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(Z)-dodec-3-en-1-ol, also known as cis-3-dodecen-1-ol, is an organic compound with a molecular formula of C12H24O. It is a colorless liquid with a distinct odor and is characterized by the presence of a double bond between the third and fourth carbon atoms in the molecule. (Z)-dodec-3-en-1-ol is an important intermediate in the synthesis of various chemical compounds and has applications in different industries.

32451-95-9

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32451-95-9 Usage

Uses

Used in Insecticide Development:
(Z)-dodec-3-en-1-ol is used as an intermediate in the synthesis of Z-3-Dodecenyl E-Crotonate, which is a key component in the development of insecticides. (Z)-dodec-3-en-1-ol is particularly effective against the Sweetpotato weevil, a destructive pest that affects sweetpotato crops.
Used in Pheromone Trap Production:
(Z)-dodec-3-en-1-ol is also used in the production of sex pheromone traps. These traps are designed to attract and capture male Sweetpotato weevils, thereby disrupting their mating patterns and reducing the overall population of the pest. This method of pest control is considered environmentally friendly and sustainable, as it targets specific pests without causing harm to non-target species or the surrounding ecosystem.

Check Digit Verification of cas no

The CAS Registry Mumber 32451-95-9 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 3,2,4,5 and 1 respectively; the second part has 2 digits, 9 and 5 respectively.
Calculate Digit Verification of CAS Registry Number 32451-95:
(7*3)+(6*2)+(5*4)+(4*5)+(3*1)+(2*9)+(1*5)=99
99 % 10 = 9
So 32451-95-9 is a valid CAS Registry Number.
InChI:InChI=1/C12H24O/c1-2-3-4-5-6-7-8-9-10-11-12-13/h9-10,13H,2-8,11-12H2,1H3/b10-9-

32451-95-9SDS

SAFETY DATA SHEETS

According to Globally Harmonized System of Classification and Labelling of Chemicals (GHS) - Sixth revised edition

Version: 1.0

Creation Date: Aug 17, 2017

Revision Date: Aug 17, 2017

1.Identification

1.1 GHS Product identifier

Product name (Z)-Dodec-3-en-1-ol

1.2 Other means of identification

Product number -
Other names (3Z)-DODEC-3-EN-1-OL

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only.
Uses advised against no data available

1.4 Supplier's details

1.5 Emergency phone number

Emergency phone number -
Service hours Monday to Friday, 9am-5pm (Standard time zone: UTC/GMT +8 hours).

More Details:32451-95-9 SDS

32451-95-9Synthetic route

dodec-3-yn-1-ol
55182-73-5

dodec-3-yn-1-ol

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
With hydrogen; P-2 Ni In ethanol100%
With hydrogen96%
With quinoline; hydrogen; Lindlar's catalyst In hexane Ambient temperature;96%
2-[((Z)-Dodec-3-enyl)oxy]-tetrahydro-pyran
88841-48-9

2-[((Z)-Dodec-3-enyl)oxy]-tetrahydro-pyran

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
With dowex In methanol at 45℃;89%
With toluene-4-sulfonic acid In methanol at 20℃; for 16h;0.28 g
(Z)-3-Dodecensaeure-ethylester
79837-93-7

(Z)-3-Dodecensaeure-ethylester

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
With lithium aluminium tetrahydride In diethyl ether73%
1-benzyloxy-4-fluoro-3-dodecene

1-benzyloxy-4-fluoro-3-dodecene

A

(E)-4-fluoro-dodec-3-en-1-ol

(E)-4-fluoro-dodec-3-en-1-ol

B

(Z)-4-fluoro-dodec-3-en-1-ol

(Z)-4-fluoro-dodec-3-en-1-ol

C

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

D

(E)-3-dodecene-1-ol
68900-87-8

(E)-3-dodecene-1-ol

Conditions
ConditionsYield
With ammonia; lithium In ethanol at -78℃; Title compound not separated from byproducts.;
1-decyne
764-93-2

