Visible-light-promoted decarboxylative radical cascade cyclization to acylated benzimidazo/indolo[2,1-a]isoquinolin-6(5H)-ones in water

A metal-free visible-light-induced decarboxylative radical addition/cyclization procedure at room temperature was described for the synthesis of acylated benzimidazo/indolo[2,1-a]isoquinolines. The procedure was prepared in water via a reaction of functionalized 2-arylbenzoimidazoles or 2,3-diarylindoles and α-oxocarboxylic acids in the presence of phenyliodine(iii) diacetate (PIDA) in one step under mild reaction conditions. In this procedure, traditional heating and metal reagents could be effectively avoided to access 1,4-dicarbonyl-containing benzimidazo/indolo[2,1-a]isoquinoline-6(5H)-ones in satisfactory yields.

In recent years, photocatalysis has proven to be a sustainable and green synthetic platform which can efficiently convert light energy into chemical energy to form new chemical bonds. 1 However, most photocatalytic organic conversions are performed in toxic and volatile organic solvents. 2 Compared with traditional organic solvents, water has unique features to be a promising alternative to volatile solvents with the advantages of being a safe, non-toxic, abundant, and eco-friendly natural source. 3 Undoubtedly, the development of novel visible-light promoted synthetic methods in water is more in line with the principles of green chemistry, which is highly desired.
Nitrogen-containing heterocyclic compounds play extremely important roles in medicinal chemistry, functional materials, and natural products. 4 Especially, benzimidazole-isoquinoline fused framework A and indole[2,1-a]isoquinoline containing tetracyclic core structure B are not only widely present in some biologically active molecules, but also as important components of synthetic intermediates and functional materials. 5 Several representative polyheterocycles containing skeletons A and B with promising applications in the eld of treating hemoglobinopathies and cancer, peripheral benzodiazepine receptor ligand, modulating the potassium ion ux or organic electronics are shown in Scheme 1. 6 Benet from their signicant importance, the developments of novel synthetic method for benzimidazo/indolo[2,1-a]isoquinolin-6(5H)-ones have attracted considerable attention in the organic synthetic eld.
Recently, a-oxocarboxylic acids have gained much prominence to be acylation reagents owing to their easy preparation, stability, and high reactivity. 7 However, most transformations that employed a-oxocarboxylic acids as the acyl radical precursor require high-cost noble-metal-based catalysts 8 or some metal-free organocatalysts. 9 Radical-initiated cyclizations reaction has developed to be efficient processes for the construction of benzimidazo/indolo-isoquinoline-6(5H)-ones, 10 and the introduction of an acyl group to these meaningful frameworks has been realized using a-oxocarboxylic acids as acyl radical precursors. For instance, our group reported a decarboxylative cascade cyclization of N-methacryloyl-2phenylbenzoimidazole with a-oxocarboxylic acids for the construction of acylated benzimidazo[2,1-a]isoquinolin-6(5H)-Scheme 1 Selected examples of natural products and biologically active molecules. ones in the presence of AgNO 3 /K 2 S 2 O 8 in 2019 (Scheme 2a). 11 However, the requirement of a high-cost metal catalyst, high reaction temperature and strong oxidant is unavoidable. Very recently, our group disclosed a metal-free visible-light-induced decarboxylative arylation procedure for the construction of acylated benzimidazo/indolo[2,1-a]isoquinolines by using 2,4,5,6-tetra(9H-carbazol-9-yl)isophthalonitrile (4CzIPN) as a photocatalyst in organic solvents (Scheme 2b). 12 However, the increased manufacturing cost and inconvenient operation of eliminating the photocatalyst impede the applications of these methods in practical application, especially in the pharmaceutical industry. It's still highly desirable to explore a photocatalyst-free approach for the synthesis of acylated benzimidazo/indolo[2,1-a]isoquinolines in a sustainable reaction media.
With our continuing interests in green synthesis, 13 we herein describe an environmentally-friendly strategy to access benzimidazo/indolo[2,1-a]isoquinolin-6(5H)-ones under the irradiation of blue light. To the best of our knowledge, this is the rst example of the synthesis of acylated indolo/benzimidazo[2,1-a] isoquinolin-6(5H)-ones under irradiation of visible light in water, in which additional photocatalyst and volatile organic solvents could be effectively avoided.
