↑Jamieson CS, Misa J, Tang Y, Billingsley JM (2021-04-29). "Biosynthesis and synthetic biology of psychoactive natural products". Chemical Society Reviews. 50 (12): 6950–7008. doi:10.1039/D1CS00065A. ISSN0306-0012. PMC8217322. PMID33908526. There are three main ergot alkaloid classes, clavines, ergoamides (lysergamides), and ergopeptides, with [LSD] belonging to the ergoamide class. 2.5 Lysergic acid and LSD, page 6970
↑Wong G, Lim LR, Tan YQ, Go MK, Bell DJ, Freemont PS, etal. (2022-02-07). "Reconstituting the complete biosynthesis of D-lysergic acid in yeast". Nature Communications. 13 (1): 712. Bibcode:2022NatCo..13..712W. doi:10.1038/s41467-022-28386-6. ISSN2041-1723. PMC8821704. PMID35132076. The ergot alkaloids are broadly classified into three groups—the clavines, ergoamides, and the ergopeptines, all of which are distinguished by the different modifications appended to the core ergoline structure. Results and discussion § Biosynthetic resolution of the ergot alkaloid pathway
↑St Germaine D (2023-12-14). "Psychedelic Therapies Webinar Highlights". Cayman Chemical News & Announcements. Retrieved 2025-08-06. More recently, ergot alkaloids, in particular ergoamides, also known as lysergic acid amides, have gained notoriety through their use as synthetic precursors for lysergic acid diethylamide (LSD).
↑Uhlig S, Rangel-Huerta OD, Divon HH, Rolén E, Pauchon K, Sumarah MW, etal. (2021-06-30). "Unraveling the Ergot Alkaloid and Indole Diterpenoid Metabolome in the Claviceps purpurea Species Complex Using LC–HRMS/MS Diagnostic Fragmentation Filtering". Journal of Agricultural and Food Chemistry. 69 (25): 7137–7148. doi:10.1021/acs.jafc.1c01973. ISSN0021-8561. The m/z 251, 223, and 208 series of ions is well-conserved across the ergoamides, ergopeptines, and their corresponding lactam variants and therefore are diagnostic for the detection of both known and unknown peptide ergot alkaloids (Figure 4). RESULTS AND DISCUSSION, page 7141
↑Lee K, Poudel YB, Glinkerman CM, Boger DL (2015). "Total synthesis of dihydrolysergic acid and dihydrolysergol: development of a divergent synthetic strategy applicable to rapid assembly of D-ring analogs". Tetrahedron. 71 (35): 5897–5905. doi:10.1016/j.tet.2015.05.093. PMC4528678. PMID26273113. Embedded in the structures of the ergot alkaloids are conformationally-restricted variants of the phenethylamine pharmacophores of both dopamine and related biogenic amines as well as that of serotonin.
12Hoffman AJ, Nichols DE (September 1985). "Synthesis and LSD-like discriminative stimulus properties in a series of N(6)-alkyl norlysergic acid N,N-diethylamide derivatives". Journal of Medicinal Chemistry. 28 (9): 1252–1255. doi:10.1021/jm00147a022. PMID4032428.
↑Huang X, Marona-Lewicka D, Pfaff RC, Nichols DE (March 1994). "Drug discrimination and receptor binding studies of N-isopropyl lysergamide derivatives". Pharmacology, Biochemistry, and Behavior. 47 (3): 667–673. doi:10.1016/0091-3057(94)90172-4. PMID8208787. S2CID16490010.
↑Watts VJ, Lawler CP, Fox DR, Neve KA, Nichols DE, Mailman RB (April 1995). "LSD and structural analogs: pharmacological evaluation at D1 dopamine receptors". Psychopharmacology. 118 (4): 401–409. doi:10.1007/BF02245940. PMID7568626. S2CID21484356.
