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172 Chemistry and Biology of Beta-Lactams
1
H
Sonication
1
H
Sonication
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SCHEME 5.16 Microwave-Induced and Ultrasound-Assisted Synthesis of Pyrrole-Fused Beta-Lactams.
Ar
N
2
O
SCHEME 5.17 Microwave-Induced and Ultrasound-Assisted Synthesis of Pyrrole-Fused Beta-Lactams.
N
2
O
SCHEME 5.18 Microwave-Induced and Ultrasound-Assisted Synthesis of Pyrrole-Fused Beta-Lactams.
2
+
N
Ar
H
1
Ar
2
+
N
Ar
H
1
3
3
CO
C
O
OCH
O
O
CH
3
3
Bi(NO3)
MW
or
Bi(NO3)
MW
or
3
3
N
N
O
Ar
2
N
O
Ar
Ar
2
N
Ar
reaction produced diastereomers of cis- and trans-beta-lactams. It was important to note that p-toluene sulfonic acid under the same conditions afforded the pyrroles also in microwave-induced or sonication reactions (Scheme 5.16).
Realizing the importance of pyrrole-substituted beta-lactams, microwave-induced and sonication­assisted reactions were extended with other starting materials. For example, 3-amino beta-lactams reacted with 2,5-dimethoxy tetrahydrofuran in the presence of catalytic amounts of bismuth nitrate under microwave irradiation (or under sonication), and pyrrole was isolated (Scheme 5.17).
Substituted pyrrole-fused beta-lactams were also prepared through a reaction of hexane dione and amino beta-lactams in a microwave or in a sonicator using bismuth nitrate as the catalyst (Scheme 5.18). Notably, a number of acidic catalysts were used successfully for this transformation [51–57]. Among them, iodine, bismuth triate, bismuth nitrate, and p-toluene sulfonic acid were the best. The stereo­chemistry of the beta-lactam rings remained unaltered during this process.
5.9 Microwave-Induced and Ultrasound-Assisted
Intramolecular Oxa-Michael Reaction
Hetero-Michael’s reaction describes a nucleophilic conjugate addition of oxygen, nitrogen, and sul­fur to the olenic bond. anti-inammatory, anti-aggregating, progesterone agonist, antithrombotic, antihistaminic, anxiolytic, antipsychotic, glycosidase inhibitor, and nitric oxide synthase [58–64]. The 1,4-dioxazepane nucleus
1–4
Seven-membered 1,4-oxazepanes have attractive bioactivity that includes
173Microwave and Ultrasound in Beta-Lactam Chemistry
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SCHEME 5.19 Synthesis of Chiral Amino-Beta-Lactams. Reagents: (a) NaIO4, (b) ArNH2, (c) N-phthaloylglycine, 2-chloro-1-methylpyridinium iodide, Et3N, (d) ethylenediamine.
SCHEME 5.20 Conversion of the Amino Group to the Unsaturated Substrate. Reagents and conditions: (a) benzaldehyde (b) NaBH4, (c) K2CO3, THF, ethyl-(E)-4-bromobut-2-enoate and methyl-(E)-4-bromobut-2-enoate.
represents a signicant clinically active drug candidate, Sintamil, Loxapine, Batrachotoxin, and Microline A.
A highly regio- and stereoselective method for the synthesis of beta-lactamfusedwith 1,4-oxaz­epanewas developed. Our study used 3-amino-beta-lactam as a chiral building block. This was obtained from 1,2:5,6 -di-O-isopropylidene-D-mannitol. The chiral aldehyde was condensed with an aromatic amine to get aldimine. Enantiomerically pure cis-N-phthalimido-beta-lactam was obtained using phtha­loylglycine as the reactant (Scheme 5.19).
The free amino group was masked by transforming to its corresponding imine followed by sodium borohydride reduction (Scheme 5.20). The amine was then alkylated with the unsaturated bromo ester
174 Chemistry and Biology of Beta-Lactams
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to afford the Michael acceptor. Iron (III) chloride was the best reagent for deacetonation and partial Michael addition reaction. This result was helpful to conduct the one-pot intramolecular oxy-Michael reaction. Potassium hydroxide was found suitable to activate the oxy-nucleophile to accomplish the 7-exo-trig-cyclization using microwave irradiation or sonicator. The annulated 1,4-oxazepane ring sys­tem was obtained (Scheme 5.21 and Scheme 5.22).
SCHEME 5.21 Michael Reaction. Reagents and conditions: (a) FeCl3, (b) KOH, THF, water, (c) TBDMSC, imidazole.
SCHEME 5.22 Cyclization by Microwave and Sonicator.
