Добавил:
kiopkiopkiop18@yandex.ru t.me/Prokururor I Вовсе не секретарь, но почту проверяю Опубликованный материал нарушает ваши авторские права? Сообщите нам.
Вуз: Предмет: Файл:

Ординатура / Хирургия / Библиотека им академика М.И. Перельмана / Книга_5874_Библиотеки_им_академика_М_И_Перельмана

.pdf
Скачиваний:
0
Добавлен:
31.08.2026
Размер:
27 Мб
Скачать
https://t.me/med1917
68
68
β- Carbolines
SCHEME 2.11 Preparation of bromide salts of β- carbolines.
SCHEME 2.12 Coupling approach for the synthesis of β- carboline derivatives.
condensing the derivative of carboline carboxylic acid with amino- containing neamine derivatives at room temperature under acidic conditions. Carboxylic acids are insoluble in carboline, so the coupling reaction was performed in a DMF (Dimethylformamide) solution. N,N- diisopropylethylamine (DIPEA) greatly facilitated product purication by promoting efcient amide- bond formation when combined with HOBT (hydroxybenzotriazole) and TBTU (2- (1H- benzotriazole- 1- yl)- 1,1,3,3- tetramethylaminium tetrauoroborate). The reaction was also concluded rapidly after DIPEA addition was completed. The desired compounds were obtained after being saponied with sodium methoxide in methanol and subsequently reduced with hydrogen sulphide (Wu et al. 2010).
The general approach to synthesizing new 1,2,3- triazole- ringed β- carboline derivatives is depicted in Scheme 2.13 (Salehi et al. 2016). L- tryptophan methyl ester and O- propargylated benzaldehydes underwent a Pictet- Spengler reaction, which
https://t.me/med1917
69
β- Carbolines as Antibacterial Agents
69
SCHEME 2.13 Routes for the synthesis of 1,2,3,4- tetrahydro- β- carboline compounds.
SCHEME 2.14 Stereoselective synthesis of tetrahydro- β- carboline diketopiperazines.
produced a racemic mixture of tetrahydro- carboline compounds. Researchers looked into using sulphur, KMnO4, and IBX as oxidizing reagents to transform 1,2,3,4- tetrahydro- carboline derivatives into their β- carboline counterparts. Other derivatives were oxidized using the same technique.
From L- tryptophan methyl ester hydrochloride and aldehydes, single isomers of tetrahydro- carboline diketopiperazines were made using a four- step reaction that included the Pictet- Spengler reaction, crystallization- induced asymmetric transform­ations (CIAT), the Schotten- Baumann reaction, and intramolecular ester amidation (Scheme 2.14) (Ma et al.2013).
https://t.me/med1917
70
70
β- Carbolines
SCHEME 2.15 Synthesis of β- carboline dimers and their N2- alkylated analogues.
SCHEME 2.16 Synthesis of β- carboline dimers via Oxidative approach.
The biological effects of beta- carbolines, a class of indole alkaloids, are quite varied. The purpose of this research was to determine the structural basis for the inhibitory effects of β- carboline derivatives in vitro against pathogenic microorganisms of clinical signicance. Therefore, a number of β- carboline dimers and N2- alkylated analogues were synthesized and tested for antibacterial activity. Dimeric 6- chlorocarboline N2- benzylated salt showed strong activity against S. aureus at MICs of 0.010.05 mol/ mL. Our results demonstrate that N1N1- dimerization and N2- benzylation signicantly ele­vate compounds’ antimicrobial activities (Scheme 2.15 & 2.16) (Suzuki et al. 2018).
Schema 2.17 shows the steps needed to synthesize β- carboline- oxazol- 5- ones. The technique developed by the Savariz group was applied to create substituted β- carboline- 3- carboxylic acids using commercial L- tryptophan. Analogs of tetrahydro- carbolines were produced by Pictet- Spengler condensation of L- tryptophan methyl
https://t.me/med1917
71
β- Carbolines as Antibacterial Agents
71
SCHEME 2.17 Synthesis of β- carboline derivatives using L- tryptophan.
ester with benzaldehyde, 4- methoxybenzaldehyde, and 4- hydroxybenzaldehyde. The β- carboline- 4H- oxazol- 5 ones were made by the Erlenmeyer Plöchl reaction, which is the most widely used technique for producing oxazolones. Analogues of β- carboline- 3- carboxylic acids were created by activating β- carboline- 3- carboxylic acids in pyridine with DMAP (dimethylaminopyridine) and DCC (N,N’- dicyclohexylcarbodiimide), and then treating the resultant solution with glycine ethyl ester hydrochloride (Savariz et al. 2012).