12Nichols DE, Frescas S, Marona-Lewicka D, Kurrasch-Orbaugh DM (September 2002). "Lysergamides of isomeric 2,4-dimethylazetidines map the binding orientation of the diethylamide moiety in the potent hallucinogenic agent N,N-diethyllysergamide (LSD)". Journal of Medicinal Chemistry. 45 (19): 4344–4349. doi:10.1021/jm020153s. PMID12213075.
↑Schiff PL (October 2006). "Ergot and its alkaloids". American Journal of Pharmaceutical Education. 70 (5): 98. doi:10.5688/aj700598 (inactive 6 July 2025). PMC1637017. PMID17149427.{{cite journal}}: CS1 maint: DOI inactive as of July 2025 (link)
↑Passie T, Halpern JH, Stichtenoth DO, Emrich HM, Hintzen A (2008). "The pharmacology of lysergic acid diethylamide: a review". CNS Neuroscience & Therapeutics. 14 (4): 295–314. doi:10.1111/j.1755-5949.2008.00059.x. PMC6494066. PMID19040555.
↑Brandt SD, Kavanagh PV, Westphal F, Stratford A, Elliott SP, Hoang K, etal. (September 2016). "Return of the lysergamides. Part I: Analytical and behavioural characterization of 1-propionyl-d-lysergic acid diethylamide (1P-LSD)". Drug Testing and Analysis. 8 (9): 891–902. doi:10.1002/dta.1884. PMC4829483. PMID26456305.
↑Brandt SD, Kavanagh PV, Westphal F, Elliott SP, Wallach J, Colestock T, etal. (January 2017). "Return of the lysergamides. Part II: Analytical and behavioural characterization of N6 -allyl-6-norlysergic acid diethylamide (AL-LAD) and (2'S,4'S)-lysergic acid 2,4-dimethylazetidide (LSZ)". Drug Testing and Analysis. 9 (1): 38–50. doi:10.1002/dta.1985. PMC5411264. PMID27265891.
↑Brandt SD, Kavanagh PV, Westphal F, Elliott SP, Wallach J, Stratford A, etal. (October 2017). "Return of the lysergamides. Part III: Analytical characterization of N6 -ethyl-6-norlysergic acid diethylamide (ETH-LAD) and 1-propionyl ETH-LAD (1P-ETH-LAD)". Drug Testing and Analysis. 9 (10): 1641–1649. doi:10.1002/dta.2196. PMC6230477. PMID28342178.
↑Brandt SD, Kavanagh PV, Twamley B, Westphal F, Elliott SP, Wallach J, etal. (February 2018). "Return of the lysergamides. Part IV: Analytical and pharmacological characterization of lysergic acid morpholide (LSM-775)". Drug Testing and Analysis. 10 (2): 310–322. doi:10.1002/dta.2222. PMC6230476. PMID28585392.
↑Brandt SD, Kavanagh PV, Westphal F, Stratford A, Elliott SP, Dowling G, etal. (August 2019). "Return of the lysergamides. Part V: Analytical and behavioural characterization of 1-butanoyl-d-lysergic acid diethylamide (1B-LSD)". Drug Testing and Analysis. 11 (8): 1122–1133. doi:10.1002/dta.2613. PMC6899222. PMID31083768.
12Halberstadt AL, Klein LM, Chatha M, Valenzuela LB, Stratford A, Wallach J, etal. (February 2019). "Pharmacological characterization of the LSD analog N-ethyl-N-cyclopropyl lysergamide (ECPLA)". Psychopharmacology. 236 (2): 799–808. doi:10.1007/s00213-018-5055-9. PMC6848745. PMID30298278. Importantly, MIPLA has been reported to have about one-third the potency of LSD as a psychedelic in man (Shulgin 2016); recent online postings indicate that MIPLA is available as an NPS (Anonymous 2018). By contrast, little is known about the pharmacology of LAMPA. In a study conducted in six hallucinogen-experienced subjects, administration of LAMPA (100 μg p.o.) had no effect in four subjects and produced effects consistent with a threshold dose of LSD in two subjects (Abramson and Rolo 1967). [...] According to Shulgin, human subjects administered MIPLA at doses of 180–300 μg experienced LSD-like psychedelic effects, making it about two- to threefold less potent than LSD (Shulgin 2016). [...] Shulgin AT (2016) Pharmacology Notebook 9. Available online: [...] [Accessed: January 20, 2018]
123Brimblecombe RW, Pinder RM (1975). "Indolealkylamines and Related Compounds". Hallucinogenic Agents. Bristol: Wright-Scientechnica. pp.98–144. ISBN978-0-85608-011-1. OCLC2176880. OL4850660M. Table 4.3.—Comparative Hallucinogenic Potencies in Man of Derivatives of D-Lysergic Acid. [...]
