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1562416-51-6

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1562416-51-6 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 1562416-51-6 includes 10 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 7 digits, 1,5,6,2,4,1 and 6 respectively; the second part has 2 digits, 5 and 1 respectively.
Calculate Digit Verification of CAS Registry Number 1562416-51:
(9*1)+(8*5)+(7*6)+(6*2)+(5*4)+(4*1)+(3*6)+(2*5)+(1*1)=156
156 % 10 = 6
So 1562416-51-6 is a valid CAS Registry Number.

1562416-51-6Downstream Products

1562416-51-6Relevant articles and documents

Diversity of Secondary Structure in Catalytic Peptides with β-Turn-Biased Sequences

Metrano, Anthony J.,Abascal, Nadia C.,Mercado, Brandon Q.,Paulson, Eric K.,Hurtley, Anna E.,Miller, Scott J.

, p. 492 - 516 (2017/02/23)

X-ray crystallography has been applied to the structural analysis of a series of tetrapeptides that were previously assessed for catalytic activity in an atroposelective bromination reaction. Common to the series is a central Pro-Xaa sequence, where Pro is either l- or d-proline, which was chosen to favor nucleation of canonical β-turn secondary structures. Crystallographic analysis of 35 different peptide sequences revealed a range of conformational states. The observed differences appear not only in cases where the Pro-Xaa loop-region is altered, but also when seemingly subtle alterations to the flanking residues are introduced. In many instances, distinct conformers of the same sequence were observed, either as symmetry-independent molecules within the same unit cell or as polymorphs. Computational studies using DFT provided additional insight into the analysis of solid-state structural features. Select X-ray crystal structures were compared to the corresponding solution structures derived from measured proton chemical shifts, 3J-values, and 1H-1H-NOESY contacts. hese findings imply that the conformational space available to simple peptide-based catalysts is more diverse than precedent might suggest. The direct observation of multiple ground state conformations for peptides of this family, as well as the dynamic processes associated with conformational equilibria, underscore not only the challenge of designing peptide-based catalysts, but also the difficulty in predicting their accessible transition states. These findings implicate the advantages of low-barrier interconversions between conformations of peptide-based catalysts for multistep, enantioselective reactions.

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