| Literature DB >> 25207718 |
Paolo Zucca1, Enrico Sanjust2.
Abstract
Several inorganic materials are potentially suitable for enzymaEntities:
Mesh:
Substances:
Year: 2014 PMID: 25207718 PMCID: PMC6272024 DOI: 10.3390/molecules190914139
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Scheme of functionalization and activation of inorganic supports during covalent immobilization (functionalization with –NH2 groups and activation with cyanogen bromide is reported as an example).
Figure 2Several types of silanol functions can be found on the surfaces of silica-based materials: geminal silanols (a), vicinal silanols (b), isolated silanols (c). Silanetriols (d) have never been found on silica surfaces.
Advantages and disadvantages of the most common methods of enzyme immobilization.
| Method of Immobilization | Advantages | Disadvantages |
|---|---|---|
|
| No chemical modification of the enzyme Enzyme should retain catalytic activity under the conditions of polymerization/transition of the support | Enzyme leakage Mass transfer issues |
|
| No support is needed Stabilization of the enzyme Minimization of catalyst leakage | Possible massive chemical modification of the enzyme Complicated experimental processes Mass transfer issues |
|
| No chemical modification of the enzyme Easy and cheap to be performed | Enzyme leakage Low specificity of the reaction ( |
|
| No chemical modification of the enzyme Easy to be performed | Enzyme leakage Low specificity of the reaction ( |
|
| High specificity of the reaction | The presence of specific groups on the enzyme is mandatory Usually expensive and complicated to be designed |
|
| Strength of the binding Minimization of catalyst leakage Stabilization of the enzyme | Possibility sterical modifications of the enzyme Decrease of enzymatic activity is possible Chemical modifications of the support are necessary Usually irreversible attachment, preventing support reuse |
Scheme 1Trialkoxyorganosilanes perform functionalization of silanols on the surface of inorganic supports.
Figure 3The most widespread organosilanes for the functionalization of inorganic supports during protein immobilization.
Scheme 2Alkylamine supports can be easily derivatized to carboxyl (using glutaric anhydride, left) or thiol (using N-acetyl-DL-homocysteine thiolactone, right) function.
Summary of the most common methods of activation for inorganic supports.
| Activation Method | Support Reactive Group | Protein Reactive Group | Type of Bond | Bond Stability | Cost of the Reagents | Molecular Spacer |
|---|---|---|---|---|---|---|
|
| -OH
| -NH2 | Isourea or imido-carbonate | Low | Moderate | Very short |
|
| -OH
| -NH2 | Secondary amine | High | Low | Medium length |
|
| -OH | -NH2
| Secondary amine or thioether | High | Moderate/high | None |
|
| -OH | -NH2 | Carbamate | High | Moderate/high | Very short |
|
| -COOH | -NH2
| Amide/thioester | High | Low | None |
|
| -OH | -SH | Metal bridge | Moderate | Moderate | Very short |
|
| -NH2 | -NH2 | Secondary amine | High | Low | Long |
|
| -COOH/
| -NH2/
| Amide | High | High | None |
|
| -OH
| -SH
| Ether/Secondary amine/thioether | Good (at neutral pH) | Moderate | Medium length |
|
| -OH
| -NH2
| Anilinyl | High | Low | Medium length |
|
| -NH2 | -NH2 | Amide | High | High | Long |
|
| -NH2 | -SH | Amide
| High | High | Long |
|
| -SH | -SH | Disulfide | Moderate | High | Very short |
|
| -SH | -SH | Thioether | High | High | Long |
|
| -OH | -NH2 | Carbamate | Moderate | Low | Very short |
|
| Aromatic-NH2 | Aromatic -OH | Azo bond | High | Moderate | Medium |
|
| -OH
| -NH2 | Secondary amine | High | Low | Short |
Scheme 3Possible mechanism for cyanogen bromide activation of silanol functions [35,173,174].
Scheme 4Reaction pathway for cyanogen bromide activation of epoxy-functionalized supports.
Scheme 5Reaction pathway for cyanogen bromide activation of amino-functionalized supports.
Figure 44-Nitrophenyl cyanate, N-cyanotriethylammonium bromide, and 1-cyano-4-dimethylaminopyridinium bromide have been described as effective cyanylating agents in alternative to BrCN [177].
Scheme 6Activation of silanol functions with TCT.
Figure 5The most common sulfonyl halides used in protein immobilization.
Figure 6The most used chlorocarbonates for the activation of hydroxyl-bearing supports. The molar extinction factor of the leaving group is reported.
Scheme 8Mechanism of activation using chlorocarbonates.
Scheme 9Mechanism of activation using thionyl chloride.
Scheme 10The proposed mechanism for metal bridge activation of silanols [60].
Scheme 11Glutaraldehyde can theoretically react with –NH2 groups through two distinct mechanisms: Schiff base and Micheal-type addiction. However, the second is by far the most plausible [190,191].
Scheme 12Carbodiimides activate carboxy-functionalized silicas, both in presence or absence of sulfo-N-hydroxysuccinimide [196].
Scheme 13Divinylsulfone is able to activate mainly alcoholic –OH-modified silicas, allowing coupling with cysteine –SH functions [167].
Scheme 14Mechanism of activation using p-benzoquinone.
Scheme 15Mechanism of activation using disuccinimidyl suberate.
Figure 7Several bifunctional N-hydroxysuccinimides esters containing cleavable cross-linking have been described.
Scheme 16Mechanism of activation using succinimidyl-4-(N-maleimidomethyl)cyclohexane-1-carboxylate (SMCC).
Scheme 17Mechanism of activation using succinimidyl-3-(2-pyridyldithio)propionate (SPDP).
Scheme 18Mechanism of activation using 2-2'-dipyridyldisulfide (DPDS).
Scheme 19Mechanism of activation using 1,6-bismaleimidohexane (BMH).
Scheme 201-1'-Carbonyldiimidazole reacts with –OH from support forming an active ester, able to couple with protein lysines [216].
Scheme 21Epoxy-functionalized support can be further functionalized with aromatic amine functions [219], that in turn undergo diazotization and coupling with protein tyrosine phenolic groups [35,218].
Scheme 22Activation of aminated-silica with epichlorohydrin. Reaction with poly(ethylenglycol) allows the insertion of a molecular spacer long as required [221].