Showing posts with label Pax4. Show all posts
Showing posts with label Pax4. Show all posts

Thursday, 6 August 2009

More Insulin-Producing Cells, at the Flip of a 'Switch'

More Insulin-Producing Cells, at the Flip of a 'Switch' Thursday, 06 August 2009 Researchers have found a way in mice to convert another type of pancreas cell into the critical insulin-producing beta cells that are lost in those with type I diabetes. The secret ingredient is a single transcription factor, according to the report in the August 7th issue of Cell, a Cell Press journal. When the gene called Pax4 is forced on in pancreatic alpha cells, the cells change their identity to become beta cells, the researchers found. The body in turn senses a loss of alpha cells, replaces them with new alpha cells and then converts those too into beta cells. The hope is that a treatment based on the findings in mice might find its way to human patients, although "a lot of ifs remain before we will know whether it could be taken to the clinic," said Patrick Collombat of Inserm in France. For instance, it's not yet known whether the findings in mice will translate to human tissue. Even if they do, scientists would need to find a way to turn Pax4 on and then back off again once a sufficient number of beta cells were in place. Still, the findings hold considerable promise. "The strategy we use is a good one," said Ahmed Mansouri of the Max-Planck Institute for Biophysical Chemistry in Germany. "It's a new idea that we might use one factor. Normally, we would have thought it would take more." The results also show that the pancreas is in general capable of such regeneration. "It shows there are progenitors [in the pancreas] that can be activated," Mansouri said. In type I diabetes, the body essentially makes a mistake and autodestructs beta cells, the researchers explained. As those cells are lost, insulin levels drop and blood sugar soars, a condition that can lead to complications including blindness and even death. While insulin-replacing injections can improve the situation enormously, people with the condition are left with fluctuations in blood sugar depending on their diet, exercise and other factors that can still lead to complications. "We need a better treatment. We need to find a way to regenerate beta cells," Collombat said. Earlier studies showed that Pax4 was important for making insulin-producing cells in the pancreas, Mansouri explained. Mice without the gene die at birth with pancreases that look normal except that they lack beta cells. The researchers also found previously that another factor, which works against Pax4 action, could turn beta cells into alpha cells. (Alpha cells produce a hormone called glucagon when blood sugar levels fall too low, causing the liver to release glucose from storage.) The discovery suggested to them that the opposite conversion might also be achieved. And indeed, they now show that it can. Mice with Pax4 switched on in the pancreatic cells end up with an eight-fold increase in the number of beta cells, Collombat said. Those beta cells seem to be fully functional, they report. In mice treated with a drug that selectively kills beta cells, the conversion of alpha into beta cells can counter the effects of their diabetes, at least when the mice are treated at a young age. Further studies are needed to show that the alpha to beta cell conversion can be kept under control, Mansouri said. "Too many beta cells isn't good either," he said. "We'll need a strategy to trigger Pax4 and, at a certain point, also stop it." Reference: The Ectopic Expression of Pax4 in the Mouse Pancreas Converts Progenitor Cells into alfa- and Subsequently beta-Cells Patrick Collombat , Xiaobo Xu, Philippe Ravassard, Beatriz Sosa-Pineda, Sébastien Dussaud , Nils Billestrup, Ole D. Madsen , Palle Serup, Harry Heimberg and Ahmed Mansouri Cell, Volume 138, Issue 3, 449-462, 7 August 2009, doi:10.1016/j.cell.2009.05.035 ......... ZenMaster


