Subscribe free to our newsletters via your
. Space Industry and Business News .




INTERN DAILY
Nanoscale scaffolds and stem cells show promise in cartilage repair
by Staff Writers
Baltimore MD (SPX) Jul 18, 2012


Unlike skin, cartilage can't repair itself when damaged.

Johns Hopkins tissue engineers have used tiny, artificial fiber scaffolds thousands of times smaller than a human hair to help coax stem cells into developing into cartilage, the shock-absorbing lining of elbows and knees that often wears thin from injury or age. Reporting online in the Proceedings of the National Academy of Sciences, investigators produce an important component of cartilage in both laboratory and animal models.

While the findings are still years away from use in people, the researchers say the results hold promise for devising new techniques to help the millions who endure joint pain.

"Joint pain affects the quality of life of millions of people. Rather than just patching the problem with short-term fixes, like surgical procedures such as microfracture, we're building a temporary template that mimics the cartilage cell's natural environment, and taking advantage of nature's signals to biologically repair cartilage damage," says Jennifer Elisseeff, Ph.D., Jules Stein Professor of Ophthalmology and director of the Translational Tissue Engineering Center at the Johns Hopkins University School of Medicine.

Unlike skin, cartilage can't repair itself when damaged. For the last decade, Elisseeff's team has been trying to better understand the development and growth of cartilage cells called chondrocytes, while also trying to build scaffolding that mimics the cartilage cell environment and generates new cartilage tissue. This environment is a 3-dimensional mix of protein fibers and gel that provides support to connective tissue throughout the body, as well as physical and biological cues for cells to grow and differentiate.

In the laboratory, the researchers created a nanofiber-based network using a process called electrospinning, which entails shooting a polymer stream onto a charged platform, and added chondroitin sulfate-a compound commonly found in many joint supplements-to serve as a growth trigger.

After characterizing the fibers, they made a number of different scaffolds from either spun polymer or spun polymer plus chondroitin. They then used goat bone marrow-derived stem cells (a widely used model) and seeded them in various scaffolds to see how stem cells responded to the material.

Elisseeff and her team watched the cells grow and found that compared to cells growing without scaffold, these cells developed into more voluminous, cartilage-like tissue. "The nanofibers provided a platform where a larger volume of tissue could be produced," says Elisseeff, adding that 3-dimensional nanofiber scaffolds were more useful than the more common nanofiber sheets for studying cartilage defects in humans.

The investigators then tested their system in an animal model. They implanted the nanofiber scaffolds into damaged cartilage in the knees of rats, and compared the results to damaged cartilage in knees left alone.

They found that the use of the nanofiber scaffolds improved tissue development and repair as measured by the production of collagen, a component of cartilage. The nanofiber scaffolds resulted in greater production of a more durable type of collagen, which is usually lacking in surgically repaired cartilage tissue.

In rats, for example, they found that the limbs with damaged cartilage treated with nanofiber scaffolds generated a higher percentage of the more durable collagen (type 2) than those damaged areas that were left untreated.

"Whereas scaffolds are generally pretty good at regenerating cartilage protein components in cartilage repair, there is often a lot of scar tissue-related type 1 collagen produced, which isn't as strong," says Elisseeff. "We found that our system generated more type 2 collagen, which ensures that cartilage lasts longer."

"Creating a nanofiber network that enables us to more equally distribute cells and more closely mirror the actual cartilage extracellular environment are important advances in our work and in the field. These results are very promising," she says.

Other authors included Jeannine M. Coburn, Matthew Gibson, Sean Monagle and Zachary Patterson, all from Johns Hopkins University. The research was supported by grants R01 EB05517, F31 AG033999 and F30 AG034807 from the National Institutes of Health.

.


Related Links
Johns Hopkins Medical Institutions
Hospital and Medical News at InternDaily.com






Comment on this article via your Facebook, Yahoo, AOL, Hotmail login.

Share this article via these popular social media networks
del.icio.usdel.icio.us DiggDigg RedditReddit GoogleGoogle








INTERN DAILY
EU threatens Microsoft with antitrust fine over web browser
Brussels (AFP) July 17, 2012
The European Commission threatened Microsoft with another big fine on Tuesday after the US software giant failed to give 28 million European customers the ability to choose their web browser. Microsoft immediately apologised for the "technical error" after 28 million users of the Windows 7 operating system were unable to choose between the company's default Internet Explorer and other browse ... read more


INTERN DAILY
Heat is Source of 'Pioneer Anomaly'

To Extinguish a Hot Flame, DARPA Studied Cold Plasma

Sailing with nerves of glass

Scientists from northern Germany produce the lightest material in the world

INTERN DAILY
Lockheed Martin Completes On-Orbit Testing of First US Navy MUOS Satellite

Northrop Grumman's RC-12X Airborne Signals Intelligence System Completes 1,000th Mission

Raytheon's vehicular soldier radio system links 37 different types of US, coalition radios

Lockheed Martin to Support Intelligence Analysis Worldwide Under DIA Solutions Contract

INTERN DAILY
NASA Selects Launch Services Contract for Jason-3 Mission

NASA Selects Launch Services Contract for Three Missions

NASA Selects ULA's Workhorse Delta II Rocket for Three Future Missions

SpaceX Completes Design Review of Dragon

INTERN DAILY
GMV Leads Satellite Navigation Project In Collaboration With The South African National Space Agency

SSTL signs contract with OHB for second batch of Galileo payloads

Phone app will navigate indoors

Announcement of ACRIDS product line for Precision Airdrop Systems

INTERN DAILY
Boeing Demonstrates Multi-location Paint Capability for RAAF

Russia and Italy to jointly develop patrol aircraft

Raytheon's ATFLIR surpasses one million flight hours on US Navy Super Hornet

Boeing Receives First 10 New Fuselages Designed for AH-64D Apache Block III

INTERN DAILY
University of Utah physicists invent 'spintronic' LED

Platinum is wrong stuff for fuel cells

Toughened silicon sponges may make tenacious batteries

Keeping electric vehicle batteries cool

INTERN DAILY
NASA's Landsat Data Continuity Mission Becomes an Observatory

New eyes in the sky

IGARSS 2012 - 'Remote Sensing for a Dynamic Earth'

MSG-3 set to ensure quality of Europe's weather service from geostationary orbit

INTERN DAILY
Poison from illegal pot farms said a risk

India has least eco impact but feels guilty: study

Copper making salmon prone to predators

Non-stop Spanish fiesta a challenge for clean-up crews




The content herein, unless otherwise known to be public domain, are Copyright 1995-2014 - Space Media Network. AFP, UPI and IANS news wire stories are copyright Agence France-Presse, United Press International and Indo-Asia News Service. ESA Portal Reports are copyright European Space Agency. All NASA sourced material is public domain. Additional copyrights may apply in whole or part to other bona fide parties. Advertising does not imply endorsement,agreement or approval of any opinions, statements or information provided by Space Media Network on any Web page published or hosted by Space Media Network. Privacy Statement