For: | Yoon JJ, Ismail S, Sherwin T. Limbal stem cells: Central concepts of corneal epithelial homeostasis. World J Stem Cells 2014; 6(4): 391-403 [PMID: 25258661 DOI: 10.4252/wjsc.v6.i4.391] |
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URL: | https://www.wjgnet.com/1948-0210/full/v6/i4/391.htm |
Number | Citing Articles |
1 |
Ye Li, Salim Ismail, Jennifer Jane McGhee, Himanshu Wadhwa, Nikita Noord, Bert van der Werf, Trevor Sherwin. Differences in sphere-forming cells from keratoconic and normal corneal tissue: Implications for keratoconus pathogenesis. Experimental Eye Research 2021; 202: 108301 doi: 10.1016/j.exer.2020.108301
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2 |
Pei-Xi Ying, Min Fu, Chang Huang, Zhi-Hong Li, Qing-Yi Mao, Sheng Fu, Xu-Hui Jia, Yu-Chen Cao, Li-Bing Hong, Li-Yang Cai, Xi Guo, Ru-Bing Liu, Fan-ke Meng, Guo-Guo Yi. Profile of biological characterizations and clinical application of corneal stem/progenitor cells. World Journal of Stem Cells 2022; 14(11): 777-797 doi: 10.4252/wjsc.v14.i11.777
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3 |
Jung Woo Park, Juan Yang, Ren-He Xu. PAX6 Alternative Splicing and Corneal Development. Stem Cells and Development 2018; 27(6): 367 doi: 10.1089/scd.2017.0283
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4 |
Teruo Nishida, Makoto Inui, Motoyoshi Nomizu. Peptide therapies for ocular surface disturbances based on fibronectin–integrin interactions. Progress in Retinal and Eye Research 2015; 47: 38 doi: 10.1016/j.preteyeres.2015.01.004
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5 |
Balu Venugopal, Bernadette K. Madathil, Anil Kumar P.R.. Biointegration of Medical Implant Materials. 2020; : 263 doi: 10.1016/B978-0-08-102680-9.00011-1
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6 |
Paul W. Hamilton, Jonathan J. Henry. The lens regenerative competency of limbal vs. central regions of mature Xenopus cornea epithelium. Experimental Eye Research 2016; 152: 94 doi: 10.1016/j.exer.2016.08.013
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7 |
Noriaki Nagai, Yoshie Iwai, Saori Deguchi, Hiroko Otake, Kazutaka Kanai, Norio Okamoto, Yoshikazu Shimomura. Therapeutic Potential of a Combination of Magnesium Hydroxide Nanoparticles and Sericin for Epithelial Corneal Wound Healing. Nanomaterials 2019; 9(5): 768 doi: 10.3390/nano9050768
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8 |
Kasem Theerakittayakorn, Hong Thi Nguyen, Jidapa Musika, Hataiwan Kunkanjanawan, Sumeth Imsoonthornruksa, Sirilak Somredngan, Mariena Ketudat-Cairns, Rangsun Parnpai. Differentiation Induction of Human Stem Cells for Corneal Epithelial Regeneration. International Journal of Molecular Sciences 2020; 21(21): 7834 doi: 10.3390/ijms21217834
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9 |
Yijian Li, Lingling Ge, Xia Chen, Yumei Mao, Xianliang Gu, Bangqi Ren, Yuxiao Zeng, Min Chen, Siyu Chen, Jinhua Liu, Yuli Yang, Haiwei Xu. The common YAP activation mediates corneal epithelial regeneration and repair with different-sized wounds. npj Regenerative Medicine 2021; 6(1) doi: 10.1038/s41536-021-00126-2
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10 |
John D. West. Commentary: Lineage Tracing Supports Maintenance of the Corneal Epithelium by Limbal Epithelial Stem Cells. Stem Cells 2015; 33(1): 310 doi: 10.1002/stem.1892
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11 |
Huanhuan Liu, Zhengbing Zhou, Hui Lin, Juan Wu, Brian Ginn, Ji Suk Choi, Xuesong Jiang, Liam Chung, Jennifer H. Elisseeff, Samuel Yiu, Hai-Quan Mao. Synthetic Nanofiber-Reinforced Amniotic Membrane via Interfacial Bonding. ACS Applied Materials & Interfaces 2018; 10(17): 14559 doi: 10.1021/acsami.8b03087
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12 |
