For: | Chen LB, Jiang XB, Yang L. Differentiation of rat marrow mesenchymal stem cells into pancreatic islet beta-cells. World J Gastroenterol 2004; 10(20): 3016-3020 [PMID: 15378785 DOI: 10.3748/wjg.v10.i20.3016] |
---|---|
URL: | https://www.wjgnet.com/1007-9327/full/v10/i20/3016.htm |
Number | Citing Articles |
1 |
Vineet Kumar Mishra, Hui-Hsuan Shih, Farzana Parveen, David Lenzen, Etsuro Ito, Te-Fu Chan, Liang-Yin Ke. Identifying the Therapeutic Significance of Mesenchymal Stem Cells. Cells 2020; 9(5): 1145 doi: 10.3390/cells9051145
|
2 |
Giuseppe Orlando, Pierre Gianello, Marcus Salvatori, Robert J. Stratta, Shay Soker, Camillo Ricordi, Juan Domínguez-Bendala. Cell Replacement Strategies Aimed at Reconstitution of the β-Cell Compartment in Type 1 Diabetes. Diabetes 2014; 63(5): 1433 doi: 10.2337/db13-1742
|
3 |
Sandeep Kumar Vishwakarma, Juhi Jaiswal, Kyung‐Hee Park, Chandrakala Lakkireddy, Nagarapu Raju, Avinash Bardia, Md. Aejaz Habeeb, Syed Ameer Basha Paspala, Aleem Ahmed Khan, Marshal Dhayal. TiO2 Nanoflowers on Conducting Substrates Ameliorate Effective Transdifferentiation of Human Hepatic Progenitor Cells for Long‐Term Hyperglycemia Reversal in Diabetic Mice. Advanced Therapeutics 2020; 3(8) doi: 10.1002/adtp.201900205
|
4 |
Bingbing Xu, Daoyang Fan, Yunshan Zhao, Jing Li, Zhendong Wang, Jianhua Wang, Xiuwei Wang, Zhen Guan, Bo Niu. Three-Dimensional Culture Promotes the Differentiation of Human Dental Pulp Mesenchymal Stem Cells Into Insulin-Producing Cells for Improving the Diabetes Therapy. Frontiers in Pharmacology 2020; 10 doi: 10.3389/fphar.2019.01576
|
5 |
Mahmoud M. Gabr, Mahmoud M. Zakaria, Ayman F. Refaie, Amani M. Ismail, Mona A. Abou-El-Mahasen, Sylvia A. Ashamallah, Sherry M. Khater, Sawsan M. El-Halawani, Rana Y. Ibrahim, Gan Shu Uin, Malgorzata Kloc, Roy Y. Calne, Mohamed A. Ghoneim. Insulin-Producing Cells from Adult Human Bone Marrow Mesenchymal Stem Cells Control Streptozotocin-Induced Diabetes in Nude Mice. Cell Transplantation 2013; 22(1): 133 doi: 10.3727/096368912X647162
|
6 |
Zeli Yin, Keqiu Jiang, Rui Li, Chengyong Dong, Liming Wang. Multipotent mesenchymal stromal cells play critical roles in hepatocellular carcinoma initiation, progression and therapy. Molecular Cancer 2018; 17(1) doi: 10.1186/s12943-018-0926-6
|
7 |
L. Vija, D. Farge, J.-F. Gautier, P. Vexiau, C. Dumitrache, A. Bourgarit, F. Verrecchia, J. Larghero. Mesenchymal stem cells: Stem cell therapy perspectives for type 1 diabetes. Diabetes & Metabolism 2009; 35(2): 85 doi: 10.1016/j.diabet.2008.10.003
|
8 |
Shahira M. Ezzat, Mohamed F. Abdel Rahman, Maha M. Salama, Engy A. Mahrous, Amany El Bariary.
Non‐polar metabolites of green beans (
Phaseolus vulgaris
L.) potentiate the antidiabetic activity of mesenchymal stem cells in streptozotocin‐induced diabetes in rats
. Journal of Food Biochemistry 2022; 46(2) doi: 10.1111/jfbc.14083
|
9 |
Juan Domínguez-Bendala, Luca Inverardi, Camillo Ricordi. Stem cell-derived islet cells for transplantation. Current Opinion in Organ Transplantation 2011; 16(1): 76 doi: 10.1097/MOT.0b013e32834252b5
|
10 |
Zulma Gazit, Gadi Pelled, Dima Sheyn, Nadav Kimelman, Dan Gazit. Principles of Regenerative Medicine. 2011; : 285 doi: 10.1016/B978-0-12-381422-7.10017-3
|
11 |
Lina Zhang, Kanghua Li, Xi Yan, Xiaolei Liang, Shihua Wang, Qin Han, Robert Chunhua Zhao. MicroRNA-498 Inhibition Enhances the Differentiation of Human Adipose-Derived Mesenchymal Stem Cells into Podocyte-Like Cells. Stem Cells and Development 2015; 24(24): 2841 doi: 10.1089/scd.2015.0027
|
12 |
Ann-Kristin Afflerbach, Mark D. Kiri, Tahir Detinis, Ben M. Maoz. Mesenchymal Stem Cells as a Promising Cell Source for Integration in Novel In Vitro Models. Biomolecules 2020; 10(9): 1306 doi: 10.3390/biom10091306
|
13 |
Riccardo Calafiore, Pia Montanucci, Giuseppe Basta. Stem cells for pancreatic β-cell replacement in diabetes mellitus. Current Opinion in Organ Transplantation 2014; 19(2): 162 doi: 10.1097/MOT.0000000000000055
|
14 |
YU SUN, MENGCHAO ZHANG, SHANGWEI JI, LIN LIU. Induction differentiation of rabbit adipose-derived stromal cells into insulin-producing cells in vitro. Molecular Medicine Reports 2015; 12(5): 6835 doi: 10.3892/mmr.2015.4305
|
15 |
Hong-Tu Li, Fang-Xu Jiang, Ping Shi, Tao Zhang, Xiao-Yu Liu, Xue-Wen Lin, Xi-Ning Pang. In vitro reprogramming of rat bone marrow-derived mesenchymal stem cells into insulin-producing cells by genetically manipulating negative and positive regulators. Biochemical and Biophysical Research Communications 2012; 420(4): 793 doi: 10.1016/j.bbrc.2012.03.076
|
16 |
Judith M. Curran, Rui Chen, John A. Hunt. The guidance of human mesenchymal stem cell differentiation in vitro by controlled modifications to the cell substrate. Biomaterials 2006; 27(27): 4783 doi: 10.1016/j.biomaterials.2006.05.001
|
17 |
Devang M. Patel, Jainy Shah, Anand S. Srivastava. Therapeutic Potential of Mesenchymal Stem Cells in Regenerative Medicine. Stem Cells International 2013; 2013: 1 doi: 10.1155/2013/496218
|
18 |
Ohad Karnieli, Yael Izhar-Prato, Shlomo Bulvik, Shimon Efrat. Generation of Insulin-Producing Cells from Human Bone Marrow Mesenchymal Stem Cells by Genetic Manipulation. Stem Cells 2007; 25(11): 2837 doi: 10.1634/stemcells.2007-0164
|
19 |
Shweta Anil Kumar, Monica Delgado, Victor E Mendez, Binata Joddar. Applications of stem cells and bioprinting for potential treatment of diabetes. World Journal of Stem Cells 2019; 11(1): 13-32 doi: 10.4252/wjsc.v11.i1.13
|
20 |
Dina H. Kassem, Mohamed M. Kamal, Abd El-Latif G. El-Kholy, Hala O. El-Mesallamy. Exendin-4 enhances the differentiation of Wharton’s jelly mesenchymal stem cells into insulin-producing cells through activation of various β-cell markers. Stem Cell Research & Therapy 2016; 7(1) doi: 10.1186/s13287-016-0374-4
|
21 |
Dah-Ching Ding, Woei-Cherng Shyu, Shinn-Zong Lin. Mesenchymal Stem Cells. Cell Transplantation 2011; 20(1): 5 doi: 10.3727/096368910X
|
22 |
Valeria Sordi, Raffaella Melzi, Alessia Mercalli, Roberta Formicola, Claudio Doglioni, Francesca Tiboni, Giuliana Ferrari, Rita Nano, Karolina Chwalek, Eckhard Lammert, Ezio Bonifacio, Lorenzo Piemonti. Mesenchymal Cells Appearing in Pancreatic Tissue Culture Are Bone Marrow-Derived Stem Cells With the Capacity to Improve Transplanted Islet Function . Stem Cells 2010; 28(1): 140 doi: 10.1002/stem.259
|
23 |
Fatemeh Seyedi, Alireza Farsinejad, Mojgan Moshrefi, Seyed Noureddin Nematollahi-Mahani. In vitro evaluation of different protocols for the induction of mesenchymal stem cells to insulin-producing cells. In Vitro Cellular & Developmental Biology - Animal 2015; 51(8): 866 doi: 10.1007/s11626-015-9890-2
|
24 |
Chengmei He, Yanlei Yang, Kunyu Zheng, Yiran Chen, Suying Liu, Yongzhe Li, Qin Han, Robert Chunhua Zhao, Li Wang, Fengchun Zhang. Mesenchymal stem cell-based treatment in autoimmune liver diseases: underlying roles, advantages and challenges. Therapeutic Advances in Chronic Disease 2021; 12 doi: 10.1177/2040622321993442
|
25 |
Lye T. Lock, Emmanuel S. Tzanakakis. Stem/Progenitor Cell Sources of Insulin-Producing Cells for the Treatment of Diabetes. Tissue Engineering 2007; 13(7): 1399 doi: 10.1089/ten.2007.0047
