Cardiovascular Research
Exploring Mitochondrial Function and Cardiovascular Research
The cardiovascular system has a constant requirement for optimal energy to fuel its function. Mitochondria not only generates adenosine triphosphate (ATP), the cellular energy currency, but regulates cell function. Mitochondrial dysfunction, in addition to increased oxidative stress, has been linked to cardiovascular diseases. Agilent Cell Analysis technology is an integral part of a cardiovascular research strategy, enabling researchers to uncover novel insights into cellular mechanisms.
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Click to search either the Agilent Cell Analysis Publications Database or the Cell Reference Database
For Research Use Only. Not for use in diagnostic procedures.
Assessing functional metabolism using cells sourced from blood
- PDF/ Found In: Application Notes
- Date : 04 Jan 2017
- File Size : 643.12 KB
Measuring glycolytic function in cells
- PDF/ Found In: Application Notes
- Date : 08 Mar 2017
- File Size : 1.07 MB
- Application Notes
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Analysis of Phosphorylated STAT Protein Signaling in Lymphocytes Using Flow Cytometry
Examines the phosphorylation of signal transducer and activator of transcription (STAT) proteins in response to cytokine stimulation using a phosphoflow technique.
- Application Notes
- English
- 27 Nov 2019
- 1.13 MB
Measuring glycolytic function in cells
Real-time, kinetic measurement of glycolysis connects energy pathways to cell growth and proliferation
- Application Notes
- English
- 08 Mar 2017
- 1.07 MB
Identifying Metabolic Switches Using an Agilent Seahorse XFe Analyzer in Hypoxia
Identifying Metabolic Phenotype Switches in Cancer Cells Using the Agilent Seahorse XF/XFe Analyzer in an Hypoxic Environment
- Application Notes
- English
- 03 Jan 2017
- 744.28 KB
Measuring Fatty Acid Oxidation with the Seahorse XF Analyzer of Exogenous and Endogenous Fatty Acids Using the XF Palmitate-BSA FAO Substrate with the Agilent Seahorse XF Cell Mito Stress Test
Measuring Oxidation of Exogenous and Endogenous Fatty Acids Using the XF Palmitate-BSA FAO Substrate with the Agilent Seahorse XF Cell Mito Stress Test
- Application Notes
- English
- 22 Dec 2016
- 1.13 MB
UHPLC-MS/MS Triple Quadrupole Analysis of Anthocyanin Metabolites in Human Plasma
Anthocyanins are studied in human dosing of strawberry drink by LC/QQQ at low levels in plasma. SPE is to be superior for sample prep and conditions are given.
- Application Notes
- English
- 04 Mar 2016
- 303.27 KB
SNPing in and out of the stem cell genome with CRISPR/Cas9 to investigate cardiovascular disease
In this webinar, Dr. Chris Denning discusses short stories around his research, particularly around the use of Cas9/CRISPR to modify the genome of hiPSC-CMs, along with applications of Agilent Seahorse XF and CardioECR to understand more about disease and variation in the human population. Cardiomyocytes derived from human pluripotent stem cells (hPSC-CMs) provide a powerful tool for modelling impact of disease and drugs on structure and function. The presentation will also provide early data on the use of Cas9/CRISPR reporter lines to conduct large scale screens of compounds that may be useful in inducing cardiomyocyte maturation.
Mitochondrial Profiling in Cells Under Physiological Conditions and In Response to Stress
A particularly useful and straight-forward protocol has been to add in series an inhibitor of the ATP synthase (oligomycin), an uncoupler (FCCP) and a respiratory chain inhibitor (antimycin or rotenone) to obtain mitochondrial profile of cells under basal and stressed conditions.
Importance of the Mitochondrial Reserve Capacity in Cardiovascular Cells Exposed to Oxidative Stress.
Reactive oxygen and nitrogen species are part of normal metabolism and play prominent roles in cardiovascular (patho) physiology. Interestingly, these reactive species or their secondary products covalently modify proteins, thereby modulating enzyme function or eliciting redox signaling. Mitochondria, in particular, are prominent sources of such reactive species and are hotspots for oxidative protein modifications.
Energy Pathways Video
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