Asim V. Farooq, Simona Degli Esposti, Rakesh Popat, Praneetha Thulasi, Sagar Lonial, Ajay K. Nooka, Andrzej Jakubowiak, Douglas Sborov, Brian E. Zaugg, Ashraf Z. Badros, Bennie H. Jeng, Natalie S. Callander, Joanna Opalinska, January Baron, Trisha Piontek, Julie Byrne, Ira Gupta, Kathryn Colby. Corneal Epithelial Findings in Patients with Multiple Myeloma Treated with Antibody–Drug Conjugate Belantamab Mafodotin in the Pivotal, Randomized, DREAMM-2 Study. Ophthalmology and Therapy 2020; 9(4): 889 doi: 10.1007/s40123-020-00280-8
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13 |
Qingjian Li, Yankun Shen, Shinan Wu, Hong Wei, Jie Zou, Sanhua Xu, Qian Ling, Min Kang, Hui Huang, Xu Chen, Yi Shao. MLN4924 Promotes Self-Renewal of Limbal Stem Cells and Ocular Surface Restoration. Journal of Personalized Medicine 2023; 13(3): 379 doi: 10.3390/jpm13030379
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14 |
Yuzuru Sasamoto, Catherine A.A. Lee, Brian J. Wilson, Florian Buerger, Gabrielle Martin, Ananda Mishra, Shoko Kiritoshi, Johnathan Tran, Gabriel Gonzalez, Friedhelm Hildebrandt, Vickie Y. Jo, Christine G. Lian, George F. Murphy, Bruce R. Ksander, Markus H. Frank, Natasha Y. Frank. Limbal BCAM expression identifies a proliferative progenitor population capable of holoclone formation and corneal differentiation. Cell Reports 2022; 40(6): 111166 doi: 10.1016/j.celrep.2022.111166
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15 |
Sophia Masterton, Mark Ahearne. Influence of polydimethylsiloxane substrate stiffness on corneal epithelial cells. Royal Society Open Science 2019; 6(12): 191796 doi: 10.1098/rsos.191796
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16 |
Alexander V. Ljubimov, Mehrnoosh Saghizadeh. Progress in corneal wound healing. Progress in Retinal and Eye Research 2015; 49: 17 doi: 10.1016/j.preteyeres.2015.07.002
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17 |
Rachel Herndon Klein, William Hu, Ghaidaa Kashgari, Ziguang Lin, Tuyen Nguyen, Michael Doan, Bogi Andersen. Characterization of enhancers and the role of the transcription factor KLF7 in regulating corneal epithelial differentiation. Journal of Biological Chemistry 2017; 292(46): 18937 doi: 10.1074/jbc.M117.793117
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18 |
Fu-shin X. Yu, Patrick S.Y. Lee, Lingling Yang, Nan Gao, Yangyang Zhang, Alexander V. Ljubimov, Ellen Yang, Qingjun Zhou, Lixin Xie. The impact of sensory neuropathy and inflammation on epithelial wound healing in diabetic corneas. Progress in Retinal and Eye Research 2022; 89: 101039 doi: 10.1016/j.preteyeres.2021.101039
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19 |
Yihui Wang, Huanhuan Ge, Peng Chen, Ye Wang. Wnt/β-catenin signaling in corneal epithelium development, homeostasis, and pathobiology. Experimental Eye Research 2024; 246: 110022 doi: 10.1016/j.exer.2024.110022
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20 |
Xinbo Gao, Kai Guo, Samuel M. Santosa, Mario Montana, Michael Yamakawa, Joelle A. Hallak, Kyu-Yeon Han, Susan J. Doh, Mark I. Rosenblatt, Jin-Hong Chang, Dimitri T. Azar. Application of corneal injury models in dual fluorescent reporter transgenic mice to understand the roles of the cornea and limbus in angiogenic and lymphangiogenic privilege. Scientific Reports 2019; 9(1) doi: 10.1038/s41598-019-48811-z
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21 |
Natalie J. Dorà, Robert E. Hill, J. Martin Collinson, John D. West. Lineage tracing in the adult mouse corneal epithelium supports the limbal epithelial stem cell hypothesis with intermittent periods of stem cell quiescence. Stem Cell Research 2015; 15(3): 665 doi: 10.1016/j.scr.2015.10.016
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22 |
O. I. Alexandrova, Y. I. Khorolskaya, D. Y. Maychuk, M. I. Blinova, O. I. Alexandrova, Y. I. Khorolskaya, D. Y. Maychuk, M. I. Blinova. Study of common cytotoxicity of aminoglycoside and fluoroquinolone antibiotics in cell cultures. Vestnik oftal'mologii 2015; 131(5): 43 doi: 10.17116/oftalma2015131543-53
