Abstract
Galactose and mannose building blocks 9 and 12 were designed for the solid phase synthesis of oligosaccharides (SPOS). Both compounds
were employed after condensation with benzoic acid function containing resin 10 in SPOS of human milk trisaccharide 1 and oligomannosides 2 -4 (α-(1Æ2)-linked hexamer). Thus, in this approach a special linker development was
not required and with the temporary protective groups phenoxyacetyl (PA) and 9-fluorenylmethoxycarbonyl
(Fmoc) as part of compounds 7 -12 the strategy offers the additional advantage of having the anomeric centre at the
reducing end available for further manipulations.
Key words
solid-phase synthesis - Fmoc-protected hydroxy groups - glycosidations - trichloroacetimidates
- oligosaccharides.
References
<A NAME="RT06501SS-1">1 </A>
Varki A.
Glycobiology
1993,
3:
97
<A NAME="RT06501SS-2">2 </A>
Dwek RA.
Chem. Rev.
1996,
96:
683
<A NAME="RT06501SS-3">3 </A>
Sharon N.
Lis H. In
Glycosciences - Status and Perspectives , Gabius J., Gabius S.
Chapman and Hall;
Weinheim:
1997.
p.133
<A NAME="RT06501SS-4">4 </A>
Van den Steen P.
Rudd PM.
Dwek RA.
Opdenakker G.
Crit. Rev. Biochem./Mol. Biol.
1998,
33:
151
<A NAME="RT06501SS-5">5 </A>
Hakamori S.
Adv. Cancer Res.
1989,
52:
257
<A NAME="RT06501SS-6A">6a </A>
Schmidt RR.
Angew. Chem.
1986,
98:
213
<A NAME="RT06501SS-6B">6b </A>
Schmidt RR.
Angew. Chem.
Int. Ed. Engl.
1986,
25:
212
<A NAME="RT06501SS-7">7 </A>
Schmidt RR.
Kinzy W.
Adv. Carbohydr. Chem. Biochem.
1994,
50:
21
<A NAME="RT06501SS-8">8 </A>
Schmidt RR. In Carbohydrates - Synthetic Methods and Applications in Medicinal Chemistry
Ogura H.
Hasegawa A.
Suami T.
Koda▴ha;
Tokyo:
1992.
p.68
<A NAME="RT06501SS-9">9 </A>
Ogawa T.
Chem. Soc. Rev.
1994,
397
<A NAME="RT06501SS-10">10 </A>
Barresi F.
Hindsgaul O. In Modern Synthetic Methods
Ernst B.
Leumann C.
Verlag Chemie;
Weinheim, Basel:
1995.
p.283
<A NAME="RT06501SS-11A">11a </A>
Mayer TG.
Kratzer B.
Schmidt RR.
Angew. Chem.
1994,
106:
2289
<A NAME="RT06501SS-11B">11b </A>
Mayer TG.
Kratzer B.
Schmidt RR. Angew. Chem. Int. Ed. Engl.
1994,
33:
2177
<A NAME="RT06501SS-11C">11c </A>
Mayer TG.
Dissertation
Universität Konstanz;
Germany:
1996. and references cited therein
<A NAME="RT06501SS-12">12 </A>
Aly MRE.
Ibrahim E.-SI.
El-Ashry E.-SH.
Schmidt RR.
Eur. J. Org. Chem.
2000,
319 ; and references cited therein
<A NAME="RT06501SS-13">13 </A>
Chiesa MV.
Schmidt RR.
Eur. J. Org. Chem.
2000,
3541 ; and references cited therein
<A NAME="RT06501SS-14">14 </A>
Knuhr, P.; Castro-Palomino, J.; Grathwohl, M.; Schmidt, R. R. Eur. J. Org. Chem. 2001 , submitted, and references cited therein.
<A NAME="RT06501SS-15">15 </A>
Rademann J.
Schmidt RR.