175Microwave and Ultrasound in Beta-Lactam Chemistry
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5.10 Microwave-Induced and Ultrasound-Assisted Synthesis of
Polycyclic β-Lactams by Azide-Alkyne Cycloaddition
The intramolecular azide-alkyne cycloaddition has attracted attention in synthetic chemistry. The metal­free intramolecular azide-alkyne cycloaddition in beta-lactam science was not investigated. Our syn­thetic protocol was based on intramolecular azide-alkyne cycloaddition reaction, which is anticipated to lead into a highly functionalized tricyclic core structure of the β-lactams. The hydroxyl alkyne ether of the β-lactam was produced from a sequence of chemical transformations. The hydroxyl group was transformed into the propargyl ether by treating a suspension of the sodium hydride in anhydrous THF (Scheme 5.23). The isopropylidene group of β-lactam was deprotected to the corresponding β-lactam vic-diol by ferric chloride.
These diols were converted to 4-formyl β-lactams. The formyl compounds were treated with sodium borohydride to afford the 4-hydroxymethyl β-lactams (Scheme 5.24).
The mesylate or tosylate of the alkyne was treated with sodium azide at 80–100°C for 12–24 h. The reaction proceeded to give a fused triazolo-oxazepine β-lactam. The same reaction was conducted under a microwave or a sonicator in toluene and gave the products. These azide-alkyne cycloadditions of ter­minal alkynes were performed (Scheme 5.25).
SCHEME 5.23 Chemical Manipulation of the Substrates for Cycloaddition.
SCHEME 5.24 Preparation of the Substrate for Cycloaddition.
SCHEME 5.25 Azide-Alkyne Cycloaddition by Microwave or Sonication.
176 Chemistry and Biology of Beta-Lactams
RO
Ph
RO
Ph
a: b:
(-)-5
c
(+)-4
HO
Ph
TsO
Ph
RO
Ph
a: b:
(-)-9
R=H
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5.11 Microwave-Induced Enzymatic Reactions on Substituted β-Lactams
Microwave-Induced Baker’s Yeast-Mediated Reactions
Microwave-induced reactions of the 3-keto group in substituted β-lactam afforded the hydroxy beta­lactam, the side chain of Taxol and Taxotere. In addition, chiral hydroxy β-lactams are important starting materials for the preparation of many other molecules [65–69].
Microwave heating irradiation and enzymatic catalysis were combined in the preparation of simple crucial molecules. Several papers explained the degradation of toxic organic pollutants using enzymes from bacteria, fungi, and plants. The investigations on this topic contributed to minimizing the toxicity of the pollutants and obtaining desired compounds. Therefore, microwave method with enzymatic pro­cess became an environmentally friendly method.
The reduction of keto esters to their optically active hydroxy esters was studied with free and immo­bilized baker’s yeast. Water and organic solvents were used in the biocatalytic processes. Glucose acted as an electron donor and as a cofactor in baker’s yeast-induced methods. Glycerol was used for some enzyme-induced methods.
Baker’s yeast (S. cerevisiae) was employed to reduce the keto group of α-keto-β-lactam in glycerol in a domestic microwave. Glycerol was ideal for microwave-mediated reactions. Microwave-induced reac­tion of the keto-β-lactam with baker’s yeast in glycerol was conducted. Two hydroxyl compounds (cis- and trans-isomers) were produced in a 3:1 ratio in 65% yield. The acetates were made from the hydroxyl compounds. The cis-compounds (3R, 4S) had positive optical rotation, and the trans-compound had (3S, 4R) a negative optical rotation (Scheme 5.26). To know the absolute conguration, the tosylate was made from a known conguration and reacted with sodium acetate (Scheme 5.27). The compound produced by yeast reduction was identical with the product made synthetically.
These acetates showed optical purity of more than 90%. Optically active cis-β-lactam that is present in Taxol and Taxotere was thus prepared in a microwave.
The success of this study opposed speculations that the enzymatic method cannot be performed suc­cessfully in a microwave. Rather, it conrmed that baker’s yeast is equally applicable at relatively high
SCHEME 5.26 Microwave-Induced Baker’s Yeast-Mediated Reduction.
SCHEME 5.27 Microwave-Induced Inversion of Tosylate.
