Type 1 diabetes mellitus (T1DM) is an autoimmune disease resulting from the destruction of the insulin-producing β cells of the pancreas. While treatment options like daily insulin injections or transplantation of whole-pancreas exist, they are associated with significant drawbacks. As a result, there has been great interest in engineering surrogate β cells, both ex vivo and in situ , to replace the function of those cells lost during the progression of the disease. However, the β cell is highly specialized and extraordinarily adept at synthesizing and rapidly secreting the appropriate amount of insulin in response to even small increases in blood glucose levels. Thus, genetic engineering of the “perfect” β cell may prove impossible. In this review, we will detail the features of β cells that make them so proficient at regulating blood glucose and highlight the key features that absolutely must be met by surrogate β cells if they are to be suitable for treatment of T1DM. Then, we will summarize the current approaches used to genetically engineer surrogate β cells, including the overexpression of β cell-specific transcription factors and insulin gene therapy. Along the way, we will discuss the advantages and disadvantages of each approach and review important studies in the field. Lastly, we will discuss important future directions necessary to genetically engineer surrogate β cells with the potential to treat T1DM.
The Diabetes Control and Complications Trial Research Group (1993) The Effect of Intensive Treatment of Diabetes on the Development and Progression of Long-Term Complications in Insulin-Dependent Diabetes Mellitus. The New England Journal of Medicine, 329, 977-986. http://dx.doi.org/10.1056/NEJM199309303291401
Hovorka, R., Kumareswaran, K., Harris, J., Allen, J.M. and Elleri, D. (2011) Overnight Closed Loop Insulin Delivery (Artificial Pancreas) in Adults with Type 1 Diabetes: Crossover Randomised Controlled Studies. BMJ, 342, d1855. http://dx.doi.org/10.1136/bmj.d1855
Hovorka, R. (2011) Closed-Loop Insulin Delivery: From Bench to Clinical Practice. Nature Reviews Endocrinology, 7, 385-395. http://dx.doi.org/10.1038/nrendo.2011.32
El-Khatib, F.H., Russell, S.J., Nathan, D.M., Sutherlin, R.G. and Damiano, E.R. (2010) A Bihormonal Closed-Loop Artificial Pancreas for Type 1 Diabetes. Science Translational Medicine, 2, 27ra27. http://dx.doi.org/10.1126/scitranslmed.3000619
Kelly, W.D., Lillehei, R.C., Merkel, F.K., Idezuki, Y. and Goetz, F.C. (1967) Allotransplantation of Pancreas and Duodenum Along with Kidney in Diabetic Nephropathy. Surgery, 61, 827-&.
Paty, B.W., Ryan, E.A., Shapiro, A.M., Lakey, J.R. and Robertson, R.P. (2002) Intrahepatic Islet Transplantation in Type 1 Diabetic Patients Does Not Restore Hypoglycemic Hormonal Counterregulation or Symptom Recognition after Insulin Independence. Diabetes, 51, 3428-3434. http://dx.doi.org/10.2337/diabetes.51.12.3428
Shapiro, A.M., Lakey, J.R., Ryan, E.A., Korbutt, G.S. and Toth, E. (2000) Islet Transplantation in Seven Patients with Type 1 Diabetes Mellitus Using a Glucocorticoid-Free Immunosuppressive Regimen. The New England Journal of Medicine, 343, 230-238. http://dx.doi.org/10.1056/NEJM200007273430401
Newgard, C.B. and McGarry, J.D. (1995) Metabolic Coupling Factors in Pancreatic Beta-Cell Signal Transduction. Annual Review of Biochemistry, 64, 689-719. http://dx.doi.org/10.1146/annurev.bi.64.070195.003353
Wollheim, C.B. and Sharp, G.W.G. (1981) Regulation of Insulin Release by Calcium. Physiological Reviews, 61, 914-973.
