Olivier Habimana
Overview
Explore the profile of Olivier Habimana including associated specialties, affiliations and a list of published articles.
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Articles
47
Citations
477
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Recent Articles
1.
Giaouris E, Habimana O
Antibiotics (Basel)
. 2025 Feb;
14(2).
PMID: 40001353
Biofilms represent the predominant mode of microbial growth across a variety of environments, encompassing both natural and anthropogenic settings [...].
2.
Dong Y, Liu H, Habimana O
Int J Food Microbiol
. 2025 Feb;
432:111098.
PMID: 39954350
The global demand for seafood necessitates robust food safety practices, particularly within traditional wet markets. This study investigated the microbiomes of live Japanese mantis shrimp (JMS) and their associated environments...
3.
Farha A, Habimana O, Corke H
Microbiol Spectr
. 2024 Sep;
12(11):e0073824.
PMID: 39311590
Importance: Biofilm-associated bacterial infections are one of the major problems in medical settings. There are currently limited biofilm inhibitors available for clinical use. Guanabenz acetate, a drug used to treat...
4.
Habimana O
Methods Mol Biol
. 2024 Sep;
2852:123-134.
PMID: 39235740
Properly using controllable atmospheric containers can facilitate investigations of the survival abilities and physiological states of key and emerging-foodborne pathogens under recreated applicable food processing environmental conditions. Notably, saturated salt...
5.
Habimana O, Bridier A, Giaouris E
Front Cell Infect Microbiol
. 2024 Feb;
14:1374693.
PMID: 38404285
No abstract available.
6.
Zhang T, Hong S, Zhang J, Liu P, Li S, Wen Z, et al.
Food Chem
. 2023 Nov;
437(Pt 2):137764.
PMID: 37976787
A waxy and a non-waxy proso millet flour were each fermented by Lactobacillus amylovorus, Lactobacillus fermentum, and Lactobacillus plantarum. The samples were fermented for one to five days, and starch...
7.
Death at the interface: Nanotechnology's challenging frontier against microbial surface colonization
Kaur K, Habimana O
Front Chem
. 2022 Oct;
10:1003234.
PMID: 36311433
The emergence of antimicrobial-resistant bacterial strains has led to novel approaches for combating bacterial infections and surface contamination. More specifically, efforts in combining nanotechnology and biomimetics have led to the...
8.
Sekoai P, Chunilall V, Sithole B, Habimana O, Ndlovu S, Ezeokoli O, et al.
Microorganisms
. 2022 Oct;
10(10).
PMID: 36296200
Amongst the biofuels described in the literature, biohydrogen has gained heightened attention over the past decade due to its remarkable properties. Biohydrogen is a renewable form of H that can...
9.
Yao Y, Liu Z, Yip K, Pu Y, Cheng W, Li M, et al.
Sci Total Environ
. 2021 Nov;
818:151835.
PMID: 34822887
A comprehensive global profile of the distribution of ARGs in freshwater biofilms is lacking. We utilized metagenomic approaches to reveal the diversity, abundance, transferability and hosts of ARGs in 96...
10.
Fung A, Rao S, Ngan W, Sekoai P, Touyon L, Ho T, et al.
Bioresour Technol
. 2021 Sep;
341:125869.
PMID: 34523579
The possibility of breaking down cellulose-rich food waste through biofilm engineering was investigated. Six previously isolated strains from naturally degrading fruits and vegetables, screened for biofilm-forming ability and cellulolytic activity,...