| For: | Kumar D, Talluri TR, Anand T, Kues WA. Induced pluripotent stem cells: Mechanisms, achievements and perspectives in farm animals. World J Stem Cells 2015; 7(2): 315-328 [PMID: 25815117 DOI: 10.4252/wjsc.v7.i2.315] |
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| URL: | https://www.wjgnet.com/1948-0210/full/v7/i2/315.htm |
| Number | Citing Articles |
| 1 |
Dean H. Betts, Ian C. Tobias. Canine Pluripotent Stem Cells: Are They Ready for Clinical Applications?. Frontiers in Veterinary Science 2015; 2 doi: 10.3389/fvets.2015.00041
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| 2 |
B. Barboni, V. Russo, P. Berardinelli, A. Mauro, L. Valbonetti, H. Sanyal, A. Canciello, L. Greco, A. Muttini, V. Gatta, L. Stuppia, M. Mattioli. Placental Stem Cells from Domestic Animals. Cell Transplantation 2018; 27(1) doi: 10.1177/0963689717724797
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| 3 |
Ali Pooria, Afsoun Pourya, Alireza Gheini. Animal‐ and human‐based evidence for the protective effects of stem cell therapy against cardiovascular disorders. Journal of Cellular Physiology 2019; 234(9) doi: 10.1002/jcp.28330
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| 4 |
Thirumala R. Talluri, Dharmendra Kumar, Wilfried A. Kues. Induced Pluripotent Stem (iPS) Cells. Methods in Molecular Biology 2021; 2454 doi: 10.1007/7651_2021_350
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| 5 |
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| 6 |
Matthew Trawczynski, Gele Liu, Brian T. David, Richard G. Fessler. Restoring Motor Neurons in Spinal Cord Injury With Induced Pluripotent Stem Cells. Frontiers in Cellular Neuroscience 2019; 13 doi: 10.3389/fncel.2019.00369
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| 7 |
Prasanna Weeratunga, Rebecca M. Harman, Mason C. Jager, Gerlinde R. Van de Walle. Footprint-free induced pluripotent stem cells can be successfully differentiated into mesenchymal stromal cells in the feline model. Stem Cell Research & Therapy 2025; 16(1) doi: 10.1186/s13287-025-04325-2
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| 8 |
Tarun Kumar Upadhyay, Rashmi Trivedi, Fahad Khan, Pratibha Pandey, Amit Baran Sharangi, Harsh Goel, Mohd Saeed, Moon Nyeo Park, Bonglee Kim. Potential Therapeutic Role of Mesenchymal-Derived Stem Cells as an Alternative Therapy to Combat COVID-19 through Cytokines Storm. Cells 2022; 11(17) doi: 10.3390/cells11172686
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| 9 |
Toshihiko Ezashi, Ye Yuan, R. Michael Roberts. Pluripotent Stem Cells from Domesticated Mammals. Annual Review of Animal Biosciences 2016; 4(1) doi: 10.1146/annurev-animal-021815-111202
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| 10 |
Fulvio Gandolfi, Tiziana A. L. Brevini. Animal Biotechnology 2. 2018; doi: 10.1007/978-3-319-92348-2_10
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| 11 |
Narae Kim. pH variation impacts molecular pathways associated with somatic cell reprogramming and differentiation of pluripotent stem cells. Reproductive Medicine and Biology 2021; 20(1) doi: 10.1002/rmb2.12346
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| 12 |
Melissa Medeiros Markoski. Advances in the Use of Stem Cells in Veterinary Medicine: From Basic Research to Clinical Practice. Scientifica 2016; 2016 doi: 10.1155/2016/4516920
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| 13 |
Pruettha Aruvornlop, Warunya Chakritbudsabong, Nichawadee Sandech, Tharathip Muangthong, Sasitorn Rungarunlert. Advances in canine iPSC technology: Current methods and future directions — A narrative review. Research in Veterinary Science 2025; 195 doi: 10.1016/j.rvsc.2025.105844
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| 14 |
Zhaoming Liu, Caixia Wu, Xianjie Li, Han Wang, Muhammad Majid, Rajesh Basnet, Zhiyuan Li. Non-gene-edited neural stem cells reverse neuroinflammation and microbiota dysbiosis in a sprague-dawley rat model of autism spectrum disorder. Translational Psychiatry 2026; 16(1) doi: 10.1038/s41398-026-03841-w
