A rat lung today, a human one tomorrow
Lab-Grown Lungs
Biomedical engineers have built many types of human organs in the lab, but, until recently, they've lagged on lung tissue. Two studies last year demonstrated very different approaches to the process. One research team has grown an artificial lung from harvested rat lung tissue and successfully implanted the new lung into a live rat.
According to Nature.com, "the study provides proof of principle that such regenerated tissue may one day be used to treat patients with serious lung disorders." Another research team has created a different kind of lab-built lung, called lung-on-a-chip, that mimics a living, breathing human lung on a microchip. The device, made using human lung and blood vessel cells, acts similar to a lung in a human body and is intended to be used as an in vitro model system for testing drugs or the toxic effects of a variety of substances without the use of animal models. Both lab-grown versions of lungs could one day serve as a way to sidestep animal testing and organ transplantation.
Researchers successfully grew a rat lung in a laboratory.
A rat lung today, a human one tomorrow
see more info on A rat lung today, a human one tomorrow
http://www.yaledailynews.com/news/2010/sep/01/rat-lung-today-human-one-tomorrow/
Showing posts with label new lungs. Show all posts
Showing posts with label new lungs. Show all posts
Saturday, October 1, 2011
Monday, August 8, 2011
Bi-Caval Dual Lumen Catheter
The Bi-Caval Dual Lumen Catheter is the world's first percutaneous, single site, kink resistant, veno-venous device designed to enable optimal extracorporeal life support.
The
Advantage
quick animation for using this new lung technology
see more specs at..
http://downloads.avalonlabs.com/downloads/pdf/BiCaval_DL_Product_Sheet.pdf
The
- Large family of sizes broadens clinical application for neonate, pediatric, and adult patients
- Inserted into the Internal Jugular Vein this patented device is able to match the body's natural flow ratios by simultaneously removing blood from both the SVC and IVC and returning blood to the Right Atrium.
- The catheter's outer diameter is tapered with a smaller tip to ease vessel insertion
- The deflectable inner membrane enables a single piece dual lumen design
- Constructed with an exclusive material which combines the durability of polyurethane and the flexibility and biostability of silicone
- Radiopaque to assist in catheter insertion and placement
quick animation for using this new lung technology
see more specs at..
http://downloads.avalonlabs.com/downloads/pdf/BiCaval_DL_Product_Sheet.pdf
Tuesday, July 26, 2011
Scientists Grow New Lungs
Scientists Grow New Lungs Using 'Skeletons' of Old Ones
For someone with a severe, incurable lung disorder such as cystic fibrosis or chronic obstructive pulmonary disease, a lung transplant may be the only chance for survival. Unfortunately, it's often not a very good chance. Matching donor lungs are rare, and many would-be recipients die waiting for the transplants that could save their lives
Such deaths could be prevented if it were possible to use stem cells to grow new lungs or lung tissue. Specialists in the emerging field of tissue engineering have been hard at work on this for years. But they've been frustrated by the problem of coaxing undifferentiated stem cells to develop into the specific cell types that populate different locations in the lung.
Now, researchers from the University of Texas Medical Branch at Galveston have demonstrated a potentially revolutionary solution to this problem. As they describe in an article published electronically ahead of print by the journal Tissue Engineering Part A, they seeded mouse embryonic stem cells into "acellular" rat lungs -- organs whose original cells had been destroyed by repeated cycles of freezing and thawing and exposure to detergent.
The result: empty lung-shaped scaffolds of structural proteins on which the mouse stem cells thrived and differentiated into new cells appropriate to their specific locations.
"In terms of different cell types, the lung is probably the most complex of all organs -- the cells near the entrance are very different from those deep in the lung," said Dr. Joaquin Cortiella, one of the article's lead authors. "Our natural matrix generated the same pattern, with tracheal cells only in the trachea, alveoli-like cells in the alveoli, pneumocytes only in the distal lung, and definite transition zones between the bronchi and the alveoli."
Such "site-specific" cell development has never been seen before in a natural matrix, said professor Joan Nichols, another of the paper's lead authors. The complexity gives the researchers hope that the concept could be scaled up to produce replacement tissues for humans -- or used to create models to test therapies and diagnostic techniques for a variety of lung diseases.
