| Literature DB >> 33003459 |
Margaret Braasch-Turi1, Debbie C Crans1,2.
Abstract
Entities:
Keywords: Friedel-Crafts alkylation; and homologation; electrophilic; lipoquinone; menaquinone; metal-mediated; nucleophilic substitution; pericyclic; synthesis
Mesh:
Substances:
Year: 2020 PMID: 33003459 PMCID: PMC7582351 DOI: 10.3390/molecules25194477
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Common menaquinones and ubiquinones.
Figure 2The redox reaction of menaquinones showing the two steps observed in aprotic organic solvent; in the presence of a protic solvent it occurs in only one step, but the overall reaction is conserved.
Scheme 1Friedel-Crafts alkylation using BF3∙OEt2 and commercially available materials [12].
Figure 35 Main synthetic strategies from across the literature for the synthesis of menaquinone derivatives.
Scheme 2Synthesis of MK-2 via enolate alkylation [44].
Scheme 3(A) Synthesis of MK-1 using β-cyclodextrin (β-CD) as an inclusion catalyst. (B) Steric hinderance (shown in bold) of the β-cyclodextrin scaffold preventing C2 alkylation [45,46].
Scheme 4Synthesis of MK-2 and MK-9 using Grignard reagents [44].
Scheme 5Synthesis of MK-2 and MK-4 using BIHY conditions [47,48,49].
Scheme 6Synthesis of MK-1 and MK-2 featuring electrolysis as a protection method [50,51].
Scheme 7Synthesis of vitamin K1 using Friedel-Crafts alkylation with different acid catalysts [54].
Yields for different acid catalysts used in the synthesis of vitamin K1 [54].
| Acid Catalyst | % Yield 1 |
|---|---|
| KHSO4 | 55% |
| Oxalic Acid | N/A 2 |
| Duolite C-60 | 8% |
| BF3∙OEt2 | 66.5% |
1 Over two steps. 2 No yield reported.
Scheme 8Synthesis of vitamin K1 featuring an intramolecular Friedel-Crafts alkylation [63].
Scheme 9Synthesis of truncated MK-derivatives using Friedel-Crafts alkylation [65].
Friedel-Crafts alkylation of 18 with sulfonyl 19 to form 20 [65].
| Lewis Acid 1 | % of 20 ( |
|---|---|
| BF3∙OEt2 | 0 (-) |
| MgBr2 | 0 (-) |
| TiCl4 | - 2(-) |
| FeCl3 | 55 (4:1) |
| Et2AlCl | 56 (7:1) |
| SnCl4 | 56 ( |
| ZnBr2 | 60 (7:1) |
| ZnCl2 | 67 (7:1) |
| AlCl3 | 72 ( |
1. 1.2 equiv of Lewis acid was used. 2. Decomposition of the starting materials was observed.
Scheme 10Synthesis of vitamin K1 using partly hydroxylated magnesium and aluminum fluorides [66].
The catalytic results in the synthesis of vitamin K1, K1-chromanol, and C2-alkylated product from menadiol [66].
| Catalyst | % of Vitamin K1 | % of K1 Chromanol | % of C2 Product |
|---|---|---|---|
| MgF2-40 | 21.2 | 5.9 | 58.8 |
| MgF2-57 | 26.5 | 21.0 | 43.7 |
| MgF2-71 | 15.6 | 20.8 | 52.9 |
| MgF2-87 1 | 0 | 0 | 0 |
| AlF2-50 | 7.6 | 42 | 41.2 |
1 0% conversion.
Scheme 11Synthesis of MK-2(II-H2) using using MgF2-48 as a catalyst [38].
