Green Routes: Exploring Protein-Based Virus-like Nanoparticle Transport and Immune Activation in Nicotiana benthamiana for Biotechnological Applications

Author:

Josi Romano123,Pardini Alessandro123ORCID,Haindrich Alexander4,Marar Sanjana V.12,Vogt Anne-Cathrine S.123,Gessler Arthur56ORCID,Rentsch Doris4ORCID,Cherubini Paolo57,Bachmann Martin F.12ORCID,Mohsen Mona O.128

Affiliation:

1. Department for BioMedical Research, University of Bern, 3008 Bern, Switzerland

2. Department of Rheumatology and Immunology, University Hospital of Bern, 3010 Bern, Switzerland

3. Graduate School for Cellular and Biomedical Sciences (GCB), 3012 Bern, Switzerland

4. Institute of Plant Sciences, University of Bern, 3013 Bern, Switzerland

5. WSL, Swiss Federal Institute for Forest Snow and Landscape Research, 8903 Birmensdorf, Switzerland

6. Institute of Terrestrial Ecosystems, ETH Zürich, 8092 Zürich, Switzerland

7. Deptartment of Forest and Conservation Sciences, University of British Columbia, Vancouver, BC V6T 1Z2, Canada

8. Tajarub Research & Development, Doha P.O. Box 12627, Qatar

Abstract

Viral, bacterial, fungal, and nematode infections cause significant agricultural losses, with limited treatment options, necessitating novel approaches to enhance plant defense systems and protection against pathogens. Virus-like nanoparticles (VLPs), extensively used in animal and human therapies (e.g., vaccines and immune enhancers), hold potential for novel agricultural solutions and advancing plant nanotechnology. This study employed various methodologies, including VLP production, confocal microscopy, and real-time qPCR. Our findings demonstrated the presence of 30 nm Qβ-VLPs, fluorescently labeled, within the intercellular space of Nicotiana benthamiana leaves one hour post-infiltration. Furthermore, infiltration with Qβ-VLPs led to an upregulation of key defense genes (NbPR1a, NbPR5, NbNPR, NbERF1, NbMYC2, and NbLRR2) in treated plants. Using RT-qPCR, a significant increase in the relative expression levels of defense genes was observed, with sustained high levels of NbERF1 and NbLRR2 even after 24 h. These findings suggest that Qβ-VLPs effectively upregulate genes crucial for pathogen defense in N. benthamiana, initiating PAMP-triggered immunity and launching signaling cascades that enhance defense mechanisms. This innovative application of VLPs to activate plant defense programs advances plant nanobiotechnology, offering new agricultural solutions.

Funder

Swiss Federal Institute for Forest, Snow, and Landscape Research

Publisher

MDPI AG

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