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Published on: February 27, 2018
Microevolution of Serial Clinical Isolates of Cryptococcus neoformans var. grubii and C. gattii
Yuan Chen1,2, Rhys A Farrer3, Charles Giamberardino1
1Division of Infectious Diseases, Department of Medicine, Duke University Medical Center, Durham, North Carolina, USA.
Abstract:
The pathogenic species of Cryptococcus are a major cause of mortality owing to severe infections in immunocompromised as well as immunocompetent individuals. Although antifungal treatment is usually effective, many patients relapse after treatment, and in such cases, comparative analyses of the genomes of incident and relapse isolates may reveal evidence of determinative, microevolutionary changes within the host. Here, we analyzed serial isolates cultured from cerebrospinal fluid specimens of 18 South African patients with recurrent cryptococcal meningitis. The time between collection of the incident isolates and collection of the relapse isolates ranged from 124 days to 290 days, and the analyses revealed that, during this period within the patients, the isolates underwent several genetic and phenotypic changes. Considering the vast genetic diversity of cryptococcal isolates in sub-Saharan Africa, it was not surprising to find that the relapse isolates had acquired different genetic and correlative phenotypic changes. They exhibited various mechanisms for enhancing virulence, such as growth at 39°C, adaptation to stress, and capsule production; a remarkable amplification of ERG11 at the native and unlinked locus may provide stable resistance to fluconazole. Our data provide a deeper understanding of the microevolution of Cryptococcus species under pressure from antifungal chemotherapy and host immune responses. This investigation clearly suggests a promising strategy to identify novel targets for improved diagnosis, therapy, and prognosis.IMPORTANCE Opportunistic infections caused by species of the pathogenic yeast Cryptococcus lead to chronic meningoencephalitis and continue to ravage thousands of patients with HIV/AIDS. Despite receiving antifungal treatment, over 10% of patients develop recurrent disease. In this study, we collected isolates of Cryptococcus from cerebrospinal fluid specimens of 18 patients at the time of their diagnosis and when they relapsed several months later. We then sequenced and compared the genomic DNAs of each pair of initial and relapse isolates. We also tested the isolates for several key properties related to cryptococcal virulence as well as for their susceptibility to the antifungal drug fluconazole. These analyses revealed that the relapsing isolates manifested multiple genetic and chromosomal changes that affected a variety of genes implicated in the pathogenicity of Cryptococcus or resistance to fluconazole. This application of comparative genomics to serial clinical isolates provides a blueprint for identifying the mechanisms whereby pathogenic microbes adapt within patients to prolong disease.
Insights
Cryptococcus meningitis relapse in patients is driven by microevolutionary genetic and phenotypic changes within the host. Comparative genomics of serial isolates reveals mechanisms of cryptococcal adaptation and antifungal resistance.
Area of Science:
- Medical Mycology
- Genomics
- Infectious Diseases
Background:
- Cryptococcus species cause life-threatening infections, particularly in immunocompromised individuals.
- Recurrent cryptococcal meningitis poses a significant clinical challenge, with over 10% of patients relapsing despite antifungal treatment.
- Understanding the microevolutionary changes within Cryptococcus during infection is crucial for improving patient outcomes.
Purpose of the Study:
- To investigate the genetic and phenotypic alterations in serial Cryptococcus isolates from patients experiencing recurrent meningitis.
- To identify mechanisms of cryptococcal adaptation and virulence enhancement within the host environment.
- To explore potential genetic drivers of antifungal drug resistance.
Main Methods:
- Comparative genomic analysis of incident and relapse Cryptococcus isolates from cerebrospinal fluid of 18 South African patients.
- Assessment of phenotypic changes related to virulence, including growth at elevated temperatures, stress adaptation, and capsule production.
- Evaluation of antifungal susceptibility, specifically to fluconazole.
Main Results:
- Relapse isolates exhibited significant genetic and phenotypic changes compared to initial isolates, acquired during intra-host evolution.
- Observed adaptations included enhanced virulence factors (e.g., thermotolerance, stress response, capsule production) and a remarkable amplification of the ERG11 gene, potentially conferring fluconazole resistance.
- These microevolutionary changes highlight Cryptococcus's adaptability under antifungal and immune pressure.
Conclusions:
- Comparative genomics of serial clinical isolates provides a powerful approach to understand pathogen adaptation and relapse.
- The identified genetic and phenotypic changes in relapse isolates offer insights into cryptococcal virulence and antifungal resistance mechanisms.
- This study suggests potential novel targets for improved diagnosis, therapy, and prognosis of recurrent cryptococcal meningitis.
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