Features Partner Sites Information LinkXpress hp
Sign In
Advertise with Us
Radcal IBA  Group

Download Mobile App




Light-Sensitive Cameras used to Study Lymphatic System

By HospiMedica International staff writers
Posted on 16 Aug 2010
With the support of the light-sensitive cameras, investigators can view a fluorescent dye as it works its way through the lymphatic system. More...
The fluorescent light emission can be seen through the skin.

The University of Texas Health Science Center at Houston (UTHealth; USA) has reached an agreement with other institutions that will allow it to take the next step in commercially developing a novel medical imaging system that uses night vision technology to manage a common side effect of cancer treatment. Officials in the Office of Technology Management at UTHealth have consolidated all patents and patent applications to the radiation-free system developed by UTHealth research scientist Eva Sevick, Ph.D., and collaborators.

Currently being evaluated in U.S. Food and Drug Administration (FDA)-approved clinical trials, the imaging system is being used to learn more about the lymphatic system and its role in disease. The lymphatic system transports everything from immune cells to blood components while playing a key role in the immune system and maintaining fluid balance. Little is known about the lymphatic system, however, and accurate imaging remains an obstacle, according to Dr. Sevick, professor and chair of Molecular Medicine at UTHealth's Brown Foundation Institute of Molecular Medicine for the Prevention of Human Diseases.

Cancer treatments, including associated surgeries, can damage or destroy the lymphatic system and lead to a condition called lymphedema, which is associated with limb swelling and tissue fibrosis. With light-sensitive cameras, UTHealth's Dr.Sevick and her colleagues can view the fluorescent dye as it works its way through the lymphatic system. The fluorescent light emission can be seen through the skin. "Use of this system may allow clinicians to diagnose damage to a patient's lymphatic system well before symptoms develop. As a result, doctors using this system may be able to more accurately determine when to place patients on a different therapeutic regimen in order to avoid some of the more extreme symptoms from lymphedema," Dr. Sevick said.

Lymphedema occurs in 0.6% of live births, according to the Lymphatic Research Foundation (LRF; Glen Cove, NY, USA); however, most acquire it as result of surgery, infection, or trauma that interferes with the lymphatic system. Approximately 30% of breast cancer survivors develop lymphedema, according to the LRF.

The 19 patents and patent applications covering the system were previously held by a total of four separate academic institutions: Baylor College of Medicine (Houston, TX, USA) , Purdue University (West Lafayette, IN, USA), Texas A&M University (Collage Station, USA) and UTHealth. UTHealth recently assumed management of the entire portfolio. Baylor College of Medicine and the Texas A&M University System signed an agreement with UTHealth to make the consolidation of the patent portfolio a reality and to make the entire portfolio available for commercial development.

"This agreement provides a great example of local academic institutions working together to bundle intellectual property around an important, innovative technology to make it more attractive to commercial investment. We look forward to working with a commercial partner to get this technology into the clinic," said Bruce D. Butler, Ph.D., vice president for research and technology at UTHealth.

The system involves micro-doses of fluorescent dyes and specially modified near-infrared cameras. With the aid of the light-sensitive cameras, Dr. Sevick and her colleagues can observe a fluorescent dye as it works its way through the lymphatic system, indicating valve behavior and flow dynamics. The fluorescent light emission can be seen through the skin by the camera.

In contrast to systems that use computed tomography (CT) scanners or positron emission tomography (PET) imagers, the cameras used in this system are comparatively inexpensive and easy to use, according to Dr. Sevick. Moreover, the contrast dyes used in this system are non-radioactive and can generate images at microdosing levels. The ability to administer microdoses dramatically reduces the potential for side effects to the patient from the dyes and facilitates approval of the technology through the regulatory process, she said.

Dr. Sevick's group is developing additional applications of this system for imaging of other diseases.

Related Links:
University of Texas Health Science Center at Houston



Platinum Member
STI Test
Vivalytic Sexually Transmitted Infection (STI) Array
Gold Member
SARS‑CoV‑2/Flu A/Flu B/RSV Sample-To-Answer Test
SARS‑CoV‑2/Flu A/Flu B/RSV Cartridge (CE-IVD)
Morcellator
TCM 3000 BL
Pulmonary Ventilator
OXYMAG
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

Surgical Techniques

view channel
Image: Professor Bumsoo Han and postdoctoral researcher Sae Rome Choi of Illinois co-authored a study on using DNA origami to enhance imaging of dense pancreatic tissue (Photo courtesy of Fred Zwicky/University of Illinois Urbana-Champaign)

DNA Origami Improves Imaging of Dense Pancreatic Tissue for Cancer Detection and Treatment

One of the challenges of fighting pancreatic cancer is finding ways to penetrate the organ’s dense tissue to define the margins between malignant and normal tissue. Now, a new study uses DNA origami structures... Read more

Patient Care

view channel
Image: The portable biosensor platform uses printed electrochemical sensors for the rapid, selective detection of Staphylococcus aureus (Photo courtesy of AIMPLAS)

Portable Biosensor Platform to Reduce Hospital-Acquired Infections

Approximately 4 million patients in the European Union acquire healthcare-associated infections (HAIs) or nosocomial infections each year, with around 37,000 deaths directly resulting from these infections,... Read more
Copyright © 2000-2026 Globetech Media. All rights reserved.