O
O
Ar= Ar=
O
Ar= Ar=
Ph
Baker's
N
Glycerol,
Ar
p
-anisyl
p
-bromophenyl
N
Ar
p
-anisyl
p
-bromophenyl
TsCl
Py
yeast
MW
N
Ar
O
Ac
O/
2
Pyr
R=Ac
NaOAc
N
O
DMSO
Ar
O
O
NaOH/ MeOH
N
Ac Pyr
N
Ar
2
R=A
Ar
O/
177Microwave and Ultrasound in Beta-Lactam Chemistry
Ar
O
Ar
O
A
Ar
1
Sonication
NO
2
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AcO
2
N
+
Ar
O
1
N
2
Ar
1
Lipase
Phosphate
MW
cO
SCHEME 5.28 Lipase-Catalyzed Hydrolysis of the Acetate.
SCHEME 5.29 Microwave-Induced or Sonication-Assisted Aromatic Nitration with Bismuth Nitrate-Clay.
HO
Bi(NO3)
Clay
MW
or
3
2
N
Ar
temperature in a microwave-mediated reaction process. This reduction method was signicant as this produced chiral compound in the absence of any chiral chemical agents.
Microwave-Induced Lipase-Mediated Reactions
Different types of lipases were used to hydrolyze the 3-acetoxy group in monocyclic cis-beta-lactams in a microwave oven [70 –72]. The temperature was kept between 40 and 50°C, and the irradiation time was for 5–6 min. Phosphate buffer and glucose were also used along with organic solvents (mainly etha­nol) as the reaction medium. A few experiments were conducted to know the progress of the reaction. Optically pure hydroxy (product) and the unreacted acetoxy were obtained. This method is therefore an example of a kinetic resolution (Scheme 5.28).
5.12 Microwave-Induced and Ultrasound-Assisted Facile
Nitration of the Aromatic Rings in β-Lactams
Aromatic nitration is a very useful reaction for the preparation of aromatic nitro compounds. In general, aromatic nitration is conducted with strong nitric acid, nitric acid-sulfuric acid, and nitronium tetrauo­roborate. In our study, bismuth nitrate impregnated with different types of clay was used for the nitration of benzene, naphthalene, anthracene, pyrene, and chrysene derivatives. Mononitro derivative was the product in most of the examples. Microwave-induced clay-impregnated bismuth nitrate was used, and nitro derivative was obtained in comparable yield (Scheme 5.29). This reaction was also conducted using ultrasound with equal success.
An extension of aromatic nitration was done with N-aryl beta-lactams. Under identical conditions, p-anisyl-substituted beta-lactams were nitrated, and two isomeric products were obtained (Scheme 5.30). This reaction afforded products with cis- and trans-substituted beta-lactams. Interestingly, this reaction afforded the two nitro products when ultrasound was used as the energy source.
In order to identify the best condition, a study using naphthalene was conducted. A series of solids such as montmorillonite, silica gel, alumina, and molecular sieves were investigated. Montmorillonite was the best solid for this purpose, and the product was obtained in 90% yield. The reaction of naphtha­lene with silica gel as support under identical conditions afforded nitronaphthalene in lower yield. The reaction did not give the nitro compound without microwave irradiation. Molecular sieves and acidic alumina were unable to produce products.
Mixing the starting compounds with bismuth nitrate and montmorillonite with a polar solvent, evapo­ration of the solvent, and irradiation of the reaction mixture in a microwave were the conditions for nitration. The formation of a mixture of two mononitro derivatives indicated a lesser selectivity due to the activation of the ring by the methoxy group.
Thus, the nitration depended on the nature of the solid support. To explain this subject, the concept of penetration depth of the solid support in the microwave oven was introduced.
178 Chemistry and Biology of Beta-Lactams
Z
Ar
3
3
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Ar
N
O
OCH
Ar
Z
N
O
OCH
SCHEME 5.30 Microwave-Induced and Ultrasound-Assisted Nitration of p-Anisyl Group in Beta-Lactams.
3
3
Bi(NO
3)3
Clay MW
or
Sonication
Bi(NO
Clay
MW
or
Sonication
Z
3)3
Ar
N
O
Z
N
O
NO
OCH
Ar
NO
OCH
Z
+
O
2
3
Z
+
O
2
NO
N
N
2
OCH
Ar
NO
2
OCH
3
TABLE 5.1
Dielectric Constant and Penetration Depths of the 2.45 GHz Microwaves for Selected Materials
Material Penetration depth (cm) Dielectric constant
Montmorillonite 3–19 2–40 Silicon dioxide/quartz 1,000–20,000 3.5–5 Aluminum oxide 300–3,000 8.5–9 Molecular sieves/zeolites
>100
1–3
The electromagnetic radiation by the microwave enters the surface of a material [76–82]. But a part of the radiation reects from the surface of the material, and another part penetrates inside the material. The dipole moment, dielectric constant, and penetration index of the solid were crucial for the success of the microwave-induced reactions. The radiation that has penetrated the material interacts with the components of the reaction mixtures, molecules, and ions. Moreover, the radiation can penetrate the material at various depths depending on the properties of the materials. The penetration depth values are, therefore, important. The penetration depth of a eld is the distance from the surface of the material to the internal point where the eld strength reduces to 1/e (=36.8%) of the original value at the surface.