1-decyne

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1: 1.) BuLi / 1.) HMPA, hexane, a) RT, 15 min, b) 50 deg C, 0.5 h, 2.) HMPA, hexane, a) RT, 1.5 h, b) 50 deg C, 2 h
2: 91 percent / H2, quinoline / Lindlar catalyst / hexane / 1 h / 10 °C
View Scheme
Multi-step reaction with 4 steps
1: 1.) n-BuLi, 2.) HMPA / 1.) THF, -20 deg C, 0.5 h, 2.) THF, -78 deg C, 3 h
2: 84 percent / 2 N HCl / acetone / 6 h
3: 86 percent / NaBH4
4: 100 percent / H2 / P-2 Ni / ethanol
View Scheme
Multi-step reaction with 2 steps
1: 1.) n-BuLi / 1.) THF/HMPA
2: H2 / Lindlar cat. / hexane
View Scheme
1-bromo-octane
111-83-1

1-bromo-octane

sodium-compound of decylmalonic acid diethyl ester

sodium-compound of decylmalonic acid diethyl ester

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1: 1.) LiNH2, NH3 / 1.) THF, 45 min, 2.) THF, 5 h
2: 96 percent / H2, quinoline / 5percent Pd/CaCO3 / hexane / Ambient temperature
View Scheme
caprinaldehyde
112-31-2

caprinaldehyde

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
Multi-step reaction with 5 steps
1: 63 percent / piperidine / xylene / Heating
2: 83 percent / LAH / diethyl ether
3: Br2 / CCl4
4: NaNH2 / CCl4; aq. NH3 / 4 h / -78 °C
5: 100 percent / H2 / P-2 Ni / ethanol
View Scheme
Multi-step reaction with 3 steps
1: tetrahydrofuran / 0 - 20 °C
2: hydrogenchloride / benzene
3: 4,4'-di-tert-butylbiphenyl; lithium / tetrahydrofuran / 0 - 20 °C
View Scheme
(E)-dodec-3-enoic acid
4998-72-5

(E)-dodec-3-enoic acid

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
Multi-step reaction with 4 steps
1: 83 percent / LAH / diethyl ether
2: Br2 / CCl4
3: NaNH2 / CCl4; aq. NH3 / 4 h / -78 °C
4: 100 percent / H2 / P-2 Ni / ethanol
View Scheme
(E)-3-dodecene-1-ol
68900-87-8

(E)-3-dodecene-1-ol

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
Multi-step reaction with 3 steps
1: Br2 / CCl4
2: NaNH2 / CCl4; aq. NH3 / 4 h / -78 °C
3: 100 percent / H2 / P-2 Ni / ethanol
View Scheme
3,4-Dibromo-dodecan-1-ol

3,4-Dibromo-dodecan-1-ol

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1: NaNH2 / CCl4; aq. NH3 / 4 h / -78 °C
2: 100 percent / H2 / P-2 Ni / ethanol
View Scheme
Dodec-3-ynal
148149-64-8

Dodec-3-ynal

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1: 86 percent / NaBH4
2: 100 percent / H2 / P-2 Ni / ethanol
View Scheme
1,1-diethoxy-3-dodecyne
148149-63-7

1,1-diethoxy-3-dodecyne

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
Multi-step reaction with 3 steps
1: 84 percent / 2 N HCl / acetone / 6 h
2: 86 percent / NaBH4
3: 100 percent / H2 / P-2 Ni / ethanol
View Scheme
nonan-1-al
124-19-6

nonan-1-al

(+-)-chloroacetic acid-<2-ethyl-hexyl ester>

(+-)-chloroacetic acid-<2-ethyl-hexyl ester>

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1: 32 percent / 24 h / Heating
2: 73 percent / LiAlH4 / diethyl ether
View Scheme
1-bromo-octane
111-83-1

1-bromo-octane

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
Multi-step reaction with 3 steps
1: 1) n-butyllithium / 1) THF, -78 deg C, 2) HMPA, room temperature
2: 91 percent / H2, quinoline / Pd/BaSO4 / methanol
3: 89 percent / Dowex / methanol / 45 °C
View Scheme
Multi-step reaction with 2 steps
1: 1.) LiNH2 / 1.) NH3 2.) ether
2: Hydrogen / Pd-BaSO4, quinoline / ethyl acetate
View Scheme
Multi-step reaction with 3 steps
1: 1.) n-butyllithium, 2.) LiI / 1.) THF, from -78 deg C to 0 deg C, 2.) a.) DMEU, -78 deg C, b.) 20 deg C, 20 h
2: 72 percent / amberlyst 15 (1+) form> / methanol / 20 h / 40 °C
3: 96 percent / H2
View Scheme
Multi-step reaction with 3 steps
1.1: n-butyllithium / hexane; tetrahydrofuran / 1 h / -78 - 20 °C / Inert atmosphere
1.2: 16 h / Inert atmosphere; Reflux
2.1: potassium hydroxide; N,N-dimethyl-formamide / 6 h / 145 °C / Inert atmosphere; Sealed tube
3.1: toluene-4-sulfonic acid / methanol / 16 h / 20 °C
View Scheme
1-<(2-Tetrahydropyranyl)oxy>dodec-3-yne
87641-52-9