Ishihara, H., Wang, H., Drewes, L.R. and Wollheim, C.B. (1999) Overexpression of Monocarboxylate Transporter and Lactate Dehydrogenase Alters Insulin Secretory Responses to Pyruvate and Lactate in Beta Cells. The Journal of Clinical Investigation, 104, 1621-1629. http://dx.doi.org/10.1172/JCI7515
Schuit, F., De Vos, A., Farfari, S., Moens, K. and Pipeleers, D. (1997) Metabolic Fate of Glucose in Purified Islet Cells. Glucose-Regulated Anaplerosis in Beta Cells. The Journal of Biological Chemistry, 272, 18572-18579. http://dx.doi.org/10.1074/jbc.272.30.18572
Ronnebaum, S.M., Ilkayeva, O., Burgess, S.C., Joseph, J.W. and Lu, D. (2006) A Pyruvate Cycling Pathway Involving Cytosolic Nadp-Dependent Isocitrate Dehydrogenase Regulates Glucose-Stimulated Insulin Secretion. The Journal of Biological Chemistry, 281, 30593-30602. http://dx.doi.org/10.1074/jbc.M511908200
Ivarsson, R., Quintens, R., Dejonghe, S., Tsukamoto, K., in’t Veld, P., Renstrom, E. and Schuit, F.C. (2005) Redox Control of Exocytosis: Regulatory Role of Nadph, Thioredoxin, and Glutaredoxin. Diabetes, 54, 2132-2142. http://dx.doi.org/10.2337/diabetes.54.7.2132
McIntosh, C.H.S., Widenmaier, S. and Kim, S.J. (2009) Glucose-Dependent Insulinotropic Polypeptide (Gastric Inhibitory Polypeptide; GIP). Vitamins & Hormones, 80, 409-471. http://dx.doi.org/10.1016/S0083-6729(08)00615-8
Nolan, C.J. and Prentki, M. (2008) The Islet Beta-Cell: Fuel Responsive and Vulnerable. Trends in Endocrinology and Metabolism, 19, 285-291. http://dx.doi.org/10.1016/j.tem.2008.07.006
Pongratz, R.L., Kibbey, R.G., Shulman, G.I. and Cline, G.W. (2007) Cytosolic and Mitochondrial Malic Enzyme Isoforms Differentially Control Insulin Secretion. The Journal of Biological Chemistry, 282, 200-207. http://dx.doi.org/10.1074/jbc.M602954200
Melloul, D., Marshak, S. and Cerasi, E. (2002) Regulation of Insulin Gene Transcription. Diabetologia, 45, 309-326. http://dx.doi.org/10.1007/s00125-001-0728-y
Zhao, L., Guo, M., Matsuoka, T.A., Hagman, D.K. and Parazzoli, S.D. (2005) The Islet Beta Cell-Enriched Mafa Activator Is a Key Regulator of Insulin Gene Transcription. The Journal of Biological Chemistry, 280, 11887-11894. http://dx.doi.org/10.1074/jbc.M409475200
Macfarlane, W.M., McKinnon, C.M., Felton-Edkins, Z.A., Cragg, H. and James, R.F. (1999) Glucose Stimulates Translocation of the Homeodomain Transcription Factor Pdx1 from the Cytoplasm to the Nucleus in Pancreatic Beta-Cells. The Journal of Biological Chemistry, 274, 1011-1016. http://dx.doi.org/10.1074/jbc.274.2.1011
McKinnon, C.M. and Docherty, K. (2001) Pancreatic Duodenal Homeobox-1, Pdx-1, a Major Regulator of Beta Cell Identity and Function. Diabetologia, 44, 1203-1214. http://dx.doi.org/10.1007/s001250100628
Welsh, M., Nielsen, D.A., MacKrell, A.J. and Steiner, D.F. (1985) Control of Insulin Gene Expression in Pancreatic Beta-Cells and in an Insulin-Producing Cell Line, Rin-5f Cells. Ii. Regulation of Insulin Mrna Stability. The Journal of Biological Chemistry, 260, 13590-13594.
Tillmar, L. and Welsh, N. (2002) Hypoxia May Increase Rat Insulin Mrna Levels by Promoting Binding of the Polypyrimidine Tract-Binding Protein (Ptb) to the Pyrimidine-Rich Insulin Mrna 3’-Untranslated Region. Molecular Medicine, 8, 263-272.
