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Showing posts with label Induced pluripotent stem cell. Show all posts
Showing posts with label Induced pluripotent stem cell. Show all posts

Monday, June 13, 2011

New Genetic Technique Converts Skin Cells Into Brain Cells



A research breakthrough has proven that it is possible to reprogram mature cells from human skin directly into brain cells, without passing through the stem cell stage. The unexpectedly simple technique involves activating three genes in the skin cells; genes which are already known to be active in the formation of brain cells at the fetal stage.
Photomicrograph of fibroblast cells in tissue culture. 
(Credit: iStockphoto/Torsten Wittmann)

The new technique avoids many of the ethical dilemmas that stem cell research has faced.

For the first time, a research group at Lund University in Sweden has succeeded in creating specific types of nerve cells from human skin. By reprogramming connective tissue cells, called fibroblasts, directly into nerve cells, a new field has been opened up with the potential to take research on cell transplants to the next level. The discovery represents a fundamental change in the view of the function and capacity of mature cells. By taking mature cells as their starting point instead of stem cells, the Lund researchers also avoid the ethical issues linked to research on embryonic stem cells.

Head of the research group Malin Parmar was surprised at how receptive the fibroblasts were to new instructions.

"We didn't really believe this would work, to begin with it was mostly just an interesting experiment to try. However, we soon saw that the cells were surprisingly receptive to instructions." The study, which was published in the latest issue of the Proceedings of the National Academy of Sciences, also shows that the skin cells can be directed to become certain types of nerve cells.

In experiments where a further two genes were activated, the researchers have been able to produce dopamine brain cells, the type of cell which dies in Parkinson's disease. The research findings are therefore an important step towards the goal of producing nerve cells for transplant which originate from the patients themselves. The cells could also be used as disease models in research on various neurodegenerative diseases.



Unlike older reprogramming methods, where skin cells are turned into pluripotent stem cells, known as IPS cells, direct reprogramming means that the skin cells do not pass through the stem cell stage when they are converted into nerve cells. Skipping the stem cell stage probably eliminates the risk of tumours forming when the cells are transplanted. Stem cell research has long been hampered by the propensity of certain stem cells to continue to divide and form tumours after being transplanted.

Before the direct conversion technique can be used in clinical practice, more research is needed on how the new nerve cells survive and function in the brain. The vision for the future is that doctors will be able to produce the brain cells that a patient needs from a simple skin or hair sample. In addition, it is presumed that specifically designed cells originating from the patient would be accepted better by the body's immune system than transplanted cells from donor tissue.

"This is the big idea in the long run. We hope to be able to do a biopsy on a patient, make dopamine cells, for example, and then transplant them as a treatment for Parkinson's disease," says Malin Parmar, who is now continuing the research to develop more types of brain cells using the new technique.

Friday, June 10, 2011

New genetic technique converts skin cells into brain cells



A research breakthrough has proven that it is possible to reprogram mature cells from human skin directly into brain cells, without passing through the stem cell stage. The unexpectedly simple technique involves activating three genes in the skin cells; genes which are already known to be active in the formation of brain cells at the foetal stage.
converts skin cells into brain cells

The new technique avoids many of the ethical dilemmas that stem cell research has faced.

For the first time, a research group at Lund University in Sweden has succeeded in creating specific types of nerve cells from human skin. By reprogramming connective tissue cells, called fibroblasts, directly into nerve cells, a new field has been opened up with the potential to take research on cell transplants to the next level. The discovery represents a fundamental change in the view of the function and capacity of mature cells. By taking mature cells as their starting point instead of stem cells, the Lund researchers also avoid the ethical issues linked to research on embryonic stem cells.

Head of the research group Malin Parmar was surprised at how receptive the fibroblasts were to new instructions.

"We didn't really believe this would work, to begin with it was mostly just an interesting experiment to try. However, we soon saw that the cells were surprisingly receptive to instructions."

The study, which was published in the latest issue of the scientific journal PNAS, also shows that the skin cells can be directed to become certain types of nerve cells.

