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_5594_Библиотеки_им_академика_М_И_Перельмана

.pdf
Скачиваний:
0
Добавлен:
31.08.2026
Размер:
28 Мб
Скачать
112 Chemistry and Biology of Beta-Lactams
O
Ph
O
Ph
HO
OH
R
HO
OAc
OAc
RuCl
,
NaIO
https://t.me/med1917
Ph H
N
O
O
R
+
H
O
N
N
R
Cu source, Ligand
Ph
Me
R
Base
Me
Me
Me
Me
Me
Fe
N
N
R
Me
Me
Me
Fe
Me
Me
SCHEME 3.96 Synthesis of β-Lactams Using Metal-mediated Reactions.
O
TMSCl
O
OH
OO
NaH
O
I
OH
Major
OO
O
N
PhPh
+
N
PhPh
Minor
N
N
O
O N
O
NaOH
O
OO
O
OH
RNH
NaIO
4
OO
CHO
O
M
gSO
2
4
OO
H
O
N
1
SCHEME 3.97 Synthesis of β-Lactams Using Isosorbide.
H
O
O
H
R
triphosgene,
OH
1
N
AcOH DMAP/DCC
2
R
N
Et
3
HO
R
O
major
1
N
O
H
H
R
O
OAc
(60%)
2
H
H
O
Allyl
H
O
H
O
bromide
1
R
N
+
2
R
H
O
SCHEME 3.98 Chiral Synthesis of β-Lactams Using Isosorbide.
OO
2
R
CH
COCl,
2
O
O
H
O
H
O
O
H
OAc
N
Et
3
3
O
OAc
CH H
CN,
3
O
2
H
H
O
CCl
H H
2
R
N
1
R
O
4 4
O
OH
H
O
O
H
O
OH
H
O OAc
H
R
1
2
1
2
Me
O
1
2
https://t.me/med1917
O
Br
H
Acetyl Chloride
N
Et
3
Jones
oxidation.
N
H
1
R
H H
H
Zn/AcOH
NBS/ethelene glycol
N
O OH
H
1
R
H H
SCHEME 3.99 Synthesis of Polyaromatic β-Lactams Using Carene.
113Polycyclic Beta-Lactams
N
2
Et
DCM
N,
3
Mukaiyama
R
reagent
N
O O
H
1
R
H H
Br
H
O
OH
O
Br
H
HH
N R
N
O
H
R
HH
N R
1
+
R
O
1
N
Bi(NO3)
R
2
O
3
O
1
N
Bi(NO3)
R
2
3
HH
N R
N
O
1
+
R
2
HH
N R
N
O
R
SCHEME 3.100 Synthesis of Pyrrole-Substituted-β-Lactams.
Me
O S O
HH
2
R
O
3
N
O
O
S
O
HH
O
3
N
O
1
R
2
R
1
R
AcONa, DMSO
Ultrasound
AcONa, DMSO
Ultrasound
Me
Me
OHHC
O
O
OHHC
O
2
R
3
N
R
1
R
3
N
R
SCHEME 3.101 Ultrasound-Induced Synthesis of Trans-β-Lactams By Inversion of Conguration.
A chiral acid obtained from (+)-car-3-ene was employed. (+)-Car-3-ene on bromination with NBS gave bromoalcohol. Jones oxidation of bromoalcohol was conducted to obtain bicyclic chiral acid. The cycloaddition of bicyclic acid with imines in the presence of Mukaiyama reagent was conducted to yield trans-β-lactams. The auxiliary was removed by Zn/AcOH. An acetylation gave trans-β-lactams (Scheme
3.99). The cycloaddition was also possible under microwave condition.
The reaction of racemic α-keto-β-lactams with trans-4-hydroxy L-proline and cis-4-hydroxy D-proline
160
in the presence of bismuth nitrate gave a diastereomeric mixture of β-lactams with a pyrrole ring. Several green syntheses
Four diastereomers were produced with a high degree of cis-diastereoselectivity. This was the rst report of enantiomerically pure pyrrole-substituted β-lactams (Scheme 3.100). This method was also
161–165
including catalytic reactions were conducted in our lab.
