<?xml version="1.0" encoding="ASCII"?><!DOCTYPE article PUBLIC "-//BEILSTEIN-INSTITUT//DTD Journal Article DTD v0.4.4 20130724//EN" "https://www.beilstein-journals.org/bjoc/content/xml/journalarticle.v044.dtd">
<article locale="en" public-id="1860-5397-6-23" publisher="Beilstein-Institut" journal="Beilstein Journal of Organic Chemistry" journal-abbreviated="Beilstein J. Org. Chem." journal-code="bjoc" issn="1860-5397" coden="BJOCBH" year="2010" volume="6" article="23" type="full-research-paper">
<author first-name="Tobias" last-name="Minuth" affiliations="a1"/>
<author first-name="Mike" middle-names="M K" last-name="Boysen" email="mike.boysen@oci.uni-hannover.de" affiliations="a1" corresponding-author="yes"/>
<affiliation id="a1" institution-required="yes">Institute of Organic Chemistry, Gottfried-Wilhelm-Leibniz University of Hannover, Schneiderberg 1B, D-30167 Hannover, Germany</affiliation>
<editor first-name="Thisbe" middle-names="K" last-name="Lindhorst" role="guest-editor"/>
<submission-date day="8" month="12" year="2009" hour="0" minute="0"/>
<acceptance-date day="18" month="2" year="2010" hour="0" minute="0"/>
<publication-date day="4" month="3" year="2010" hour="0" minute="0"/>
<title>
<chunk>Bis(oxazolines) based on glycopyranosides &#8211; steric, configurational and conformational influences on stereoselectivity</chunk>
</title>
<keyword>
<chunk>asymmetric synthesis</chunk>
</keyword>
<keyword>
<chunk>carbohydrates</chunk>
</keyword>
<keyword>
<chunk>copper</chunk>
</keyword>
<keyword>
<chunk>cyclopropanation</chunk>
</keyword>
<keyword>
<chunk>ligand design</chunk>
</keyword>
<abstract-section>
<paragraph>
<chunk>In previous studies we found that the asymmetric induction of bis(oxazolines) based on D-glucosamine strongly depended on the steric demand of the 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-substituents. To further probe the impact of the 3-position of the pyranose scaffold, we prepared 3-epimerised and 3-defunctionalised versions of these ligands as well as a 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-formyl derivative. Application of these new ligands in asymmetric cyclopropanation revealed strong steric and configurational effects of position 3 on asymmetric induction, further dramatic effects of the pyranose conformation were also observed.</chunk>
</paragraph>
</abstract-section>
<abstract-graphic public-id="1860-5397-6-23-graphical-abstract"/>
<external-link type="doi" public-id="10.3762/bjoc.6.23"/>
<section>
<title>
<chunk>Introduction</chunk>
</title>
<paragraph>
<chunk>The design and optimisation of chiral ligands for metal catalysed transformations is of crucial importance for stereoselective synthesis and is therefore an active field of research. In this context, carbohydrates are interesting, even if comparatively rarely used as starting materials for the preparation of new chiral ligand structures. Today, 30 years after the first reports on carbohydrate-based ligands </chunk>
<link target="b1"/>
<link target="b2"/>
<link target="b3"/>
<link target="b4"/>
<chunk>, the potential of saccharide compounds in this area is more and more appreciated </chunk>
<link target="b5"/>
<link target="b6"/>
<link target="b7"/>
<link target="b8"/>
<link target="b9"/>
<link target="b10"/>
<link target="b11"/>
<link target="b12"/>
<chunk>.</chunk>
</paragraph>
<paragraph>
<chunk>Chiral bis(oxazolines) (Box) are very efficient ligands for many asymmetric transformations </chunk>
<link target="b13"/>
<link target="b14"/>
<chunk>. Even though N-acylated derivatives of D-glucosamine easily form bicyclic carbohydrate oxazolines, until recently only a few examples of mono(oxazoline) ligands </chunk>
<link target="b15"/>
<link target="b16"/>
<link target="b17"/>
<chunk> and the corresponding bis(oxazolines) </chunk>
<link target="b18"/>
<chunk> based on this monosaccharide have appeared in the literature. In the course of our work we have introduced new glucosamine-derived bis(oxazolines) </chunk>
<chunk bold="yes">2a</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">c</chunk>
<chunk> with uniform protective groups on all oxygen functions </chunk>
<link target="b19"/>
<link target="b20"/>
<link target="b21"/>
<chunk> and derivatives </chunk>
<chunk bold="yes">3a</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">f</chunk>
<chunk> with cyclic 4,6-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-benzylidene protection as well as various other 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-substituents that differ in steric demand and electronic nature </chunk>
<link target="b20"/>
<link target="b21"/>
<chunk>.</chunk>
</paragraph>
<paragraph>
<chunk>These ligands were subsequently employed in the asymmetric cyclopropanation </chunk>
<link target="b22"/>
<link target="b23"/>
<chunk> of styrene (</chunk>
<chunk bold="yes">4</chunk>
<chunk>) with ethyl diazoacetate (</chunk>
<chunk bold="yes">5</chunk>
<chunk>). Our results revealed a strong dependence of the enantioselectivity on both the steric bulk and electronic nature of the </chunk>
<chunk italic="yes">O</chunk>
<chunk>-substituents in ligands </chunk>
<chunk bold="yes">2a</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">c</chunk>
<chunk> and </chunk>
<chunk bold="yes">3a</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">f</chunk>
<chunk>. Furthermore, the conformation of the pyranose scaffold &#8211; a twist conformation for ligands </chunk>
<chunk bold="yes">2a</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">c</chunk>
<chunk> without 4,6-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-benzylidene protection (</chunk>
<link target="s1"/>
<chunk>, conformer </chunk>
<chunk bold="yes">A</chunk>
<chunk>) and a partially chair-like conformation for ligands </chunk>
<chunk bold="yes">3a</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">f</chunk>
<chunk> (</chunk>
<link target="s1"/>
<chunk>, conformer </chunk>
<chunk bold="yes">B</chunk>
<chunk>) fixed by the annulated 4,6-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-benzylidene group &#8211; has a direct impact on the enantioselectivity of the reaction. For ligands </chunk>
<chunk bold="yes">3a</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">f</chunk>
<chunk> with cyclic protection, a decrease in the bulk of the 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-residues led to an improvement in stereoselectivity, while the opposite trend was observed for counterparts </chunk>
<chunk bold="yes">2a</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">c</chunk>
<chunk> with acyclic 4,6-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-protection. Moreover, ester modified ligands </chunk>
<chunk bold="yes">2a</chunk>
<chunk>, </chunk>
<chunk bold="yes">2b</chunk>
<chunk> and </chunk>
<chunk bold="yes">3a</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">c</chunk>
<chunk> led to higher stereoselectivity than the corresponding ether-modified compounds </chunk>
<chunk bold="yes">2c</chunk>
<chunk> and </chunk>
<chunk bold="yes">3d</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">f</chunk>
<chunk>. The best results were obtained with 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-Ac </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box </chunk>
<chunk bold="yes">3a</chunk>
<chunk> that combines a small 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-acyl residue with cyclic 4,6-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-protection, and with bulky ligand Piv </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box (</chunk>
<chunk bold="yes">2b</chunk>
<chunk>) without any cyclic protection. These findings are summarised in </chunk>
<link target="s1"/>
<chunk>.</chunk>
</paragraph>
<float target="s1"/>
<paragraph>
<chunk>Because of the strong impact of the pyranose position 3 in ligands </chunk>
<chunk bold="yes">3a</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">f</chunk>
<chunk> on the stereoselectivity, we became interested in elucidating the influence of the stereochemistry at this position by both 3-epimerisation and 3-defunctionalisation. Inversion of the configuration at position 3 to give an </chunk>
<chunk italic="yes">allo</chunk>
<chunk>-configured ligand scaffold, will bring the 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-substituent into a </chunk>
<chunk italic="yes">syn</chunk>
<chunk>-relationship with the oxazoline nitrogen atom and therefore into very close proximity to a coordinated metal centre (</chunk>
<link target="f1"/>
<chunk>, </chunk>
<chunk bold="yes">I</chunk>
<chunk>). Deoxygenation of the 3-postion on the other hand will lead to a ligand with comparably little steric shielding of metal centres coordinated by the oxazoline nitrogen atoms (</chunk>
<link target="f1"/>
<chunk>, </chunk>
<chunk bold="yes">II</chunk>
