We present a comprehensive electronic structure analysis of two BN isosteres of indole using a combined UV-photoelectron spectroscopy (UV-PES)/computational chemistry approach. Gas-phase He I photoelectron spectra of external BN indole I and fused BN indole II have been recorded, assessed by density functional theory calculations, and compared with natural indole. The first ionization energies of these indoles are natural indole (7.9 eV), external BN indole I (7.9 eV), and fused BN indole II (8.05 eV). The computationally determined molecular dipole moments are in the order: natural indole (2.177 D) > fused BN indole II (1.512 D) > external BN indole I (0.543 D). The λmax in the UV-vis absorption spectra are in the order: fused BN indole II (292 nm) > external BN indole I (282 nm) > natural indole (270 nm). The observed relative electrophilic aromatic substitution reactivity of the investigated indoles with dimethyliminium chloride as the electrophile is as follows: fused BN indole II > natural indole > external BN indole I, and this trend correlates with the π-orbital coefficient at the 3-position. Nucleus-independent chemical shifts calculations show that the introduction of boron into an aromatic 6π-electron system leads to a reduction in aromaticity, presumably due to a stronger bond localization. Trends and conclusions from BN isosteres of simple monocyclic aromatic systems such as benzene and toluene are not necessarily translated to the bicyclic indole core. Thus, electronic structure consequences resulting from BN/CC isosterism will need to be evaluated individually from system to system.
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http://dx.doi.org/10.1021/ja5063899 | DOI Listing |
Am J Psychiatry
January 2025
Department of Psychiatry and Behavioral Sciences (Fonzo, Barksdale, Nemeroff) and Center for Psychedelic Research and Therapy (Fonzo, Nemeroff), University of Texas at Austin Dell Medical School, Austin; Institute for Early Life Adversity Research, University of Texas at Austin, Austin (Fonzo, Nemeroff); Department of Behavioral Health, Walter Reed National Military Medical Center, Bethesda, MD (Wolfgang); Department of Psychiatry, Uniformed Services University of the Health Sciences, Bethesda, MD (Wolfgang); Department of Psychiatry, Yale University School of Medicine, New Haven, CT (Wolfgang, Krystal); Butler Hospital, Department of Psychiatry and Human Behavior, Warren Alpert Medical School, Brown University, Providence, RI (Carpenter); Department of Psychiatry and Behavioral Neurobiology, Heersink School of Medicine, University of Alabama at Birmingham, Birmingham (Kraguljac); Department of Psychiatry and Biobehavioral Sciences, David Geffen School of Medicine, UCLA, Los Angeles (Grzenda); Department of Psychiatry and Behavioral Sciences, Emory University School of Medicine, Atlanta (McDonald); Department of Psychiatry and Behavioral Sciences, University of Minnesota, Minneapolis (Widge); Department of Psychiatry and Behavioral Sciences, Stanford University, Stanford, CA (Rodriguez); Veterans Affairs Palo Alto Health Care System, Palo Alto, CA (Rodriguez).
Objective: The authors critically examine the evidence base for psilocybin administered with psychological support/therapy (PST) in the treatment of psychiatric disorders and offer practical recommendations to guide future research endeavors.
Methods: PubMed was searched for English-language articles from January 1998 to November 2023, using the search term "psilocybin." A total of 1,449 articles were identified and screened through titles and abstracts.
Commun Chem
December 2024
Department of Chemistry, The University of Manchester, Manchester, UK.
Energy-efficient and deep-blue organic light-emitting diode (OLED) with long operating stability remains a key challenge to enable a disruptive change in OLED display and lighting technology. Part of the challenge is associated with a very narrow choice of the robust host materials having over 3 eV triplet energy level to facilitate efficient deep-blue emission and deliver excellent performance in the OLED device. Here we show the molecular design of new 1,3,5-oxadiazines (NON)-host materials with high triplet energy over 3.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
December 2024
Ruprecht Karls Universitat Heidelberg, Organisch-Chemisches Institut, Im Neuenheimer Feld 270, 69120, Heidelberg, GERMANY.
Among the nucleophilic oxidants employed in the gold-catalysed oxidation of alkynes, sulphur-based reagents have played a substantial role since the beginning, granting access to the respective gold carbene intermediates. Herein, we describe the first example of the substance class of sulfoximines being used as atom transfer reagents to alkynes in gold catalysis. Based on the transformation of N-(2-alkynylphenyl) sulfoximines to 3H-indol-3-ones, it is demonstrated that the sulfoximine functionality is capable of selectively transferring first its nitrogen moiety to the alkyne, forming the α-imino gold carbene, which is then oxidised by the released sulfoxide moiety in a second step via a pseudo-intramolecular mechanism - a distinctive feature that differentiates this work mechanistically from earlier studies.
View Article and Find Full Text PDFChem Commun (Camb)
January 2025
Shanghai Key Laboratory of Functional Materials Chemistry, Key Laboratory for Advanced Materials, School of Chemistry and Molecular Engineering, East China University of Science & Technology, Shanghai 200237, China.
An efficient protocol was reported for the synthesis of 2-trifluoromethyl indoles through visible-light-promoted intermolecular cyclization of sulfoxonium ylides with azides, without the need for external photocatalysts, transition metals, or bases. The formation of 2-trifluoromethyl indoles involves an intriguing cascade process including azide rearrangement, intermolecular nucleophilic addition, and visible-light-promoted cyclization of a key intermediate. The protocol features high efficiency, mild conditions, excellent substrate compatibility and good regioselectivity.
View Article and Find Full Text PDFMolecules
November 2024
Department of Biotechnology and Physical Chemistry, Faculty of Chemical Engineering and Technology, Cracow University of Technology, Warszawska 24 Street, 31-155 Cracow, Poland.
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