DASB
DASB, also known as 3-amino-4-(2-dimethylaminomethylphenylsulfanyl)-benzonitrile, is a compound that binds to the serotonin transporter. Labeled with carbon-11 — a radioactive isotope — it has been used as a radioligand in neuroimaging with positron emission tomography (PET) since around year 2000.[1] In this context it is regarded as one of the superior radioligands for PET study of the serotonin transporter in the brain,[2] since it has high selectivity for the serotonin transporter.[3]
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Formula | C16H17N3S |
Molar mass | 283.39 g·mol−1 |
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The DASB image from a human PET scan shows high binding in the midbrain, thalamus and striatum, moderate binding in the medial temporal lobe and anterior cingulate, and low binding in neocortex. The cerebellum is often regarded as a region with no specific serotonin transporter binding and the brain region is used as a reference in some studies.[4]
Since the serotonin transporter is the target of SSRIs used in the treatment of major depression it has been natural to examine DASB binding in depressed patients. Several such research studies have been performed.[5]
There are a number of alternative PET radioligands for imaging the serotonin transporter: [11C]ADAM, [11C]MADAM, [11C]AFM, [11C]DAPA, [11C]McN5652, and [11C]-NS 4194. A related molecule to DASB, that can be labeled with fluorine-18, has also been suggested as a PET radioligand.[6] With single-photon emission computed tomography (SPECT) using the radioisotope iodine-123 there are further radioligands available: [123I]ODAM, [123I]IDAM, [123I]ADAM,[7] and [123I]β-CIT.[2] A few studies have examined the difference in binding between the radioligands in nonhuman primates,[8][9] as well as in pigs.[10]
Other compounds that can be labeled to work as PET radioligands for the study of the serotonin system are, e.g., altanserin and WAY-100635.
Methodological issues
The binding potential of DASB can be estimated with kinetic modeling on a series of brain scans.[11]
A test-retest reproducibility PET study indicates that [11C]DASB can be used to measure the serotonin transporter parameters with high reliability in receptor-rich brain regions.[4]
When the DASB neuroimages are analyzed the kinetic models suggested by Ichise and coworkers[12] can be employed to estimate the binding potential. A test-retest reproducibility experiment has been performed to evaluate this approach.[13]
Studies
Besides the studies listed below a few occupancy studies have been reported.[5]
What | Result | Subjects | Ref. |
---|---|---|---|
5-HTTLPR LALA serotonin transporter genotype | Increase in putamen | 43/30 | [14] |
5-HTTLPR LALA serotonin transporter genotype | Increase in midbrain | 19 | [15] |
5-HTTLPR LALA serotonin transporter genotype | No difference | 63 | [16] |
Age | No effect found | [17] ([2]) | |
Body mass index | Inverse correlation (?) | ? | [18] |
Seasonality | Higher in winter in putamen and caudate | 54 | [19] |
Seasonality | Higher in fall and winter | 88 | [20] |
NEO PI-R Neuroticism | Positive correlation in thalamus | 31 males | [21] |
Disease | |||
Depressed during major depressive episodes | No difference found | 20+20 | [17] |
Depressed with highly negativistic "dysfunctional attitudes" during major depressive episodes | Increase in prefrontal cortex, anterior cingulate, thalamus, bilateral caudate, and bilateral putamen | 20(?)+20 | [17] |
Recovered depressed patients | No difference found | 24+20 males | [22] |
Unipolar depression | Increase in thalamus, insula and striatum | 18+34 | [23] |
Unmedicated unipolar major depression | Reduced 5-HTT availability in the thalamus | [24] | |
TCI anxiety in unmedicated unipolar major depression | Reduced 5-HTT availability in the thalamus, midbrain and amygdala | [24] | |
Bipolar depression | Increase in thalamus, insula and striatum | 18+34 | [23] |
Bipolar depression | Decrease in midbrain, amygdala, hippocampus, thalamus, putamen, and anterior cingulate cortex | 18+41 | [25] |
Obsessive compulsive disorder | Reduction and correlation with severity in thalamus and midbrain | 9+19 | [26] |
Alcoholism | No significant alteration | 30 + 18 | [27] |
Parkinson's disease | Reduction in forebrain | 5+8 | [28] |
Non-depressed Parkinson's disease | Decreased binding in caudate, midbrain, putamen, orbitofrontal cortex and (non-significantly) dorsolateral prefrontal cortex | [29] | |
Depressed Parkinson's disease patients | Increase in prefrontal and dorsolateral cortices | 7+7 | [30] |
Drug/intervention | |||
Abstinent MDMA ('Ecstasy') users | Global reduction | 23+19 | [31] |
Former MDMA users and polydrug users | No significant difference in brain regions examined | 12+9+19 | [32] |
Reduced synaptic serotonin (by rapid tryptophan depletion) | (small reduction in binding potential) | 8 | [33] |
Lowering of brain serotonin (by acute tryptophan depletion) | No change observed | 25 (14) | [34] |
References
- S. Houle; N. Ginovart; D. Hussey; J.H. Meyer; A.A. Wilson (October 2000). "Imaging the serotonin transporter with positron emission tomography: initial human studies with [11C]DAPP and [11C]DASB". European Journal of Nuclear Medicine and Molecular Imaging. 27 (11): 1719–22. doi:10.1007/s002590000365. PMID 11105830. S2CID 18932686.
