Matthew S Scarnati - Publications
Affiliations: | Child Health Institute at Rutgers Robert Wood Johnson Medical School |
Area:
AddictionYear | Citation | Score | |||
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2020 | Scarnati MS, Boreland AJ, Joel M, Hart RP, Pang ZP. Differential sensitivity of human neurons carrying μ opioid receptor (MOR) N40D variants in response to ethanol. Alcohol (Fayetteville, N.Y.). PMID 32561311 DOI: 10.1016/J.Alcohol.2020.05.004 | 0.434 | |||
2020 | Halikere A, Popova D, Scarnati MS, Hamod A, Swerdel MR, Moore JC, Tischfield JA, Hart RP, Pang ZP. Modelling the single most common SNP in OPRM1 (A118G) using human neurons generated from two sets of independently targeted isogenic stem cell lines. Molecular Psychiatry. 25: 1355. PMID 32555342 DOI: 10.1038/S41380-020-0799-0 | 0.534 | |||
2020 | Scarnati MS, Clarke SG, Pang ZP, Paradiso KG. Presynaptic Calcium Channel Open Probability and Changes in Calcium Influx Throughout the Action Potential Determined Using AP-Waveforms. Frontiers in Synaptic Neuroscience. 12: 17. PMID 32425764 DOI: 10.3389/Fnsyn.2020.00017 | 0.455 | |||
2019 | Halikere A, Popova D, Scarnati MS, Hamod A, Swerdel MR, Moore JC, Tischfield JA, Hart RP, Pang ZP. Addiction associated N40D mu-opioid receptor variant modulates synaptic function in human neurons. Molecular Psychiatry. PMID 31481756 DOI: 10.1038/S41380-019-0507-0 | 0.63 | |||
2018 | Scarnati MS, Kataria R, Biswas M, Paradiso KG. Active presynaptic ribosomes in the mammalian brain, and altered transmitter release after protein synthesis inhibition. Elife. 7. PMID 30375975 DOI: 10.7554/Elife.36697 | 0.359 | |||
2018 | Scarnati MS, Halikere A, Pang ZP. Using human stem cells as a model system to understand the neural mechanisms of alcohol use disorders: Current status and outlook. Alcohol (Fayetteville, N.Y.). PMID 30087005 DOI: 10.1016/J.Alcohol.2018.03.008 | 0.585 | |||
2016 | Clarke SG, Scarnati MS, Paradiso KG. Neurotransmitter Release Can Be Stabilized by a Mechanism That Prevents Voltage Changes Near the End of Action Potentials from Affecting Calcium Currents. The Journal of Neuroscience : the Official Journal of the Society For Neuroscience. 36: 11559-11572. PMID 27911759 DOI: 10.1523/Jneurosci.0066-16.2016 | 0.383 | |||
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