Professor of Physical Chemistry and Biophysics


1920 Professor of Physical Chemistry

Our research

We study the physical and chemical aspects of the behaviour of biopolymers and other soft systems. Much of our work has been focused on the physical aspects underlying the self-assembly of protein molecules. Self-organisation is the driving force generating complex matter in nature, and the process by which the machinery providing functionality in living systems is assembled. The goal of our research is to understand the physical and chemical factors which control the structures and dynamics of biomolecular assemblies, and the connections between the nanoscale characteristics of the component molecules and the physical properties of large-scale assemblies and their behaviour on a mesoscopic to macroscopic scale. The techniques used in our laboratory include biosensors, optical lithography, microfluidic devices and scanning probe microscopy and spectroscopy. We work both with natural and synthetic polymers and our interests range from fundamental chemical physics to technological applications in material science and molecular medicine.

Watch Professor Knowles discuss his research

Take a tour of the Sir Rodney Sweetnam laboratory

Publications

Reaction rate theory for supramolecular kinetics: application to protein aggregation
TCT Michaels, LX Liu, S Curk, PG Bolhuis, A Saric, TPJ Knowles
(2018)
Chemical Kinetics for Bridging Molecular Mechanisms and Macroscopic Measurements of Amyloid Fibril Formation
TCT Michaels, A Šarić, J Habchi, S Chia, G Meisl, M Vendruscolo, CM Dobson, TPJ Knowles
ANNUAL REVIEW OF PHYSICAL CHEMISTRY, VOL 69
(2018)
69
Additional contributions from: Nobel Symposium 162 - Microfluidics
S Löfås, AE Herr, J Qin, T Knowles, T Kitamori, H Lu, DJ Beebe, J Han, J Landers, A Manz, R Zengerle, DA Weitz, J Elf, T Laurell
(2018)
Real-Time Intrinsic Fluorescence Visualization and Sizing of Proteins and Protein Complexes in Microfluidic Devices.
PK Challa, Q Peter, MA Wright, Y Zhang, KL Saar, JA Carozza, JLP Benesch, TPJ Knowles
Analytical chemistry
(2018)
90
Direct Observation of Oligomerization by Single Molecule Fluorescence Reveals a Multistep Aggregation Mechanism for the Yeast Prion Protein Ure2.
J Yang, AJ Dear, TCT Michaels, CM Dobson, TPJ Knowles, S Wu, S Perrett
J Am Chem Soc
(2018)
140
Systematic Development of Small Molecules to Inhibit Specific Microscopic Steps of Amyloid-Beta42 Aggregation in Alzheimer's Disease
S Chia, J Habchi, R Limbocker, B Mannini, M Ahn, M Perni, O Hansson, P Arosio, JR Kumita, PK Challa, SIA Cohen, S Linse, CM Dobson, TPJ Knowles, M Vendruscolo
Biophysical Journal
(2018)
114
Molecular Mechanism of AB42 Peptide-Fibril Adsorption
MMJ Bellaiche, TPJ Knowles, RB Best
Biophysical Journal
(2018)
114
Revealing the Mechanism of Amyloid Fibril Formation by Combined Single Molecule FRET and Kinetic Modeling
J Yang, AJ Dear, TCT Michaels, CM Dobson, TPJ Knowles, S Perrett, S Wu
Biophysical Journal
(2018)
114
2-Photon Lithography for Nanofluidic Lab-on-Chip Devices
O Vanderpoorten, PK Challa, Q Peter, J Charmet, N Curry, TPJ Knowles, CF Kaminski
Biophysical Journal
(2018)
114
Modulating Amyloid-Beta Aggregation to Reduce the Toxicity of its Oligomeric Aggregates
R Limbocker, B Mannini, S Chia, FS Ruggeri, M Perni, R Cascella, C Xu, J Habchi, JR Kumita, F Chiti, TPJ Knowles, M Vendruscolo, CM Dobson
Biophysical Journal
(2018)
114

Co-Director

Research Interest Groups

Telephone number

01223 336344

Email address