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Nuebel, M.

Publications and source records attributed to Nuebel, M..

2 recordsLinked to original sources

Breaking barriers in the sensitive and accurate mass determination of large DNA plasmids by mass photometry

DNA plasmids (pDNA) are essential for gene cloning and protein expression, whereby engineered plasmids serve as vectors to insert foreign DNA into host cells, enabling mass production of proteins and vaccines. Furthermore, pDNA is used in CRISPR-based gene editing, RNA therapeutics, and DNA vaccines. Due to the rapidly increasing use and application of a wide variety of pDNA, analytical methods to characterize their key attributes are vital. Because of their high molecular weight, accurate and fast mass analyses of pDNA, as a measure of quality control, is rather challenging. Here we explore mass photometry (MP) to analyze pDNAs and find that it completely fails using standard procedures as developed for MP on proteins, with masses underestimated by 30-40%. Even though the landing of pDNA during MP analysis can be improved by using coated glass slides, the large dsDNA particles diffract light beyond the diffraction limit, rendering most landing events unusable. To overcome these issues, we introduce a fast (30 s) and simple protocol to convert dsDNA particles rapidly into ssDNA-like particles just prior to analysis and show that these particles behave nearly perfect for MP. Using this protocol accurate and correct masses of pDNAs can be obtained by MP, with values within 1-3% of the expected mass. Using this protocol, MP can be used to mass analyze pDNA constructs from 1 to 15 MDa, suggesting that this approach may be widely adopted within academia and biopharma for essentially all plasmids.

biochemistry↗

Probing recombinant AAV capsid integrity and genome release under thermal stress by single-molecule interferometric scattering microscopy

Adeno-associated viruses (AAVs) are gaining traction as delivery vehicles for gene therapy although the molecular understanding of AAV-transgene release is still limited. Typically, the process of viral uncoating is investigated (in vitro) through thermal stress, revealing capsid disintegration at elevated temperatures. Here, we used single-molecule interferometric scattering microscopy to assess the (in)stability of different empty and filled AAV preparations. By introducing a heat-stable DNA plasmid as an internal standard, we quantitatively probed the impact of heat on AAVs. Generally, empty AAVs exhibited greater heat resistance than genome-filled particles. Our data also indicate that upon DNA release, the capsids do not transform into empty AAVs, but seem to aggregate or disintegrate. Strikingly, some AAVs exhibited an intermediate state with disrupted capsids but preserved bound genome, a feature that experimentally only emerged following incubation with a nuclease. Our data demonstrate that the thermal uncoating process is highly AAV specific (i.e., can be influenced by serotype, genome, host system). We argue that nuclease treatment in combination with mass photometry can be used as an additional analytical tool for assessing structural integrity of recombinant and/or clinical AAV vectors.

biophysics↗