12Ravina E (2011). The evolution of drug discovery: from traditional medicines to modern drugs (1sted.). Weinheim: Wiley-VCH. p.245. ISBN978-3-527-32669-3. Archived from the original on 2015-12-26.
12Smith S, Timmis GM (1932). "98. The alkaloids of ergot. Part III. Ergine, a new base obtained by the degradation of ergotoxine and ergotinine". Journal of the Chemical Society (Resumed): 763–766. doi:10.1039/jr9320000763. ISSN0368-1769.
↑Shulgin AT (1976). "Psychotomimetic Agents". In Gordon M (ed.). Psychopharmacological Agents: Use, Misuse and Abuse. Medicinal Chemistry: A Series of Monographs. Vol.4. Academic Press. pp.59–146. doi:10.1016/b978-0-12-290559-9.50011-9. ISBN978-0-12-290559-9. The largest number of structural analogs of LSD that have been prepared involve the opening of one or more of the rings of the parent lysergic acid system. The compounds with the piperidine ring (ring D) opened [see (I)] are encountered as natural products in the several Convolvulaceae discussed in Section II,B on ololiuqui. The opening of ring C (by cleavage of the 10-11 bond to the indole "4 position") results in a series of N-α-disubstituted tryptamines. Additionally, analogs are known with the indolic nitrogen replaced with sulfur (benzothiophenes) and with an aliphatic chain (tetralins). A recent review covers this chemistry (Campaigne and Knapp, 1971), but there is apparently no human psychopharmacology as yet known.
↑Nichols DE (May 1973). Potential Psychotomimetics: Bromomethoxyamphetamines and Structural Congeners of Lysergic Acid (Thesis). University of Iowa. p.23. OCLC1194694085.
↑Campaigne E, Knapp DR (June 1971). "Structural analogs of lysergic acid". J Pharm Sci. 60 (6): 809–814. Bibcode:1971JPhmS..60..809C. doi:10.1002/jps.2600600602. PMID4942861.
12Shulgin AT (2003). "Basic Pharmacology and Effects". In Laing RR (ed.). Hallucinogens: A Forensic Drug Handbook. Forensic Drug Handbook Series. Elsevier Science. pp.67–137. ISBN978-0-12-433951-4.
123Jacob P, Shulgin AT (1994). "Structure-activity relationships of the classic hallucinogens and their analogs". NIDA Res Monogr. 146: 74–91. PMID8742795.
12Shulgin AT (1982). "Chemistry of Psychotomimetics". In Hoffmeister F, Stille G (eds.). Psychotropic Agents, Part III: Alcohol and Psychotomimetics, Psychotropic Effects of Central Acting Drugs. Handbook of Experimental Pharmacology. Vol.55 / 3. Berlin: Springer Berlin Heidelberg. pp.3–29. doi:10.1007/978-3-642-67770-0_1. ISBN978-3-642-67772-4. OCLC8130916.
12Alexander T. Shulgin (1980). "Hallucinogens". In Burger A, Wolf ME (eds.). Burger's Medicinal Chemistry. Vol.3 (4ed.). New York: Wiley. pp.1109–1137. ISBN978-0-471-01572-7. OCLC219960627.
