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1.
Adv Mater ; 31(26): e1806334, 2019 Jun.
Article de Anglais | MEDLINE | ID: mdl-30740772

RÉSUMÉ

Bioinspiration has emerged as an important design principle in the rapidly growing field of materials science and especially its subarea, soft matter science. For example, biological cells form hierarchically organized tissues that not only are optimized and designed for durability, but also have to adapt to their external environment, undergo self-repair, and perform many highly complex functions. Being able to create artificial soft materials that mimic those highly complex functions will enable future materials applications. Herein, soft matter technologies that are used to realize bioinspired material structures are described, and potential pathways to integrate these into a comprehensive soft matter research environment are addressed. Solutions become available because soft matter technologies are benefitting from the synergies between organic synthesis, polymer chemistry, and materials science.

2.
Nat Methods ; 13(12): 997-1000, 2016 Dec.
Article de Anglais | MEDLINE | ID: mdl-27749839

RÉSUMÉ

We present a baculovirus-based protein engineering method that enables site-specific introduction of unique functionalities in a eukaryotic protein complex recombinantly produced in insect cells. We demonstrate the versatility of this efficient and robust protein production platform, 'MultiBacTAG', (i) for the fluorescent labeling of target proteins and biologics using click chemistries, (ii) for glycoengineering of antibodies, and (iii) for structure-function studies of novel eukaryotic complexes using single-molecule Förster resonance energy transfer as well as site-specific crosslinking strategies.


Sujet(s)
Protéines à fluorescence verte/biosynthèse , Complexes multiprotéiques/biosynthèse , Ingénierie des protéines/méthodes , Protéines recombinantes/biosynthèse , Protéines virales/biosynthèse , Animaux , Baculoviridae/génétique , Baculoviridae/métabolisme , Techniques de culture cellulaire , Transfert d'énergie par résonance de fluorescence/méthodes , Code génétique , Vecteurs génétiques , Protéines à fluorescence verte/composition chimique , Protéines à fluorescence verte/génétique , Humains , Complexes multiprotéiques/composition chimique , Complexes multiprotéiques/génétique , Plasmides , Protéines recombinantes/composition chimique , Protéines recombinantes/génétique , Cellules Sf9 , Spodoptera , Protéines virales/composition chimique , Protéines virales/génétique
3.
Chem Rev ; 116(14): 8193-255, 2016 07 27.
Article de Anglais | MEDLINE | ID: mdl-27410264

RÉSUMÉ

Glycosaminoglycans (GAGs) as one major part of the glycocalyx are involved in many essential biological cell processes, as well as in many courses of diseases. Because of the potential therapeutic application of GAG polymers, fragments, and also derivatives toward different diseases (e.g., heparin derivatives against Alzheimer's disease), there is a continual growing demand for new chemical syntheses, which suffice the high claim to stereoselectivity and chemoselectivity. This Review summarizes the progress of chemical syntheses of GAGs over the last 10 years. For each class of the glycosaminoglycans-hyaluronan (HA), heparan sulfate/heparin (HS/HP), chondroitin/dermatan sulfate (CS/DS), and keratan sulfate (KS)-mainly novel glycosylation strategies, elongation sequences, and protecting group patterns are discussed, but also (semi)automated syntheses, enzymatic approaches, and functionalizations of synthesized or isolated GAGs are considered.


Sujet(s)
Glycosaminoglycanes/synthèse chimique , Techniques de chimie combinatoire , Diholoside/composition chimique , Glycosaminoglycanes/composition chimique , Glycosylation , Oses/composition chimique
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