|
26 |
Reenam S. Khan, Philip N. Newsome. A Comparison of Phenotypic and Functional Properties of Mesenchymal Stromal Cells and Multipotent Adult Progenitor Cells. Frontiers in Immunology 2019; 10 doi: 10.3389/fimmu.2019.01952
|
27 |
Christopher D. Porada, Christopher Rodman, Glicerio Ignacio, Anthony Atala, Graça Almeida-Porada. Hemophilia A: an ideal disease to correct in utero. Frontiers in Pharmacology 2014; 5 doi: 10.3389/fphar.2014.00276
|
28 |
Yuxin Hu, Bin Lou, Xiafang Wu, Ruirui Wu, Huihui Wang, Lanyue Gao, Jingbo Pi, Yuanyuan Xu. Comparative Study on In Vitro Culture of Mouse Bone Marrow Mesenchymal Stem Cells. Stem Cells International 2018; 2018: 1 doi: 10.1155/2018/6704583
|
29 |
M El-Sherbiny, MA Eladl, AV Ranade, M Guimei, H Gabr. Functional beta-cells derived from umbilical cord blood mesenchymal stem cells for curing rats with streptozotocin-induced diabetes mellitus. Singapore Medical Journal 2020; 61(1): 39 doi: 10.11622/smedj.2019120
|
30 |
Xin-Xing Wan, Dan-Yi Zhang, Md. Asaduzzaman Khan, Sheng-Yuan Zheng, Xi-Min Hu, Qi Zhang, Rong-Hua Yang, Kun Xiong. Stem Cell Transplantation in the Treatment of Type 1 Diabetes Mellitus: From Insulin Replacement to Beta-Cell Replacement. Frontiers in Endocrinology 2022; 13 doi: 10.3389/fendo.2022.859638
|
31 |
Ali Tootee, Behrouz Nikbin, Aziz Ghahary, Ensieh Nasli Esfahani, Babak Arjmand, Hamidreza Aghayan, Mostafa Qorbani, Bagher Larijani. Immunopathology of Type 1 Diabetes and Immunomodulatory Effects of Stem Cells: A Narrative Review of the Literature. Endocrine, Metabolic & Immune Disorders - Drug Targets 2022; 22(2): 169 doi: 10.2174/1871530321666210203212809
|
32 |
Catalina A Palma, Robert Lindeman, Bernard E Tuch. Blood into β-Cells: Can Adult Stem Cells be Used as a Therapy for Type 1 Diabetes?. Regenerative Medicine 2008; 3(1): 33 doi: 10.2217/17460751.3.1.33
|
33 |
Paolo Fiorina, Mollie Jurewicz, Andrea Augello, Andrea Vergani, Shirine Dada, Stefano La Rosa, Martin Selig, Jonathan Godwin, Kenneth Law, Claudia Placidi, R. Neal Smith, Carlo Capella, Scott Rodig, Chaker N. Adra, Mark Atkinson, Mohamed H. Sayegh, Reza Abdi. Immunomodulatory Function of Bone Marrow-Derived Mesenchymal Stem Cells in Experimental Autoimmune Type 1 Diabetes. The Journal of Immunology 2009; 183(2): 993 doi: 10.4049/jimmunol.0900803
|
34 |
Rahul Khatri, Sybille Mazurek, Sebastian Friedrich Petry, Thomas Linn. Mesenchymal stem cells promote pancreatic β-cell regeneration through downregulation of FoxO1 pathway. Stem Cell Research & Therapy 2020; 11(1) doi: 10.1186/s13287-020-02007-9
|
35 |
Seyed Mahmoud Hashemi, Zuhair Mohammad Hassan, Nikoo Hossein-Khannazer, Ali Akbar Pourfathollah, Sara Soudi. Investigating the route of administration and efficacy of adipose tissue-derived mesenchymal stem cells and conditioned medium in type 1 diabetic mice. Inflammopharmacology 2020; 28(2): 585 doi: 10.1007/s10787-019-00661-x
|
36 |
Adriana Bajetto, Stefano Thellung, Irene Dellacasagrande, Aldo Pagano, Federica Barbieri, Tullio Florio. Cross talk between mesenchymal and glioblastoma stem cells: Communication beyond controversies. Stem Cells Translational Medicine 2020; 9(11): 1310 doi: 10.1002/sctm.20-0161
|
37 |
Jana Katuchova, Denisa Harvanova, Timea Spakova, Rastislav Kalanin, Daniel Farkas, Peter Durny, Jan Rosocha, Jozef Radonak, Daniel Petrovic, Dario Siniscalco, Meirigeng Qi, Miroslav Novak, Peter Kruzliak. Mesenchymal Stem Cells in the Treatment of Type 1 Diabetes Mellitus. Endocrine Pathology 2015; 26(2): 95 doi: 10.1007/s12022-015-9362-y
|
38 |
Meng Liu, Zhong Chao Han. Mesenchymal stem cells: biology and clinical potential in type 1 diabetes therapy. Journal of Cellular and Molecular Medicine 2008; 12(4): 1155 doi: 10.1111/j.1582-4934.2008.00288.x
|
39 |
Suya Du, Yanjiao Li, Zhen Geng, Qi Zhang, Leo H. Buhler, Carmen Gonelle-Gispert, Yi Wang. Engineering Islets From Stem Cells: The Optimal Solution for the Treatment of Diabetes?. Frontiers in Immunology 2022; 13 doi: 10.3389/fimmu.2022.869514
|
40 |
Loaa A. Tag Eldeen, Marow El Sheikh, Salwa Faisal. The expression of cytochrome P4502J2 gene and 14, 15 epoxyeicosatrienoic acid level influence the amount of insulin secreted from human mesenchymal stem cell-derived insulin-producing cells. Bulletin of the National Research Centre 2018; 42(1) doi: 10.1186/s42269-018-0015-4
|
41 |
Min Wang, Yan Zhou, Wen-Song Tan. Clonal isolation and characterization of mesenchymal stem cells from human amnion. Biotechnology and Bioprocess Engineering 2010; 15(6): 1047 doi: 10.1007/s12257-009-3147-4
|
42 |
Joel S. Greenberger, Michael W. Epperly. ALERT - Adverse Late Effects of Cancer Treatment. Medical Radiology 2014; : 191 doi: 10.1007/978-3-540-72314-1_13
|
43 |
P. Yu, Z. Wang, Y. Liu, Z. Xiao, Y. Guo, M. Li, M. Zhao. Marrow Mesenchymal Stem Cells Effectively Reduce Histologic Changes in a Rat Model of Chronic Renal Allograft Rejection. Transplantation Proceedings 2017; 49(9): 2194 doi: 10.1016/j.transproceed.2017.09.038
|
44 |
Eric D. Adler, Anne Bystrup, Karen C. Briley-Saebo, Venkatesh Mani, Wilson Young, Steven Giovanonne, Perry Altman, Steven J. Kattman, Joseph A. Frank, Hans J. Weinmann, Gordon M. Keller, Zahi A. Fayad. In Vivo Detection of Embryonic Stem Cell–Derived Cardiovascular Progenitor Cells Using Cy3-Labeled Gadofluorine M in Murine Myocardium. JACC: Cardiovascular Imaging 2009; 2(9): 1114 doi: 10.1016/j.jcmg.2009.04.015
|
45 |
Yuping Wang. Vascular Biology of the Placenta, Second Edition. Colloquium Series on Integrated Systems Physiology: From Molecule to Function 2017; 9(3): i doi: 10.4199/C00153ED1V01Y201704ISP075
|
46 |
Ryu-ichi KITAMURA, Takeki OGATA, Yuji TANAKA, Kazuo MOTOYOSHI, Masaharu SENO, Izumi TAKEI, Kazuo UMEZAWA, Itaru KOJIMA. Conophylline and Betacellulin-.DELTA.4: an Effective Combination of Differentiation Factors for Pancreatic .BETA. Cells. Endocrine Journal 2007; 54(2): 255 doi: 10.1507/endocrj.K06-199
|
47 |
Robert Pytlík, David Stehlík, Tomáš Soukup, Marie Kalbáčová, František Rypáček, Tomáš Trč, Katarína Mulinková, Petra Michnová, Linda Kideryová, Jan Živný, Pavel Klener, Romana Veselá, Marek Trněný, Pavel Klener. The cultivation of human multipotent mesenchymal stromal cells in clinical grade medium for bone tissue engineering. Biomaterials 2009; 30(20): 3415 doi: 10.1016/j.biomaterials.2009.03.001
|
48 |
Juan Domínguez-Bendala, Camillo Ricordi. Stem Cell-Based Tissue Repair. 2010; : 308 doi: 10.1039/9781849732246-00308
|
49 |
Samad Nadri, Ghasem Barati, Hossein Mostafavi, Abdolreza Esmaeilzadeh, Seyed Ehsan Enderami. Differentiation of conjunctiva mesenchymal stem cells into secreting islet beta cells on plasma treated electrospun nanofibrous scaffold. Artificial Cells, Nanomedicine, and Biotechnology 2018; 46(sup1): 178 doi: 10.1080/21691401.2017.1416391
|
50 |
Gaetano La Manna, Francesca Bianchi, Maria Cappuccilli, Giovanna Cenacchi, Lucia Tarantino, Gianandrea Pasquinelli, Sabrina Valente, Elena Della Bella, Silvia Cantoni, Cavallini Claudia, Flavia Neri, Matvey Tsivian, Bruno Nardo, Carlo Ventura, Sergio Stefoni. Mesenchymal Stem Cells in Renal Function Recovery after Acute Kidney Injury: Use of a Differentiating Agent in a Rat Model. Cell Transplantation 2011; 20(8): 1193 doi: 10.3727/096368910X543394