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| 15 |
R. Michael Roberts, Ye Yuan, Toshihiko Ezashi. Exploring early differentiation and pluripotency in domestic animals. Reproduction, Fertility and Development 2016; 29(1) doi: 10.1071/RD16292
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| 16 |
Sana Waris, Hamna Hameetha Begam, Manyam Praveen Kumar, Zahra Husain I. Abdulrasool, Muthulakshmi Avudaiappan, Alexandra E. Butler, Manjula Nandakumar. Stem Cell-Derived Beta-Cell Therapies: Encapsulation Advances and Immunological Hurdles in Diabetes Treatment. Cells 2026; 15(2) doi: 10.3390/cells15020191
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| 17 |
Dharmendra Kumar, Meeti Punetha, Pradeep Kumar, P. S. Yadav, Naresh L. Selokar. Biotechnological Applications in Buffalo Research. 2022; doi: 10.1007/978-981-16-7531-7_12
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| 18 |
J. Ogorevc, S. Orehek, P. Dovč. Cellular reprogramming in farm animals: an overview of iPSC generation in the mammalian farm animal species. Journal of Animal Science and Biotechnology 2016; 7(1) doi: 10.1186/s40104-016-0070-3
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| 19 |
Deepak Kumar, Taruna Anand, Kennady Vijayalakshmy, Papori Sharma, Rasika Rajendran, Naresh L. Selokar, P.S. Yadav, Dharmendra Kumar. Transposon mediated reprogramming of buffalo fetal fibroblasts to induced pluripotent stem cells in feeder free culture conditions. Research in Veterinary Science 2019; 123 doi: 10.1016/j.rvsc.2019.01.015
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| 20 |
Delia A. Soto, Pablo J. Ross. Pluripotent stem cells and livestock genetic engineering. Transgenic Research 2016; 25(3) doi: 10.1007/s11248-016-9929-5
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| 21 |
Wilfried A Kues, Thirumala R Talluri, Taruna Anand, Dharmendra Kumar. Potential of transposon-mediated cellular reprogramming towards cell-based therapies. World Journal of Stem Cells 2020; 12(7): 527-544 doi: 10.4252/wjsc.v12.i7.527
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| 22 |
Shahram Rabbani, Mohammad Imani. Nanomedicine for Ischemic Cardiomyopathy. 2020; doi: 10.1016/B978-0-12-817434-0.00005-2
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| 23 |
Christopher S. Rogers. Engineering Large Animal Species to Model Human Diseases. Current Protocols in Human Genetics 2016; 90(1) doi: 10.1002/cphg.18
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| 24 |
James C. Ferguson, Stefan Tangl, Dirk Barnewitz, Antje Genzel, Patrick Heimel, Veronika Hruschka, Heinz Redl, Thomas Nau. A large animal model for standardized testing of bone regeneration strategies. BMC Veterinary Research 2018; 14(1) doi: 10.1186/s12917-018-1648-0
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| 25 |
Bahareh Pourjabbar, Forough Shams, Maryam Moghadam, Milad Ahani-Nahayati, Arezo Azari, Farshid Sefat, Saeed Heidari Keshel. Recent Emerging Trend in Stem Cell Therapy Risk Factors. Current Stem Cell Research & Therapy 2023; 18(8) doi: 10.2174/1574888X18666221223104859
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| 26 |
Wenting Xu, Huajin Li, Liangyue Peng, Liyu Pu, Sijia Xiang, Yue Li, Leiting Tao, Wenbin Liu, Jinhui Liu, Yamei Xiao, Shaojun Liu. Fish Pluripotent Stem-Like Cell Line Induced by Small-Molecule Compounds From Caudal Fin and its Developmental Potentiality. Frontiers in Cell and Developmental Biology 2022; 9 doi: 10.3389/fcell.2021.817779
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| 27 |
Dharmendra Kumar, Taruna Anand, Wilfried A. Kues. Clinical potential of human-induced pluripotent stem cells. Cell Biology and Toxicology 2017; 33(2) doi: 10.1007/s10565-016-9370-9
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| 28 |
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| 29 |
