. (n.d.). The De Lecea Lab. https://med.stanford.edu/delecea/research.html
De Joussineau, C., Sahut-Barnola, I., Levy, I., Saloustros, E., Val, P., Stratakis, C. A., & Martinez, A. (2012). The cAMP pathway and the control of adrenocortical development and growth. Molecular and Cellular Endocrinology, 351(1), 28–36. https://doi.org/10.1016/j.mce.2011.10.006
Robben, J. H., Knoers, N. V. a. M., & Deen, P. M. (2004). Regulation of the vasopressin V2 receptor by vasopressin in polarized renal collecting duct cells. Molecular Biology of the Cell, 15(12), 5693–5699. https://doi.org/10.1091/mbc.e04-04-0337
B Young, C., Reddy, V., & Sonne, J. (2022). Neuroanatomy, Basal Ganglia. StatPearls. https://www.ncbi.nlm.nih.gov/books/NBK537141/
Báez-Mendoza, R., & Schultz, W. (2013). The role of the striatum in social behavior. Frontiers in Neuroscience, 7. https://doi.org/10.3389/fnins.2013.00233
Figure 1 Basal ganglia pathways for dorsal action selection circuit. a). . . (n.d.). ResearchGate. https://www.researchgate.net/figure/Basal-ganglia-pathways-for-dorsal-action-selection-circuit-a-Direct-b-Indirect_fig1_279059102
@neurochallenged. (n.d.). Know your brain: Ventral Tegmental area. @Neurochallenged. https://neuroscientificallychallenged.com/posts/know-your-brain-ventral-tegmental-area
Alcaro, A., Huber, R., & Panksepp, J. (2007). Behavioral functions of the mesolimbic dopaminergic system: An affective neuroethological perspective. Brain Research Reviews, 56(2), 283–321. https://doi.org/10.1016/j.brainresrev.2007.07.014
Salgado, S., & Kaplitt, M. G. (2015). The Nucleus Accumbens: A Comprehensive Review. Stereotactic and Functional Neurosurgery, 93(2), 75–93. https://doi.org/10.1159/000368279
Mariggiò, M. A., Palumbi, R., Vinella, A., Laterza, R., Petruzzelli, M. G., Peschechera, A., Gabellone, A., Gentile, O., Vincenti, A., & Margari, L. (2021). DRD1 and DRD2 receptor polymorphisms: genetic neuromodulation of the dopaminergic system as a risk factor for ASD, ADHD and ASD/ADHD overlap. Frontiers in Neuroscience, 15. https://doi.org/10.3389/fnins.2021.705890
Hawi, Z., Matthews, N., Wagner, J., Wallace, R. H., Butler, T., Vance, A., Kent, L., Gill, M., & Bellgrove, M. A. (2013). DNA Variation in the SNAP25 Gene Confers Risk to ADHD and Is Associated with Reduced Expression in Prefrontal Cortex. PLOS ONE, 8(4), e60274. https://doi.org/10.1371/journal.pone.0060274
Dopamine D1-Like receptor family signaling pathways. (n.d.). www.rndsystems.com. https://www.rndsystems.com/pathways/dopamine-d1-receptor-family-signaling-pathways
Jones-Tabah, J., Mohammad, H., Paulus, E. G., Clarke, P. B. S., & Hébert, T. E. (2022). The signaling and pharmacology of the dopamine D1 receptor. Frontiers in Cellular Neuroscience, 15. https://doi.org/10.3389/fncel.2021.806618
Bhatia, A. (2022, July 18). Biochemistry, dopamine receptors. StatPearls - NCBI Bookshelf. https://www.ncbi.nlm.nih.gov/books/NBK538242/
Kusko, R., Dreymann, J., Ross, J., Jin, Y., Escalante-Chong, R., Garcia-Miralles, M., Tan, L. J., Burczynski, M. E., Zeskind, B., Laifenfeld, D., Pouladi, M. A., Geva, M., Grossman, I., & Hayden, M. R. (2018). Large-scale transcriptomic analysis reveals that pridopidine reverses aberrant gene expression and activates neuroprotective pathways in the YAC128 HD mouse. Molecular Neurodegeneration, 13(1). https://doi.org/10.1186/s13024-018-0259-3
Nair, P. C., Chalker, J. M., McKinnon, R. A., Langmead, C. J., Gregory, K. J., & Bastiampillai, T. (2022). Trace Amine-Associated Receptor 1 (TAAR1): Molecular and clinical insights for the treatment of schizophrenia and related comorbidities. ACS Pharmacology & Translational Science, 5(3), 183–188. https://doi.org/10.1021/acsptsci.2c00016
Mink, J. W. (2018). Basal ganglia mechanisms in action selection, plasticity, and dystonia. European Journal of Paediatric Neurology, 22(2), 225–229. https://doi.org/10.1016/j.ejpn.2018.01.005
Choi, E. Y., Yeo, B. T., & Buckner, R. L. (2012). The organization of the human striatum estimated by intrinsic functional connectivity. Journal of Neurophysiology, 108(8), 2242–2263. https://doi.org/10.1152/jn.00270.2012
Hunnicutt, B. J., Jongbloets, B. C., Birdsong, W. T., Gertz, K. J., Zhong, H., & Mao, T. (2016). A comprehensive excitatory input map of the striatum reveals novel functional organization. eLife, 5. https://doi.org/10.7554/elife.19103
Sashitzky, I. (2019). “Go” and “NoGo.” Dana Foundation. https://www.dana.org/article/go-and-nogo/
Haber, S. N., Kim, K., Mailly, P., & Calzavara, R. (2006). Reward-Related Cortical Inputs Define a Large Striatal Region in Primates That Interface with Associative Cortical Connections, Providing a Substrate for Incentive-Based Learning. The Journal of Neuroscience, 26(32), 8368–8376. https://doi.org/10.1523/jneurosci.0271-06.2006
