long-term in vivo imaging and measurement of dendritic shrinkage of retinal ganglion cells.

Authors:  Christopher Kai-shun Leung; Robert N Weinreb; Zhi Wei Li; Shu Liu; James D Lindsey; Nathan Choi; Lan Liu; Carol Yim-lui Cheung; Cong Ye; Kunliang Qiu; Li Jia Chen; Wing Ho Yung; Jonathan G Crowston; Mingliang Pu; Kwok Fai So; Chi Pui Pang; Dennis Shun Chiu Lam
Journal:  Invest Ophthalmol Vis Sci       Date:  2011-03-01       Impact factor: 4.799

5.  Bcl-2 inhibition of neural death: decreased generation of reactive oxygen species.

Authors:  D J Kane; T A Sarafian; R Anton; H Hahn; E B Gralla; J S Valentine; T Ord; D E Bredesen
Journal:  Science       Date:  1993-11-19       Impact factor: 47.728

6.  Morphology of the murine optic nerve.

Authors:  Chr Albrecht May; Elke Lütjen-Drecoll
Journal:  Invest Ophthalmol Vis Sci       Date:  2002-07       Impact factor: 4.799

7.  Genome-wide association analysis identifies TXNRD2, ATXN2 and FOXC1 as susceptibility loci for primary open-angle glaucoma.

Authors:  Jessica N Cooke Bailey; Stephanie J Loomis; Jae H Kang; R Rand Allingham; Puya Gharahkhani; Chiea Chuen Khor; Kathryn P Burdon; Hugues Aschard; Daniel I Chasman; Robert P Igo; Pirro G Hysi; Craig A Glastonbury; Allison Ashley-Koch; Murray Brilliant; Andrew A Brown; Donald L Budenz; Alfonso Buil; Ching-Yu Cheng; Hyon Choi; William G Christen; Gary Curhan; Immaculata De Vivo; John H Fingert; Paul J Foster; Charles Fuchs; Douglas Gaasterland; Terry Gaasterland; Alex W Hewitt; Frank Hu; David J Hunter; Anthony P Khawaja; Richard K Lee; Zheng Li; Paul R Lichter; David A Mackey; Peter McGuffin; Paul Mitchell; Sayoko E Moroi; Shamira A Perera; Keating W Pepper; Qibin Qi; Tony Realini; Julia E Richards; Paul M Ridker; Eric Rimm; Robert Ritch; Marylyn Ritchie; Joel S Schuman; William K Scott; Kuldev Singh; Arthur J Sit; Yeunjoo E Song; Rulla M Tamimi; Fotis Topouzis; Ananth C Viswanathan; Shefali Setia Verma; Douglas Vollrath; Jie Jin Wang; Nicole Weisschuh; Bernd Wissinger; Gadi Wollstein; Tien Y Wong; Brian L Yaspan; Donald J Zack; Kang Zhang; Epic-Norfolk Eye Study; Robert N Weinreb; Margaret A Pericak-Vance; Kerrin Small; Christopher J Hammond; Tin Aung; Yutao Liu; Eranga N Vithana; Stuart MacGregor; Jamie E Craig; Peter Kraft; Gareth Howell; Michael A Hauser; Louis R Pasquale; Jonathan L Haines; Janey L Wiggs
Journal:  Nat Genet       Date:  2016-01-11       Impact factor: 38.330

8.  Topical Coenzyme Q10 demonstrates mitochondrial-mediated neuroprotection in a rodent model of ocular hypertension.

Authors:  Benjamin Michael Davis; Kailin Tian; Milena Pahlitzsch; Jonathan Brenton; Nivedita Ravindran; Gibran Butt; Giulia Malaguarnera; Eduardo M Normando; Li Guo; M Francesca Cordeiro
Journal:  Mitochondrion       Date:  2017-05-24       Impact factor: 4.160

9.  Opa1 deficiency in a mouse model of autosomal dominant optic atrophy impairs mitochondrial morphology, optic nerve structure and visual function.

Authors:  Vanessa J Davies; Andrew J Hollins; Malgorzata J Piechota; Wanfen Yip; Jennifer R Davies; Kathryn E White; Phillip P Nicols; Michael E Boulton; Marcela Votruba
Journal:  Hum Mol Genet       Date:  2007-04-11       Impact factor: 6.150

10.  Duplication of TBK1 Stimulates Autophagy in iPSC-derived Retinal Cells from a Patient with Normal Tension Glaucoma.

Authors:  Budd A Tucker; Frances Solivan-Timpe; Ben R Roos; Kristin R Anfinson; Alan L Robin; Luke A Wiley; Robert F Mullins; John H Fingert
Journal:  J Stem Cell Res Ther       Date:  2014-01-25
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  6 in total

Review 1.  Differential susceptibility of retinal ganglion cell subtypes against neurodegenerative diseases.

Authors:  Ningzhi Zhang; Xuejun He; Yiqiao Xing; Ning Yang
Journal:  Graefes Arch Clin Exp Ophthalmol       Date:  2022-01-17       Impact factor: 3.117

Review 2.  Retinal Glutamate Neurotransmission: From Physiology to Pathophysiological Mechanisms of Retinal Ganglion Cell Degeneration.

Authors:  Isabella Boccuni; Richard Fairless
Journal:  Life (Basel)       Date:  2022-04-25

3.  A mutation in transmembrane protein 135 impairs lipid metabolism in mouse eyecups.

Authors:  Michael Landowski; Vijesh J Bhute; Tetsuya Takimoto; Samuel Grindel; Pawan K Shahi; Bikash R Pattnaik; Sakae Ikeda; Akihiro Ikeda
Journal:  Sci Rep       Date:  2022-01-14       Impact factor: 4.996

Review 4.  The Role of Axonal Transport in Glaucoma.

Authors:  Mariana Santana Dias; Xiaoyue Luo; Vinicius Toledo Ribas; Hilda Petrs-Silva; Jan Christoph Koch
Journal:  Int J Mol Sci       Date:  2022-04-01       Impact factor: 5.923

Review 5.  Remodeling of the Lamina Cribrosa: Mechanisms and Potential Therapeutic Approaches for Glaucoma.

Authors:  Ryan G Strickland; Mary Anne Garner; Alecia K Gross; Christopher A Girkin
Journal:  Int J Mol Sci       Date:  2022-07-22       Impact factor: 6.208

Review 6.  Treatment of Glaucoma with Natural Products and Their Mechanism of Action: An Update.

Authors:  Ru Hui Sim; Srinivasa Rao Sirasanagandla; Srijit Das; Seong Lin Teoh
Journal:  Nutrients       Date:  2022-01-26       Impact factor: 5.717

  6 in total

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