1-<(2-Tetrahydropyranyl)oxy>dodec-3-yne

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1: 91 percent / H2, quinoline / Pd/BaSO4 / methanol
2: 89 percent / Dowex / methanol / 45 °C
View Scheme
Multi-step reaction with 2 steps
1: 72 percent / amberlyst 15 (1+) form> / methanol / 20 h / 40 °C
2: 96 percent / H2
View Scheme
Multi-step reaction with 2 steps
1: potassium hydroxide; N,N-dimethyl-formamide / 6 h / 145 °C / Inert atmosphere; Sealed tube
2: toluene-4-sulfonic acid / methanol / 16 h / 20 °C
View Scheme
2,2'-ethane-1,2-diylbissulfanyl-bis-ethanol
5244-34-8

2,2'-ethane-1,2-diylbissulfanyl-bis-ethanol

dodec-3-yn-1-ol
55182-73-5

dodec-3-yn-1-ol

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
In ethyl acetate2.95 g (91.6%)
C18H38OSi

C18H38OSi

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
With tetrabutyl ammonium fluoride In tetrahydrofuran; dichloromethane at 20℃; Inert atmosphere;
(+/-)-6-heptyl-3,6-dihydro-2H-pyran

(+/-)-6-heptyl-3,6-dihydro-2H-pyran

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1: tris(pentafluorophenyl)borate / dichloromethane / 20 °C / Inert atmosphere
2: tetrabutyl ammonium fluoride / tetrahydrofuran; dichloromethane / 20 °C / Inert atmosphere
View Scheme
1-dodecen-3-ol
4048-42-4

1-dodecen-3-ol

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1: hydrogenchloride / benzene
2: 4,4'-di-tert-butylbiphenyl; lithium / tetrahydrofuran / 0 - 20 °C
View Scheme
C13H25ClO

C13H25ClO

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
With 4,4'-di-tert-butylbiphenyl; lithium In tetrahydrofuran at 0 - 20℃; Wittig Rearrangement;
C12H23ClO

C12H23ClO

A

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

B

(E)-3-dodecene-1-ol
68900-87-8

(E)-3-dodecene-1-ol

Conditions
ConditionsYield
With 1,4-di-tert-butylbenzene; lithium In tetrahydrofuran at 0 - 20℃; Wittig Rearrangement;
nonan-1-al
124-19-6

nonan-1-al

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
Multi-step reaction with 3 steps
1: tetrahydrofuran / 0 - 20 °C
2: hydrogenchloride / benzene
3: lithium; 1,4-di-tert-butylbenzene / tetrahydrofuran / 0 - 20 °C
View Scheme
undec-1-en-3-ol
35329-42-1

undec-1-en-3-ol

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1: hydrogenchloride / benzene
2: lithium; 1,4-di-tert-butylbenzene / tetrahydrofuran / 0 - 20 °C
View Scheme
(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

p-toluenesulfonyl chloride
98-59-9

p-toluenesulfonyl chloride

(3Z)-1-O-(p-tolylsulfonyl)dodec-3-en-1-ol
90486-47-8

(3Z)-1-O-(p-tolylsulfonyl)dodec-3-en-1-ol

Conditions
ConditionsYield
With dmap; triethylamine In dichloromethane at -4℃; for 7h;98%
In pyridine at 2 - 5℃; for 20h;
In pyridine
(E)-but-2-enoic acid
107-93-7

(E)-but-2-enoic acid

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

(Z)-dodec-3-en-1-yl (E)-2-butenoate

(Z)-dodec-3-en-1-yl (E)-2-butenoate

Conditions
ConditionsYield
With dmap; dicyclohexyl-carbodiimide In dichloromethane for 4h; Ambient temperature;93%
trans-chrotonyl chloride
625-35-4, 3488-22-0, 10487-71-5

trans-chrotonyl chloride

(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

(Z)-dodec-3-en-1-yl (E)-2-butenoate

(Z)-dodec-3-en-1-yl (E)-2-butenoate

Conditions
ConditionsYield
With pyridine at 0 - 20℃; for 26h;86%
With pyridine for 12h; Ambient temperature;77%
(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

