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.

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.

Related Concept Videos

Diversity of Archaea IV01:29

Diversity of Archaea IV

Hyperthermophilic archaea are a group of extremophiles thriving at temperatures above 80°C, often in hydrothermal vents and volcanic soils where conditions surpass the boiling point of water. At such temperatures, proteins, membranes, and DNA in most organisms degrade, but hyperthermophiles have evolved remarkable adaptations to maintain stability and function.Unique Cellular FeaturesHyperthermophilic membranes are composed of a monolayer of biphytanyl tetraether lipids, which resist thermal...
Diversity of Archaea III01:27

Diversity of Archaea III

Crenarchaeota, a prominent phylum of Archaea, is remarkable for its ability to thrive in extreme environments characterized by high temperatures and acidity. These microorganisms inhabit sulfuric hot springs, volcanic systems, and submarine hydrothermal vents, where temperatures often exceed 100°C. The unique adaptations of Crenarchaeota not only allow survival under such extreme conditions but also provide insights into the mechanisms of life in primordial Earth-like environments.Morphological...
Archaeal Cell Wall01:29

Archaeal Cell Wall

Archaeal cell walls are structurally and compositionally distinct from their bacterial counterparts, lacking the characteristic peptidoglycan layer found in most bacteria. Instead, archaeal cell walls exhibit remarkable diversity, utilizing materials such as pseudomurein, polysaccharides, and proteins to construct their protective outer layers. This structural flexibility is closely tied to archaea's ecological adaptability.S-Layers: The Common Archaeal Cell WallThe S-layer is the most...
Hyperthermophilic Bacteria01:21

Hyperthermophilic Bacteria

Domain Bacteria includes some unique hyperthermophilic species. They exhibit remarkable adaptations that enable survival in extreme environments.Thermotoga species are rod-shaped, gram-negative, non-sporulating hyperthermophiles that form a sheath-like envelope called a toga. They ferment sugars or starch, producing lactate, acetate, CO₂, and H₂, and can also grow via anaerobic respiration using H₂ and ferric iron. Found in hot springs and hydrothermal vents, over 20% of their genes show strong...
Surface Appendages of Archaea01:23

Surface Appendages of Archaea

Archaeal surface appendages are highly specialized structures essential for environmental adaptation, encompassing roles in adhesion, biofilm formation, and motility. Among these appendages, pili and archaella stand out for their distinct morphologies and functionalities, enabling archaea to thrive in diverse and often extreme environments.Pili: Adhesion and Biofilm FormationPili are filamentous structures assembled from pilin protein subunits, primarily contributing to adhesion and biofilm...
Viruses of Archaea01:29

Viruses of Archaea

Archaeal viruses play a crucial role in the ecosystems of extremophilic archaea, particularly those belonging to the phyla Euryarchaeota and Crenarchaeota. By shaping host evolution and facilitating gene transfer, these viruses influence microbial communities and contribute to genetic diversity in extreme environments. The archaea they infect thrive in acidic hot springs and hydrothermal vents characterized by high temperatures and low pH. Archaeal viruses exhibit remarkable structural...