Mechanobiochemistry: harnessing biomacromolecules for force-responsive materials
Literature Information
Johnathan N. Brantley, Constance B. Bailey, Kelly M. Wiggins
Mechanochemistry, or the translation of macroscopic forces into discrete chemical reactivity, has a rich and diverse history. From the seminal demonstration that mechanical grinding could facilitate the reduction of cinnabar, to the more sophisticated single molecule and polymer assisted mechanochemical phenomena that have recently been observed, a number of intriguing chemical transformations have been found to exhibit rate enhancements upon mechanical perturbation. While mechanochemistry has traditionally been confined to the realm of synthetic and materials chemistry, a promising avenue of exploration is rooted in the area of mechanobiochemistry, or the study of mechanically responsive biomacromolecules. Here, we detail recent efforts toward the mechanical manipulation of biopolymers with a specific focus on those examples wherein mechanical perturbation is employed to modulate the properties and activities displayed by macromolecules of biological relevance. In addition, we provide a brief description of recent advances in the development of biocomposites that exhibit interesting and useful mechanical, catalytic, and sensing properties. Finally, new materials applications that build upon the fundamental studies involving force-responsive biomaterials are discussed.
Related Literature
Statistical thermodynamics unveils the dissolution mechanism of cellobiose
Noriyuki Isobe, James H. Clark, Seishi Shimizu
DOI: 10.1039/C7CP04647B
Temperature dependence of ion diffusion coefficients in NaCl electrolyte confined within graphene nanochannels
Jing Kong, Zheng Bo, Huachao Yang, Jinyuan Yang, Xiaorui Shuai, Jianhua Yan, Kefa Cen
DOI: 10.1039/C6CP08752C
Probing RbBr solvation in freestanding sub-2 nm water clusters
Lauri Hautala, Kari Jänkälä, Mikko-Heikki Mikkelä, Paavo Turunen, Nønne L. Prisle, Minna Patanen, Maxim Tchaplyguine, Marko Huttula
DOI: 10.1039/C7CP04398H
Quantitative correlation of the effects of crystallinity and additives on nanomorphology and solar cell performance of isoindigo-based copolymers
Chun-Yu Chang, Yu-Ching Huang, Chien-An Chen, Chun-Jen Su
DOI: 10.1039/C7CP04238H
On the shuttling mechanism of a chlorine atom in a chloroaluminum phthalocyanine based molecular switch
Huanjun Song, Cenfeng Fu, Na Li, Hao Zhu, Zhantao Peng, Wenhui Zhao, Jingxin Dai, Lingbo Xing, Zhichao Huang, Wei Chen, Yongfeng Wang, Jinlong Yang, Kai Wu
DOI: 10.1039/C7CP03153J
High temperature activation of hematite nanorods for sunlight driven water oxidation reaction
Nathalie Minko Ito, Waldemir Moura Carvalho, Jr, Dereck Nills Ferreira Muche, Ricardo Hauch Ribeiro Castro, Gustavo Martini Dalpian
DOI: 10.1039/C7CP04827K
Surface fouling as a mechanism for chemotaxis in isotropic catalytic swimmers
DOI: 10.1039/C7CP05102F
A modeling study of methane hydrate decomposition in contact with the external surface of zeolites
DOI: 10.1039/C7CP01985H
Photoinduced dimerization of a photosensory DNA-binding protein EL222 and its LOV domain
Akira Takakado, Yusuke Nakasone, Masahide Terazima
DOI: 10.1039/C7CP03686H
Defects in crystalline PVDF: a density functional theory-density functional tight binding study
Saeid Arabnejad, Koichi Yamashita, Sergei Manzhos
DOI: 10.1039/C7CP00510E
You might also like
Is 6-(3-Fluorophenyl)picolinic acid (CAS: 887982-40-3) safe?
6-(3-Fluorophenyl)picolinic acid is generally considered safe for laboratory use...
What industries use (3R)-3-Pyrrolidinol (CAS: 2799-21-5)?
(3R)-3-Pyrrolidinol is used in the pharmaceutical industry as a precursor for dr...
What precautions should be taken when handling (4R,5R)-4,5-Diethoxycarbonyl-2,2-dimethyldioxolane (CAS: 59779-75-8)?
When handling (4R,5R)-4,5-Diethoxycarbonyl-2,2-dimethyldioxolane (CAS: 59779-75-...
How is 1-(6-Chloroimidazo[1,2-b]pyridazin-3-yl)ethanone (CAS: 90734-71-7) typically synthesized?
1-(6-Chloroimidazo[1,2-b]pyridazin-3-yl)ethanone is often synthesized via a mult...
What is the market or research trend for N-Ethyl-3,4-dimethylbenzylamine (CAS: 39180-83-1)?
The market for N-Ethyl-3,4-dimethylbenzylamine (CAS: 39180-83-1) remains steady,...
What is Tert-butyl 3-(pyrrolidin-1-yl)azetidine-1-carboxylate (CAS: 1019008-21-9)?
Tert-butyl 3-(pyrrolidin-1-yl)azetidine-1-carboxylate is a chemical compound wit...
What regulatory guidelines apply to 1-Bromo-3-chloro-2,4-dimethoxybenzene (CAS: 1228956-93-1)?
1-Bromo-3-chloro-2,4-dimethoxybenzene (CAS: 1228956-93-1) falls under the classi...
Is 8-Bromo-2-methyl-3,4-dihydroisoquinolin-1(2H)-one (CAS: 1368622-07-4) safe?
The safety of 8-Bromo-2-methyl-3,4-dihydroisoquinolin-1(2H)-one (CAS: 1368622-07...
Is Benzyl [(3S)-2,6-dioxo-3-piperidinyl]carbamate (CAS: 22785-43-9) safe?
Benzyl [(3S)-2,6-dioxo-3-piperidinyl]carbamate is generally safe when handled wi...
How should 1-{[4-(4,4,5,5-Tetramethyl-1,3,2-dioxaborolan-2-yl)phenyl]sulfonyl}pyrrolidine (CAS: 928657-21-0) be stored?
1-{[4-(4,4,5,5-Tetramethyl-1,3,2-dioxaborolan-2-yl)phenyl]sulfonyl}pyrrolidine s...
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.











![(2E)-4-[(1R,2S,8R,19S,21R)-14-Hydroxy-11-isopropenyl-8,23,23-trimethyl-5-(3-methyl-2-buten-1-yl)-16,20-dioxo-3,7,22-trioxaheptacyclo[17.4.1.1~8,12~.0~2,17~.0~2,21~.0~4,15~.0~6,13~]pentacosa-4(15),5,13
,17-tetraen-21-yl]-2-methyl-2-butenoic acid structure (2E)-4-[(1R,2S,8R,19S,21R)-14-Hydroxy-11-isopropenyl-8,23,23-trimethyl-5-(3-methyl-2-buten-1-yl)-16,20-dioxo-3,7,22-trioxaheptacyclo[17.4.1.1~8,12~.0~2,17~.0~2,21~.0~4,15~.0~6,13~]pentacosa-4(15),5,13
,17-tetraen-21-yl]-2-methyl-2-butenoic acid structure](https://static.chemtradehub.com/structs/173/173867-04-4-d2d3.webp)


