Literature DB >> 27110730

Nanofiber Scaffold-Based Tissue-Engineered Retinal Pigment Epithelium to Treat Degenerative Eye Diseases.

Nathan A Hotaling1,2, Vladimir Khristov3, Qin Wan3, Ruchi Sharma2, Balendu Shekhar Jha2, Mostafa Lotfi3, Arvydas Maminishkis3, Carl G Simon1, Kapil Bharti2.   

Abstract

Clinical-grade manufacturing of a functional retinal pigment epithelium (RPE) monolayer requires reproducing, as closely as possible, the natural environment in which RPE grows. In vitro, this can be achieved by a tissue engineering approach, in which the RPE is grown on a nanofibrous biological or synthetic scaffold. Recent research has shown that nanofiber scaffolds perform better for cell growth and transplantability compared with their membrane counterparts and that the success of the scaffold in promoting cell growth/function is not heavily material dependent. With these strides, the field has advanced enough to begin to consider implementation of one, or a combination, of the tissue engineering strategies discussed herein. In this study, we review the current state of tissue engineering research for in vitro culture of RPE/scaffolds and the parameters for optimal scaffold design that have been uncovered during this research. Next, we discuss production methods and manufacturers that are capable of producing the nanofiber scaffolds in such a way that would be biologically, regulatory, clinically, and commercially viable. Then, a discussion of how the scaffolds could be characterized, both morphologically and mechanically, to develop a testing process that is viable for regulatory screening is performed. Finally, an example of a tissue-engineered RPE/scaffold construct is given to provide the reader a framework for understanding how these pieces could fit together to develop a tissue-engineered RPE/scaffold construct that could pass regulatory scrutiny and can be commercially successful.

Mesh:

Year:  2016        PMID: 27110730      PMCID: PMC4904235          DOI: 10.1089/jop.2015.0157

Source DB:  PubMed          Journal:  J Ocul Pharmacol Ther        ISSN: 1080-7683            Impact factor:   2.671


  84 in total

Review 1.  A tissue-engineered approach towards retinal repair: scaffolds for cell transplantation to the subretinal space.

Authors:  Sara Royce Hynes; Erin B Lavik
Journal:  Graefes Arch Clin Exp Ophthalmol       Date:  2010-02-19       Impact factor: 3.117

2.  Rapid and efficient directed differentiation of human pluripotent stem cells into retinal pigmented epithelium.

Authors:  David E Buchholz; Britney O Pennington; Roxanne H Croze; Cassidy R Hinman; Peter J Coffey; Dennis O Clegg
Journal:  Stem Cells Transl Med       Date:  2013-04-18       Impact factor: 6.940

3.  Adrenergic receptor activated ion transport in human fetal retinal pigment epithelium.

Authors:  R H Quinn; J N Quong; S S Miller
Journal:  Invest Ophthalmol Vis Sci       Date:  2001-01       Impact factor: 4.799

4.  Reengineering of aged Bruch's membrane to enhance retinal pigment epithelium repopulation.

Authors:  Tongalp H Tezel; Lucian V Del Priore; Henry J Kaplan
Journal:  Invest Ophthalmol Vis Sci       Date:  2004-09       Impact factor: 4.799

Review 5.  Development of human embryonic stem cell therapies for age-related macular degeneration.

Authors:  Amanda-Jayne F Carr; Matthew J K Smart; Conor M Ramsden; Michael B Powner; Lyndon da Cruz; Peter J Coffey
Journal:  Trends Neurosci       Date:  2013-04-17       Impact factor: 13.837

6.  Derivation of functional retinal pigmented epithelium from induced pluripotent stem cells.

Authors:  David E Buchholz; Sherry T Hikita; Teisha J Rowland; Amy M Friedrich; Cassidy R Hinman; Lincoln V Johnson; Dennis O Clegg
Journal:  Stem Cells       Date:  2009-10       Impact factor: 6.277

7.  Primordium of an artificial Bruch's membrane made of nanofibers for engineering of retinal pigment epithelium cell monolayers.