<chunk>). As the stereoselectivity of the model reaction for ligands </chunk>
<chunk bold="yes">3a</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">f</chunk>
<chunk> improved with decreasing steric demand of the 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-substituent and since the best results were obtained with acyl-modified ligands, we also set out to prepare a corresponding ligand with a formyl group as the smallest possible acyl residue at the 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-position. In this paper we describe the synthesis of new 3-epimerised and 3-deoxygenated carbohydrate bis(oxazolines), the preparation of a 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-formate analogue of ligands </chunk>
<chunk bold="yes">3</chunk>
<chunk> as well as the testing of these new ligands in stereoselective cyclopropanation.</chunk>
</paragraph>
<float target="f1"/>
</section>
<section>
<title>
<chunk>Results and Discussion</chunk>
</title>
<paragraph>
<chunk>The synthesis of all new ligands started from the known thioglucoside </chunk>
<chunk bold="yes">7</chunk>
<chunk> </chunk>
<link target="b24"/>
<chunk> which was also employed as key intermediate for the preparation of ligands </chunk>
<chunk bold="yes">3a</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">f</chunk>
<chunk> </chunk>
<link target="b20"/>
<link target="b21"/>
<chunk> and is accessible from D-glucosamine in 5 steps and 57% overall yield. To prepare an </chunk>
<chunk italic="yes">allo</chunk>
<chunk>-configured precursor for ligand synthesis, we decided first to use a previously described epimerisation sequence for </chunk>
<chunk bold="yes">7</chunk>
<chunk> featuring Swern oxidation and subsequent reduction with sodium borohydride </chunk>
<link target="b25"/>
<chunk>. In our hands this method led to an inseparable product mixture in the second step however, on switching to L-selectride for the stereoselective reduction </chunk>
<link target="b26"/>
<chunk>, the allosamine derived thioglycoside </chunk>
<chunk bold="yes">10</chunk>
<chunk> was obtained in good overall yield. For an alternative route, </chunk>
<chunk bold="yes">7</chunk>
<chunk> was transformed into the 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-triflate </chunk>
<chunk bold="yes">9</chunk>
<chunk> and then subjected to nucleophilic displacement with sodium nitrite in the presence of 15-crown-5 </chunk>
<link target="b27"/>
<link target="b28"/>
<chunk> to afford </chunk>
<chunk bold="yes">10</chunk>
<chunk> in similar yields as the oxidation-reduction sequence (</chunk>
<link target="s2"/>
<chunk>). After deprotection of the phthalimide (phthN) </chunk>
<link target="b29"/>
<chunk>, the free amine </chunk>
<chunk bold="yes">11</chunk>
<chunk> was transformed into the 4,6-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-benzylidene protected ligand by our standard protocol for the preparation of carbohydrate bis(oxazoline) ligands </chunk>
<link target="b20"/>
<link target="b21"/>
<chunk>: Formation of bis(amide) </chunk>
<chunk bold="yes">12</chunk>
<chunk> with dimethylmalonyl chloride, 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-acetylation and subsequent activation of the thioethyl moieties of </chunk>
<chunk bold="yes">13</chunk>
<chunk> with NIS </chunk>
<link target="b30"/>
<chunk> for the double cyclisation step, led to benzylidene protected ligand 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-Ac </chunk>
<chunk italic="yes">allo</chunk>
<chunk>Box </chunk>
<chunk bold="yes">14</chunk>
<chunk> in excellent yield. As noted previously, the presence of a 4,6-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-benzylidene group has a pronounced influence on the conformation adopted by the pyranose scaffold in </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>-configured ligands (</chunk>
<link target="s1"/>
<chunk>, conformers </chunk>
<chunk bold="yes">A</chunk>
<chunk> and </chunk>
<chunk bold="yes">B</chunk>
<chunk>), which in turn has a direct influence on the stereoselectivity in the model reaction. In order to ascertain if a similar conformative effect is also in operation for </chunk>
<chunk italic="yes">allo</chunk>
<chunk>-configured bis(oxazolines), we prepared ligand Ac </chunk>
<chunk italic="yes">allo</chunk>
<chunk>Box </chunk>
<chunk bold="yes">16</chunk>
<chunk> with acyclic 4,6-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-protection by the removal of the benzylidene groups from </chunk>
<chunk bold="yes">12</chunk>
<chunk> under acidic conditions and per-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-acetylation in a one-pot reaction followed by NIS-mediated cyclisation of resulting bis(amide) </chunk>
<chunk bold="yes">15</chunk>
<chunk>.</chunk>
</paragraph>
<float target="s2"/>
<paragraph>
<chunk>For the preparation of 3-deoxygenated ligands, we planned a defunctionalisation of the key intermediate </chunk>
<chunk bold="yes">7</chunk>
<chunk>. Surprisingly, a thorough search of the literature revealed only one example of the 3-deoxygenation of a glucosamine-derived thioglycoside, reported by Herdewijn et al. in 2006 </chunk>
<link target="b31"/>
<chunk>. Because the Barton&#8211;McCombie deoxygenation </chunk>
<link target="b32"/>
<chunk> failed on their </chunk>
<chunk italic="yes">N</chunk>
<chunk>-Troc protected thio aminoglucoside under various conditions, Herdewijn et al. used a sequence via a 3-iodide derivative. To avoid the rather complicated preparation of a 3-iodo derivative, we tried the Barton&#8211;McCombie reaction on our phthalimido protected precursor </chunk>
<chunk bold="yes">7</chunk>
<chunk> (</chunk>
<link target="s3"/>
<chunk>). Introduction of the 3-xanthogenate with carbon disulfide and methyl iodide yielded </chunk>
<chunk bold="yes">17</chunk>
<chunk>, which was cleanly deoxygenated in high yield by tributyltin hydride under standard conditions </chunk>
<link target="b32"/>
<link target="b33"/>
<chunk>. From the resulting compound </chunk>
<chunk bold="yes">18</chunk>
<chunk>, the ligands 3-deoxy </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box </chunk>
<chunk bold="yes">21</chunk>
<chunk> with benzylidene groups and Ac 3-deoxy </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box </chunk>
<chunk bold="yes">23</chunk>
<chunk> with acyclic 4,6-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-protection were prepared in high overall yields (</chunk>
<link target="s3"/>
<chunk>).</chunk>
</paragraph>
<float target="s3"/>
<paragraph>
<chunk>The 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-formate analogue of </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>-configured ligands </chunk>
<chunk bold="yes">3</chunk>
<chunk> was obtained by treatment of bis(amide) </chunk>
<chunk bold="yes">24</chunk>
<chunk> </chunk>
<link target="b20"/>
<link target="b21"/>
<chunk> with formyl acetate </chunk>
<link target="b34"/>
<chunk> to yield </chunk>
<chunk bold="yes">25</chunk>
<chunk> which was then cyclised to the desired ligand </chunk>
<chunk bold="yes">26</chunk>
<chunk> with NIS (</chunk>
<link target="s4"/>
<chunk>).</chunk>
</paragraph>
<float target="s4"/>
<paragraph>
<chunk>The five new ligands </chunk>
<chunk bold="yes">14</chunk>
<chunk>, </chunk>
<chunk bold="yes">16</chunk>
<chunk>, </chunk>
<chunk bold="yes">21</chunk>
<chunk>, </chunk>
<chunk bold="yes">23</chunk>
<chunk> and </chunk>
<chunk bold="yes">26</chunk>
<chunk> were now employed in the copper(I) catalysed asymmetric cyclopropanation of styrene (</chunk>
<chunk bold="yes">4</chunk>
<chunk>) with diazoacetate (</chunk>
<chunk bold="yes">5</chunk>
<chunk>) under known conditions </chunk>
<link target="b19"/>
<link target="b21"/>
<link target="b22"/>
<chunk> (</chunk>
<link target="t1"/>
<chunk>). All ligands led to formation of the products </chunk>
<chunk italic="yes">trans</chunk>
<chunk> </chunk>
<chunk bold="yes">6</chunk>
<chunk> and </chunk>
<chunk italic="yes">cis</chunk>
<chunk> </chunk>
<chunk bold="yes">6</chunk>
<chunk> in good to excellent yields and the </chunk>
<chunk italic="yes">trans</chunk>
<chunk>/</chunk>
<chunk italic="yes">cis</chunk>
<chunk> ratio was in the typical range (around 70:30) obtained with bis(oxazoline) ligands </chunk>
<link target="b22"/>
<chunk>. However, the enantioselectivities differed dramatically for the new ligands and revealed once again the strong influence of position 3 and the pyranose conformation on the efficiency of the asymmetric induction. The best results were obtained with 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-formyl </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box </chunk>
<chunk bold="yes">26</chunk>
<chunk> which gave </chunk>
<chunk italic="yes">trans</chunk>
<chunk bold="yes"> 6</chunk>
<chunk> and </chunk>
<chunk italic="yes">cis</chunk>
<chunk> </chunk>
<chunk bold="yes">6</chunk>
