<?xml version="1.0" encoding="UTF-8" standalone="yes"?><oembed><version><![CDATA[1.0]]></version><provider_name><![CDATA[amphoteros]]></provider_name><provider_url><![CDATA[http://amphoteros.com]]></provider_url><author_name><![CDATA[ayudin2013]]></author_name><author_url><![CDATA[https://amphoteros.com/author/ayudin2013/]]></author_url><title><![CDATA[cis-Amide bonds]]></title><type><![CDATA[link]]></type><html><![CDATA[<p>While it is easy to control cis- vs trans- double bonds in Wittig reactions (think about stabilized vs non-stabilized ylides), it is certainly not the case with amide bonds. In fact, one of the fascinating questions I like to think about together with my students is why we are always tempted to draw trans-amides as products of amide bond forming reactions. Granted, trans isomers are more stable. But who&#8217;s to say that they always form under kinetic control? This is a mystery&#8230; One might say that this is not one of those &#8220;relevant&#8221; mysteries as in linear peptides cis amides will certainly (and rapidly) isomerize&#8230; But hold on a second: this does not need to happen in cyclic variants. I give you a very informative example from the late Prof. Goodman. This aminal-containing macrocycle contains one amide bond that is largely cis in solution. The reason this is cool is that this case is not based on proline, which tends to give a large proportion of cis-amides for different reasons. We need to think more about deliberate control of cis/trans isomers in these systems.</p>
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<p style="text-align:center;"><a href="http://pubs.acs.org/doi/abs/10.1021/ja00199a058" rel="nofollow">http://pubs.acs.org/doi/abs/10.1021/ja00199a058</a></p>
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