peptide elongation
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2021 ◽  
Vol 57 (1) ◽  
pp. 73-76
Author(s):  
Long-Fei Wu ◽  
Ziwei Liu ◽  
John D. Sutherland

Selective peptide elongation chemistry by coupling α-amino acids via mixed anhydride intermediates in water.


Molecules ◽  
2020 ◽  
Vol 25 (1) ◽  
pp. 218
Author(s):  
Spyridon Mourtas ◽  
Christina Katakalou ◽  
Dimitrios Gatos ◽  
Kleomenis Barlos

Thioether containing peptides were obtained following three synthetic routes. In route A, halo acids esterified on 2-chlorotrityl(Cltr) resin were reacted with N-fluorenylmethoxycarbonyl (Fmoc) aminothiols. These were either cleaved from the resin to the corresponding (Fmoc-aminothiol)carboxylic acids, which were used as key building blocks in solid phase peptide synthesis (SPPS), or the N-Fmoc group was deprotected and peptide chains were elongated by standard SPPS. The obtained N-Fmoc protected thioether containing peptides were then condensed either in solution, or on solid support, with the appropriate amino components of peptides. In route B, the thioether containing peptides were obtained by the reaction of N-Fmoc aminothiols with bromoacetylated peptides, which were synthesized on Cltr-resin, followed by removal of the N-Fmoc group and subsequent peptide elongation by standard SPPS. In route C, the thioether containing peptides were obtained by the condensation of a haloacylated peptide synthesized on Cltr-resin and a thiol-peptide synthesized either on 4-methoxytrityl(Mmt) or trityl(Trt) resin.


2019 ◽  
Vol 49 (4) ◽  
pp. 213-224 ◽  
Author(s):  
Radoslaw Bomba ◽  
Saroj K. Rout ◽  
Matthias Bütikofer ◽  
Witek Kwiatkowski ◽  
Roland Riek ◽  
...  

Author(s):  
luis camacho III ◽  
Bryan J. Lampkin ◽  
Brett VanVeller

We describe a method to protect the sensitive stereochemistry of the thioamide—in analogy to the protection of the functional groups of amino acid side chains—in order to preserve the thioamide moiety during peptide elongation.<br>


2019 ◽  
Author(s):  
luis camacho III ◽  
Bryan J. Lampkin ◽  
Brett VanVeller

We describe a method to protect the sensitive stereochemistry of the thioamide—in analogy to the protection of the functional groups of amino acid side chains—in order to preserve the thioamide moiety during peptide elongation.<br>


2019 ◽  
Vol 17 (8) ◽  
pp. 2103-2106 ◽  
Author(s):  
Luuk Steemers ◽  
Jan H. van Maarseveen
Keyword(s):  

Peptide isoprenyl esters were made via the Cu-mediated Chan–Lam–Evans reaction and elongated via pyrazole/DMEP-catalysed aminolysis.


2016 ◽  
Vol 48 (8) ◽  
pp. 616-625
Author(s):  
Robert A. McKnight ◽  
Christian C. Yost ◽  
Erin K. Zinkhan ◽  
Qi Fu ◽  
Christopher W. Callaway ◽  
...  

Nutrient deprivation suppresses protein synthesis by blocking peptide elongation. Transcriptional upregulation and activation of eukaryotic elongation factor 2 kinase (eEF2K) blocks peptide elongation by phosphorylating eukaryotic elongation factor 2. Previous studies examining placentas from intrauterine growth restricted (IUGR) newborn infants show decreased eEF2K expression and activity despite chronic nutrient deprivation. However, the effect of IUGR on hepatic eEF2K expression in the fetus is unknown. We, therefore, examined the transcriptional regulation of hepatic eEF2K gene expression in a Sprague-Dawley rat model of IUGR. We found decreased hepatic eEF2K mRNA and protein levels in IUGR offspring at birth compared with control, consistent with previous placental observations. Furthermore, the CpG island within the eEF2K promoter demonstrated increased methylation at a critical USF 1/2 transcription factor binding site. In vitro methylation of this binding site caused near complete loss of eEF2K promoter activity, designating this promoter as methylation sensitive. The eEF2K promotor in IUGR offspring also lost the protective histone covalent modifications associated with unmethylated CGIs. In addition, the +1 nucleosome was displaced 3′ and RNA polymerase loading was reduced at the IUGR eEF2K promoter. Our findings provide evidence to explain why IUGR-induced chronic nutrient deprivation does not result in the upregulation of eEF2K gene transcription.


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