In order to investigate new antibacterial frameworks and assess antiphytopathogen efcacy in vitro and in vivo, the author synthesized a number of unique THC derivatives. Target compounds showed excellent action against three rogue phytopathogens, namely X. axonopodis pv. citri, P. syringae pv. actinidiae (Psa), and X. oryzae pv. oryzae, as evidenced by their respective EC50 values of 2.06 (I23),
2.39 (II9), and 1.69. These results were superior to those seen with 1,2,3,4- THC, the parent structure, and with the control group. In vivo tests showed that at 200 g/ mL, they are highly effective at preventing the spread of both rice bacterial blight and kiwifruit (Scheme 2.18) (Liu et al. 2020).
To produce new beta- carboline derivatives, a six- step reaction procedure was used (Scheme 2.19). Initially, L- amine tryptophan’s group was shielded with BOC anhydride, and subsequent spectroscopic analyses veried the product’s structure. The next step involved esterifying the carboxyl group of BOC tryptophan with 10- undecenol. The esteried product was deprotected using acid to yield a free amine.
https://t.me/med1917
72
72
β- Carbolines
SCHEME 2.18 Synthesis of tetrahydro- β- carboline derivatives via epoxide ring opening.
SCHEME 2.19 Synthesis of substituted β- carboline derivatives using L- tryptophan.
Following that, the amino group was condensed with various types of aldehydes to produce Schiff bases. Then, the resulting products were made by cyclizing Schiff bases (Kontham et al. 2021).
Scheme 2.20 depicts the process for creating maleimide, phthalimide, and succinimide- substituted phenylimide- β- carboline derivatives, as described by Ortiz et al (Lopes- Ortiz et al. 2020). Compound precursors were obtained via the Pictet- Spengler reaction of L- tryptophan methyl ester with aromatic aldehydes containing electron- donating and electron- withdrawing groups; subsequent xylene oxidation
https://t.me/med1917
73
β- Carbolines as Antibacterial Agents
73
SCHEME 2.20 Different approaches for the synthesis of β- carbolines.
of THC obtained with sulphur yielded the corresponding methyl β- carboline- 3- carboxylates. By reacting carbohydrazides with phthalic anhydride, β- carboline- 3- N- (1,3- dioxo- 1,3- dihydro- isoindol- 2- yl)- carboxamides were formed. The phenyl and 4- uorophenyl groups at position 1 of the β- carboline nucleus were prepared by treating the carbohydrazide with maleic anhydride in acetic acid and anhydrous sodium acetate, respectively. An initial attempt to synthesize β- carboline- 3- N- (2,5- dioxo- pyrrolidin- 1- yl)- carboxamides by reacting carbohydrazides with succinic anhydride under anhydrous toluene reux is described by Brosse et al. All carbohydrazides, however, were only found to generate noncyclized intermediates under these conditions. The nal compound was synthesized by reacting the appro­priate starting carbohydrazides with succinic anhydride in the presence of a catalytic amount of p- toluene sulfonic acid (Brosse et al. 2003).
3.7 APPLICATIONS OF Β- CARBOLINES
The effects of natural beta- carbolines are primarily neurological, but they may also have antioxidant effects (Liao et al. 2020). Recently, β- carbolines derivatives developed in a laboratory have been shown to have neuroprotective (Gulyaeva and Aniol 2012), cognitive enhancing, and anticancer properties (Aaghaz et al. 2021). Amazonian peoples used a hallucinogen made from the liana Banisteriopsis caapi, which was rst described as such in the middle of the nineteenth century. In the early
https://t.me/med1917
74
74
twentieth century, European pharmacists discovered that harmine was an active ingre­dient (Djamshidian et al. 2016). Interest in this nding’s therapeutic potential has
β- Carbolines
prompted additional study. Harmine’s pharmacological effects can be traced back to its ability to inhibit monoamine oxidase (MAO). Banisteriopsis caapi and Peganum harmala extracts have been shown to trigger dopamine release in the striatum in both in vitro and in vivo rodent studies, respectively (Samoylenko et al. 2010; Schwarz et al. 2003). Moreover, in mice treated with MPTP (1- methyl- 4- phenyl- 1,2,3,6­tetrahydropyridine), harmine increases the number of viable dopaminergic neurons (Barallobre et al. 2014).
