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Identification and characterization of a cathepsin B-like protease in Physarum sclerotium

Kiyoshi Furuhashi1

  • 1Department of Biology, Faculty of Education, Shiga University, Hiratsu 2-5-1, Otsu, Shiga 520-0862, Japan. furuhasi@sue.shiga-u.ac.jp

Insights

Slime mold sclerotia protect enzymes during dehydration. A cathepsin B-like protease remains active in dormant slime mold sclerotia, ensuring plasmodium regeneration upon rehydration.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Cell Biology

Background:

  • True slime mold (Physarum polycephalum) forms resistant sclerotia under dry stress.
  • Sclerotia germinate into plasmodia upon rehydration, requiring enzymes.
  • Protein dehydration can cause structural damage and activity loss.

Purpose of the Study:

  • To investigate the integrity and activity of dehydrated enzymes within slime mold sclerotia.
  • To identify and characterize proteases present in Physarum polycephalum sclerotia.

Main Methods:

  • Anion exchange and gel filtration column chromatography for protease separation.
  • Hydroxyapatite and cation-exchange chromatography for purification.
  • Enzyme activity assays, molecular mass determination, and inhibitor sensitivity tests.

Main Results:

  • Three protease activity peaks were detected in sclerotia extracts.
  • An acid protease (35 kDa monomer) was purified, showing optimal activity at pH 6.3 and 40°C.
  • The purified protease degraded beta-casein and histones, was inhibited by cysteine protease inhibitors, and showed 20-fold activation at pH 4.0.

Conclusions:

  • A cathepsin B-like protease in Physarum polycephalum sclerotia remains non-denatured and active under dehydrated conditions.
  • This protease likely plays a crucial role in the rapid regeneration of the plasmodium after rehydration.
  • The findings highlight a mechanism for enzyme preservation during dormancy in eukaryotes.

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