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Updated: May 22, 2026

Imaging Approaches to Assessments of Toxicological Oxidative Stress Using Genetically-encoded Fluorogenic Sensors
Published on: February 7, 2018
Cardiovascular redox and ox stress proteomics
Vikas Kumar1, Timothy Dean Calamaras, Dagmar Haeussler
1Vascular Biology Section, Whitaker Cardiovascular Institute, Boston University School of Medicine, Boston, MA 02118, USA.
Significance:
Oxidative post-translational modifications (OPTMs) have been demonstrated as contributing to cardiovascular physiology and pathophysiology. These modifications have been identified using antibodies as well as advanced proteomic methods, and the functional importance of each is beginning to be understood using transgenic and gene deletion animal models. Given that OPTMs are involved in cardiovascular pathology, the use of these modifications as biomarkers and predictors of disease has significant therapeutic potential. Adequate understanding of the chemistry of the OPTMs is necessary to determine what may occur in vivo and which modifications would best serve as biomarkers.
Recent Advances:
By using mass spectrometry, advanced labeling techniques, and antibody identification, OPTMs have become accessible to a larger proportion of the scientific community. Advancements in instrumentation, database search algorithms, and processing speed have allowed MS to fully expand on the proteome of OPTMs. In addition, the role of enzymatically reversible OPTMs has been further clarified in preclinical models.
Critical Issues:
The identification of OPTMs suffers from limitations in analytic detection based on the methodology, instrumentation, sample complexity, and bioinformatics. Currently, each type of OPTM requires a specific strategy for identification, and generalized approaches result in an incomplete assessment.
Future Directions:
Novel types of highly sensitive MS instrumentation that allow for improved separation and detection of modified proteins and peptides have been crucial in the discovery of OPTMs and biomarkers. To further advance the identification of relevant OPTMs in advanced search algorithms, standardized methods for sample processing and depository of MS data will be required.
Insights
Oxidative post-translational modifications (OPTMs) impact cardiovascular health and disease. Understanding OPTMs is key to developing new biomarkers for cardiovascular pathology and potential therapies.
Area of Science:
- Biochemistry
- Cardiovascular Biology
- Proteomics
Background:
- Oxidative post-translational modifications (OPTMs) play roles in cardiovascular physiology and pathophysiology.
- Advanced proteomic methods, including mass spectrometry (MS) and antibody identification, have increased accessibility to studying OPTMs.
- Preclinical models are clarifying the roles of enzymatically reversible OPTMs.
Purpose of the Study:
- To summarize recent advances in the identification and understanding of OPTMs.
- To highlight critical issues and limitations in current OPTM identification methodologies.
- To outline future directions for advancing OPTM research and biomarker discovery.
Main Methods:
- Mass spectrometry (MS) with advanced labeling techniques.
- Antibody-based identification methods.
- Utilizing transgenic and gene deletion animal models.
Main Results:
- OPTMs are involved in cardiovascular health and disease.
- Current identification methods for OPTMs face analytical limitations.
- Novel MS instrumentation has been crucial for discovering OPTMs and biomarkers.
Conclusions:
- OPTMs have significant potential as cardiovascular disease biomarkers and therapeutic targets.
- Standardized methods for sample processing and MS data deposition are needed.
- Further understanding of OPTM chemistry is essential for biomarker development.
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