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May 15, 2026ACS Nano1 citationsOpen Access

Programmable DNA Folding Modulates Phase Behavior and Dynamics of DNA/Peptide Condensates

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IKItai KatzirYWYanbing WenIRInbal Razi

Key Points

  • This study investigates the influence of nucleic acid and structural folding on liquid-liquid phase separation (LLPS).
  • Designed a programmable ssDNA library with varying folding degrees and architectures.
  • Utilized circular dichroism, FRET, SAXS, and coarse-grained simulations for analysis.
  • Examined the role of an HIV NC-derived peptide in modulating phase behavior.
  • HNP interactions promote DNA folding, decreasing LLPS; effect quantified by phase diagrams.
  • Structural disorder and palindromic linkers increase phase separation, supporting multivalent interactions.
  • Identified local structural order and dimerization as key determinants influencing condensate properties.

Abstract

Membraneless compartments formed by liquid-liquid phase separation (LLPS) regulate biochemical reactions and play a key role in both physiological and pathological processes, including viral replication. In retroviral systems, the extent of genome folding is critical for the efficient packaging of new viral particles, a process mediated by the nucleocapsid (NC) protein that chaperones RNA folding and assembly. Here, we sought to elucidate how nucleic-acid folding and structural folding influence LLPS and whether an HIV NC-derived peptide (HNP) can modulate this process through chaperone-like activity. To this end, we designed a programmable single-stranded DNA (ssDNA) library spanning varying degrees of folding and palindromic architectures, enabling systematic investigation of how nanoscale structural order governs coacervation. Using circular dichroism, FRET, SAXS, and coarse-grained simulations, we correlate DNA conformations with phase behavior and emergent condensate material properties. We find that interactions with HNP promote DNA folding and that increasing DNA order suppresses LLPS, whereas structural disorder and palindromic linkers that induce DNA dimerization enhance phase separation by facilitating multivalent interactions and in turn increasing condensate viscosity. Together, these findings identify two programmable determinants, local structural order and palindromic dimerization, that govern DNA/peptide condensate behavior, offering mechanistic insight into viral genome organization and guiding principles for tuning the physicochemical and material properties of synthetic condensates.

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Cite This Study

Katzir et al. (2026) studied this question.

synapsesocial.com/papers/6a06b983e7dec685947ac37ehttps://doi.org/10.1021/acsnano.6c03646
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