3.8 CONCLUSION
β- carbolines are a signicant group of nitrogen- containing heterocycles because of their wide range of biological and pharmaceutical uses. There is a wide range of thera­peutic applications for the β- carboline family of heterocyclic natural products. Due to their value, many scientists have already made contributions to the bioactivity and preparation of these intriguing frameworks. The antibacterial properties and overall structure of β- carbolines skeletons have been discussed in this chapter. This chapter provided a detailed discussion, supported by examples, of the nature and prevalence of β- carbolines frameworks. We also described the origins, structures, properties, and potential bioactivities of several naturally occurring products with a β- carbolines skeleton. In addition, the synthetic aspect and several important applications were covered.
ACKNOWLEDGMENTS
The authors are thankful to the Department of Applied Chemistry, Amity School of Engineering & Technology (ASET), Gwalior, for all the necessary facilities.
REFERENCES
Aaghaz, S., Sharma, K., Jain, R., & Kamal, A. 2021. β- Carbolines as potential anticancer
agents. In European Journal of Medicinal Chemistry, Vol. 216. Elsevier Masson s.r.l.
Ábrányi- Balogh, P., Földesi, T., Grün, A., Volk, B., Keglevich, G., & Milen, M. 2016. Synthetic
study on the T3P®- promoted one- pot preparation of 1- substituted- 3,4- dihydro- β- carbolines by the reaction of tryptamine with carboxylic acids. Tetrahedron Letters, 57(18):1953– 1957.
Adachi, J., Mizoi, Y., Naito, T., Yamamoto, K., Fujiwara, S., & Ninomiya, I. 1991. Determination
of β- carbolines in foodstuffs by high- performance liquid chromatography and high­performance liquid chromatography- mass spectrometry. Journal of Chromatography A, 538(2):331– 339.
Allen, J. R., & Holmstedt, B. R. 1980. The simple β- carboline alkaloids. Phytochemistry,
19(8):1573– 1582.
Alves, R. C., Casal, S., & Oliveira, B. P. 2007. Factors inuencing the norharman and
harman contents in espresso coffee. Journal of Agricultural and Food Chemistry, 55(5):1832– 1838.
https://t.me/med1917
75
β- Carbolines as Antibacterial Agents
Alves, R. C., Mendes, E., Oliveira, B. P., & Casal, S. 2010. Norharman and harman in instant
coffee and coffee substitutes. Food Chemistry, 120(4):1238– 1241.
Ambule, M. D., Tripathi, S., Ghoshal, A., & Srivastava, A. K. 2019. IBX- mediated oxidative
75
addition of isocyanides to cyclic secondary amines:Total syntheses of alangiobussine and alangiobussinine. Chemical Communications, 55(73):10872– 10875.
Ashok, P., Lathiya, H., & Murugesan, S. 2015. Manzamine alkaloids as antileishmanial
agents:A review. European Journal of Medicinal Chemistry, 97(1):928– 936.
Banoth, K. K., Faheem, ChandraSekhar, K. V. G., Adinarayana, N., & Murugesan, S. 2020.
Recent evolution on synthesis strategies and anti- leishmanial activity of β- carboline derivatives- An update. Heliyon, 6(9).
Barallobre, M. J., Perier, C., Bové, J., Laguna, A., Delabar, J. M., Vila, M., & Arbonés, M. L.
2014. DYRK1A promotes dopaminergic neuron survival in the developing brain and in a mouse model of Parkinson’s disease. Cell Death and Disease, 5(6).
Becher, P. G., Beuchat, J., Gademann, K., & Jüttner, F. 2005. Nostocarboline:Isolation and
synthesis of a new cholinesterase inhibitor from Nostoc 78- 12A. Journal of Natural Products, 68(12):1793– 1795.