Tillmar, L. and Welsh, N. (2004) Glucose-Induced Binding of the Polypyrimidine Tract-Binding Protein (Ptb) to the 3’-Untranslated Region of the Insulin Mrna (Ins-Prs) Is Inhibited by Rapamycin. Molecular and Cellular Biochemistry, 260, 85-90. http://dx.doi.org/10.1023/B:MCBI.0000026059.56089.e4
Wicksteed, B., Herbert, T.P., Alarcon, C., Lingohr, M.K. and Moss, L.G. (2001) Cooperativity between the Preproinsulin Mrna Untranslated Regions Is Necessary for Glucose-Stimulated Translation. Journal of Biological Chemistry, 276, 22553-22558. http://dx.doi.org/10.1074/jbc.M011214200
Wicksteed, B., Uchizono, Y., Alarcon, C., McCuaig, J.F. and Shalev, A. (2007) A Cis-Element in the 5’ Untranslated Region of the Preproinsulin Mrna (Ppige) Is Required for Glucose Regulation of Proinsulin Translation. Cell Metabolism, 5, 221-227. http://dx.doi.org/10.1016/j.cmet.2007.02.007
Muralidharan, B., Bakthavachalu, B., Pathak, A. and Seshadri, V. (2007) A Minimal Element in 5’utr of Insulin Mrna Mediates Its Translational Regulation by Glucose. FEBS Letters, 581, 4103-4108. http://dx.doi.org/10.1016/j.febslet.2007.07.050
Kulkarni, S.D., Muralidharan, B., Panda, A.C., Bakthavachalu, B. and Vindu, A. (2011) Glucose-Stimulated Translation Regulation of Insulin by the 5’ Utr-Binding Proteins. Journal of Biological Chemistry, 286, 14146-14156. http://dx.doi.org/10.1074/jbc.M110.190553
Hutton, J.C. (1994) Insulin Secretory Granule Biogenesis and the Proinsulin-Processing Endopeptidases. Diabetologia, 37, S48-S56. http://dx.doi.org/10.1007/BF00400826
Steiner, D.F. (1998) The Proprotein Convertases. Current Opinion in Chemical Biology, 2, 31-39. http://dx.doi.org/10.1016/S1367-5931(98)80033-1
Davidson, H.W., Rhodes, C.J. and Hutton, J.C. (1988) Intraorganellar Calcium and Ph Control Proinsulin Cleavage in the Pancreatic Beta-Cell Via 2 Distinct Site-Specific Endopeptidases. Nature, 333, 93-96. http://dx.doi.org/10.1038/333093a0
Knoch, K.P., Bergert, H., Borgonovo, B., Saeger, H.D. and Altkruger, A. (2004) Polypyrimidine Tract-Binding Protein Promotes Insulin Secretory Granule Biogenesis. Nature Cell Biology, 6, 207-214. http://dx.doi.org/10.1038/ncb1099
Mas, A., Montane, J., Anguela, X.M., Munoz, S. and Douar, A.M. (2006) Reversal of Type 1 Diabetes by Engineering a Glucose Sensor in Skeletal Muscle. Diabetes, 55, 1546-1553. http://dx.doi.org/10.2337/db05-1615
Callejas, D., Mann, C.J., Ayuso, E., Lage, R. and Grifoll, I. (2013) Treatment of Diabetes and Long-Term Survival after Insulin and Glucokinase Gene Therapy. Diabetes, 62, 1718-1729. http://dx.doi.org/10.2337/db12-1113
Faradji, R.N., Alcazar, O., Havari, E., Worku, A.D. and Tornheim, K. (2001) Glucose-Induced Toxicity in Bioengineered Surrogate Beta Cells. Diabetes, 50, A6-A6.
Halban, P.A., Kahn, S.E., Lernmark, A. and Rhodes, C.J. (2001) Gene and Cell-Replacement Therapy in the Treatment of Type 1 Diabetes—How High Must the Standards Be Set? Diabetes, 50, 2181-2191. http://dx.doi.org/10.2337/diabetes.50.10.2181
Revers, R.R., Henry, R., Schmeiser, L., Kolterman, O. and Cohen, R. (1984) The Effects of Biosynthetic Human Proinsulin on Carbohydrate-Metabolism. Diabetes, 33, 762-770. http://dx.doi.org/10.2337/diab.33.8.762
Newgard, C.B. (1994) Cellular Engineering and Gene-Therapy Strategies for Insulin Replacement in Diabetes. Diabetes, 43, 341-350. http://dx.doi.org/10.2337/diab.43.3.341
Groskreutz, D.J., Sliwkowski, M.X. and Gorman, C.M. (1994) Genetically-Engineered Proinsulin Constitutively Processed and Secreted as Mature, Active Insulin. Journal of Biological Chemistry, 269, 6241-6245.
Yanagita, M., Hoshino, H., Nakayama, K. and Takeuchi, T. (1993) Processing of Mutated Proinsulin with Tetrabasic Cleavage Sites to Mature Insulin Reflects the Expression of Furin in Nonendocrine Cell-Lines. Endocrinology, 133, 639-644.
