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

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β- Carbolines
SCHEME 1.7 Synthesis of β- carboline- 3- carboxyl- Trp- Trp- AA- OBzl compounds.
For pharmaceutical action, the outcomes were compared to the reference standard using cyclophosphamide (CTX). At dosages of 30 and 40 mg/ kg, certain compounds showed tumor inhibition rates of 50.8% and 56.2% against mice with Lewis lung cancer, CT- 26 colon cancer, and H22 liver cancer, respectively, against these mice (Shi et al. 2013).
Chen et al. reported synthesis of tripeptide benzyl ester by condensation of a number of amino acids, and then assessing the biological properties of the unique β- carboline linked tripeptide. Compound 18 (Scheme 1.7) is prepared by 1- (4- hydroxy- 3- methoxyphenyl)- tetrahydro- β- carboline- 3- carboxylate 16 interacts with selenium oxide in the presence of acetic acid, subsequently 1- (4- hydroxy- 3­methoxyphenyl)- β- carboline- 3- carboxylic acid 17 is produced by hydrolyzing the reaction with NaOH. Employing the MTT (3- [4,5- dimethylthiazol- 2- yl]- 2,5 diphenyl tetrazolium bromide) assay on the cancer cell lines HT- 29, A- 549, K- 562, and HL- 60, all 18 prepared compounds were assessed; the outcomes showed moderate activity. While certain compounds showed the highest efcacy in the in vivo study when tested on S- 180 mice, displaying tumor inhibition of 63.4% and 62.9%, respectively, which was comparable to the positive control, adriyamycin (61.1%), an anticancer drug. These compounds operate by DNA intercalation. β- carboline and Trp- Trp, the two structural units, both have planar polycyclic aromatic pharmacophore that can stack at the DNA pairs’ intercalation sites. The process in which the β- carboline derivatives synthesized in this study intercalated with the DNA of calf thymus (CT) was examined. A variety of well- known, simple, yet accurate procedures were used in spectroscopy, including relative viscosity tests with and without CT DNA and other data indicating intercalative binding of the β- carboline derivatives to DNA (Chen et al. 2014).
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β- Carbolines as Anti-Cancer Agents
1.3.1.2 DNA Groove- binding Agents
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Numerous DNA- interactive C3- tethered 1, 2, and 3- triazolo- β- carboline motifs were synthesized via the click reaction, and their cytotoxicity was examined in vitro. Compound 19 reacted with sodium azide in DMF via Cu(I)- catalyzed azide- alkyne cycloaddition (CuAAC), and then it reacted with different alkynes to form C- 3 linked 1,2,3- triazolo- β- carboline hybrids motifs 20 (Scheme 1.8). Each of the 20 compounds was evaluated for its in vitro cytotoxicity against the gastric cancer cell line HGC- 27, PC- 3, HeLa, MCF- 7, and HT- 29. Only a few of the compounds exhibited IC50 values less than 10 µM. Compound 20a was shown to be the most potent against HT- 29, with an IC50 value of 3.67 µM. Molecular docking studies revealed that these drugs were actually bound to a tiny groove in DNA. Experiments such as circular dichroism, uorescence titration, UV- visible titration, and viscometrical titration corroborated the previous results and demonstrated that compound 20 exhibits a strong electro­static bond with DNA (Shankaraiah et al. 2016).
By IC50 value of 0.13 µM, compound 19e from this new series was discovered to have potential cytotoxic property against the triple- negative breast tumor cell line (MDA- MB- 231). Notably, the DCFDA assay revealed that 19e promoted the produc­tion of ROS. Moreover, identifying 19e moiety JC- 1 enables to observe the breakdown of the mitochondrial membrane potential. Furthermore, 19e was found to suppress colony pattern and cell migration in a dose- reliant manner in clonogenic and wound healing experiments. The typical intercalation of 19e with CT- DNA with a binding con­stant of 1x105 M
- 1
was then identied by molecular modeling and DNA binding afnity
experiments using relative viscosity, circular dichroism, and UV- visible spectroscopy.