"If we can make a good lung for people, we can also make a good model for injury," Nichols said. "We can create a fibrotic lung, or an emphysematous lung, and evaluate what's happening with those, what the cells are doing, how well stem cell or other therapy works. We can see what happens in pneumonia, or what happens when you've got a hemorrhagic fever, or tuberculosis, or hantavirus -- all the agents that target the lung and cause damage in the lung."
The researchers have already begun work on large-scale experiments, "decellularizing" pig lungs with an eye toward using them to produce larger samples of lung tissue that could lead to applications in humans. They're also taking on the challenge of vascularization -- stimulating the growth of blood vessels that will enable the engineered tissues to survive outside the special bioreactors that the researchers now use to keep them alive by bathing them in a life-sustaining cocktail of nutrients and oxygen.
"People ask us why we're doing the lung, because it's so hard," Cortiella said. "But the potential is so great, and the technology is here. It's going to take time, but I think we're going to create a system that works."
Other authors of the Tissue Engineering Part A paper are UTMB research associate Jean Niles, associate professor Gracie Vargas, medical student Sean Winston, graduate student Shannon Walls, summer research fellows Andrea Brettler and Jennifer Wang, Andrea Cantu of Stanford University and Dr. Anthony Pham of Brown Medical School.
Tuesday, September 21, 2010
When you need new lungs
When you need new lungs!
September 21, 2010
People with terminal lung disease may find solace in the recent breakthroughs made in the stem cell research.
Scientists at the Harvard Medical School and Yale University have grown artificial lungs that work in rats using stem cells.
Presently, a lung transplant is the only option for people with terminal lung disease caused by smoking or conditions like cystic fibrosis. However, donor organs are in short supply and rejection is likely even if a lung is available.
To solve both these issues, the researchers stripped original tissue of the donor lungs. The teams then repopulated the remaining connective tissue with foetal stem cells and helped the organs grow.
http://wonderwoman.intoday.in/wonderwoman/story/86607/Health/when-you-need-new-lungs!.html
September 21, 2010
People with terminal lung disease may find solace in the recent breakthroughs made in the stem cell research.
Scientists at the Harvard Medical School and Yale University have grown artificial lungs that work in rats using stem cells.
Presently, a lung transplant is the only option for people with terminal lung disease caused by smoking or conditions like cystic fibrosis. However, donor organs are in short supply and rejection is likely even if a lung is available.
To solve both these issues, the researchers stripped original tissue of the donor lungs. The teams then repopulated the remaining connective tissue with foetal stem cells and helped the organs grow.
http://wonderwoman.intoday.in/wonderwoman/story/86607/Health/when-you-need-new-lungs!.html
Monday, August 30, 2010
Scientists seek to grow new lungs from stem cells
Scientists seek to grow new lungs from stem cells
For someone with a severe, incurable lung disorder such as cystic fibrosis or chronic obstructive pulmonary disease, a lung transplant may be the only chance for survival. Unfortunately, it’s often not a very good chance. Matching donor lungs are rare, and many would-be recipients die waiting for the transplants that could save their lives.
Such deaths could be prevented if it were possible to use stem cells to grow new lungs or lung tissue. Specialists in the emerging field of tissue engineering have been hard at work on this for years. But they’ve been frustrated by the problem of coaxing undifferentiated stem cells to develop into the specific cell types that populate different locations in the lung.
Now, researchers from UTMB have demonstrated a potentially revolutionary solution to this problem. As they describe in an article published electronically ahead of print by the journal Tissue Engineering Part A, they seeded mouse embryonic stem cells into “acellular” rat lungs — organs whose original cells had been destroyed by repeated cycles of freezing and thawing and exposure to detergent.
The result: empty lung-shaped scaffolds of structural proteins on which the mouse stem cells thrived and differentiated into new cells appropriate to their specific locations.
“In terms of different cell types, the lung is probably the most complex of all organs — the cells near the entrance are very different from those deep in the lung,” said Dr. Joaquin Cortiella, one of the article’s lead authors. “Our natural matrix generated the same pattern, with tracheal cells only in the trachea, alveoli-like cells in the alveoli, pneumocytes only in the distal lung, and definite transition zones between the bronchi and the alveoli.”