Lee, H.C., Kim, S.J., Kim, K.S., Shin, H.C. and Yoon, J.W. (2000) Remission in Models of Type 1 Diabetes by Gene Therapy Using a Single-Chain Insulin Analogue. Nature, 408, 483-488. http://dx.doi.org/10.1038/35044106
Brems, D.N., Alter, L.A., Beckage, M.J., Chance, R.E. and Dimarchi, R.D. (1992) Altering the Association Properties of Insulin by Amino-Acid Replacement. Protein Engineering, 5, 527-533. http://dx.doi.org/10.1093/protein/5.6.527
Rivera, V.M., Wang, X., Wardwell, S., Courage, N.L. and Volchuk, A. (2000) Regulation of Protein Secretion through Controlled Aggregation in the Endoplasmic Reticulum. Science, 287, 826-830. http://dx.doi.org/10.1126/science.287.5454.826
Towle, H.C., Kaytor, E.N. and Shih, H.M. (1997) Regulation of the Expression of Lipogenic Enzyme Genes by Carbohydrate. Annual Review of Nutrition, 17, 405-433. http://dx.doi.org/10.1146/annurev.nutr.17.1.405
Girard, J., Ferre, P. and Foufelle, F. (1997) Mechanisms by Which Carbohydrates Regulate Expression of Genes for Glycolytic and Lipogenic Enzymes. Annual Review of Nutrition, 17, 325-352. http://dx.doi.org/10.1146/annurev.nutr.17.1.325
Towle, H.C. (2005) Glucose as a Regulator of Eukaryotic Gene Transcription. Trends in Endocrinology and Metabolism, 16, 489-494. http://dx.doi.org/10.1016/j.tem.2005.10.003
Cheung, A.T., Dayanandan, B., Lewis, J.T., Korbutt, G.S. and Rajotte, R.V. (2000) Glucose-Dependent Insulin Release from Genetically Engineered K Cells. Science, 290, 1959-1962. http://dx.doi.org/10.1126/science.290.5498.1959
Thule, P.M., Liu, J. and Phillips, L.S. (2000) Glucose Regulated Production of Human Insulin in Rat Hepatocytes. Gene Therapy, 7, 205-214. http://dx.doi.org/10.1038/sj.gt.3301076
Thule, P.M. and Liu, J.M. (2000) Regulated Hepatic Insulin Gene Therapy of Stz-Diabetic Rats. Gene Therapy, 7, 1744-1752. http://dx.doi.org/10.1038/sj.gt.3301297
Alam, T. and Sollinger, H.W. (2002) Glucose-Regulated Insulin Production in Hepatocytes. Transplantation, 74, 1781-1787. http://dx.doi.org/10.1097/00007890-200212270-00024
Alam, T., Wai, P., Held, D., Vakili, S.T. and Forsberg, E. (2013) Correction of Diabetic Hyperglycemia and Amelioration of Metabolic Anomalies by Minicircle DNA Mediated Glucose-Dependent Hepatic Insulin Production. PLoS ONE, 8, e67515. http://dx.doi.org/10.1371/journal.pone.0067515
Olson, D.E., Paveglio, S.A., Huey, P.U., Porter, M.H. and Thule, P.M. (2003) Glucose-Responsive Hepatic Insulin Gene Therapy of Spontaneously Diabetic Bb/Wor Rats. Human Gene Therapy, 14, 1401-1413. http://dx.doi.org/10.1089/104303403769211628
Auricchio, A., Gao, G.P., Yu, Q.C., Raper, S. and Rivera, V.M. (2002) Constitutive and Regulated Expression of Processed Insulin Following in Vivo Hepatic Gene Transfer. Gene Therapy, 9, 963-971. http://dx.doi.org/10.1038/sj.gt.3301746
Kuwahata, M., Kuramoto, Y., Sawai, Y., Amano, S. and Tomoe, Y. (2008) Polypyrimidine Tract-Binding Protein Is Involved in Regulation of Albumin Synthesis in Response to Food Intake. Journal of Nutritional Science and Vitaminology, 54, 142-147. http://dx.doi.org/10.3177/jnsv.54.142
Morgan, R.A. and Anderson, W.F. (1993) Human Gene-Therapy. Annual Review of Biochemistry, 62, 191-217. http://dx.doi.org/10.1146/annurev.bi.62.070193.001203
Volpers, C. and Kochanek, S. (2004) Adenoviral Vectors for Gene Transfer and Therapy. Journal of Gene Medicine, 6, S164-S171. http://dx.doi.org/10.1002/jgm.496
Short, D.K., Okada, S., Yamauchi, K. and Pessin, J.E. (1998) Adenovirus-Mediated Transfer of a Modified Human Proinsulin Gene Reverses Hyperglycemia in Diabetic Mice. American Journal of Physiology-Endocrinology and Metabolism, 275, E748-E756.
Marshall, E. (1999) Clinical Trials—Gene Therapy Death Prompts Review of Adenovirus Vector. Science, 286, 2244-2245. http://dx.doi.org/10.1126/science.286.5448.2244
Mary Ann Liebert, Inc. (2002) Assessment of Adenoviral Vector Safety and Toxicity: Report of the National Institutes of Health Recombinant DNA Advisory Committee. Human Gene Therapy, 13, 3-13. http://dx.doi.org/10.1089/10430340152712629
Muzyczka, N. (1992) Use of Adenoassociated Virus as a General Transduction Vector for Mammalian-Cells. Current Topics in Microbiology and Immunology, 158, 97-129.
