Intramolecular structural heterogeneity altered by long-range contacts in an intrinsically disordered protein

Author:

Koren Gil123ORCID,Meir Sagi123ORCID,Holschuh Lennard4ORCID,Mertens Haydyn D. T.5ORCID,Ehm Tamara1236ORCID,Yahalom Nadav237,Golombek Adina37ORCID,Schwartz Tal37,Svergun Dmitri I.5,Saleh Omar A.89ORCID,Dzubiella Joachim410,Beck Roy123ORCID

Affiliation:

1. The School of Physics and Astronomy, Department of Condensed Matter, Tel Aviv University, Tel Aviv 69978, Israel

2. The Center for Physics and Chemistry of Living Systems, Tel Aviv University, Tel Aviv 69978, Israel

3. The Center for Nanoscience and Nanotechnology, Tel Aviv University, Tel Aviv 69978, Israel

4. Applied Theoretical Physics-Computational Physics, Physikalisches Institut, Albert-Ludwigs-Universit Freiburg, Freiburg D-79104, Germany

5. European Molecular Biology Laboratory, Hamburg Unit, Hamburg 22607, Germany

6. Faculty of Physics and Center for NanoScience, Ludwig-Maximilians-Universität, München D-80539, Germany

7. School of Chemistry, Raymond and Beverly Sackler Faculty of Exact Sciences and Tel Aviv University Center for Light–Matter Interaction, Tel Aviv University, Tel Aviv 6997801, Israel

8. BMSE Program, University of California, Santa Barbara, CA 93110

9. Materials Department, University of California, Santa Barbara, CA 93110

10. Cluster of Excellence livMatS @ FIT–Freiburg Center for Interactive Materials and Bioinspired Technologies, Albert-Ludwigs-Universit Freiburg, Freiburg D-79104, Germany

Abstract

Short-range interactions and long-range contacts drive the 3D folding of structured proteins. The proteins’ structure has a direct impact on their biological function. However, nearly 40% of the eukaryotes proteome is composed of intrinsically disordered proteins (IDPs) and protein regions that fluctuate between ensembles of numerous conformations. Therefore, to understand their biological function, it is critical to depict how the structural ensemble statistics correlate to the IDPs’ amino acid sequence. Here, using small-angle X-ray scattering and time-resolved Förster resonance energy transfer (trFRET), we study the intramolecular structural heterogeneity of the neurofilament low intrinsically disordered tail domain (NFLt). Using theoretical results of polymer physics, we find that the Flory scaling exponent of NFLt subsegments correlates linearly with their net charge, ranging from statistics of ideal to self-avoiding chains. Surprisingly, measuring the same segments in the context of the whole NFLt protein, we find that regardless of the peptide sequence, the segments’ structural statistics are more expanded than when measured independently. Our findings show that while polymer physics can, to some level, relate the IDP’s sequence to its ensemble conformations, long-range contacts between distant amino acids play a crucial role in determining intramolecular structures. This emphasizes the necessity of advanced polymer theories to fully describe IDPs ensembles with the hope that it will allow us to model their biological function.

Funder

National Science Foundation

United States-Israel Binational Science Foundation

Israel Science Foundation

EC | Horizon Europe | HORIZON EUROPE Innovative Europe

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Dynamics and interactions of intrinsically disordered proteins;Current Opinion in Structural Biology;2024-02

2. Cell phenotypes can be predicted from propensities of protein conformations;Current Opinion in Structural Biology;2023-12

3. Insight into structural biophysics from solution X-ray scattering;Journal of Structural Biology;2023-12

4. Pincus blob elasticity in an intrinsically disordered protein;The European Physical Journal E;2023-10

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