HEIndividual fellowship2023–2025

HyperABCD · Hyperaccumulator-grass-derived Antibacterial Boron-functionalized Carbon Dots: Synthesis and Cytotoxicological Evaluation

Horizon Europe — Marie Skłodowska-Curie Actions

Duration
2023-07-01 → 2025-01-31
EU contribution
€146,936
Participants
3
Scheme
HORIZON-TMA-MSCA-PF-EF

Lines connect the coordinator with its partners.

Results in brief

Hyperaccumulator-grass-derived Antibacterial Boron-functionalized Carbon Dots: Synthesis and Cytotoxicological Evaluation

The excessive use of conventional antibiotic drugs cause selective pressure on microbial pathogenes, leading to the evolution of resistant strains. To help prevent expected outbreaks of drug-resistant bacteria, alternative strategies, thus, should be developed. Among the alternatives, metal-based antimicrobial agents, including but not limited to silver nanoparticles, showed a certain level of practical success both traditionally and in modern times. Nevertheless, they do not escape from microbial resistance and also suffer from considerable environmental and human toxicity problems. At this point, carbon-based nanomaterials attracted growing attention in the last decade with their performance and potentially low risk of resistance development. The initial works on fullerenes (zero-dimensional carbon "nanoballs") and carbon nanotubes, followed by carbon nanosheets (known as "graphenes"), laid the foundation. And one of the latest additions to the family of carbon nanomaterials, carbon dots (CDs), increased the expectations because of their small size, good solubility, and relative affordability. Still, CDs are at their infancy in terms of both synthesis and fundamental understanding as a materials group. Above all, their activity also seem relatively limited. Accordingly, there is urgent need to better understand the synthesis as well as biological evaluation of CDs. Going one step further, it is of particular interest to explore chemically doped (hetereatom-doped) CDs as they would exhibit higher potency. Past research focused on nitrogen doping as it is identified as an antimicrobial activity booster. While being relatively underexplored, the roles of nitrogen, oxygen, sulfur, and phosphorus functionalities have also been studied several times. Nevertheless, despite its growing utility in drug design, there is only a handful of studies on boron-doped CDs, exclusively using synthetic origin precursors. Motivated by the background portrayed above and worsening sustainability concerns, HyperABCD program explored the synthesis and biological evaluation of boron-doped CDs. To enhance the potential environmental benefit, we opted for a renewable precursor (e.g., hyperaccumulator plant biomass) rather than a synthetic small molecules. Considering that hyperaccumulator plants can absorb and store "toxic" elements in their structure, we consider them an untapped potential for nanocarbon synthesis. Due to its wide availability accross Europe and boron-accumulating character, we selected Puccinella distans (also known as European alkaligrass) as the precursor. There has been no prior research on the utilization of a hyperaccumulator species in carbon dot synthesis. Therefore, our main objective was to successfully employ P. distans in synthesizing boron-doped CDs and evaluating the biological activity of those using model bacterial pathogens and mammalian cell cultures. By doing so, we aimed to pave the way for utilizing boron-doped hyperaccumulator plants in remediating contaminated soils in boron mining sites in the long term.

Data: CORDIS, © European Union

Project objective

The antibiotics’ overuse exerts selective evolutionary pressure on microbial pathogens, leading to the emergence of resistant strains. To reduce the likelihood of future epi/pandemics of bacterial origin, it is, thus, essential to put alternatives in action and consume antibiotics more sparingly. While the heavy metal-based antimicrobial agents are convenient for some uses, they bring human and environmental toxicity issues and suffer from microbial resistance. With their potentially low risk of resistance development, carbon-based nanomaterials seem like promising substitutes. Carbon dots (CDs) are particularly interesting owing to their small size, good solubility, and relative affordability, and boron-doped CDs (BCDs) deserve even greater attention as they typically show high antimicrobial activity. However, our current understanding of the toxicity profile of BCDs is fragmented and limited to materials synthesized by small molecular synthetic precursors as carbon and boron sources. In the project HyperABCD, we will first show the hydrothermal conversion of a boron-hyperaccumulator plant (biomass) into BCDs. Then, we will explore the antibacterial activity of BCDs on Gram-negative and Gram-positive species using various bacterial susceptibility tests. Next, we will undertake toxicological evaluations at different levels. To this end, we will perform standard viability tests with various human cell lines as well as a mutagenicity test. The assembled research team is fully competent to realize the ambitious goals of the proposed cross-European effort. I am a multidisciplinary researcher specializing in antimicrobial nanocarbons. The primary host (Dr. Alberto Bianco, CNRS, Institute of Molecular and Cell Biology) is among the pioneers of biomedical nanocarbon research, and our co-host Prof. Tom Coenye (Ghent University) is a renowned expert on microbiology. Our industrial partner, PavTec (Turkey), is a leading company in developing boron-based specialty chemicals.

Original text from CORDIS.

Participants

  • CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE CNRS · ParisCoordinatorFrance
  • Pavezyum Kimya San. Dis Tic. A.S. · KocaeliTürkiye
  • UNIVERSITEIT GENT · GentBelgium

Links

Data: CORDIS, © European Union