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12-Hydroxyjasmonic acid is a naturally occurring plant hormone belonging to the jasmonate family of compounds. It is derived from the fatty acid linolenic acid and plays a crucial role in plant defense mechanisms, mediating responses to various environmental stresses such as mechanical injury, pathogen attack, and insect herbivory. This hormone induces the expression of genes involved in plant defense, including the production of secondary metabolites and activation of signaling pathways. Furthermore, it regulates plant growth and development and mediates plant reproductive processes, making it a key signaling molecule in plant biology with potential applications in agriculture and pharmaceuticals.

140631-27-2

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140631-27-2 Usage

Uses

Used in Agricultural Applications:
12-Hydroxyjasmonic acid is used as a plant growth regulator for enhancing plant defense mechanisms against environmental stresses such as mechanical injury, pathogen attack, and insect herbivory. It promotes the expression of genes involved in the production of secondary metabolites and activation of signaling pathways, thereby improving plant resilience and resistance to various stressors.
Used in Pharmaceutical Applications:
12-Hydroxyjasmonic acid is used as a potential therapeutic agent for its role in regulating plant growth and development, as well as mediating plant reproductive processes. Its diverse functions in plant biology suggest potential applications in the development of novel pharmaceuticals targeting various biological processes.

Check Digit Verification of cas no

The CAS Registry Mumber 140631-27-2 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 1,4,0,6,3 and 1 respectively; the second part has 2 digits, 2 and 7 respectively.
Calculate Digit Verification of CAS Registry Number 140631-27:
(8*1)+(7*4)+(6*0)+(5*6)+(4*3)+(3*1)+(2*2)+(1*7)=92
92 % 10 = 2
So 140631-27-2 is a valid CAS Registry Number.
InChI:InChI=1/C12H18O4/c13-7-3-1-2-4-10-9(8-12(15)16)5-6-11(10)14/h1-2,9-10,13H,3-8H2,(H,15,16)/b2-1-/t9-,10-/m1/s1

140631-27-2SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 13, 2017

Revision Date: Aug 13, 2017

1.Identification

1.1 GHS Product identifier

Product name 2-[(1R,2R)-2-[(Z)-5-hydroxypent-2-enyl]-3-oxocyclopentyl]acetic acid

1.2 Other means of identification

Product number -
Other names 12-Hydroxyjasmonate

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:140631-27-2 SDS

140631-27-2Relevant academic research and scientific papers

Identification of rice Os4BGlu13 as a β-glucosidase which hydrolyzes gibberellin A4 1-O-β-d-glucosyl ester, in addition to tuberonic acid glucoside and salicylic acid derivative glucosides

Hua, Yanling,Ekkhara, Watsamon,Sansenya, Sompong,Srisomsap, Chantragan,Roytrakul, Sittiruk,Saburi, Wataru,Takeda, Ryosuke,Matsuura, Hideyuki,Mori, Haruhide,Ketudat Cairns, James R.

, p. 36 - 46 (2015/08/24)

Abstract Gibberellin 1-O-β-d-glucose ester hydrolysis activity has been detected in rice seedling extracts, but no enzyme responsible for this activity has ever been purified and identified. Therefore, gibberellin A4 glucosyl ester (GA4-GE) β-d-glucosidase activity was purified from ten-day rice seedling stems and leaves. The family 1 glycoside hydrolase Os4BGlu13 was identified in the final purification fraction. The Os4BGlu13 cDNA was amplified from rice seedlings and expressed as an N-terminal thioredoxin-tagged fusion protein in Escherichia coli. The purified recombinant Os4BGlu13 protein (rOs4BGlu13) had an optimum pH of 4.5, for hydrolysis of p-nitrophenyl β-d-glucopyranoside (pNPGlc), which was the best substrate identified, with a kcat/Km of 637 mMmM-1 -1. rOs4BGlu13 hydrolyzed helicin best among natural glycosides tested (kcat/K m of 74.4 mM-1 -1). Os4BGlu13 was previously designated tuberonic acid glucoside (TAG) β-glucosidase (TAGG), and here the kcat/Km of rOsBGlu13 for TAG was 6.68 mM-1 -1, while that for GA4-GE was 3.63 mM-1 -1 and for salicylic acid glucoside (SAG) is 0.88 mM-1 -1. rOs4BGlu13 also hydrolyzed oligosaccharides, with preference for short β-(1 → 3)-linked over β-(1 → 4)-linked glucooligosaccharides. The enzymatic data suggests that Os4BGlu13 may contribute to TAG, SAG, oligosaccharide and GA4-GE hydrolysis in the rice plant, although helicin or a similar compound may be its primary target.