123Alexander T. Shulgin, Ann Shulgin (1997). "#26. LSD-25 Acid; Lysergide; D-Lysergic Acid Diethylamide; Meth-LAD; D-Lysergamide, N,N-Diethyl; N,N-Diethyl-D-Lysergamide; 9,10-Didehydro-N,N-Diethyl-6-Methylergoline-8b-Carboxamide". TiHKAL: The Continuation (1sted.). Berkeley, CA: Transform Press. pp.490–499. ISBN978-0-9630096-9-2. OCLC38503252. The second major location of variations in the structure of LSD has been in the nature of the alkyl groups on the amide nitrogen atom. Some of these are Sandoz syntheses, some are from other research groups, and a few of them are found in nature. Some of these have been studied in man, and some have not. A few of the original clutch of Sandoz compounds have both 1-substituents and amide alkyl (R) group variations: [...]
12Hofmann A (June 1959). "Psychotomimetic Drugs: Chemical and Pharmacological Aspects"(PDF). Acta Physiol Pharmacol Neerl. 8: 240–258. PMID13852489.
↑Nichols DE (2018). Chemistry and Structure-Activity Relationships of Psychedelics. Current Topics in Behavioral Neurosciences. Vol.36. pp.1–43. doi:10.1007/7854_2017_475. ISBN978-3-662-55878-2. PMID28401524.
↑Rutschmann J, Stadler PA (1978). "Chemical Background". In Berde B, Schild HO (eds.). Ergot Alkaloids and Related Compounds. Handbook of Experimental Pharmacology (HEP). Vol.49. Berlin, Heidelberg: Springer Berlin Heidelberg. pp.29–85. doi:10.1007/978-3-642-66775-6_2. ISBN978-3-642-66777-0.
12Mangner TJ (1978). Potential Psychotomimetic Antagonists. N,N-Diethyl-1-methyl-3-aryl-1,2,5,6-tetrahydropyridine-5-carboxamides (Ph.D. thesis). University of Michigan. doi:10.7302/11268. Archived from the original on 30 March 2025. Table 1. Human psychotomimetic potencies of LSD analogs. [...]
12Fanchamps A (1978). "Some Compounds With Hallucinogenic Activity". In Berde B, Schild HO (eds.). Ergot Alkaloids and Related Compounds. Handbook of Experimental Pharmacology (HEP). Vol.49. Berlin, Heidelberg: Springer Berlin Heidelberg. pp.567–614. doi:10.1007/978-3-642-66775-6_8. ISBN978-3-642-66777-0. Archived from the original on 30 March 2025. Table 2. Psychotomimetic activity and some pharmacodynamic effects of structural analogues of LSD [...]
12Rothlin E (March 1957). "Lysergic acid diethylamide and related substances". Ann N Y Acad Sci. 66 (3): 668–676. Bibcode:1957NYASA..66..668R. doi:10.1111/j.1749-6632.1957.tb40756.x. PMID13425249. Archived from the original on 23 March 2025.
12Hoffer A (1965). "D-Lysergic Acid Diethylamide (LSD): A Review of its Present Status". Clin Pharmacol Ther. 6 (2): 183–255. doi:10.1002/cpt196562183. PMID14288188. Archived from the original on 30 March 2025.
12Isbell H, Miner EJ, Logan CR (1959). "Relationships of psychotomimetic to anti-serotonin potencies of congeners of lysergic acid diethylamide (LSD-25)". Psychopharmacologia. 1: 20–28. doi:10.1007/BF00408108. PMID14405872. Archived from the original on 7 April 2022.
123Oberlender RA (May 1989). "Stereoselective aspects of hallucinogenic drug action and drug discrimination studies of entactogens". Purdue e-Pubs. Purdue University. Table 2. Relative potency values for lysergic acid amides. [...]
12Kumbar M, Sankar DV (July 1973). "Quantum chemical studies on drug actions. 3. Correlation of hallucinogenic and anti-serotonin activity of lysergic acid derivatives with quantum chemical data". Res Commun Chem Pathol Pharmacol. 6 (1): 65–100. PMID4734018. Archived from the original on 29 March 2025. Table I – Structure and Several Biological Activities of Lysergates [...]
