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10 Carbohydrates and Carbohydrate-Based Therapeutics in Alzheimer’s Disease
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336
Scheme 10.18 Flavone synthesis as described by Marta etal.[106–108] Reagents/solvent
and yield: (a) acetone, K aromatic aldehyde; (c) pyridine, I
, ClCH2OCH3, 52%; (b) 1,4-dioxane, aq. NaOH 50% (w/v),
2CO3
, then TsOH, MeOH.
2
yields bigger Aβ1–42 aggregates instead of small, toxic oligomers. These results sug­gest a remodeling effect by the action of chrysin (142) and related molecules, serv­ing as the basis for the generation of glycosylated flavones with neuroprotective potential, which shall be discussed in Section10.8.
Importantly, chrysin was synthesized by Matos etal.[106] by a new methodology also used for the generation of similar flavones thereafter (Scheme10.18)[107, 108]. Selective protection of two hydroxyl groups of acetophloroglucinol (145) with meth­oxymethyl ether (MOM), sodium hydroxide-promoted Claisen–Schmidt aldol con­densation of 146 with the appropriate aromatic aldehyde gave the intermediate chalcone. In the synthesis of chrysin (142, R=H), the corresponding chalcone was obtained by reaction with benzaldehyde in 95% yield. Then, iodine and pyridine under reflux conditions were used for the oxidative cyclization step for the first time in the literature, affording the monoprotected flavone (as detected by LCMS). After work-up, acid-promoted deprotection of the MOM groups led to the synthesis of the desired product. This final one-pot reaction step afforded chrysin 142 in 81% yield. The individual synthesis of other flavones according to this general method will be mentioned throughout this chapter, along with the reaction yields obtained for the aldehyde used in each particular case.
In the context of strategy (ii) (Figure10.10), a small library of nature-inspired flavones and their C-glucosyl derivatives was synthesized[108], from which the pair of N-methyl piperazinyl analogs 143 and 144 (Figure 10.11) showed therapeutic potential as protein–protein interaction inhibitors. In the initial Saturation Transfer Difference (STD) NMR screening assays that aimed to assess the binding potential of all synthesized molecules against Aβo, compound 143 stood out as the one pre­senting the highest potential for further investigation, with visible interactions with
C
Aβo at 2 μM. Later on, both 143 and 144 inhibited Aβo-PrP
binding in HEK cells,
where the C-glucosyl derivative 144 decreased the binding between these two
10.7 Amyloid Protein–Protein Interaction Inhibitors
337
proteins by 41% (p< 0.001 vs. Aβo-PrPC controls, with dose–dependent effects), and
C
143 by 26% (p< 0.01 vs. Aβo-PrP found to enhance the extent of Aβo-PrP
controls). Interestingly, the C-glucosyl moiety was
C
disruption, thus highlighting the impor­tance of the C-linked sugar moiety for this type of therapeutic application (p< 0.05 for compound 143 vs. compound 144) [108]. With no relevant cytotoxic effects observed invitro, these compounds are therefore promising candidates for further studies, namely BBB permeation assays and invivo tests aiming to prove the physi-
C
ological effects of tackling the interaction between Aβo-PrP
in AD animal models.
Interestingly, compound 133 (2,3,4,6-tetra-O-methylglucosyl)phloroglucinol
C
(Figure10.9) was able to inhibit the binding between Aβo and PrP
by 26%, while its analogs 134–136 (Figure10.9) inhibited by 16%, 11%, and 17%, respectively[102]. As earlier discussed, some of these compounds are Fyn kinase inhibitors (134), inhibit Aβo-induced Fyn activation (133, 135, and 136), and all inhibited Aβo-induced Tau hyperphosphorylation to a significant extent.
The synthesis of 143[108] was conducted on the basis of the previously described method for the synthesis of chrysin (142) (Scheme 10.18), with a slight variation regarding the phenol-protecting groups. Indeed, ethoxymethyl ether (EOM) was used instead of MOM ether, allowing the optimization of the protection step, which afforded the corresponding EOM-diprotected acetophloroglucinol derivative in 91% yield. Aldol condensation was carried out with 4-[(4-methylpiperazin-1-yl) methyl]benzaldehyde to give the intermediate chalcone in 99% yield. Oxidative cycli­zation and deprotection were conducted as earlier described[106] (Scheme10.18), giving 143 in 90% yield. A similar synthetic route was employed for the preparation of the C-glucosyl analog 144 (Scheme 10.19) and all other C-glucosyl flavones
Scheme 10.19 Synthesis of C-glucosyl flavones as described by Matos etal.[107, 108]. Reagents/solvent and yield: (a) CH 64%; (c) 1,4-dioxane, aq. NaOH 50% (w/v), aromatic aldehyde; (d) pyridine, I
BBr
, DCM.
