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Programmable Peptide DNA Hybrids - Potential Game Changer In Tissue Engineering Technology

by Dr. Lakshmi Venkataraman on July 12, 2017 at 4:32 PM
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Highlights:

Novel programmable peptide-DNA technology simulates dynamic cell-extracellular matrix interactions that take place within the living cell and holds a lot of promise in treating Parkinson's disease, stroke, arthritis and several diseases that require tissue regeneration, even more effectively in the future. This exciting research done at North-western University appears in Nature Communications.


"It's important in the context of cell therapies for people to cure these diseases or regenerate tissues that are no longer functional," said senior author Samuel I. Stupp, director of Northwestern's Simpson Querrey Institute for BioNanotechnology and Board of Trustees Professor of Materials Science and Engineering, Chemistry, Medicine and Biomedical Engineering.

Peptide-DNA Programmable Hybrids - What Is New?

If we take a look at what happens inside the cells within our body, there is constant cell signaling going on that instructs the cell to synthesize or stop synthesis of specific proteins, for injured cells to repair and regenerate, by multiplying and undergoing specific changes, and several complex processes occurring simultaneously. All these are, in fact, orchestrated by genes that are turned on or turned off as appropriate (dynamic nature of cell) to maintain the tissues and the body in a physiological state of balance and homeostasis.

‘Peptide-DNA technique provides opportunities to further study and understand complex cell-matrix interactions and design dynamic and futuristic bio-engineering materials’

In the living cell, in fact, the extracellular matrix controls the various aspects of cell signalling including its dynamic nature, its location within the cell is one of managing multiple synergistic signals that direct various cell behaviors. This kind of a dynamic matrix or bio-material has been virtually impossible to replicate in tissue engineering thus far.

The current study aims to address this problem and create smart bio-materials that are able to control the signal characteristics, and promise to take tissue engineering technology and its applications to an entirely new level and more effectively, innovatively and rationally treat several diseases in the future.

To achieve this, the study team employed DNA which is a good candidate since it can be programmed to deliver specific signals to cells and also be covalently bound to other molecules as we will see below.

Peptide-DNA Technology In Tissue Engineering - How It Works

"People would love to have cell therapies that utilize stem cells derived from their own bodies to regenerate tissue," Stupp said. "In principle, this will eventually be possible, but one needs procedures that are effective at expanding and differentiating cells in order to do so. Our technology does that."

What Are Neurospheres?

The study team also reports that neural stem cells in the spinal cord, initially grouped into structures known as "neurospheres," can be made to migrate out and differentiate using specific signals. But when this signal is switched off, the cells spontaneously re-group themselves back into colonies.

This observation of neurospheres behavior was made possible by their dynamic p-DNA platform, which would not have been possible if a persistent signal was applied continuously without reversal.

More research into such cell types may provide understanding and insight into the complex interplay between cells, and cell-matrix interactions that are critical for regeneration or development.

Scope Of Current Study

In conclusion, DNA conjugated to peptides and/or proteins shows great promise in regulating the key interactions between cells and their matrix environment. This platform addresses the challenge of controlling the dynamics of cellular activity on synthetic scaffolds, a major feature of extracellular matrix biology.

References:

  1. Ronit Freeman, Nicholas Stephanopoulos, Zaida �lvarez, Jacob A Lewis, Shantanu Sur, Chris M Serrano, Job Boekhoven, Sungsoo S. Lee, Samuel I. Stupp. Instructing cells with programmable peptide DNA hybrids. Nature Communications, 2017; 8: 15982 DOI: 10.1038/ncomms15982
  2. Source: Medindia

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