<chunk> in 95% ee and 94% ee respectively (</chunk>
<link target="t1"/>
<chunk>, entry 5).</chunk>
</paragraph>
<float target="t1"/>
<paragraph>
<link target="f2"/>
<chunk> gives a summary of the results obtained with the new ligands as well as a comparison with the previously reported ligands </chunk>
<chunk bold="yes">2a</chunk>
<chunk> and </chunk>
<chunk bold="yes">3a</chunk>
<chunk>. Both, benzylidene-protected ligands 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-Ac </chunk>
<chunk italic="yes">allo</chunk>
<chunk>Box </chunk>
<chunk bold="yes">14</chunk>
<chunk> and 3-deoxy </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box </chunk>
<chunk bold="yes">21</chunk>
<chunk> gave only racemic products while their counterparts Ac </chunk>
<chunk italic="yes">allo</chunk>
<chunk>Box </chunk>
<chunk bold="yes">16</chunk>
<chunk> and Ac 3-Deoxy </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box </chunk>
<chunk bold="yes">23</chunk>
<chunk> lacking cyclic 4,6-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-protection led to substantial asymmetric induction. This demonstrates that the dramatic conformational effect of the pyranose scaffold on stereoselectivity, which was first observed for </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>-configured ligands </chunk>
<chunk bold="yes">2</chunk>
<chunk> and </chunk>
<chunk bold="yes">3</chunk>
<chunk>, is also in operation in </chunk>
<chunk italic="yes">allo</chunk>
<chunk>- and 3-deoxy </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>-ligands. However, while benzylidene protection in 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-Ac </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box </chunk>
<chunk bold="yes">3a</chunk>
<chunk> led to improved asymmetric induction in comparison to ligand Ac </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box </chunk>
<chunk bold="yes">2a</chunk>
<chunk> lacking cyclic protection, the opposite was observed for the </chunk>
<chunk italic="yes">allo</chunk>
<chunk>- and 3-deoxy-ligands. The strong influence of the configuration of pyranose position 3 on stereoselectivity becomes apparent by a comparison of ligand 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-Ac </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box </chunk>
<chunk bold="yes">3a</chunk>
<chunk> to its 3-epimerised and 3-defunctionalised counterparts </chunk>
<chunk bold="yes">14</chunk>
<chunk> and </chunk>
<chunk bold="yes">21</chunk>
<chunk>: Both modifications, inversion of the configuration in </chunk>
<chunk italic="yes">allo</chunk>
<chunk>-ligand </chunk>
<chunk bold="yes">14</chunk>
<chunk> and 3-defunctionalisation in </chunk>
<chunk bold="yes">21</chunk>
<chunk> result in a complete loss of stereoselectivity in the model reaction, whilst 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-Ac </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box </chunk>
<chunk bold="yes">3a</chunk>
<chunk> provides the products in 93% ee and 82% ee respectively. Finally, </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>-configured ligand </chunk>
<chunk bold="yes">26</chunk>
<chunk> with a 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-formyl residue led to higher stereoselectivities (95% ee and 94% ee for </chunk>
<chunk italic="yes">trans</chunk>
<chunk> </chunk>
<chunk bold="yes">6</chunk>
<chunk> and </chunk>
<chunk italic="yes">cis </chunk>
<chunk bold="yes">6</chunk>
<chunk> respectively) than 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-acetylated ligand </chunk>
<chunk bold="yes">3a</chunk>
<chunk>. This confirms the trend we initially observed for </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>-configured ligands. A decrease in steric bulk of 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-acyl substituents results in improved asymmetric induction of the ligand in the cyclopropanation reaction: ee for 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-Piv </chunk>
<chunk bold="yes">3c</chunk>
<chunk> &lt; 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-Bz </chunk>
<chunk bold="yes">3b</chunk>
<chunk> &lt; 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-Ac </chunk>
<chunk bold="yes">3a</chunk>
<chunk> &lt; 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-Formyl </chunk>
<chunk bold="yes">26</chunk>
<chunk>. Thus, of all carbohydrate-derived bis(oxazolines) prepared by us, ligand </chunk>
<chunk bold="yes">26</chunk>
<chunk> led to the best enantioselectivities for cyclopropanes </chunk>
<chunk italic="yes">trans</chunk>
<chunk> </chunk>
<chunk bold="yes">6</chunk>
<chunk> and </chunk>
<chunk italic="yes">cis</chunk>
<chunk bold="yes"> 6</chunk>
<chunk>.</chunk>
</paragraph>
<float target="f2"/>
</section>
<section>
<title>
<chunk>Conclusion</chunk>
</title>
<paragraph>
<chunk>We have prepared new derivatives of </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>-configured bis(oxazoline) ligands </chunk>
<chunk bold="yes">2</chunk>
<chunk> and </chunk>
<chunk bold="yes">3</chunk>
<chunk> with 3-epimerisation or 3-defunctionalisation in the pyranose scaffold. Application in stereoselective cyclopropanation as a model reaction highlighted the strong impact of modifications at the pyranose position 3 on the asymmetric induction exerted by carbohydrate-based ligands. Furthermore, the previously observed conformational effect of cyclic 4,6-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-benzylidene protection on stereoselectivity is also in operation in the new derivatives. Introduction of a 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-formate in </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box ligands led to improved stereoselectivities compared to the corresponding 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-acetate. This underlines our previous findings that the best results for </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>-configured ligands are obtained with small acyl-based 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-substitutents. The observed steric, configurational and conformational effects are as yet not fully understood and investigations to elucidate their origins are currently under way.</chunk>
</paragraph>
</section>
<album-graphics>
<graphic public-id="1860-5397-6-23-1"/>
<graphic public-id="1860-5397-6-23-i2"/>
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<inline-graphics>
<graphic id="i1" public-id="1860-5397-6-23-i5"/>
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<figures>
<figure id="f1">
<caption>
<paragraph>
<chunk>Planned modifications at pyranose position 3 of carbohydrate bis(oxazolines).</chunk>
</paragraph>
</caption>
<graphic public-id="1860-5397-6-23-1"/>
</figure>
<figure id="f2">
<caption>
<paragraph>
<chunk>Impact of structural ligand modifications on the stereoselectivity of cyclopropanations.</chunk>
</paragraph>
</caption>
<graphic public-id="1860-5397-6-23-2"/>
</figure>
</figures>
<schemes>
<scheme id="s1">
<caption>
<paragraph>
<chunk>New glucosamine-based bis(oxazoline) ligands with their pyranose conformation and application in asymmetric cyclopropanation.</chunk>
</paragraph>
</caption>
<graphic public-id="1860-5397-6-23-i1"/>
</scheme>
<scheme id="s2">
<caption>
<paragraph>
<chunk>Synthesis of </chunk>
<chunk italic="yes">allo</chunk>
<chunk>-configured bis(oxazolines) 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-Ac </chunk>
<chunk italic="yes">allo</chunk>
<chunk>Box (</chunk>
<chunk bold="yes">14</chunk>
<chunk>) and Ac </chunk>
<chunk italic="yes">allo</chunk>
<chunk>Box (</chunk>
<chunk bold="yes">16</chunk>
<chunk>) from thioglucoside </chunk>
<chunk bold="yes">7</chunk>
<chunk> as the key intermediate.</chunk>
</paragraph>
</caption>
<graphic public-id="1860-5397-6-23-i2"/>
</scheme>
<scheme id="s3">
<caption>
<paragraph>
<chunk>Preparation of ligands 3-deoxy </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box (</chunk>
<chunk bold="yes">21</chunk>
<chunk>) and Ac 3-deoxy </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box (</chunk>
<chunk bold="yes">23</chunk>
<chunk>) from key intermediate </chunk>
<chunk bold="yes">7</chunk>
<chunk>.</chunk>
</paragraph>
</caption>
<graphic public-id="1860-5397-6-23-i3"/>
</scheme>
<scheme id="s4">
<caption>
<paragraph>
<chunk>Preparation of ligand 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-Formyl </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box (</chunk>
<chunk bold="yes">26</chunk>
<chunk>) from bis(amide) </chunk>
<chunk bold="yes">24</chunk>
<chunk>.</chunk>
</paragraph>
</caption>
<graphic public-id="1860-5397-6-23-i4"/>
</scheme>
</schemes>
<tables>
<table id="t1">
<caption>
<paragraph>
<chunk>Cyclopropanations with </chunk>
<chunk italic="yes">allo</chunk>
<chunk>-configured ligands </chunk>
<chunk bold="yes">14</chunk>
