The proposed research centers on two aspects of polypeptide folding and assembly that are highly significant from both fundamental and biomedical perspectives. One focus involves amyloid, an aggregated protein state that is associated with many human diseases. The other focus is quaternary interactions involving single-pass transmembrane helices, which are important for signal transduction via cell-surface receptors. Atomic-resolution characterization of amyloids is extremely challenging because polypeptides in amyloids are insufficiently ordered for high-resolution diffraction (amyloids are not crystals), but the solid nature of amyloids precludes the use of powerful solution-state NMR and other biophysical methods. Remarkable progress has recently been made via solid-state NMR in terms of atomic-resolution models for specific amyloids, revealing an essentially infinite quaternary structure that differs from the discrete structural motifs within folded proteins. The first high-resolution glimpses of amyloid structure have raised questions that seem not to be fully answerable via the study of amyloids themselves. We are therefore pursuing a new approach based on soluble models for the amyloid state. The connection between natural amyloids and associated diseases is not clear: toxicity could arise from fibrils themselves, from oligomeric precursors, or both (most current literature favors soluble oligomers as the main toxic agents). Whatever the origin(s) of pathological effects, it is vital to acquire a fundamental understanding of the factors that influence structure and stability in the amyloid state. Since amyloids themselves are not amenable to many of the powerful strategies available for physical characterization of soluble proteins, we seek soluble model systems that manifest key features associated with authentic amyloid structures. Associations between single-pass transmembrane ?-helices (SPTM helices) are crucial for the function of many membrane proteins. Bitopic receptors, for example, contain single-pass helices that link the sensory extracellular domain with a functional intracellular domain. Signaling generally requires discrete receptor assemblies (dimers, trimers or larger oligomers). Formation of signaling-competent assemblies depends at least in part on specific interactions among SPTM helices. NMR-based structural models for SPTM helix assemblies have appeared in recent years, but there are no crystallographic data for bitopic receptor-derived SPTM helix assemblies, to our knowledge. The only relevant crystal structures involve the SPTM segment of the influenza M2 proton channel, which forms a tetramer, and very recent structures of the TM helix from DAP12, an immunoreceptor adaptor protein. Our long-term goal is to acquire multiple crystal structures for diverse SPTM helix assemblies and thereby contribute to a communal elucidation of the rules that govern intramembrane helix-helix recognition. Racemate and quasiracemate crystallization are major tools in our effort. Crystal structures of SPTM helix assemblies from bitopic receptors would be extremely significant complements to NMR-based models. The nature of the inter-helical interfaces is the most burning question, and crystal structures would provide valuable insights that may not be available via NMR.

Public Health Relevance

The proposed research focuses on two very difficult and biomedically significant problems in protein structure. One effort involves aggregated forms of proteins known as 'amyloids', which are associated with many human diseases (e.g., Alzheimer's Disease, Parkinson's Disease). The other effort involves small segments of cell-surface proteins that are embedded in membranes and play crucial roles in information transfer into the cell. Mutations in these segments are linked to many human disease. For both topics, the link between structure and disease is unclear, and our studies are intended to contribute fundamental insights that might ultimately provide a foundation for therapeutically-oriented efforts.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM061238-19
Application #
9505902
Study Section
Synthetic and Biological Chemistry B Study Section (SBCB)
Program Officer
Fabian, Miles
Project Start
2000-06-01
Project End
2020-05-31
Budget Start
2018-06-01
Budget End
2019-05-31
Support Year
19
Fiscal Year
2018
Total Cost
Indirect Cost
Name
University of Wisconsin Madison
Department
Chemistry
Type
Schools of Arts and Sciences
DUNS #
161202122
City
Madison
State
WI
Country
United States
Zip Code
53715
Mortenson, David E; Kreitler, Dale F; Thomas, Nicole C et al. (2018) Evaluation of ?-Amino Acid Replacements in Protein Loops: Effects on Conformational Stability and Structure. Chembiochem 19:604-612
Eddinger, Geoffrey A; Gellman, Samuel H (2018) Differential Effects of ?3 - versus ?2 -Amino Acid Residues on the Helicity and Recognition Properties of Bim BH3-Derived ?/?-Peptides. Angew Chem Int Ed Engl 57:13829-13832
Thomas, Nicole C; Bartlett, Gail J; Woolfson, Derek N et al. (2017) Toward a Soluble Model System for the Amyloid State. J Am Chem Soc 139:16434-16437
Kreitler, Dale F; Mortenson, David E; Forest, Katrina T et al. (2016) Effects of Single ?-to-? Residue Replacements on Structure and Stability in a Small Protein: Insights from Quasiracemic Crystallization. J Am Chem Soc 138:6498-505
Hayouka, Zvi; Thomas, Nicole C; Mortenson, David E et al. (2015) Quasiracemate Crystal Structures of Magainin 2 Derivatives Support the Functional Significance of the Phenylalanine Zipper Motif. J Am Chem Soc 137:11884-7
Kung, Vanessa M; Cornilescu, Gabriel; Gellman, Samuel H (2015) Impact of Strand Number on Parallel ?-Sheet Stability. Angew Chem Int Ed Engl 54:14336-9
Mortenson, David E; Steinkruger, Jay D; Kreitler, Dale F et al. (2015) High-resolution structures of a heterochiral coiled coil. Proc Natl Acad Sci U S A 112:13144-9
Fu, Li; Wang, Zhuguang; Psciuk, Brian T et al. (2015) Characterization of Parallel ?-Sheets at Interfaces by Chiral Sum Frequency Generation Spectroscopy. J Phys Chem Lett 6:1310-5
Laaser, Jennifer E; Skoff, David R; Ho, Jia-Jung et al. (2014) Two-dimensional sum-frequency generation reveals structure and dynamics of a surface-bound peptide. J Am Chem Soc 136:956-62
Maynard, Stacy J; Almeida, Aaron M; Yoshimi, Yasuharu et al. (2014) New charge-bearing amino acid residues that promote ?-sheet secondary structure. J Am Chem Soc 136:16683-8

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