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23 |
Reem Al Monla, Vincent Daien, Frederic Michon. Advanced bioengineering strategies broaden the therapeutic landscape for corneal failure. Frontiers in Bioengineering and Biotechnology 2024; 12 doi: 10.3389/fbioe.2024.1480772
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24 |
Hong Thi Nguyen, Kasem Theerakittayakorn, Sirilak Somredngan, Apichart Ngernsoungnern, Piyada Ngernsoungnern, Pishyaporn Sritangos, Mariena Ketudat-Cairns, Sumeth Imsoonthornruksa, Juthaporn Assawachananont, Nattawut Keeratibharat, Rangsirat Wongsan, Ruttachuk Rungsiwiwut, Chuti Laowtammathron, Nguyen Xuan Bui, Rangsun Parnpai. Signaling Pathways Impact on Induction of Corneal Epithelial-like Cells Derived from Human Wharton’s Jelly Mesenchymal Stem Cells. International Journal of Molecular Sciences 2022; 23(6): 3078 doi: 10.3390/ijms23063078
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25 |
Hideyuki Miyashita, Hiroko Niwano, Satoru Yoshida, Shin Hatou, Emi Inagaki, Kazuo Tsubota, Shigeto Shimmura. Long-term homeostasis and wound healing in an in vitro epithelial stem cell niche model. Scientific Reports 2017; 7(1) doi: 10.1038/srep43557
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26 |
Bartosz Sikora, Aleksandra Skubis-Sikora, Małgorzata Kimsa-Furdzik, Wojciech Ciszek, Marek Kostrzewski, Jerzy Stojko, Urszula Mazurek, Joanna Gola. Adipose-derived stem cells undergo differentiation after co-culture with porcine limbal epithelial stem cells. Stem Cell Research 2019; 41: 101609 doi: 10.1016/j.scr.2019.101609
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27 |
Di Sun, Wei-Yun Shi, Sheng-Qian Dou. Single-cell RNA sequencing in cornea research: Insights into limbal stem cells and their niche regulation. World Journal of Stem Cells 2023; 15(5): 466-475 doi: 10.4252/wjsc.v15.i5.466
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28 |
Núria Nieto-Nicolau, Beatriz Martín-Antonio, Claudia Müller-Sánchez, Ricardo P Casaroli-Marano.
In Vitro
Potential of Human Mesenchymal Stem Cells for Corneal Epithelial Regeneration
. Regenerative Medicine 2020; 15(3): 1409 doi: 10.2217/rme-2019-0067
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29 |
Jing Sun, Wei‑Hua Liu, Feng‑Mei Deng, Yong‑Hui Luo, Ke Wen, Hong Zhang, Hai‑Rong Liu, Jiang Wu, Bing‑Yin Su, Yi‑Lun Liu. Differentiation of rat adipose‑derived mesenchymal stem cells into corneal‑like epithelial cells driven by PAX6. Experimental and Therapeutic Medicine 2017; doi: 10.3892/etm.2017.5576
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30 |
江兰 赵. Progress in the Mechanism of Wnt Signaling Pathway Affecting the Stemness of Limbal Epithelial Stem Cells. Hans Journal of Ophthalmology 2024; 13(02): 27 doi: 10.12677/hjo.2024.132005
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31 |
Swati Sood, Anil Tiwari, Jyoti Sangwan, Mehak Vohra, Nishant R. Sinha, Ratnakar Tripathi, Virender S. Sangwan, Rajiv R. Mohan. Role of epigenetics in corneal health and disease. Progress in Retinal and Eye Research 2025; 104: 101318 doi: 10.1016/j.preteyeres.2024.101318
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32 |
Shengwei Li, Haozhe Yu, Pu Wang, Yun Feng. Evaluation of the Effects of Pterygium and Aging on Limbal Structure Using Optical Coherence Tomography. Journal of Clinical Medicine 2022; 11(19): 5879 doi: 10.3390/jcm11195879
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33 |
Ricardo M. Gouveia, Guillaume Lepert, Suneel Gupta, Rajiv R. Mohan, Carl Paterson, Che J. Connon. Assessment of corneal substrate biomechanics and its effect on epithelial stem cell maintenance and differentiation. Nature Communications 2019; 10(1) doi: 10.1038/s41467-019-09331-6