(3Z)-1-bromododec-3-ene
86982-50-5

(3Z)-1-bromododec-3-ene

Conditions
ConditionsYield
With carbon tetrabromide; triphenylphosphine In dichloromethane at 0℃; for 0.333333h;83%
Multi-step reaction with 2 steps
1: triethylamine / dichloromethane / 0 °C
2: lithium bromide / acetone / 3 h / Reflux
View Scheme
(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

(Z)-3-dodecenal
68141-15-1

(Z)-3-dodecenal

Conditions
ConditionsYield
With pyridinium chlorochromate In dichloromethane for 2h;56%
With Dess-Martin periodane In dichloromethane at 20℃; for 3h; Dess-Martin Oxidation;
With Dess-Martin periodane In dichloromethane at 20℃; for 3h;
With Dess-Martin periodane In dichloromethane at 20℃; for 3.08h;
(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

acetyl chloride
75-36-5

acetyl chloride

(Z)-3-dodecen-1-yl acetate
38363-24-5

(Z)-3-dodecen-1-yl acetate

Conditions
ConditionsYield
In acetic acid at 25 - 35℃; for 48h;
(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

6-thiaoleic acid
102838-90-4

6-thiaoleic acid

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1: pyridine
2: n-BuLi / tetrahydrofuran; hexamethylphosphoric acid triamide
View Scheme
(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

(3Z,6Z)-2,2-Dimethyl-pentadeca-3,6-dienal
86982-53-8

(3Z,6Z)-2,2-Dimethyl-pentadeca-3,6-dienal

Conditions
ConditionsYield
Multi-step reaction with 4 steps
1: 83 percent / CBr4, PPh3 / CH2Cl2 / 0.33 h / 0 °C
2: 82 percent / acetonitrile / 72 h / Heating
3: 1.) n-BuLi / 1.) THF, 0 deg C 2.) -78 to room temp.
4: 47 percent / H2O, HCl / acetone / 47 h / Ambient temperature
View Scheme
(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

2-((2Z,5Z)-1,1-Dimethyl-tetradeca-2,5-dienyl)-[1,3]dioxolane
86982-52-7

2-((2Z,5Z)-1,1-Dimethyl-tetradeca-2,5-dienyl)-[1,3]dioxolane

Conditions
ConditionsYield
Multi-step reaction with 3 steps
1: 83 percent / CBr4, PPh3 / CH2Cl2 / 0.33 h / 0 °C
2: 82 percent / acetonitrile / 72 h / Heating
3: 1.) n-BuLi / 1.) THF, 0 deg C 2.) -78 to room temp.
View Scheme
(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

7,7-Dimethyleicosa-5(Z),8(Z),11(Z)-trienoic acid
86982-61-8

7,7-Dimethyleicosa-5(Z),8(Z),11(Z)-trienoic acid

Conditions
ConditionsYield
Multi-step reaction with 5 steps
1: 83 percent / CBr4, PPh3 / CH2Cl2 / 0.33 h / 0 °C
2: 82 percent / acetonitrile / 72 h / Heating
3: 1.) n-BuLi / 1.) THF, 0 deg C 2.) -78 to room temp.
4: 47 percent / H2O, HCl / acetone / 47 h / Ambient temperature
5: 1.) KH / 1.) DMSO 2.) 1 h, room temp.
View Scheme
(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

((Z)-Dodec-3-enyl)-triphenyl-phosphonium; bromide
86982-51-6

((Z)-Dodec-3-enyl)-triphenyl-phosphonium; bromide

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1: 83 percent / CBr4, PPh3 / CH2Cl2 / 0.33 h / 0 °C
2: 82 percent / acetonitrile / 72 h / Heating
View Scheme
(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

