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Yusuf Hamied Department of Chemistry

 

PLEASE NOTE: Professor Clarke will be retiring at the end of September 2017 and therefore is not accepting any further applications.


Biophysical and structural studies of protein folding


The physics and chemistry of weak molecular interactions underpin the whole of biology. These determine the structure and stability of biological macromolecules and the strength and lifetime of interactions of these macromolecules with other cellular components. Understanding how a protein folds into a specific structure (which is only marginally stable) on a biologically relevant timescale, is still a significant challenge. Fundamental biophysical studies of the folding of proteins and of protein-protein interactions are key to understanding cellular function.


We have two fundamental research areas:


(1) How do proteins fold at the atomistic level and how is misfolding avoided?

(2) How do changes in sequence, as the result of evolution, or brought about by mutation affect

the biophysical properties of proteins?


 


We study families of proteins using a multidisciplinary approach, to address specific questions:


  • The folding of related proteins: By comparing the folding of a number of related proteins from large structural families we can investigate the relationship between amino acid sequence and topology and protein stability.
  • The folding of multidomain proteins: Most proteins consist of a number of independently folding domains. How do domain:domain interactions modulate the properties of the protein? Importantly, how do larger, multidomain proteins avoid misfolding?

  • Intrinsically disordered proteins (IDPs): A significant proportion of proteins have large disordered segments. These proteins are often involved in important important signalling pathways. IDPs fold upon binding to a target. We are developing the tools used to study globular protein folding to investigate the mechanisms of folding of IDPs.

Selected Publications


Borgia, M. B., Nickson, A.A., Clarke J. & Hounslow, M.J. (2013) A mechanistic model for amorphous protein aggregation of immunoglobulin-like domains. J. Am. Chem. Soc., in press DOI: 10.1021/ja308852b


Rogers, J.M. Steward, A. & Clarke, J. Folding and binding of an intrinsically disordered protein: fast, but not ‘diffusion-limited’. J. Am. Chem. Soc., 135, 1415−1422 DOI: 10.1021/ja309527h


Nickson, A. A., Wensley, B.G. & Clarke, J. Take home lessons from studies of related proteins. Curr. Opin. Struct. Biol. 23, 66-74.


Wensley, B.G., Kwa, L.G., Shammas, S.L., Rogers, J.M., Browning, S., Yang, Z. & Clarke, J. (2012) Separating the effects of internal friction and transition state energy to explain the slow, frustrated folding of spectrin domains. Proc. Natl. Acad. Sci. USA 109, 17795-17799.


Borgia, M.B., Borgia, A., Best, R.B., Steward, A., Nettels, D., Wunderlich, B., Schuler, B. & Clarke, J. (2011) Single-molecule fluorescence reveals sequence-specific misfolding in multidomain proteins. Nature 474, 662-665.


Wensley, B.G., Batey, S., Bone, F.A.C., Chan, Z.M., Tumelty, N.R., Steward, A., Kwa, L.G., Borgia, A. & Clarke, J. (2010) Experimental evidence for a frustrated energy landscape in a 3-helix bundle protein family. Nature 463, 685-689.

Publications

What lessons can be learned from studying the folding of homologous proteins?
AA Nickson, J Clarke
– Methods
(2010)
52,
38
Membrane protein folding makes the transition
PJ Booth, J Clarke
– Proceedings of the National Academy of Sciences of the United States of America
(2010)
107,
3947
Experimental evidence for a frustrated energy landscape in a three-helix-bundle protein family
BG Wensley, S Batey, FAC Bone, ZM Chan, NR Tumelty, A Steward, LG Kwa, A Borgia, J Clarke
– Nature
(2010)
463,
685
Non-Native Interactions Are Critical for Mechanical Strength in PKD Domains
JR Forman, ZT Yew, S Qamar, RN Sandford, E Paci, J Clarke
– Structure (London, England : 1993)
(2009)
17,
1582
Naturally occurring mutations alter the stability of polycystin-1 polycystic kidney disease (PKD) domains.
L Ma, M Xu, JR Forman, J Clarke, AF Oberhauser
– The Journal of biological chemistry
(2009)
284,
32942
Different members of a simple three-helix bundle protein family have very different folding rate constants and fold by different mechanisms.
BG Wensley, M Gärtner, WX Choo, S Batey, J Clarke
– J Mol Biol
(2009)
390,
1074
Topology is the Principal Determinant in the Folding of a Complex All-alpha Greek Key Death Domain from Human FADD
A Steward, GS McDowell, J Clarke
– Journal of Molecular Biology
(2009)
389,
425
Spectrin R16: broad energy barrier or sequential transition states?
KA Scott, J Clarke
– Protein Sci
(2009)
14,
1617
Versatile cloning system for construction of multimeric proteins for use in atomic force microscopy
A Steward, JL Toca-Herrera, J Clarke
– Protein Sci
(2009)
11,
2179
Folding of beta‐sandwich proteins: Three‐state transition of a fibronectin type III module
E Cota, J Clarke
– Protein science : a publication of the Protein Society
(2008)
9,
112
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Research Group

Telephone number

01223 336426

Email address

jc162@cam.ac.uk