In experiments where a further two genes were activated, the researchers have been able to produce dopamine brain cells, the type of cell which dies in Parkinson's disease. The research findings are therefore an important step towards the goal of producing nerve cells for transplant which originate from the patients themselves. The cells could also be used as disease models in research on various neurodegenerative diseases.

Unlike older reprogramming methods, where skin cells are turned into pluripotent stem cells, known as IPS cells, direct reprogramming means that the skin cells do not pass through the stem cell stage when they are converted into nerve cells. Skipping the stem cell stage probably eliminates the risk of tumours forming when the cells are transplanted. Stem cell research has long been hampered by the propensity of certain stem cells to continue to divide and form tumours after being transplanted.

Before the direct conversion technique can be used in clinical practice, more research is needed on how the new nerve cells survive and function in the brain. The vision for the future is that doctors will be able to produce the brain cells that a patient needs from a simple skin or hair sample. In addition, it is presumed that specifically designed cells originating from the patient would be accepted better by the body's immune system than transplanted cells from donor tissue.

"This is the big idea in the long run. We hope to be able to do a biopsy on a patient, make dopamine cells, for example, and then transplant them as a treatment for Parkinson's disease", says Malin Parmar, who is now continuing the research to develop more types of brain cells using the new technique.

More information: 'Direct conversion of human fibroblasts to dopaminergic neurons', publ. PNAS 2011; 6 June 2011: http://www.pnas.or … 108.abstract

Provided by Lund University
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Tuesday, May 17, 2011

Sections of Retinas Regenerated and Visual Function Increased With Stem Cells from Skin



Scientists from Schepens Eye Research Institute are the first to regenerate large areas of damaged retinas and improve visual function using IPS cells (induced pluripotent stem cells) derived from skin. The results of their study, which is published in PLoS ONE this month, hold great promise for future treatments and cures for diseases such as age-related macular degeneration, retinitis pigmentosa, diabetic retinopathy and other retinal diseases that affect millions worldwide.
Histological staining of a teratoma containing Rho-/- eye
at 21 days post-injection of a heterogeneous population of
SSEA1-containing D33 differentiated cells. (Credit: Tucker
et al.,DOI: 10.1371/journal.pone.0018992)

"We are very excited about these results," says Dr. Budd A. Tucker, the study's first author. "While other researchers have been successful in converting skin cells into induced pluripotent stem cells (iPSCs) and subsequently into retinal neurons, we believe that this is the first time that this degree of retinal reconstruction and restoration of visual function has been detected," he adds. Tucker, who is currently an Assistant Professor of Ophthalmology at the University of Iowa, Carver College of Medicine, completed the study at Schepens Eye Research Institute in collaboration with Dr. Michael J. Young, the principle investigator of the study, who heads the Institute's regenerative medicine center.

Today, diseases such as retinitis pigmentosa (RP) and age-related macular degeneration (AMD) are the leading causes of incurable blindness in the western world. In these diseases, retinal cells, also known as photoreceptors, begin to die and with them the eye's ability to capture light and transmit this information to the brain. Once destroyed, retinal cells, like other cells of the central nervous system have limited capacity for endogenous regeneration.

"Stem cell regeneration of this precious tissue is our best hope for treating and someday curing these disorders," says Young, who has been at the forefront of vision stem cell research for more than a decade.

While Tucker, Young and other scientists were beginning to tap the potential of embryonic and adult stem cells early in the decade, the discovery that skin cells could be transformed into "pluripotent" cells, nearly identical to embryonic cells, stirred excitement in the vision research community. Since 2006 when researchers in Japan first used a set of four "transcription factors" to signal skin cells to become iPSCs, vision scientists have been exploring ways to use this new technology. Like embryonic stem cells, iPSCs have ¬the ability to become any other cell in the body, but are not fraught with the ethical, emotional and political issues associated with the use of tissue from human embryos.

