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Just Bath Salts_Special Release_012

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Manage episode 183016707 series 1433931
Content provided by Just Science and RTI International. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Just Science and RTI International or their podcast platform partner. If you believe someone is using your copyrighted work without your permission, you can follow the process outlined here https://player.fm/legal.
Just Bath Salts In this special release episode of the 2017 NIJ R&D Symposium, Just Science interviews Lindsay Glicksberg, a student from Sam Houston State University. This is an excerpt from the abstract submitted by the guest, Lindsay Glicksberg explaining the research discussed in this episode: The ongoing proliferation of designer drugs present a variety of public health and safety concerns. Synthetic cathinones are capable of producing a variety of psychostimulant effects. According to the National Forensic Laboratory Information System (NFLIS), their use has escalated. Forensic laboratories must be able to identify these new drugs as part of antemortem and postmortem toxicology investigations. Due to limitations in immunoassay-based screening technologies, many forensic toxicology laboratories must rely on chromatographic-based screening approaches in order to detect these drugs in biological evidence. The detection of drugs is heavily dependent upon the stability of the drug in biological matrices, information that is relatively limited for synthetic cathinones. This research presents a validated method for the quantification of twenty- two synthetic cathinones in urine and blood using liquid chromatography/quadrupole time of flight mass spectrometry (LC/Q-TOF-MS). The validated method was used to systematically evaluate the stability of synthetic cathinones in blood and urine over a six-month period. Drug stability was assessed in terms of pH, temperature, matrix, concentration-dependence and chemical properties. This episode is funded by the National Institute of Justice's Forensic Technology Center of Excellence.
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299 episodes

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Just Bath Salts_Special Release_012

Just Science

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Manage episode 183016707 series 1433931
Content provided by Just Science and RTI International. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Just Science and RTI International or their podcast platform partner. If you believe someone is using your copyrighted work without your permission, you can follow the process outlined here https://player.fm/legal.
Just Bath Salts In this special release episode of the 2017 NIJ R&D Symposium, Just Science interviews Lindsay Glicksberg, a student from Sam Houston State University. This is an excerpt from the abstract submitted by the guest, Lindsay Glicksberg explaining the research discussed in this episode: The ongoing proliferation of designer drugs present a variety of public health and safety concerns. Synthetic cathinones are capable of producing a variety of psychostimulant effects. According to the National Forensic Laboratory Information System (NFLIS), their use has escalated. Forensic laboratories must be able to identify these new drugs as part of antemortem and postmortem toxicology investigations. Due to limitations in immunoassay-based screening technologies, many forensic toxicology laboratories must rely on chromatographic-based screening approaches in order to detect these drugs in biological evidence. The detection of drugs is heavily dependent upon the stability of the drug in biological matrices, information that is relatively limited for synthetic cathinones. This research presents a validated method for the quantification of twenty- two synthetic cathinones in urine and blood using liquid chromatography/quadrupole time of flight mass spectrometry (LC/Q-TOF-MS). The validated method was used to systematically evaluate the stability of synthetic cathinones in blood and urine over a six-month period. Drug stability was assessed in terms of pH, temperature, matrix, concentration-dependence and chemical properties. This episode is funded by the National Institute of Justice's Forensic Technology Center of Excellence.
  continue reading

299 episodes

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