Park, Y.M., Woo, S.A., Lee, G.T., Ko, J.Y. and Lee, Y. (2005) Safety and Efficacy of Adeno-Associated Viral Vector-Mediated Insulin Gene Transfer via Portal Vein to the Livers of Streptozotocin-Induced Diabetic Sprague-Dawley Rats. Journal of Gene Medicine, 7, 621-629. http://dx.doi.org/10.1002/jgm.708
Cavazzana-Calvo, M., Hacein-Bey, S., Basile, C.D., Gross, F. and Yvon, E. (2000) Gene Therapy of Human Severe Combined Immunodeficiency (Scid)-X1 Disease. Science, 288, 669-672. http://dx.doi.org/10.1126/science.288.5466.669
Muzzin, P., Eisensmith, R.C., Copeland, K.C. and Woo, S.L.C. (1997) Hepatic Insulin Gene Expression as Treatment for Type 1 Diabetes Mellitus in Rats. Molecular Endocrinology, 11, 833-837. http://dx.doi.org/10.1210/mend.11.6.0017
Ronen, K., Negre, O., Roth, S., Colomb, C. and Malani, N. (2011) Distribution of Lentiviral Vector Integration Sites in Mice Following Therapeutic Gene Transfer to Treat Beta-Thalassemia. Molecular Therapy, 19, 1273-1286. http://dx.doi.org/10.1038/mt.2011.20
Papayannakos, C. and Daniel, R. (2013) Understanding Lentiviral Vector Chromatin Targeting: Working to Reduce Insertional Mutagenic Potential for Gene Therapy. Gene Therapy, 20, 581-588. http://dx.doi.org/10.1038/gt.2012.88
Schweizer, M. and Merten, O.W. (2010) Large-Scale Production Means for the Manufacturing of Lentiviral Vectors. Current Gene Therapy, 10, 474-486. http://dx.doi.org/10.2174/156652310793797748
Ren, B., O’Brien, B.A., Swan, M.A., Koina, M.E. and Nassif, N. (2007) Long-Term Correction of Diabetes in Rats after Lentiviral Hepatic Insulin Gene Therapy. Diabetologia, 50, 1910-1920. http://dx.doi.org/10.1007/s00125-007-0722-0
Ren, B.H., O’Brien, B.A., Byrne, M.R., Ch’ng, E. and Gatt, P.N. (2013) Long-Term Reversal of Diabetes in Non-Obese Diabetic Mice by Liver-Directed Gene Therapy. Journal of Gene Medicine, 15, 28-41. http://dx.doi.org/10.1002/jgm.2692
Tisch, R., Wang, B., Weaver, D.J., Liu, S. and Bui, T. (2001) Antigen-Specific Mediated Suppression of Beta Cell Autoimmunity by Plasmid DNA Vaccination. Journal of Immunology, 166, 2122-2132. http://dx.doi.org/10.4049/jimmunol.166.3.2122
Piccirillo, C.A., Chang, Y.G. and Prud’homme, G.J. (1998) Tgf-Beta 1 Somatic Gene Therapy Prevents Autoimmune Disease in Nonobese Diabetic Mice. Journal of Immunology, 161, 3950-3956.
Von Herrath, M.G., Efrat, S., Oldstone, M.B.A. and Horwitz, M.S. (1997) Expression of Adenoviral E3 Transgenes in Beta Cells Prevents Autoimmune Diabetes. Proceedings of the National Academy of Sciences of the United States of America, 94, 9808-9813. http://dx.doi.org/10.1073/pnas.94.18.9808
Tian, C.R., Bagley, J., Cretin, N., Seth, N. and Wucherpfennig, K.W. (2004) Prevention of Type 1 Diabetes by Gene Therapy. Journal of Clinical Investigation, 114, 969-978. http://dx.doi.org/10.1172/JCI22103
Dominguez-Bendala, J., Inverardi, L. and Ricordi, C. (2012) Regeneration of Pancreatic Beta-Cell Mass for the Treatment of Diabetes. Expert Opinion on Biological Therapy, 12, 731-741. http://dx.doi.org/10.1517/14712598.2012.679654
Pagliuca, F.W. and Melton, D.A. (2013) How to Make a Functional Beta-Cell. Development, 140, 2472-2483. http://dx.doi.org/10.1242/dev.093187
Phillips, B.W., Hentze, H., Rust, W.L., Chen, Q.P. and Chipperfield, H. (2007) Directed Differentiation of Human Embryonic Stem Cells into the Pancreatic Endocrine Lineage. Stem Cells and Development, 16, 561-578. http://dx.doi.org/10.1089/scd.2007.0029