Tucker and Young harvested skin cells from the tails of red fluorescent mice. They used red mice, because the red tissue would be easy to track when transplanted in the eyes of non-fluorescent diseased mice.

By forcing these cells to express the four Yamanaka transcription factors (named for their discoverer) the group generated red fluorescent IPSCs, and, with additional chemical coaxing, precursors of retinal cells. Precursor cells are immature photoreceptors that only mature in their natural habitat -- the eye.

Within 33 days the cells were ready to be transplanted and were introduced into the eyes of a mouse model of retina degenerative disease. Due to a genetic mutation, the retinas of these recipient mice quickly degenerate, the photoreceptor cells die and at the time of transplant electrical activity, as detected by ERG (electroretinography), is absent.

Within four to six weeks, the researchers observed that the transplanted "red" cells had taken up residence in the appropriate retinal area (photoreceptor layer) of the eye and had begun to integrate and assemble into healthily looking retinal tissue.

The team then retested the mice with ERG and found a significant increase in electrical activity in the newly reconstructed retinal tissue. In fact, the amount of electrical activity was approximately half of what would be expected in a normal retina. They also conducted a dark adaption test to see if connections were being made between the new photoreceptor cells and the rest of the retina. In brief, the group found that by stimulating the newly integrated photoreceptor cells with light they could detect a signal in the downstream neurons, which was absent in the other untreated eye.

Based on the results of their study, Tucker and Young believe that harvesting skin cells for use in retinal regeneration is and will continue to be a promising resource for the future.

The two scientists say their next step will be to take this technology into large animal models of retinal degenerative disease and eventually toward human clinical trials.

Other scientists involved in the PLoS ONE study include In-Hyun Park, Sara D. Qi, Henry J. Klassen, Caihui Jiang, Jing Yao, Stephen Redenti, and George Q. Daley.

Friday, November 26, 2010

Stem Cells from Amniotic Fluid: Reprogrammed Amniotic Fluid Cells Can Generate All Types of Body Cells


Reprogrammed amniotic fluid cells can generate all types of body cells. High hopes rest on stem cells: one day, they may be used to treat many diseases. To date, embryos are the main source of these cells, but this raises ethical problems. Scientists at the Max Planck Institute for Molecular Genetics in Berlin have now managed to convert amniotic fluid cells into pluripotent stem cells. These amniotic fluid-derived iPS cells are hardly distinguishable from embryonic stem cells. However, they "remember" where they came from.
Top: Before their reprogramming into amniotic fluid iPS cells, 
human amniotic fluid cells are outwardly distinguishable from 
embryonic stem cells. Bottom left: Amniotic fluid iPS cells 
produce OCT4 (green), one of the most important marker 
proteins for embryonic stem cells. Bottom right: Starting from 
this embryonic stem cell phase, the amniotic fluid iPS cells can 
form hepatocyte-like cells and others. They produce the plasma
protein alpha-fetoprotein (red), which is abundant in fetal 
liver. (Credit: Max Planck Institute for Molecular Genetics)

The research appears in the online journal PLoS ONE, published by the Public Library of Science.

The special abilities of embryonic stem cells can today be used in multiple "grown-up" cells (e.g. skin and hair cells). This is done by reprogramming the cells and converting them to "induced pluripotent stem cells" (iPS cells). These then possess the typical properties of embryonic stem cells, meaning they can generate any of the cell types of the human body (pluripotency), and they can multiply endlessly.

Stem cells with memory
 
The scientists have shown that the amniotic fluid iPS cells can form different human cell types. They have also discovered that induced pluripotent stem cells can remember the original cell type from which they were generated. During cellular reprogramming, various genes that control the development of stem cells are apparently switched on or remain active. This confirms other current research results, which show that iPS cells derived from distinct tissues are prone to follow their pre-destined developmental path upon spontaneous differentiation. "We don't know just yet whether this donor-cell type memory will have an impact on possible medical treatment, or which type of somatic cell-derived iPS cell will be most suitable for treatment," cautions Katharina Wolfrum of the Max Planck Institute for Molecular Genetics.