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34 |
J.A. González, J.R. Vallejo. Los reptiles en la historia de la oftalmología española: excrementos de lagarto ocelado y leucoma corneal. Archivos de la Sociedad Española de Oftalmología 2017; 92(9): e56 doi: 10.1016/j.oftal.2016.12.012
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35 |
Rohit Shetty, Krishna Poojita Vunnava, Kamesh Dhamodaran, Himanshu Matalia, Subramani Murali, Chaitra Jayadev, Ponnulagu Murugeswari, Arkasubhra Ghosh, Debashish Das. Characterization of Corneal Epithelial Cells in Keratoconus. Translational Vision Science & Technology 2019; 8(1): 2 doi: 10.1167/tvst.8.1.2
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36 |
C. Maya Tong, Bonnie He, Alfonso Iovieno, Sonia N. Yeung. Diagnosis and management of limbal stem cell deficiency, challenges, and future prospects. Expert Review of Ophthalmology 2021; 16(4): 305 doi: 10.1080/17469899.2021.1933441
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37 |
Veronica Hidalgo-Alvarez, Hala S. Dhowre, Olivia A. Kingston, Carl M. Sheridan, Hannah J. Levis. Biofabrication of Artificial Stem Cell Niches in the Anterior Ocular Segment. Bioengineering 2021; 8(10): 135 doi: 10.3390/bioengineering8100135
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38 |
Mercede Majdi, Lisa Wasielewski, Ali R. Djalilian. Tissue-Specific Stem Cell Niche. Stem Cell Biology and Regenerative Medicine 2015; : 69 doi: 10.1007/978-3-319-21705-5_4
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39 |
Eva Kammergruber, Carolin Rahn, Barbara Nell, Simone Gabner, Monika Egerbacher. Morphological and immunohistochemical characteristics of the equine corneal epithelium. Veterinary Ophthalmology 2019; 22(6): 778 doi: 10.1111/vop.12651
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40 |
Dennis E. Brooks, Andrew Matthews, Alison B. Clode. Equine Ophthalmology. 2016; : 252 doi: 10.1002/9781119047919.ch7
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41 |
Yuzuru Sasamoto, Yoshinori Oie, Kohji Nishida. Corneal Regeneration. Essentials in Ophthalmology 2019; : 155 doi: 10.1007/978-3-030-01304-2_11
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42 |
Yuzuru Sasamoto, Bruce R. Ksander, Markus H. Frank, Natasha Y. Frank. Repairing the corneal epithelium using limbal stem cells or alternative cell-based therapies. Expert Opinion on Biological Therapy 2018; 18(5): 505 doi: 10.1080/14712598.2018.1443442
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43 |
Jasmin S. Nurković, Radiša Vojinović, Zana Dolićanin. Corneal Stem Cells as a Source of Regenerative Cell-Based Therapy. Stem Cells International 2020; 2020: 1 doi: 10.1155/2020/8813447
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44 |
Sudhir Verma, Xiao Lin, Vivien J. Coulson-Thomas. The Potential Reversible Transition between Stem Cells and Transient-Amplifying Cells: The Limbal Epithelial Stem Cell Perspective. Cells 2024; 13(9): 748 doi: 10.3390/cells13090748
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45 |
Majid Moshirfar, Nour Bundogji, Alyson N. Tukan, Yasmyne C. Ronquillo. Implications of Corneal Refractive Surgery in Patients with Fabry Disease. Ophthalmology and Therapy 2022; 11(3): 925 doi: 10.1007/s40123-022-00503-0
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46 |
E. Moraki, R. Grima, K. J. Painter. A stochastic model of corneal epithelium maintenance and recovery following perturbation. Journal of Mathematical Biology 2019; 78(5): 1245 doi: 10.1007/s00285-018-1308-9
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47 |
Jeremy John Mathan, Salim Ismail, Jennifer Jane McGhee, Charles Ninian John McGhee, Trevor Sherwin. Sphere-forming cells from peripheral cornea demonstrate the ability to repopulate the ocular surface. Stem Cell Research & Therapy 2016; 7(1) doi: 10.1186/s13287-016-0339-7