|
51 |
A. Santana, R. Enseñat - Waser, Maria Isabel Arribas, J. A. Reig, E. Roche. Insulin - producing cells derived from stem cells: recent progress and future directions. Journal of Cellular and Molecular Medicine 2006; 10(4): 852 doi: 10.2755/jcmm010.004.06
|
52 |
Corina Vater, Philip Kasten, Maik Stiehler. Culture media for the differentiation of mesenchymal stromal cells. Acta Biomaterialia 2011; 7(2): 463 doi: 10.1016/j.actbio.2010.07.037
|
53 |
Omar I. Badr, Mohamed M. Kamal, Shohda A. El-Maraghy, Heba R. Ghaiad. The effect of diabetes mellitus on differentiation of mesenchymal stem cells into insulin-producing cells. Biological Research 2024; 57(1) doi: 10.1186/s40659-024-00502-4
|
54 |
Geza Nagy, Tekla Evelin Szekely, Aniko Somogyi, Magdolna Herold, Zoltan Herold. New therapeutic approaches for type 1 diabetes: Disease-modifying therapies. World Journal of Diabetes 2022; 13(10): 835-850 doi: 10.4239/wjd.v13.i10.835
|
55 |
GUANGYU WANG, YONG LI, YU WANG, YU DONG, FU-SHENG WANG, YI DING, YUDONG KANG, XUYING XU. Roles of the co-culture of human umbilical cord Wharton’s jelly-derived mesenchymal stem cells with rat pancreatic cells in the treatment of rats with diabetes mellitus. Experimental and Therapeutic Medicine 2014; 8(5): 1389 doi: 10.3892/etm.2014.1985
|
56 |
Nazmul Haque, Ismail M Fareez, Liew Fong Fong, Chanchal Mandal, Noor Hayaty Abu Kasim, Kranthi Raja Kacharaju, Pratiwi Soesilawati. Role of the CXCR4-SDF1-HMGB1 pathway in the directional migration of cells and regeneration of affected organs. World Journal of Stem Cells 2020; 12(9): 0 doi: 10.4252/wjsc.v12.i9.0000
|
57 |
Dina H. Kassem, Mohamed M. Kamal, Abd El-Latif G. El-Kholy, Hala O. El-Mesallamy. Association of expression levels of pluripotency/stem cell markers with the differentiation outcome of Wharton's jelly mesenchymal stem cells into insulin producing cells. Biochimie 2016; 127: 187 doi: 10.1016/j.biochi.2016.05.019
|
58 |
Warwick J. Teague, Autumn M. Rowan-Hull, Naga V.G. Jayanthi, Paul R.V. Johnson. The competency of foregut mesenchyme in islet mesenchyme-to-epithelial transition during embryonic development. Journal of Pediatric Surgery 2006; 41(2): 347 doi: 10.1016/j.jpedsurg.2005.11.011
|
59 |
I. Pountos, E. Jones, C. Tzioupis, D. McGonagle, P. V. Giannoudis. Growing bone and cartilage. The Journal of Bone and Joint Surgery. British volume 2006; (4): 421 doi: 10.1302/0301-620X.88B4.17060
|
60 |
Feng GAO, De-quan WU, Yan-hua HU, Guang-xin JIN. Extracellular matrix gel is necessary for in vitro cultivation of insulin producing cells from human umbilical cord blood derived mesenchymal stem cells. Chinese Medical Journal 2008; 121(9): 811 doi: 10.1097/00029330-200805010-00012
|
61 |
Hélène Le Roy, Nicolas Forraz, Marcin Jurga, Colin P. McGuckin. Human Fetal Tissue Transplantation. 2013; : 269 doi: 10.1007/978-1-4471-4171-6_21
|
62 |
Arefeh Jafarian, Mohammad Taghikani, Saeid Abroun, Amir Allahverdi, Maryam Lamei, Niknam Lakpour, Masoud Soleimani, Giovanni Camussi. The Generation of Insulin Producing Cells from Human Mesenchymal Stem Cells by MiR-375 and Anti-MiR-9. PLOS ONE 2015; 10(6): e0128650 doi: 10.1371/journal.pone.0128650
|
63 |
Adel Ersek, John S. Pixley, A. Daisy Goodrich, Christopher D. Porada, Graca Almeida-Porada, David S. Thain, Esmail D. Zanjani. Persistent circulating human insulin in sheep transplanted in utero with human mesenchymal stem cells. Experimental Hematology 2010; 38(4): 311 doi: 10.1016/j.exphem.2010.02.005
|
64 |
Hao Wu, Di Wen, Ram I Mahato. Third-party Mesenchymal Stem Cells Improved Human Islet Transplantation in a Humanized Diabetic Mouse Model. Molecular Therapy 2013; 21(9): 1778 doi: 10.1038/mt.2013.147
|
65 |
Sachin S. Kadam, M. Sudhakar, Prabha D. Nair, Ramesh R. Bhonde. Reversal of experimental diabetes in mice by transplantation of neo-islets generated from human amnion-derived mesenchymal stromal cells using immuno-isolatory macrocapsules. Cytotherapy 2010; 12(8): 982 doi: 10.3109/14653249.2010.509546
|
66 |
Taofeng Lu, Pengfei Hu, Xiaohua Su, Changli Li, Yuehui Ma, Weijun Guan. Isolation and characterization of mesenchymal stem cells derived from fetal bovine liver. Cell and Tissue Banking 2014; 15(3): 439 doi: 10.1007/s10561-013-9410-0
|
67 |
Françoise Carlotti, Arnaud Zaldumbide, Johanne H. Ellenbroek, H. Siebe Spijker, Rob C. Hoeben, Eelco J. de Koning. β-Cell Generation: Can Rodent Studies Be Translated to Humans?. Journal of Transplantation 2011; 2011: 1 doi: 10.1155/2011/892453
|
68 |
Zahra Eydian, Alaleh Mohammad Ghasemi, Samira Ansari, Ali Naghi Kamali, Maryam Khosravi, Sima Momtaz, Sanaz Riki, Laleh Rafighdoost, Reza Entezari Heravi. Differentiation of multipotent stem cells to insulin-producing cells for treatment of diabetes mellitus: bone marrow- and adipose tissue-derived cells comparison. Molecular Biology Reports 2022; 49(5): 3539 doi: 10.1007/s11033-022-07194-7
|
69 |
G Bhuvanalakshmi, Frank Arfuso, Arun Dharmarajan, Sudha Warrier. Multifunctional Properties of Chicken Embryonic Prenatal Mesenchymal Stem Cells- Pluripotency, Plasticity, and Tumor Suppression. Stem Cell Reviews and Reports 2014; 10(6): 856 doi: 10.1007/s12015-014-9530-3
|
70 |
Mohamed A. Ghoneim, Ayman F. Refaie, Batoul L. Elbassiouny, Mahmoud M. Gabr, Mahmoud M. Zakaria. From Mesenchymal Stromal/Stem Cells to Insulin-Producing Cells: Progress and Challenges. Stem Cell Reviews and Reports 2020; 16(6): 1156 doi: 10.1007/s12015-020-10036-3
|
71 |
Alejandro Mesples, Shu Jiang, Yun Zhang, Zhaoxia Luo, Xiang Hu. C-peptide increase in chronic type 1 diabetic patients treated with autologous bone marrow cell transplantation through pancreatic artery catheterization: Three years follow-up. Stem Cell Discovery 2013; 3(01): 56 doi: 10.4236/scd.2013.31009
|
72 |
Junya Yoshioka, Yu Ohsugi, Toru Yoshitomi, Tomoyuki Yasukawa, Naoki Sasaki, Keitaro Yoshimoto. Label-Free Rapid Separation and Enrichment of Bone Marrow-Derived Mesenchymal Stem Cells from a Heterogeneous Cell Mixture Using a Dielectrophoresis Device. Sensors 2018; 18(9): 3007 doi: 10.3390/s18093007
|
73 |
Song Xu, Ann De Becker, Ben Van Camp, Karin Vanderkerken, Ivan Van Riet. An Improved Harvest andin VitroExpansion Protocol for Murine Bone Marrow-Derived Mesenchymal Stem Cells. Journal of Biomedicine and Biotechnology 2010; 2010: 1 doi: 10.1155/2010/105940
|
74 |
NZ Sun, HS Ji. In Vitro Differentiation of Osteocytes and Adipocytes from Human Placenta-Derived Cells. Journal of International Medical Research 2012; 40(2): 761 doi: 10.1177/147323001204000242
|
75 |
Shruti D. Dave, Aruna V. Vanikar, Hargovind L. Trivedi. In-vitro generation of human adipose tissue derived insulin secreting cells: up-regulation of Pax-6, Ipf-1 and Isl-1. Cytotechnology 2014; 66(2): 299 doi: 10.1007/s10616-013-9573-3
|
76 |
Ryang Hwa Lee, Min Jeong Seo, Roxanne L. Reger, Jeffrey L. Spees, Andrey A. Pulin, Scott D. Olson, Darwin J. Prockop.