Day, J. J., & Carelli, R. M. (2007). The Nucleus Accumbens and Pavlovian reward learning. The Neuroscientist, 13(2), 148–159. https://doi.org/10.1177/1073858406295854
Yang, H., De Jong, J., YeEun, T., Peck, J. R., Bateup, H. S., & Lammel, S. (2018). Nucleus accumbens subnuclei regulate motivated behavior via direct inhibition and disinhibition of VTA dopamine subpopulations. Neuron, 97(2), 434-449.e4. https://doi.org/10.1016/j.neuron.2017.12.022
Alpha-Synuclein-based model for studying parkinsons disease pathology. (n.d.). www.rndsystems.com. https://www.rndsystems.com/resources/articles/alpha-synuclein-based-model-studying-parkinsons-disease-pathology
Curatolo, P., D’Agati, E., & Moavero, R. (2010). The neurobiological basis of ADHD. Italian Journal of Pediatrics, 36(1), 79. https://doi.org/10.1186/1824-7288-36-79
Blum, K., Chen, A. L. C., Braverman, E. R., Comings, D. E., Chen, T. J. H., Arcuri, V., Blum, S. H., Downs, B. W., Waite, R. L., Notaro, A., Lubar, J. F., Williams, L., Prihoda, T. J., Palomo, T., & Oscar-Berman, M. (2008). Attention-deficit-hyperactivity disorder and reward deficiency syndrome. Neuropsychiatric Disease and Treatment, 893. https://doi.org/10.2147/ndt.s2627
Jones-Tabah, J., D Martin, R., & J Chen, J. (2021). Dopamine D1 receptor activation and cAMP/PKA signalling mediate Brd4 recruitment to chromatin to regulate gene expression in rat striatal neurons. bioRxiv. https://doi.org/10.1101/2021.07.01.450754
Undieh, A. S. (2010). Pharmacology of signaling induced by dopamine D1-like receptor activation. Pharmacology & Therapeutics, 128(1), 37–60. https://doi.org/10.1016/j.pharmthera.2010.05.003
Fazio, L., Pergola, G., Papalino, M., Di Carlo, P., Monda, A., Franke, B., Amoroso, N., Tangaro, S., Rampino, A., Popolizio, T., Bertolino, A., & Blasi, G. (2018). Transcriptomic context of DRD1 is associated with prefrontal activity and behavior during working memory. Proceedings of the National Academy of Sciences of the United States of America, 115(21), 5582–5587. https://doi.org/10.1073/pnas.1717135115
Carr, G. V., Maltese, F., Sibley, D. R., Weinberger, D. R., & Papaleo, F. (2017). The dopamine D5 receptor is involved in working memory. Frontiers in Pharmacology, 8. https://doi.org/10.3389/fphar.2017.00666
Nielsen, O. B., & Overgaard, K. (1996). Ion gradients and contractility in skeletal muscle: the role of active Na+ , K+ transport. Acta Physiologica Scandinavica, 156(3), 247–256. https://doi.org/10.1046/j.1365-201x.1996.204000.x
Sonne, J. (2022, October 24). Neuroanatomy, substantia nigra. StatPearls - NCBI Bookshelf. https://www.ncbi.nlm.nih.gov/books/NBK536995/
Johansson, Y., & Silberberg, G. (2020). The Functional Organization of Cortical and Thalamic Inputs onto Five Types of Striatal Neurons Is Determined by Source and Target Cell Identities. Cell Reports, 30(4), 1178-1194.e3. https://doi.org/10.1016/j.celrep.2019.12.095
Zhang, Y., Pan, X., Wang, R., & Sakagami, M. (2016). Functional connectivity between prefrontal cortex and striatum estimated by phase locking value. Cognitive Neurodynamics, 10(3), 245–254. https://doi.org/10.1007/s11571-016-9376-2
Bahuguna, J., Aertsen, A., & Kumar, A. (2015). Existence and control of Go/No-Go decision transition threshold in the Striatum. PLOS Computational Biology, 11(4), e1004233. https://doi.org/10.1371/journal.pcbi.1004233
Schultz, W. (2016). Dopamine reward prediction error coding. Dialogues in Clinical Neuroscience, 18(1), 23–32. https://doi.org/10.31887/dcns.2016.18.1/wschultz
Klawonn, A. M., & Malenka, R. C. (2018). Nucleus accumbens modulation in reward and aversion. Cold Spring Harbor Symposia on Quantitative Biology, 83, 119–129. https://doi.org/10.1101/sqb.2018.83.037457
Al-Hasani, R., Gowrishankar, R., P Schmitz, G., E Pedersen, C., J Marcus, D., & E Shirley, S. (2021). Ventral tegmental area GABAergic inhibition of ventral accumbens shell cholinergic interneurons promotes reward reinforcement. Nat. Neurosci. https://doi.org/10.1038/s41593-021-00898-2
Nestler, E. J., Barrot, M., & Self, D. W. (2001). ΔFosB: A sustained molecular switch for addiction. Proceedings of the National Academy of Sciences of the United States of America, 98(20), 11042–11046. https://doi.org/10.1073/pnas.191352698
Hayman, V., & Fernandez, T. (2018). Genetic Insights into ADHD Biology. Frontiers in Psychiatry, 9. https://doi.org/10.3389/fpsyt.2018.00251
Kuc, K., Bielecki, M., Racicka-Pawlukiewicz, E., Czerwinski, M. B., & Cybulska-Klosowicz, A. (2020). The SLC6A3 gene polymorphism is related to the development of attentional functions but not to ADHD. Scientific Reports, 10(1). https://doi.org/10.1038/s41598-020-63296-x