Authors:  Patrick H Warnke; Mohammad Alamein; Stuart Skabo; Sebastien Stephens; Robert Bourke; Peter Heiner; Qin Liu
Journal:  Acta Biomater       Date:  2013-08-02       Impact factor: 8.947

8.  Experimental models for study of retinal pigment epithelial physiology and pathophysiology.

Authors:  Arvydas Maminishkis; Sheldon S Miller
Journal:  J Vis Exp       Date:  2010-11-06       Impact factor: 1.355

9.  A regulatory loop involving PAX6, MITF, and WNT signaling controls retinal pigment epithelium development.

Authors:  Kapil Bharti; Melanie Gasper; Jingxing Ou; Martha Brucato; Katharina Clore-Gronenborn; James Pickel; Heinz Arnheiter
Journal:  PLoS Genet       Date:  2012-07-05       Impact factor: 5.917

10.  Human RPE stem cells grown into polarized RPE monolayers on a polyester matrix are maintained after grafting into rabbit subretinal space.

Authors:  Boris V Stanzel; Zengping Liu; Sudawadee Somboonthanakij; Warapat Wongsawad; Ralf Brinken; Nicole Eter; Barbara Corneo; Frank G Holz; Sally Temple; Jeffrey H Stern; Timothy A Blenkinsop
Journal:  Stem Cell Reports       Date:  2014-01-02       Impact factor: 7.765

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  16 in total

1.  A switchable positive and negative air pressure device for efficient and gentle handling of nanofiber scaffolds.

Authors:  Nathan A Hotaling; Vladimir Khristov; Arvydas Maminishkis; Kapil Bharti; Carl G Simon
Journal:  Rev Sci Instrum       Date:  2017-10       Impact factor: 1.523

2.  Soy Protein Nanofiber Scaffolds for Uniform Maturation of Human Induced Pluripotent Stem Cell-Derived Retinal Pigment Epithelium.

Authors:  Michael A Phelan; Kamil Kruczek; John H Wilson; Matthew J Brooks; Charles T Drinnan; Florian Regent; Jonathan A Gerstenhaber; Anand Swaroop; Peter I Lelkes; Tiansen Li
Journal:  Tissue Eng Part C Methods       Date:  2020-08       Impact factor: 3.056

Review 3.  Interpenetrating polymeric network (IPNs) in ophthalmic drug delivery: Breaking the barriers.

Authors:  Sachin Rathod
Journal:  Int Ophthalmol       Date:  2022-09-02       Impact factor: 2.029

Review 4.  Application of stem cell-derived retinal pigmented epithelium in retinal degenerative diseases: present and future.

Authors:  Mingyue Luo; Youxin Chen
Journal:  Int J Ophthalmol       Date:  2018-01-18       Impact factor: 1.779

Review 5.  Retinal Tissue Bioengineering, Materials and Methods for the Treatment of Glaucoma.

Authors:  Sanaz Behtaj; Andreas Öchsner; Yuri G Anissimov; Maksym Rybachuk
Journal:  Tissue Eng Regen Med       Date:  2020-05-10       Impact factor: 4.169

6.  Activin A improves retinal pigment epithelial cell survival on stiff but not soft substrates.

Authors:  Corina E White; Bryan Kwok; Ronke M Olabisi
Journal:  J Biomed Mater Res A       Date:  2018-10-26       Impact factor: 4.396

Review 7.  Retinal Pigment Epithelium Replacement Therapy for Age-Related Macular Degeneration: Are We There Yet?

Authors:  Ruchi Sharma; Devika Bose; Arvydas Maminishkis; Kapil Bharti
Journal:  Annu Rev Pharmacol Toxicol       Date:  2020-01-06       Impact factor: 13.820

Review 8.  Scaffolds for retinal pigment epithelial cell transplantation in age-related macular degeneration.

Authors:  Corina E White; Ronke M Olabisi
Journal:  J Tissue Eng       Date:  2017-07-21       Impact factor: 7.813

9.  A basis for comparison: sensitive authentication of stem cell derived RPE using physiological responses of intact RPE monolayers.

Authors:  Kiyoharu J Miyagishima; Qin Wan; Sheldon S Miller; Kapil Bharti
Journal:  Stem Cell Transl Investig       Date:  2017-01-24

Review 10.  Mucoadhesive electrospun nanofibers for drug delivery systems: applications of polymers and the parameters' roles.

Authors:  Graciela Lizeth Pérez-González; Luis Jesús Villarreal-Gómez; Aracely Serrano-Medina; Erick José Torres-Martínez; José Manuel Cornejo-Bravo
Journal:  Int J Nanomedicine       Date:  2019-07-15
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