Showing posts with label Artificial lungs. Show all posts
Showing posts with label Artificial lungs. Show all posts

Tuesday, November 1, 2011

A Breath of Fresh Air in Lung Regeneration

 

  • Highlights
  • Pulmonary capillary endothelial cells (PCECs) support alveologenesis
  • Autocrine VEGFR2 and FGFR1 activation in PCECs induces MMP14 expression
  • MMP14 unmasks EGF receptor ligands, enhancing epithelial cell proliferation
  • Injection of activated PCECs or angiocrine factors accelerates lung regeneration

Summary

To identify pathways involved in adult lung regeneration, we employ a unilateral pneumonectomy (PNX) model that promotes regenerative alveolarization in the remaining intact lung. We show that PNX stimulates pulmonary capillary endothelial cells (PCECs) to produce angiocrine growth factors that induce proliferation of epithelial progenitor cells supporting alveologenesis. Endothelial cells trigger expansion of cocultured epithelial cells, forming three-dimensional angiospheres reminiscent of alveolar-capillary sacs. After PNX, endothelial-specific inducible genetic ablation of Vegfr2 and Fgfr1 in mice inhibits production of MMP14, impairing alveolarization. MMP14 promotes expansion of epithelial progenitor cells by unmasking cryptic EGF-like ectodomains that activate the EGF receptor (EGFR). Consistent with this, neutralization of MMP14 impairs EGFR-mediated alveolar regeneration, whereas administration of EGF or intravascular transplantation of MMP14+ PCECs into pneumonectomized Vegfr2/Fgfr1-deficient mice restores alveologenesis and lung inspiratory volume and compliance function. VEGFR2 and FGFR1 activation in PCECs therefore increases MMP14-dependent bioavailability of EGFR ligands to initiate and sustain alveologenesis.




 

Authors


 

Wednesday, October 26, 2011

Man-made lungs ?

Man-made lungs  

Man-made lungs are already a reality. A device called the NovaLung is being tested worldwide to help patients struck down by life-threatening asthma attacks and pneumonia, as well as those awaiting a lung transplant.

 
The size of a CD case, it is plumbed into the body’s circulation through blood vessels in the legs. It has a high-tech membrane that filters out carbon dioxide from the blood before allowing the blood to flow back into the body, where it gets resupplied with oxygen by the lungs.

The filtering process, called gas exchange, is normally carried out by the lungs. But if they are malfunctioning, they are unable to extract the carbon dioxide and the body’s vital organs become starved of oxygen and begin to shut down. The NovaLung needs to remove only relatively small amounts of blood at a time to keep the body supplied with oxygen. It is not intended as a permanent replacement, but it could last for months, or even years, by replacing the membrane inside.
AVAILABLE: Now — the NovaLung has already been used in Britain.


Read more: http://www.dailymail.co.uk/health/article-2052995/Eyelids-ovaries-Bionic-spare-parts-new-lease-life.html#ixzz1bu3Yf0U4

Tuesday, January 25, 2011

Novalung and Medos start cooperation

Novalung and Medos start cooperation


Due to the acquisition of Medos Medizintechnik AG by the private equity fund Zukunftsfonds Heilbronn (“Future Fund of Heilbronn”) the company will cooperate closely in the future with Novalung GmbH, which is expected to strengthen both medical device companies.

The Zukunftsfonds Heilbronn (zfhn) announced that it has acquired Medos Medizintechnik AG from Ventizz Capital Partners Advisory AG. The purchase agreement was signed on January 7, 2011. With this acquisition medical device technology has become the most important sector for the private equity fund. Thomas Villinger, Managing Director of the zfhn, explained the decision behind this acquisition: ”The medical device sector is characterized by solid growth and is independent of economic cycles.“ He noted further that “Medos and Novalung are technological leaders is different markets, namely cardiac support and lung support. Their innovative technologies complement one another extremely well, and a close cooperation will enable even better utilization and speed up further developments.“

Dr. Volker Hamm, who has been named to join the Medos Management Board, noted with pleasure: “We are very happy about this development. Novalungs excellent market know-how in the field of lung support will provide a much broader customer base for our high-tech products.“ Hamm also noted that Christian Palme will join Thomas Villinger on the Supervisory Board of Medos. The Medos facilities in Stolberg und Radeberg will continue their operations after the acquisition.