Amniotic fluid cells have a number of advantages over other cell types. For one thing, amniotic fluid cells are routinely harvested in antenatal examinations to enable the early detection of disease. In most cases, more cells are obtained than are actually needed. In addition, the amniotic fluid mixture contains different types of cells from the unborn child, including stem-cell-like cells. As they are not very old, they have fewer environmentally-induced mutations, making them genetically more stable. "This may mean that it is possible to reprogram these amniotic fluid cells faster and more easily than other cell types, making amniotic fluid-derived iPS cells an interesting complement to embryonic stem cells," explains James Adjaye of the Max Planck Institute in Berlin.

Moreover, amniotic fluid cells could be extracted for cellular reprogramming before the birth of a child and be prepared for their intended use while the pregnancy is still ongoing. "This would make it possible to test which drugs work for a baby and whether they are tolerated, before that baby is born. Moreover, in the future, sick newborns can be treated with cells from their own body," says Adjaye.

Admin's Note: This article is not intended to provide medical advice, diagnosis or treatment.

Tuesday, October 5, 2010

A New Way to Make Stem Cells Using RNA instead of DNA could avoid the health risks--and the political pitfalls--of stem-cell treatments.


A Harvard researcher has developed a way to make pluripotent stem cells that solves several of the major impediments to using them to treat human diseases.
New cell: This microscope image shows neurons
(colored green) created from pluripotent stem
cells using modified RNA.
Credit: Phil Manos, Cell Press

Derrick Rossi, an assistant professor at Harvard Medical School, created pluripotent stem cells--which can turn into virtually any other type of cell in the body--from non-stem cells without using viruses to tinker with a cell's genome, as conventional methods do. This means that Rossi's method could be substantially safer for treating disease. The work is published today in the journal Cell Stem Cell.

"Rossi has figured out how to turn a skin cell into a stem cell without genetic modifications, and to do it efficiently," said Doug Melton, codirector of the Harvard Stem Cell Institute, where Rossi is a principal faculty member, at a press conference.

Rossi's innovation, which has not yet been tested in people, was to use messenger RNA instead of DNA to produce the four proteins needed to reprogram the cell. He has started a company called ModeRNA to commercialize this use of messenger RNA. He said the approach may also have potential in gene therapy, which also relies on viruses to deliver treatment, but he declined to talk further about the company or possible gene therapy applications because the work is at such an early stage.

Improving the usability of man-made stem cells is key to helping patients and ending the political morass that has slowed stem-cell research. On Tuesday, a U.S. federal appeals court allowed federal funding of embryonic stem-cell research to continue while a legal case against such funding proceeds.

The human embryonic stem cells used in research were mostly derived from embryonic tissue grown a decade ago. These are the most versatile cells in the body, and the gold standard by which man-made cells are judged.

Four years ago, Japanese researcher Shinya Yamanaka showed that regular cells could be turned into embryonic-like stem cells--called induced pluripotent stem (iPS) cells--through the introduction of four specific proteins. Theoretically, this meant that doctors could take skin cells from a sick or disabled person, transform them into stem cells, and then into a specialized cell to treat them--an insulin-producing islet cell for someone with diabetes or a nerve cell for someone who is paralyzed, for instance. Using iPS cells avoids the need to destroy embryos and, because they can be derived from the patient's own cells, means less risk of rejection.

But only one in 1,000 or one in 10,000 skin cells could be transformed into a stem cell using Yamanaka's method. It also changes a cell's genes in ways that might trigger cancer or other problems.

Rossi 's idea was to produce Yamanaka's four proteins in a different way. Instead of using the DNA that holds the instructions for making proteins, he wanted to use RNA, which carries those instructions to the place in a cell where proteins are made.

His first several attempts were miserable failures. When he tried to change the messages the RNA carried, he triggered a serious immune response and most of the cells shut down or self-destructed. Rossi then tried modifying the RNA chemically and eventually figured out a way to allow his changes to escape immune detection while delivering the message. "This was key to our success," said Rossi, who is also a researcher at Children's Hospital Boston. "We could encode RNA for any protein we wanted to express and insert it into a cell."