166 –171
conducted using microwave-mediated reaction. We have investigated microwave-induced reactions extensively.
Banik et al.
172 –189
190
demonstrated an ultrasound-induced asymmetric preparation of trans-acetoxy β- lactams. A nucleophilic reaction of cis-3-mesyl β-lactams with sodium acetate afforded trans-3-acetoxy β-lactams under this condition (Scheme 3.101).
114 Chemistry and Biology of Beta-Lactams
O
tBu
R
O
2
R
O
O
Ar
Ar
https://t.me/med1917
S
HN
tBu
1
2
R
R
O
O
N
2
HCl
NH
1
R
O
O
O
R
tBu
SCHEME 3.102 Synthesis of β-Lactams Related to Monobactams.
1
R
O
N
OMe
CAN
H
2
R
O,
1
PS
R
NH
Lipase
COOH
2
1
R
R
O
NH
O
HN
+
1
R
R
MeOH, PS Lipase
SCHEME 3.103 Chemoenzymatic Synthesis of β-Lactams.
O
H
O
PMP
Allylbromide Zn
O
N
O
O
OH
N
PMP
O
O
Allylbromide TBAI
2
R
2
O
LiHMDS
O
N
PMP
OH
R
1
R
N
H
O
1
R
R
O
O
[Cl
(PCy3)
2
CO
2
NH
2
Ru=CHPh
2
Me
+
]
1
R
R
O
HN
O
O
O
N
PMP
O
THF/H 2h
,
4
H
N
NaHCO
O
Ar
O
(1:1),
2
3
1-bromo-2-butyne,
O
In,
PTSA, reflux,
NaIO
O
O
SCHEME 3.104 Synthesis of Spirocyclic β-Lactams by Zinc.
Guerrini et al.
group. A LiHMDS-mediated cyclization of the freebase produced 3-substituted-3-hydroxy-β-lactam. Th is β-lactam is a crucial precursor for the preparation of monobactams (sulfazecin) and an enzyme inhibitor (tabtoxin). The C4 conguration of the β-lactam was identical with that of the C1-aminodioxolanones (Scheme 3.102).
A chemoenzymatic enantiospecic synthesis of β-lactams was reported by Kanerva et al.
cally active uorinated β-lactams demonstrated a signicant impact on medicines. The PS lipase in methanol and in water was able to form the products (Scheme 3.103).
Benito et al.
193
spiro molecules were made using metal-induced carbonyl addition/cyclization reactions. Substituted
O
CHO
N
PMP
O
H
Cl
THF/N
4
191
reported the preparation of a chiral base via deprotection of N-tert-butylsulnylamino
O
OH
O
AgNO
3
N
PMP
O
OH
H
O
OH
NaIO
N
O
4
CHO
N
192
The opti-
developed a convenient procedure for the synthesis of spirocyclic β-lactams. These
SCHEME 3.105 Diastereoselective Synthesis of Bicyclic β-Lactams.
O
O CO
Me
Me
Ph
https://t.me/med1917
115Polycyclic Beta-Lactams
2
N
CO
2
Me
2
N
Me
CO
2
Ar
Me
CO
2
C
alkyl
+
MeO2C
O C
+
Et
MeO2C
N
Me
CO
2
N
5%
5%
(-)-A
(-)-A
Ar
alkyl
O CO
Ph
Et
N
Fe
R
1
R
A
Me
(-)-
B
Ph
SCHEME 3.106 Nucleophilic Catalysis Process for the Synthesis of β-Lactams.
(-)-
1
R
1
R
1
R
1
alkoxy-β-lactam aldehydes through a four-step reaction involving zinc-induced allylation, cyclization, and oxidative cleavage afforded the desired spirocyclic β-lactams (Scheme 3.104).
A diastereoselective preparation of bicyclic β-lactams via an annulation reaction of 3-alkyl or 3-aryl
enals and chalcone-derived imines was demonstrated by Bode et al.