The penetration depths of the 2.45 GHz microwaves for a few solids are given in Table 5.1. A lower penetration depth of the solid support was helpful for the aromatic nitration. Therefore, montmorillonite (3–19 cm) acted as a superior support for nitration. Due to the small penetration depth compared to other solids, electromagnetic radiation penetrates only a small distance. So, a controlled and effective heating takes place with montmorillonite. The controlled and efcient heating was able to generate products in a superior way compared to bulk heating of the whole reactants. On this basis, silicon dioxide or quartz, alumina, and molecular sieves were not effective, because of their high penetration depth. These four solids have comparable low dielectric constant. The results indicated that the dielectric constant is less crucial in nitration under the microwave [83]. The binding of bismuth nitrate to the hydroxyl groups of the montmorillonite was important for nitration reaction. The lower penetration depth of the montmoril­lonite was helpful to produce nitronium ions effectively.
5.13 Microwave-Induced and Ultrasound-Assisted
Hydrogenation in Beta-Lactams
In continuation of our research strategy in using beta-lactams for the synthesis of diverse molecules, unprecedented results based on ultrasound- and microwave-induced hydrogenation reaction were devel­oped. Hydrogenation and hydrogenolysis with metal-mediated processes are fundamental reactions. This reaction was performed, in general, with metal catalysts (palladium, platinum, nickel, and rhodium)
179Microwave and Ultrasound in Beta-Lactam Chemistry
r
XArZ
-Cleavage
O
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3
2
N Y
R
1
a
1
4
O
1-C2
N
(O)-Cleavage
R
Z
Ar
+
N
R
1
O
ArZ
4
3
N
2
1
R
1
1
N
Z
+
O
A
Y
a
4
Ar N
3
1
R
1
2
ZOX
4
1
N
-C
FIGURE 5.3 Microwave or sonication-induced possible bond cleavage in beta-lactam ring.
and hydrogen gas applying pressure [84–87]. Researchers used different other sources to overcome the ammability and danger during chemical reaction with hydrogen gas. A few of these procedures became popular. These methods used sodium formate, Raney nickel, hydrazine, cyclohexadiene, and cyclohex­ene as the alternative source of hydrogen.
The cleavage of the N1–CO bond in certain beta-lactams was facile, and this was easily achieved by the attack of nucleophiles. There were other possibilities of beta-lactam ring cleavage routes. The most probable was N1–C4 bond cleavage, and it was used for the synthesis of α-amino acid, hydroxy acid, polyamides, and polyamino-alcohol (Figure 5.3).
Ultrasound-induced hydrogenolysis of β-lactams with C4 aryl groups was conducted by ammonium formate and Pd/C. This reaction produced open-chain amides as the products in excellent yield. This procedure was fast. But sterically hindered polyaromatic β-lactams did not undergo N1–C4 bond break­age following this method. In catalytic hydrogenation, hydrogen gas was used. Hydrogen gas in the pres­ence of metals is re sensitive. It is necessary to remove unused hydrogen gas from the reaction mixture by a pump to prevent explosion or re. In catalytic transfer hydrogenation procedure, a hydrogen gas donor is used at different temperature.
Ultrasound-mediated catalytic transfer hydrogenation reaction proceeds smoothly at 40°C, and the amides were obtained within 10 min (Scheme 5.31). Table 5. 2 indicates numerous examples.
To extend the method and to correlate the anticancer activity of the amides, an attempt was made to cleave the N1–C4 bond of trans-N-ch rysen yl-3- aceto xy-4- pheny l-2-a zetid inone and trans-N-ch rysen yl-3- pheno xy-4- pheny l-2-a zetid inone following ultrasound–hydrogenation method. No N1–C4 bond cleavage occurred in these substrates. Microwave irradiation method was also conducted using 10%
180 Chemistry and Biology of Beta-Lactams
MW
O
Z
HH
2
No reaction
2
OBn,
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=
Z
Ar
N
R
O
NH
.HCO
4
2
II
1
Pd
Ultrasound
or
(S)
Ar
Z
1
R N H
OAc, OBn,
=
Z
OAc, OH,
NH
NH
2
SCHEME 5.31 Synthesis of Hydroxy/Amino-N-Arylamide by Hydrogenation Using Ultrasound.
