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

Microfluidic Affinity Profiling reveals a Broad Range of Target Affinities for Anti-SARS-CoV-2 Antibodies in Plasma of COVID-19 Survivors
M Schneider, M Emmenegger, C Xu, IC Morales, G Meisl, P Turelli, C Zografou, M Zimmermann, B Frey, S Fiedler, V Denninger, R Jacquat, L Madrigal, A Ilsley, V Kosmoliaptsis, H Fiegler, D Trono, T Knowles, A Aguzzi
medRxiv
(2020)
Converting lateral scanning into axial focusing to speed up three-dimensional microscopy.
T Chakraborty, B Chen, S Daetwyler, B-J Chang, O Vanderpoorten, E Sapoznik, CF Kaminski, TPJ Knowles, KM Dean, R Fiolka
Light, science & applications
(2020)
9
Converting lateral scanning into axial focusing to speed up three-dimensional microscopy
T Chakraborty, B Chen, S Daetwyler, B-J Chang, O Vanderpoorten, E Sapoznik, CF Kaminski, TPJ Knowles, KM Dean, R Fiolka
Light: Science & Applications
(2020)
9
Biomolecular condensates undergo a generic shear-mediated liquid-to-solid transition.
Y Shen, FS Ruggeri, D Vigolo, A Kamada, S Qamar, A Levin, C Iserman, S Alberti, PS George-Hyslop, TPJ Knowles
Nat Nanotechnol
(2020)
15
A rationally designed bicyclic peptide remodels Aβ42 aggregation in vitro and reduces its toxicity in a worm model of Alzheimer's disease.
T Ikenoue, FA Aprile, P Sormanni, FS Ruggeri, M Perni, GT Heller, CP Haas, C Middel, R Limbocker, B Mannini, TCT Michaels, TPJ Knowles, CM Dobson, M Vendruscolo
Scientific Reports
(2020)
10
Microfluidic Antibody Affinity Profiling for In-Solution Characterisation of Alloantibody - HLA Interactions in Human Serum
M Schneider, T Scheidt, A Priddey, C Xu, M Hu, S Devenish, G Meisl, C Dobson, V Kosmoliaptsis, T Knowles
bioRxiv
(2020)
Biomimetic peptide self-assembly for functional materials
A Levin, TA Hakala, L Schnaider, GJL Bernardes, E Gazit, TPJ Knowles
Nature reviews. Chemistry
(2020)
4
Thermodynamic and kinetic design principles for amyloid-aggregation inhibitors
TCT Michaels, A Šarić, G Meisl, GT Heller, S Curk, P Arosio, S Linse, CM Dobson, M Vendruscolo, TPJ Knowles
Proc Natl Acad Sci U S A
(2020)
117
Spatially-segmented single-cell transcriptomics by diffusional accessibility to a small-molecule dye
DB Morse, M Ceribelli, J De Jonghe, A Michalowski, C Muus, M Vias, S Boyle, DA Weitz, J Brenton, JD Buenrostro, C Thomas, TP Knowles
Cancer Research
(2020)
80
Amelioration of aggregate cytotoxicity by catalytic conversion of protein oligomers into amyloid fibrils.
J Yang, AJ Dear, Q-Q Yao, Z Liu, CM Dobson, TPJ Knowles, S Wu, S Perrett
Nanoscale
(2020)
12

Co-Director

Research Interest Groups

Telephone number

01223 336344

Email address