For our initial explorations, we started our study by using 2methyl-1-(2-phenyl-1H-benzo[d]imidazol-1-yl)prop-2-en-1-one (1a) and 2-oxo-2-phenylacetic acid (2a) as the model substrates for the optimization of the reaction conditions in various solvents under irradiation of 5 W blue LED (Table 1). To our delight, this transformation reacted smoothly in presence of PIDA in MeCN or DCE for 8 h to access the desired product in 90% and 61% yield, respectively (entries 1-2). To reduce the impact of solvents on the environment, some green solvents including DMC, PC, H 2 O, 2-CH 3 -THF, EG, TBME, PEG-200, and PEG-400 (entries 2-10) were investigated. Most of the tested solvents could serve as reaction medium, and 80% yield of desired product 3a could be obtained when the reaction was performed in water. Considering that water has the advantages of excellent biocompatibility, non-combustibility and high specic heat capacity, the employment of water as solvents for organic transformation is desirable and attractive. 14 Therefore, we nally chose H 2 O as the best reaction solvent. To further improve the reaction efficiency, mixed solvents, such as MeOH/ water, EtOH/water, THF/water in different ratios were examined (entries [11][12][13][14][15][16]. However, no positive results could be obtained. Next, several control experiments were conducted, which showed that PIDA and light were essential for the transformation (entries 17 and 18). Moreover, the reaction that happened under the N 2 atmosphere provided slightly lower yields than that in the air (entry 19). Ultimately, the optimal reaction conditions were established as follows: 1a (0.2 mmol), 2a (0.4 mmol), and PIDA (0.4 mmol) in H 2 O at room temperature for 8 h under air atmosphere with the irradiation of 5 W blue LED.
With the above-optimized reaction conditions established, we subsequently started to explore the substrate scope and limitations of this transformation (Table 2). Initially, a series of a-oxocarboxylic acids 2 were employed as the acyl radical precursors to react with 2-methyl-1-(2-phenyl-1H-benzo[d] imidazol-1-yl)prop-2-en-1-one (1a) under the standard reaction conditions. It was pleasing to see that the a-keto acids with both electron-donating and electron-withdrawing substituents were Scheme 2 Synthesis of acylated indolo/benzimidazo[2,1-a]isoquinolin-6(5H)-ones. all suitable substrates to be converted into the desired annulation products 3a-3g in good yields (58-80%). Then, Nphenylacryloyl-2-phenylbenzoimidazole (1h) was utilized to react with 2a under the standard conditions. The target product 3h was obtained in an 83% yield, demonstrating negligible steric hindrance effects. Aerward, the reactivity of the 2-aryl indoles was evaluated. To our delight, indole derivatives bearing -Me, -F, -Cl, -Br, -CF 3 , and -CN on the indole ring were all compatible to deliver the annulation reaction products 3i-3q in moderate to good yields (43-86%). Notably, an unexpected product 3r was observed when 3,3-dimethyl-2-oxobutyric acid was used as the acyl radical precursor. We assumed that the in situ generated 3,3-dimethyl-2-oxobutyric radical could be converted into the more stable tert-butyl radical in this process.
Based on the experimental results and previous reports, 15 a plausible mechanism for the reaction was thus proposed as illustrated in Scheme 4. First, a ligand exchange interaction between PIDA and 2a led to the formation of hypervalent iodine(III) reagent A, which underwent I-O bond cleavage under the irradiation of visible light to deliver radicals B and C. Subsequently, the benzoyl radical could be generated via the fragmentation of B and C. The benzoyl radical was then added to the C]C bond of 1a to afford a radical species D, which underwent an intramolecular cyclization to give radical E. Radical E was then converted into carbocation F by PIDA or oxygen through a single-electron oxidation process. Finally, product 3a could be formed by rapid deprotonation of the carbon cation F.

Conclusions
In summary, we have successfully disclosed a metal-free visiblelight-induced decarboxylative radical cyclization process to Scheme 3 Control Experiments.
Scheme 4 Proposed Reaction Mechanisms. Table 2 Substrate scope for the synthesis of acylated indolo/benzimidazo[2,1-a]isoquinolin-6(5H)-ones a a Reaction conditions: 1 (0.2 mmol), 2 (0.4 mmol) and PIDA (0.4 mmol) in H 2 O (2 mL) with the irradiation of 5 W blue LED under air at room temperature for 8 h. Isolated yields. construct acylated benzimidazo/indolo[2,1-a]isoquinolines in water under photoredox catalyst-free conditions. The remarkable advantages of this strategy include photoredox catalyst and metal-free reaction conditions, sustainable reaction medium, room reaction temperature, and high efficiency. Further explorations on the applications of visible-light-induced organic synthetic transformations are currently ongoing in our laboratory.

Conflicts of interest
There are no conicts to declare.