Multipotent stromal cells from human marrow home to and promote repair of pancreatic islets and renal glomeruli in diabetic NOD/
scid
mice
. Proceedings of the National Academy of Sciences 2006; 103(46): 17438 doi: 10.1073/pnas.0608249103
|
77 |
Ayat M. Domouky, Ashraf S. Hegab, Amal Al-Shahat, Nermin Raafat. Mesenchymal stem cells and differentiated insulin producing cells are new horizons for pancreatic regeneration in type I diabetes mellitus. The International Journal of Biochemistry & Cell Biology 2017; 87: 77 doi: 10.1016/j.biocel.2017.03.018
|
78 |
Hao Wu, Zhaoyang Ye, Ram I. Mahato. Genetically Modified Mesenchymal Stem Cells for Improved Islet Transplantation. Molecular Pharmaceutics 2011; 8(5): 1458 doi: 10.1021/mp200135e
|
79 |
Irit Meivar-Levy, Vered Aviv, Sarah Ferber. Stem Cell Therapy for Diabetes. 2010; : 183 doi: 10.1007/978-1-60761-366-4_9
|
80 |
Christian T. Meisel, Cristina Porcheri, Thimios A. Mitsiadis. Cancer Stem Cells, Quo Vadis? The Notch Signaling Pathway in Tumor Initiation and Progression. Cells 2020; 9(8): 1879 doi: 10.3390/cells9081879
|
81 |
Denise Faustman, Miriam Davis. TNF receptor 2 pathway: drug target for autoimmune diseases. Nature Reviews Drug Discovery 2010; 9(6): 482 doi: 10.1038/nrd3030
|
82 |
Paolo Fiorina, Julio Voltarelli, Nicholas Zavazava. Immunological Applications of Stem Cells in Type 1 Diabetes. Endocrine Reviews 2011; 32(6): 725 doi: 10.1210/er.2011-0008
|
83 |
M.N. Ramesh Bharadwaj, R. Mythreyi, Kanthesh M. Basalingappa, T.S. Gopenath, K. Gobianand. Stem Cells and Signaling Pathways. 2024; : 359 doi: 10.1016/B978-0-443-18800-8.00010-1
|
84 |
Ghada Nour Eldeen, Hadeer A. Aglan, Nadia S. Mahmoud, Mazen Abdel Rasheed, Osama M. Azmy, Hanaa H. Ahmed. Acquisition of durable insulin-producing cells from human adipose tissue-derived mesenchymal stem cells as a foundation for cell- based therapy of diabetes mellitus. Scientific Reports 2024; 14(1) doi: 10.1038/s41598-024-74527-w
|
85 |
Shuang Gao, Yuanyuan Zhang, Kaini Liang, Ran Bi, Yanan Du, Marta Baiocchi. Mesenchymal Stem Cells (MSCs): A Novel Therapy for Type 2 Diabetes. Stem Cells International 2022; 2022: 1 doi: 10.1155/2022/8637493
|
86 |
Arianna Scuteri, Elisabetta Donzelli, Virginia Rodriguez-Menendez, Maddalena Ravasi, Marianna Monfrini, Barbara Bonandrini, Marina Figliuzzi, Andrea Remuzzi, Giovanni Tredici, Paolo Fiorina. A Double Mechanism for the Mesenchymal Stem Cells' Positive Effect on Pancreatic Islets. PLoS ONE 2014; 9(1): e84309 doi: 10.1371/journal.pone.0084309
|
87 |
Mohsen Khosravi-Maharlooei, Ensiyeh Hajizadeh-Saffar, Yaser Tahamtani, Mohsen Basiri, Leila Montazeri, Keynoosh Khalooghi, Mohammad Kazemi Ashtiani, Ali Farrokhi, Nasser Aghdami, Anavasadat Sadr Hashemi Nejad, Mohammad-Bagher Larijani, Nico De Leu, Harry Heimberg, Xunrong Luo, Hossein Baharvand. THERAPY OF ENDOCRINE DISEASE: Islet transplantation for type 1 diabetes: so close and yet so far away. European Journal of Endocrinology 2015; 173(5): R165 doi: 10.1530/EJE-15-0094
|
88 |
A. Santana, R. Enseñat - Waser, Maria Isabel Arribas, J. A. Reig, E. Roche. Insulin - producing cells derived from stem cells: recent progress and future directions. Journal of Cellular and Molecular Medicine 2006; 10(4): 1 doi: 10.1111/j.1582-4934.2006.tb00444.x
|
89 |
Karen J. Juárez-Navarro, Eduardo Padilla-Camberos, Néstor Fabián Díaz, Ariel Miranda-Altamirano, N. Emmanuel Díaz-Martínez, Andrea Ballini. Human Mesenchymal Stem Cells: The Present Alternative for High-Incidence Diseases, Even SARS-Cov-2. Stem Cells International 2020; 2020: 1 doi: 10.1155/2020/8892189
|
90 |
Mohamed A. Ghoneim, Mahmoud M. Gabr, Sawsan M. El-Halawani, Ayman F. Refaie. Current status of stem cell therapy for type 1 diabetes: a critique and a prospective consideration. Stem Cell Research & Therapy 2024; 15(1) doi: 10.1186/s13287-024-03636-0
|
91 |
Carlos Eduardo Barra Couri, Júlio César Voltarelli. Potencial role of stem cell therapy in type 1 diabetes mellitus. Arquivos Brasileiros de Endocrinologia & Metabologia 2008; 52(2): 407 doi: 10.1590/S0004-27302008000200029
|
92 |
Fabio Ciceri, Lorenzo Piemonti. Bone Marrow and Pancreatic Islets: An Old Story with New Perspectives. Cell Transplantation 2010; 19(12): 1511 doi: 10.3727/096368910X514279
|
93 |
Elham Hoveizi, Shima Tavakol, Sadegh Shirian, Khadije Sanamiri. Electrospun Nanofibers for Diabetes: Tissue Engineering and Cell-Based Therapies. Current Stem Cell Research & Therapy 2019; 14(2): 152 doi: 10.2174/1574888X13666181018150107
|
94 |
Rasha Aziz Attia Salama, Mohamed Anas Mohamed Faruk Patni, Shadha Nasser Mohammed Ba-Hutair, Nihal Amir Wadid, Mushirabanu Sharifmiyan Akikwala. Exploring Novel Treatment Modalities for Type 1 Diabetes Mellitus: Potential and Prospects. Healthcare 2024; 12(15): 1485 doi: 10.3390/healthcare12151485
|
95 |
Garima Singh, Sanghamitra Satpathi, Bora Venu Gopala Reddy, Manish Kumar Singh, Samchita Sarangi, Prativa Kumari Behera, Bismita Nayak. Impact of various detergent-based immersion and perfusion decellularization strategies on the novel caprine pancreas derived extracellular matrix scaffold. Frontiers in Bioengineering and Biotechnology 2023; 11 doi: 10.3389/fbioe.2023.1253804
|
96 |
Lisha Li, Furong Li, Hui Qi, Gao Feng, Kehu Yuan, Hongkui Deng, Hanxin Zhou. Coexpression of Pdx1 and Betacellulin in Mesenchymal Stem Cells Could Promote the Differentiation of Nestin-Positive Epithelium-like Progenitors and Pancreatic Islet-like Spheroids. Stem Cells and Development 2008; 17(4): 815 doi: 10.1089/scd.2008.0060
|
97 |
G. Di Gioacchino, C. Di Campli, M.A. Zocco, A.C. Piscaglia, M. Novi, M. Santoro, A. Santoliquido, R. Flore, P. Tondi, P. Pola, G. Gasbarrini, A. Gasbarrini. Transdifferentiation of Stem Cells in Pancreatic Cells: State of the Art. Transplantation Proceedings 2005; 37(6): 2662 doi: 10.1016/j.transproceed.2005.06.039
|
98 |
D. STEHLÍK, R. PYTLÍK, H. RYCHTRMOCOVÁ, R. VESELÁ, Z. KOPEČNÝ, T. TRČ. Xenogeneic Protein Free Cultivation of Mesenchymal Multipotent Stromal Cells. Acta chirurgiae orthopaedicae et traumatologiae Cechoslovaca 2011; 78(6): 537 doi: 10.55095/achot2011/085
|
99 |
Marzieh Nemati, Ali Akbar Alizadeh, Sanaz Dastghaib, Forough Saki. Vitamin D supplementation affects bone marrow-derived mesenchymal stem cells differentiation into insulin-producing cells. Molecular Biology Reports 2024; 51(1) doi: 10.1007/s11033-024-09681-5
|
100 |
So-Yeon Kim, Ye-Ryung Kim, Woo-Jae Park, Han Su Kim, Sung-Chul Jung, So-Youn Woo, Inho Jo, Kyung-Ha Ryu, Joo-Won Park. Characterisation of insulin-producing cells differentiated from tonsil derived mesenchymal stem cells. Differentiation 2015; 90(1-3): 27 doi: 10.1016/j.diff.2015.08.001
|
101 |
Anupama Kakkar, Ashima Sorout, Mahak Tiwari, Pallavi Shrivastava, Poonam Meena, Sumit Kumar Saraswat, Supriya Srivastava, Rajan Datt, Siddharth Pandey. Current Status of Stem Cell Treatment for Type I Diabetes Mellitus. Tissue Engineering and Regenerative Medicine 2018; 15(6): 699 doi: 10.1007/s13770-018-0143-9
|
102 |
Arun K Sharma. An Examination of Regenerative Medicine-Based Strategies for the Urinary Bladder. Regenerative Medicine 2011; 6(5): 583 doi: 10.2217/rme.11.47