<chunk> and </chunk>
<chunk bold="yes">16</chunk>
<chunk>, 3-deoxygenated ligands </chunk>
<chunk bold="yes">21</chunk>
<chunk> and </chunk>
<chunk bold="yes">23</chunk>
<chunk> and 3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-formylated, </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>-configured ligand </chunk>
<chunk bold="yes">26</chunk>
<chunk>.</chunk>
</paragraph>
</caption>
<table-row>
<table-cell horizontal-alignment="center" column-span="6">
<paragraph>
<inline-float target="i1"/>
</paragraph>
</table-cell>
</table-row>
<table-row type="header1">
<table-cell>
<paragraph>
<chunk>Entry</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>Ligand</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>Yield [%]</chunk>
<chunk superscript="yes">a</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk italic="yes">trans</chunk>
<chunk>/</chunk>
<chunk italic="yes">cis</chunk>
<chunk superscript="yes">b</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>ee </chunk>
<chunk italic="yes">trans</chunk>
<chunk> [%]</chunk>
<chunk superscript="yes">b</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>ee </chunk>
<chunk italic="yes">cis</chunk>
<chunk> [%]</chunk>
<chunk superscript="yes">b</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell>
<paragraph>
<chunk>1</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-Ac </chunk>
<chunk italic="yes">allo</chunk>
<chunk>Box (</chunk>
<chunk bold="yes">14</chunk>
<chunk>)</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>75</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>66:34</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>rac.</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>rac.</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell>
<paragraph>
<chunk>2</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>Ac </chunk>
<chunk italic="yes">allo</chunk>
<chunk>Box (</chunk>
<chunk bold="yes">16</chunk>
<chunk>)</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>79</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>70:30</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>71</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>87</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell>
<paragraph>
<chunk>3</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>3-deoxy </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box (</chunk>
<chunk bold="yes">21</chunk>
<chunk>)</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>86</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>69:31</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>rac.</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>rac.</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell>
<paragraph>
<chunk>4</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>Ac 3-deoxy </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box (</chunk>
<chunk bold="yes">23</chunk>
<chunk>)</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>75</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>74:26</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>78</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>72</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell>
<paragraph>
<chunk>5</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>3-</chunk>
<chunk italic="yes">O</chunk>
<chunk>-formyl </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box (</chunk>
<chunk bold="yes">26</chunk>
<chunk>)</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>95</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>71:29</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>95</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>94</chunk>
</paragraph>
</table-cell>
</table-row>
<table-footer>
<paragraph>
<chunk superscript="yes">a</chunk>
<chunk>Isolated yield after chromatography.</chunk>
</paragraph>
<paragraph>
<chunk superscript="yes">b</chunk>
<chunk>Determined by GC on a chiral stationary phase.</chunk>
</paragraph>
</table-footer>
</table>
</tables>
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<extended-smiles>[C@H]1([C@H]([C@H]([C@@H]2[C@H](O1)OC(=N2)C(C=3O[C@H]4O[C@@H]([C@H]([C@H]([C@H]4N3)OC(=O)C)OC(=O)C)COC(=O)C)(C)C)OC(=O)C)OC(=O)C)COC(=O)C |(71.51,-334.51,;77.36,-344.41,;88.86,-344.29,;94.51,-334.27,;88.65,-324.37,;77.15,-324.49,;96.25,-315.74,;106.81,-320.31,;105.73,-331.76,;116.71,-314.45,;127.21,-320.55,;137.74,-315.94,;145.38,-324.53,;156.88,-324.6,;162.57,-334.6,;156.76,-344.18,;145.26,-344.45,;139.57,-334.45,;128.34,-331.99,;137.35,-352.23,;127.39,-346.48,;127.39,-334.98,;117.43,-352.23,;154.43,-352.17,;144.47,-346.42,;144.47,-334.92,;134.51,-352.17,;174.07,-334.67,;171.84,-341.94,;161.88,-336.19,;161.88,-324.69,;151.93,-341.94,;122.44,-304.47,;110.94,-304.47,;86.81,-352.13,;76.86,-346.38,;76.86,-334.88,;66.9,-352.13,;69.56,-352.31,;59.61,-346.56,;59.61,-335.06,;49.65,-352.31,;60.01,-334.63,;52.28,-342.33,;42.32,-336.58,;42.32,-325.08,;32.36,-342.33,)|</extended-smiles>
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<molecular-formula>C29H38N2O16</molecular-formula>
<abbreviations>C* Me,CC(=O)O* OAc</abbreviations>
<molfile>
  CDK     04222607232D

  0  0  0     0  0            999 V3000
M  V30 BEGIN CTAB
M  V30 COUNTS 47 50 0 0 1
M  V30 BEGIN ATOM
M  V30 1 C 71.50801 -334.51065 0 0 CFG=1
M  V30 2 C 77.36356 -344.40826 0 0 CFG=1
M  V30 3 C 88.8629 -344.28601 0 0 CFG=1
M  V30 4 C 94.50671 -334.26617 0 0 CFG=1
M  V30 5 C 88.65118 -324.36853 0 0 CFG=1
M  V30 6 O 77.15182 -324.49078 0 0
M  V30 7 C 60.00867 -334.63287 0 0
M  V30 8 O 69.56458 -352.31433 0 0
M  V30 9 O 59.60529 -335.06433 0 0
M  V30 10 C 59.60529 -346.56433 0 0
M  V30 11 C 49.646 -352.31433 0 0
M  V30 12 O 86.81491 -352.12543 0 0
M  V30 13 O 76.85561 -334.87543 0 0
M  V30 14 C 76.85561 -346.37543 0 0
M  V30 15 C 66.89632 -352.12543 0 0
M  V30 16 N 105.72937 -331.75574 0 0
M  V30 17 C 106.8098 -320.30661 0 0
M  V30 18 O 96.2549 -315.74109 0 0
M  V30 19 C 116.70741 -314.45105 0 0
M  V30 20 C 139.56973 -334.45413 0 0 CFG=1
M  V30 21 C 145.25687 -344.44946 0 0 CFG=2
M  V30 22 C 156.75662 -344.17694 0 0 CFG=2
M  V30 23 C 162.56927 -334.59906 0 0 CFG=1
M  V30 24 O 156.88216 -324.60373 0 0
M  V30 25 C 145.38237 -324.53125 0 0 CFG=1
M  V30 26 O 154.42775 -352.16986 0 0
M  V30 27 O 144.46846 -334.91986 0 0
M  V30 28 C 144.46846 -346.41986 0 0
M  V30 29 C 134.50916 -352.16986 0 0
M  V30 30 O 137.35014 -352.22861 0 0
M  V30 31 O 127.39084 -334.97861 0 0
M  V30 32 C 127.39084 -346.47861 0 0
M  V30 33 C 117.43155 -352.22861 0 0
M  V30 34 C 174.06905 -334.67154 0 0
M  V30 35 O 137.74138 -315.93677 0 0
M  V30 36 C 127.20634 -320.54797 0 0
M  V30 37 N 128.33633 -331.99231 0 0
M  V30 38 C 122.44048 -304.47107 0 0
M  V30 39 C 110.94048 -304.47107 0 0
M  V30 40 O 52.2757 -342.33069 0 0
M  V30 41 O 42.31641 -325.08069 0 0
M  V30 42 C 42.31641 -336.58069 0 0
M  V30 43 C 32.35712 -342.33069 0 0
M  V30 44 O 171.84399 -341.93857 0 0
M  V30 45 O 161.8847 -324.68857 0 0
M  V30 46 C 161.8847 -336.18857 0 0
M  V30 47 C 151.92542 -341.93857 0 0
M  V30 END ATOM
M  V30 BEGIN BOND
M  V30 1 1 1 2
M  V30 2 1 2 3
M  V30 3 1 3 4
M  V30 4 1 4 5
M  V30 5 1 5 6
M  V30 6 1 6 1
M  V30 7 1 1 7 CFG=1
M  V30 8 1 8 10
M  V30 9 2 9 10
M  V30 10 1 10 11
M  V30 11 1 2 8 CFG=3
M  V30 12 1 12 14
M  V30 13 2 13 14
M  V30 14 1 14 15
M  V30 15 1 3 12 CFG=3
M  V30 16 1 4 16 CFG=3
M  V30 17 2 16 17
M  V30 18 1 17 18
M  V30 19 1 5 18 CFG=3
M  V30 20 1 17 19
M  V30 21 1 20 21
M  V30 22 1 21 22
M  V30 23 1 22 23
M  V30 24 1 23 24
M  V30 25 1 24 25
M  V30 26 1 25 20
M  V30 27 1 26 28
M  V30 28 2 27 28
M  V30 29 1 28 29
M  V30 30 1 22 26 CFG=1
M  V30 31 1 30 32
M  V30 32 2 31 32
M  V30 33 1 32 33
M  V30 34 1 21 30 CFG=1
M  V30 35 1 23 34 CFG=3
M  V30 36 1 25 35 CFG=1
M  V30 37 1 35 36
M  V30 38 2 36 37
M  V30 39 1 20 37 CFG=1
M  V30 40 1 19 36
M  V30 41 1 19 38
M  V30 42 1 19 39
M  V30 43 1 40 42
M  V30 44 2 41 42
M  V30 45 1 42 43
M  V30 46 1 7 40
M  V30 47 1 44 46
M  V30 48 2 45 46
M  V30 49 1 46 47
M  V30 50 1 44 34
M  V30 END BOND
M  V30 END CTAB
M  END
</molfile>
<backref ref="1860-5397-6-23-i2" left="41.989838" right="191.53362" top="300.71677" bottom="357.59225"/>
</substance>
<substance id="1860-5397-6-23-NNXLFLLIIMVDSP-MWTXLEQXSA-N">
<inchi-key>NNXLFLLIIMVDSP-MWTXLEQXSA-N</inchi-key>
<inchi>InChI=1S/C35H38N2O12/c1-17(38)42-27-23-31(44-21-15-40-29(46-25(21)27)19-11-7-5-8-12-19)48-33(36-23)35(3,4)34-37-24-28(43-18(2)39)26-22(45-32(24)49-34)16-41-30(47-26)20-13-9-6-10-14-20/h5-14,21-32H,15-16H2,1-4H3/t21-,22-,23-,24-,25-,26-,27+,28+,29-,30-,31-,32-/m1/s1</inchi>
<smiles>CC(=O)O[C@H]1[C@@H]2[C@H](O[C@@H]3CO[C@@H](C4=CC=CC=C4)O[C@H]31)OC(=N2)C(C)(C)C5=N[C@@H]6[C@@H]([C@H]7[C@@H](CO[C@@H](C8=CC=CC=C8)O7)O[C@@H]6O5)OC(=O)C</smiles>