12Sankar DV, Kumbar M (February 1974). "Quantum chemical studies on drug actions. IV. Correlation of substituent structures and anti-serotonin activity in lysergamide series". Res Commun Chem Pathol Pharmacol. 7 (2): 259–274. PMID4818373. Archived from the original on 29 March 2025. Table I – Quantum Chemical Data on Lysergamide Derivatives
123Grumann C, Henkel K, Brandt SD, Stratford A, Passie T, Auwärter V (August 2020). "Pharmacokinetics and subjective effects of 1P-LSD in humans after oral and intravenous administration". Drug Test Anal. 12 (8): 1144–1153. doi:10.1002/dta.2821. PMID32415750.
123Mallaroni P, Mason NL, Vinckenbosch FR, Ramaekers JG (June 2022). "The use patterns of novel psychedelics: experiential fingerprints of substituted phenethylamines, tryptamines and lysergamides". Psychopharmacology (Berl). 239 (6): 1783–1796. doi:10.1007/s00213-022-06142-4. PMC9166850. PMID35487983.
12Abramson HA (1959). "Lysergic Acid Diethylamide (LSD-25): XXIX. The Response Index as a Measure of Threshold Activity of Psychotropic Drugs in Man". The Journal of Psychology. 48 (1): 65–78. doi:10.1080/00223980.1959.9916341. ISSN0022-3980. Archived from the original on 30 March 2025.
↑Halberstadt AL, Chatha M, Klein AK, Wallach J, Brandt SD (May 2020). "Correlation between the potency of hallucinogens in the mouse head-twitch response assay and their behavioral and subjective effects in other species"(PDF). Neuropharmacology. 167 107933. doi:10.1016/j.neuropharm.2019.107933. PMC9191653. PMID31917152. Table 4 Human potency data for selected hallucinogens. [...]
↑Tittarelli R, Mannocchi G, Pantano F, Romolo FS (January 2015). "Recreational use, analysis and toxicity of tryptamines". Curr Neuropharmacol. 13 (1): 26–46. doi:10.2174/1570159X13666141210222409. PMC4462041. PMID26074742. Archived from the original on 2025-04-03. Ergine, or lysergic acid amide (LSA), is an alkaloid of the ergoline family closely related to LSD, found in the seeds of Argyreia nervosa (Hawaiian baby woodrose) and Ipomoea violacea (Morning Glories). Hallucinogenic activity of LSA occurs with 4-10 seeds of Argyreia nervosa or with 150–200 seeds (3–6 g) of Ipomoea violacea: seeds could be crushed or eaten whole, or also drunk as an extract, after soaking in water [42]. The onset of the hallucinatory effects, after ingestion of Hawaiian Baby Woodrose, is from 20 to 40 minutes and their total duration is from 5 to 8 hours: the plateau is reached after 4-6 hours and the return to normality is after 1-2 hours from the plateau. [...] However, as regards to the assumption of the Morning Glory seeds, the onset of the hallucinatory effects is from 30 to 180 minutes and they last for 4 to 10 hours. The users reported that they return to normality after about 24 hours [67].
↑Gupta SP, Singh P, Bindal MC (1 December 1983). "QSAR studies on hallucinogens". Chemical Reviews. 83 (6): 633–649. doi:10.1021/cr00058a003. ISSN0009-2665. TABLE XII. Antiserotonin and Hallucinogenic Activities and Hückel's Total MO Energy of LSD and its Analogues [...] Data collected by Kumbar and Siva Sankar,91,92 from ref 70a, 87, 88, and 90; all activities are relative to that of LSD taken as 100.
↑Chen W, De Wit-Bos L (2020). Risk assessment of Argyreia nervosa(PDF) (Report). doi:10.21945/rivm-2019-0210.