|
103 |
Yuyuan Ma, Jie Ma, Yuanyuan Zhao, Kaichuang Yang, Jia Zhou, Faliang Gao, Ruolang Pan, Gang Lu. Comparison of phenotypic markers and neural differentiation potential of human bone marrow stromal cells from the cranial bone and iliac crest. Journal of Cellular Physiology 2019; 234(9): 15235 doi: 10.1002/jcp.28167
|
104 |
Vikram Sabapathy, Saranya Ravi, Vivi Srivastava, Alok Srivastava, Sanjay Kumar. Long-Term Cultured Human Term Placenta-Derived Mesenchymal Stem Cells of Maternal Origin Displays Plasticity. Stem Cells International 2012; 2012: 1 doi: 10.1155/2012/174328
|
105 |
Sandrine Lavenus, David J. Poxson, Nika Ogievetsky, Jonathan S. Dordick, Richard W. Siegel. Stem cell behavior on tailored porous oxide surface coatings. Biomaterials 2015; 55: 96 doi: 10.1016/j.biomaterials.2015.03.033
|
106 |
M. Ghasemzadeh‐Hasankolaei, M.B. Eslaminejad, R. Batavani, M. Sedighi‐Gilani. Comparison of the efficacy of three concentrations of retinoic acid for transdifferentiation induction in sheep marrow‐derived mesenchymal stem cells into male germ cells. Andrologia 2014; 46(1): 24 doi: 10.1111/and.12037
|
107 |
B.O.S. Camara, N.M. Ocarino, B.M. Bertassoli, C. Malm, F.R. Araújo, A.M.S. Reis, E.C. Jorge, E.G.L. Alves, R. Serakides. Differentiation of canine adipose mesenchymal stem cells into insulin-producing cells: comparison of different culture medium compositions. Domestic Animal Endocrinology 2021; 74: 106572 doi: 10.1016/j.domaniend.2020.106572
|
108 |
Walaa M. Sayed, Laila A. Rashed. Therapeutic role of bone marrow-derived mesenchymal stem cells in cyclophosphamide-induced cardiotoxicity in adult male albino rat. The Egyptian Journal of Histology 2016; 39(3): 281 doi: 10.1097/01.EHX.0000508456.99217.6e
|
109 |
Md Aejaz Habeeb, Sandeep Kumar Vishwakarma, Safwaan Habeeb, Aleem Ahmed Khan. Current progress and emerging technologies for generating extrapancreatic functional insulin-producing cells. World Journal of Translational Medicine 2022; 10(1): 1-13 doi: 10.5528/wjtm.v10.i1.1
|
110 |
Carlos Eduardo Barra Couri, Maria Cristina Foss-Freitas, Milton César Foss, Júlio César Voltarelli. β-cell regeneration to treat Type 1 diabetes mellitus. Expert Review of Endocrinology & Metabolism 2008; 3(1): 51 doi: 10.1586/17446651.3.1.51
|
111 |
Koichi Oishi, Hirofumi Noguchi, Hiroshi Yukawa, Shuji Hayashi. Differential Ability of Somatic Stem Cells. Cell Transplantation 2009; 18(5-6): 581 doi: 10.1177/096368970901805-614
|
112 |
Shabnam Sabetkish, Abdol-Mohammad Kajbafzadeh. Decellularization Methods of Tissue and Whole Organ in Tissue Engineering. Advances in Experimental Medicine and Biology 2021; 1345: 61 doi: 10.1007/978-3-030-82735-9_6
|
113 |
Edda Tobiasch. Forschungsspitzen und Spitzenforschung. 2009; : 329 doi: 10.1007/978-3-7908-2127-7_29
|
114 |
CHENGRUI NAN, LI GUO, ZONGMAO ZHAO, SHUCHENG MA, JIXIANG LIU, DONGDONG YAN, GUOQIANG SONG, HANJIE LIU. Tetramethylpyrazine induces differentiation of human umbilical cord-derived mesenchymal stem cells into neuron-like cells in vitro. International Journal of Oncology 2016; 48(6): 2287 doi: 10.3892/ijo.2016.3449
|
115 |
Ippokratis Pountos, Peter V. Giannoudis. Biology of mesenchymal stem cells. Injury 2005; 36(3): S8 doi: 10.1016/j.injury.2005.07.028
|
116 |
Akimichi Iwamoto, Takayuki Hidaka, Yasuki Kihara, Hiroshi Kubo, Yukihito Higashi. Therapeutic Angiogenesis. 2017; : 161 doi: 10.1007/978-981-10-2744-4_11
|
117 |
Valeria Sordi, Federico Bertuzzi, Lorenzo Piemonti. Diabetes Mellitus: An Opportunity for Therapy with Stem Cells?. Regenerative Medicine 2008; 3(3): 377 doi: 10.2217/17460751.3.3.377
|
118 |
Farbod Rastegar, Deana Shenaq, Jiayi Huang, Wenli Zhang, Bing-Qiang Zhang, Bai-Cheng He, Liang Chen, Guo-Wei Zuo, Qing Luo, Qiong Shi, Eric R Wagner, Enyi Huang, Yanhong Gao, Jian-Li Gao, Stephanie H Kim, Jian-Zhong Zhou, Yang Bi, Yuxi Su, Gaohui Zhu, Jinyong Luo, Xiaoji Luo, Jiaqiang Qin, Russell R Reid, Hue H Luu, Rex C Haydon, Zhong-Liang Deng, Tong-Chuan He. Mesenchymal stem cells: Molecular characteristics and clinical applications. World Journal of Stem Cells 2010; 2(4): 67-80 doi: 10.4252/wjsc.v2.i4.67
|
119 |
Eman M. El-Nashar, Hala G. Metwaly, Sali O. Ibrahem, Sherifa Abdel Salam, Enas M. El-Gendy. Histological study of the role of stem cells on experimentally induced diabetes mellitus. The Egyptian Journal of Histology 2011; 34(4): 849 doi: 10.1097/01.EHX.0000407701.18895.e2
|
120 |
Camillo Ricordi, Luca Inverardi, Juan Domínguez-Bendala. From Cellular Therapies to Tissue Reprogramming and Regenerative Strategies in the Treatment of Diabetes. Regenerative Medicine 2012; 7(sup6): 41 doi: 10.2217/rme.12.70
|
121 |
G. Taru Sharma, G. Saikumar. Regenerative Medicine: Laboratory to Clinic. 2017; : 299 doi: 10.1007/978-981-10-3701-6_18
|
122 |
Hong Cheng, Yan Huang, Wei Chen, Jifei Che, Taidong Liu, Jing Na, Ruojin Wang, Yubo Fan. Cyclic Strain and Electrical Co-stimulation Improve Neural Differentiation of Marrow-Derived Mesenchymal Stem Cells. Frontiers in Cell and Developmental Biology 2021; 9 doi: 10.3389/fcell.2021.624755
|
123 |
Vicente Javier Clemente-Suárez, Alexandra Martín-Rodríguez, Laura Redondo-Flórez, Clara López-Mora, Rodrigo Yáñez-Sepúlveda, José Francisco Tornero-Aguilera. New Insights and Potential Therapeutic Interventions in Metabolic Diseases. International Journal of Molecular Sciences 2023; 24(13): 10672 doi: 10.3390/ijms241310672
|
124 |
D. Hannouche. Réparation du cartilage articulaire par ingénierie tissulaire. Revue de Chirurgie Orthopédique et Réparatrice de l'Appareil Moteur 2008; 94(8): 383 doi: 10.1016/j.rco.2008.09.004
|
125 |
Zeinab Neshati, Maryam M. Matin, Ahmad Reza Bahrami, Ali Moghimi. Differentiation of mesenchymal stem cells to insulin-producing cells and their impact on type 1 diabetic rats. Journal of Physiology and Biochemistry 2010; 66(2): 181 doi: 10.1007/s13105-010-0013-y
|
126 |
Graça Almeida-Porada, Christopher D. Porada, Esmail D. Zanjani. Mesenchymal Stromal Cells. 2013; : 259 doi: 10.1007/978-1-4614-5711-4_14
|
127 |
Tong-Ming Liu. Application of mesenchymal stem cells derived from human pluripotent stem cells in regenerative medicine. World Journal of Stem Cells 2021; 13(12): 1826-1844 doi: 10.4252/wjsc.v13.i12.1826
|
128 |
Noha M. Afifi. Effect of mesenchymal stem cell therapy on recovery of streptozotocin-induced diabetes mellitus in adult male albino rats. The Egyptian Journal of Histology 2012; 35(3): 458 doi: 10.1097/01.EHX.0000418062.59636.5b
|
129 |
Muhammad Tariq, Muhammad Sharif Masoud, Azra Mehmood, Shaheen N Khan, Sheikh Riazuddin. Stromal cell derived factor-1alpha protects stem cell derived insulin-producing cells from glucotoxicity under high glucose conditions in-vitro and ameliorates drug induced diabetes in rats. Journal of Translational Medicine 2013; 11(1) doi: 10.1186/1479-5876-11-115
|
130 |
Nick Giannoukakis, Massimo Trucco. Cellular therapies based on stem cells and their insulin-producing surrogates: a 2015 reality check. Pediatric Diabetes 2015; 16(3): 151 doi: 10.1111/pedi.12259
|
131 |