Rossi said it was a happy coincidence that using RNA instead of changing the DNA was as much as 100-fold more efficient. He said the effect was possibly because the process more closely reflects how cells themselves transform.

Rossi successfully differentiated his stem cells into muscle cells using RNA, a process that may offer promise in gene therapy and other treatments. His method does not alter the cell's underlying genome, though Rossi admits that he does not yet understand what it does to the cell's epigenome, which controls expression of genes.

Rossi said that his cells, which he's named RiPS, for "RNA induced Pluripotent Stem" cells, are more like embryonic stem cells than traditional iPS cells because they have not been genetically altered.

Melton said the Harvard Stem Cell Institute, which includes several hundred stem-cell researchers from across Harvard University and its affiliated hospitals, will now be making its standard iPS cells with Rossi's method.

In a prepared statement, Yamanaka, now at the University of California, San Francisco, said Rossi's approach to generating stem cells seems promising, and he would like to have someone in his lab try it.

"The quality of the induced pluripotent stem cells generated by this method should be carefully examined because their characteristics vary depending on the induction methods and the origins of the resulting cells," he said. "The standard method to generate iPSCs for clinical applications has yet to be established. I think this method has the potential for it."

Jacob Hanna, a postdoctoral fellow at the Whitehead Institute for Biomedical Research in Cambridge, said he's also eager to begin working with the cells.

"I think it's a very exciting paper with a very promising method," said Hanna, who was not involved in the research. When asked if he was jealous that Rossi had developed the method first, Hanna said, "Yes, of course! It's a very nice paper," quickly adding, "Jealous in a very positive and supporting way."

Friday, May 14, 2010

Toward Deafness Cure: Inner-Ear Cells Created


Deep inside the ear, specialized cells called hair cells detect vibrations in the air and translate them into sound. Ten years ago, Stefan Heller, PhD, professor of otolaryngology at the Stanford University School of Medicine, came up with the idea that if you could create these cells in the laboratory from stem cells, it would go a long way toward helping scientists understand the molecular basis of hearing in order to develop better treatments for deafness.

Me
Section through the organ of corti
showing inner and outer hair cells
(Credit: Courtesy of Wikimedia Commons)

After years of lab work, researchers in Heller's lab will report in the May 14 issue of Cell that they have found a way to develop mouse cells that look and act just like the animal's inner-ear hair cells -- the linchpin to our sense of hearing and balance -- in a petri dish.

If they can further perfect the recipe to generate hair cells in the millions, it could lead to significant scientific and clinical advances along the path to curing deafness in the future, they said.

"This gives us real hope that there might be some kind of therapy for regenerating hair cells," said David Corey, PhD, professor of neurobiology at Harvard University who was not involved in the study. "It could take a decade or more, but it's a possibility."

Using both embryonic stem cells from mice as well as reprogrammed mouse fibroblasts (a type of relatively undifferentiated cell found in many parts of the body), the researchers present a step-by-step guide on how to coax these cells into the sensory cells that normally reside in the inner ear.

"We knew it was really working when we saw them in the electron microscope," Heller said. "They really looked like they were more or less taken out of the ear."

Humans are born with 30,000 cochlear and vestibular hair cells per ear. (By contrast, one retina harbors about 120 million photoreceptors.) When a significant number of these cells are lost or damaged, hearing loss occurs. The major reason for hearing loss and certain balance disorders is that -- unlike other species such as birds -- humans and other mammals are unable to spontaneously regenerate these hearing cells.

As the population has aged and noise pollution has grown more severe, health experts now estimate that one in three adults over the age of 65 has developed a handicapping hearing loss due to the destruction of these limited number of hair cells.

