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Curcumin-Functionalized Graphene Oxide Strongly Prevents Candida parapsilosis Adhesion and Biofilm Formation
Margherita Cacaci1,2, Damiano Squitieri1, Valentina Palmieri3,4,5
1Dipartimento di Scienze Biotecnologiche di Base, Cliniche Intensivologiche e Perioperatorie, Università Cattolica del Sacro Cuore, 00168 Rome, Italy.
Abstract:
Candida parapsilosis is the major non-C. albicans species involved in the colonization of central venous catheters, causing bloodstream infections. Biofilm formation on medical devices is considered one of the main causes of healthcare-associated infections and represents a global public health problem. In this context, the development of new nanomaterials that exhibit anti-adhesive and anti-biofilm properties for the coating of medical devices is crucial. In this work, we aimed to characterize the antimicrobial activity of two different coated-surfaces, graphene oxide (GO) and curcumin-graphene oxide (GO/CU) for the first time, against C. parapsilosis. We report the capacity of GO to bind and stabilize CU molecules, realizing a homogenous coated surface. We tested the anti-planktonic activity of GO and GO/CU by growth curve analysis and quantification of Reactive Oxigen Species( ROS) production. Then, we tested the antibiofilm activity by adhesion assay, crystal violet assay, and live and dead assay; moreover, the inhibition of the formation of a mature biofilm was investigated by a viability test and the use of specific dyes for the visualization of the cells and the extra-polymeric substances. Our data report that GO/CU has anti-planktonic, anti-adhesive, and anti-biofilm properties, showing a 72% cell viability reduction and a decrease of 85% in the secretion of extra-cellular substances (EPS) after 72 h of incubation. In conclusion, we show that the GO/CU conjugate is a promising material for the development of medical devices that are refractory to microbial colonization, thus leading to a decrease in the impact of biofilm-related infections.
Insights
Curcumin-graphene oxide (GO/CU) coatings show significant antimicrobial properties against Candida parapsilosis. This new nanomaterial effectively prevents biofilm formation on medical devices, reducing healthcare-associated infections.
Area of Science:
- Biomaterials science
- Infectious diseases
- Nanotechnology
Background:
- Candida parapsilosis is a key non-albicans species causing central venous catheter colonization and bloodstream infections.
- Biofilm formation on medical devices is a major cause of healthcare-associated infections.
- Developing anti-adhesive and anti-biofilm nanomaterials for medical device coatings is critical.
Purpose of the Study:
- To characterize the antimicrobial activity of graphene oxide (GO) and curcumin-graphene oxide (GO/CU) against Candida parapsilosis.
- To evaluate the anti-planktonic and anti-biofilm efficacy of GO and GO/CU coated surfaces.
Main Methods:
- Growth curve analysis and Reactive Oxygen Species (ROS) quantification for anti-planktonic activity.
- Adhesion, crystal violet, and live/dead assays for anti-biofilm activity.
- Investigation of mature biofilm inhibition using viability tests and specific staining.
Main Results:
- GO effectively binds and stabilizes curcumin (CU), forming a homogenous coated surface.
- GO/CU demonstrated anti-planktonic activity.
- GO/CU exhibited significant anti-biofilm properties, reducing cell viability by 72% and extracellular substance secretion by 85% after 72 hours.
Conclusions:
- The GO/CU conjugate shows promising anti-planktonic, anti-adhesive, and anti-biofilm properties.
- This material can be developed for medical devices resistant to microbial colonization.
- This can lead to a reduction in the incidence and impact of biofilm-related infections.