Summary of nucleophilic ring methods.
| Methods | Advantages | Disadvantages |
|---|---|---|
|
| ||
| Snyder and Rapoport | -Stereoretention of α-isoprene double bond (97% | -Low yields (20–45%) |
| Tabushi et al. | -Regiocontrol via sterically hindered nature of β-cyclodextrin | -Low yields (40% with inclusion catalyst) |
|
| ||
| Snyder and Rapoport | -Regiocontrol through lithium-bromide exchange | -Need to prepare starting material 6 |
| Saá and coworkers | -Stereoretention of the α-isoprene double bond during BIHY reduction | -Moderate yields for nucleophilic addition (58–65%) and BIHY reduction (53–70%) |
| Swenton and coworkers | -Unique use of electrolysis as a protection method | -Lithium organocuprate nucleophile only used one of two bisketal rings—poor atom economy |
|
| ||
| Hirschmann et al. | -Favors C3 alkylation over C2 due to monoacetate | -Low to moderate yields (8–66.5%) depending on acid catalyst used |
| Schmid et al. | -Features unique intramolecular Friedel-Crafts alkylation at C3 position | -Need to prepare starting material |
| Min et al. | -Stereoretention of α-isoprene double bond with AlCl3 | -Low to moderate yields (0–72%) depending on Lewis acid used |
| Coman et al. [ | -Predicted industrial benefit to replace BF3∙OEt2 | -Universally low yields (0–26.5%) |
Scheme 12(A) Formation of π-allylnickel complex. (B) Synthesis of vitamin K1 using π-allylnickel cross-coupling [69].
Scheme 13(A) Formation of π-allylnickel complex. (B) Synthesis of MK-9 using π-allylnickel cross-coupling [69].
Scheme 14Synthesis of vitamin K1 using Stille organostannane chemistry [70].
Scheme 15Synthesis of MK-1 featuring Liebeskind-Moore rearrangement to ring expansion [71].
Scheme 16Synthesis of MK-derivatives using unique Cr(CO)6 mediated ring formation [43,72,73].
Scheme 17(A) Original cobalt complex synthesized by Liebeskind et al. for this transformation. (B) Synthesis of MK-1 and MK-2 using the updated catalyst [74,75].
Effects of Additives on 2,3-diethyl-1,4-naphthoquinone 44 formation at 80 °C [75].
| Additive | GC Yield % of 44 | ||
|---|---|---|---|
| 2 h | 5 h | 18 h | |
| None | 25 | 52 | 77 |
| AgBF4 | 80 | 82 | - |
| BF3∙OEt2 | 74 | 79 | 82 |
| SnCl2 | 41 | 39 | 70 |
| CoCl2∙6H2O | 59 | 83 | 91 |
| CoCl2(anhyd) | 61 | 86 | 86 |
| 14 | 31 | 76 | |
| CH3CO2H | 23 | 47 | 74 |
Scheme 18(A) Radical formation via decarboxylation. (B) Synthesis of MK-1 using this method [76,77].
Scheme 19(A) Synthesis of geranyltelluride reagents. (B) Synthesis of MK-2 with organotelluride radical alkylation [78,79].
Scheme 20(A) General synthesis of menaquinones with alkyl iodides [80]. (B) Synthesis of MK-2 (I,II-H4) [38].
Summary of metal-mediated reactions.
| Methods | Advantages | Disadvantages |
|---|---|---|
|
| ||
| Sato et al. | -No coordination complex synthesis required-π-allyl complex is formed in situ | -The yields drop at the cross-coupling, especially for the much longer prenyl side chains, MK-9 (52%) |
| Stille et al. | -High yields (77%) for the formation of the arylstannane | -Low yield for cross-coupling (40% over two steps) |
|
| ||
| Liebeskind and Foster | -Stille coupling achieved high yields (90%) | Low yield for key Liebeskind-Moore rearrangement (49% over two steps) |
| Dötz et al. | -No coordination complex synthesis required | -Known adverse health effects related to hexavalent chromium |
| Liebeskind et al. | -High yields (>86%) | -The authors did not address α-isoprene double bonds isomerization |
|
| ||
| Jacobsen & Torssell | -Moderate yields (70%) | -Only synthesized MK-1 |
| Yamago et al. | -Regiocontrolled through aryl hydrogen abstraction | -Low yields for both formation of tolyltelluride and radical coupling (~40%) |
| Coppa et al. [ | -Moderate to high yields of straight chain alkyl iodides (68–93%) [ | -Koehn et al. reported very low yields (17%) for this transformation with a branched alkane |
Scheme 21The synthesis of (A) MK-2 and (B) vitamin K1 using alkylstannanes [81,82,83].
