Articles

True relief with sustained release for largely unmet neurological problem

SurModics and Edge Therapeutics team up to develop sustained-release, site-specific neurological to fend off complications after subarachnoid hemorrhage
Written byJeffrey Bouley
| 3 min read

NEWARK, N.J.—Edge Therapeutics Inc., a specialty biopharmaceutical company that transforms proven, off-patent drugs into targeted, locally delivered therapies for neurological disorders, and SurModics Inc., a provider of drug delivery and surface modification technologies, announced in early November an exclusive worldwide licensing agreement to develop a biodegradable, site-specific, sustained-release formulation (NimoGel, EG-1961) for the potential treatment of delayed cerebral ischemia (DCI).

The relationship goes back to July, when Edge announced a feasibility collaboration with Eden Prairie, Minn.-based SurModics to develop a drug delivery technology for addressing DCI, a complication that often occurs hours to days following subarachnoid hemorrhage (SAH), which is typically the result of a ruptured brain aneurysm or head trauma. Brian A. Leuthner, president and CEO of Edge Therapeutics, cites SurModics' technical experience, depth of capabilities and world-class cGMP manufacturing facility as key reasons for choosing it as a collaborator.

To continue reading this article, subscribe for FREE toDrug Discovery News Logo

Subscribe today to keep up to date with the latest advancements and discoveries in drug development achieved by scientists in pharma, biotech, non-profit, academic, clinical, and government labs.

Add Drug Discovery News as a preferred source on Google

Add Drug Discovery News as a preferred Google source to see more of our trusted coverage.

About the Author

Here are some related topics that may interest you:

Subscribe to Newsletter

Subscribe to our eNewsletters

Stay connected with all of the latest from Drug Discovery News.

Subscribe

Sponsored

3D illustration of a single cell surrounded by small molecular particles in a red biological environment.
Measuring mRNA and protein together at single cell resolution can uncover tumor-specific signaling activity and immune features.
Illustration of an antibody intertwined with a DNA double helix.
Discover how CRISPR and single-cell RNA sequencing can connect disease-associated variants to regulatory elements, genes, and pathways.
Digital illustration of the human digestive system highlighting the liver, stomach, and intestines.
Explore how human gut-liver models can improve the translation of preclinical findings into clinical pharmacokinetic predictions.