Xu, X.F., Browning, V.L. and Odorico, J.S. (2011) Activin, Bmp and Fgf Pathways Cooperate to Promote Endoderm and Pancreatic Lineage Cell Differentiation from Human Embryonic Stem Cells. Mechanisms of Development, 128, 412-427. http://dx.doi.org/10.1016/j.mod.2011.08.001
Pagliuca, F.W., Millman, J.R., Gurtler, M., Segel, M. and Van Dervort, A. (2014) Generation of Functional Human Pancreatic Beta Cells in Vitro. Cell, 159, 428-439. http://dx.doi.org/10.1016/j.cell.2014.09.040
Ferber, S., Halkin, A., Cohen, H., Ber, I. and Einav, Y. (2000) Pancreatic and Duodenal Homeobox Gene 1 Induces Expression of Insulin Genes in Liver and Ameliorates Streptozotocin-Induced Hyperglycemia. Nature Medicine, 6, 568-572. http://dx.doi.org/10.1038/75050
Taniguchi, H., Yamato, E., Tashiro, F., Ikegami, H. and Ogihara, T. (2003) Beta-Cell Neogenesis Induced by Adenovirus-Mediated Gene Delivery of Transcription Factor Pdx-1 into Mouse Pancreas. Gene Therapy, 10, 15-23. http://dx.doi.org/10.1038/sj.gt.3301846
Yoshida, S., Kajimoto, Y., Yasuda, T., Watada, H. and Fujitani, Y. (2002) Pdx-1 Induces Differentiation of Intestinal Epithelioid Iec-6 into Insulin-Producing Cells. Diabetes, 51, 2505-2513. http://dx.doi.org/10.2337/diabetes.51.8.2505
Noguchi, H., Xu, G., Matsumoto, S., Kaneto, H. and Kobayashi, N. (2006) Induction of Pancreatic Stem/Progenitor Cells into Insulin-Producing Cells by Adenoviral-Mediated Gene Transfer Technology. Cell Transplant, 15, 929-938. http://dx.doi.org/10.3727/000000006783981431
Karnieli, O., Izhar-Prato, Y., Bulvik, S. and Efrat, S. (2007) Generation of Insulin-Producing Cells from Human Bone Marrow Mesenchymal Stem Cells by Genetic Manipulation. Stem Cells, 25, 2837-2844. http://dx.doi.org/10.1634/stemcells.2007-0164
Li, Y.H., Zhang, R., Qiao, H.F., Zhang, H.P. and Wang, Y.F. (2007) Generation of Insulin-Producing Cells from Pdx-1 Gene-Modified Human Mesenchymal Stem Cells. Journal of Cellular Physiology, 211, 36-44. http://dx.doi.org/10.1002/jcp.20897
Lin, G.T., Wang, G.F., Liu, G., Yang, L.J. and Chang, L.J. (2009) Treatment of Type 1 Diabetes with Adipose Tissue-Derived Stem Cells Expressing Pancreatic Duodenal Homeobox 1. Stem Cells and Development, 18, 1399-1406. http://dx.doi.org/10.1089/scd.2009.0010
Kajiyama, H., Hamazaki, T.S., Tokuhara, M., Masui, S. and Okabayashi, K. (2010) Pdx1-Transfected Adipose Tissue-Derived Stem Cells Differentiate into Insulin-Producing Cells in Vivo and Reduce Hyperglycemia in Diabetic Mice. The International Journal of Developmental Biology, 54, 699-705. http://dx.doi.org/10.1387/ijdb.092953hk
Lavon, N., Yanuka, O. and Benvenisty, N. (2006) The Effect of Overexpression of Pdx1 and Foxa2 on the Differentiation of Human Embryonic Stem Cells into Pancreatic Cells. Stem Cells, 24, 1923-1930. http://dx.doi.org/10.1634/stemcells.2005-0397
Vincent, R., Treff, N., Budde, M., Kastenberg, Z. and Odorico, J. (2006) Generation and Characterization of Novel Tetracycline-Inducible Pancreatic Transcription Factor-Expressing Murine Embryonic Stem Cell Lines. Stem Cells and Development, 15, 953-962. http://dx.doi.org/10.1089/scd.2006.15.953
Raikwar, S.P. and Zavazava, N. (2012) Pdx1-Engineered Embryonic Stem Cell-Derived Insulin Producing Cells Regulate Hyperglycemia in Diabetic Mice. Transplantation Research, 1, 19. http://dx.doi.org/10.1186/2047-1440-1-19
Simpson, A.M., Tao, C., Swan, M.A., Ren, B. and O’Brien, B.A. (2007) Glucose Regulated Production of Human Insulin in H4iie Rat Liver Cells. Diabetes, 56, A120-A120.
