Related Experiment Video
Updated: Jan 1, 2026

Development and Characterization of Fusidic Acid-Loaded Alginate-Aloe vera Based Hydrogel FilmWound Healing
Published on: December 13, 2024
Hydrogel Containing Oleoresin From Copaifera officinalis Presents Antibacterial Activity Against Streptococcus
Ana Elisa Belotto Morguette1,2, Briani Gisele Bigotto3, Renata de Lima Varella1
1Laboratório de Biologia Molecular de Microrganismos, Departamento de Microbiologia, Centro de Ciências Biológicas, Universidade Estadual de Londrina, Londrina, Brazil.
Insights
Copaiba oil effectively kills Group B Streptococcus (GBS) planktonic and biofilm cells, including resistant strains. Carbomer-based hydrogels offer a promising topical delivery system for controlling GBS colonization and infection.
Area of Science:
- Microbiology
- Pharmacology
- Natural Products Chemistry
Background:
- Group B Streptococcus (GBS) is a major cause of neonatal infections.
- Maternal GBS colonization increases the risk of vertical transmission and infection in newborns.
- Novel therapeutic strategies are needed to combat GBS colonization and infection.
Purpose of the Study:
- To evaluate the in vitro antibacterial effects of copaiba oil against GBS.
- To investigate the potential of copaiba oil-loaded carbomer-hydrogels for GBS topical delivery.
- To assess the activity of copaiba oil and its hydrogel formulation against planktonic and sessile GBS cells and biofilms.
Main Methods:
- Time-kill kinetics and minimal bactericidal concentration (MBC) assays were performed on planktonic GBS.
- Antibacterial activity against sessile GBS cells and biofilms was assessed.
- Mass spectral analysis identified components of copaiba oil.
- Carbomer-based hydrogels loaded with copaiba oil were formulated and characterized.
- In vitro release studies and biocompatibility tests were conducted.
Main Results:
- Copaiba oil demonstrated dose-dependent bactericidal activity against planktonic GBS (MBC: 0.06-0.12 mg/mL), including antibiotic-resistant strains.
- Copaiba oil inhibited the growth of GBS biofilms and reduced the viability of sessile cells.
- Kaurenoic acid was identified as a potential active component.
- A carbomer-hydrogel formulation (CARB-CO 1.0) effectively delivered copaiba oil, maintaining its antibacterial activity.
- CARB-CO 1.0 showed sustained release, biocompatibility with vaginal mucosa, and inhibited GBS biofilm formation.
Conclusions:
- Copaiba oil possesses significant in vitro antibacterial activity against GBS.
- Carbomer-based hydrogels are suitable for topical delivery of copaiba oil for GBS control.
- This formulation holds potential for managing GBS colonization and infection in the vaginal mucosa.
Abstract:
Streptococcus agalactiae or Group B Streptococcus (GBS) remains a leading cause of neonatal infections worldwide; and the maternal vaginal-rectal colonization increases the risk of vertical transmission of GBS to neonates and development of infections. This study reports the in vitro antibacterial effect of the oleoresin from Copaifera officinalis Jacq. L. in natura (copaiba oil) and loaded into carbomer-hydrogel against planktonic and sessile cells of GBS. First, the naturally extracted copaiba oil was tested for the ability to inhibit the growth and metabolic activity of planktonic and sessile GBS cells. The time-kill kinetics showed that copaiba oil exhibited a dose-dependent bactericidal activity against planktonic GBS strains, including those resistant to erythromycin and/or clindamycin [minimal bactericidal concentration (MBC) ranged from 0.06 mg/mL to 0.12 mg/mL]. Copaiba oil did not inhibit the growth of different Lactobacillus species, the indigenous members of the human microbiota. The mass spectral analyses of copaiba oil showed the presence of diterpenes, and the kaurenoic acid appears to be one of the active components of oleoresin from C. officinalis related to antibacterial activity against GBS. Microscopy analyses of planktonic GBS cells treated with copaiba oil revealed morphological and ultrastructural alterations, displaying disruption of the cell wall, damaged cell membrane, decreased electron density of the cytoplasm, presence of intracellular condensed material, and asymmetric septa. Copaiba oil also exhibited antibacterial activity against established biofilms of GBS strains, inhibiting the viability of sessile cells. Low-cost and eco-friendly carbomer-based hydrogels containing copaiba oil (0.5% - CARB-CO 0.5; 1.0% - CARB-CO 1.0) were then developed. However, only CARB-CO 1.0 preserved the antibacterial activity of copaiba oil against GBS strains. This formulation was homogeneous, soft, exhibited a viscoelastic behavior, and showed good biocompatibility with murine vaginal mucosa. Moreover, CARB-CO 1.0 showed a slow and sustained release of the copaiba oil, killing the planktonic and sessile (established biofilm) cells and inhibiting the biofilm formation of GBS on pre-coated abiotic surface. These results indicate that carbomer-based hydrogels may be useful as topical systems for delivery of copaiba oil directly into de vaginal mucosa and controlling S. agalactiae colonization and infection.
Related Concept Videos
Hand hygiene
Hand washing...
Surface Membrane Barriers
The outer layer of the skin, the epidermis, is a robust barrier comprising layers of closely packed keratinized cells. This dense arrangement prevents microbes from penetrating the body. The periodic shedding of epidermal cells...
Antimicrobial Effectiveness