Beck, O., & Lundman, A. 1983. Occurrence of 6- hydroxy- 1- methyl- 1, 2, 3, 4- tetrahydro-
β- carboline in tissues and body uids of rat. Biochemical Pharmacology, 32(9):1507– 1510.
Brosse, N., Pinto, M. F., & Jamart- Grégoire, B. 2003. Preparation of multiply protected
Alkylhydrazine derivatives by Mitsunobu and PTC approaches. European Journal of Organic Chemistry, 24:4757– 4764.
Cabrera, G. M., & Seldes, A. M. 1999. A β- carboline alkaloid from the soft coral Lignopsis
spongiosum. Journal of Natural Products, 62(5):759– 760.
Cao, R., Peng, W., Wang, Z., & Xu, A. 2007. Carboline Alkaloids:Biochemical and pharmaco-
logical functions. Current Medicinal Chemistry, 14(4):479– 500.
Carter, A. P., Clemons, W. M., Brodersen, D. E., Morgan- Warren, R. J., Wimberly, B. T., &
Ramakrishnan, V. 2000. Functional insights from the structure of the 30S ribosomal sub­unit and its interactions with antibiotics. Nature, 407(6802):340– 348.
Casal, S. 2015. Neuroactive β- Carbolines Norharman and Harman in coffee. In Coffee in
Health and Disease Prevention: 737– 743.
Céliz, G., Daz, M., & Audisio, M. C. 2011. Antibacterial activity of naringin derivatives against
pathogenic strains. Journal of Applied Microbiology, 111(3):731– 738.
Charan, R. D., McKee, T. C., Gustafson, K. R., Pannell, L. K., & Boyd, M. R. 2002.
Thorectandramine, a novel β- carboline alkaloid from the marine sponge Thorectandra sp. Tetrahedron letters, 43(29):5201– 5204.
Chen, B., Zhao, J., Zhang, R., Zhang, L., Zhang, Q., Yang, H., & An, J. 2022. Neuroprotective
effects of natural compounds on neurotoxin- induced oxidative stress and cell apoptosis. Nutritional Neuroscience, 25(5):1078– 1099.
Csányi, D., Hajós, G., Riedl, Z., Timári, G., Bajor, Z., Cochard, F., & Laronze, J.
Y. 2000. Synthesis of two new heteroaromatic β- carboline- fused pentacycles. Observation of a new intercalating agent. Bioorganic & Medicinal Chemistry Letters, 10(15):1767– 1769.
Dai, J., Dan, W., Schneider, U., & Wang, J. 2018. β- Carboline alkaloid monomers and
dimers:Occurrence, structural diversity, and biological activities. European Journal of Medicinal Chemistry, 157:622– 656.
Dejos, C., Voisin, P., Bernard, M., Régnacq, M., & Bergès, T. 2014. Canthin- 6- one displays
antiproliferative activity and causes accumulation of cancer cells in the G2/ M phase. Journal of Natural Products, 77(11):2481– 2487.
https://t.me/med1917
76
76
De Meester, C. 1995. Genotoxic potential of β- carbolines:A review. Mutation Research/
Reviews in Genetic Toxicology, 339(3):139– 153.
Deveau, A. M., Labroli, M. A., Dieckhaus, C. M., Barthen, M. T., Smith, K. S., & Macdonald,
β- Carbolines
T. L. 2001. The synthesis of amino- acid functionalized β- carbolines as topoisomerase II inhibitors. Bioorganic & Medicinal Chemistry Letters, 11(10):1251– 1255.
Djamshidian, A., Bernschneider- Reif, S., Poewe, W., & Lees, A. J. 2016. Banisteriopsis caapi,
a Forgotten Potential Therapy for Parkinson’s Disease? In Movement Disorders Clinical Practice (Vol. 3, Issue 1, pp. 19– 26. Wiley- Blackwell.
Domínguez, G., & Pérez- Castells, J. 2011. Chemistry of β- carbolines as synthetic intermediates.
European Journal of Organic Chemistry, 36:7243– 7253.
Fandrick, D. R., Hart, C. A., Okafor, I. S., Mercadante, M. A., Sanyal, S., Masters, J. T.,
Sarvestani, M., Fandrick, K. R., Stockdill, J. L., Grinberg, N., Gonnella, N., Lee, H., & Senanayake, C. H. 2016. Copper- Catalyzed Asymmetric Propargylation of Cyclic Aldimines. Organic Letters, 18(23):6192– 6195.
