2022
Myrtle-Functionalized Nanofibers Modulate Vaginal Cell Population Behavior While Counteracting Microbial Proliferation
BELLU, E.; N. DIAZ; M. KRALOVIČ; R. DIVIN; G. SARAIS et. al.Basic information
Original name
Myrtle-Functionalized Nanofibers Modulate Vaginal Cell Population Behavior While Counteracting Microbial Proliferation
Authors
BELLU, E.; N. DIAZ; M. KRALOVIČ; R. DIVIN; G. SARAIS; A. FADDA; R. SATTA; M. A. MONTESU; S. MEDICI; A. BRUNETTI; A. BARCESSAT; T. JAROŠÍKOVÁ; Jiří RULC (203 Czech Republic, belonging to the institution); Evžen AMLER (guarantor); V. MARGARITA; P. RAPPELLI and M. MAIOLI
Edition
Plants, 2022, 2223-7747
Other information
Language
English
Type of outcome
Article in a journal
Field of Study
10600 1.6 Biological sciences
Country of publisher
Switzerland
Confidentiality degree
is not subject to a state or trade secret
References:
Impact factor
Impact factor: 4.500
Organization unit
AMBIS University
UT WoS
000816625100001
Keywords in English
myrtle; plant extracts; bioactive compounds; health promoting; nanomaterials; antimicrobial activity; cell behavior; vaginal infections
Links
TL03000207, research and development project.
Changed: 20/4/2023 10:36, Bc. Olga Puldová
Abstract
In the original language
Vaginal infections affect millions of women annually worldwide. Therapeutic options are limited, moreover drug-resistance increases the need to find novel antimicrobials for health promotion. Recently phytochemicals were re-discovered for medical treatment. Myrtle (Myrtus communis L.) plant extracts showed in vitro antioxidant, antiseptic and anti-inflammatory properties thanks to their bioactive compounds. The aim of the present study was to create novel nanodevices to deliver three natural extracts from leaves, seeds and fruit of myrtle, in vaginal milieu. We explored their effect on human cells (HeLa, Human Foreskin Fibroblast-1 line, and stem cells isolated from skin), resident microflora (Lactobacillus acidophilus) and on several vaginal pathogens (Trichomonas vaginalis, Escherichia coli, Staphylococcus aureus, Candida albicans, Candida kefyr, Candida glabrata, Candida parapsilosis, Candida krusei). Polycaprolactone-Gelatin nanofibers encapsulated with leaves extract and soaked with seed extracts exhibited a different capability in regard to counteracting microbial proliferation. Moreover, these nanodevices do not affect human cells and resident microflora viability. Results reveal that some of the tested nanofibers are interesting candidates for future vaginal infection treatments.