194
The NHC-mediated reactions of
enals and α,β-unsaturated ketones produced cyclopentenes through a cascade reaction like a crossed­benzoin/oxy-Cope rearrangement. In principle, β-lactone or β-lactam products were possible (Scheme
3.105).
β-lactams was reported by Fu et al. β-lactams. No papers on nucleophilic catalysis of cycloaddition between ketene and azo compounds
were known. The pyrrolidino derivative induced the catalytic asymmetric preparation of aza-β-lactams (Scheme 3.106).
Muñiz et al.
β-lactam. Resin-bound amino acids were employed for solid-phase synthesis of this type of β-lactams.
195
Catalytic reaction of ketenes with imines gave optically active
196
showed a four-step method for the solid-phase synthesis of chiral tetrasubstituted
116 Chemistry and Biology of Beta-Lactams
H
H
https://t.me/med1917
SCHEME 3.107 Chiral Synthesis of β-Lactams Using Solid-Phase Method.
SCHEME 3.108 Photochemical Synthesis of Chiral β-Lactams.
ClO2S
N
ClO2S
O
H
H
O
N
H
H
CSI
H
O
ClO2S
H
SO2Cl N
N
H
H N
SO
2
SO
O
3
H
H
O
HN
3
H
Na
2
H
O
Na
H
SCHEME 3.109 Synthesis of Tricyclic β-Lactams from Carene.
Numerous chiral quaternary cis-β-lactams were prepared using this procedure. The cyclization of chiral N-2-chloroalkanoylamino acid was important to generate the chirality (Scheme 3.107).
Fujita et al.
197
demonstrated the preparation of a chiral β-lactam by photochemical γ-hydrogen abstrac­tion of thioimide. The photochemical method demonstrated γ-hydrogen abstraction of monothioimides. The reaction took place through a diradical intermediate. A number of chiral β-lactams were prepared using this method (Scheme 3.108).
The preparation of tricyclic β-lactams by reaction of chiral car-2-ene and chlorosulfonyl isocyanate
was reported by Koneva et al.
198
The sulfuryl chloride isocyanate (ClSO2NCO) was able to form two
carbocations. These tertiary carbocations formed a bond with nucleophilic nitrogen to obtain tricyclic β-lactams. The β-lactam ring and the cyclopropane ring became trans to each other (Scheme 3.109).
Ando et al.
199
demonstrated the synthesis of (S)-diuoro-β-lactams (Scheme 3.110).
Bromodiuoroacetates on reaction with chiral alcohols gave chiral esters. The ester on rhodium metal­induced Reformatsky reaction with Schiff base produced diuoro-β-lactams.
Otani et al.
200
investigated the preparation of chiral trans- and cis-β-lactams using metal ligand. The
C2-symmetric bis-(oxazoline) ligand was a good source for the Kinugasa reaction. The formation of the cis-isomer was higher than that of the trans-product (Sch e me 3.111).
Vassilev et al.
201
developed a method in which formation of chiral trans-β-lactam was only seen.
Microwave-induced irradiation of an optically pure amine and racemic aldehyde was performed. The imine on cycloaddition produced trans-β-lactam (Scheme 3.112).
117Polycyclic Beta-Lactams
Br
PMB
2
FF
*
Ph
PhPh
RN
*
R
https://t.me/med1917
RhCl(PPh3) Et
O
2
NH
O
Zn
N
HPh
N
PMB
,
3
Ph
PhPh
+
R
N
O
O
O
FF
SCHEME 3.110 Synthesis of Optically Active β-Lactams by Reformatsky Reaction.
+
Ph
+
Chiral KOt-Bu
O
O
alcohol
N
N
Br
R
FF
Cu(OTf)
S
O
O
-
Bu
O
NH
2
Cu(OTf)
H
N
R
*
2
-
Bu
S
2
H
N
PMB
O
N
PhPh
+
F
F
N
O
+
NH
O
Ph
R
PhPh
N
O
R
O
SCHEME 3.111 Stereocontrolled Synthesis of β-Lactams Using metal Ligand.