Stereoselective synthesis of epi-jasmonic acid, tuberonic acid, and 12-oxo-PDA

Nonaka, Hisato,Ogawa, Narihito,Maeda, Noriaki,Wang, Yong-Gang,Kobayashi, Yuichi

body text, p. 5212 - 5223 (2010/12/25)

epi-Jasmonic acid (epi-JA) and tuberonic acid (TA) were synthesized from the key aldehyde, all cis-2-(2-hydroxy-5-vinylcyclopentyl)acetaldehyde (14), which was in turn prepared stereoselectively from the (1R)-acetate of 4-cyclopentene-1,3-diol (10) through SN2-type allylic substitution with CH2CHMgBr followed by Mitsunobu inversion, Eschenmoser-Claisen rearrangement, and regioselective Swern oxidation of the corresponding bis-TES ether (13). Wittig reaction of the aldehyde 14 with [Ph3P(CH 2)Me]+Br- followed by oxidation afforded epi-JA (3) stereoselectivity over the trans isomer. Similarly, TA (5) was synthesized. Furthermore, the above findings were applied successfully to improve the total efficiency of the previous synthesis of 12-oxo-PDA (1).

Synthesis and bioactivity of potassium β-D-glucopyranosyl 12-hydroxy jasmonate and related compounds

Nakamura, Yoko,Miyatake, Ryoji,Inomata, Sho,Ueda, Minoru

experimental part, p. 2867 - 2876 (2009/04/11)

Albizzia saman, a leguminous plant, is known to open its leaves in the daytime and sleep at night with the leaves folded. β-D-Glucopyranosyl 12-hydroxyjasmonate (1) was isolated as an endogenous chemical factor controlling this leafmovement. We developed a concise synthesis of optically pure (-)-1 in 9 steps from (+)-2 with a total yield of 58%. Similarly, such analogs of 1 as epi-LCF (13), enantiomer (14), and galactoside (19) were synthesized for a structure activity relationship (SAR) study. The results of this SAR study strongly suggest that the mechanism for the leaf-closing activity of 1 would be different from that of methyl jasmonate, and also suggest the involvement of a different kind of target protein which recognizes the trans-isomer of a jasmonate derivative.

Phenolic glycosides from berries of Pimenta dioica

Kikuzaki, Hiroe,Miyajima, Yoshiko,Nakatani, Nobuji

experimental part, p. 861 - 865 (2009/04/04)

Four new phenolic glycosides, (2-hydroxy-3-methoxy-5-allyl)phenyl β-D-(6-O-E-sinapoyl)glucopyranoside (1), (1′ R,5′R)-5-(5- carboxymefhyl-2-oxocyclopentyl)-3Z-pentenyl β-D-(6-O-galloyl) glucopyranoside (2), (5)-α-terpinyl [α-L-(2-O-galloyl) arabinofuranosyl]-(l→6)-β-D-glucopyranoside (3), and (R)-a-terpinyl [α-L-(2-O-galloyl)arabinofuranosyl]-(l→6)-β-D-glucopyranoside (4), were isolated from the berries of Pimenta dioica together with eight known flavonoids. The structures of 1-4 were elucidated on the basis of MS and NMR data and enzymatic hydrolysis. All four glycosides showed radical-scavenging activity against 1, 1-diphenyl-2-picrylhydrazyl (DPPH) radicals.

First total synthesis of tuberonic acid

Nonaka, Hisato,Wang, Yong-Gang,Kobayashi, Yuichi

, p. 1745 - 1748 (2008/02/05)

A vinyl group as an acetic acid side chain was attached to the optically active monoacetate of 4-cyclopentene-1,3-diol with CH2{double bond, long}CHMgBr, LiCl, and a CuCN catalyst to produce the SN2-type product, from which the full carbon skeleton of tuberonic acid was constructed through Mitsunobu inversion, Claisen rearrangement, and Wittig reaction. At the last stage, the THP protective group was removed with MgBr2 in Et2O. The diastereomeric ratio of tuberonic acid and the trans isomer was 92:8 by 1H NMR spectroscopy.

STRUKTUR UND SYNTHESE VON N-(ACETOXY)-JASMONOYLPHENYLALANINMETHYLESTER AUS PRAXELIS CLEMATIDEA

Bohlmann, Ferdinand,Wegner, Peter,Jakupovic, Jasmin,King, Robert M.

, p. 2537 - 2540 (2007/10/02)

From Praxelis clematidea a phenylalanine derivative has been isolated, its structure being elucidated by spectroscopic methods and confirmed by synthesis.

Synthesis of Jasmine Ketolactone

Kitahara,Takeshi,Iwamoto, Minoru,Takagi, Yoshikazu,Mori, Kenji,Matsui, Masanao

, p. 1731 - 1734 (2007/10/02)

The synthesis of jasmine ketolactone 3, a minor component of Italian jasmine oil, via the intramolecular Michael reaction is described.

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