TABLE 5.2
Synthesis of Racemic Hydroxy/Amino-N-Arylamides by Palladium­Induced Catalytic Hydrogenation Under Ultrasound Irradiation
C6H C6H C6H
1
5
5
5
Z Condition(s) Yieldb [%]
NH OH
OAc 4-MeO-C6H4NH 4-MeO-C6H4OH 4-MeO-C6H4OAc
NH
OH
OAc
NH
OH
OAc
NH
OH
OAc
C6H C6H C6H C6H C6H C6H
5
5
5
5
5
5
5
5
5
40°C, 7 min
2
40°C, 8 min 40°C, 7 min 40°C, 7 min
2
40°C, 8 min 40°C, 7 min 40°C, 8 min
2
40°C, 8 min 40°C, 8 min 40°C, 7 min
2
40°C, 8 min 40°C, 8 min 40°C, 8 min
2
40°C, 8 min 40°C, 8 min
74 84 91 88 83 90 87 80 85 85 84 90 85 87 90
Entry Ar R
1 C6H 2 C6H 3 C6H 4 C6H 5 C6H 6 C6H
5
5
5
5
5
5
7 4-MeO-C6H4C6H 8 4-MeO-C6H4C6H 9 4-MeO-C6H4C6H 10 4-F-C6H 11 4-F-C6H 12 4-F-C6H 13 4-Me-C6H 14 4-Me-C6H 15 4-Me-C6H
4
4
4
4
4
4
SCHEME 5.32 Attempted Cleavage of N1–C4 Bond in Polyaromatic Beta-Lactams.
Pd/C and ammonium formate at 80°C. But no open-chain amides were formed (Scheme 5.32). The bulkier aromatic group was able to exert a severe stearic hindrance, which impedes the approach of the hydrogen radical to cleave the N1–C4 bond.
Mechanistically, these results were explained assuming the formation of a radical by the attack of pal­ladium. Palladium was able to assist a homolytic cleavage of benzylic proton of beta-lactam structure (I). A subsequent homolysis of the C–N bond produced a nitrogen radical (II). An intermediate III adopted route I to give amide (IV) in good yield when monocyclic aromatic rings were present in N of the ring. The driving force was due to the stabilization of nitrogen radical through back donation of the electron loan pair of carbonyl oxygen to the empty p-orbital. Polyaromatic ring exerted a greater steric hindrance, and as a result, stabilization of radical intermediate was hindered. In addition, it appeared that polycon­jugated system prefers pi stacking rather than stabilizing the nitrogen radical (Scheme 5.33).
Ar
H
4
Z H
Z = NH
NH
.HCO
4
or
Pd
2
II
MW
N 1
O
Ultrasound
,
OAc
R
HH
Pd
I
Ar
Br
Sonication
Ar
1
Ar
Sonication
O
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2
N
1
R
O
III III
SCHEME 5.33 Mechanism of Hydrogenation.
H
2
R
O
181Microwave and Ultrasound in Beta-Lactam Chemistry
H
H
H
H
2
R
N
1
R
Route b
N
O
R
Route
1
2
R
a
H
N
O
1
R
IV
R C
COOEt
H
SCHEME 5.34 Microwave and Ultrasound-Induced Reformatsky Reaction Toward Beta-Lactams.
Z
Br
N
SCHEME 5.35 Microwave- and Ultrasound-Induced Radical Cyclization.
2
+
Ar
1
Bu
SnH
3
AIBN
MW
or
In,
MW
THF
or
R
N
Ar
O
Z
N
O
CH
R
2
+
O
1
Z
+
3
N
O
2
N
Ar
5.14 Microwave- and Ultrasound-Induced Indium-
Mediated Reaction Toward β-Lactams
Indium metal was used for the synthesis of beta-lactams by reacting bromoethyl acetate with imines in a microwave or ultrasound instrument. Substituted bromoester produced a mixture of cis- and trans-beta­lactams in almost 1:1 proportion (Scheme 5.34) [88–90]. In some instances and particularly with N-aryl imines, intermediates of beta-amino esters were obtained. These beta-amino esters were cyclized to beta-lactams by Grignard reagent.
Cyclization Toward Polycyclic β-Lactams
To investigate a radical cyclization method, substituted alkenyl beta-lactams with bromoaryl system were rst prepared. Tributyltin hydride and AIBN were used as reagents in the intramolecular cycliza­tion of these types of compounds in a microwave as well as in an ultrasound instrument (Scheme 5.35) [91, 92]. It appeared that the aryl radical formed was cyclized with the olenic group through exo and endo mode giving a mixture of products. The stereochemistry of the products remained unaltered during this transformation.
5.15 Microwave- and Ultrasound-Induced Radical