Combining Genome-Wide Gene Expression Analysis (RNA-seq) and a Gene Editing Platform (CRISPR-Cas9) to Uncover the

Fatmah M Alqahtani1, Scott T Handy2, Caleb L Sutton1

  • 1Department of Biology, Middle Tennessee State University, Murfreesboro, TN, United States.

Insights

Novel aurone compounds SH1009 and SH9051 show antifungal activity against Candida albicans by disrupting key metabolic pathways and inducing oxidative stress. SH1009 targets trehalose biosynthesis, while SH9051 affects sulfur amino acid metabolism.

Area of Science:

  • Mycology
  • Medicinal Chemistry
  • Molecular Biology

Background:

  • Candida albicans is a major cause of bloodstream infections with high mortality.
  • Limited antifungal treatments exist due to the eukaryotic nature of fungi.
  • Aurones SH1009 and SH9051 are novel synthetic compounds with anti-Candida activity.

Purpose of the Study:

  • To elucidate the molecular mechanisms and cellular targets of aurones SH1009 and SH9051 in Candida albicans.
  • To identify how structural differences in aurones contribute to their antifungal effects.

Main Methods:

  • Genome-wide transcriptional analysis of Candida albicans treated with SH1009 and SH9051.
  • Gene deletion studies, specifically targeting the Tye7p transcription factor.
  • Measurement of metabolic byproducts, such as sulfite, and reactive oxygen species (ROS) levels.

Main Results:

  • SH1009 uniquely repressed trehalose metabolism; deletion of Tye7p conferred resistance.
  • SH9051 uniquely repressed sulfur amino acid metabolism, leading to sulfite overproduction.
  • Both aurones induced RNA processing and ribosomal cleavage, indicating oxidative stress.
  • The phenyl aurone structure contributed to pro-oxidative activity via ferric ion reduction.

Conclusions:

  • Aurone SH1009 has a selective molecular mechanism targeting trehalose biosynthesis.
  • Aurone SH9051 impacts sulfur amino acid metabolism and exhibits pro-oxidative properties.
  • Aurone functional groups dictate diverse cellular effects and antifungal mechanisms.