Noguchi, H., Xu, G., Matsumoto, S., Kaneto, H. and Kobayashi, N. (2006) Induction of Pancreatic Stem/Progenitor Cells into Insulin-Producing Cells by Adenoviral-Mediated Gene Transfer Technology. Cell Transplant, 15, 929-938. http://dx.doi.org/10.3727/000000006783981431
Yatoh, S., Akashi, T., Chan, P.P., Kaneto, H. and Sharma, A. (2007) Neurod and Reaggregation Induce Beta-Cell Specific Gene Expression in Cultured Hepatocytes. Diabetes/Metabolism Research and Reviews, 23, 239-249. http://dx.doi.org/10.1002/dmrr.678
Wang, A.Y., Ehrhardt, A., Xu, H. and Kay, M.A. (2007) Adenovirus Transduction Is Required for the Correction of Diabetes Using Pdx-1 or Neurogenin-3 in the Liver. Molecular Therapy, 15, 255-263. http://dx.doi.org/10.1038/sj.mt.6300032
Kaneto, H., Nakatani, Y., Miyatsuka, T., Matsuoka, T. and Matsuhisa, M. (2005) Pdx-1/Vp16 Fusion Protein, Together with Neurod or Ngn3, Markedly Induces Insulin Gene Transcription and Ameliorates Glucose Tolerance. Diabetes, 54, 1009-1022. http://dx.doi.org/10.2337/diabetes.54.4.1009
Song, Y.D., Lee, E.J., Yashar, P., Pfaff, L.E. and Kim, S.Y. (2007) Islet Cell Differentiation in Liver by Combinatorial Expression of Transcription Factors Neurogenin-3, Beta2, and Ripe3b1. Biochemical and Biophysical Research Communications, 354, 334-339. http://dx.doi.org/10.1016/j.bbrc.2006.12.216
Heremans, Y., Van De Casteele, M., Veld, P.I., Gradwohl, G. and Serup, P. (2002) Recapitulation of Embryonic Neuroendocrine Differentiation in Adult Human Pancreatic Duct Cells Expressing Neurogenin 3. Journal of Cell Biology, 159, 303-311. http://dx.doi.org/10.1083/jcb.200203074
Yechoor, V., Liu, V., Espiritu, C., Paul, A. and Oka, K. (2009) Neurogenin3 Is Sufficient for Transdetermination of Hepatic Progenitor Cells into Neo-Islets, in Vivo but Not Transdifferentiation of Hepatocytes. Developmental Cell, 16, 358-373. http://dx.doi.org/10.1016/j.devcel.2009.01.012
Zhou, Q., Brown, J., Kanarek, A., Rajagopal, J. and Melton, D.A. (2008) In Vivo Reprogramming of Adult Pancreatic Exocrine Cells to Beta-Cells. Nature, 455, U627-U630. http://dx.doi.org/10.1038/nature07314
Blyszczuk, P., Czyz, J., Kania, G., Wagner, M. and Roll, U. (2003) Expression of Pax4 in Embryonic Stem Cells Promotes Differentiation of Nestin-Positive Progenitor and Insulin-Producing Cells. Proceedings of the National Academy of Sciences of the United States of America, 100, 998-1003. http://dx.doi.org/10.1073/pnas.0237371100
Gefen-Halevi, S., Rachmut, I.H., Molakandov, K., Berneman, D. and Mor, E. (2010) Nkx6.1 Promotes Pdx-1-Induced Liver to Pancreatic Beta-Cells Reprogramming. Cellular Reprogramming, 12, 655-664. http://dx.doi.org/10.1089/cell.2010.0030
Roep, B.O. and Peakman, M. (2012) Antigen Targets of Type 1 Diabetes Autoimmunity. Cold Spring Harbor Perspectives in Medicine, 2, a007781. http://dx.doi.org/10.1101/cshperspect.a007781
Nicolau, C., Le Pape, A., Soriano, P., Fargette, F. and Juhel, M.F. (1983) In Vivo Expression of Rat Insulin after Intravenous Administration of the Liposome-Entrapped Gene for Rat Insulin I. Proceedings of the National Academy of Sciences of the United States of America, 80, 1068-1072. http://dx.doi.org/10.1073/pnas.80.4.1068
Moore, H.P.H., Walker, M.D., Lee, F. and Kelly, R.B. (1983) Expressing a Human Proinsulin Cdna in a Mouse Acth-Secreting Cell—Intracellular Storage, Proteolytic Processing, and Secretion on Stimulation. Cell, 35, 531-538. http://dx.doi.org/10.1016/0092-8674(83)90187-3
Stewart, C., Taylor, N.A., Green, I.C., Docherty, K. and Bailey, C.J. (1994) Insulin-Releasing Pituitary Cells as a Model for Somatic Cell Gene Therapy in Diabetes Mellitus. The Journal of Endocrinology, 142, 339-343. http://dx.doi.org/10.1677/joe.0.1420339
Stewart, C., Taylor, N.A., Docherty, K. and Bailey, C.J. (1993) Insulin Delivery by Somatic Cell Gene Therapy. Journal of Molecular Endocrinology, 11, 335-341. http://dx.doi.org/10.1677/jme.0.0110335
Hughes, S.D., Quaade, C., Johnson, J.H., Ferber, S. and Newgard, C.B. (1993) Transfection of Att-20ins Cells with Glut-2 but Not Glut-1 Confers Glucose-Stimulated Insulin Secretion. Relationship to Glucose Metabolism. The Journal of Biological Chemistry, 268, 15205-15212.