Summary of electrophilic ring methods.
| Methods | Advantages | Disadvantages |
|---|---|---|
| Naruta and Maruyuma. | -Stereoretention of the α-isoprene double bond | -Low yields for both formations (30–48%) |
Scheme 22Previously unpublished synthesis of vitamin K1 inspired by Troll & Schmid [43].
Scheme 23Synthesis of vitamin K1 using Diels-Alder approach with cyclopentadiene auxiliary [43].
Scheme 24Synthesis of vitamin K1, MK-1, 2, and 9 using anionic Diels-Alder approach [88].
Scheme 25Synthesis of MK-1 and MK-2 using anionic Diels-Alder approach with improved atom economy [89].
Scheme 26(A) Synthesis of MK-1 using prenylmagnesium bromide to Cope rearrangement. (B) Specific mechanism of the Cope rearrangement [85].
Scheme 27(A) Synthesis of MK-1 using organoindium reagents. (B) Closer look into the Cope rearrangement. (C) Attempted synthesis of MK-2 using geranyl 74a and neryl 74b organoindium rearrangement. [84].
Summary of pericyclic reactions.
| Methods | Advantages | Disadvantages |
|---|---|---|
|
| ||
| Rüttimann et al. | -High regiocontrol through the symmetry of dihydroisobenzofurane diene | -Overall low yields (~50% over four steps) |
| Rüttimann et al. | -Uses commercially available starting materials (menadione and cyclopentadiene) | -Slight competition between C-alkylation and O-alkylation |
|
| ||
| Tso and Chen | -One-pot synthesis | -Moderate yields (60–64%) |
| Mal et al. | -Improved atom economy | -Low to moderate yields (40–73%) |
|
| ||
| Evans and Hoffmann | -Regiocontrol achieved through protected naphthoquinone | -No consideration of the isomerization of the isoprene double bond |
| Araki et al. | -Regiocontrol achieved through less hindered 1,2-addition of organoindium reagent | No stereoretention observed in Cope rearrangement |
Scheme 28Synthesis of MK-3 and vitamin K1 via C3 homologation and Negishi cross-coupling conditions [90].
Scheme 29Negishi carboalumination of phytyl alkyne [91,92,93,94].
Scheme 30Synthesis of MK-7 using dithiane anion side chain extensions [95].
Scheme 31Synthesis of vitamin K1 using tosylate extension methods [96,97].
Scheme 32Conversion of prenyl alcohols to respective prenyl bromides [96,97].
Scheme 33Synthesis of MK-4 using tosylate extension methods [96,97].
Scheme 34Synthesis of vitamin K1 using organocuprate reagents to extend the length of the side chain [63].
Summary of homologation and side chain extension methods.
| Methods | Advantages | Disadvantages |
|---|---|---|
|
| ||
| Lipshutz et al. | -High yields throughout the synthesis (87–93%) | -Requires the use of hydrogen chloride gas |
| Mehta et al. | -High yields throughout the synthesis for all reported steps (80–95%) | -Requires the use of protecting groups and oxidation manipulations |
|
| ||
| Masaki et al. | -Moderate to high yields throughout the synthesis (68–90%) | -4 step synthesis (not including starting material) |
| Schmid et al. | -Achieved regio- and stereocontrol using isoprene oxide in a 1,4-addition | -Low to moderate yields (51–79%) for alkylation step |
Summary of the best reactions within each strategy to be compared to each other.
| Strategy- | Advantages | Disadvantages |
|---|---|---|
| -Unique use of electrolysis as a protection method | -Lithium organocuprate nucleophile only used one of two bisketal rings—poor atom economy | |
| -High yields (>86%) | -The authors did not address α-isoprene double bonds isomerization | |
| -Stereoretention of the α-isoprene double bond | -Low yields for both formations (30–48%) | |
| -Uses commercially available starting materials (menadione and cyclopentadiene) | -Slight competition between C-alkylation and O-alkylation | |
| -High yields throughout the synthesis (87–93%) | -Requires the use of hydrogen chloride gas |