SCHEME 3.112 Stereospecic Synthesis of β-Lactams by Microwave.
Garud et al.
202
with optically active 4-acetoxyazetidinone and selenating substrate afforded trans-β-lactam. The anion produced on nitrogen by base treatment following kinetic and thermodynamics condition yielded trans­β-lactam (Scheme 3.113).
Rosa et al.
203
imine. A mixture of the two spiro-β-lactams was isolated. Spiro-β-lactams showed a cis-stereochemistry between N-Cbz and phenyl groups (Scheme 3.114).
Smith et al.
204
and imines to obtain β-lactams. The NHC derived from the C2-symmetric imidazolinium salts helped β-lactam formation from a ketene and a range of imines (Scheme 3.115).
A catalytic Lewis base-induced cycloaddition of ketenes was developed by Smith et al.
dition of ethylphenylketene with Schiff bases was investigated. The preparation of β-lactam from diphe­nylketene and N-tosyl imine was successful (Scheme 3.116).
Rimoldi et al. yeasts. The phenylpropanoate was converted into phenyl-substituted azetidinones through ester hydroly­sis and cyclization of the amino acid (Scheme 3.117).
R
H
2
MW
O
*
N
R
PhCH
R
PhCH
2CH2
2CH2
COCl
COCl
O
N
*
R
Ph
introduced alkene-seleno groups at the C4 position of the β-lactams. The reaction
explored the preparation of spiro-β-lactams by reacting proline carboxylic acid and
explored catalytic Lewis base-induced reaction for asymmetric cycloaddition of ketenes
205
A cycload-
206
prepared optically active β-lactam via catalytic asymmetric/biotransformation using
118 Chemistry and Biology of Beta-Lactams
OSBT
O
MsO
O
MeOH
https://t.me/med1917
H H
O
RBr,
SeK
NaH
RBr,
Me
DMF
OSBT
H H
Se
N
R
O
Se
n
SCHEME 3.113 Synthesis of β-Lactams Containing Selenium.
N
Cl
I
Me
PhCH=NBn
O
N
Et
N
OH
R
3
MsO
N R
Ph
O
Me
n
Cs2CO MeNHNH
+
N
Bn
O
3
MsO
NH
2
OAc
N R
Me
O
Ph
OSBT
H H
O
N Bn
NH
Se
n
K
CO
,
2
K
MeOH
CO
,
2
3
Ph
+
N
N R
Bn
N R
3
O
N Bn
Ph
SCHEME 3.114 Synthesis of Spirocyclic β-Lactams.
Herdewijn et al.
207
prepared β-lactam with lipopeptides. These molecules act as initial point to study
the reactivity of the β-lactam in peptidomimetics. The phthalimido-protected compound was reduced to amino acid. The phthalimido amino acid was then cyclized to prepare phthalisoimides. The phtha­lisoimide cis-compound was hydrogenated to obtain the amine intermediate. The coupling reaction of amine with the decanoyl-PTAN-COOH produced four lipopeptides (Scheme 3.118).
Long et al.
208
explored a process to prepare cis-β-lactams using photochemistry. The photooxida-
tion of thiazolidines was performed with singlet oxygen. It was produced from triplet O2 via 500 W halogen lamp with a photosensitizer, tetraphenylporphyrin (TTP). Mesylation and cyclization produced N-substituted monocyclic cis-β-lactams (Scheme 3.119).
Bull et al. clic β-lactams. These polycyclic β-lactams were used for the preparation of β-amino acids. Lithium or potassium enolates of a precursor underwent cyclization to generate a mixture of β-lactams in moderate
209
used an intramolecular ester enolate-imine cyclization for the preparation of polycy-
yields. Finally, clean formation of tricyclic β-lactam was achieved (Scheme 3.120).
3.4 Conclusion
Because of their medicinal properties and uses as starting compounds, diverse synthesis and biologi­cal investigations of β-lactams have been conducted extensively for the past many decades. Since the
119Polycyclic Beta-Lactams
Ph
Ph
Ph
Ph
Br
Br
https://t.me/med1917
SCHEME 3.115 Lewis-Base-Induced Catalytic Synthesis of β-Lactams.