<extended-smiles>[C@@H]12[C@H]([C@H]([C@@H]3[C@H](O1)OC(=N3)C(C=4O[C@H]5O[C@H]6[C@H]([C@H]([C@H]5N4)OC(=O)C)O[C@@H](OC6)C7=CC=CC=C7)(C)C)OC(=O)C)O[C@@H](OC2)C8=CC=CC=C8 |(323.48,-335.51,;329.34,-345.41,;340.84,-345.29,;346.48,-335.27,;340.63,-325.37,;329.13,-325.49,;348.23,-316.74,;358.79,-321.31,;357.7,-332.76,;368.68,-315.45,;379.18,-321.55,;389.72,-316.94,;397.36,-325.53,;408.86,-325.6,;414.54,-335.6,;408.73,-345.18,;397.23,-345.45,;391.55,-335.45,;380.31,-332.99,;389.33,-353.23,;379.37,-347.48,;379.37,-335.98,;369.41,-353.23,;414.42,-355.52,;425.32,-355.69,;431.13,-345.18,;426.04,-335.67,;433.94,-360.65,;439.69,-370.61,;451.19,-370.61,;456.95,-360.64,;451.19,-350.66,;439.67,-350.66,;374.42,-305.47,;362.92,-305.47,;338.79,-353.13,;328.83,-347.38,;328.83,-335.88,;318.87,-353.13,;323.7,-355.43,;311.98,-355.31,;306.34,-345.41,;311.98,-335.63,;303.34,-360.19,;297.59,-350.23,;286.13,-350.23,;280.42,-360.1,;286.11,-369.95,;297.47,-369.95,)|</extended-smiles>
<aux-info>AuxInfo=1/0/N:12,27,32,33,47,41,46,48,40,42,45,49,39,43,7,28,11,26,44,38,1,20,4,17,2,19,3,18,35,36,5,22,14,30,16,13,31,10,25,34,37,9,24,6,21,8,23,15,29/E:(1,2)(3,4)(5,6)(7,8,9,10)(11,12,13,14)(15,16)(17,18)(19,20)(21,22)(23,24)(25,26)(27,28)(29,30)(31,32)(33,34)(36,37)(38,39)(40,41)(42,43)(44,45)(46,47)(48,49)/it:im/rA:49nC.eC.eC.eC.eC.eOCOOOCCNCOCC.eC.oC.oC.eOC.eOOOCCCOCNCCOC.oC.oOCCCCCCCCCCCC/rB:s1;s2;s3;s4;s1s5;P1;N2;N3;;s9d10;s11;N4;d13;N5s14;s14;;s17;s18;s19;s20;s17s21;P19;P18;;s24d25;s26;N20;P22;s16s29;P17d30;s16;s16;s7;s8s34;s23;s28s36;P36;d38;s39;d40;s41;s38d42;N35;d44;s45;d46;s47;s44d48;/rC:323,4835,-335,5112,0;329,3391,-345,4088,0;340,8384,-345,2865,0;346,4822,-335,2667,0;340,6267,-325,3690,0;329,1273,-325,4913,0;311,9842,-335,6334,0;323,6953,-355,4286,0;338,7904,-353,1259,0;328,8311,-335,8759,0;328,8311,-347,3759,0;318,8718,-353,1259,0;357,7049,-332,7562,0;358,7853,-321,3071,0;348,2304,-316,7416,0;368,6829,-315,4516,0;391,5452,-335,4547,0;397,2324,-345,4500,0;408,7321,-345,1774,0;414,5448,-335,5995,0;408,8577,-325,6042,0;397,3579,-325,5318,0;414,4193,-355,5178,0;389,3257,-353,2291,0;379,3663,-335,9791,0;379,3663,-347,4791,0;369,4070,-353,2291,0;426,0446,-335,6721,0;389,7169,-316,9373,0;379,1819,-321,5485,0;380,3118,-332,9928,0;374,4160,-305,4716,0;362,9160,-305,4716,0;306,3403,-345,4088,0;311,9842,-355,3064,0;425,3215,-355,6902,0;431,1341,-345,1774,0;433,9366,-360,6541,0;439,6866,-370,6134,0;451,1933,-370,6134,0;456,9518,-360,6395,0;451,1908,-350,6613,0;439,6664,-350,6613,0;303,3361,-360,1891,0;297,5861,-350,2298,0;286,1259,-350,2298,0;280,4247,-360,1046,0;286,1110,-369,9535,0;297,4682,-369,9535,0;</aux-info>
<molecular-formula>C35H38N2O12</molecular-formula>
<abbreviations>C1=CC=C(C=C1)* Ph,C* Me,CC(=O)O* OAc</abbreviations>
<molfile>
  CDK     04222607232D

  0  0  0     0  0            999 V3000
M  V30 BEGIN CTAB
M  V30 COUNTS 49 56 0 0 1
M  V30 BEGIN ATOM
M  V30 1 C 323.48352 -335.51117 0 0 CFG=1
M  V30 2 C 329.33905 -345.40875 0 0 CFG=1
M  V30 3 C 340.83841 -345.2865 0 0 CFG=1
M  V30 4 C 346.48224 -335.26666 0 0 CFG=1
M  V30 5 C 340.62671 -325.36905 0 0 CFG=1
M  V30 6 O 329.12732 -325.4913 0 0
M  V30 7 C 311.98419 -335.63339 0 0
M  V30 8 O 323.69525 -355.42859 0 0
M  V30 9 O 338.79041 -353.12595 0 0
M  V30 10 O 328.83112 -335.87595 0 0
M  V30 11 C 328.83112 -347.37595 0 0
M  V30 12 C 318.87183 -353.12595 0 0
M  V30 13 N 357.7049 -332.75623 0 0
M  V30 14 C 358.78531 -321.30713 0 0
M  V30 15 O 348.23041 -316.74158 0 0
M  V30 16 C 368.68292 -315.45157 0 0
M  V30 17 C 391.54523 -335.45465 0 0 CFG=1
M  V30 18 C 397.23236 -345.44995 0 0 CFG=2
M  V30 19 C 408.73212 -345.17743 0 0 CFG=2
M  V30 20 C 414.5448 -335.59955 0 0 CFG=1
M  V30 21 O 408.85767 -325.60425 0 0
M  V30 22 C 397.35788 -325.53177 0 0 CFG=1
M  V30 23 O 414.41925 -355.51776 0 0
M  V30 24 O 389.32565 -353.22913 0 0
M  V30 25 O 379.36633 -335.97913 0 0
M  V30 26 C 379.36633 -347.47913 0 0
M  V30 27 C 369.40704 -353.22913 0 0
M  V30 28 C 426.04456 -335.67206 0 0
M  V30 29 O 389.71689 -316.93729 0 0
M  V30 30 C 379.18185 -321.54846 0 0
M  V30 31 N 380.31183 -332.9928 0 0
M  V30 32 C 374.41599 -305.47159 0 0
M  V30 33 C 362.91599 -305.47159 0 0
M  V30 34 O 306.34033 -345.40875 0 0
M  V30 35 C 311.98416 -355.30637 0 0 CFG=2
M  V30 36 C 425.32147 -355.69025 0 0 CFG=2
M  V30 37 O 431.13412 -345.17743 0 0
M  V30 38 C 433.93661 -360.65411 0 0
M  V30 39 C 439.68661 -370.6134 0 0
M  V30 40 C 451.19333 -370.6134 0 0
M  V30 41 C 456.95175 -360.63953 0 0
M  V30 42 C 451.1908 -350.66125 0 0
M  V30 43 C 439.66644 -350.66125 0 0
M  V30 44 C 303.33612 -360.18909 0 0
M  V30 45 C 297.58612 -350.2298 0 0
M  V30 46 C 286.12592 -350.2298 0 0
M  V30 47 C 280.42474 -360.10455 0 0
M  V30 48 C 286.11102 -369.95346 0 0
M  V30 49 C 297.4682 -369.95346 0 0
M  V30 END ATOM
M  V30 BEGIN BOND
M  V30 1 1 1 2
M  V30 2 1 2 3
M  V30 3 1 3 4
M  V30 4 1 4 5
M  V30 5 1 5 6
M  V30 6 1 6 1
M  V30 7 1 1 7 CFG=1
M  V30 8 1 2 8 CFG=3
M  V30 9 1 9 11
M  V30 10 2 10 11
M  V30 11 1 11 12
M  V30 12 1 3 9 CFG=3
M  V30 13 1 4 13 CFG=3
M  V30 14 2 13 14
M  V30 15 1 14 15
M  V30 16 1 5 15 CFG=3
M  V30 17 1 14 16
M  V30 18 1 17 18
M  V30 19 1 18 19
M  V30 20 1 19 20
M  V30 21 1 20 21
M  V30 22 1 21 22
M  V30 23 1 22 17
M  V30 24 1 19 23 CFG=1
M  V30 25 1 24 26
M  V30 26 2 25 26
M  V30 27 1 26 27
M  V30 28 1 18 24 CFG=1
M  V30 29 1 20 28 CFG=3
M  V30 30 1 22 29 CFG=1
M  V30 31 1 29 30
M  V30 32 2 30 31
M  V30 33 1 17 31 CFG=1
M  V30 34 1 16 30
M  V30 35 1 16 32
M  V30 36 1 16 33
M  V30 37 1 7 34
M  V30 38 1 34 35
M  V30 39 1 35 8
M  V30 40 1 23 36
M  V30 41 1 36 37
M  V30 42 1 37 28
M  V30 43 2 38 39
M  V30 44 1 39 40
M  V30 45 2 40 41
M  V30 46 1 41 42
M  V30 47 2 42 43
M  V30 48 1 38 43
M  V30 49 1 36 38 CFG=1
M  V30 50 2 44 45
M  V30 51 1 45 46
M  V30 52 2 46 47
M  V30 53 1 47 48
M  V30 54 2 48 49
M  V30 55 1 44 49
M  V30 56 1 35 44 CFG=3
M  V30 END BOND
M  V30 END CTAB
M  END
</molfile>
<backref ref="1860-5397-6-23-i2" left="298.70563" right="437.9724" top="301.7173" bottom="368.51678"/>
</substance>
<substance id="1860-5397-6-23-SBEZIKBLYATFJZ-NYPWAHJVSA-N">
<inchi-key>SBEZIKBLYATFJZ-NYPWAHJVSA-N</inchi-key>
<inchi>InChI=1S/C33H50N2O16S2/c1-11-52-29-23(27(48-19(7)40)25(46-17(5)38)21(50-29)13-44-15(3)36)34-31(42)33(9,10)32(43)35-24-28(49-20(8)41)26(47-18(6)39)22(14-45-16(4)37)51-30(24)53-12-2/h21-30H,11-14H2,1-10H3,(H,34,42)(H,35,43)/t21-,22-,23-,24-,25-,26-,27+,28+,29+,30+/m1/s1</inchi>
<smiles>CCS[C@H]1[C@@H]([C@@H]([C@@H]([C@@H](COC(=O)C)O1)OC(=O)C)OC(=O)C)NC(=O)C(C)(C)C(=O)N[C@@H]2[C@@H]([C@@H]([C@@H](COC(=O)C)O[C@H]2SCC)OC(=O)C)OC(=O)C</smiles>
<extended-smiles>[C@H]1([C@H]([C@H]([C@H]([C@@H](O1)SCC)NC(C(C(N[C@@H]2[C@@H]([C@@H]([C@H](O[C@H]2SCC)COC(=O)C)OC(=O)C)OC(=O)C)=O)(C)C)=O)OC(=O)C)OC(=O)C)COC(=O)C |(68.91,-186.14,;68.91,-197.64,;78.87,-203.39,;88.83,-197.64,;88.83,-186.14,;78.87,-180.39,;98.44,-180.55,;106.57,-188.69,;117.68,-185.71,;98.79,-203.39,;108.75,-197.64,;118.71,-203.39,;128.67,-197.64,;138.63,-203.39,;148.58,-197.64,;158.54,-203.39,;168.5,-197.64,;168.5,-186.14,;158.54,-180.39,;148.58,-186.14,;138.96,-183.53,;130.83,-175.4,;119.72,-178.38,;178.46,-180.39,;178.44,-186.13,;168.48,-180.38,;168.48,-168.88,;158.52,-186.13,;168.49,-203.38,;158.53,-197.63,;158.53,-186.13,;148.57,-203.38,;153.52,-212,;143.56,-206.25,;143.56,-194.75,;133.6,-212,;128.67,-186.14,;112.95,-213.33,;124.45,-213.33,;108.75,-186.14,;73.87,-212,;63.91,-206.25,;63.91,-194.75,;53.95,-212,;58.95,-203.38,;48.99,-197.63,;48.99,-186.13,;39.03,-203.38,;58.95,-180.39,;48.95,-186.13,;38.99,-180.38,;38.99,-168.88,;29.03,-186.13,)|</extended-smiles>
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<molecular-formula>C33H50N2O16S2</molecular-formula>
<abbreviations>C* Me,CC(=O)O* OAc,CCS* SEt</abbreviations>
<molfile>
  CDK     04222607232D

  0  0  0     0  0            999 V3000
M  V30 BEGIN CTAB
M  V30 COUNTS 53 54 0 0 1
M  V30 BEGIN ATOM
M  V30 1 C 68.90999 -186.13635 0 0 CFG=1
M  V30 2 C 68.90999 -197.63635 0 0 CFG=1
M  V30 3 C 78.86929 -203.38635 0 0 CFG=1
M  V30 4 C 88.82858 -197.63635 0 0 CFG=1
M  V30 5 C 88.82858 -186.13635 0 0 CFG=2
M  V30 6 O 78.86929 -180.38635 0 0
M  V30 7 C 58.9507 -180.38635 0 0
M  V30 8 O 48.94748 -186.12698 0 0
M  V30 9 O 38.98819 -168.87698 0 0
M  V30 10 C 38.98819 -180.37698 0 0
M  V30 11 C 29.02888 -186.12698 0 0
M  V30 12 O 58.94748 -203.37698 0 0
M  V30 13 O 48.98819 -186.12698 0 0
M  V30 14 C 48.98819 -197.62698 0 0
M  V30 15 C 39.02888 -203.37698 0 0
M  V30 16 N 98.78787 -203.38635 0 0
M  V30 17 S 98.43568 -180.55464 0 0
M  V30 18 C 117.67557 -185.70995 0 0
M  V30 19 C 106.56741 -188.68637 0 0
M  V30 20 O 73.86783 -212.00198 0 0
M  V30 21 O 63.90854 -194.75198 0 0
M  V30 22 C 63.90854 -206.25198 0 0
M  V30 23 C 53.94925 -212.00198 0 0
M  V30 24 C 108.74716 -197.63635 0 0
M  V30 25 C 118.70645 -203.38635 0 0
M  V30 26 C 128.66576 -197.63635 0 0
M  V30 27 N 138.62505 -203.38635 0 0
M  V30 28 C 148.58434 -197.63635 0 0 CFG=1
M  V30 29 O 108.74716 -186.13635 0 0
M  V30 30 O 128.66576 -186.13635 0 0
M  V30 31 C 158.54362 -203.38635 0 0 CFG=2
M  V30 32 C 168.50291 -197.63635 0 0 CFG=2
