» Articles » PMID: 32341352

Targeted Delivery of Nanomaterials with Chemical Cargoes in Plants Enabled by a Biorecognition Motif

Overview
Journal Nat Commun
Specialty Biology
Date 2020 Apr 29
PMID 32341352
Citations 41
Authors
Affiliations
Soon will be listed here.
Abstract

Current approaches for nanomaterial delivery in plants are unable to target specific subcellular compartments with high precision, limiting our ability to engineer plant function. We demonstrate a nanoscale platform that targets and delivers nanomaterials with biochemicals to plant photosynthetic organelles (chloroplasts) using a guiding peptide recognition motif. Quantum dot (QD) fluorescence emission in a low background window allows confocal microscopy imaging and quantitative detection by elemental analysis in plant cells and organelles. QD functionalization with β-cyclodextrin molecular baskets enables loading and delivery of diverse chemicals, and nanoparticle coating with a rationally designed and conserved guiding peptide targets their delivery to chloroplasts. Peptide biorecognition provides high delivery efficiency and specificity of QD with chemical cargoes to chloroplasts in plant cells in vivo (74.6 ± 10.8%) and more specific tunable changes of chloroplast redox function than chemicals alone. Targeted delivery of nanomaterials with chemical cargoes guided by biorecognition motifs has a broad range of nanotechnology applications in plant biology and bioengineering, nanoparticle-plant interactions, and nano-enabled agriculture.

Citing Articles

Nanoparticles as catalysts of agricultural revolution: enhancing crop tolerance to abiotic stress: a review.

Cao Y, Turk K, Bibi N, Ghafoor A, Ahmed N, Azmat M Front Plant Sci. 2025; 15:1510482.

PMID: 39898270 PMC: 11782286. DOI: 10.3389/fpls.2024.1510482.


Investigating the Effect of Syringe Infiltration on (Tobacco).

Routier C, Hermida-Carrera C, Stavrinidou E ACS Agric Sci Technol. 2025; 5(1):28-35.

PMID: 39850806 PMC: 11752493. DOI: 10.1021/acsagscitech.4c00170.


The role of nanoparticles in transforming plant genetic engineering: advancements, challenges and future prospects.

Rani N, Kumari K, Hooda V Funct Integr Genomics. 2025; 25(1):23.

PMID: 39841261 DOI: 10.1007/s10142-025-01528-x.


The need for smart microalgal bioprospecting.

Labara Tirado J, Herdean A, Ralph P Nat Prod Bioprospect. 2025; 15(1):7.

PMID: 39815030 PMC: 11735771. DOI: 10.1007/s13659-024-00487-3.


A Chimeric Peptide for Shielding Plant Photosynthetic Systems against Excess Light Stress via Chloroplast-Targeted ROS Quenching.

Miyamoto T, Morey-Yagi S, Numata K JACS Au. 2024; 4(12):4691-4699.

PMID: 39735917 PMC: 11672152. DOI: 10.1021/jacsau.4c00478.


References
1.
Lowry G, Avellan A, Gilbertson L . Opportunities and challenges for nanotechnology in the agri-tech revolution. Nat Nanotechnol. 2019; 14(6):517-522. DOI: 10.1038/s41565-019-0461-7. View

2.
Sebilo M, Mayer B, Nicolardot B, Pinay G, Mariotti A . Long-term fate of nitrate fertilizer in agricultural soils. Proc Natl Acad Sci U S A. 2013; 110(45):18185-9. PMC: 3831475. DOI: 10.1073/pnas.1305372110. View

3.
Li B, Li G, Kronzucker H, Baluska F, Shi W . Ammonium stress in Arabidopsis: signaling, genetic loci, and physiological targets. Trends Plant Sci. 2013; 19(2):107-14. DOI: 10.1016/j.tplants.2013.09.004. View

4.
Ohno C, Reddy G, Heisler M, Meyerowitz E . The Arabidopsis JAGGED gene encodes a zinc finger protein that promotes leaf tissue development. Development. 2004; 131(5):1111-22. DOI: 10.1242/dev.00991. View

5.
Sparkes I, Brandizzi F, Slocombe S, El-Shami M, Hawes C, Baker A . An Arabidopsis pex10 null mutant is embryo lethal, implicating peroxisomes in an essential role during plant embryogenesis. Plant Physiol. 2003; 133(4):1809-19. PMC: 300734. DOI: 10.1104/pp.103.031252. View