BF4
N
N
KHDMS
O
SCHEME 3.116 Lewis Base-Induced Synthesis of β-Lactams.
Ts
N
H
Ph
Ph
Ts
O
N
preparation of penicillin, new families of β-lactam antibiotics have received attention. This series of compounds have wide applications in many other medical disorders. Asymmetric synthesis of β-lactams has been investigated by a number of research groups. Many crucial strategies have been discovered for the synthesis of the 2-azetidinone system present in β-lactams. These include Staudinger cycloaddi­tion, enolate-imine condensation, hydroxamate reaction, alkene-isocyanate reaction, and alkyne-nitrone method. Some of these methods have demonstrated excellent enantio- and diastereoselectivity. Domestic microwave-induced reactions have dramatic effects on the stereochemistry and rate of the β-lactam formation. Many β -lactams are used for the preparation of other heterocyclic compounds of medicinal signicance. The research scope on β -lactams has remained highly signicant. Therefore, we expect to nd numerous notable discoveries based upon this subject in the coming years.
120 Chemistry and Biology of Beta-Lactams
Ph
OOH
NH
OH
O
O
n
R
OR
PMP
t
https://t.me/med1917
OOH
OEt
NHCOPh
10%
Et
Ph
N
3
OH
NHCOPh
PPh
HCl
Br
Ph
OH
H
Br
N
Br
NaH
SCHEME 3.117 Synthesis of Optically Active β-Lactams by Catalytic Method.
O
N
O
O
N-methylhydrazine
S
OBn
N
O
H2N
·
Na
S
2
S
OBn
N
O
O
O
S
HN
N
OH
O
O
Dec-PTAN-COOH
EDCI
HOBt,
O
OBn
H3C(H2C)
DCC DCM
8
O
N
,
PySSPy
3
O
HO
H
Ph
O
S
N
O
O
O
H N
N H
O
NH
OBn
N
O
O
NH
S
N
2
O
OB
SCHEME 3.118 Synthesis of β-Lactams With Lipopeotides.
O
O
N
RON
O
S
NHOR'
hv,
TPP,
MsCl
THF
O
R
H
O
O
,
2
S
OH
O
R
N
S
O
O
NHOH'
N
S
H
N
SCHEME 3.119 Photo-catalyzed Synthesis of β-Lactams.
N
OEt
H
n
O
NaHMDS
15-crown-5
PMP
O
N
SCHEME 3.120 Intermolecular Ester-Enolate Reaction Toward β-Lactams.
Rearrangement
PMP
+
N
O
R
O
O
+
N
NHOR'
PMP
S
OOH
NH
COOE
121Polycyclic Beta-Lactams
https://t.me/med1917
Acknowledgements
AD is grateful to CEA-Grenoble, Joseph Fourier University, University of Göttingen, and University of Californ ia, Los Angeles for their support. BKB is grateful to US NIH, US NCI, Texas Kleberg Foundation, Stevens Institute of Technology, University of Texas M. D. Anderson Cancer Center, University of Texas­Pan American, University of Texas Health Science Center-San Antonio and Community Health Systems of Texas for their competitive nancial and moral support to his research. AD and BKB acknowledges support from their current employer, Prince Mohammad Bin Fahd University. The authors are grateful to Dr. Aarif Shaikh for his contributions and useful discussions.
REFERENCES
1. Flynn EH. Cephalosporins and Penicillins: Chemistr y and Biology. Elsevier; 2013.
2. Gordon EM, Sykes RB. Chemistry and Biology of β-Lactam Antibiotics. Morin, RB.; Gorman, M.,
Editors. Vol. 1. Academic Press New York; 1982.