3
CN/) DCM, drierite, TMSOTf, 57%; (b) DMF, K2CO3, BnBr,
3
; then
2
10 Carbohydrates and Carbohydrate-Based Therapeutics in Alzheimer’s Disease
(a)
(b)
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338
described in this chapter. Succinctly, the TMSOTf-promoted C-glucosylation of ace­tophloroglucinol 145 with the commercially available glucosyl donor 147 at low tem­perature afforded intermediate 148 in 57% yield. Subsequently, after selective benzylation of two hydroxy groups, the base-catalyzed aldol condensation with the appropriate aldehyde, (4-[(4-methylpiperazin-1-yl)methyl]benzaldehyde in the case of compound 144), led to the generation of the intermediate C-glucosyl chalcone which, in the synthesis of 144, was accomplished in 58% yield. Finally, oxidative cyclization promoted by iodine in pyridine, followed by deprotection of all benzyl groups gave the desired C-glucosyl flavone. This final one-pot reaction step afforded 144 (R=4-methylpiperazin-1-yl) in 84% yield.
10.8 Inhibitors of Aβo and/or Oxidative Stress-Induced Neurotoxicity
In 2019, Rauter’s group synthesized resveratrol deoxyglycosides 150 and 151 (Scheme10.20)[109], and compared their effects with the corresponding aglycones regarding their ability to inhibit hydrogen peroxide-induced neurotoxicity in
Scheme 10.20 Synthesis of resveratrol 2-deoxyglycosides with neuroprotective activity[109]. Reagents/solvent and yield: (a) TPHB, THF,156, 21%; 158, 8%; (b) NaOMe, MeOH, 150, 92%; 151, 100%.
33910.8 Inhibitors of Aβo and/or Oxidative Stress-Induced Neurotoxicity
Figure10.12  Polyphenol structures: resveratrol glycosides 150, 151, glucosyl resveratrol 152, and flavones 153, 154, two promising compounds able to inhibit Aβo and/or oxidative
stress-induced neurotoxicity.
SHSY-5Y cells. The resveratrol 2-deoxy-α--arabino-hexopyranoside 150 and the 2,6-dideoxy-α--arabino-hexopyranoside 151 were generated in a simple two-step process (Scheme 10.20a,b), by reaction of resveratrol with the adequate acetyl­protected glycals 155 or 157 in the presence of triphenylphosphane hydrobromide, followed by deprotection with sodium methoxide[109].
Both compounds were able to significantly reduce the damage caused by hydro­gen peroxide when added to the neuronal cells at 50 μM, as observed in an MTT cell viability assay (p< 0.05 vs. hydrogen peroxide controls)[109]. Resveratrol was also able to show some effect (p< 0.05); however, it is important to note that resveratrol is a well-known Pan-Assay INterference compound (PAIN), and capable of interfer­ing with biological membranes, altering their structure, fluidity, and the function of transmembrane proteins that are at the very beginning of cell signaling path­ways[110, 111]. Thus, even though resveratrol is a powerful antioxidant, it is not the ideal candidate for optimization due to nonspecific effects that can be triggered by its action.
With this in mind, the potential of C-glycosylation as a tool for preventing the PAINS-type behavior exhibited by some polyphenolic compounds found in nature, including resveratrol, was further investigated[112]. It should be noted that though
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340
Scheme 10.21 The first synthesis of glucosylresveratrol 152[112]. Reagents/solvent and
yield: (a) PivCl, pyridine, 62% yield; (b) TMSOTf, drierite, DCM/CH yield; (c) K yield; (f) tert-BuOK, DMF, 42% isolated yield for the (E)-isomer 164; (g) DCM, BCl
, BnBr, DMF, 85% yield; (d) LiOH, MeOH/H2O, 68% yield; (e) PCC, DCM, 81%
2CO3
CN, 162, 24% isolated
3
, 35% yield.