↑Bigwood J, Ott J, Thompson C, Neely P (1979). "Entheogenic effects of ergonovine". J Psychedelic Drugs. 11 (1–2): 147–149. doi:10.1080/02791072.1979.10472099. PMID522166. Archived from the original on 28 March 2025. In 1977 and 1978 Hofmann reported that ergonovine maleate was entheogenic,1 a surprising finding in view of its widespread use in obstetrics (Wasson, Hofmann & Ruck 1978; Hofmann 1977). This report was based on a self-experiment conducted by Hofmann on 1 April 1976, with 2.0 mg of ergonovine maleate taken orally. Hofmann reported that this dose manifested a "slightly hallucinogenic activity" lasting more than five hours.2 [...] Our experiments corroborate Hofmann's report that ergonovine possesses entheogenic properties. We found the active dose to lie between 5.0 and 10.0 mg, peroral. It is interesting to note that Hofmann experienced distinct entheogenic effects at 2.0 mg, while Wasson and Ruck did not. Similarly, J.B. experienced distinct entheogenic effects at 3.0 mg, whereas J.O. and P.N. did not. This underscores the importance of metabolic individuality in the uptake and metabolism of mind-altering drugs. With respect to entheogenic effects 10 mg of ergonovine maleate is roughly equivalent to 50 μg is, ergonovine possesses about that LSD-tartrate, 1/200th the entheogenic potency of LSD.
↑Gorodetzky CW, Isbell H (September 1964). "A comparison of 2,3-dihydro-lysergic acid diethylamide with LSD-25". Psychopharmacologia. 6 (3): 229–233. doi:10.1007/BF00404013. PMID5319153.
↑Sicuteri F (October 1963). "Prophylactic Treatment of Migraine by Means of Lysergic Acid Derivatives". Triangle. 6: 116–125. PMID14087164.
↑Cerletti A, Doepfner W (January 1958). "Comparative study on the serotonin antagonism of amide derivatives of lysergic acid and of ergot alkaloids". The Journal of Pharmacology and Experimental Therapeutics. 122 (1): 124–136. doi:10.1016/S0022-3565(25)11933-2. PMID13502837. Archived from the original on 30 June 2025.
↑Jain MK, Gumpper RH, Slocum ST, Schmitz GP, Madsen JS, Tummino TA, etal. (July 2025). "The polypharmacology of psychedelics reveals multiple targets for potential therapeutics"(PDF). Neuron. 113 (19): 3129–3142.e9. doi:10.1016/j.neuron.2025.06.012. PMID40683247.
↑Ray TS (February 2010). "Psychedelics and the human receptorome". PLOS ONE. 5 (2) e9019. Bibcode:2010PLoSO...5.9019R. doi:10.1371/journal.pone.0009019. PMC2814854. PMID20126400.
↑Walker SR, Pullella GA, Piggott MJ, Duggan PJ (5 July 2023). "Introduction to the chemistry and pharmacology of psychedelic drugs". Australian Journal of Chemistry. 76 (5): 236–257. doi:10.1071/CH23050. ISSN0004-9425. Retrieved 4 April 2025.
↑McKenna T (1999). "[Chapter 14:] A Brief History of Psychedelics". Food of the Gods: The Search for the Original Tree of Knowledge: a Radical History of Plants, Drugs and Human Evolution(PDF). Rider. pp.223–245. ISBN978-0-7126-7038-8.
↑Stoll A, Hofmann A (1955). "Amide der stereoisomeren Lysergsäuren und Dihydro-lysergsäuren. 38. Mitteilung über Mutterkornalkaloide"[Amides of stereoisomeric lysergic and dihydrolysergic acids. 38. Ergot alkaloids]. Helvetica Chimica Acta. 38 (2): 421–433. Bibcode:1955HChAc..38..421S. doi:10.1002/hlca.19550380207. ISSN0018-019X. Retrieved 5 June 2025.