Fernando E. Ezquer, Marcelo E. Ezquer, Daniela B. Parrau, Daniel Carpio, Alejandro J. Yañez, Paulette A. Conget. Systemic Administration of Multipotent Mesenchymal Stromal Cells Reverts Hyperglycemia and Prevents Nephropathy in Type 1 Diabetic Mice. Biology of Blood and Marrow Transplantation 2008; 14(6): 631 doi: 10.1016/j.bbmt.2008.01.006
|
132 |
Tiziana Squillaro, Gianfranco Peluso, Umberto Galderisi. Clinical Trials with Mesenchymal Stem Cells: An Update. Cell Transplantation 2016; 25(5): 829 doi: 10.3727/096368915X689622
|
133 |
Ehsan Aali, Zahra Madjd, Neda Tekiyehmaroof, Ali Mohammad Sharifi. Control of Hyperglycemia Using Differentiated and Undifferentiated Mesenchymal Stem Cells in Rats with Type 1 Diabetes. Cells Tissues Organs 2020; 209(1): 13 doi: 10.1159/000507790
|
134 |
Rita Anzalone, Melania Lo Iacono, Tiziana Loria, Antonino Di Stefano, Pantaleo Giannuzzi, Felicia Farina, Giampiero La Rocca. Wharton’s Jelly Mesenchymal Stem Cells as Candidates for Beta Cells Regeneration: Extending the Differentiative and Immunomodulatory Benefits of Adult Mesenchymal Stem Cells for the Treatment of Type 1 Diabetes. Stem Cell Reviews and Reports 2011; 7(2): 342 doi: 10.1007/s12015-010-9196-4
|
135 |
Se-Young Oh, Young Min Choi, Ha Yeong Kim, Yoon Shin Park, Sung-Chul Jung, Joo-Won Park, So-Youn Woo, Kyung-Ha Ryu, Han Su Kim, Inho Jo. Application of Tonsil-Derived Mesenchymal Stem Cells in Tissue Regeneration: Concise Review. Stem Cells 2019; 37(10): 1252 doi: 10.1002/stem.3058
|
136 |
Vesco Mutskov, Bruce M. Raaka, Gary Felsenfeld, Marvin C. Gershengorn. The Human Insulin Gene Displays Transcriptionally Active Epigenetic Marks in Islet-Derived Mesenchymal Precursor Cells in the Absence of Insulin Expression. Stem Cells 2007; 25(12): 3223 doi: 10.1634/stemcells.2007-0325
|
137 |
Feng Gao, De-Quan Wu, Yan-Hua Hu, Guang-Xin Jin, Guo-Dong Li, Tie-Wei Sun, Fu-Jun Li. In vitro cultivation of islet-like cell clusters from human umbilical cord blood-derived mesenchymal stem cells. Translational Research 2008; 151(6): 293 doi: 10.1016/j.trsl.2008.03.003
|
138 |
PENGFEI HU, YABIN PU, XIAYUN LI, ZHIQIANG ZHU, YUHUA ZHAO, WEIJUN GUAN, YUEHUI MA. Isolation, in vitro culture and identification of a new type of mesenchymal stem cell derived from fetal bovine lung tissues. Molecular Medicine Reports 2015; 12(3): 3331 doi: 10.3892/mmr.2015.3854
|
139 |
I. B. Sokolova. Cell therapy for type-1 diabetes. Cell and Tissue Biology 2009; 3(6): 511 doi: 10.1134/S1990519X09060029
|
140 |
Seyed Jafar Hashemian, Marjan Kouhnavard, Ensieh Nasli-Esfahani. Mesenchymal Stem Cells: Rising Concerns over Their Application in Treatment of Type One Diabetes Mellitus. Journal of Diabetes Research 2015; 2015: 1 doi: 10.1155/2015/675103
|
141 |
Seon Jae Lee, Jae Bin Lee, Young-Woo Park, Dong Yun Lee. Biomimetic Medical Materials. Advances in Experimental Medicine and Biology 2018; 1064: 355 doi: 10.1007/978-981-13-0445-3_21
|
142 |
C. Chang, D. Niu, H. Zhou, Y. Zhang, F. Li, F. Gong. Mesenchymal stroma cells improve hyperglycemia and insulin deficiency in the diabetic porcine pancreatic microenvironment. Cytotherapy 2008; 10(8): 796 doi: 10.1080/14653240802461924
|
143 |
Zhao‐Jun Liu, Ying Zhuge, Omaida C. Velazquez. Trafficking and differentiation of mesenchymal stem cells. Journal of Cellular Biochemistry 2009; 106(6): 984 doi: 10.1002/jcb.22091
|
144 |
Anandika Dhaliwal, Jonathan Lam, Maricela Maldonado, Clayton Lin, Tatiana Segura. Extracellular matrix modulates non-viral gene transfer to mouse mesenchymal stem cells. Soft Matter 2012; 8(5): 1451 doi: 10.1039/C1SM06591B
|
145 |
James F. List, Huile He, Joel F. Habener. Glucagon-like peptide-1 receptor and proglucagon expression in mouse skin. Regulatory Peptides 2006; 134(2-3): 149 doi: 10.1016/j.regpep.2006.02.007
|
146 |
Safa Aydin, Derya Sağraç, Fikrettin Şahin. Cell Biology and Translational Medicine, Volume 8. Advances in Experimental Medicine and Biology 2019; 1247: 135 doi: 10.1007/5584_2019_476
|
147 |
In‐Hwan Song, Arnold I. Caplan, James E. Dennis. In vitro dexamethasone pretreatment enhances bone formation of human mesenchymal stem cells in vivo. Journal of Orthopaedic Research 2009; 27(7): 916 doi: 10.1002/jor.20838
|
148 |
Yun-Jong Park, Seunghee Cha. Salivary Gland Development and Regeneration. 2017; : 103 doi: 10.1007/978-3-319-43513-8_6
|
149 |
Bipasha Bose, Sudheer Shenoy P. Non insulin producing cell line, MIA PaCa‐2 is rendered insulin producing in vitro via mesenchymal epithelial transition. Journal of Cellular Biochemistry 2013; 114(7): 1642 doi: 10.1002/jcb.24506
|
150 |
Christopher D. Porada, Anthony Atala, Graça Almeida-Porada. Principles of Tissue Engineering. 2020; : 369 doi: 10.1016/B978-0-12-818422-6.00022-8
|
151 |
Morteza Mahmoudi, Hossein Hosseinkhani, Mohsen Hosseinkhani, Sebastien Boutry, Abdolreza Simchi, W. Shane Journeay, Karthikeyan Subramani, Sophie Laurent. Magnetic Resonance Imaging Tracking of Stem Cells in Vivo Using Iron Oxide Nanoparticles as a Tool for the Advancement of Clinical Regenerative Medicine. Chemical Reviews 2011; 111(2): 253 doi: 10.1021/cr1001832
|
152 |
Muhammad Jubayer Rahman, Danielle Regn, Roman Bashratyan, Yang D. Dai. Exosomes Released by Islet-Derived Mesenchymal Stem Cells Trigger Autoimmune Responses in NOD Mice. Diabetes 2014; 63(3): 1008 doi: 10.2337/db13-0859
|
153 |
Mona G. Amer, Azza S. Embaby, Rehab A. Karam, Marwa G. Amer. Role of adipose tissue derived stem cells differentiated into insulin producing cells in the treatment of type I diabetes mellitus. Gene 2018; 654: 87 doi: 10.1016/j.gene.2018.02.008
|
154 |
C. Chang, D. Niu, H. Zhou, F. Li, F. Gong. Mesenchymal Stem Cells Contribute to Insulin-Producing Cells Upon Microenvironmental Manipulation In Vitro. Transplantation Proceedings 2007; 39(10): 3363 doi: 10.1016/j.transproceed.2007.09.026
|
155 |
Guiting Lin, Guifang Wang, Gang Liu, Li-Jun Yang, Lung-Ji Chang, Tom F. Lue, Ching-Shwun Lin. Treatment of Type 1 Diabetes With Adipose Tissue–Derived Stem Cells Expressing Pancreatic Duodenal Homeobox 1. Stem Cells and Development 2009; 18(10): 1399 doi: 10.1089/scd.2009.0010
|
156 |
Miguel Barajas. Estrategias de terapia celular para el tratamiento de la diabetes tipo 1: dónde estamos y qué podemos esperar. Avances en Diabetología 2011; 27(4): 115 doi: 10.1016/j.avdiab.2011.08.004
|
157 |
Lee Chuen Liew, Takeshi Katsuda, Luc Gailhouste, Hitoshi Nakagama, Takahiro Ochiya. Mesenchymal stem cell-derived extracellular vesicles: a glimmer of hope in treating Alzheimer’s disease. International Immunology 2017; 29(1): 11 doi: 10.1093/intimm/dxx002
|
158 |
|
159 |
K. Lin, Y. Matsubara, Y. Masuda, K. Togashi, T. Ohno, T. Tamura, Y. Toyoshima, K. Sugimachi, M. Toyoda, H. Marc, A. Douglas. Characterization of adipose tissue-derived cells isolated with the Celution™ system. Cytotherapy 2008; 10(4): 417 doi: 10.1080/14653240801982979
|
160 |
Jie Liu, Xin-Xing Wan, Sheng-Yuan Zheng, Md. Asaduzzaman Khan, Hui-Hong He, Yu-Xing Feng, Jing-Ge Xiao, Yu Chen, Xi-Min Hu, Qi Zhang, Kun Xiong. Mesenchymal Stem Cell Transplantation in Type 1 Diabetes Treatment:
Current Advances and Future Opportunity. Current Stem Cell Research & Therapy 2024; 19(9): 1175 doi: 10.2174/011574888X268740231002054459
|
161 |