3
glycosides, such as 150 and 151 are easily synthesized, they are highly susceptible to hydrolysis in the gut, and therefore may reach their therapeutic targets as aglycones when administered orally. The same does not occur with the chemically and enzy­matically stable C-glucosyl polyphenol derivatives, which became the focus of our research. The first synthesis of C-glucosyl resveratrol 152 (Scheme10.21) was car­ried out starting by TMSOTf-catalyzed Fries-type reaction of benzylated glucopyra­nose 147 with the pivaloyl protected 5-(hydroxymethyl)benzene-1,3-diol 160 to afford the C-glucoside 161, chromatographically separated from the secondary product 162 and isolated in 24% yield. Benzylation of the free hydroxy groups was followed by depivaloylation with lithium hydroxide in methanol/water and subse­quent oxidation with pyridinium chlorochromate, obtaining the aldehyde 163 in
46.8% overall yield from 161. Horner–Wadsworth–Emmons olefination with diethyl (4-benzyloxyphenyl)methylphosphonate in the presence of tert-BuOK in DMF afforded the protected (E)-isomer 164, isolated in 55% yield. Full debenzylation was possible with BCl
to give purified (E)-glucosyl resveratrol 152 in 35% yield.
3
10.9 Carbohydrate–Protein Interactions as Potential Therapeutic Targets Against AD
Compound 152 was then compared to its aglycone resveratrol concerning the ability to alter membrane dipole potential. Indeed, resveratrol and other polyphe­nols, typically regarded in the literature as PAINS, were found to significantly alter membrane dipole potential (p < 0.0001 vs. untreated controls), which could be a mechanism underpinning the broad bioactivities they have been described to exert when studied in cell models of disease. In contrast, the corresponding C-glucosyl derivatives, including compound 152, did not exert the same effects (not statistically different vs. untreated controls), suggesting that C-glucosylation may be considered as a valuable approach to prevent the promiscuous membrane-disrupting effects of lipophilic, planar compounds, such as resveratrol.
It is important to note that the addition of the C-glucosyl moiety does not mean loss of bioactivity in the case of polyphenolic compounds. In fact, maintenance or even an increase in activity is possible with C-glucosylation, and this is well illus­trated in this review by the results reported for compounds 143 and 144 (Figure10.11) as well as those given in the literature by Rauter’s group for other glucosylpolyphe­nols[113, 114]. Moreover, many other bioactive C-glycosides here are presented to confirm the usefulness of C-glycosylation as a means to generate bioactive molecu­lar entities with therapeutic potential against neurodegenerative processes.
Another great example is here given by the 4′-morpholinylflavone derivatives 153 and 154 (Figure 10.12). Synthesized by Matos etal. [108] in 2019, these two com­pounds used at 50 μM concentrations were able to normalize cell viability of SHSY-5Y cells exposed to oxidative stress induced by H
-treated controls (p< 0.0001 for compound 154 and p< 0.05 for 153, vs. H2O2-
to H
2O2
, with significant differences relative
2O2
treated controls, respectively). Furthermore, both compounds significantly reduced Aβ-induced neurotoxicity in the same cell model with a similar efficacy pattern (p< 0.0001 vs. Aβ-treated controls for 154; p< 0.05 vs. Aβ-treated controls for 153). Flavone 154, the best in this study, showed adequate log D and effective permeability in a PAMPA assay, and was not cytotoxic in concentrations up to 100 μM, being, therefore, a promising lead for future investigation against AD[109].
341
10.9 Carbohydrate–Protein Interactions as Potential Therapeutic Targets Against AD
10.9.1 Lipid-Raft Gangliosides as Membrane Accumulation Sites for Toxic Aβ Aggregates
Carbohydrate–protein and carbohydrate–carbohydrate interactions are key in many physiological and pathological processes, and AD is no exception. Indeed, increas­ing evidence points toward membrane clusters enriched in ganglioside GM1, the most common brain ganglioside, as seeding locations for Aβ peptides [115]. Gangliosides are glycosphingolipids carrying one or more sialic acid units in their glycans and are usually located in the outer leaflet of the plasma membrane in the
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so-called lipid rafts, which are essential in signal transduction processes[116]. In these microdomains, also containing sphingomyelin and cholesterol, GM1 forms a string-like cluster with a hydrophobic sugar–lipid interface that is greatly prone to interact with and accommodate Aβ peptides, thereby restricting their spatial rear­rangements and promoting the formation of cross-β-sheets[117]. The binding affin­ity between ganglioside clusters and Aβ peptides seems to increase with the number of glycolipid-decorating sugar moieties, with reports of hydrogen bond interactions between Aβ and sugar hydroxyl groups, or hydrophobic CH-π interactions between aromatic side chains of Aβ amino acid residues and the CH groups of the glycan backbone as the major driving force of binding of Aβ to lipid bilayers[118].