J. Org. Chem.
1997,
62:
3650
<A NAME="RT06501SS-16">16 </A>
Heckel A.
Mross E.
Jung KH.
Rademann J.
Schmidt RR.
Synlett
1998,
171
<A NAME="RT06501SS-17A">17a </A>
Rademann J.
Geyer A.
Schmidt RR.
Angew. Chem.
1998,
110:
1309
<A NAME="RT06501SS-17B">17b </A>
Rademann J.
Geyer A.
Schmidt RR.
Angew. Chem. Int. Ed.
1998,
37:
1241
<A NAME="RT06501SS-18">18 </A>
Knerr L.
Schmidt RR.
Synlett
1999,
11802
<A NAME="RT06501SS-19">19 </A>
Knerr L.
Schmidt RR.
Eur. J. Org. Chem.
2000,
2803
<A NAME="RT06501SS-20">20 </A>
Roussel F.
Knerr L.
Grathwohl M.
Schmidt RR.
Org. Lett.
2000,
2:
3043
<A NAME="RT06501SS-21">21 </A>
Roussel F.
Knerr L.
Schmidt RR.
Eur. J. Org. Chem.
2001,
2067
<A NAME="RT06501SS-22">22 </A>
Wu X.
Grathwohl M.
Schmidt RR.
Org. Lett.
2001,
3:
747
For some recent reviews see:
<A NAME="RT06501SS-23A">23a </A>
Osborn HMI.
Khan TH.
Tetrahedron
1999,
55:
1807 ; and references cited therein
<A NAME="RT06501SS-23B">23b </A>
Haase WC.
Seeberger PH.
Curr. Org. Chem.
2000,
4:
481 ; and references cited therein
<A NAME="RT06501SS-24">24 </A> Ester type linker:
Zhu T.
Boons GJ.
J. Am. Chem. Soc.
2000,
122:
10223
Silyl ether type linker:
<A NAME="RT06501SS-25A">25a </A>
Danishefsky SJ.
McClure KF.
Randolph JT.
Ruggeri RB.
Science
1993,
260:
1307
<A NAME="RT06501SS-25B">25b </A>
Doi T.
Sugiki M.
Yamada H.
Takahashi T.
Porco JA.
Tetrahedron Lett.
1999,
40:
2141
Thioether type linker:
<A NAME="RT06501SS-26A">26a </A>
Yan L.
Taylor CM.
Goodnow R.
Kahne D.
J. Am. Chem. Soc.
1994,
116:
6953
<A NAME="RT06501SS-26B">26b </A>
Rademann J.
Schmidt RR.
Tetrahedron Lett.
1996,
37:
3989
<A NAME="RT06501SS-27">27 </A> Benzyl ether type linker:
Mehta S.
Whitfield DM.
Tetrahedron Lett.
1998,
39:
5907
<A NAME="RT06501SS-28">28 </A> Sulfone linker:
Hunt JA.
Roush WR.
J. Am. Chem. Soc.
1996,
118:
9998
<A NAME="RT06501SS-29">29 </A> Wang type linker:
Manabe S.
Ito Y.
Ogawa T.
Synlett
1998,
628
Ring closing metathesis cleavable linker:
<A NAME="RT06501SS-30A">30a </A>
Andrade RB.
Plante OJ.
Melean L.
Seeberger PH.
Org. Lett.
1999,
1:
1811
<A NAME="RT06501SS-30B">30b </A>
Plante OJ.
Palmacci ER.
Seeberger PH.
Science
2001,
291:
1523
Selenium based linker:
<A NAME="RT06501SS-31A">31a </A>
Nicolaou KC.
Mitchell HJ.
Fylaktakidou KC.
Suzuki H.
Rodríguez RM.
Angew. Chem.
2000,
112:
1131
<A NAME="RT06501SS-31B">31b </A>
Nicolaou KC.
Mitchell HJ.
Fylaktakidou KC.
Suzuki H.
