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Domino synthesis of 2-alkynylanilid(n)es/cyclization. The ob-
servation that aryl iodides and 1-alkynes can give coupling prod-
ucts through copper-catalyzed reactions21
set the stage to the devel-opment of a domino alkynylation/cyclization process in which free
N¨CH2-aryl- and 2-heteroarylindoles are directly prepared from2-
iodotrifluoroacetanilides and terminal alkynes in a single operative
step, avoiding the isolation of the 2-alkynyltrifluoroacetanilide
intermediates (Scheme 1, disconnection a + c). An example of this
chemistry is shown in Scheme 7.
Both [Cu(phen](PPh3)2]NO3
and CuI/PPh3 in toluene or dioxane serve as efficient catalysts.
The reaction tolerates a wide range of functionalized terminal
alkynes, including those containing ether, amide, aldehyde, ester,
nitro, and heterocyclic groups. Only 1-hexyne, among the alkynes
that were investigated, produced the desired indole product in low
yield, very likely because of a sluggish coupling step. Using the
same strategy, 2-aryl- and 2-heteroaryl pyrrolo[2,3-b]quinoxalines
have been prepared through the reaction of terminal alkynes
with 2-bromo-3-trifluoroacetamidoquinoxaline in the presence of
catalytic amounts of CuI, PPh3 and K2CO3 in dioxane at 110 ◦C.
This domino copper-catalyzed coupling/cyclization process
was also performed using a catalytic system made of a 1,10-
phenanthroline immobilized on a polystyrene/divinylbenzene
solid support and Cu(PPh3)NO3 as the copper source.
The cyclization stepwas not as efficient aswith [Cu(phen)(PPh3)2]NO3.
The ratio between the coupling intermediate and the 2-substituted
indole was slightly skewed toward the first one. However, the
catalytic system could be reused three times.
The procedure has been subsequently extended to 2-
bromoalkynyltrifluoroacetanilides using CuI and L-proline as
the ligand (Scheme 7).

Notably, despite the employment of
the less reactive bromo derivatives, the amino acid ligand al-
lows for running the reaction under conditions milder than
those employed with 2-iodotrifluoroacetanilides. Analogously to
the related reaction with 2-iodotrifluoroacetanilide, treatment
of 2-bromotrifluoroacetanilide with 1-heptyne produced 2-n-
pentylindole in low yield. However, when O-protected propargyl
alcohols were employed, the desired indoles were obtained in
satisfactory yields. Most probably, subtle changes in the electron
density of the terminal alkynes can influence their reactivity in the
coupling step.
2-Alkynylanilides have been prepared and cyclized in situ to
indoles by treating readily available N-protected ethynylanilines
with paraformaldehyde and secondary amines in the presence of
CuBr (Scheme 1, disconnection a + d + e).
This three-component
reaction provides a facile access to 2-(aminomethyl)indoles
(Scheme 8) and has been rationalized in terms of a domino process
that involves a Mannich type reaction of copper acetylides with
iminium ions followed by a copper-catalyzed hydroamination of
the resultant 2-alkynylanilide intermediates (Scheme 9).
With properly substituted amines, this strategy has been
shown to be feasible for the synthesis of a variety of polycyclic
indole derivatives combining the copper-catalyzed cyclization
with a subsequent cyclization step. Indole-fused benzo-1,4-diazepines have been prepared by a copper-catalyzed domino
three-component coupling/indole formation/N-arylation sequence
undermicrowave irradiation starting from2-ethynylanilines and o-
bromobenzylamines (Scheme 10).
The reaction can be extended
to the preparation of pyridine- and thiophene-fused tetracyclic
compounds. 1,2,3,4-Tetrahydro-b-carbolines have been prepared
in moderate to good yields by copper-catalyzed domino three-
component coupling/cyclization of an appropriate ethynylaniline,
aldehyde, and a secondary amine followed by the cyclization of
the resultant indole intermediate upon treatment with KOBu-
t/hexane or MsOH (Scheme 11).
Starting from diethynyl, diamino derivatives 1, various pyrrole-
fused indoles have been prepared via the three component chem-
istry (Scheme 12a), intramolecular hydroamination (Scheme 12b)
and a sequential intramolecular hydroamination/three compo-
nent coupling-cyclization reaction (Scheme 12c).

The N-arylation of 2-haloarylalkynes represents an interesting
alternative for generating 2-alkynylanilid(n)es in situ.Thisstrategy
has been successfully employed in the development of a domino
N-arylation/hydroamin(d)ation process (Scheme 1, disconnection
a + b). In this process 2-haloarylalkynes undergo a copper-
catalyzed N-arylation with anilines, amides and carbamates
followed by a copper-catalyzed cyclization in situ to the corre-
sponding indole derivatives (Scheme 13).
The synthesis of N-
arylindoles was performed under ligand-free conditions. KOBu-t
is superior to related bases such as NaOBu-t or LiOBu-t. ortho-
Substituents ormore sterically hindered anilines arewell tolerated.
The optimized protocol for the synthesis ofN-acylindoles has been
shown to be applicable to the synthesis of 5-azaindoles. Taking ad-
vantage of this protocol, freeN¨CHindoles can be prepared through
a one-pot process by using tert-butylcarbamate as nucleophile
in the copper-catalyzed domino N-arylation/hydroamin(d)ation
transformation, along with a subsequent simple treatment with
trifluoroacetic acid.
Arylalkynes bearing a nitrogen nucleophile ortho to the
arbon¨Ccarbon triple bond have also been generated from 2-
alkynyl)phenylisocyanates and allyl carbonates in the presence
f Pd(PPh3)4 and CuCl bimetallic catalyst.
Using this reaction, a
ariety of 2-(alkynyl)phenylisocyanates have been converted into
he corresponding 3-allyl-N-(alkoxycarbonyl)indoles (Scheme 1,
isconnection a + f ). Some examples of this cyclization reaction
re shown in Scheme 14. CuCl was proved to give higher yields
han CuBr and to be far superior to other copper salts such as
CuI, Cu(OAc), (CuOTf)2¡¤benzene, and CuCl2. Longer reaction
times are required when the substituent on the alkyne fragment
(R1
) is a bulky substituent. With a tert-butyl group no allylindole
was obtained and the sole product was the corresponding N-
allylaniline derivative. Electronic effects of the para substituents
on the aromatic ring as well as the bulkiness of the substituents R2
of the allyl carbonates do not seem to exert a significant influence
on the reaction outcome.
The proposed mechanism involves the following basic steps: a)
the reaction of the isocyanate group with the p-allylpalladium
alkoxide complex to give the p-allylpalladium complex 2 in
equilibrium with 3 (most probably, it could be better represented
as a heteroatom-containing bis-p-allylpalladium analogue 4);
b) a transmetalation step generating the intermediate 5;c)a
trans-aminopalladation followed by d) a reductive elimination
(Scheme 15).
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