Such “site-specific” cell development has never been seen before in a natural matrix, said Dr. Joan Nichols, another of the paper’s lead authors. The complexity gives the researchers hope that the concept could be scaled up to produce replacement tissues for humans — or used to create models to test therapies and diagnostic techniques for a variety of lung diseases.
“If we can make a good lung for people, we can also make a good model for injury,” Nichols said. “We can create a fibrotic lung, or an emphysematous lung, and evaluate what’s happening with those, what the cells are doing, how well stem cell or other therapy works. We can see what happens in pneumonia, or what happens when you’ve got a hemorrhagic fever, or tuberculosis, or hantavirus — all the agents that target the lung and cause damage in the lung.”
The researchers have already begun work on large-scale experiments, “decellularizing” pig lungs with an eye toward using them to produce larger samples of lung tissue that could lead to applications in humans. They’re also taking on the challenge of vascularization — stimulating the growth of blood vessels that will enable the engineered tissues to survive outside the special bioreactors that the researchers now use to keep them alive by bathing them in a life-sustaining cocktail of nutrients and oxygen.
“People ask us why we’re doing the lung, because it’s so hard,” Cortiella said. “But the potential is so great, and the technology is here. It’s going to take time, but I think we’re going to create a system that works.”
by Jim Kelly
see the article on lungs from stem cells at utmb.edu
For someone with a severe, incurable lung disorder such as cystic fibrosis or chronic obstructive pulmonary disease, a lung transplant may be the only chance for survival. Unfortunately, it’s often not a very good chance. Matching donor lungs are rare, and many would-be recipients die waiting for the transplants that could save their lives.
Such deaths could be prevented if it were possible to use stem cells to grow new lungs or lung tissue. Specialists in the emerging field of tissue engineering have been hard at work on this for years. But they’ve been frustrated by the problem of coaxing undifferentiated stem cells to develop into the specific cell types that populate different locations in the lung.
Now, researchers from UTMB have demonstrated a potentially revolutionary solution to this problem. As they describe in an article published electronically ahead of print by the journal Tissue Engineering Part A, they seeded mouse embryonic stem cells into “acellular” rat lungs — organs whose original cells had been destroyed by repeated cycles of freezing and thawing and exposure to detergent.
The result: empty lung-shaped scaffolds of structural proteins on which the mouse stem cells thrived and differentiated into new cells appropriate to their specific locations.
“In terms of different cell types, the lung is probably the most complex of all organs — the cells near the entrance are very different from those deep in the lung,” said Dr. Joaquin Cortiella, one of the article’s lead authors. “Our natural matrix generated the same pattern, with tracheal cells only in the trachea, alveoli-like cells in the alveoli, pneumocytes only in the distal lung, and definite transition zones between the bronchi and the alveoli.”
Such “site-specific” cell development has never been seen before in a natural matrix, said Dr. Joan Nichols, another of the paper’s lead authors. The complexity gives the researchers hope that the concept could be scaled up to produce replacement tissues for humans — or used to create models to test therapies and diagnostic techniques for a variety of lung diseases.
“If we can make a good lung for people, we can also make a good model for injury,” Nichols said. “We can create a fibrotic lung, or an emphysematous lung, and evaluate what’s happening with those, what the cells are doing, how well stem cell or other therapy works. We can see what happens in pneumonia, or what happens when you’ve got a hemorrhagic fever, or tuberculosis, or hantavirus — all the agents that target the lung and cause damage in the lung.”
The researchers have already begun work on large-scale experiments, “decellularizing” pig lungs with an eye toward using them to produce larger samples of lung tissue that could lead to applications in humans. They’re also taking on the challenge of vascularization — stimulating the growth of blood vessels that will enable the engineered tissues to survive outside the special bioreactors that the researchers now use to keep them alive by bathing them in a life-sustaining cocktail of nutrients and oxygen.
“People ask us why we’re doing the lung, because it’s so hard,” Cortiella said. “But the potential is so great, and the technology is here. It’s going to take time, but I think we’re going to create a system that works.”
by Jim Kelly
see the article on lungs from stem cells at utmb.edu
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