Rodríguez RM.
Angew. Chem. Int. Ed.
2000,
39:
1089
<A NAME="RT06501SS-32">32 </A>
Resin 10 is commercially available from Novabiochem , Switzerland; http://www.nova.ch.
<A NAME="RT06501SS-33">33 </A>
Kunz C.
Rudloff S.
Baier W.
Klein N.
Strobel S.
Annu. Rev. Nutr.
2000,
20:
699
<A NAME="RT06501SS-34">34 </A>
Kornfeld R.
Kornfeld S.
Annu. Rev. Biochem.
1985,
54:
631
<A NAME="RT06501SS-35">35 </A>
Ferguson MAJ.
Curr. Opin. Struct. Biol.
1991,
1:
522
<A NAME="RT06501SS-36">36 </A>
Peter J.
Diplomarbeit
Universität Konstanz;
Germany:
1994.
<A NAME="RT06501SS-37">37 </A>
Trost BM.
Caldwell CG.
Murayama E.
Heissler D.
J. Org. Chem.
1983,
48:
3252
<A NAME="RT06501SS-38">38 </A>
Liang L.
Chan T.-H.
Tetrahedron Lett.
1998,
39:
355
<A NAME="RT06501SS-39">39 </A>
Grathwohl M.
Diplomarbeit
Universität Konstanz;
Germany:
1997.
For previous applications of this procedure, see:
<A NAME="RT06501SS-40A">40a </A>
Gómez-Bujedo S., Robina I., López-Barba E., Fuentes J.; 8
th
European Carbohydrate Symposium ; Sevilla Spain, 2-7 Juli 1995 ; A-57
<A NAME="RT06501SS-40B">40b </A>
Park TK.
Kim IJ.
Hu S.
Bilodeau MT.
Randolph JT.
Kwon O.
Danishefsky SJ.
J. Am. Chem. Soc.
1996,
118:
11488
<A NAME="RT06501SS-40C">40c </A>
Aly MRE.
Castro-Palomino JC.
Ibrahim E.-SI.
El-Ashry E.-SH.
Schmidt RR.
Eur. J. Org. Chem.
1998,
2305
<A NAME="RT06501SS-41">41 </A>
The diisopropyl urea side product is soluble in most solvents. Therefore, DIC offers
a remarkable advantage over DCC.
<A NAME="RT06501SS-42">42 </A>
Grathwohl M.
Dissertation
Universität Konstanz;
Germany:
2001.
<A NAME="RT06501SS-43">43 </A>
At higher reaction temperatures and higher Lewis acid concentrations TDS and benzylidene
might be cleaved.
<A NAME="RT06501SS-44">44 </A>
Yamazaki F.
Sato S.
Nukuda T.
Ito Y.
Ogawa T.
Carbohydr. Res.
1990,
201:
31
<A NAME="RT06501SS-45">45 </A>
Douglas SP.
Whitfield DM.
Krepinsky JJ.
J. Am. Chem. Soc.
1991,
113:
5095
<A NAME="RT06501SS-46A">46a </A>
Ogawa T.
Sugimoto M.
Kitagima T.
Sadozai KK.
Nukada T.
Tetrahedron Lett.
1986,
27:
5739
<A NAME="RT06501SS-46B">46b </A>
Kaur KJ.
Hindsgaul O.
Carbohydr. Res.
1992,
226:
219
<A NAME="RT06501SS-46C">46c </A>
Chiesa V.
Dissertation
Universität Konstanz;
Germany:
2000.
<A NAME="RT06501SS-47">47 </A>
Veyrières A.
Carbohydr. Res.
1985,
135:
330
<A NAME="RT06501SS-48A">48a </A>
Srivastava OP.
Hindsgaul O.
Can. J. Chem.
1986,
64:
2324
<A NAME="RT06501SS-48B">48b </A>
Paulsen H.
Helpap B.
Carbohydr. Res.
1991,
216:
289