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Pharmacologic Induction of Epidermal Melanin and Protection Against Sunburn in a Humanized Mouse Model
Published on: September 7, 2013
Interactions between Melanin Enzymes and Their Atypical Recruitment to the Secretory Pathway by Palmitoylation
Srijana Upadhyay1, Xinping Xu1, Xiaorong Lin2
1Department of Biology, Texas A&M University, College Station, Texas, USA.
Abstract:
Melanins are biopolymers that confer coloration and protection to the host organism against biotic or abiotic insults. The level of protection offered by melanin depends on its biosynthesis and its subcellular localization. Previously, we discovered that Aspergillus fumigatus compartmentalizes melanization in endosomes by recruiting all melanin enzymes to the secretory pathway. Surprisingly, although two laccases involved in the late steps of melanization are conventional secretory proteins, the four enzymes involved in the early steps of melanization lack a signal peptide or a transmembrane domain and are thus considered "atypical" secretory proteins. In this work, we found interactions among melanin enzymes and all melanin enzymes formed protein complexes. Surprisingly, the formation of protein complexes by melanin enzymes was not critical for their trafficking to the endosomal system. By palmitoylation profiling and biochemical analyses, we discovered that all four early melanin enzymes were strongly palmitoylated during conidiation. However, only the polyketide synthase (PKS) Alb1 was strongly palmitoylated during both vegetative hyphal growth and conidiation when constitutively expressed alone. This posttranslational lipid modification correlates the endosomal localization of all early melanin enzymes. Intriguingly, bioinformatic analyses predict that palmitoylation is a common mechanism for potential membrane association of polyketide synthases (PKSs) and nonribosomal peptide synthetases (NRPSs) in A. fumigatus Our findings indicate that protein-protein interactions facilitate melanization by metabolic channeling, while posttranslational lipid modifications help recruit the atypical enzymes to the secretory pathway, which is critical for compartmentalization of secondary metabolism.
Importance:
Subcellular compartmentalization is increasingly recognized as an important aspect of fungal secondary metabolism. It facilitates sequential enzymatic reactions, provides mobility for enzymes and metabolites, and offers protection against self-toxification. However, how compartmentalization is achieved remains unclear given that the majority of enzymes encoded by secondary metabolism gene clusters are predicted to be cytosolic proteins. Through studying melanization in Aspergillus, we previously found that all enzymes involved in the early steps of melanization are atypical secretory proteins. Here, we discovered physical interactions among melanin enzymes. However, it was the posttranslational palmitoylation rather than the physical interaction that was responsible for their recruitment to the secretory pathway. Intriguingly, palmitoylation is likely a common mechanism for potential membrane association of polyketide synthases (PKSs) and nonribosomal peptide synthetases (NRPSs) in A. fumigatus Collectively, our findings suggest that posttranslational lipid modification helps direct secondary metabolism to defined organelles for biosynthesis and trafficking.
Insights
Posttranslational lipid modification, specifically palmitoylation, directs atypical secretory enzymes to the secretory pathway for fungal melanin biosynthesis. This mechanism is crucial for compartmentalizing secondary metabolism in Aspergillus fumigatus.
Area of Science:
- Mycology
- Biochemistry
- Cell Biology
Background:
- Melanins provide essential protection against environmental insults.
- Fungal secondary metabolism compartmentalization is vital but poorly understood.
- Atypical secretory proteins in Aspergillus fumigatus melanization lack conventional targeting signals.
Purpose of the Study:
- Investigate the mechanism of atypical secretory protein recruitment to the secretory pathway.
- Determine the role of protein-protein interactions and posttranslational modifications in melanization.
- Elucidate the role of palmitoylation in targeting melanin enzymes in Aspergillus fumigatus.
Main Methods:
- Palmitoylation profiling
- Biochemical analyses
- Bioinformatic analyses
- Protein complex formation studies
Main Results:
- All four early melanin enzymes are strongly palmitoylated during conidiation.
- Palmitoylation, not protein complex formation, is critical for recruiting atypical enzymes to the secretory pathway.
- Palmitoylation is a predicted common mechanism for membrane association of PKSs and NRPSs in A. fumigatus.
Conclusions:
- Posttranslational lipid modification (palmitoylation) is key for recruiting atypical enzymes to the secretory pathway.
- This lipid modification is essential for the compartmentalization of melanin biosynthesis in Aspergillus.
- Palmitoylation likely serves as a general mechanism for targeting fungal secondary metabolism enzymes to organelles.
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