Dr. Georg Matheis, Managing Director of Novalung GmbH since its founding eight years ago, emphasized that Novalung, after thousands of treatments using the company’s artificial lung, the iLA Membrane Ventilator®, has firmly established itself. “The innovative therapy for the treatment of lung failure without invasive mechanical ventilation is now well accepted” the former cardiothoracic surgeon noted. ”In order to further expand our market leadership as the pioneering company in this field, we will develop a full product portfolio in 2011. With the cooperation with Medos this can be accomplished more quickly than we originally expected.“ Matheis also pointed to the newest member of Novalung’s executive management team, Josef Bogenschütz, who left medical device company Maquet and join Novalung just a few weeks earlier. “In addition to strong leadership, Josef Bogenschütz brings with him great expertise in the development and manufacturing of artificial lungs. With him on board we are ideally positioned to aggressively develop additional innovative solutions for the replacement of invasive mechanical ventilation. Together, and with the support of our clinical partners, we will realize the vision of increasingly avoiding the damage of invasive mechanical ventilation.“

Bogenschütz, who most recently drove the successful growth of Maquet Cardiopulmonary AG as President and CEO, is equally optimistic concerning the expansion of the zfhn portfolio. ”I am pleased that this new cooperation provides so many areas of synergy for both companies. We will jointly leverage our know-how in the high-end cleanroom manufacturing of artificial lungs to further optimize our manufacturing efficiencies.“ He also presented Novalungs core strategy to intensify the company’s research and development activities and to further expand sales in the core markets in Europe and the USA.

see more info on this external lung device
http://www.openpr.com/news/159889/Novalung-and-Medos-start-cooperation.html

Thursday, December 16, 2010

ECMO used for infants



ECMO stands for Extra Corporeal Membrane Oxygenation. ECMO is used in infants who are extremely ill due to breathing or heart problems. The ECMO machine circulates blood through an artificial lung back into the bloodstream. This provides adequate oxygen to the baby while allowing time for the lungs and heart to "rest" or heal.

see source at...
http://www.edward.org/body.cfm?xyzpdqabc=0&id=223&action=detail&AEArticleID=19844&AEProductID=Adam2004_1&AEProjectTypeIDURL=APT_2

Friday, November 5, 2010

Doctors are currently experimenting with artificial lungs

So just how close are we to being able to create a bionic person?



LUNGS
Doctors are currently experimenting with artificial lungs as a way to give patients waiting for a donated lung an increased chance of survival.

One such device is the BioLung, a machine which is roughly the size of a drinks can that is implanted in the chest. The device is packed with hollow plastic fibres perforated with holes so tiny that only gas molecules can pass through them.

As blood filters through the fibres, carbon dioxide escapes through the holes and is replaced by oxygen from the surrounding air.

Researchers claim it can reproduce 100 per cent of normal lung function. Clinical trials are expected to be under way in the next few years.

BIONIC HAND
Not dissimilar to Will Smith's arm in the film I, Robot, in 2007 there was a bionic revolution close to home when Livingston-based company Touch Bionics introduced the first commercially available bionic hand.

LEG
Earlier this year a biotech company in New Zealand revealed that it had created a pair of robotic legs which had helped a man walk again.

The device is not an implant, but rather a robotic exoskeleton, or Rex - a pair of robotic legs that support and assist a person who usually uses a wheelchair. Users strap themselves in and control their movements using a joystick and control pad.

see more om medical progress and lung

Saturday, October 2, 2010

Living, breathing human lung-on-a-chip

Living, breathing human lung-on-a-chip: A potential drug-testing alternative

Date: Jun 24, 2010
Lung on a chip
The lung on a chip, shown here, was crafted by combining microfabrication techniques from the computer industry with modern tissue engineering techniques, human cells, and a plain old vacuum pump. [Photo credit: Felice Frankel.]
BOSTON, Mass. -- Researchers from the Wyss Institute for Biologically Inspired Engineering at Harvard University, Harvard Medical School, and Children's Hospital Boston have created a device that mimics a living, breathing human lung on a microchip. The device, about the size of a rubber eraser, acts much like a lung in a human body and is made using human lung and blood vessel cells.