- Peter Brust; Swen Hess; Ulrich Müller; Zsolt Szabo (February 2006). "Neuroimaging of the Serotonin Transporter — Possibilities and Pitfalls" (PDF). Current Psychiatry Reviews. 2 (1): 111–149. doi:10.2174/157340006775101508. Archived from the original (PDF) on 2011-07-23. Retrieved 2008-01-23.
- Alan A. Wilson; Nathalie Ginovart; Doug Hussey; Jeff Meyer; Sylvain Houle (July 2002). "In vitro and in vivo characterisation of [11C]-DASB: a probe for in vivo measurements of the serotonin transporter by positron emission tomography". Nuclear Medicine and Biology. 29 (5): 509–515. doi:10.1016/S0969-8051(02)00316-5. PMID 12088720.
- W. Gordon Frankle; Mark Slifstein; Roger N. Gunn; Yiyun Huang; Dah-Ren Hwang; E. Ashlie Darr; Rajesh Narendran; Marc Laruelle (May 1, 2006). "Estimation of Serotonin Transporter Parameters with 11C-DASB in Healthy Humans: Reproducibility and Comparison of Methods". Journal of Nuclear Medicine. 47 (5): 815–826. PMID 16644752.
- Jeffrey H. Meyer (March 2007). "Imaging the serotonin transporter during major depressive disorder and antidepressant treatment". Journal of Psychiatry & Neuroscience. 32 (2): 86–102. PMC 1810585. PMID 17353938.
- Sudha Garg; Shankar R. Thopate; Richard C. Minton; Kimberly W. Black; Andrew J. H. Lynch; Pradeep K. Garg (September–October 2007). "3-Amino-4-(2-((4-[18F]fluorobenzyl)methylamino)methylphenylsulfanyl)benzonitrile, an F-18 fluorobenzyl analogue of DASB: synthesis, in vitro binding, and in vivo biodistribution studies". Bioconjug. Chem. 18 (5): 1612–1618. doi:10.1021/bc070112g. PMID 17705553.
- Oya S, Choi SR, Hou C, et al. (April 2000). "2-((2-((dimethylamino)methyl)phenyl)thio)-5-iodophenylamine (ADAM): an improved serotonin transporter ligand". Nucl. Med. Biol. 27 (3): 249–54. doi:10.1016/s0969-8051(00)00084-6. PMID 10832081.
- Zsolt Szabo; Una D. McCann; Alan A. Wilson; Ursula Scheffel; Taofeek Owonikoko; William B. Mathews; Hayden T. Ravert; John Hilton; Robert F. Dannals; George A. Ricaurte (May 1, 2002). "Comparison of (+)-11C-McN5652 and 11C-DASB as Serotonin Transporter Radioligands Under Various Experimental Conditions". Journal of Nuclear Medicine. 43 (5): 678–692. PMC 2078607. PMID 11994534.
- Yiyun Huang, Dah-Ren Hwang, Raj Narendran, Yasuhiko Sudo, Rano Chatterjee, Sung-A Bae, Osama Mawlawi, Lawrence S. Kegeles, Alan A. Wilson, Hank F. Kung and Marc Laruelle (2002). "Comparative Evaluation in Nonhuman Primates of Five PET Radiotracers for Imaging the Serotonin Transporters: [11C]McN 5652, [11C]ADAM, [11C]DASB, [11C]DAPA, and [11C]AFM". Journal of Cerebral Blood Flow & Metabolism. 22 (11): 1377–1398. doi:10.1097/00004647-200211000-00011. PMID 12439295.
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- Nathalie Ginovart, Alan A. Wilson, Jeffrey H. Meyer, Doug Hussey and Sylvain Houle (2001). "Positron Emission Tomography Quantification of [11C]-DASB Binding to the Human Serotonin Transporter: Modeling Strategies". Journal of Cerebral Blood Flow & Metabolism. 21 (11): 1342–1353. doi:10.1097/00004647-200111000-00010. PMID 11702049.
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