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48 |
Yasemi Masoud, Salouti Ramin, Razmkhah Mahboobeh, Maalhagh Mehrnoosh, Javidi Fahimeh, Kariminejad Parastoo. Effect of Lithium and Valproate on Proliferation and Migration of Limbal Epithelial Stem/Progenitor Cells. Current Eye Research 2019; 44(2): 154 doi: 10.1080/02713683.2018.1521978
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49 |
Nyemkuna Fortingo, Samuel Melnyk, Sarah H. Sutton, Mitchell A. Watsky, Wendy B. Bollag. Innate Immune System Activation, Inflammation and Corneal Wound Healing. International Journal of Molecular Sciences 2022; 23(23): 14933 doi: 10.3390/ijms232314933
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50 |
Nadia Boroumand, Abolfazl Nosrati Tirkani, Dina Javid, Ali Hasani, Danial Taherzadeh, Alireza Hosseinzadeh, Sanaz Nooripour, Siamak Zarei-Ghanavati, Seyed Isaac Hashemy, Daryoush Hamidi Alamdari. Novelty in limbal stem cell culture and cell senescence. Experimental Eye Research 2019; 181: 294 doi: 10.1016/j.exer.2019.02.015
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51 |
Zahid Hussain, Renjun Pei. Scaffold-free and scaffold-based cellular strategies and opportunities for cornea tissue engineering. Progress in Biomedical Engineering 2021; 3(3): 032003 doi: 10.1088/2516-1091/ac12d7
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52 |
Michael B. Raizman, Pedram Hamrah, Edward J. Holland, Terry Kim, Francis S. Mah, Christopher J. Rapuano, Roger G. Ulrich. Drug-induced corneal epithelial changes. Survey of Ophthalmology 2017; 62(3): 286 doi: 10.1016/j.survophthal.2016.11.008
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53 |
Andres Serrano, Kwaku A. Osei, Marcela Huertas-Bello, Alfonso L. Sabater. The Potential of Stem Cells as Treatment for Ocular Surface Diseases. Current Ophthalmology Reports 2022; 10(4): 209 doi: 10.1007/s40135-022-00303-6
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54 |
Tiago Ramos, Deborah Scott, Sajjad Ahmad. An Update on Ocular Surface Epithelial Stem Cells: Cornea and Conjunctiva. Stem Cells International 2015; 2015: 1 doi: 10.1155/2015/601731
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55 |
Cestmir Cejka, Vladimir Holan, Peter Trosan, Alena Zajicova, Eliska Javorkova, Jitka Cejkova, Janusz Gebicki. [Retracted] The Favorable Effect of Mesenchymal Stem Cell Treatment on the Antioxidant Protective Mechanism in the Corneal Epithelium and Renewal of Corneal Optical Properties Changed after Alkali Burns. Oxidative Medicine and Cellular Longevity 2016; 2016(1) doi: 10.1155/2016/5843809
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56 |
Dennis E. Brooks, Caryn E. Plummer. Equine Ophthalmology. 2022; : 253 doi: 10.1002/9781119782285.ch5
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57 |
Salim Ismail, Jennifer J. McGhee, Ye Li, Jeremy John Mathan, Jinny Jung Yoon, Himanshu Wadhwa, Stephanie U-Shane Huang, Trevor Sherwin. Corneal Regeneration. Essentials in Ophthalmology 2019; : 299 doi: 10.1007/978-3-030-01304-2_21
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58 |
Yuting Xiao, Charles N. J. McGhee, Jie Zhang. Adult stem cells in the eye: Identification, characterisation, and therapeutic application in ocular regeneration – A review. Clinical & Experimental Ophthalmology 2024; 52(2): 148 doi: 10.1111/ceo.14309
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59 |
José A. González, Francisco Amich, Salvador Postigo-Mota, José Ramón Vallejo. The use of wild vertebrates in contemporary Spanish ethnoveterinary medicine. Journal of Ethnopharmacology 2016; 191: 135 doi: 10.1016/j.jep.2016.06.025
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Noriaki Nagai, Yuya Fukuoka, Miyu Ishii, Hiroko Otake, Tetsushi Yamamoto, Atsushi Taga, Norio Okamoto, Yoshikazu Shimomura. Instillation of Sericin Enhances Corneal Wound Healing through the ERK Pathway in Rat Debrided Corneal Epithelium. International Journal of Molecular Sciences 2018; 19(4): 1123 doi: 10.3390/ijms19041123