Fourmy, D., Recht, M. I., Blanchard, S. C., & Puglisi, J. D. 1996. Structure of the A site of
Escherichia coli 16 S ribosomal RNA complexed with an aminoglycoside antibiotic. Science, 274(5291):1367– 1371.
França, P. H. B., Barbosa, D. P., da Silva, D. L., Ribeiro, Ê. A. N., Santana, A. E. G., Santos,
B. V. O., Barbosa- Filho, J. M., Quintans, J. S. S., Barreto, R. S. S., Quintans, L. J., & de Araújo, J. X. 2006. Indole alkaloids from marine sources as potential leads against infec­tious diseases. BioMed Research International, 2014.
Gabriel, R. S., Amaral, A. C. F., Lima, I. C., Cruz, J. D., Garcia, A. R., Souza, H. A. S.,
Adade, C. M., Vermelho, A. B., Alviano, C. S., Alviano, D. S., & Rodrigues, I. A. 2019.
β- Carboline- 1- propionic acid alkaloid:Antileishmanial and cytotoxic effects. Revista Brasileira de Farmacognosia, 29(6):755– 762.
Gulyaeva, N., & Aniol, V. 2012. Good guys from a shady family. In Journal of Neurochemistry,
121, 6:841– 842.
Hamann, J., Wernicke, C., Lehmann, J., Reichmann, H., Rommelspacher, H., & Gille, G.
2008. 9- Methyl- β- carboline up- regulates the appearance of differentiated dopamin­ergic neurones in primary mesencephalic culture. Neurochemistry International, 52:688– 700.
Herraiz, T. 2002. Identication and occurrence of the bioactive β- carbolines norharman and
harman in coffee brews. Food Additives & Contaminants, 19(8):748– 754.
Herraiz*, T. 2004. Relative exposure to β- carbolines norharman and harman from foods and
tobacco smoke. Food Additives and Contaminants, 21(11):1041– 1050.
Herraiz, T. 2012. β- carbolines as neurotoxins. In Isoquinolines and Beta- Carbolines As
Neurotoxins and Neuroprotectants, Springer, 77– 103.
Herraiz, T., & Galisteo, J. 2003. Tetrahydro- β- carboline alkaloids occur in fruits and fruit
juices. Activity as antioxidants and radical scavengers. Journal of Agricultural and Food Chemistry, 51(24):7156– 7161.
Kathal, R., Sharma, S., Singh, K., & Singh, S. 2023. Simplied procedure for application of
DBE, the rule of 13 & Nitrogen rule in structure elucidation of organic compounds. Letters in Organic Chemistry, 20(3):276– 285.
Kearns, P. S., & Rideout, J. A. 2008. Nonsymmetrical β- carboline dimers from an ascidian,
Didemnum sp. Journal of Natural Products, 71(7):1280– 1282.
Kobayashi, M., Chen, Y. J., Aoki, S., In, Y., Ishida, T., & Kitagawa, I. 1995. Four new
β- carboline alkaloids isolated from two Okinawan marine sponges of Xestospongia sp. and Haliclona sp. Tetrahedron, 51(13):3727– 3736.
Koehn, F. E., & Carter, G. T. 2005. The evolving role of natural products in drug discovery. In
Nature Reviews Drug Discovery, 4(3):206– 220.
https://t.me/med1917
77
β- Carbolines as Antibacterial Agents
Kontham, V., Ippakayala, B., & Madhu, D. 2021. Synthesis of β- carboline fatty alcohol hybrid
77
molecules and characterization of their biological and antioxidant activities. Arabian Journal of Chemistry, 14(6).
Kotanen, S., Huybrechts, J., Cerstiaens, A., Zoltan, K., Daloze, D., Baggerman, G., Forgo, P., de
Loof, A., & Schoofs, L. 2003. Identication of tryptophan and β- carboline as paralysins in larvae of the yellow mealworm, Tenebrio molitor. Biochemical and Biophysical Research Communications, 310(1):64– 71.
Laine, A. E., Lood, C., & Koskinen, A. M. P. 2014. Pharmacological importance of optically
active tetrahydro- β- carbolines and synthetic approaches to create the C1 stereocenter. Molecules. 19(2):1544– 1567.
