We use cookies to understand how you use our site and to improve your experience. This includes personalizing content and advertising. To learn more, click here. By continuing to use our site, you accept our use of cookies. Cookie Policy.

Features Partner Sites Information LinkXpress hp
Sign In
Advertise with Us
Sekisui Diagnostics

Download Mobile App




Method for Accelerated Bone Growth Developed

By HospiMedica International staff writers
Posted on 19 Feb 2009
Engineers have devised a way to help accelerate bone growth through the use of nanotubes and stem cells. More...
This new development could lead to quicker and better recovery, for example, for patients who undergo orthopedic surgery.

In recent years, stem cells have become a hot topic of investigation with studies suggesting groundbreaking medical benefits due to their ability to be converted into selected types of newly generated cells. During their research, the group of University of California at San Diego (UCSD; USA) bioengineers and material science specialists utilized a nano-biotechnology method of placing mesenchymal stem cells on top of very thin titanium oxide nanotubes in order to control the conversion paths, called differentiation, into osteoblasts or bone-building cells. Mesenchymal stem cells, which are different from embryonic stem cells, can be extracted and directly supplied from a patient's own bone marrow.

The researchers described their laboratory findings in an article published in February 2009 in the journal Proceedings of the [U.S.] National Academy of Sciences (PNAS). "If you break your knee or leg from skiing, for example, an orthopedic surgeon will implant a titanium rod, and you will be on crutches for about three months,” said Dr. Sungho Jin, coauthor of the PNAS article and a materials science professor at the Jacobs School of Engineering. "But what we anticipate through our research is that if the surgeon uses titanium oxide nanotubes with stem cells, the bone healing could be accelerated and a patient may be able to walk in one month instead of being on crunches for three months.”

"Our in vitro and in vivo data indicate that such advantages can occur by using the titanium oxide nanotube treated implants, which can reduce the loosening of bones, one of the major orthopedic problems that necessitate re-surgery operations for hip and other implants for patients,” Dr. Jin added. "Such a major re-surgery, especially for older people, is a health risk and significant inconvenience, and is also undesirable from the cost point of view.”

This is the first study of its kind using stem cells attached to titanium oxide nanotube implants. Dr. Jin and his research team--which include Jacobs School bioengineering professors Drs. Shu Chien and Adam Engler, as well as post doctoral researcher Seunghan Oh and other graduate students and researchers--report that the precise change in nanotube diameter can be controlled to induce selective differentiation of stem cells into osteoblast (bone-forming) cells.

According to this breakthrough study, nanotubes with a larger diameter cause cells growing on their surface to elongate much more than those with a small diameter. The larger diameter nanotube promotes quicker and stronger bone growth. "The use of nano-topography to induce preferred differentiation was reported in recent years by other groups, but such studies were done mostly on polymer surfaces, which are not desirable orthopedic implant materials,” Dr. Jin said.

It is common for physicians and surgeons to use chemicals for stem cell implants in order to control cell differentiation, a conversion into a specific type of cells, for example, to neural cells, heart cells, and bone cells. However, introducing chemicals into the human body can sometimes have undesirable side effects. "What we have accomplished here is a way to introduce desirable guided differentiation using only nanostructures instead of resorting to chemicals,” said Dr. Seunghan Oh, who is the lead author of the PNAS article.

The next step for engineers will be to work with orthopedic surgeons and other colleagues at the UCSD School of Medicine to evaluate ways to translate this breakthrough research to clinical application, according to Dr. Shu Chien, a UCSD bioengineering professor and director of the university's new Institute of Engineering in Medicine (IEM). According to Dr Chien, this effort will bring together scientists, engineers, and medical experts to come up with novel approaches to medicine.

"Our research in this area has pointed to a novel way by which we can modulate the stem cell differentiation, which is very important in regenerative medicine,” Dr. Chien said. "This will lead to a truly interdisciplinary approach between engineering and medicine to getting novel treatments to the clinic to benefit the patients.”

Related Links:

University of California, San Diego



Gold Member
STI Test
Vivalytic Sexually Transmitted Infection (STI) Array
Radiology Monitor
MDNC-6121 Barco Nio Color 5.8MP
Patient Monitoring System
AlarmSense
Pediatric Mask
Respire SOFT
Read the full article by registering today, it's FREE! It's Free!
Register now for FREE to HospiMedica.com and get access to news and events that shape the world of Hospital Medicine.
  • Free digital version edition of HospiMedica International sent by email on regular basis
  • Free print version of HospiMedica International magazine (available only outside USA and Canada).
  • Free and unlimited access to back issues of HospiMedica International in digital format
  • Free HospiMedica International Newsletter sent every week containing the latest news
  • Free breaking news sent via email
  • Free access to Events Calendar
  • Free access to LinkXpress new product services
  • REGISTRATION IS FREE AND EASY!
Click here to Register








Channels

Artificial Intelligence

view channel
Image: Clinical LLM Performance Improves by >300% When Provided with High-Quality Real-World Evidence in New Precision Medicine Benchmark (Photo courtesy of Atropos Health)

New Benchmark Highlights Evidence Gaps in AI Responses to Clinical Questions

Many clinical decisions still rely on limited evidence, while most artificial intelligence benchmarks overlook the patient context that shapes real-world care. General large language models can also struggle... Read more

Critical Care

view channel
Image Credit: Adobe Stock

New ECG Foundation Model Enables Broad Cardiac Diagnosis and Risk Prediction

Electrocardiograms are central to cardiovascular decision-making, but conventional artificial intelligence models are often trained for narrow tasks, such as detecting a single arrhythmia.... Read more

Point of Care

view channel
Image Credit: 123RF

Continuous Glucose Monitoring Identifies Cardiometabolic Risk in Adults Without Diabetes

Dysglycemia—abnormal blood glucose regulation—can fluctuate throughout the day and often escape conventional screening. Clinicians typically rely on fasting plasma glucose and hemoglobin A1c, which offer... Read more

Business

view channel
Image: LigaSure RAS Maryland, designed for the Valleylab FT10 platform on Hugo RAS, seals and cuts vessels, tissue, and lymphatics up to 7 mm in diameter (Photo courtesy of Medtronic)

Medtronic Receives FDA Clearance for Vessel-Sealing Instrument for Robotic Surgery

As robotic-assisted surgery expands across U.S. hospitals, teams increasingly seek energy instruments with the familiarity and performance of tools used in open and laparoscopic procedures.... Read more
Copyright © 2000-2026 Globetech Media. All rights reserved.