M  V30 33 C 168.50291 -186.13635 0 0 CFG=1
M  V30 34 O 158.54362 -180.38635 0 0
M  V30 35 C 148.58434 -186.13635 0 0 CFG=2
M  V30 36 S 138.95926 -183.53105 0 0
M  V30 37 C 119.71939 -178.37575 0 0
M  V30 38 C 130.82753 -175.39932 0 0
M  V30 39 O 168.48819 -203.37698 0 0
M  V30 40 O 158.52888 -186.12698 0 0
M  V30 41 C 158.52888 -197.62698 0 0
M  V30 42 C 148.5696 -203.37698 0 0
M  V30 43 O 153.51782 -212.00198 0 0
M  V30 44 O 143.55853 -194.75198 0 0
M  V30 45 C 143.55853 -206.25198 0 0
M  V30 46 C 133.59924 -212.00198 0 0
M  V30 47 C 178.4622 -180.38635 0 0
M  V30 48 O 178.43817 -186.12698 0 0
M  V30 49 O 168.47888 -168.87698 0 0
M  V30 50 C 168.47888 -180.37698 0 0
M  V30 51 C 158.51959 -186.12698 0 0
M  V30 52 C 112.94748 -213.32698 0 0
M  V30 53 C 124.44748 -213.32698 0 0
M  V30 END ATOM
M  V30 BEGIN BOND
M  V30 1 1 1 2
M  V30 2 1 2 3
M  V30 3 1 3 4
M  V30 4 1 4 5
M  V30 5 1 5 6
M  V30 6 1 6 1
M  V30 7 1 1 7 CFG=1
M  V30 8 1 8 10
M  V30 9 2 9 10
M  V30 10 1 10 11
M  V30 11 1 7 8
M  V30 12 1 12 14
M  V30 13 2 13 14
M  V30 14 1 14 15
M  V30 15 1 2 12 CFG=3
M  V30 16 1 4 16 CFG=3
M  V30 17 1 17 19
M  V30 18 1 18 19
M  V30 19 1 5 17 CFG=1
M  V30 20 1 20 22
M  V30 21 2 21 22
M  V30 22 1 22 23
M  V30 23 1 3 20 CFG=3
M  V30 24 1 24 16
M  V30 25 1 25 24
M  V30 26 1 26 25
M  V30 27 1 27 26
M  V30 28 1 28 27 CFG=1
M  V30 29 2 24 29
M  V30 30 2 26 30
M  V30 31 1 28 31
M  V30 32 1 31 32
M  V30 33 1 32 33
M  V30 34 1 33 34
M  V30 35 1 34 35
M  V30 36 1 35 28
M  V30 37 1 36 38
M  V30 38 1 37 38
M  V30 39 1 35 36 CFG=3
M  V30 40 1 39 41
M  V30 41 2 40 41
M  V30 42 1 41 42
M  V30 43 1 32 39 CFG=1
M  V30 44 1 43 45
M  V30 45 2 44 45
M  V30 46 1 45 46
M  V30 47 1 31 43 CFG=1
M  V30 48 1 33 47 CFG=3
M  V30 49 1 48 50
M  V30 50 2 49 50
M  V30 51 1 50 51
M  V30 52 1 47 48
M  V30 53 1 25 52
M  V30 54 1 25 53
M  V30 END BOND
M  V30 END CTAB
M  END
</molfile>
<backref ref="1860-5397-6-23-i2" left="36.61641" right="200.79651" top="174.21295" bottom="217.96135"/>
</substance>
<substance id="1860-5397-6-23-BHHRQHWZFXLOQL-NBWOUMIXSA-N">
<inchi-key>BHHRQHWZFXLOQL-NBWOUMIXSA-N</inchi-key>
<inchi>InChI=1S/C25H34N2O12/c1-11(28)32-9-19-17(34-13(3)30)7-15-21(36-19)38-23(26-15)25(5,6)24-27-16-8-18(35-14(4)31)20(10-33-12(2)29)37-22(16)39-24/h15-22H,7-10H2,1-6H3/t15-,16-,17+,18+,19-,20-,21-,22-/m1/s1</inchi>
<smiles>CC(=O)OC[C@@H]1[C@H](C[C@@H]2[C@H](O1)OC(=N2)C(C)(C)C3=N[C@@H]4C[C@@H]([C@@H](COC(=O)C)O[C@@H]4O3)OC(=O)C)OC(=O)C</smiles>
<extended-smiles>[C@H]1([C@H](C[C@@H]2[C@H](O1)OC(=N2)C(C=3O[C@H]4O[C@@H]([C@H](C[C@H]4N3)OC(=O)C)COC(=O)C)(C)C)OC(=O)C)COC(=O)C |(68.01,-329.52,;73.87,-339.41,;85.37,-339.29,;91.01,-329.27,;85.15,-319.37,;73.66,-319.5,;92.76,-310.75,;103.31,-315.31,;102.23,-326.76,;113.21,-309.46,;123.71,-315.55,;134.24,-310.94,;141.89,-319.54,;153.39,-319.61,;159.07,-329.6,;153.26,-339.18,;141.76,-339.45,;136.07,-329.46,;124.84,-327,;150.93,-348.17,;140.97,-342.42,;140.97,-330.92,;131.01,-348.17,;170.57,-329.68,;168.35,-337.94,;158.39,-332.19,;158.39,-320.69,;148.43,-337.94,;118.94,-300.48,;107.44,-300.48,;66.07,-348.32,;56.11,-342.57,;56.11,-331.07,;46.15,-348.32,;56.51,-329.64,;48.78,-338.33,;38.82,-332.58,;38.82,-321.08,;28.86,-338.33,)|</extended-smiles>
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<molecular-formula>C25H34N2O12</molecular-formula>
<abbreviations>C* Me,CC(=O)O* OAc</abbreviations>
<molfile>
  CDK     04222607232D

  0  0  0     0  0            999 V3000
M  V30 BEGIN CTAB
M  V30 COUNTS 39 42 0 0 1
M  V30 BEGIN ATOM
M  V30 1 C 68.01152 -329.51566 0 0 CFG=1
M  V30 2 C 73.86707 -339.41327 0 0 CFG=1
M  V30 3 C 85.36641 -339.29102 0 0
M  V30 4 C 91.01022 -329.27118 0 0 CFG=1
M  V30 5 C 85.15469 -319.37354 0 0 CFG=1
M  V30 6 O 73.65533 -319.49579 0 0
M  V30 7 C 56.51218 -329.63788 0 0
M  V30 8 O 66.06808 -348.31833 0 0
M  V30 9 O 56.1088 -331.06833 0 0
M  V30 10 C 56.1088 -342.56833 0 0
M  V30 11 C 46.14951 -348.31833 0 0
M  V30 12 N 102.23288 -326.76074 0 0
M  V30 13 C 103.31331 -315.31161 0 0
M  V30 14 O 92.75841 -310.74609 0 0
M  V30 15 C 113.21092 -309.45605 0 0
M  V30 16 C 136.07324 -329.45914 0 0 CFG=1
M  V30 17 C 141.76038 -339.45447 0 0
M  V30 18 C 153.26013 -339.18195 0 0 CFG=2
M  V30 19 C 159.07278 -329.60406 0 0 CFG=1
M  V30 20 O 153.38567 -319.60873 0 0
M  V30 21 C 141.88588 -319.53625 0 0 CFG=1
M  V30 22 O 150.93126 -348.17389 0 0
M  V30 23 O 140.97197 -330.92389 0 0
M  V30 24 C 140.97197 -342.42389 0 0
M  V30 25 C 131.01266 -348.17389 0 0
M  V30 26 C 170.57256 -329.67654 0 0
M  V30 27 O 134.24489 -310.94177 0 0
M  V30 28 C 123.70985 -315.55298 0 0
M  V30 29 N 124.83984 -326.99731 0 0
M  V30 30 C 118.94398 -300.4751 0 0
M  V30 31 C 107.44398 -300.4751 0 0
M  V30 32 O 48.77921 -338.33472 0 0
M  V30 33 O 38.81992 -321.08472 0 0
M  V30 34 C 38.81992 -332.58472 0 0
M  V30 35 C 28.86063 -338.33472 0 0
M  V30 36 O 168.3475 -337.94257 0 0
M  V30 37 O 158.38821 -320.69257 0 0
M  V30 38 C 158.38821 -332.19257 0 0
M  V30 39 C 148.42892 -337.94257 0 0
M  V30 END ATOM
M  V30 BEGIN BOND
M  V30 1 1 1 2
M  V30 2 1 2 3
M  V30 3 1 3 4
M  V30 4 1 4 5
M  V30 5 1 5 6
M  V30 6 1 6 1
M  V30 7 1 1 7 CFG=1
M  V30 8 1 8 10
M  V30 9 2 9 10
M  V30 10 1 10 11
M  V30 11 1 2 8 CFG=3
M  V30 12 1 4 12 CFG=3
M  V30 13 2 12 13
M  V30 14 1 13 14
M  V30 15 1 5 14 CFG=3
M  V30 16 1 13 15
M  V30 17 1 16 17
M  V30 18 1 17 18
M  V30 19 1 18 19
M  V30 20 1 19 20
M  V30 21 1 20 21
M  V30 22 1 21 16
M  V30 23 1 22 24
M  V30 24 2 23 24
M  V30 25 1 24 25
M  V30 26 1 18 22 CFG=1
M  V30 27 1 19 26 CFG=3
M  V30 28 1 21 27 CFG=1
M  V30 29 1 27 28
M  V30 30 2 28 29
M  V30 31 1 16 29 CFG=1
M  V30 32 1 15 28
M  V30 33 1 15 30
M  V30 34 1 15 31
M  V30 35 1 32 34
M  V30 36 2 33 34
M  V30 37 1 34 35
M  V30 38 1 7 32
M  V30 39 1 36 38
M  V30 40 2 37 38
M  V30 41 1 38 39
M  V30 42 1 36 26
M  V30 END BOND
M  V30 END CTAB
M  END
</molfile>
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<substance id="1860-5397-6-23-DOWGZHWHNUZJNV-IRPHYWHVSA-N">
<inchi-key>DOWGZHWHNUZJNV-IRPHYWHVSA-N</inchi-key>
<inchi>InChI=1S/C35H46N2O8S2/c1-5-46-31-23(17-25-27(44-31)19-40-29(42-25)21-13-9-7-10-14-21)36-33(38)35(3,4)34(39)37-24-18-26-28(45-32(24)47-6-2)20-41-30(43-26)22-15-11-8-12-16-22/h7-16,23-32H,5-6,17-20H2,1-4H3,(H,36,38)(H,37,39)/t23-,24-,25+,26+,27-,28-,29-,30-,31+,32+/m1/s1</inchi>
<smiles>CCS[C@H]1[C@@H](C[C@H]2[C@@H](CO[C@@H](C3=CC=CC=C3)O2)O1)NC(=O)C(C)(C)C(=O)N[C@@H]4C[C@H]5[C@@H](CO[C@@H](C6=CC=CC=C6)O5)O[C@H]4SCC</smiles>
<extended-smiles>[C@@H]12[C@H](C[C@H]([C@@H](O1)SCC)NC(C(C(N[C@@H]3C[C@H]4[C@H](O[C@H]3SCC)CO[C@H](O4)C5=CC=CC=C5)=O)(C)C)=O)O[C@@H](OC2)C6=CC=CC=C6 |(324.93,-181.14,;324.93,-192.64,;334.89,-198.39,;344.85,-192.64,;344.85,-181.14,;334.89,-175.39,;360.95,-176.58,;369.09,-184.71,;380.19,-181.74,;354.8,-198.39,;364.76,-192.64,;374.72,-198.39,;384.68,-192.64,;394.64,-198.39,;404.6,-192.64,;414.56,-198.39,;424.52,-192.64,;424.52,-181.14,;414.56,-175.39,;404.6,-181.14,;401.47,-179.56,;393.34,-171.43,;382.23,-174.4,;434.48,-175.39,;444.44,-181.14,;444.44,-192.64,;434.48,-198.39,;461.67,-196.5,;467.42,-206.46,;478.92,-206.46,;484.67,-196.5,;478.92,-186.54,;467.42,-186.54,;384.68,-181.14,;375.45,-209.33,;386.95,-209.33,;364.76,-181.14,;314.97,-198.39,;305.01,-192.64,;305.01,-181.14,;314.97,-175.39,;312.26,-196.5,;318.01,-206.46,;329.51,-206.46,;335.26,-196.5,;329.51,-186.54,;318.01,-186.54,)|</extended-smiles>
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<molecular-formula>C35H46N2O8S2</molecular-formula>
<abbreviations>C1=CC=C(C=C1)* Ph,C* Me,CCS* SEt</abbreviations>
<molfile>
  CDK     04222607232D

  0  0  0     0  0            999 V3000
M  V30 BEGIN CTAB
M  V30 COUNTS 47 52 0 0 1
M  V30 BEGIN ATOM
M  V30 1 C 324.927 -181.13985 0 0 CFG=1
M  V30 2 C 324.927 -192.63985 0 0 CFG=1
M  V30 3 C 334.88629 -198.38985 0 0
M  V30 4 C 344.84558 -192.63985 0 0 CFG=1
M  V30 5 C 344.84558 -181.13985 0 0 CFG=2
M  V30 6 O 334.88629 -175.38985 0 0
M  V30 7 C 314.96771 -175.38985 0 0
M  V30 8 O 305.00842 -181.13985 0 0
M  V30 9 O 314.96771 -198.38985 0 0
M  V30 10 N 354.80487 -198.38985 0 0
M  V30 11 S 360.95462 -176.58244 0 0
M  V30 12 C 380.19449 -181.73775 0 0
M  V30 13 C 369.08636 -184.71417 0 0
M  V30 14 C 364.76416 -192.63985 0 0
M  V30 15 C 374.72345 -198.38985 0 0
M  V30 16 C 384.68274 -192.63985 0 0
M  V30 17 N 394.64203 -198.38985 0 0
M  V30 18 C 404.60132 -192.63985 0 0 CFG=1
M  V30 19 O 364.76416 -181.13985 0 0
M  V30 20 O 384.68274 -181.13985 0 0
M  V30 21 C 414.56061 -198.38985 0 0
M  V30 22 C 424.5199 -192.63985 0 0 CFG=2
M  V30 23 C 424.5199 -181.13985 0 0 CFG=1
M  V30 24 O 414.56061 -175.38985 0 0
M  V30 25 C 404.60132 -181.13985 0 0 CFG=2
M  V30 26 S 401.47119 -179.55885 0 0
M  V30 27 C 382.23132 -174.40355 0 0
M  V30 28 C 393.33948 -171.42712 0 0
M  V30 29 O 434.47919 -198.38985 0 0
M  V30 30 C 434.47919 -175.38985 0 0
M  V30 31 O 444.43851 -181.13985 0 0
M  V30 32 C 375.45142 -209.33279 0 0
M  V30 33 C 386.95142 -209.33279 0 0
