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Identification and characterization of a cathepsin B-like protease in Physarum sclerotium
1Department of Biology, Faculty of Education, Shiga University, Hiratsu 2-5-1, Otsu, Shiga 520-0862, Japan. furuhasi@sue.shiga-u.ac.jp
Abstract:
In response to dry stress the plasmodium of a true slime mold, Physarum polycephalum, undergoes formation of sclerotium, which is a dormant body resistant to desiccation. The sclerotium can germinate within several hours after addition of water, followed by generation of the plasmodium. In the early phase of the germination many enzymes and other proteins of the sclerotium are required for formation of the plasmodium. As dehydration of proteins often leads to destruction of their structure or reduction in their activity, it is important to elucidate whether the dehydrated enzymes are present as the intact in the sclerotium. In this study three peaks of protease activity were detected with anion exchange column chromatography of the extract from the sclerotia. From among them, an acid protease was purified to homogeneity by gel filtration column chromatography, hydroxyapatite column chromatography, acid treatment, and cation-exchange column chromatography. Treatment of the protease fractions with pH 4.0 resulted in approximately 20-fold activation of the activity. The purified protease was a monomer with a molecular mass of 35 kDa. The optimum pH and temperature were 6.3 and 40 degrees C, respectively. Beta-casein, histone H1, and H2B were degraded by the 35 kDa protease, but human hemoglobin and human serum albumin were very poor substrates. In addition, the enzyme was sensitive to the cysteine protease inhibitors chymostatin, E-64, and leupeptin. These results indicate that, in the sclerotium, a premature form of a cathepsin B-like protease remains non-denatured under dehydrated conditions.
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.