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Broth Microdilution In Vitro Screening: An Easy and Fast Method to Detect New Antifungal Compounds
Published on: February 14, 2018
Molecular mechanism of host-yeast interactions and prevention by nanoformulation approaches
1Department of Biochemistry, School of Basic Sciences, Central University of Punjab, VPO, Ghudda, Bathinda, India.
Abstract:
Fungal infections are a major source of morbidity and mortality in people with compromised immune systems, such as those with human immunodeficiency virus, cancer, organ transplant recipients, and patients undergoing chemotherapy in healthcare settings. According to a recent World Health Organization (WHO) fungal priority pathogens list, Cryptococcus spp., Candida spp., Aspergillus spp., and Candida auris cause severe invasive infections in human. These opportunistic pathogens cause a significant number of mycoses, which affect over a billion people annually. Around two million infections can be fatal, especially for those with compromised immune systems. To diagnose and treat mycoses, we need to understand the complex interactions between the fungus and the host during pathogenesis, the virulence-causing traits of the fungus, and how the host fights infection through the immune system. Although several antifungal drugs are available against fungal infections, their effectiveness is highly variable, with adverse effects. In addition, the increasing resistance to traditional antifungal treatments poses serious risks to the healthcare industry. Therefore, new therapeutic strategies are required to combat these potentially fatal fungal infections. Nanostructure-based formulations can improve the therapeutic efficacy of conventional medications by broadening their activities, decreasing toxicity, enhancing bioactivity, and improving biodistribution. The review highlights host and fungus interaction and how nanoformulations can be targeted against fungal infections.
Insights
Fungal infections are a serious threat, especially for immunocompromised individuals. Nanotechnology offers a promising approach to enhance antifungal treatments and combat drug resistance.
Area of Science:
- Mycology
- Immunology
- Nanotechnology
Background:
- Fungal infections cause significant morbidity and mortality, particularly in immunocompromised patients.
- Opportunistic fungal pathogens like Candida and Aspergillus are a global health concern, leading to millions of mycoses annually.
- Increasing antifungal resistance necessitates novel therapeutic strategies.
Purpose of the Study:
- To review host-fungus interactions in pathogenesis.
- To explore fungal virulence factors and host immune responses.
- To highlight the potential of nanostructure-based formulations in combating fungal infections.
Main Methods:
- Literature review focusing on host-pathogen interactions.
- Analysis of fungal virulence traits and host immune mechanisms.
- Examination of nanomedicine applications in antifungal therapy.
Main Results:
- Understanding host-fungus interactions is crucial for effective mycosis treatment.
- Nanostructure-based formulations can enhance antifungal drug efficacy and reduce toxicity.
- Targeted delivery of antifungals via nanoformulations shows promise.
Conclusions:
- Novel therapeutic strategies are urgently needed due to rising antifungal resistance.
- Nanotechnology presents a viable approach to improve existing antifungal treatments.
- Further research into nanoformulations can lead to more effective treatments for invasive fungal infections.
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