Optical Detection of Distal Lung Enzyme Activity in Human Inflammatory Lung Disease

Author:

Megia-Fernandez Alicia1ORCID,Marshall Adam2ORCID,Akram Ahsan R.2ORCID,Mills Bethany2ORCID,Chankeshwara Sunay V.1ORCID,Scholefield Emma2ORCID,Miele Amy2,McGorum Bruce C.3ORCID,Michaels Chesney2,Knighton Nathan4ORCID,Vercauteren Tom5ORCID,Lacombe Francois6,Dentan Veronique6,Bruce Annya M.2,Mair Joanne2,Hitchcock Robert4,Hirani Nik2,Haslett Chris2,Bradley Mark1ORCID,Dhaliwal Kevin2ORCID

Affiliation:

1. EaStCHEM, The University of Edinburgh School of Chemistry, Joseph Black Building, West Mains Road, Edinburgh, EH9 3FJ, UK

2. Translational Healthcare Technologies Group, Centre for Inflammation Research, Queen’s Medical Research Institute, University of Edinburgh, 47 Little France Crescent, Edinburgh BioQuarter, Edinburgh, EH16 4TJ, UK

3. The Roslin Institute and Royal (Dick) School of Veterinary Studies, University of Edinburgh, Easter Bush, Midlothian, EH25 9RG, UK

4. Department of Biomedical Engineering, University of Utah, 36 S Wasatch Dr, Salt Lake City, UT 84112, USA

5. School of Biomedical Engineering & Imaging Sciences, King’s College London, London, SE1 7EH, UK

6. Mauna Kea Technologies, 9, Rue d’Enghien, Paris, 75010, France

Abstract

Objective and Impact Statement. There is a need to develop platforms delineating inflammatory biology of the distal human lung. We describe a platform technology approach to detect in situ enzyme activity and observe drug inhibition in the distal human lung using a combination of matrix metalloproteinase (MMP) optical reporters, fibered confocal fluorescence microscopy (FCFM), and a bespoke delivery device. Introduction. The development of new therapeutic agents is hindered by the lack of in vivo in situ experimental methodologies that can rapidly evaluate the biological activity or drug-target engagement in patients. Methods. We optimised a novel highly quenched optical molecular reporter of enzyme activity (FIB One) and developed a translational pathway for in-human assessment. Results. We demonstrate the specificity for matrix metalloproteases (MMPs) 2, 9, and 13 and probe dequenching within physiological levels of MMPs and feasibility of imaging within whole lung models in preclinical settings. Subsequently, in a first-in-human exploratory experimental medicine study of patients with fibroproliferative lung disease, we demonstrate, through FCFM, the MMP activity in the alveolar space measured through FIB One fluorescence increase (with pharmacological inhibition). Conclusion. This translational in situ approach enables a new methodology to demonstrate active drug target effects of the distal lung and consequently may inform therapeutic drug development pathways.

Funder

Mauna Kea Technologies

Publisher

American Association for the Advancement of Science (AAAS)

Subject

General Medicine

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