This work highlights, for the first time, the role of S-NO in the regulation of a chromatin modifier, i.e. KDM1a, particularly in EC, during tissue regeneration. My findings also suggest that S-NO could be modulated in EC after injury.
My discoveries could have a great impact to the society’s wellbeing, that will emerge at short and long term. At short term, within the next 10-15 years, it could lead to novel therapeutic applications in cardiovascular diseases, through the development of new drugs, or improve the efficacy of drugs currently available, and antibody-based therapeutics. This immediately reminds to the immunotherapies that currently use monoclonal antibodies designed regardless of the protein modifications. Posttranslational modifications (PTMs) of drug targets or of the drugs themselves are important for the efficacy of the drugs, depending on the mechanism of action. New antibody-mediated therapies could be based upon PTMs antibodies, including, for example, S-nitrosylation. Over the long term, the project could lead to new diagnostic tools and disease biomarkers. For example, the S-nitrosylation pattern could be specific for each individual but also for the populations, and could encompass PTM marks that could represent risk factors for certain disease. Modulating the expression and/or activity of chromatin modifiers to increase phenotypic plasticity could open new experimental and clinical strategies for vascular regeneration in humans.
As a side, but important, aspect, the intellectual property (IP) will protect my discoveries and will give me the time to develop and produce new drugs and perform clinical trials. Commercial exploitation and IP protection will also be assessed.