GM1-bound Aβ peptides exhibit an extremely elevated potential to accelerate Aβ aggregation[117]. Furthermore, contrarily to the earlier mentioned nontoxic Aβ fibrils formed in solution, membrane-anchored Aβ fibrils formed in such a hydro­phobic context are, in fact, cytotoxic and display unique physicochemical proper­ties[116]. Over time, such Aβ fibrils with potent toxicity accumulate in the form of amyloid plaques, causing lipid raft disruptions that affect cellular processes relying on the normal function of these microdomains[119]. Hence, compounds targeting the interactions between GM1 sialic acid units and Aβ side chains may be seen as promising therapeutic targets against AD, namely those able to suppress β-sheet formation by stabilizing α-type helical secondary structures of Aβ on the ganglioside clusters[117].
It is interesting to note that the formation of GM1 clusters in the first place is highly dependent on cholesterol concentrations, as the establishment of hydrogen bonds with GM1 and sphingomyelin assures the required cohesion between lipids for the clustering process to occur[116]. Notably, high levels of serum cholesterol positively correlate with an increased risk of dementia, with reports showing a decreased prevalence of AD in subjects prescribed with cholesterol-lowering drugs[120]. Moreover, the presence of the cholesterol transporter ApoE4 variant, linked to abnormal cholesterol metabolism in the brain, is strongly associated with the occurrence of late-onset AD[121]. The crucial role of cholesterol in ganglioside­containing lipid rafts may explain why that is the case. Therefore, tackling choles­terol metabolism and/or the assembly of GM1 clusters in the brain is also an appealing therapeutic target for drug discovery against AD.
10.9.2 The Role of Microglial Cells in Aβ Brain Clearance
Senile plaques, the extracellular deposits of Aβ aggregates typically found in the brain of patients with AD, are enriched in a variety of other components besides the Aβ peptide, namely sialylated glycoproteins and gangliosides. As previously described, gangliosides are able to bind Aβ and initiate their aggregation into toxic fibrils, thus playing a key role in the formation of these plaques[113]. It would be expected that microglial cells, the resident macrophages of the brain, would be able to effectively clear the amyloid aggregates observed in senile plaques by phagocyto­sis, but this is not the case[122, 123]. These cells express several recognition recep­tors at the cellular surface, including sialic acid-binding, immunoglobulin-like
10.10 Conclusion
lectin receptors known as Siglecs. Specifically, microglia express Siglec-11, which belongs to the subfamily of CD33 proteins, known to suppress immune cell activa­tion. CD33 are overexpressed in postmortem brain samples of AD patients and seem to inhibit the activity of microglia by specifically binding to sialylated conjugates, such as gangliosides, which might explain why senile plaques are not efficiently eliminated by microglial cells through phagocytosis[123, 124].
In 2019, a study was published by Dukhinova and coworkers[125] with brain­ganglioside deficient 5XFAD mice lacking the gene that encodes for α2,3­sialyltransferase, which is required for the synthesis of all major brain gangliosides, including GM1. This animal model for AD overexpresses three mutant human amyloid proteins and two presenilin PS1 genes. These animals were found to have a significantly lower level of amyloid plaques compared to wild-type 5XFAD animals of the same age (p< 0.0001), without neuronal loss and with a comparable cognitive function to 5XFAD mice non-lacking the α2,3­sialyltransferase gene[125]. Interestingly, animals unable to produce sialylated brain gangliosides had lower microglia activation levels (p < 0.05), although these cells underwent important morphological changes of activation making them capable of phagocyting Aβ aggregates. Yet, the authors also reported that treatment of wild-type 5XFAD mice with a sialic acid-binding lectin targeting sialic acid units of major brain gangliosides successfully decreased amyloid depo­sition, inhibited neuroinflammation, boosted the expression of synaptic markers, and improved the cognitive function of these animals (p< 0.05 vs. controls)[125]. Moreover, in a recent study by Griciuc etal.[124], APP/PS1mice, another animal model for the study of AD, treated with microRNA targeting CD33 (miRCD33) at an early stage, effectively displayed reduced CD33 microglial expression, and resulted in a significantly decreased Aβ plaque burden in the brain of these ani­mals (24.4% decrease in Aβ plaque area, p = 0.035 vs. controls). However, it should be noted that in an invitro study, where a CD33knockout was performed in human macrophages and microglia, despite a higher phagocytic activity toward Aβ, CD33 deletion also resulted in oxidative damage and inflammation, contrarily to CD33-expressing microglia[126]. Together, this evidence validates the potential of ganglioside sialic acid masking as a therapeutic strategy to decrease the amyloid burden in AD.
