Biohybrid structures consisting of biotinylated glycodendrimers and proteins: influence of the biotin ligand's number and chemical nature on the biotin–avidin conjugation
文献情報
Susanne Boye, Mihaela Cernescu, Hartmut Komber, Bernhard Brutschy, Dietmar Appelhans
We present the bioconjugation of avidin as a central and/or bridging building block with mono-, bi- and tetravalent biotinylated glycodendrimers to fabricate defined supramolecular nanostructures for future (bio)medical applications. For this purpose mono-, bi- and tetravalent biotinylated glycodendrimers, decorated with short alkyl-linked or long PEG-linked biotin ligands, were synthesized and characterized by NMR, IR and mass spectrometry and HABA displacement assay. Various techniques (UV/Vis, DLS, TEM, LILBID-MS and AF4) were used in order to obtain information about the structural properties of different conjugates of avidin and mono-, bi- and tetravalent biotinylated glycodendrimers. The biotin ligand's spacer length, its chemical structure and the degree of biotin functionalization are essential parameters in the formation of nanostructures with avidin having a controlled composition and size dimension up to 100 nm. Biohybrid structures with avidin as a central unit require monovalent glycodendrimers with PEG-linked biotin, while bi- and tetravalent glycodendrimers with short alkyl-linked biotin ligands are more efficient than their counterparts with longer PEG–biotin ligands in the fabrication of defined biohybrid structures (∅ up to 100 nm) with avidin as a bridging unit. The most dominating key issue, combined with other conjugation issues, is the optimal ligand–receptor stoichiometry to fabricate biohybrid structures with diameter of <20, <30 or up to 100 nm.
おすすめジャーナル