Morvarid Saeinasab, Maryam M. Matin, Fatemeh B. Rassouli, Ahmad Reza Bahrami. Blastema cells derived from New Zealand white rabbit’s pinna carry stemness properties as shown by differentiation into insulin producing, neural, and osteogenic lineages representing three embryonic germ layers. Cytotechnology 2016; 68(3): 497 doi: 10.1007/s10616-014-9802-4
|
162 |
Xiuyi Huang, Yunchong Liu, Zilun Li, Lilach O Lerman. Mesenchymal Stem/Stromal Cells Therapy for Metabolic Syndrome: Potential Clinical Application?. Stem Cells 2023; 41(10): 893 doi: 10.1093/stmcls/sxad052
|
163 |
Adele Soltani, Masoud Soleimani, Mohammad Adel Ghiass, Seyed Ehsan Enderami, Shahram Rabbani, Arefeh Jafarian, Abdolamir Allameh. Treatment of diabetic mice by microfluidic system-assisted transplantation of stem cells-derived insulin-producing cells transduced with miRNA. Life Sciences 2021; 274: 119338 doi: 10.1016/j.lfs.2021.119338
|
164 |
Young-Il Oh, Jong-Hoon Kim, Chang-Won Kang. Protective effect of short-term treatment with parathyroid hormone 1-34 on oxidative stress is involved in insulin-like growth factor-I and nuclear factor erythroid 2-related factor 2 in rat bone marrow derived mesenchymal stem cells. Regulatory Peptides 2014; 189: 1 doi: 10.1016/j.regpep.2013.12.008
|
165 |
Duaa Abuarqoub, Sofia Adwan, Rand Zaza, Suha Wehaibi, Nazneen Aslam, Hanan Jafar, Nidal Qinnah, Abdalla Awidi. Effective Generation of Functional Pancreatic β Cells from Human-Derived Dental Stem Cells of Apical Papilla and Bone-Marrow-Derived Stem Cells: A Comparative Study. Pharmaceuticals 2023; 16(5): 649 doi: 10.3390/ph16050649
|
166 |
Nazmul Haque, Ismail M Fareez, Liew Fong Fong, Chanchal Mandal, Noor Hayaty Abu Kasim, Kranthi Raja Kacharaju, Pratiwi Soesilawati. Role of the CXCR4-SDF1-HMGB1 pathway in the directional migration of cells and regeneration of affected organs. World Journal of Stem Cells 2020; 12(9): 938-951 doi: 10.4252/wjsc.v12.i9.938
|
167 |
Hiroaki Kamishina, James P. Farese, Joshua A. Storm, Jennifer A. Cheeseman, Roger M. Clemmons. The frequency, growth kinetics, and osteogenic/adipogenic differentiation properties of canine bone marrow stromal cells. In Vitro Cellular & Developmental Biology - Animal 2008; 44(10): 472 doi: 10.1007/s11626-008-9137-6
|
168 |
V. Govindasamy, V.S. Ronald, A.N. Abdullah, K.R. Ganesan Nathan, Z.A.C. Ab. Aziz, M. Abdullah, S. Musa, N.H. Abu Kasim, R.R Bhonde. Differentiation of Dental Pulp Stem Cells into Islet-like Aggregates. Journal of Dental Research 2011; 90(5): 646 doi: 10.1177/0022034510396879
|
169 |
Faeze Shahedi, Arron Munggela Foma, Azam Mahmoudi-Aznaveh, Mohammad Ali Mazlomi, Zahra Azizi, Mohammad Reza Khorramizadeh. Differentiation of Pancreatic Beta Cells: Dual Acting of Inflammatory Factors. Current Stem Cell Research & Therapy 2024; 19(6): 832 doi: 10.2174/1574888X18666230504093649
|
170 |
Ying Wan, Jessica Garner, Nan Wu, Levine Phillip, Yuyan Han, Kelly McDaniel, Tami Annable, Tianhao Zhou, Heather Francis, Shannon Glaser, Qiaobing Huang, Gianfranco Alpini, Fanyin Meng. Role of stem cells during diabetic liver injury. Journal of Cellular and Molecular Medicine 2016; 20(2): 195 doi: 10.1111/jcmm.12723
|
171 |
Zijun Zhou, Xiandong Zhu, Hongjian Huang, Zeru Xu, Jiahong Jiang, Bicheng Chen, Hong Zhu. Recent Progress of Research Regarding the Applications of Stem Cells for Treating Diabetes Mellitus. Stem Cells and Development 2022; 31(5-6): 102 doi: 10.1089/scd.2021.0083
|
172 |
Rishi Sharma, Ram Raghubir. Stem Cell Therapy: A Hope for Dying Hearts. Stem Cells and Development 2007; 16(4): 517 doi: 10.1089/scd.2006.0070
|
173 |
Luca Inverardi, Giacomo Lanzoni, Juan Dominguez-Bendala, Camillo Ricordi. Mesenchymal Stromal Cells. 2013; : 571 doi: 10.1007/978-1-4614-5711-4_33
|
174 |
Anshu Sharma, Rajni Rani. Do we really need to differentiate mesenchymal stem cells into insulin-producing cells for attenuation of the autoimmune responses in type 1 diabetes: immunoprophylactic effects of precursors to insulin-producing cells. Stem Cell Research & Therapy 2017; 8(1) doi: 10.1186/s13287-017-0615-1
|
175 |
Shruti D Dave, Hargovind L Trivedi, Saroj G Chooramani, Tulika Chandra. Management of type 1 diabetes mellitus using in vitro autologous adipose tissue trans-differentiated insulin-making cells. BMJ Case Reports 2013; : bcr2013200226 doi: 10.1136/bcr-2013-200226
|
176 |
Stephanie Loo, Nyet Wong. Advantages and challenges of stem cell therapy for osteoarthritis (Review). Biomedical Reports 2021; 15(2) doi: 10.3892/br.2021.1443
|
177 |
Smruti M. Phadnis, Mugdha V. Joglekar, Maithili P. Dalvi, Sudhakar Muthyala, Prabha D. Nair, Surendra M. Ghaskadbi, Ramesh R. Bhonde, Anandwardhan A. Hardikar. Human bone marrow-derived mesenchymal cells differentiate and mature into endocrine pancreatic lineage in vivo. Cytotherapy 2011; 13(3): 279 doi: 10.3109/14653249.2010.523108
|
178 |
Preeti Chhabra, Kenneth L. Brayman. Current Status of Immunomodulatory and Cellular Therapies in Preclinical and Clinical Islet Transplantation. Journal of Transplantation 2011; 2011: 1 doi: 10.1155/2011/637692
|
179 |
Dong-Sheng Li, Garth L. Warnock, Han-Jun Tu, Ziliang Ao, Zehua He, Hong Lu, Long-Jun Dai. Do immunotherapy and ß cell replacement play a synergistic role in the treatment of type 1 diabetes?. Life Sciences 2009; 85(15-16): 549 doi: 10.1016/j.lfs.2009.08.016
|
180 |
Chunyu Bai, Yuhua Gao, Qian Li, Yuan Feng, Yanze Yu, Gentong Meng, Minghai Zhang, Weijun Guan. Differentiation of chicken umbilical cord mesenchymal stem cells into beta-like pancreatic islet cells. Artificial Cells, Nanomedicine, and Biotechnology 2015; 43(2): 106 doi: 10.3109/21691401.2013.864662
|
181 |
Maria Teresa Gonzalez-Garza, Citlali Alcaraz, Lizbeth Gonzalez-Jara, Demetrio Arcos, Jorge E. Moreno Cuevas. Engraftment of pre-differentiated stem cells into cardiomyocytes in an animal model of ischemic cardiopathy. Stem Cell Discovery 2014; 4(01): 1 doi: 10.4236/scd.2014.41001
|
182 |
|
183 |
Rebecca S. Y. Wong. Extrinsic Factors Involved in the Differentiation of Stem Cells into Insulin-Producing Cells: An Overview. Experimental Diabetes Research 2011; 2011: 1 doi: 10.1155/2011/406182
|
184 |
Megan Sykes. 2007 IXA Presidential Address. Progress toward an ideal source animal: opportunities and challenges in a changing world. Xenotransplantation 2008; 15(1): 7 doi: 10.1111/j.1399-3089.2008.00441.x
|
185 |
Krista Minéia Wartchow, Letícia Rodrigues, Lucas Zingano Suardi, Barbara Carolina Federhen, Nicholas Guerini Selistre, Carlos-Alberto Gonçalves, Patrícia Sesterheim. Short-Term Protocols to Obtain Insulin-Producing Cells from Rat Adipose Tissue: Signaling Pathways and In Vivo Effect. International Journal of Molecular Sciences 2019; 20(10): 2458 doi: 10.3390/ijms20102458
|
186 |
Arefeh Jafarian, Mohammad Taghikhani, Saeid Abroun, Zahra Pourpak, Amir Allahverdi, Masoud Soleimani. Generation of high-yield insulin producing cells from human bone marrow mesenchymal stem cells. Molecular Biology Reports 2014; 41(7): 4783 doi: 10.1007/s11033-014-3349-5
|
187 |