Because the lung device is translucent, it provides a window into the inner-workings of the human lung without having to invade a living body. It has the potential to be a valuable tool for testing the effects of environmental toxins, absorption of aerosolized therapeutics, and the safety and efficacy of new drugs. Such a tool may help accelerate pharmaceutical development by reducing the reliance on current models, in which testing a single substance can cost more than $2 million.

"The ability of the lung-on-a-chip device to predict absorption of airborne nanoparticles and mimic the inflammatory response triggered by microbial pathogens provides proof-of-principle for the concept that organs-on-chips could replace many animal studies in the future," says Donald Ingber, senior author on the study and founding director of Harvard's Wyss Institute.

The paper appears in the June 25 issue of Science.

Room to breathe
Until now, tissue-engineered microsystems have been limited either mechanically or biologically, says Ingber, who is also the Judah Folkman professor of vascular Biology at Harvard Medical School and Children's Hospital Boston. "We really can't understand how biology works unless we put it in the physical context of real living cells, tissues, and organs."

With every human breath, air enters the lungs, fills microscopic air sacs called alveoli, and transfers oxygen through a thin, flexible, permeable membrane of lung cells into the bloodstream. It is this membrane -- a three-layered interface of lung cells, a permeable extracellular matrix, and capillary blood vessel cells -- that does the lung's heavy lifting. What's more, this lung-blood interface recognizes invaders such as inhaled bacteria or toxins and activates an immune response.

The lung-on-a-chip microdevice takes a new approach to tissue engineering by placing two layers of living tissues -- the lining of the lung's air sacs and the blood vessels that surround them -- across a porous, flexible boundary. Air is delivered to the lung lining cells, a rich culture medium flows in the capillary channel to mimic blood, and cyclic mechanical stretching mimics breathing.  The device was created using a novel microfabrication strategy that uses clear rubbery materials. The strategy was pioneered by another Wyss core faculty member, George Whitesides, the Woodford L. and Ann A. Flowers University Professor at Harvard University.

"We were inspired by how breathing works in the human lung through the creation of a vacuum that is created when our chest expands, which sucks air into the lung and causes the air sac walls to stretch," says first author Dan Huh, a Wyss technology development fellow at the Institute. "Our use of a vacuum to mimic this in our microengineered system was based on design principles from nature."

To determine how well the device replicates the natural responses of living lungs to stimuli, the researchers tested its response to inhaled living E. coli bacteria. They introduced bacteria into the air channel on the lung side of the device and at the same time flowed white blood cells through the channel on the blood vessel side. The lung cells detected the bacteria and, through the porous membrane, activated the blood vessel cells, which in turn triggered an immune response that ultimately caused the white blood cells to move to the air chamber and destroy the bacteria.

"The ability to recreate realistically both the mechanical and biological sides of the in vivo coin is an exciting innovation," says Rustem Ismagilov, professor of chemistry at the University of Chicago, who specializes in biochemical microfluidic systems.

The team followed this experiment with a "real-world application of the device," says Huh. They introduced a variety of nano-scaled particles (a nanometer is one-billionth of a meter) into the air sac channel. Some of these particles exist in commercial products; others are found in air and water pollution. Several types of these nanoparticles entered the lung cells and caused the cells to overproduce free radicals and to induce inflammation.  Many of the particles passed through the model lung into the blood channel, and the investigators discovered that mechanical breathing greatly enhanced nanoparticle absorption. Benjamin Matthews, Harvard Medical School assistant professor in the Vascular Biology Program at Children's Hospital Boston, verified these new findings in mice.

"Most importantly, we learned from this model that the act of breathing increases nanoparticle absorption and that it also plays an important role in inducing the toxicity of these nanoparticles," Huh says.

Organs-on-chips
"This lung-on-a-chip is neat and merges a number of technologies in an innovative way," says Robert Langer, MIT Institute professor. "I think it should be useful in testing the safety of different substances on the lung and I can also imagine other related applications, such as in research into how the lung functions."

According to Ismagilov, it's too early to predict how successful this field of research will be.  Still, "the potential to use human cells while recapitulating the complex mechanical features and chemical microenvironments of an organ could provide a truly revolutionary paradigm shift in drug discovery," he says.