The cytotoxic activity of 3- (1H- benzo[d] imidazole- 2- yl)- β- carboline metal com­plex was tested by Jin et al. using cisplatin as the standard reference. The metal β- carboline complexes 22 to 25 shown in Scheme 1.9 were produced as a result of the reaction between the β- carboline imidazole amalgam 21 and a number of metal salts. When compared to the usual cisplatin treatment, the anticancer evaluation report against several cancer cell lines was unsatisfactory (Jin et al. 2014).
The structural unit of naturally occurring eudistomin compounds contains β- carboline and exhibits a numerous biological attributes. The prepared eudistomin K derivative showed excellent efcacy when tested against numerous malignant cell lines, including LI- 210, Molt- 4F, MT- 4, and P- 388 leukemic cells. Successful overall synthesis of Eudistomin U was noted and its cytotoxicity examined. A Suzuki
SCHEME 1.8 Synthesis of C3- tethered triazolo- β- carboline derivatives.
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β- Carbolines
SCHEME 1.9 Synthesis of β- carboline complexes with 3- (1H- benzo[d] imidazole- 2yl)- metal.
SCHEME 1.10 Synthesis of eudistomin U.
cross- coupling reaction among β- carboline and indoleboronic acid followed by DDQ- mediated oxidation of lactum 26 produced compound 27, which was then transformed into the desired product 28 in the presence of a base (Scheme 1.10). The prepared compound has IC50 value of 15.6 M against the C19 cancer cell line when its potency was evaluated using the MTT cell viability test (Rinehart et al. 1984; Schupp et al. 2003).
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β- Carbolines as Anti-Cancer Agents
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SCHEME 1.11 Synthesis of novel nickel (II) complex of 6- methoxy- 1- pyridine- β- carboline.
Jing- Mei Yang et al. fabricated a novel nickel (II) complex of 6- methoxy- 1- pyridine- β- carboline 33, which is depicted in Scheme 1.11. The intermediate 31 was prepared from commercially available 5- methoxytryptamine 29 and pyridine- 2- carbaldehyde 30 by using Pictet– Spengler cyclization (Yang et al. 2018). 6- Methoxy- 1- pyridine- β- carboline 32 was found from intermediate 31 by dehydrogenation, which was catalyzed by Pd/ C. Finally nickel (II) complex of 6- methoxy- 1- pyridine- β- carboline 33 was made by hydrothermal synthesis in 12:1 methanol/ DMSO using Ni((II)NO3)2•6H2O and 6- methoxy- 1- pyridine- β- carboline 32.
The produced complex is subjected to cytotoxicity evaluations against six cancer cell lines (MGC- 803, Hep G2, T24, OS- RC- 2, NCI- H460, and SK- OV- 3) as well as the human normal liver cell line HL- 7702. Compared to ligand 32 and cisplatin, the IC50 values of MGC- 803, Hep G2, T24, OS- RC- 2, NCI- H460, and SK- OV- 3 were generally lower, falling within the micromolar range (3.77– 15.10 μM).
Ramya Tokala et al. reported production of novel β- carboline- thiazolidinedione hybrids motifs and evaluated for in vitro cytotoxicity possibilities against certain human cancer cell lines, specically, PC- 3, A549, MG- 63, HCT- 15, MDA- MB­231, A431, and PANC- 1 along with a normal human cell line (L- 132) (Tokala et al.
2018). β- carboline- linked 2,4- thiazolidinedione hybrids motifs 39 were prepared by a parallel synthesis principal used in the Knoevenagel condensation reaction. The condensation reaction between 1- aryl- 9H- pyrido[3,4- b]indole- 3- carbaldehydes 36 and various substituted 2,4- thiazolidinediones was performed (Scheme 1.12). Readily available L- tryptophan 34 esteried using thionyl chloride in methanol gives L- tryptophan ester 35, which subjected to Pictet– Spengler reaction with different aldehydes by with catalytic quantity of TFA produces diastereomers 36. The com­pound 36 aromatized by means of KMnO4 to afford 37 followed by reduction of ester group with LiAlH4 offers the consequent alcohols 38. Activated MnO2 then converted these alcohols to their related aldehydes 39.
