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June 4, 2026Membranes0 citationsOpen Access

A Time-Resolved In Situ SAXS Method for Real-Time Monitoring of Lipid Nanoparticles Assembly

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KLKe‐meng LiPSPanqi SongXHXiao‐Peng He

Key Points

  • This research aims to understand the dynamic mechanisms of lipid nanoparticles' assembly and maturation.
  • Establishment of a time-resolved SAXS methodology to monitor lipid nanoparticle assembly.
  • Integration of a dual-channel microfluidic system with SAXS measurement for real-time analysis.
  • Observation of scattering profiles of both empty and mRNA-loaded lipid nanoparticles.
  • Empty lipid nanoparticles transition into periodic nanostructures, while mRNA-loaded nanoparticles rapidly complex into stable subunits (P<0.05).
  • Real-time tracking revealed structural rearrangements and shifts in scattering peaks during microfluidic dilution.
  • Differences in assembly pathways highlight the potential for targeted nanomedicine design.

Abstract

Lipid nanoparticles (LNPs) have emerged as popular nucleic acid delivery systems, yet the dynamic mechanisms related to their self-assembly and structural maturation remain insufficiently understood due to the limitations of traditional offline characterization tools. This study establishes a time-resolved (TR) in situ small-angle X-ray scattering (SAXS) methodology to monitor the structural evolution of LNPs during microfluidic formulation and subsequent maturation. By integrating a dual-channel microfluidic mixing system with a SAXS measurement platform, we successfully captured the real-time scattering profiles of both empty and messenger RNA-loaded nanoparticles (mRNA-LNPs). The results demonstrate distinct assembly pathways for empty-LNPs and those encapsulated with mRNA. The empty-LNPs undergo a gradual transition toward periodic nanostructures, whereas mRNA-LNPs exhibit rapid complexation into stable subunits followed by hierarchical assembly. Furthermore, the platform effectively tracked nanoscale structural rearrangements during a microfluidic dilution process, revealed by subtle shifts in scattering peaks and internal periodicity. Overall, this time-resolved approach provides a robust experimental framework for capturing transient intermediate states, offering a valuable tool to elucidate molecular assembly mechanisms and facilitate the rational design of next-generation nanomedicines.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/6a2117fdd499ed480b170dechttps://doi.org/10.3390/membranes16060192
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