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July 30, 2013Proceedings of the National Academy of Sciences1,123 citationsOpen Access

Conformations of intrinsically disordered proteins are influenced by linear sequence distributions of oppositely charged residues

RDRahul K. DasRPRohit V. Pappu

Key Points

  • The study aims to investigate how the distribution of charged residues in the sequences of intrinsically disordered proteins (IDPs) influences their conformational ensembles.
  • Utilized atomistic simulations to analyze the conformations of weak and strong polyampholytes.
  • Calculated a patterning parameter κ to quantify linear sequence distributions of charged residues.
  • Proposed a scaling theory for understanding conformational properties based on sequence design.
  • Weak polyampholytes predominantly form globules due to their sequence properties.
  • High κ-values lead to preferences for hairpin-like conformations from long-range electrostatic attractions.
  • Natural strong polyampholytes tend to have low κ-values, indicating a preference for random coil structures.

Abstract

The functions of intrinsically disordered proteins (IDPs) are governed by relationships between information encoded in their amino acid sequences and the ensembles of conformations that they sample as autonomous units. Most IDPs are polyampholytes, with sequences that include both positively and negatively charged residues. Accordingly, we focus here on the sequence-ensemble relationships of polyampholytic IDPs. The fraction of charged residues discriminates between weak and strong polyampholytes. Using atomistic simulations, we show that weak polyampholytes form globules, whereas the conformational preferences of strong polyampholytes are determined by a combination of fraction of charged residues values and the linear sequence distributions of oppositely charged residues. We quantify the latter using a patterning parameter κ that lies between zero and one. The value of κ is low for well-mixed sequences, and in these sequences, intrachain electrostatic repulsions and attractions are counterbalanced, leading to the unmasking of preferences for conformations that resemble either self-avoiding random walks or generic Flory random coils. Segregation of oppositely charged residues within linear sequences leads to high κ-values and preferences for hairpin-like conformations caused by long-range electrostatic attractions induced by conformational fluctuations. We propose a scaling theory to explain the sequence-encoded conformational properties of strong polyampholytes. We show that naturally occurring strong polyampholytes have low κ-values, and this feature implies a selection for random coil ensembles. The design of sequences with different κ-values demonstrably alters the conformational preferences of polyampholytic IDPs, and this ability could become a useful tool for enabling direct inquiries into connections between sequence-ensemble relationships and functions of IDPs.

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Cite This Study

Das et al. (2013) studied this question.

synapsesocial.com/papers/69d9099d31221da40c64f555https://doi.org/10.1073/pnas.1304749110
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