The investigators have not yet demonstrated the system's capability to mimic gas exchange between the air sac and bloodstream, a key function of the lungs, but, says Huh, they are exploring this now. 

The Wyss Institute team is also working to build other organ models, such as a gut-on-a-chip, as well as bone marrow and even cancer models. Further, they are exploring the potential for combining organ systems.

For example, Ingber is collaborating with Kevin Kit Parker, associate professor at Harvard University's School of Engineering and Applied Sciences and another Wyss core faculty member, who has created a beating heart-on-a-chip. They hope to link the breathing lung-on-a-chip to the beating heart-on-a-chip. The engineered organ combination could be used to test inhaled drugs and to identify new and more effective therapeutics that lack adverse cardiac side effects.

This research was funded by the the National Institutes of Health, the American Heart Association, and the Wyss Institute for Biologically Inspired Engineering at Harvard University.

Written by Elizabeth Dougherty

Contact:
Mary Tolikas
mary.tolikas@wyss.harvard.edu
###
The Wyss Institute for Biologically Inspired Engineering at Harvard University uses Nature's design principles to create breakthrough technologies that will revolutionize medicine, industry, and the environment.  Working as an alliance among Harvard's Medical School, School of Engineering and Applied Sciences, and Faculty of Arts and Sciences, and in partnership with Beth Israel Deaconess Medical Center, Children's Hospital Boston, Dana Farber Cancer Institute, University of Massachusetts Medical School, and Boston University, the Institute crosses disciplinary and institutional barriers to engage in high-risk, fundamental research that leads to transformative change. By applying biological principles, Wyss researchers are developing innovative new engineering solutions for healthcare, manufacturing, robotics, energy, and sustainable architecture. These technologies are translated into commercial products and therapies through collaborations with clinical investigators, corporate alliances and new startups.

Harvard Medical School (http://hms.harvard.edu) has more than 7,500 full-time faculty working in 11 academic departments located at the School's Boston campus or in one of 47 hospital-based clinical departments at 17 Harvard-affiliated teaching hospitals and research institutes. Those affiliates include Beth Israel Deaconess Medical Center, Brigham and Women's Hospital, Cambridge Health Alliance, Children's Hospital Boston, Dana-Farber Cancer Institute, Forsyth Institute, Harvard Pilgrim Health Care, Hebrew SeniorLife, Joslin Diabetes Center, Judge Baker Children's Center, Massachusetts Eye and Ear Infirmary, Massachusetts General Hospital, McLean Hospital, Mount Auburn Hospital, Schepens Eye Research Institute, Spaulding Rehabilitation Hospital, and VA Boston Healthcare System.

see more info on living breathing human lungs on a chip

Wednesday, September 1, 2010

Artificial lungs breathe new hope for transplants

Artificial lungs breathe new hope for transplants


First it was the heart, then the liver - now two research teams have grown artificial lungs that function in rats. It is hoped that a similar technique could one day engineer donor organs for humans.

A lung transplant is the only option for people with terminal lung disease caused by conditions like cystic fibrosis or chronic obstructive pulmonary disease. But donor organs are in short supply, and rejection is likely even if a lung becomes available.

In a quest to solve both problems, teams from Harvard Medical School in Boston and Yale University, working separately, stripped donor rat lungs of their original tissue by exposing them to a mild detergent. The teams then repopulated the remaining "scaffold" of connective tissue with foetal stem cells and incubated the organs in nutrients to help them grow.

The new lungs were then "replumbed" into rat recipients. The regenerated lungs resembled native lungs in size and oxygenated the recipient's blood for up to six hours, after which oedema - accumulation of fluid within the lung - and capillary leakage occurred.



cick to see the site newscientist.com artificial lungs breathe new hope

Tuesday, August 31, 2010

Artificial lungs grown in lab

Artificial lungs grown in lab





Lung-on-a-chip mircodevice light up by fluorescent dyes.


SYDNEY: In two breakthrough studies, American scientists have built a lung on a chip and successfully grown and transplanted a rat lung.


The research could help people who suffer from various lung diseases, which are often fatal due to the shortage of lung donors.