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E. Yu Zakirova, A.N. Valeeva, A.M. Aimaletdinov, L.V. Nefedovskaya, R.F. Akhmetshin, C.S. Rutland, A.A. Rizvanov. Potential therapeutic application of mesenchymal stem cells in ophthalmology. Experimental Eye Research 2019; 189: 107863 doi: 10.1016/j.exer.2019.107863
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S.V. Trufanov, A.M. Subbot, N.P. Shakhbazyan. Modern biotechnological treatment methods of persistent corneal epithelial defects. Vestnik oftal'mologii 2020; 136(5): 277 doi: 10.17116/oftalma2020136052277
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V. Kocaba, O. Damour, C. Auxenfans, C. Burillon. Traitement du déficit en cellules souches limbiques. Revue de la littérature. Journal Français d'Ophtalmologie 2016; 39(9): 791 doi: 10.1016/j.jfo.2016.08.001
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Mohamed Salih, Bakiah Shaharuddin, Samar Abdelrazeg. A Concise Review on Mesenchymal Stem Cells for Tissue Engineering with a Perspective on Ocular Surface Regeneration. Current Stem Cell Research & Therapy 2020; 15(3): 211 doi: 10.2174/1574888X15666200129145251
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Alice Rocha Teixeira Netto, Marc Dieter Hrusa, Karl-Ulrich Bartz-Schmidt, Sven Schnichels, José Hurst. Two Methods for the Isolation and Cultivation of Porcine Primary Corneal Cells. Methods and Protocols 2023; 6(3): 50 doi: 10.3390/mps6030050
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66 |
Karina Hadrian, Sebastian Willenborg, Felix Bock, Claus Cursiefen, Sabine A. Eming, Deniz Hos. Macrophage-Mediated Tissue Vascularization: Similarities and Differences Between Cornea and Skin. Frontiers in Immunology 2021; 12 doi: 10.3389/fimmu.2021.667830
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67 |
Zhi Hou Guo, Wei Zhang, Yang Yan Sheng Jia, Qing Xiu Liu, Zhao Fa Li, Jun Sheng Lin. An Insight into the Difficulties in the Discovery of Specific Biomarkers of Limbal Stem Cells. International Journal of Molecular Sciences 2018; 19(7): 1982 doi: 10.3390/ijms19071982
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Bahareh Pourjabbar, Esmaeil Biazar, Saeed Heidari Keshel, Milad Ahani-Nahayati, Alireza Baradaran-Rafii, Reza Roozafzoon, Mohammad Hasan Alemzadeh-Ansari. Bio-polymeric hydrogels for regeneration of corneal epithelial tissue*. International Journal of Polymeric Materials and Polymeric Biomaterials 2022; 71(11): 797 doi: 10.1080/00914037.2021.1909586
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Wentao Liang, Li Huang, Xiang Ma, Lijie Dong, Rui Cheng, Marcus Dehdarani, Dimitrios Karamichos, Jian-xing Ma. Pathogenic Role of Diabetes-Induced Overexpression of Kallistatin in Corneal Wound Healing Deficiency Through Inhibition of Canonical Wnt Signaling. Diabetes 2022; 71(4): 747 doi: 10.2337/db21-0740
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Fei Fang, Shiding Li, Hao Sun, Yao Fu, Chunyi Shao. Clinical and pathologic characterization of a mouse model of graded limbal stem cell deficiency. Experimental Eye Research 2024; 244: 109942 doi: 10.1016/j.exer.2024.109942
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Mehmet Gürdal, Özlem Barut Selver, Kemal Baysal, İsmet Durak. Comparison of culture media indicates a role for autologous serum in enhancing phenotypic preservation of rabbit limbal stem cells in explant culture. Cytotechnology 2018; 70(2): 687 doi: 10.1007/s10616-017-0171-7
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Nada Sagga, Lucia Kuffová, Neil Vargesson, Lynda Erskine, J. Martin Collinson. Limbal epithelial stem cell activity and corneal epithelial cell cycle parameters in adult and aging mice. Stem Cell Research 2018; 33: 185 doi: 10.1016/j.scr.2018.11.001