Mohamed A. Ghoneim, Mahmoud M. Gabr, Ayman F. Refaie, Sawsan M. El-Halawani, Mohga M. Al-issawi, Batoul L. Elbassiouny, Mai A. Abd El Kader, Amani M. Ismail, Mona F. Zidan, Mary S. Karras, Raghda W. Magar, Sherry M. Khater, Sylvia A. Ashamallah, Mahmoud M. Zakaria, Malgorzata Kloc. Transplantation of insulin-producing cells derived from human mesenchymal stromal/stem cells into diabetic humanized mice. Stem Cell Research & Therapy 2022; 13(1) doi: 10.1186/s13287-022-03048-y
|
188 |
Kiranmai Durvasula, Peter M. Thulé, Athanassios Sambanis. Combinatorial insulin secretion dynamics of recombinant hepatic and enteroendocrine cells. Biotechnology and Bioengineering 2012; 109(4): 1074 doi: 10.1002/bit.24373
|
189 |
P. Rahnamay Moshtagh, S. Hojati Emami, Ali M. Sharifi. Differentiation of human adipose-derived mesenchymal stem cell into insulin-producing cells: an in vitro study. Journal of Physiology and Biochemistry 2013; 69(3): 451 doi: 10.1007/s13105-012-0228-1
|
190 |
Zulma Gazit, Gadi Pelled, Dima Sheyn, Nadav Kimelman, Dan Gazit. Handbook of Stem Cells. 2013; : 513 doi: 10.1016/B978-0-12-385942-6.00045-7
|
191 |
Stefano Capobianco, Venu Chennamaneni, Mayank Mittal, Nannan Zhang, Cuihua Zhang. Endothelial progenitor cells as factors in neovascularization and endothelial repair. World Journal of Cardiology 2010; 2(12): 411-420 doi: 10.4330/wjc.v2.i12.411
|
192 |
Han-Soo Kim, Do-Young Choi, So Jeong Yun, Seong-Mi Choi, Jeong Won Kang, Jin Woo Jung, Daehee Hwang, Kwang Pyo Kim, Dong-Wook Kim. Proteomic Analysis of Microvesicles Derived from Human Mesenchymal Stem Cells. Journal of Proteome Research 2012; 11(2): 839 doi: 10.1021/pr200682z
|
193 |
Noha Attia, Mohamed Mashal, Sudhakar Pemminati, Adekunle Omole, Carolyn Edmondson, Will Jones, Priyanka Priyadarshini, Temoria Mughal, Pauline Aziz, Blesing Zenick, Ambar Perez, Morgan Lacken. Cell-Based Therapy for the Treatment of Glioblastoma: An Update from Preclinical to Clinical Studies. Cells 2021; 11(1): 116 doi: 10.3390/cells11010116
|
194 |
Gary Brooke, Matthew Cook, Chris Blair, Rachel Han, Celena Heazlewood, Ben Jones, Melinda Kambouris, Kate Kollar, Steven McTaggart, Rebecca Pelekanos, Alison Rice, Tony Rossetti, Kerry Atkinson. Therapeutic applications of mesenchymal stromal cells. Seminars in Cell & Developmental Biology 2007; 18(6): 846 doi: 10.1016/j.semcdb.2007.09.012
|
195 |
Marta Pokrywczynska, Sandra Krzyzanowska, Arkadiusz Jundzill, Jan Adamowicz, Tomasz Drewa. Differentiation of Stem Cells into Insulin-Producing Cells: Current Status and Challenges. Archivum Immunologiae et Therapiae Experimentalis 2013; 61(2): 149 doi: 10.1007/s00005-012-0213-y
|
196 |
Miguel Antonio Jiménez-Acosta, Lory Jhenifer Rochin Hernández, Mayte Lizeth Padilla Cristerna, Marco Alejandro Meraz-Ríos. Mesenchymal Stem Cells: New Alternatives for Nervous System Disorders. Current Stem Cell Research & Therapy 2023; 18(3): 299 doi: 10.2174/1574888X17666220511153133
|
197 |
Bangyan L. Stiles, Christine Kuralwalla-Martinez, Wei Guo, Caroline Gregorian, Ying Wang, Jide Tian, Mark A. Magnuson, Hong Wu. Selective Deletion of Pten in Pancreatic β Cells Leads to Increased Islet Mass and Resistance to STZ-Induced Diabetes. Molecular and Cellular Biology 2006; 26(7): 2772 doi: 10.1128/MCB.26.7.2772-2781.2006
|
198 |
Dragica Mićanović, Suzana Stanisavljević, Hanluo Li, Ivan Koprivica, Natalija Jonić, Ivana Stojanović, Vuk Savković, Tamara Saksida. Mesenchymal Stem Cells from Mouse Hair Follicles Inhibit the Development of Type 1 Diabetes. International Journal of Molecular Sciences 2024; 25(11): 5974 doi: 10.3390/ijms25115974
|
199 |
Luke D. Amer, Melissa J. Mahoney, Stephanie J. Bryant. Tissue Engineering Approaches to Cell-Based Type 1 Diabetes Therapy. Tissue Engineering Part B: Reviews 2014; 20(5): 455 doi: 10.1089/ten.teb.2013.0462
|
200 |
Qing Zhang, Wei Xiang, Dong-ye Yi, Bing-zhou Xue, Wan-wan Wen, Ahmed Abdelmaksoud, Nan-xiang Xiong, Xiao-bing Jiang, Hong-yang Zhao, Peng Fu. Current status and potential challenges of mesenchymal stem cell-based therapy for malignant gliomas. Stem Cell Research & Therapy 2018; 9(1) doi: 10.1186/s13287-018-0977-z
|
201 |
Amira Ragab El Barky, Amany Abdel Hamid Ezz, Abeer Abd-Elhameed Alm-Eldeen, Samy Ali Hussein, Yehia Ahmed Hafez, Tarek Mostafa Mohamed. Can Stem Cells Ameliorate the Pancreatic Damage Induced by Streptozotocin in Rats?. Canadian Journal of Diabetes 2018; 42(1): 61 doi: 10.1016/j.jcjd.2017.04.002
|
202 |
Mahmoud M. Gabr, Mahmoud M. Zakaria, Ayman F. Refaie, Sherry M. Khater, Sylvia A. Ashamallah, Sahar A. Rashed, Ali M. Fouad, Amani M. Ismail, Mohamed A. Ghoneim. PRDX6 Promotes the Differentiation of Human Mesenchymal Stem (Stromal) Cells to Insulin-Producing Cells. BioMed Research International 2020; 2020: 1 doi: 10.1155/2020/7103053
|
203 |
Reham M. Balahmar. Advances in Application of Stem Cells: From Bench to Clinics. Stem Cell Biology and Regenerative Medicine 2021; 69: 155 doi: 10.1007/978-3-030-78101-9_7
|
204 |
S.-F. Yang, W.-J. Xue, Y.-F. Duan, L.-Y. Xie, W.-H. Lu, J. Zheng, A.-P. Yin. Nicotinamide Facilitates Mesenchymal Stem Cell Differentiation Into Insulin-Producing Cells and Homing to Pancreas in Diabetic Mice. Transplantation Proceedings 2015; 47(6): 2041 doi: 10.1016/j.transproceed.2015.05.019
|
205 |
Rana K. El-Asfar, Mohamed M. Kamal, Rania S. Abd EL-Razek, Ebtehal EL-Demerdash, Hala O. El-Mesallamy. Obestatin can potentially differentiate Wharton’s jelly mesenchymal stem cells into insulin-producing cells. Cell and Tissue Research 2018; 372(1): 91 doi: 10.1007/s00441-017-2725-6
|
206 |
A. Santana, R. Enseñat - Waser, María Isabel Arribas, J. A. Reig, E. Roche. Insulin - producing cells derived from stem cells: recent progress and future directions. Journal of Cellular and Molecular Medicine 2006; 10(4): 866 doi: 10.1111/j.1582-4934.2006.tb00531.x
|
207 |
Zulma Gazit, Hadi Aslan, Yossi Gafni, Nadav Kimelman, Gadi Pelled, Dan Gazit. Principles of Regenerative Medicine. 2008; : 318 doi: 10.1016/B978-012369410-2.50021-8
|
208 |
Susan W. Volk, Yanjian Wang, Kurt D. Hankenson. Effects of Donor Characteristics and Ex Vivo Expansion on Canine Mesenchymal Stem Cell Properties: Implications for MSC-Based Therapies. Cell Transplantation 2012; 21(10): 2189 doi: 10.3727/096368912X636821
|
209 |
Vladislav Volarevic, Nebojsa Arsenijevic, Miodrag L. Lukic, Miodrag Stojkovic. Concise Review: Mesenchymal Stem Cell Treatment of the Complications of Diabetes Mellitus. Stem Cells 2011; 29(1): 5 doi: 10.1002/stem.556
|
210 |
Takashi Taguchi, Wei Duan, Wendy Wolfson, Brandy Duhon, Emily G. Halphen, Mandi J. Lopez. Feline Adipose Derived Multipotent Stromal Cell Transdifferentiation Into Functional Insulin Producing Cell Clusters. Frontiers in Bioengineering and Biotechnology 2022; 10 doi: 10.3389/fbioe.2022.904519
|
211 |
Mohamed Mabed. The Potential Utility of Bone Marrow or Umbilical Cord Blood Transplantation For the Treatment of Type I Diabetes Mellitus. Biology of Blood and Marrow Transplantation 2011; 17(4): 455 doi: 10.1016/j.bbmt.2010.06.002
|
212 |
Ana Patricia Ayala-Cuellar, Ji-Houn Kang, Eui-Bae Jeung, Kyung-Chul Choi. Roles of Mesenchymal Stem Cells in Tissue Regeneration and Immunomodulation. Biomolecules & Therapeutics 2019; 27(1): 25 doi: 10.4062/biomolther.2017.260
|