Chemistry Education Research and Practice

Russian Chemical Bulletin

Current Opinion in Solid State & Materials Science

Drug Discovery Today

Acta Materialia

Journal of Peptide Science

Russian Journal of Organic Chemistry

Journal of Saudi Chemical Society

Russian Journal of Applied Chemistry

Journal of Natural Medicines
関連文献
Mechanical properties of nonstoichiometric cubic titanium carbide TiCy
DOI: 10.1039/D1CP02697F
An overview of hydroxy-based polyanionic cathode insertion materials for metal-ion batteries
Shashwat Singh, Valérie Pralong, Prabeer Barpanda
DOI: 10.1039/D1CP01741A
Exploiting the optical sensing of fluorophore-tagged DNA nucleobases on hexagonal BN and Al-doped BN sheets: a computational study
DOI: 10.1039/D1CP04009J
Analysis of reduced paramagnetic shifts as an effective tool in NMR spectroscopy
Igor A. Nikovskiy, Dmitry Y. Aleshin
DOI: 10.1039/D1CP04648A
A photoelectron imaging study of the deprotonated GFP chromophore anion and RNA fluorescent tags
Joanne L. Woodhouse, Alice Henley, Ross Lewin, John M. Ward, Helen C. Hailes, Anastasia V. Bochenkova, Helen H. Fielding
DOI: 10.1039/D1CP01901E
The extrinsic nature of double broadband photoluminescence from the BaTiO3 perovskite: generation of white light emitters
J. L. Clabel H., G. Nicolodelli, G. Lozano C., V. A. G. Rivera, S. O. Ferreira, Alexandre H. Pinto, M. Siu Li, E. Marega, Jr.
DOI: 10.1039/D1CP01765A
UVPD spectroscopy of differential mobility-selected prototropic isomers of protonated adenine
Mircea Guna, Bradley B. Schneider, J. C. Yves Le Blanc, Marcel Nooijen
DOI: 10.1039/D1CP02688G
Theoretical assessment of Raman spectra on MXene Ti2C: from monolayer to bilayer
Weiliang Wang
DOI: 10.1039/D1CP03117A
Kinetics and energetic analysis of the slow dispersive electron transfer from nano-TiO2 to O2 by in situ diffusion reflectance and Laplace transform
Zhizhou Wu, Liuyang Li, Xuedong Zhou, Xiujian Zhao, Baoshun Liu
DOI: 10.1039/D1CP03135J
Ultrafast energy transfer between lipid-linked chromophores and plant light-harvesting complex II
Minjung Son, Muath Nairat, Tiejun Wei, Christopher D. P. Duffy, Gabriela S. Schlau-Cohen
DOI: 10.1039/D1CP01628H
こちらもおすすめ
「邻羟基阿托伐他汀内酯标准品」に適用される法規ガイドelinesは何ですか?
CAS番号163217-74-1の「邻羟基阿托伐他汀内酯标准品」は、GHS分類では危険物に分類されず、主にREACH規則とFDA/EPAの管理対象となります。R...
メチル(3R)-3-アミノ-2,3-ジヒドロ-1-ベンゾファンラニン-5-カルボイル酸塩塩酸塩の主な用途は何ですか?
メチル(3R)-3-アミノ-2,3-ジヒドロ-1-ベンゾファンラニン-5-カルボイル酸塩塩酸塩は、医薬品や合成化学の研究に広く用いられます。また、特定の薬物の前...
トランス-4-メチルピロリジン-3-オール塩酸塩はどのように合成されますか?
トランス-4-メチルピロリジン-3-オール塩酸塩は、4-メチルピロリジンの塩酸塩化によって合成されます。一般的な合成方法では、4-メチルピロリジンを塩酸に加えて...
硫雜環丁烷-1,1-二氧化物は安全ですか?
硫雜環丁烷-1,1-二氧化物は安全ではありません。毒性は報告されていませんが、高温下で分解し、可燃性があるため、高圧ガスは注意が必要です。密閉した容器で保管し、...
9-ヒドロキシエリプチシネ塩酸塩はどのように合成されますか?
9-ヒドロキシエリプチシネ塩酸塩は、エリプチシネから塩酸を添加することで合成されます。選択性は高いですが、収率は約70%です。
5-塩素-2-(メチルアミノ)フェニル-(2-塩素フェニル)メタン酮の物理化学的性質は何ですか?
5-塩素-2-(メチルアミノ)フェニル-(2-塩素フェニル)メタン酮のCAS番号は5621-86-3です。この化合物は白色の結晶性粉末で、分子量は415.03で...
1-[2-(4-甲氧基-苯氧基)-乙基]-哌嗪はどのように保存すればよいですか?
1-[2-(4-甲氧基-苯氧基)-乙基]-哌嗪は、直射日光を避けて暗所に、室温(15-25℃)で保管し、密閉容器に入れることで安定性を保つことができます。
2-[3-(4-甲氧基フェニル)プロピル]-4,4,5,5-四メチル-1,3,2-ドイボロロールアンの主な用途は何ですか?
2-[3-(4-甲氧基フェニル)プロピル]-4,4,5,5-四メチル-1,3,2-ドイボロロールアンは、医薬品の合成、有機合成化学、および新材料の研究で使用され...
掲載誌
Polymer Chemistry

Polymer Chemistry welcomes submissions in all areas of polymer science that have a strong focus on macromolecular chemistry. Manuscripts may cover a broad range of fields, yet no direct application focus is required.


![(3R,5R)-1-[(Benzyloxy)carbonyl]-5-methyl-3-piperidinecarboxylic acid structure (3R,5R)-1-[(Benzyloxy)carbonyl]-5-methyl-3-piperidinecarboxylic acid structure](https://static.chemtradehub.com/structs/126/1269757-29-0-c552.webp)
phosphoryl}methyl 4-methylbenzenesulfonate structure {[3-(Hexadecyloxy)propoxy](hydroxy)phosphoryl}methyl 4-methylbenzenesulfonate structure](https://static.chemtradehub.com/structs/864/864068-45-1-ba7c.webp)
![(2E)-3-(3-Chlorophenyl)-N-{2-[4-(methylsulfonyl)-1-piperazinyl]-2-oxoethyl}acrylamide structure (2E)-3-(3-Chlorophenyl)-N-{2-[4-(methylsulfonyl)-1-piperazinyl]-2-oxoethyl}acrylamide structure](https://static.chemtradehub.com/structs/250/2505001-54-5-c1e9.webp)