(6E,8Z,11Z)-5-thia-6,8,11-eicosatrienoic acid
125198-04-1

(6E,8Z,11Z)-5-thia-6,8,11-eicosatrienoic acid

Conditions
ConditionsYield
Multi-step reaction with 4 steps
1: 98 percent / DMAP, NEt3 / CH2Cl2 / 7 h / -4 °C
2: 83 percent / 18 h / 120 °C
3: 1.) n-butyllithium / 1.) THF, -20 deg C, 4 min, 2.) DMEU, from -78 deg C to -40 deg C, 4 h
4: 97 percent / LiOH*H2O / methanol / 2.5 h / 20 °C
View Scheme
(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

methyl (6E,8Z,11Z)-6,8,11-eicosatrienoate
125198-10-9

methyl (6E,8Z,11Z)-6,8,11-eicosatrienoate

Conditions
ConditionsYield
Multi-step reaction with 3 steps
1: 98 percent / DMAP, NEt3 / CH2Cl2 / 7 h / -4 °C
2: 83 percent / 18 h / 120 °C
3: 1.) n-butyllithium
View Scheme
(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

methyl (8Z,11Z)-5-thia-8,11-eicosadienoate
125198-09-6

methyl (8Z,11Z)-5-thia-8,11-eicosadienoate

Conditions
ConditionsYield
Multi-step reaction with 3 steps
1: 98 percent / DMAP, NEt3 / CH2Cl2 / 7 h / -4 °C
2: 83 percent / 18 h / 120 °C
3: 1.) n-butyllithium
View Scheme
(Z)-Dodec-3-en-1-ol
32451-95-9

(Z)-Dodec-3-en-1-ol

methyl (6E,8Z,11Z)-5-thia-6,8,11-eicosatrienoate
125197-85-5

methyl (6E,8Z,11Z)-5-thia-6,8,11-eicosatrienoate

Conditions
ConditionsYield
Multi-step reaction with 3 steps
1: 98 percent / DMAP, NEt3 / CH2Cl2 / 7 h / -4 °C
2: 83 percent / 18 h / 120 °C
3: 1.) n-butyllithium / 1.) THF, -20 deg C, 4 min, 2.) DMEU, from -78 deg C to -40 deg C, 4 h
View Scheme

32451-95-9Relevant academic research and scientific papers

USE OF SULFUR AS A CHEMICAL CONNECTOR

Buist, Petr H.,Dimnik, Gerald P.

, p. 1457 - 1460 (1986)

Replacement of a methylene group by a sulfur atom at the 6-position of oleic acid does not prevent biomethylation at the olefinic bond.

Palladium nanoparticlesin situsynthesized onCyclea barbatapectin as a heterogeneous catalyst for Heck coupling in water, the reduction of nitrophenols and alkynes

Le, Van-Dung,Le, T. Cam-Huong,Chau, Van-Trung,Le, T. Ngoc-Duyen,Dang, Chi-Hien,Vo, T. To-Nguyen,Nguyen, Trinh Duy,Nguyen, Thanh-Danh

, p. 4746 - 4755 (2021/03/22)

This study develops an effective method for thein situsynthesis of palladium nanoparticles (PdNPs) usingCyclea barbatapectin as a green reducing and stabilizing reagent. The PdNP@pectin nanocomposite was well characterized by analysis techniques such as UV-vis, FTIR, EDX, XRD, SEM, HR-TEM and STEM-mapping. Crystalline PdNPs were found to be distributed in the size range of 1-25 nm with the highest frequency of 6-12 nm. PdNP@pectin exhibited excellent recyclable catalysis activity for the Heck coupling reaction in water medium. The kinetics and recyclability of nanoparticles were investigated for the catalytic reduction ofo-,m- andp-nitrophenol. The result showed a good catalysis efficiency with five successful recycles without compromising much. In particular, the nanocomposite was used as a catalyst for the conversion of alkynes intocis-alkenes with KOH/DMF as a hydrogenation source. The reaction was also utilized effectively for the synthesis of sex pheromones, includingPlutella xylostella((Z)-11-hexadecen-1-yl acetate) andCylas formicarius((Z)-3-dodecen-1-yl(E)-2-butenoate) with the total yields of 70% and 68%, respectively. Therefore, PdNPs supported onC. barbatapectin are promising catalysis materials for application in various fields.

Natural trienoic acids as anticancer agents: First stereoselective synthesis, cell cycle analysis, induction of apoptosis, cell signaling and mitochondrial targeting studies

D’yakonov, Vladimir A.,Makarov, Alexey A.,Dzhemileva, Lilya U.,Ramazanov, Ilfir R.,Makarova, Elina Kh.,Dzhemilev, Usein M.