12Nichols DE, Oberlender R, McKenna DJ (1991). "Stereochemical Aspects of Hallucinogenesis". In Watson RR (ed.). Biochemistry and Physiology of Substance Abuse. Vol.3. Boca Raton, Fla.: CRC Press. pp.1–39. ISBN978-0-8493-4463-3. OCLC26748320. Chemical transformations at N(6) were not accomplished until after clinical studies had been terminated. Initial work in this area was reported in 1970 by Fehr et al.184 who synthesized d-lysergic acid with various N(6) alkyl groups from 6-nor-d-lysergic acid methyl ester.151 Similar chemistry was first applied to LSD by Nakahara and Niwaguchi,185 then by Niwaguchi et al.,186 and most recently by Hoffman and Nichols.162 Initial pharmacological studies identified high activity in the isolated rat uterus preparation for the ethyl, propyl, and allyl analogues, from which high potency in the CNS was predicted.161
↑Fehr T, Stadler PA, Hofmann A (1970). "Demethylierung des Lysergsäuregerüstes. 73. Mitteilung über Mutterkornalkaloide [1]". Helvetica Chimica Acta. 53 (8): 2197–2201. Bibcode:1970HChAc..53.2197F. doi:10.1002/hlca.19700530832. ISSN0018-019X. Retrieved 29 June 2025.
↑Niwaguchi T, Nakahara Y, Ishii H (1976). "Lysergic Acid Diethylamideおよび関連化合物に関する研究(第4報)Norlysergic Acidの各種Amide誘導体ならびに関連化合物の合成"[Studies on Lysergic Acid Diethylamide and Related Compounds. IV. Syntheses of Various Amide Derivatives of Norlysergic Acid and Related Compounds]. Yakugaku Zasshi. 96 (5): 673–678. doi:10.1248/yakushi1947.96.5_673. ISSN0031-6903. PMID987200. Retrieved 27 March 2025.
↑Nichols DE (February 1986). "Studies of the Relationship Between Molecular Structure and Hallucinogenic Activity". Pharmacol Biochem Behav. 24 (2): 335–340. doi:10.1016/0091-3057(86)90362-x. PMID3952123. The ergolines can be viewed as rigid tetracyclic tryptamines. Within this class of compound is found the semisynthetic d-lysergic acid diethylamide (Fig 8) (d-LSD), the most potent of the hallucinogenic drugs. [...] Of the many structural modifications which have been made to the LSD structure, none had yielded a compound more potent than LSD itself. This report will briefly describe some derivatives of LSD which do appear to have somewhat higher potency than LSD. [...] The observations of potency comparable to, or greater than LSD [with N(6)-alkyl-substituted lysergamides] was of great interest. It seemed likely, based on the generalization in the drug discrimination assay and the high potencies of several of the derivatives, that these might well be more potent hallucinogens in man than LSD. Very recently, preliminary studies were carried out (A T Shulgin, personal communication) which indicated that indeed, the N(6)-ethyl and the N(6)-allyl-nor-LSD derivatives are somewhat more potent than LSD, by perhaps a factor of 2–3. Early results also indicated that N(6)-propyl-nor-LSD retains activity comparable to LSD, but with perhaps less visual distortion. These preliminary results were obtained after only a few experiments with each compound and further evaluation to define the potency and character of these lysergamides is underway.
↑Pfaff RC, Huang X, Marona-Lewicka D, Oberlender R, Nichols DE (1994). "Lysergamides revisited". NIDA Research Monograph. 146: 52–73. PMID8742794.
↑Niesporek T (17 August 2022). Der Hype um legales LSD in Deutschland: Wie das Verbot umgangen wird[The hype surrounding legal LSD in Germany: How the ban is circumvented]. YouTube (in German). VICE auf Deutsch. Event occurs at 2:10–8:12, 20:05–20:41. Retrieved 29 September 2025.
↑Încrosnatu D (17 July 2023). "From 1V-LSD to 1D-LSD: The Evolution of Legal Lysergamides". Sociedelic.
↑Chiara JB (27 July 2022). "LSD light: Gobe, c'est du légal!"[LSD Light: Swallow It, It's Legal!]. Technikart (in French).
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↑ Sabnis RW. 脳疾患治療のための5-HT2Cアゴニストとしての新規デサミドイソトリプタミン四環化合物。ACS Med Chem Lett . 2025年5月21日;16(6):976-977. doi : 10.1021/acsmedchemlett.5c00286 PMID 40529093
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