"This work represents an initial step towards the goal of creating fully functional lungs in the laboratory," said biomedical engineer Thomas Peterson from Yale University, New Haven.

How to grow a lung


Until now, scientists have been able to grow tissue, such as skin and cartilage, in a lab and transplant it into a patient. But complex organs such as lungs have remained out of their grasp.

But Peterson and his colleagues report this week that they have grown a rat lung in a lab and successfully transplanted them into rats. They published their study in the journal Science.

The left lung of a rat was 'decellularised' - that is, it was stripped of all its cells, leaving behind the basic scaffolding of the organ: its blood vessels. The researchers then introduced to the scaffold some stem cells from the rat that would receive the transplant. 20 to 25 years for human transplants
Once grown and transplanted, "the engineered lungs allowed oxygen to enter the bloodstream." The lung also removed carbon dioxide, though not as effectively as a natural lung.

But it will be "20-25 years before this approach can be attempted in human patients," Peterson said.


Biologist Miranda Grounds, at the University of Western Australia, who was not involved in the study, says that while the study has "demonstrated the principle", she cautions that it "would be exceedingly difficult to scale up to human applications."

Build a tiny model replica

In another study published in Science, Donald Ingber of the Wyss Institute for Biologically Inspired Engineering in Boston, and his colleagues scaled the lung down in size to what they refer to as a "organ-on-a-chip".

At approximately the size of an Australian 10 cent piece, the device mimics the human lung.

artificial-lungs-grown-lab at cosmos magazine click for more info



Friday, 25 June 2010by Emma Bastian


Cosmos Online

Monday, August 30, 2010

Scientists create replacement lungs

Scientists create replacement lungs
US scientists have reported important progress towards building new human lungs by successfully implanting lab-cultivated cells into a rat's lungs, and by creating an artificial device on a microchip that mimics the human lung.

Yale University researchers managed to create lungs that worked from 45 to 120 minutes by using laboratory-cultivated cells and implanted them into rats, a scientific first.

Separately, researchers with the Wyss Institute at Harvard University, Harvard Medical School and Children's Hospital Boston created a device that acts like a human lung using blood vessel cells. It is about the size of a rubber eraser.

The artificial lung can be used to test the effects of new medicine and toxins on human lungs, said Wyss Institute director Donald Ingber and the study's main author.
The mini lung-on-a-chip "merges a number of technologies in an innovative way," said MIT Institute professor Robert Langer on Thursday.

"I think it should be useful in testing the safety of different substances on the lung and I can also imagine other related applications, such as in research into how the lung functions," he added.
Both research studies appear in the June 25 edition of the journal Science.
For the first study, researchers took adult rat lungs and removed their existing cellular components.
They preserved the matrix and branching structures of the airways and vascular system, which they later used to grow new lung cells.

"When implanted into rats for short intervals of time (45-120 minutes), the engineered lungs exchanged oxygen and carbon dioxide similarly to natural lungs," the researchers said.

"We succeeded in engineering an implantable lung in our rat model that could efficiently exchange oxygen and carbon dioxide, and could oxygenate hemoglobin in the blood," said lead author Laura Niklason from Yale University.

"This is an early step in the regeneration of entire lungs for larger animals and, eventually, for humans," she said.

Niklason however warned that it will take years of research with adult stem cells to see if lungs can be regenerated in vitro, successfully implanted into patients, and made sure they function properly.


The Yale team found that the engineered lungs were similar to those of native tissues, and properly exchanged oxygen and carbon dioxide when implanted.

Some 400,000 people die annually in the United States of lung diseases.

Lung tissue is especially difficult to regenerate because it rarely repairs beyond the microscopic level, researchers said. "The only current way to replace damaged adult lung tissue is to perform lung transplantation, which is highly susceptible to organ rejection and infection and achieves only 10 per cent to 20 per cent survival at 10 years," the Yale researchers said.

click to see more scientists grow replacement parts lungs

Sunday, August 29, 2010

This website is designed to promote Artificial lungs

This website is designed to promote Artificial lungs.

Here's an image that I found on the web that provides the theme for this blog.

I personally suffer from severe emphysema , so I have an interest in this technology.
Hopefully this will be achieved in my lifetime,