Self-immolative linkers in polymeric delivery systems
Literature Information
Christopher A. Blencowe, Andrew T. Russell, Francesca Greco, Wayne Hayes, David W. Thornthwaite
There has been significant interest in the methodologies of controlled release for a diverse range of applications spanning drug delivery, biological and chemical sensors, and diagnostics. The advancement in novel substrate-polymer coupling moieties has led to the discovery of self-immolative linkers. This new class of linker has gained popularity in recent years in polymeric release technology as a result of stable bond formation between protecting and leaving groups, which becomes labile upon activation, leading to the rapid disassembly of the parent polymer. This ability has prompted numerous studies into the design and development of self-immolative linkers and the kinetics surrounding their disassembly. This review details the main concepts that underpin self-immolative linker technologies that feature in polymeric or dendritic conjugate systems and outlines the chemistries of amplified self-immolative elimination.
Related Literature
Pressure-dependent formation of i-motif and G-quadruplex DNA structures
S. Takahashi
DOI: 10.1039/C5CP04727G
The general base in the thymidylate synthase catalyzed proton abstraction
Ananda K. Ghosh, Zahidul Islam, Jonathan Krueger, Thelma Abeysinghe, Amnon Kohen
DOI: 10.1039/C5CP01246E
Protein motions and dynamic effects in enzyme catalysis
Louis Y. P. Luk, E. Joel Loveridge, Rudolf K. Allemann
DOI: 10.1039/C5CP00794A
Measurement and modelling of reactive transport in geological barriers for nuclear waste containment
Qingrong Xiong, Claudia Joseph, Katja Schmeide, Andrey P. Jivkov
DOI: 10.1039/C5CP05243B
Enhancement of near-infrared luminescence of ytterbium in triple-stranded binuclear helicates
Bing Li, Hongfeng Li, Peng Chen, Wenbin Sun, Cheng Wang, Ting Gao, Pengfei Yan
DOI: 10.1039/C5CP05888K
Coupled phase field, heat conduction, and elastodynamic simulations of kinetic superheating and nanoscale melting of aluminum nanolayer irradiated by picosecond laser
Yong Seok Hwang, Valery I. Levitas
DOI: 10.1039/C5CP04443J
The effect of iron re-deposition on the corrosion of impurity-containing magnesium
Daniel Höche, Carsten Blawert, Sviatlana V. Lamaka, Nico Scharnagl, Chamini Mendis
DOI: 10.1039/C5CP05577F
Hierarchical NiMoO4 nanowire arrays supported on macroporous graphene foam as binder-free 3D anodes for high-performance lithium storage
Bo Wang, Songmei Li, Xiaoyu Wu, Jianhua Liu, Wenming Tian
DOI: 10.1039/C5CP04820F
In silico characterization of protein partial molecular volumes and hydration shells
Sara Del Galdo, Paolo Marracino, Marco D'Abramo, Andrea Amadei
DOI: 10.1039/C5CP05891K
You might also like
What is 3-Fluoro-2-methylbenzylamine (CAS: 771573-36-5)?
3-Fluoro-2-methylbenzylamine is an organic compound with the CAS number 771573-3...
Is Tert-butyl 2-(oxetan-3-ylidene)acetate (CAS: 1207175-03-8) safe?
Tert-butyl 2-(oxetan-3-ylidene)acetate is considered safe for its intended uses ...
What precautions should be taken when handling 4-Acetyl-2-fluorobenzonitrile (CAS: 214760-18-6)?
Proper personal protective equipment (PPE) such as gloves, goggles, and a lab co...
How is 2-Ethyl-4-methyl-1,3-thiazole (CAS: 15679-12-6) typically synthesized?
2-Ethyl-4-methyl-1,3-thiazole is commonly synthesized via the reaction of thiour...
How should 5',5''-([2,2'-Bithiophene]-5,5'-diyl)bis(([1,1':3',1''-terphenyl]-4,4''-dicarboxylic acid)) (CAS: 1227780-71-3) be stored?
This compound should be stored in a cool, dry place away from direct sunlight an...
What regulatory guidelines apply to L-Lysine Acetate Salt (CAS: 52315-92-1)?
L-Lysine Acetate Salt (CAS: 52315-92-1) is subject to various regulatory guideli...
Is 6-Fluoro-3-hydroxy-2-pyrazinecarboxamide (CAS: 259793-96-9) safe?
6-Fluoro-3-hydroxy-2-pyrazinecarboxamide (CAS: 259793-96-9) is generally conside...
What are the physical and chemical properties of 1,1'-Sulfonylbis(1H-imidazole) (CAS: 7189-69-7)?
1,1'-Sulfonylbis(1H-imidazole) is a crystalline solid with a molecular weight of...
What industries use 4-methyl-7-nitro-1H-indole-3-carbonitrile (CAS: 289483-82-5)?
4-Methyl-7-nitro-1H-indole-3-carbonitrile (CAS: 289483-82-5) is primarily used i...
How should waste containing 5-Bromo-3-indolyl-beta-galactoside (CAS: 97753-82-7) be handled?
Waste containing 5-Bromo-3-indolyl-beta-galactoside (CAS: 97753-82-7) should be ...
Source Journal
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.










![4-[(2,4-Dihydroxyphenyl)diazenyl]-5-hydroxy-2,7-naphthalenedisulfonic acid structure 4-[(2,4-Dihydroxyphenyl)diazenyl]-5-hydroxy-2,7-naphthalenedisulfonic acid structure](https://static.chemtradehub.com/structs/362/3627-01-8-79ac.webp)