Laviță, S. I., Aro, R., Kiss, B., Manto, M., & Duez, P. 2016. The role of β- carboline alkaloids
in the pathogenesis of essential tremor. The Cerebellum, 15(3):276– 284.
Li, S., Teng, L., Liu, W., Cheng, X., Jiang, B., Wang, Z., & Wang, C. H. 2016. Pharmacokinetic
study of harmane and its 10 metabolites in rat after intravenous and oral administration by UPLC- ESI- MS/ MS. Pharmaceutical Biology, 54(9):1768– 1781.
Li, S., Yang, B., Zhang, Q., Zhang, J., Wang, J., & Wu, W. 2010. Synthesis and bioactivity of
β- carboline derivatives. Natural Product Communications, 5(10).
Liao, Q., Li, Q., Zhao, Y., Jiang, P., Yan, Y., Sun, H., Liu, W., Feng, F., & Qu, W. 2020. Design,
synthesis and biological evaluation of novel carboline- cinnamic acid hybrids as multi­functional agents for treatment of Alzheimer’s disease. Bioorganic Chemistry, 99.
Lippke, K. P., Schunack, W. G., Wenning, W., & Mueller, W. E. 1983. β- Carbolines as benzodi-
azepine receptor ligands. 1. Synthesis and benzodiazepine receptor interaction of esters of β- carboline- 3- carboxylic acid. Journal of Medicinal Chemistry, 26(4):499– 503.
Liu, H. W., Ji, Q. T., Ren, G. G., Wang, F., Su, F., Wang, P. Y., Zhou, X., Wu, Z. B., Li, Z., &
Yang, S. 2020. Antibacterial functions and proposed modes of action of novel 1,2,3,4­tetrahydro- β- carboline derivatives that possess an attractive 1,3- diaminopropan- 2- ol pattern against rice bacterial blight, kiwifruit bacterial canker, and citrus bacterial canker. Journal of Agricultural and Food Chemistry, 68(45):12558– 12568.
Lood, C. S., Nieger, M., & Koskinen, A. M. P. 2015. Enantiospecic gram scale synthesis of
(S)- eleagnine. Tetrahedron, 71(30):5019– 5024.
Lopes- Ortiz, M. A., Panice, M. R., Borges de Melo, E., Ataide Martins, J. P., Baldin, V. P.,
Agostinho Pires, C. T., Calef- Ferracioli, K. R., Dias Siqueira, V. L., Bertin de Lima Scodro, R., Sarragiotto, M. H., & Cardoso, R. F. 2020. Synthesis and anti- Mycobacterium tuberculosis activity of imide- β- carboline and carbomethoxy- β- carboline derivatives. European Journal of Medicinal Chemistry, 187.
Lunagariya, N. A., Gohil, V. M., Kushwah, V., Neelagiri, S., Jain, S., Singh, S., & Bhutani, K.
K. 2016. Design, synthesis and biological evaluation of 1,3,6- trisubstituted β- carboline derivatives for cytotoxic and anti- leishmanial potential. Bioorganic and Medicinal Chemistry Letters, 26(3):789– 794.
Luo, B., & Song, X. 2021. A comprehensive overview of β- carbolines and its derivatives as
anticancer agents. European Journal of Medicinal Chemistry, 224.
Ma, Y., Wu, H., Zhang, J., & Li, Y. 2013. Enantioselective synthesis and antimicrobial activities
of tetrahydro- β- carboline diketopiperazines. Chirality, 25(10):656– 662.
Maity, P., Adhikari, D., & Jana, A. K. 2019. An overview on synthetic entries to tetrahydro- β-
carbolines. In Tetrahedron, 75(8):965– 1028. Elsevier Ltd.
Maresh, J. J., Giddings, L. A., Friedrich, A., Loris, E. A., Panjikar, S., Trout, B. L., Stöckigt,
J., Peters, B., & O’Connor, S. E. 2008. Strictosidine synthase:Mechanism of a Pictet­Spengler catalyzing enzyme. Journal of the American Chemical Society, 130(2):710– 723.
Mishra, B. B., & Tiwari, V. K. 2011. Natural products:An evolving role in future drug dis-
covery. European Journal of Medicinal Chemistry, 46(10):4769– 4807.