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Crystal Structure of PLD From Arcanobacterium haemolyticum Identifies a Novel Class IIa-α Variant With Unusual
Carolina Gismene1, Dayane S Alvares2, Daniel Z Doherty3
1Multiuser Center for Biomolecular Innovation, São Paulo State University (UNESP), São José do Rio Preto, SP, Brazil; Research Institute, Children's Hospital of Philadelphia (CHOP), Philadelphia, PA, United States.
Abstract:
Arcanobacterium haemolyticum, an emerging human pathogen, expresses phospholipase D (PLDAH), a multifunctional virulence factor capable of cleaving sphingomyelin and lysophospholipids from plasma membranes, in addition to promoting host cell adhesion and necrosis. Here, we report the first crystal structure of PLDAH, determined at 2.45 Å resolution, which reveals a canonical (α/β)8 TIM-barrel fold typical of glycerophosphodiester phosphodiesterase (GDPD)-like PLD enzymes, but with distinct structural features. PLDAH contains two disulfide bonds arranged in a unique pattern not observed in homologous brown spider PLDs, defining a new structural variant within the GDPD-like PLD family, designated class IIa-α. Comparative structural analysis with PLD from Loxosceles intermedia (PLDLI) revealed differences in loop architecture and local amino acid composition in the vicinity of the active site, including point substitutions that modulate cavity volume and flexibility. Despite exhibiting a melting temperature (Tm) between 45 and 51 °C, PLDAH retained residual enzymatic activity up to 95 °C, indicating exceptional thermostability among GDPD-like PLDs. Molecular dynamics simulations showed that increasing temperature selectively enhanced the flexibility of specific loops (C and G) without perturbing the catalytic core, suggesting that localized structural adaptability contributes to thermal resilience. These findings establish PLDAH as a structurally distinct GDPD-like sphingomyelinase D enzyme and provide insights into the molecular features underlying its multifunctional activity and thermostability.
Insights
Arcanobacterium haemolyticum phospholipase D (PLDAH) has a unique structure and exceptional thermostability. This study reveals its crystal structure, identifying a new class IIa-α variant with distinct features contributing to its virulence and thermal resilience.
Area of Science:
- Structural biology
- Microbiology
- Biochemistry
Background:
- Arcanobacterium haemolyticum is an emerging pathogen expressing phospholipase D (PLDAH).
- PLDAH is a multifunctional virulence factor involved in host cell adhesion, necrosis, and membrane lipid cleavage.
- Understanding PLDAH structure and function is crucial for its role in pathogenesis.
Purpose of the Study:
- To determine the first crystal structure of PLDAH.
- To analyze its structural features and compare them to homologous enzymes.
- To investigate the molecular basis of its thermostability and enzymatic activity.
Main Methods:
- X-ray crystallography at 2.45 Å resolution.
- Comparative structural analysis with Loxosceles intermedia PLD (PLDLI).
- Molecular dynamics simulations at varying temperatures.
Main Results:
- The crystal structure reveals a canonical (α/β)₈ TIM-barrel fold, classifying PLDAH as a new GDPD-like PLD variant (class IIa-α).
- Distinct structural features include a unique disulfide bond pattern and differences in active site loop architecture compared to PLDLI.
- PLDAH exhibits exceptional thermostability, retaining activity up to 95 °C despite a melting temperature of 45-51 °C, attributed to localized loop flexibility.
Conclusions:
- PLDAH represents a structurally distinct sphingomyelinase D enzyme within the GDPD-like family.
- Its unique structural adaptations contribute to its multifunctional virulence and remarkable thermostability.
- This study provides insights into the molecular mechanisms underlying PLDAH's pathogenicity and resilience.
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