343
10.10 Conclusion
With more than 50 million people affected globally, AD is undoubtedly one of the major public health concerns of the modern society for which effective disease­modifying therapies are urgently needed. Yet, the complex and multifactorial nature of this pathology makes the quest for new drug candidates a difficult chal­lenge. As a matter of fact, reports on so far unexplored molecular players, cell–cell interactions, and key pathophysiological pathways in neurodegeneration are added to the literature almost everyday. While aggregation of Aβ is widely accepted
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as one of the causes of AD, other therapeutic targets are increasingly seen as alter­native or additional choices when it comes to drug discovery and development.
As in many other pathological processes, carbohydrates play an important role in the processes leading to synaptic dysfunction and neuronal death, namely imbal­ances in posttranslational protein modification, ganglioside-promoted amyloid aggregation, recognition of amyloid aggregates by microglial cells via protein– carbohydrate interactions, among others. In this context, this critical review cov­ered several different sugar-related therapeutic targets for drug development, as well as the most recently published carbohydrate-based drug candidates that act by mimicking natural substrates and transition states of glycosylation reactions. Both the synthesis of these compounds and the most important biological activity data available in the literature are here discussed. What’s more, we have also covered a group of very recent nature-inspired sugar-linked polyphenols with remarkably promising results concerning Fyn inhibition, amyloid protein–protein interaction inhibition, and prevention of amyloid-oxidative stress-induced neuronal death. As here exemplified, in some cases the synthesis of such compounds can be much more straightforward and efficient compared to other known small molecules intended for the same use. Importantly, the sugar moiety can increase the desired bioactivity when linked to an aglycone with therapeutic potential, while mitigating undesirable PAINS-type behavior toward cell membranes.
The pool of data covered in this chapter illustrates the versatility of carbohydrates and carbohydrate-linked molecules in terms of their synthesis and bioactivity, while supporting their use as molecular scaffolds against neurodegenerative disorders, particularly AD.
List ofAbbreviations
Aβ amyloid β Aβ1–40 Aβ1–42 42-Residue Aβ Aβm Aβ monomers Aβo Aβ oligomers AcCl acetyl chloride ACh acetylcholine AChE acetylcholinesterase ACP 2-acetamido-6-chloropurine AD Alzheimer’s disease AFM atomic force microscopy AICD APP intracellular domain ALN alendronate ApoE4 apolipoprotein E4 APP Aβ precursor protein
40-Residue Aβ
APP-CTFα me mbrane-bound C-terminal fragment of APP
generated by α-secretase
APP-CTFβ me mbrane-bound C-terminal fragment of APP
generated by β-secretase AUC area under the curve BAβACs sol uble complexes between Aβ and BChE in the
presence of ApoE4 BACE1 APP β-secretase BChE butyrylcholinesterase Bn benzyl Boc tert-butyloxycarbonyl BSA bis(trimethylsilyl)acetamide BzCl benzoyl chloride CD33 sialic acid binding Ig-like lectin 3 ChEs cholinesterases CNS central nervous system COSs chitosan oligosaccharides CP 6-Chloropurine CSA camphorsulfonic acid CSPGs chondroitin sulfate proteoglycans CTS chitosan CTS-ALN-NPs ALN-loaded CTS nanoparticles Cys cysteine DAST diethylaminosulfur trifluoride DBU 1,8-diazabicyclo(5.4.0)undec-7-ene DCM dichloromethane DDQ 2,3-dichloro-5,6-dicyano-1,4-benzoquinone DFT density functional theory -Glc -glucose DIPEA N,N-diisopropylethylamine DMA dimethylacetamide -Man -mannose DMAP 4-dimethylaminopyridine DMF dimethylformamide DMS dimethyl sulfide DMSO dimethylsulfoxide DON 6-Diazo-5-oxonrleucine DPPA diphenylphosphoryl azide DTAD di-tert-butyl azodicarboxylate DTT dithiothreitol EC50 half maximal effective concentration EOM ethoxymethyl ether Fmoc fluorenylmethyloxycarbonyl
345List ofAbbreviations