M  V30 34 C 305.00842 -192.63985 0 0 CFG=1
M  V30 35 C 444.43851 -192.63985 0 0 CFG=2
M  V30 36 C 461.66675 -196.49878 0 0
M  V30 37 C 467.41675 -206.45808 0 0
M  V30 38 C 478.91675 -206.45808 0 0
M  V30 39 C 484.66675 -196.49878 0 0
M  V30 40 C 478.91675 -186.53949 0 0
M  V30 41 C 467.41675 -186.53949 0 0
M  V30 42 C 312.25903 -196.49878 0 0
M  V30 43 C 318.00906 -206.45808 0 0
M  V30 44 C 329.50903 -206.45808 0 0
M  V30 45 C 335.25903 -196.49878 0 0
M  V30 46 C 329.50903 -186.53949 0 0
M  V30 47 C 318.00903 -186.53949 0 0
M  V30 END ATOM
M  V30 BEGIN BOND
M  V30 1 1 1 2
M  V30 2 1 2 3
M  V30 3 1 3 4
M  V30 4 1 4 5
M  V30 5 1 5 6
M  V30 6 1 6 1
M  V30 7 1 1 7 CFG=1
M  V30 8 1 7 8
M  V30 9 1 2 9 CFG=3
M  V30 10 1 4 10 CFG=3
M  V30 11 1 11 13
M  V30 12 1 12 13
M  V30 13 1 5 11 CFG=1
M  V30 14 1 14 10
M  V30 15 1 15 14
M  V30 16 1 16 15
M  V30 17 1 17 16
M  V30 18 1 18 17 CFG=1
M  V30 19 2 14 19
M  V30 20 2 16 20
M  V30 21 1 18 21
M  V30 22 1 21 22
M  V30 23 1 22 23
M  V30 24 1 23 24
M  V30 25 1 24 25
M  V30 26 1 25 18
M  V30 27 1 26 28
M  V30 28 1 27 28
M  V30 29 1 25 26 CFG=3
M  V30 30 1 22 29 CFG=1
M  V30 31 1 23 30 CFG=3
M  V30 32 1 30 31
M  V30 33 1 15 32
M  V30 34 1 15 33
M  V30 35 1 8 34
M  V30 36 1 9 34
M  V30 37 1 31 35
M  V30 38 1 29 35
M  V30 39 2 36 37
M  V30 40 1 37 38
M  V30 41 2 38 39
M  V30 42 1 39 40
M  V30 43 2 40 41
M  V30 44 1 36 41
M  V30 45 1 35 36 CFG=1
M  V30 46 2 42 43
M  V30 47 1 43 44
M  V30 48 2 44 45
M  V30 49 1 45 46
M  V30 50 2 46 47
M  V30 51 1 42 47
M  V30 52 1 34 42 CFG=3
M  V30 END BOND
M  V30 END CTAB
M  END
</molfile>
<backref ref="1860-5397-6-23-i3" left="287.59912" right="461.28528" top="169.21645" bottom="211.32413"/>
</substance>
<substance id="1860-5397-6-23-MANVOUWFGNNCLE-LBXFUEGBSA-N">
<inchi-key>MANVOUWFGNNCLE-LBXFUEGBSA-N</inchi-key>
<inchi>InChI=1S/C31H34N2O8/c1-31(2,29-32-19-13-21-23(38-27(19)40-29)15-34-25(36-21)17-9-5-3-6-10-17)30-33-20-14-22-24(39-28(20)41-30)16-35-26(37-22)18-11-7-4-8-12-18/h3-12,19-28H,13-16H2,1-2H3/t19-,20-,21+,22+,23-,24-,25-,26-,27-,28-/m1/s1</inchi>
<smiles>CC(C)(C1=N[C@@H]2C[C@H]3[C@@H](CO[C@@H](C4=CC=CC=C4)O3)O[C@@H]2O1)C5=N[C@@H]6C[C@H]7[C@@H](CO[C@@H](C8=CC=CC=C8)O7)O[C@@H]6O5</smiles>
<extended-smiles>[C@@H]12[C@H](C[C@@H]3[C@H](O1)OC(=N3)C(C=4O[C@H]5O[C@H]6[C@H](C[C@H]5N4)O[C@@H](OC6)C7=CC=CC=C7)(C)C)O[C@@H](OC2)C8=CC=CC=C8 |(329.48,-329.52,;335.33,-339.41,;346.83,-339.29,;352.48,-329.27,;346.62,-319.38,;335.12,-319.5,;354.22,-310.75,;364.78,-315.31,;363.7,-326.76,;374.68,-309.46,;385.18,-315.55,;395.71,-310.94,;403.35,-319.54,;414.85,-319.61,;420.54,-329.61,;414.73,-339.18,;403.23,-339.46,;397.54,-329.46,;386.31,-327,;420.41,-349.52,;431.32,-349.7,;437.13,-339.18,;432.04,-329.68,;439.93,-355.66,;445.68,-365.62,;457.19,-365.62,;462.95,-355.64,;457.18,-345.67,;445.66,-345.67,;380.41,-300.48,;368.91,-300.48,;329.69,-349.43,;317.98,-349.31,;312.33,-339.41,;317.98,-329.64,;309.33,-355.19,;303.58,-345.23,;292.12,-345.23,;286.42,-355.11,;292.11,-364.96,;303.46,-364.96,)|</extended-smiles>
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<molecular-formula>C31H34N2O8</molecular-formula>
<abbreviations>C1=CC=C(C=C1)* Ph,C* Me</abbreviations>
<molfile>
  CDK     04222607232D

  0  0  0     0  0            999 V3000
M  V30 BEGIN CTAB
M  V30 COUNTS 41 48 0 0 1
M  V30 BEGIN ATOM
M  V30 1 C 329.47751 -329.51715 0 0 CFG=1
M  V30 2 C 335.33307 -339.41473 0 0 CFG=1
M  V30 3 C 346.8324 -339.29251 0 0
M  V30 4 C 352.4762 -329.27264 0 0 CFG=1
M  V30 5 C 346.62067 -319.37506 0 0 CFG=1
M  V30 6 O 335.12134 -319.49731 0 0
M  V30 7 C 317.97815 -329.6394 0 0
M  V30 8 O 329.68924 -349.4346 0 0
M  V30 9 N 363.69885 -326.76224 0 0
M  V30 10 C 364.7793 -315.31311 0 0
M  V30 11 O 354.2244 -310.74756 0 0
M  V30 12 C 374.67691 -309.45758 0 0
M  V30 13 C 397.53925 -329.46063 0 0 CFG=1
M  V30 14 C 403.22638 -339.45596 0 0
M  V30 15 C 414.72614 -339.18341 0 0 CFG=2
M  V30 16 C 420.53876 -329.60556 0 0 CFG=1
M  V30 17 O 414.85165 -319.61023 0 0
M  V30 18 C 403.35187 -319.53778 0 0 CFG=1
M  V30 19 O 420.41327 -349.52374 0 0
M  V30 20 C 432.03854 -329.67804 0 0
M  V30 21 O 395.71088 -310.9433 0 0
M  V30 22 C 385.17584 -315.55444 0 0
M  V30 23 N 386.30585 -326.99881 0 0
M  V30 24 C 380.40997 -300.47656 0 0
M  V30 25 C 368.90997 -300.47656 0 0
M  V30 26 O 312.33435 -339.41473 0 0
M  V30 27 C 317.97815 -349.31238 0 0 CFG=2
M  V30 28 C 431.31546 -349.69626 0 0 CFG=2
M  V30 29 O 437.12811 -339.18341 0 0
M  V30 30 C 439.9306 -355.65912 0 0
M  V30 31 C 445.6806 -365.61841 0 0
M  V30 32 C 457.18732 -365.61841 0 0
M  V30 33 C 462.94574 -355.6445 0 0
M  V30 34 C 457.18481 -345.66626 0 0
M  V30 35 C 445.6604 -345.66626 0 0
M  V30 36 C 309.33014 -355.19409 0 0
M  V30 37 C 303.58014 -345.2348 0 0
M  V30 38 C 292.11993 -345.2348 0 0
M  V30 39 C 286.41873 -355.10956 0 0
M  V30 40 C 292.10501 -364.95844 0 0
M  V30 41 C 303.46216 -364.95844 0 0
M  V30 END ATOM
M  V30 BEGIN BOND
M  V30 1 1 1 2
M  V30 2 1 2 3
M  V30 3 1 3 4
M  V30 4 1 4 5
M  V30 5 1 5 6
M  V30 6 1 6 1
M  V30 7 1 1 7 CFG=1
M  V30 8 1 2 8 CFG=3
M  V30 9 1 4 9 CFG=3
M  V30 10 2 9 10
M  V30 11 1 10 11
M  V30 12 1 5 11 CFG=3
M  V30 13 1 10 12
M  V30 14 1 13 14
M  V30 15 1 14 15
M  V30 16 1 15 16
M  V30 17 1 16 17
M  V30 18 1 17 18
M  V30 19 1 18 13
M  V30 20 1 15 19 CFG=1
M  V30 21 1 16 20 CFG=3
M  V30 22 1 18 21 CFG=1
M  V30 23 1 21 22
M  V30 24 2 22 23
M  V30 25 1 13 23 CFG=1
M  V30 26 1 12 22
M  V30 27 1 12 24
M  V30 28 1 12 25
M  V30 29 1 7 26
M  V30 30 1 26 27
M  V30 31 1 27 8
M  V30 32 1 19 28
M  V30 33 1 28 29
M  V30 34 1 29 20
M  V30 35 2 30 31
M  V30 36 1 31 32
M  V30 37 2 32 33
M  V30 38 1 33 34
M  V30 39 2 34 35
M  V30 40 1 30 35
M  V30 41 1 28 30 CFG=1
M  V30 42 2 36 37
M  V30 43 1 37 38
M  V30 44 2 38 39
M  V30 45 1 39 40
M  V30 46 2 40 41
M  V30 47 1 36 41
M  V30 48 1 27 36 CFG=3
M  V30 END BOND
M  V30 END CTAB
M  END
</molfile>
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<substance id="1860-5397-6-23-UAMDFDYUIGHVDE-FVWBIGPJSA-N">
<inchi-key>UAMDFDYUIGHVDE-FVWBIGPJSA-N</inchi-key>
<inchi>InChI=1S/C29H46N2O12S2/c1-9-44-25-19(11-21(40-17(5)34)23(42-25)13-38-15(3)32)30-27(36)29(7,8)28(37)31-20-12-22(41-18(6)35)24(14-39-16(4)33)43-26(20)45-10-2/h19-26H,9-14H2,1-8H3,(H,30,36)(H,31,37)/t19-,20-,21+,22+,23-,24-,25+,26+/m1/s1</inchi>
<smiles>CCS[C@H]1[C@@H](C[C@@H]([C@@H](COC(=O)C)O1)OC(=O)C)NC(=O)C(C)(C)C(=O)N[C@@H]2C[C@@H]([C@@H](COC(=O)C)O[C@H]2SCC)OC(=O)C</smiles>
<extended-smiles>[C@H]1([C@H](C[C@H]([C@@H](O1)SCC)NC(C(C(N[C@@H]2C[C@@H]([C@H](O[C@H]2SCC)COC(=O)C)OC(=O)C)=O)(C)C)=O)OC(=O)C)COC(=O)C |(62.92,-181.14,;62.92,-192.64,;72.88,-198.39,;82.83,-192.64,;82.83,-181.14,;72.88,-175.39,;92.44,-176.56,;100.57,-184.69,;111.68,-181.71,;92.79,-198.39,;102.75,-192.64,;112.71,-198.39,;122.67,-192.64,;132.63,-198.39,;142.59,-192.64,;152.55,-198.39,;162.51,-192.64,;162.51,-181.14,;152.55,-175.39,;142.59,-181.14,;132.97,-179.54,;124.83,-171.4,;113.73,-174.38,;172.47,-175.39,;172.44,-182.13,;162.48,-176.38,;162.48,-164.88,;152.53,-182.13,;162.49,-199.38,;152.53,-193.63,;152.53,-182.13,;142.58,-199.38,;122.67,-181.14,;106.95,-209.33,;118.45,-209.33,;102.75,-181.14,;52.95,-199.38,;42.99,-193.63,;42.99,-182.13,;33.03,-199.38,;52.96,-175.39,;42.95,-182.13,;32.99,-176.38,;32.99,-164.88,;23.03,-182.13,)|</extended-smiles>
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<molecular-formula>C29H46N2O12S2</molecular-formula>
<abbreviations>C* Me,CC(=O)O* OAc,CCS* SEt</abbreviations>
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  CDK     04222607232D

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M  V30 BEGIN CTAB
M  V30 COUNTS 45 46 0 0 1
M  V30 BEGIN ATOM
M  V30 1 C 62.916 -181.14136 0 0 CFG=1
M  V30 2 C 62.916 -192.64136 0 0 CFG=1
M  V30 3 C 72.87531 -198.39136 0 0
M  V30 4 C 82.83459 -192.64136 0 0 CFG=1
M  V30 5 C 82.83459 -181.14136 0 0 CFG=2
M  V30 6 O 72.87531 -175.39136 0 0
M  V30 7 C 52.95671 -175.39136 0 0
M  V30 8 O 42.95349 -182.13098 0 0
M  V30 9 O 32.9942 -164.88098 0 0
M  V30 10 C 32.9942 -176.38098 0 0
M  V30 11 C 23.0349 -182.13098 0 0
M  V30 12 O 52.95349 -199.38098 0 0
M  V30 13 O 42.9942 -182.13098 0 0
M  V30 14 C 42.9942 -193.63098 0 0
M  V30 15 C 33.0349 -199.38098 0 0
M  V30 16 N 92.79388 -198.39136 0 0
M  V30 17 S 92.4417 -176.55864 0 0
M  V30 18 C 111.68158 -181.71394 0 0
M  V30 19 C 100.57343 -184.69037 0 0
M  V30 20 C 102.75317 -192.64136 0 0
M  V30 21 C 112.71246 -198.39136 0 0
M  V30 22 C 122.67177 -192.64136 0 0
M  V30 23 N 132.63106 -198.39136 0 0
M  V30 24 C 142.59035 -192.64136 0 0 CFG=1
M  V30 25 O 102.75317 -181.14136 0 0
M  V30 26 O 122.67177 -181.14136 0 0
M  V30 27 C 152.54964 -198.39136 0 0
M  V30 28 C 162.50893 -192.64136 0 0 CFG=2
M  V30 29 C 162.50893 -181.14136 0 0 CFG=1
M  V30 30 O 152.54964 -175.39136 0 0
M  V30 31 C 142.59035 -181.14136 0 0 CFG=2
M  V30 32 S 132.96527 -179.53505 0 0
M  V30 33 C 113.7254 -174.37975 0 0
M  V30 34 C 124.83354 -171.40332 0 0