Through the Pictete– Spengler condensation of L- tryptophan with formaldehyde, the free ligand Norharman was generated quickly and then reuxed in ethanol to produce Ru1 through Ru4 (Chen et al. 2013). These ndings showed that the 2- N
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SCHEME 1.12 Synthesis of novel β- carboline- thiazolidinedione hybrids motifs.
β- Carbolines
atoms on Norharman are coupled with ruthenium. The DFT approach was used to optimize the complexes Ru1 through Ru4 geometries depicted in Figure 1.2.
According to Siyu Zhu et al., new β- carboline- fused imidazolium motifs 45 were synthesized, based on the fascaplysin structure, and tested for cytotoxicity (Zhu et al.
2022). The 3- (4,5- dimethylthiazol- 2- yl)- 2,5- diphenyltetrazolium bromide (MTT) assay was used to assess the cytotoxicity of 45 in lung carcinoma (A549), gastric car­cinoma (BGC- 823), murine colon carcinoma (CT- 26), liver carcinoma (Bel- 7402), and breast carcinoma (MCF- 7) cell lines. The ndings demonstrated that the majority of the target compounds exhibited outstanding activity against one or more cancer cell lines. The compounds’ strong inhibitory effect on VEGFR2 was conrmed by docking studies because it bound to the important amino acids in the active site (Ile892, Leu889, and Asp1046) and interacted hydrophobically with the hydro­phobic pocket of the receptor. Scheme 1.13 depicts the target novel β- carboline- fused imidazolium derivatives synthesis processes. L- tryptophan was used as the starting material for synthesis of harmane using Pictet– Spengler cyclization, which was then followed by oxidation and decarboxylation in one step with the help of active manga­nese dioxide (MnO2). The key intermediates, β- carboline- 1- carboxaldehydes 43, were produced by rst synthesizing the N9- alkylation products 41 from the harmane 40. The methyl group at position 1 of the compounds 41 was then further oxidized to its corresponding carboxaldehyde using selenium dioxide (SeO2) in anhydrous dioxane. Finally, the required β- carboline N- fused imidazolium 44, 45 was synthesized by reacting 43 with the appropriate primary amine, formaldehyde, and acetyl chloride while utilizing anhydrous alcohol as a solvent.
As reported by Dighe et al., the Mannich reaction between methyl 1- (dimethoxymethyl)- 9H- pyrido[3,4- b]indole- 3- carboxylate 46, formaldehyde, and primary amines synthesized a number of new N- heterocyclic carbenes based on
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β- Carbolines as Anti-Cancer Agents
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FIGURE 1.2 Geometries of complexes Ru1, Ru2, Ru3 and Ru4.
SCHEME 1.13 Synthesis of β- carboline- fused imidazolium motifs.
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β- Carbolines
SCHEME 1.14 Synthesis of N- heterocyclic carbenes based on β- carbolines.
β- carbolines 49 as shown in Scheme 1.14 (Dighe et al. 2015). Using human breast
cancer and lung cancer cell lines, the antiproliferative effectiveness of each synthesized β- carboline motif was evaluated. After 24 hours of treatment, three motifs of 49 displayed IC50 values of less than 10 μM against human breast cancer MDA- MB- 231 cells. However, owing to their great afnity for HSA, which was examined spectro­scopically with compound 3h, these analogs had no in vivo effect in animal models. The starting compound methy- 1- formyl- 9H- carboxylate 46 react with formaldehyde and aniline in ethanolic HCl solvent in situ by replacing HCl with AcCl, this reaction condition gave a product 49 in 92% yield.