, (2021/04/13)

The first Z-stereoselective method was developed for the synthesis of unsaturated acids containing a 1Z,5Z,9Z-triene moiety in 61–64% yields using the new Ti-catalyzed cross-coupling of oxygen-containing and aliphatic 1,2-dienes as the key synthetic step. It was shown for the first time that trienoic acids with non-methylene-interrupted Z-double bonds show moderate cytotoxic activities against tumor cell lines (Jurkat, K562, U937, HL60, HeLa), human embryonic kidney cells (Hek293), normal fibroblasts and human topoisomerase I (hTop1) inhibitory activity in vitro. The synthesized acids efficiently initiate apoptosis of Jurkat tumor cells, with the cell death mechanism being activated by the mitochondrial pathway. A probable mechanism of topoisomerase I inhibition was also hypothesized on the basis of in silico studies resorting to docking. The activation and inhibition of the most versatile intracellular signaling pathways (CREB, JNK, NFkB, p38, ERK1/2, Akt, p70S6K, STAT3 and STAT5 tyrosine kinases) responsible for cell proliferation and for initiation of apoptosis were studied by multiplex assay technology (Luminex xMAP).

NbCl5-Mg reagent system in regio-and stereoselective synthesis of (2Z)-alkenylamines and (3Z)-alkenylols from substituted 2-alkynylamines and 3-alkynylols

Dzhemilev, Usein M.,Gabdullin, Azat M.,Kadikova, Rita N.,Mozgovoj, Oleg S.,Ramazanov, Ilfir R.

supporting information, (2021/07/02)

The reduction of N,N-disubstituted 2-alkynylamines and substituted 3-alkynylols using the NbCl5 –Mg reagent system affords the corresponding dideuterated (2Z)-alkenylamine and (3Z)-alkenylol derivatives in high yields in a regio-and stereoselective manner through the deuterolysis (or hydrolysis). The reaction of substituted propargylamines and homopropargylic alcohols with the in situ generated low-valent niobium complex (based on the reaction of NbCl5 with magnesium metal) is an efficient tool for the synthesis of allylamines and homoallylic alcohols bearing a 1,2-disubstituted double bond. It was found that the well-known approach for the reduction of alkynes based on the use of the TaCl5-Mg reagent system does not work for 2-alkynylamines and 3-alkynylols. Thus, this article reveals a difference in the behavior of two reagent systems—NbCl5-Mg and TaCl5-Mg, in relation to oxygen-and nitrogen-containing alkynes. A regio-and stereoselective method was developed for the synthesis of nitrogen-containing E-β-chlorovinyl sulfides based on the reaction of 2-alkynylamines with three equivalents of methanesulfonyl chloride in the presence of stoichiometric amounts of niobium(V) chloride and magnesium metal in toluene.

Structure-Odor Relationships of (Z)-3-Alken-1-ols, (Z)-3-Alkenals, and (Z)-3-Alkenoic Acids

Lorber, Katja,Zeh, Gina,Regler, Johanna,Buettner, Andrea

, p. 2334 - 2343 (2018/03/21)

(Z)-3-Unsaturated volatile acids, alcohols, and aldehydes are commonly found in foods and other natural sources, playing a vital role in the attractiveness of foods but also as compounds with chemocommunicative function in entomology. However, a systematic investigation of their smell properties, especially regarding humans, has not been carried out until today. To close this gap, the odor thresholds in air and odor qualities of homologous series of (Z)-3-alken-1-ols, (Z)-3-alkenals, and (Z)-3-alkenoic acids were determined by gas chromatography-olfactometry. It was found that the odor qualities in the series of the (Z)-3-alken-1-ols and (Z)-3-alkenals changed, with increasing chain length, from grassy, green to an overall fatty and citrus-like, soapy character. On the other hand, the odor qualities of the (Z)-3-alkenoic acids changed successively from cheesy, sweaty via plastic-like, to waxy in their homologous series. With regard to their odor potencies, the lowest thresholds in air were found for (Z)-3-hexenal, (Z)-3-octenoic acid, and (Z)-3-octenal.