M  V30 35 O 162.4942 -199.38098 0 0
M  V30 36 O 152.5349 -182.13098 0 0
M  V30 37 C 152.5349 -193.63098 0 0
M  V30 38 C 142.57561 -199.38098 0 0
M  V30 39 C 172.46822 -175.39136 0 0
M  V30 40 O 172.44418 -182.13098 0 0
M  V30 41 O 162.48489 -164.88098 0 0
M  V30 42 C 162.48489 -176.38098 0 0
M  V30 43 C 152.5256 -182.13098 0 0
M  V30 44 C 106.95349 -209.33098 0 0
M  V30 45 C 118.45349 -209.33098 0 0
M  V30 END ATOM
M  V30 BEGIN BOND
M  V30 1 1 1 2
M  V30 2 1 2 3
M  V30 3 1 3 4
M  V30 4 1 4 5
M  V30 5 1 5 6
M  V30 6 1 6 1
M  V30 7 1 1 7 CFG=1
M  V30 8 1 8 10
M  V30 9 2 9 10
M  V30 10 1 10 11
M  V30 11 1 7 8
M  V30 12 1 12 14
M  V30 13 2 13 14
M  V30 14 1 14 15
M  V30 15 1 2 12 CFG=3
M  V30 16 1 4 16 CFG=3
M  V30 17 1 17 19
M  V30 18 1 18 19
M  V30 19 1 5 17 CFG=1
M  V30 20 1 20 16
M  V30 21 1 21 20
M  V30 22 1 22 21
M  V30 23 1 23 22
M  V30 24 1 24 23 CFG=1
M  V30 25 2 20 25
M  V30 26 2 22 26
M  V30 27 1 24 27
M  V30 28 1 27 28
M  V30 29 1 28 29
M  V30 30 1 29 30
M  V30 31 1 30 31
M  V30 32 1 31 24
M  V30 33 1 32 34
M  V30 34 1 33 34
M  V30 35 1 31 32 CFG=3
M  V30 36 1 35 37
M  V30 37 2 36 37
M  V30 38 1 37 38
M  V30 39 1 28 35 CFG=1
M  V30 40 1 29 39 CFG=3
M  V30 41 1 40 42
M  V30 42 2 41 42
M  V30 43 1 42 43
M  V30 44 1 39 40
M  V30 45 1 21 44
M  V30 46 1 21 45
M  V30 END BOND
M  V30 END CTAB
M  END
</molfile>
<backref ref="1860-5397-6-23-i3" left="30.622421" right="194.80252" top="169.21796" bottom="211.32564"/>
</substance>
<substance id="1860-5397-6-23-FYSHPKZDNVGFCT-BVOLDIKBSA-N">
<inchi-key>FYSHPKZDNVGFCT-BVOLDIKBSA-N</inchi-key>
<inchi>InChI=1S/C33H34N2O12/c1-33(2,31-34-21-25(40-15-36)23-19(42-29(21)46-31)13-38-27(44-23)17-9-5-3-6-10-17)32-35-22-26(41-16-37)24-20(43-30(22)47-32)14-39-28(45-24)18-11-7-4-8-12-18/h3-12,15-16,19-30H,13-14H2,1-2H3/t19-,20-,21-,22-,23-,24-,25-,26-,27-,28-,29-,30-/m1/s1</inchi>
<smiles>CC(C)(C1=N[C@@H]2[C@H]([C@H]3[C@@H](CO[C@@H](C4=CC=CC=C4)O3)O[C@@H]2O1)OC([H])=O)C5=N[C@@H]6[C@H]([C@H]7[C@@H](CO[C@@H](C8=CC=CC=C8)O7)O[C@@H]6O5)OC([H])=O</smiles>
<extended-smiles>[C@@H]12[C@H]([C@@H]([C@@H]3[C@H](O1)OC(=N3)C(C=4O[C@H]5O[C@H]6[C@H]([C@@H]([C@H]5N4)OC([H])=O)O[C@@H](OC6)C7=CC=CC=C7)(C)C)OC([H])=O)O[C@@H](OC2)C8=CC=CC=C8 |(56.04,-187.85,;61.89,-197.75,;73.39,-197.63,;79.04,-187.61,;73.18,-177.71,;61.68,-177.83,;80.78,-169.08,;91.34,-173.65,;90.26,-185.1,;101.24,-167.79,;111.74,-173.89,;122.27,-169.28,;129.91,-177.87,;141.41,-177.95,;147.1,-187.94,;141.29,-197.52,;129.79,-197.79,;124.1,-187.8,;112.87,-185.34,;123.97,-207.72,;126.95,-218.82,;118.82,-226.96,;138.06,-221.8,;146.97,-207.86,;157.88,-208.03,;163.69,-197.52,;158.6,-188.01,;166.49,-213,;172.24,-222.96,;183.75,-222.96,;189.51,-212.98,;183.74,-203,;172.22,-203,;106.97,-157.81,;95.47,-157.81,;79.25,-207.53,;76.27,-218.63,;84.4,-226.77,;65.16,-221.61,;56.25,-207.77,;44.54,-207.65,;38.89,-197.75,;44.54,-187.98,;35.89,-212.53,;30.14,-202.57,;18.68,-202.57,;12.98,-212.45,;18.67,-222.3,;30.02,-222.3,)|</extended-smiles>
<aux-info>AuxInfo=1/0/N:26,27,35,41,34,36,40,42,33,37,39,43,22,7,45,44,32,38,17,1,14,4,16,2,15,3,30,29,19,5,24,11,13,25,10,49,47,31,28,21,9,18,6,20,8,23,12/E:(1,2)(3,4)(5,6,7,8)(9,10,11,12)(13,14)(15,16)(17,18)(19,20)(21,22)(23,24)(25,26)(27,28)(29,30)(31,32)(34,35)(36,37)(38,39)(40,41)(42,43)(44,45)(46,47)/it:im/rA:49nC.eC.eC.oC.eC.eOCOONCOCC.eC.eC.oC.eOC.eOOCOCNCCOC.oC.oOCCCCCCCCCCCCCCHOHO/rB:s1;s2;s3;s4;s1s5;P1;N2;P3;N4;d10;N5s11;s11;;s14;s15;s16;s17;s14s18;P16;N15;N17;P19;s13s23;P14d24;s13;s13;s7;s8s28;s20;s22s30;P30;d32;s33;d34;s35;s32d36;N29;d38;s39;d40;s41;s38d42;s9;s21;s44;d44;s45;d45;/rC:56,0377,-187,8538,0;61,8932,-197,7514,0;73,3926,-197,6291,0;79,0364,-187,6093,0;73,1808,-177,7117,0;61,6815,-177,8339,0;44,5383,-187,9760,0;56,2494,-207,7712,0;79,2481,-207,5267,0;90,2590,-185,0988,0;91,3395,-173,6497,0;80,7846,-169,0842,0;101,2371,-167,7942,0;124,0994,-187,7972,0;129,7865,-197,7926,0;141,2863,-197,5200,0;147,0989,-187,9422,0;141,4118,-177,9468,0;129,9120,-177,8744,0;146,9734,-207,8604,0;123,9739,-207,7154,0;158,5987,-188,0146,0;122,2710,-169,2799,0;111,7360,-173,8911,0;112,8660,-185,3354,0;106,9701,-157,8142,0;95,4701,-157,8142,0;38,8945,-197,7514,0;44,5383,-207,6490,0;157,8756,-208,0329,0;163,6883,-197,5200,0;166,4908,-212,9967,0;172,2408,-222,9560,0;183,7475,-222,9560,0;189,5059,-212,9821,0;183,7450,-203,0039,0;172,2206,-203,0039,0;35,8903,-212,5317,0;30,1403,-202,5724,0;18,6801,-202,5724,0;12,9789,-212,4472,0;18,6652,-222,2961,0;30,0223,-222,2961,0;76,2717,-218,6349,0;126,9503,-218,8236,0;84,4034,-226,7666,0;65,1635,-221,6113,0;118,8186,-226,9553,0;138,0584,-221,8000,0;</aux-info>
<molecular-formula>C33H34N2O12</molecular-formula>
<abbreviations>C1=CC=C(C=C1)* Ph,C* Me</abbreviations>
<molfile>
  CDK     04222607232D

  0  0  0     0  0            999 V3000
M  V30 BEGIN CTAB
M  V30 COUNTS 49 56 0 0 1
M  V30 BEGIN ATOM
M  V30 1 C 56.03767 -187.85376 0 0 CFG=1
M  V30 2 C 61.89322 -197.75136 0 0 CFG=1
M  V30 3 C 73.39256 -197.62912 0 0 CFG=2
M  V30 4 C 79.03638 -187.60927 0 0 CFG=1
M  V30 5 C 73.18083 -177.71165 0 0 CFG=1
M  V30 6 O 61.68149 -177.83389 0 0
M  V30 7 C 44.53831 -187.976 0 0
M  V30 8 O 56.24939 -207.77121 0 0
M  V30 9 O 79.24811 -207.52673 0 0
M  V30 10 N 90.25902 -185.09885 0 0
M  V30 11 C 91.33946 -173.64972 0 0
M  V30 12 O 80.78456 -169.08418 0 0
M  V30 13 C 101.23708 -167.79417 0 0
M  V30 14 C 124.0994 -187.79724 0 0 CFG=1
M  V30 15 C 129.78651 -197.79257 0 0 CFG=1
M  V30 16 C 141.28629 -197.52003 0 0 CFG=2
M  V30 17 C 147.09894 -187.94217 0 0 CFG=1
M  V30 18 O 141.4118 -177.94684 0 0
M  V30 19 C 129.91203 -177.87437 0 0 CFG=1
M  V30 20 O 146.97342 -207.86037 0 0
M  V30 21 O 123.97388 -207.71542 0 0
M  V30 22 C 158.59871 -188.01465 0 0
M  V30 23 O 122.27104 -169.27989 0 0
M  V30 24 C 111.73599 -173.89107 0 0
M  V30 25 N 112.86598 -185.33542 0 0
M  V30 26 C 106.97014 -157.81418 0 0
M  V30 27 C 95.47014 -157.81418 0 0
M  V30 28 O 38.8945 -197.75136 0 0
M  V30 29 C 44.53831 -207.64897 0 0 CFG=2
M  V30 30 C 157.87563 -208.03287 0 0 CFG=2
M  V30 31 O 163.68828 -197.52003 0 0
M  V30 32 C 166.49077 -212.99672 0 0
M  V30 33 C 172.24077 -222.95601 0 0
M  V30 34 C 183.74748 -222.95601 0 0
M  V30 35 C 189.50591 -212.98212 0 0
M  V30 36 C 183.74496 -203.00388 0 0
M  V30 37 C 172.22057 -203.00388 0 0
M  V30 38 C 35.89029 -212.53171 0 0
M  V30 39 C 30.14029 -202.57242 0 0
M  V30 40 C 18.68008 -202.57242 0 0
M  V30 41 C 12.9789 -212.44716 0 0
M  V30 42 C 18.66516 -222.29607 0 0
M  V30 43 C 30.02234 -222.29607 0 0
M  V30 44 C 76.27168 -218.63487 0 0
M  V30 45 C 126.95029 -218.82356 0 0
M  V30 46 O 65.16353 -221.61128 0 0
M  V30 47 O 138.05844 -221.79999 0 0
M  V30 48 H 84.4034 -226.7666 0 0
M  V30 49 H 118.81857 -226.95529 0 0
M  V30 END ATOM
M  V30 BEGIN BOND
M  V30 1 1 1 2
M  V30 2 1 2 3
M  V30 3 1 3 4
M  V30 4 1 4 5
M  V30 5 1 5 6
M  V30 6 1 6 1
M  V30 7 1 1 7 CFG=1
M  V30 8 1 2 8 CFG=3
M  V30 9 1 3 9 CFG=1
M  V30 10 1 4 10 CFG=3
M  V30 11 2 10 11
M  V30 12 1 11 12
M  V30 13 1 5 12 CFG=3
M  V30 14 1 11 13
M  V30 15 1 14 15
M  V30 16 1 15 16
M  V30 17 1 16 17
M  V30 18 1 17 18
M  V30 19 1 18 19
M  V30 20 1 19 14
M  V30 21 1 16 20 CFG=1
M  V30 22 1 15 21 CFG=3
M  V30 23 1 17 22 CFG=3
M  V30 24 1 19 23 CFG=1
M  V30 25 1 23 24
M  V30 26 2 24 25
M  V30 27 1 14 25 CFG=1
M  V30 28 1 13 24
M  V30 29 1 13 26
M  V30 30 1 13 27
M  V30 31 1 7 28
M  V30 32 1 28 29
M  V30 33 1 29 8
M  V30 34 1 20 30
M  V30 35 1 30 31
M  V30 36 1 31 22
M  V30 37 2 32 33
M  V30 38 1 33 34
M  V30 39 2 34 35
M  V30 40 1 35 36
M  V30 41 2 36 37
M  V30 42 1 32 37
M  V30 43 1 30 32 CFG=1
M  V30 44 2 38 39
M  V30 45 1 39 40
M  V30 46 2 40 41
M  V30 47 1 41 42
M  V30 48 2 42 43
M  V30 49 1 38 43
M  V30 50 1 29 38 CFG=3
M  V30 51 1 9 44
M  V30 52 1 21 45
M  V30 53 1 44 48
M  V30 54 2 44 46
M  V30 55 1 45 49
M  V30 56 2 45 47
M  V30 END BOND
M  V30 END CTAB
M  END
</molfile>
<backref ref="1860-5397-6-23-i4" left="31.25978" right="170.52658" top="154.05988" bottom="229.83029"/>
</substance>
</substances>
<supporting-information>
<paragraph>
<chunk>Supporting information contains full experimental details for the preparation of all new ligands and general conditions for cyclopropanations using </chunk>
<chunk italic="yes">gluco</chunk>
<chunk>Box ligands and copper(I) triflate.</chunk>
</paragraph>
<supporting-information-file id="si1" public-id="1860-5397-6-23-S1">
<caption>
<paragraph>
<chunk>Experimental details.</chunk>
</paragraph>
</caption>
</supporting-information-file>
</supporting-information>
<end-section>
<title>
<chunk>Acknowledgements</chunk>
</title>
<paragraph>
<chunk>We thank the German Research Foundation (DFG) and the Volkswagen Foundation for generous financial support.</chunk>
</paragraph>
</end-section>
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<copyright year="2010" holder="Minuth and Boysen; licensee Beilstein-Institut." link="http://creativecommons.org/licenses/by/2.0">
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