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Post-translational modifications confer amphotericin B resistance in Candida krusei isolated from a neutropenic
Li Zhang1, Jinzhou Xiao1, Mingwei Du2,3
1Institute of Dermatology, Naval Medical University, Shanghai, China.
Abstract:
Neutropenia is a common complication in the treatment of hematological diseases and the most common predisposing factor for invasion by fungi, such as Candida krusei. Recent studies have shown that C. krusei, a life-threatening pathogen, has developed resistance to amphotericin B (AMB). However, the mechanisms that led to the rapid emergence of this AMB-resistant phenotype are unclear. In this study, we found the sensitivity for AMB could be promoted by inhibiting histone acyltransferase activity and western blot analysis revealed differences in the succinylation levels of C. krusei isolated from immunocompromised patients and of the corresponding AMB-resistant mutant. By comparative succinyl-proteome analysis, we identified a total of 383 differentially expressed succinylated sites in with 344 sites in 134 proteins being upregulated in the AMB-resistant mutant, compared to 39 sites in 23 proteins in the wild-type strain. These differentially succinylated proteins were concentrated in the ribosome and cell wall. The critical pathways associated with these proteins included those involved in glycolysis, gluconeogenesis, the ribosome, and fructose and mannose metabolism. In particular, AMB resistance was found to be associated with enhanced ergosterol synthesis and aberrant amino acid and glucose metabolism. Analysis of whole-cell proteomes, confirmed by parallel reaction monitoring, showed that the key enzyme facilitating lysine acylation was significantly upregulated in the AMB-resistant strain. Our results suggest that lysine succinylation may play an indispensable role in the development of AMB resistance in C. krusei. Our study provides mechanistic insights into the development of drug resistance in fungi and can aid in efforts to stifle the emergence of AMB-resistant pathogenic fungi.
Insights
Candida krusei develops resistance to amphotericin B (AMB) through changes in lysine succinylation. Inhibiting histone acyltransferase activity may restore AMB sensitivity, offering new strategies against fungal drug resistance.
Area of Science:
- Mycology
- Molecular Biology
- Biochemistry
Background:
- Neutropenia increases risk of invasive fungal infections, particularly from Candida krusei.
- Candida krusei is a life-threatening pathogen exhibiting resistance to amphotericin B (AMB).
- Mechanisms underlying AMB resistance in C. krusei remain largely unknown.
Purpose of the Study:
- To investigate the molecular mechanisms of amphotericin B resistance in Candida krusei.
- To explore the role of post-translational modifications, specifically succinylation, in AMB resistance.
- To identify potential therapeutic targets for overcoming AMB resistance.
Main Methods:
- Comparative succinyl-proteome analysis of wild-type and AMB-resistant C. krusei strains.
- Western blot analysis to assess succinylation levels.
- Whole-cell proteome analysis and parallel reaction monitoring to quantify enzyme expression.
- Inhibition of histone acyltransferase activity to assess its effect on AMB sensitivity.
Main Results:
- Significant differences in protein succinylation were observed between wild-type and AMB-resistant strains, with 344 sites upregulated in the resistant mutant.
- Differentially succinylated proteins were enriched in ribosomal and cell wall components, impacting glycolysis and metabolism.
- AMB resistance correlated with increased ergosterol synthesis and altered amino acid/glucose metabolism.
- A key enzyme in lysine acylation was significantly upregulated in the AMB-resistant strain.
Conclusions:
- Lysine succinylation plays a critical role in the development of amphotericin B resistance in Candida krusei.
- Targeting lysine succinylation pathways may represent a novel strategy to combat AMB-resistant fungal infections.
- Understanding these mechanisms provides insights into fungal drug resistance and informs antifungal development.
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