One of the roadblocks to understanding the molecular basis of hearing is the paucity of hair cells available for study, Heller said. While researchers will ultimately need human hair cells, the mouse version is a good model for the initial phases of experimentation, he said. In addition to using mouse embryonic stem cells, the researchers used fibroblasts that had been reprogrammed to behave like stem cells: These are known as induced pluripotent stem cells, or iPS cells.

"Our study offers a protocol to generate millions of functional hair cells from a renewable source," Heller said. "We can now generate these cells and don't have to go through dozens of mice for a single experiment. This allows us to do molecular studies with much higher efficiency."

The study details how the researchers succeeded in coaxing the mouse embryonic stem cells and the iPS cells through different phases of development that occur in the womb. According to lead author Kazuo Oshima, MD, PhD, a research instructor at Stanford who works in Heller's lab, they started by turning the stem and iPS cells into the type of cells that form a young embryo's ectoderm -- the embryo's outer layer of cells that eventually differentiate into many tissues and structures, such as skin and nerve cells. Next they used specific growth factors to transform them into "otic-progenitor" cells (otic means ear). And after that, they varied the chemical soup in the dish, so that the cells clustered in a manner similar to hair cells and developed stereociliary bundles, which are also characteristic of hair cells.

"We looked at how the ear develops in an embryo, at the developmental steps, and mimicked these steps in a culture dish," Heller said.

Hair cells in the inner ear contain tiny clumps of hair-like projections, known as stereocilia. Sound vibrations cause the stereocilia to bend slightly, causing mechanical vibrations that are then converted into an electrochemical signal that the brain interprets as sound.

The cells in the petri dish, under close examination, had this same structure.

"These cells have a very intriguing structure," Heller said. "They look like they have hair tufts of stereocilia."

More importantly, further study showed that the cells also responded to mechanical stimulation by producing currents just like hair cells. Using a probe, researchers stimulated the bundles and recorded the currents that were evoked. Co-author Anthony Ricci, PhD, associate professor of otolaryngology, was responsible for this step of the work.

Heller, a leader in stem-cell based research on the inner ear, has recently been focused on two paths for possible cures for deafness: drug therapy -- which could be as simple as an application of ear drops -- and stem cell transplantation into the inner ear.

Both paths could be further advanced by the ability to develop hair-cell-like cells, he said. "We could now test thousands of drugs in a culture dish," he explained. "It is impossible to achieve such a scale in animals. Within a decade or so we could reap the benefits of this type of screening."

The lab's research into the regeneration of hair cells for transplantation into the inner ear to cure deafness will also continue.

"We made hair-cell-like cells in a petri dish," said Oshima. "This is an important step toward development of future therapies."

The study was funded by grants from the National Institute of Health, the California Institute for Regenerative Medicine and by a Neuroscience of Brain Disorders Award from the McKnight Endowment Fund for Neuroscience.

Other Stanford co-authors include postdoctoral scholars Kunyoo Shin, PhD; Mark Diensthuber, MD; and Anthony Peng, PhD.

Sunday, October 11, 2009

Major Step Forward In Cell Reprogramming, Researchers Report


A team of Harvard Stem Cell Institute (HSCI) researchers has made a major advance toward producing induced pluripotent stem cells, or iPS cells, that are safe enough to use in treating diseases in patients.

Lee Rubin, director of translational medicine at HSCI and the other senior author on the research team, said that "our goals were to try to as discretely and specifically as possible guide the cells through the deprogramming process" from the adult state to the embryonic-like state. (Credit: Photograph by Kris Snibbe/Harvard Staff Photographer)


“This demonstrates that we’re halfway home, and remarkably we got halfway home with just one chemical,” said Kevin Eggan, an HSCI principal faculty member who is the senior author of the paper being published online today by the journal Cell Stem Cell.

“There are four genes that do this, and with just one chemical we replaced half the genes,” said Eggan, who is also an assistant professor in Harvard’s Department of Stem Cell and Regenerative Biology. “The one chemical replaces those two genes in different ways at different times in the experiment. The experiments we performed not only led to discovery of the chemical, but they also explained how it works,” he said.