3. Page MI. The Chemistry of β-Lactams. Springer Science & Business Media; 2012.
4. Biondi S, Piga E, Rossi T, Vigelli G. Synthesis and antibacterial activity of some thio trinems. Bioorg
Medi Chem Lette. 1997;7(15):2061–2066. doi:10.1016/S09 60-894X(97)00360-0
5. Dömling A, Starnecker M, Ugi I. The β-lactam-nucleoside chimera. Angew Chemi Int Edi Engli.
1995;34(20):2238–2239. doi:10.1002 /a n ie.199522381
6. Dömling A, Kehagia K, Ugi I. Employment of a steroidal aldehyde in a new synthesis of β-lactam
derivatives. Tetrahedron. 1995;51(35):9519 – 9522. doi:10.1016/00 40-4020(95)00541-F
7. Burnett DA, Caplen MA, Davis HR Jr., Burrier RE, Clader JW. 2-azetidinones as inhibitors of choles-
terol absorption. J Med Chem. 1994;37(12):1733–1736. doi:10.1021/jm00038a001
8. Doherty JB, Ashe BM, Argenbright LW, Barker PL, Bonney RJ, Chandler GO, et al. Cephalosporin
antibiotics can be modied to inhibit human leukocyte elastase. Nature. 1986;322(6075):192 –194. doi:10.1038/322192a0
9. Sheehan JC, Henery-Logan KR. The total synthesis of penicillin V. J Am Chem Soc. 1959;81(12):30 89–
3094. doi:10.1021/ja01521a044
10. Maruyama K, Ishitoku T, Kubo Y. Azetidine-2,4-diones via photocyclization of N-formyl-N-methyl
α,β-unsaturated amides. Chem Lett. 1980;9(3):265–266. doi:10.1246 /cl.1980.265
11. Sheehan JC, Bose AK. A new synthesis of β-lactams. J Am Chem Soc. 1950;72(11):5158–5161.
doi:10.1021/ja01167a099
12. Sheehan JC, Bose AK. The synthesis and reactions of some substituted β-lactams. J Am Chem Soc.
1951;73(4):1761–1765. doi:10.1021/ja01148a095
13. Miller MJ. Hydroxamate approach to the synthesis of .beta.-lactam antibiotics. Acc Chem Res.
1986;19(2):49–56. doi:10.1021/ar00122a004
14. Moriconi EJ, Crawford WC. Reaction of chlorosulfonyl isocyanate with bridge bi- and tricyclic olens.
J Org Chem. 1968;33(1):370–378. doi:10.1021/jo01265a075
15. Colvin EW, Monteith M. β-lactams from allyl- and (allenylmethyl)-silanes. J Chem Soc, Chem Commun.
1990;(18):1230–1232. doi:10.1039/C39900001230
16. Kałuza Z, Fudong W, Bełzecki C, Chmielewski M. Synthesis of β-lactams from sugar vinyl ethers and
isocyanates. Tetrahedron Lett. 19 89;30 (38):5171–5172. doi:10.1016/S0 0 4 0 - 4 039 (01)93477-X
17. Cordero FM, Pisaneschi F, Goti A, Ollivier J, Salaün J, Brandi A. New synthesis of β-lactams by eth-
ylene extrusion from spirocyclopropane isoxazolidines. J Am Chem Soc. 2000;122(33):8075–8076. doi:10.1021/ja0 0 0108e
18. Choi MKW, Yu WY, Che CM. Ruthenium-catalyzed stereoselective intramolecular carbenoid
C−H insertion for β- and γ-lactam formations by decomposition of α-diazoacetamides. Org Lett. 20 05;7(6):1081–1084. doi:10.1021/ol050 0 03m
19. Rigby JH, Brouet JC, Burke PJ, Rohach S, Sidique S, Heeg MJ. New entry into β-lactams via reaction
of dimethoxycarbene with isocyanates. Org Lett. 2006;8(14):3121–3123. do i:10.1021/ol061101q
20. Dhawan R, Dghaym RD, St. Cyr DJ, Arndtsen BA. Direct, palladium-catalyzed, multicomponent syn-
thesis of β-lactams from imines, acid chloride, and carbon monoxide. Org Lett. 2006;8(18):3927–3930. doi:10.1021/ol061308j