Thirumala R. Talluri, Dharmendra Kumar, Silke Glage, Wiebke Garrels, Zoltan Ivics, Katharina Debowski, Rüdiger Behr, Heiner Niemann, Wilfried A. Kues. Derivation and Characterization of Bovine Induced Pluripotent Stem Cells by Transposon-Mediated Reprogramming. Cellular Reprogramming 2015; 17(2) doi: 10.1089/cell.2014.0080
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| 30 |
Wilfried A Kues, Iqbal Hyder, Naresh L Selokar, Thirumala R Talluri, Dharmendra Kumar. Perspectives of pluripotent stem cells in livestock. World Journal of Stem Cells 2021; 13(1): 1-29 doi: 10.4252/wjsc.v13.i1.1
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| 31 |
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| 32 |
Idris Zubairu Sadiq, Fatima Sadiq Abubakar, Babangida Sanusi Katsayal, Bashiru Ibrahim, Auwal Adamu, Mohammed Aliyu Usman, Mukhtar Aliyu, Mukhtar Adeiza Suleiman, Aliyu Muhammad. Stem cells in regenerative medicine: Unlocking therapeutic potential through stem cell therapy, 3D bioprinting, gene editing, and drug discovery. Biomedical Engineering Advances 2025; 9 doi: 10.1016/j.bea.2025.100172
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| 33 |
Phuc Van Pham, Nhan Lu-Chinh Phan, Ngoc Bich Vu, Nhung Hai Truong, Ngoc Kim Phan. Stem Cell Processing. Stem Cells in Clinical Applications 2016; doi: 10.1007/978-3-319-40073-0_4
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| 34 |
Fulvio Gandolfi, Tiziana A. L. Brevini. Biotechnologie bei Nutztieren 2. 2023; doi: 10.1007/978-3-031-26042-1_10
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| 35 |
Jan O. Secher, Henrik Callesen, Kristine K. Freude, Poul Hyttel. Initial embryology and pluripotent stem cells in the pig—The quest for establishing the pig as a model for cell therapy. Theriogenology 2016; 85(1) doi: 10.1016/j.theriogenology.2015.09.017
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| 36 |
Xin-yu ZHOU, Liang-liang LIU, Wen-chao JIA, Chuan-ying PAN. Methylation profile of bovine Oct4 gene coding region in relation to three germ layers. Journal of Integrative Agriculture 2016; 15(3) doi: 10.1016/S2095-3119(15)61100-5
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| 37 |
Silvia Pellegrini, Valeria Sordi. Transplantation, Bioengineering, and Regeneration of the Endocrine Pancreas. 2020; doi: 10.1016/B978-0-12-814831-0.00028-2
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| 38 |
Dharmendra Kumar, Pradeep Kumar, Naresh L. Selokar, P.S. Yadav. iPSCs from Diverse Species. 2021; doi: 10.1016/B978-0-12-822228-7.00007-2
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| 39 |
S.D. Kolobe, T.G. Manyelo, J.W. Ngambi, E Malematja, T Chitura, M.F.D. Nemauluma, S Nawaz, M Shoaib, H.J. Arshad. THE POTENTIAL USE OF ACACIA LEAF MEAL AS PROTEIN FEED SOURCE FOR POULTRY DIETS: A REVIEW. The Journal of Animal and Plant Sciences 2022; (6) doi: 10.36899/JAPS.2022.6.0557
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| 40 |
T. R. Talluri, Bhanu P. Telugu. Frontier Technologies in Bovine Reproduction. 2022; doi: 10.1007/978-981-19-3072-0_13
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| 41 |
Rajneesh Verma, Younghyun Lee, Daniel F. Salamone. iPSC Technology: An Innovative Tool for Developing Clean Meat, Livestock, and Frozen Ark. Animals 2022; 12(22) doi: 10.3390/ani12223187
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| 42 |
Paria Bayati, Marjan Taherian, Nazanin Mojtabavi. Immunomodulatory effects of the induced pluripotent stem cells through expressing IGF-related factors and IL-10 in vitro. International Journal of Immunopathology and Pharmacology 2024; 38 doi: 10.1177/03946320241276899
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| 43 |
Kyoko Miura, Yuki Oiwa, Yoshimi Kawamura. The Extraordinary Biology of the Naked Mole-Rat. Advances in Experimental Medicine and Biology 2021; 1319 doi: 10.1007/978-3-030-65943-1_13
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