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Yijian Li, Lingling Ge, Bangqi Ren, Xue Zhang, Zhiyuan Yin, Hongling Liu, Yuli Yang, Yong Liu, Haiwei Xu. De-Differentiation of Corneal Epithelial Cells Into Functional Limbal Epithelial Stem Cells After the Ablation of Innate Stem Cells. Investigative Ophthalmology & Visual Science 2024; 65(13): 32 doi: 10.1167/iovs.65.13.32
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Maria Mirotsou, Masashi Abe, Robert Lanza. Principles of Tissue Engineering. 2020; : 1135 doi: 10.1016/B978-0-12-818422-6.00063-0
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Joan Oliva, Arjie Florentino, Fawzia Bardag‐Gorce, Yutaka Niihara. Vitrification and storage of oral mucosa epithelial cell sheets. Journal of Tissue Engineering and Regenerative Medicine 2019; 13(7): 1153 doi: 10.1002/term.2864
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Pei Zhang, Xi-ya Ma, Dian-tong Huang, Xue-yi Yang. The capacity of goat epidermal adult stem cells to reconstruct the damaged ocular surface of total LSCD and activate corneal genetic programs. Journal of Molecular Histology 2020; 51(3): 277 doi: 10.1007/s10735-020-09879-4
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Eman E. Taher, Mohamed Elalfy, Kareem Elsawah. Mesenchymal Stem Cells in Human Health and Diseases. 2020; : 45 doi: 10.1016/B978-0-12-819713-4.00004-9
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Bartosz Sikora, Aleksandra Skubis, Lech Sedlak, Małgorzata Kimsa-Furdzik, Marek Kostrzewski, Urszula Mazurek, Roman Aleksiewicz. Limbal epithelial stem cells in regeneration of corneal epithelium
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Irene Anton‐Sales, Laura Koivusalo, Heli Skottman, Anna Laromaine, Anna Roig. Limbal Stem Cells on Bacterial Nanocellulose Carriers for Ocular Surface Regeneration. Small 2021; 17(10) doi: 10.1002/smll.202003937
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Hannah Donnelly, Manuel Salmeron-Sanchez, Matthew J. Dalby. Designing stem cell niches for differentiation and self-renewal. Journal of The Royal Society Interface 2018; 15(145): 20180388 doi: 10.1098/rsif.2018.0388
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Brian G. Ballios, Allan R. Slomovic. Regenerative Medicine and Stem Cell Therapy for the Eye. Fundamental Biomedical Technologies 2018; : 173 doi: 10.1007/978-3-319-98080-5_7
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Steven Maskin, Claire Toland. Meibomian Gland Probing Stimulates a Proliferative Epithelial Response Resulting in Duct Regeneration. Clinical Ophthalmology 2024; : 631 doi: 10.2147/OPTH.S452549
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Mohd Tayyab Adil, Claire M. Simons, Surabhi Sonam, Jonathan J. Henry. Understanding cornea homeostasis and wound healing using a novel model of stem cell deficiency in Xenopus. Experimental Eye Research 2019; 187: 107767 doi: 10.1016/j.exer.2019.107767
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Thomas Volatier, Björn Schumacher, Claus Cursiefen, Maria Notara. UV Protection in the Cornea: Failure and Rescue. Biology 2022; 11(2): 278 doi: 10.3390/biology11020278
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Thomas Volatier, Björn Schumacher, Berbang Meshko, Karina Hadrian, Claus Cursiefen, Maria Notara. Short-Term UVB Irradiation Leads to Persistent DNA Damage in Limbal Epithelial Stem Cells, Partially Reversed by DNA Repairing Enzymes. Biology 2023; 12(2): 265 doi: 10.3390/biology12020265
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Gabriel Gonzalez, Yuzuru Sasamoto, Bruce R. Ksander, Markus H. Frank, Natasha Y. Frank. Limbal stem cells: identity, developmental origin, and therapeutic potential. WIREs Developmental Biology 2018; 7(2) doi: 10.1002/wdev.303
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