Influence of the chemical structure on odor qualities and odor thresholds in homologous series of alka-1,5-dien-3-ones, alk-1-en-3-ones, alka-1,5-dien-3-ols, and alk-1-en-3-ols

Lorber, Katja,Schieberle, Peter,Buettner, Andrea

, p. 1025 - 1031 (2014/03/21)

Odor qualities and odor thresholds in air in homologous series of synthesized alk-1-en-3-ols and alka-1,5-dien-3-ols and their corresponding ketones were evaluated by gas chromatography-olfactometry. In the series of the alk-1-en-3-ols and alk-1-en-3-ones the odor quality changed successively from pungent for the compounds with five carbon atoms via metallic, vegetable-like for the six- and seven-carbon odorants to mushroom-like for the compounds with eight and nine carbon atoms. With further increase in chain length the mushroom-like impression decreased and changed to citrus-like, soapy, or herb-like. In both series, two odor threshold minima were found for the six-carbon and also for the eight- and nine-carbon odorants, respectively. In contrast to this, the odor qualities in the series of the (Z)- and (E)-alka-1,5-dien-3-ols and their corresponding ketones did not change significantly with geranium-like, metallic odors and an increasing mushroom-like odor note with increasing chain length. The lowest thresholds were found for the eight- and nine-carbon (Z)-compounds, respectively.

Influence of the chemical structure on odor qualities and odor thresholds in homologous series of alka-1,5-dien-3-ones, alk-1-en-3-ones, alka-1,5-dien-3-ols, and alk-1-en-3-ols

Lorber, Katja,Schieberle, Peter,Buettner, Andrea

, p. 1025 - 1031 (2015/04/22)

Odor qualities and odor thresholds in air in homologous series of synthesized alk-1-en-3-ols and alka-1,5-dien-3-ols and their corresponding ketones were evaluated by gas chromatography-olfactometry. In the series of the alk-1-en-3-ols and alk-1-en-3-ones the odor quality changed successively from pungent for the compounds with five carbon atoms via metallic, vegetable-like for the six- and seven-carbon odorants to mushroom-like for the compounds with eight and nine carbon atoms. With further increase in chain length the mushroom-like impression decreased and changed to citrus-like, soapy, or herb-like. In both series, two odor threshold minima were found for the six-carbon and also for the eight- and nine-carbon odorants, respectively. In contrast to this, the odor qualities in the series of the (Z)- and (E)-alka-1,5-dien-3-ols and their corresponding ketones did not change significantly with geranium-like, metallic odors and an increasing mushroom-like odor note with increasing chain length. The lowest thresholds were found for the eight- and nine-carbon (Z)-compounds, respectively.

Synthesis of allylic and homoallylic alcohols from unsaturated cyclic ethers using a mild and selective C-O reduction approach

MacK, Daniel J.,Guo, Boying,Njardarson, Jon T.

, p. 7844 - 7846 (2012/09/05)

Unsaturated cyclic ethers can be mildly and selectively reduced with catalytic amounts of B(C6F5)3 in the presence of an alkylsilane. The allylic position is preferentially reduced with minimal or no scrambling of olefin geometry. For electronically equivalent substrates, steric factors guide the reducing agent to the least substituted site.

Synthesis and biological evaluation of γ-fluoro-β,γ-unsaturated acids

Asakura, Noriaki,Usuki, Yoshinosuke,Iio, Hideo,Tanaka, Toshio

, p. 800 - 808 (2008/03/28)

Several γ-fluoro-β,γ-unsaturated acids, fluorine-containing analogues of N-acyl glycines, were synthesized via Julia-Lythgoe olefination. The antimicrobial activities of these compounds and synthetic intermediates were evaluated. Analogues with an octyl group showed in vitro antifungal activity agaist Penicillium chrysogenum IFO4626.

Trail-following in termites: Stereoselective syntheses of (Z)-3-Dodecen- 1-OL, (3Z,6Z)-3,6-Dodecadien-1-OL and (3Z,6Z,8E)-3,6,8-dodecatrien-1-OL

Argenti,Bellina,Carpita,Rossi,Rossi

, p. 2281 - 2297 (2007/10/02)

(Z)-3-Dodecen-1-ol (4), a candidate trail-following semiochemical for several termite species, was synthetized by (Z)-stereoselective reduction of 3-dodecyn-1-ol (8). (3Z,6Z)-3,6-Dodecadien-1-ol (6), which is a structural analogue of 4, was prepared by a reaction sequence in which the key step was the cross-coupling between 5-(tert-butyldimethylsilyloxy)-2-pentyn-1-yl p- toluene-sulfonate (11) and 1-heptyne (12), in the presence of Cul, NaI and K2CO3. Finally, (3Z,6Z,8EZ)-3,6,8-dodecatrien-1-ol (3), which is a non- species-specific trail-following pheromone of termites, was prepared by a convergent synthesis in which compound 11 and (E)-3-hepten-1-yne (18) were used as key intermediates.

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