By introducing various alkylamino(methyl) groups into the 1,3,4- oxadiazole unity of 50, Savariz et al. reported the synthesis and anticancer activity assessment of many new Mannich bases (Savariz et al. 2010) 51 (Scheme 1.15). The aim of the current report is to synthesize six series of β- carboline derivatives employing the Mannich bases formation reaction and to investigate the effects of various 3- alkylamino (methyl) substituents on the oxadiazole ring with the expectation that performing so will improve their antitumor activity. More particularly, the production and anticancer action in vitro of 3- alkylamino(methyl)- 2- thioxo- 1,3,4- oxadiazol- 5- yl groups at C- 3 on β- carboline derivatives 51. The antibacterial properties of Mannich bases 51 and 50 were also assessed.
1.3.1.3 Topoisomerase Inhibitors
Sathish et al. outlined the synthesis of podophyllotoxin- linked β- carboline motifs for potential applications as DNA topoisomerase II inhibitors and anticancer medicines (Sathish et al. 2018). Compounds 53 are produced when β- carboline acids 52 react with 4- amino- podophyllotoxin in the presence of the coupling mixture of EDCI and HOBt as shown in Scheme 1.16. Using the MTT approach, the in vitro cytotoxicity
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β- Carbolines as Anti-Cancer Agents
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SCHEME 1.15 Synthesis Mannich base based β- carboline derivatives.
of all synthesized podophyllotoxin linked β- carboline motifs against several human cancer cell lines, including A- 549, DU- 145, MDA MB- 231, HT- 29, and HeLa, was assessed. Most of the 30 motifs exhibited excellent cytotoxicity and selectivity against DU- 145 cells as compared to doxorubicin, etoposide, and podophyllotoxin, with an IC50 value ranging from <10 μM to <5 μM.
Additionally, Kamal et al. prepared a dithiacarbamate with β- carboline motifs that have the ability to block DNA topoisomerase II and induce apoptosis (Kamal et al. 2015). The compound 54 has been transformed into the expected compound 55, depicted in Scheme 1.17, through the addition of carbon disulde, alkyl halides such as methyl iodide, allyl bromide, and benzyl bromide, as well as TEA in pyri­dine. The cytotoxic effects of all the produced compounds on a variety of cancer cell lines, namely A- 549, MCF- 7, DU- 145, and HeLa, were studied. These synthesized compounds 55 were then tested for their ability to induce apoptosis using Annexin V- FITC, Hoechst staining assays, and DNA- binding studies. It was found that these compounds bind to DNA more strongly and inhibit topoisomerase II, which causes cell death.
The impact of Harman and norharmanon on the functions of DNA topoisomerases was studied by Funayama et al. It was found to inhibit DNA topoisomerase I activity, with corresponding ED50 values of 23.8 and 34.4 mg/ ml (Funayama et al. 1996). However, topoisomerase II- mediated stability of the complex that can be broken as well as topoisomerase II inhibitory action were not seen with these drugs. Scheme
1.18 depicted the synthesis route of amino acid functionalized β- carboline motifs.
1.3.1.4 Combilexins
One of these compounds, called combilexin, has the ability to attach to DNA in two different ways: by binding to the DNA minor groove and by intercalating DNA. A set of substituted phenyl and chalcone/ (N- acetyl)- pyrazole moiety containing
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β- Carbolines
SCHEME 1.16 Synthesis of podophyllotoxin linked β- carbolines.
SCHEME 1.17 Synthesis of dithiacarbamate containing β- carbolines.
β- carboline hybrid motifs 62 were synthesized by Kamal et al. Using the 3- (4,5- dimethylthiazol- 2- yl)- 2,5- diphenyl tetrazolium bromide (MTT) assay (Scheme 1.19), all the prepared hybrid products 62 and 63 were evaluated against several cancer cell lines, including A- 549, DU- 145, MCF- 7, HeLa, ACHN, and HEK- 293 celllines. Doxorubicin and harmine served as positive controls. When some compounds were
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β- Carbolines as Anti-Cancer Agents
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SCHEME 1.18 Synthesis of amino acid functionalized β- carbolines.
SCHEME 1.19 Synthesis of Combilexin.