Simpson, A.M., Tuch, B.E., Swan, M.A., Tu, J. and Marshall, G.M. (1995) Functional Expression of the Human Insulin Gene in a Human Hepatoma Cell Line (Hep G2). Gene Therapy, 2, 223-231.
Simpson, A.M., Marshall, G.M., Tuch, B.E., Maxwell, L. and Szymanska, B. (1997) Gene Therapy of Diabetes: Glucose-Stimulated Insulin Secretion in a Human Hepatoma Cell Line (Hep G2ins/G). Gene Therapy, 4, 1202-1215. http://dx.doi.org/10.1038/sj.gt.3300527
Tuch, B.E., Szymanska, B., Yao, M., Tabiin, M.T. and Gross, D.J. (2003) Function of a Genetically Modified Human Liver Cell Line That Stores, Processes and Secretes Insulin. Gene Therapy, 10, 490-503. http://dx.doi.org/10.1038/sj.gt.3301911
Ganesan, L.P., Mohanty, S., Kim, J., Clark, K.R. and Robinson, J.M. (2011) Rapid and Efficient Clearance of Blood-Borne Virus by Liver Sinusoidal Endothelium. PLoS Pathogens, 7. http://dx.doi.org/10.1371/journal.ppat.1002281
Chen, R.H., Meseck, M.L. and Woo, S.L.C. (2001) Auto-Regulated Hepatic Insulin Gene Expression in Type 1 Diabetic Rats. Molecular Therapy, 3, 584-590. http://dx.doi.org/10.1006/mthe.2001.0299
Chen, R., Meseck, M., McEvoy, R.C. and Woo, S.L. (2000) Glucose-Stimulated and Self-Limiting Insulin Production by Glucose 6-Phosphatase Promoter Driven Insulin Expression in Hepatoma Cells. Gene Therapy, 7, 1802-1809. http://dx.doi.org/10.1038/sj.gt.3301306
Burkhardt, B.R., Parker, M.J., Zhang, Y.C., Song, S.H. and Wasserfall, C.H. (2005) Glucose Transporter-2 (Glut2) Promoter Mediated Transgenic Insulin Production Reduces Hyperglycemia in Diabetic Mice. FEBS Letters, 579, 5759-5764. http://dx.doi.org/10.1016/j.febslet.2005.09.060
Hsu, P.Y.J., Kotin, R.M. and Yang, Y.W. (2008) Glucose- and Metabolically Regulated Hepatic Insulin Gene Therapy for Diabetes. Pharmaceutical Research, 25, 1460-1468. http://dx.doi.org/10.1007/s11095-008-9539-x
Nakayama, M. (2011) Insulin as a Key Autoantigen in the Development of Type 1 Diabetes. Diabetes/Metabolism Research and Reviews, 27, 773-777. http://dx.doi.org/10.1002/dmrr.1250
Ramshur, E.B., Rull, T.R. and Wice, B.M. (2002) Novel Insulin/Gip Co-Producing Cell Lines Provide Unexpected Insights into Gut K-Cell Function in Vivo. Journal of Cellular Physiology, 192, 339-350. http://dx.doi.org/10.1002/jcp.10139
Park, F., Ohashi, K., Chiu, W., Naldini, L. and Kay, M.A. (2000) Efficient Lentiviral Transduction of Liver Requires Cell Cycling in Vivo. Nature Genetics, 24, 49-52. http://dx.doi.org/10.1038/71673
Duckworth, W.C., Bennett, R.G. and Hamel, F.G. (1998) Insulin Degradation: Progress and Potential. Endocrine Reviews, 19, 608-624. http://dx.doi.org/10.1210/er.19.5.608
Hausl, M.A., Zhang, W., Muther, N., Rauschhuber, C. and Franck, H.G. (2010) Hyperactive Sleeping Beauty Transposase Enables Persistent Phenotypic Correction in Mice and a Canine Model for Hemophilia B. Molecular Therapy: The Journal of the American Society of Gene Therapy, 18, 1896-1906. http://dx.doi.org/10.1038/mt.2010.169