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Monday, 15 December 2008

Single Adult Muscle Stem Cell Can Self Renew

Single Adult Muscle Stem Cell Can Self Renew Monday, 15 December 2008 The first demonstration that a single adult stem cell can self-renew in a mammal was reported at the American Society for Cell Biology (ASCB) 48th Annual Meeting, Dec. 13-17, 2008 in San Francisco. The transplanted adult stem cell and its differentiated descendants restored lost function to mice with hind limb muscle tissue damage. The adult stem cells used in the study, conducted at Stanford University, were isolated from a mixed population of satellite cells in the skeletal muscle of mice. The skeletal adult muscle stem cells (MusSC), which live just under the membrane that surrounds muscle fibres, normally respond to tissue damage by giving rise to progenitor cells that become myoblasts, fusing into myofibers to repair the tissue damage. The scientists transplanted the MusSC into special immune-suppressed "nude" mice whose muscle satellite cells had been wiped out in a hind limb by irradiation. The mice would only be able to repair injury if the transplanted MuSC "took." The scientists, Alessandra Sacco and Helen Blau, had genetically engineered the transplanted MusSC to express Pax7 and luciferase proteins. As a result, every transplanted cell glowed under ultraviolet light and was easy to trace. "To be able to detect the presence of the cells by bioluminescence was really a breakthrough," says Blau. "It taught us so much more. We could see how the cells were responding, and really monitor their dynamics." Through luminescent imaging as well as quantitative and kinetic analyses, Sacco and Blau tracked each transplanted stem cell as it rapidly proliferated and engrafted its progeny into the irradiated muscle tissue. The scientists then injured the regenerated tissue, setting off massive waves of muscle cell growth and repair, and subsequently showed that the MuSC and descendents rescued the second animal's lost muscle healing function. After isolating the luciferase-glowing muscle stem cells from the transplanted animal, the scientists duplicated, or cloned, the cells in the lab. Like the original MuSC, the cloned copies were intact and capable of self-renewal. "We are thrilled with the results," says Sacco. "It's been known that these satellite cells are crucial for the regeneration of muscle tissue, but this is the first demonstration of self-renewal of a single cell." The ability to isolate and then transplant skeletal adult muscle stems cells could have a wide impact in treating not only a variety of muscle wasting diseases such as muscular dystrophy but also severe muscle injuries or loss of function from aging and disuse. In other experiments, the researchers transplanted between 10 and 500 luciferase-tagged MuSC into the leg muscles of mice. These cells also proliferated and engrafted, forming new myofibers and fusing with injured fibres. Unlike tumour cells, the transplanted stem cells achieved homeostasis, growing to a stable, constant level and ceasing replication. After demonstrating that the transplanted stem cells proliferated and fully restored the animal's lost function, Sacco and Blau recovered new stem cells from the transplant with full stem cell potency, meeting the final "gold standard" test for adult multipotent stem cells. ......... ZenMaster


For more on stem cells and cloning, go to CellNEWS at http://cellnews-blog.blogspot.com/ and http://www.geocities.com/giantfideli/index.html

Thursday, 3 April 2008

Stem Cell Breakthrough Offers Diabetes Hope

Stem Cell Breakthrough Offers Diabetes Hope Thursday, 03 April 2008 Scientists have discovered a new technique for turning embryonic stem cells into insulin-producing pancreatic tissue in what could prove a significant breakthrough in the quest to find new treatments for diabetes. The University of Manchester team, working with colleagues at the University of Sheffield, were able to genetically manipulate the stem cells so that they produced an important protein known as a ‘transcription factor’. Stem cells have the ability to become any type of cell, so scientists believe they may hold the key to treating a number of diseases including Alzheimer’s, Parkinson’s and diabetes. However, a major stumbling block to developing new treatments has been the difficulty scientists have faced ensuring the stem cells turn into the type of cell required for any particular condition – in the case of diabetes, pancreatic cells. “Unprompted, the majority of stem cells turn into simple nerve cells called neurons,” explained Dr Karen Cosgrove, who led the team in Manchester’s Faculty of Life Sciences. “Less than one per cent of embryonic stem cells would normally become insulin-producing pancreatic cells, so the challenge has been to find a way of producing much greater quantities of these cells.” The pancreas contains different types of specialised cells – exocrine cells, which produce enzymes to aid digestion, and endocrine cells, including beta cells, which produce the hormone insulin to regulate the blood glucose levels. Diabetes results when there is not enough insulin to meet the body’s demands. There are two forms of the disease: type-1 diabetes is due to not enough insulin being produced by the pancreas, while type-2 or adult-onset diabetes occurs when the body fails to respond properly to the insulin that is produced. The team found that the transcription factor PAX4 encouraged high numbers of embryonic stem cells – about 20% – to become pancreatic beta cells with the potential to produce insulin when transplanted into the body. Furthermore, the scientists for the first time were able to separate the new beta cells from other types of cell produced using a technique called ‘fluorescent-activated cell sorting’ which uses a special dye to colour the pancreatic cells green. “Research in the United States has shown that transplanting a mixture of differentiated cells and stem cells can cause cancer, so the ability to isolate the pancreatic cells in the lab is a major boost in our bid to develop a successful therapy,” said Dr Cosgrove. “Scientists have had some success increasing the number of pancreatic cells produced by altering the environment in which the stem cells develop, so the next stage of our research will be to combine both methods to see what proportions we can achieve.” Scientists believe that transplanting functional beta cells into patients, most likely into their liver where there is a strong blood supply, offers the best hope for finding a cure for type-1 diabetes. It could also offer hope to those with type-2 diabetes whose condition requires insulin injections. But the more immediate benefit of the team’s research is likely to be in providing researchers with a ready-made supply of human pancreatic cells on which to study the disease process of diabetes and test new drugs. The research, which was funded by the Juvenile Diabetes Research Foundation and the Medical Research Council, is published in the journal Public Library of Science (PLoS) One. Reference: Pax4 enhances beta-cell differentiation of human embryonic stem cells. Liew CG, Shah NN, Briston SJ, Shepherd RM, Khoo CP, Dunne MJ, Moore HD, Cosgrove KE and Andrews PW PLoS One 3(3): e1783, doi:10.1371/journal.pone.0001783 (2008). ......... ZenMaster


For more on stem cells and cloning, go to CellNEWS at http://www.geocities.com/giantfideli/index.html