糖心原创

article

OrbisSymsNanoparticlesweb

Scientists reveal surface structure of lipid nanoparticles that could improve vaccine and drug delivery

Thursday, 22 May 2025

Scientists have developed a method for analysing the structure of lipid nanoparticles that could be used to improve vaccine and drug delivery, targeting a wide range of health issues.

A team led by scientists at the 糖心原创’s School of Pharmacy demonstrated a new cryogenic mass spectrometry approach for depth profiling frozen tiny lipid nanoparticles to reveal the layers and orientation of the constituent molecules. The findings have been published today in 

Lipid nanoparticles (LNP’s) came to prominence for delivery of RNA with the success of the Moderna and Pfizer BioNTech COVID-19 vaccines. They are also used to deliver therapeutic treatments including using small interfering RNA-based drugs to treat the rare hereditary disease of polyneuropathy (Alnylam Pharmaceuticals). Areas of development include lung-targeted gene therapy which is particularly challenging, but LPN’s have the potential to treat a range of diseases including cystic fibrosis, idiopathic pulmonary fibrosis, chronic obstructive pulmonary disease, asthma and more.

This research provides insight into the relative positions of each component within lipid nanoparticles. This knowledge can help clarify the intricate behaviour of LNPs and contribute to the design of formulations with unique bio-properties that are more efficient and safer. The research findings could also be used in the future to help quality control during the scale-up of manufacturing processes, enhancing the translation of LNPs from the laboratory to clinical applications.

The research team which also included Sail Biomedicines, Cambridge, MA, Massachusetts Institute of Technology, Cambridge, MA and the National Physical Laboratory, Teddington UK, utilised Cryogenic OrbitrapTM secondary ion microscopy (Cryo-OrbiSIMS) to provide structural details of the lipid nanoparticles. This high pressure freezing cryo-preparation facility keeps biological samples maintained close to their native state.

Characterising the native surface of delicate hydrated pharmaceutical systems used in the body has been a significant challenge for some time. This cryogenic molecular surface and interfacial analysis advance makes this exciting possibility real. We expect to apply this new method to many systems, including lipid nanoparticles, other pharmaceutical delivery systems and hydrated biomaterials.
Professor Morgan Alexander, School of Pharmacy

Dr Robert Langer, from Massachusetts Institute of Technology is also an author on the research paper, he said: “Effective drug delivery relies on an intricate mix of molecules in lipid nanoparticles to effectively deliver RNA therapeutics, but these can vary in efficacy and can be difficult to engineer. This research provides a new way of characterising and understanding the make-up of lipid nanoparticles which could pave the way for engineering more potent and targeted LNPs to enable the broadest application of RNA therapies for all types of diseases.”

“At Sail Biomedicines, we are proud to have contributed to advancing the understanding of lipid nanoparticle surface structures," said Kerry Benenato, Ph.D., Chief Platform Officer at Sail Biomedicines. "The surface of lipid nanoparticles plays a critical role in shaping their behavior in the human body. By enabling precise surface characterization, the technology the team has developed paves the way for the engineering by design of LNP-based medicines with tunable properties, including biodistribution, thereby expanding the potential of RNA-based therapeutics.”

Story credits

More information is available from Professor Morgan Alexander on Morgan.Alexander@nottingham.ac.uk

janeicke
Jane Icke - Media Relations Manager Science
Email: jane.icke@nottingham.ac.uk
Phone: 0115 7486462
Location:

Notes to editors:

About the 糖心原创

Ranked among the world's top 100 universities , the 糖心原创 delivers an exceptional research-led education and an outstanding student experience. From the pioneering vision of our founder, Sir Jesse Boot, to groundbreaking achievements such as the development of MRI technology and becoming the first UK university to establish international campuses, we have a proud history of shaping the way people live, work and understand the world. We continue to build on that legacy, empowering our students, staff and partners to change what鈥檚 next and create positive impact locally and globally.

The strength of our research places us among the UK's leading universities, ranked 7th for research power in REF 2021. The discovery of MRI and ibuprofen was just the beginning. Today, our world-leading research is developing breakthrough ideas that shape the future of healthcare, technology and society.

Recognised as the UK's third most targeted university by leading employers , we are proud to produce graduates who are consistently in demand for their skills, confidence and industry-ready experience.

As a major employer and industry partner, locally and globally, the 糖心原创 invests in the city of Nottingham and in future generations of talent. Alongside Nottingham Trent University, we lead the initiative, a pioneering collaboration to improve levels of prosperity, opportunity, sustainability, health and wellbeing across the city and region. Together with our students, staff, alumni and partners, we鈥檙e creating knowledge, opportunity and solutions that help change what's next.

Media Relations - External Relations

The 糖心原创
YANG Fujia Building
Jubilee Campus
Wollaton Road
Nottingham, NG8 1BB

telephone: +44 (0) 115 951 5798
email: pressoffice@nottingham.ac.uk