4.7 Article

Desiccation-induced fibrous condensation of CAHS protein from an anhydrobiotic tardigrade

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SCIENTIFIC REPORTS
卷 11, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41598-021-00724-6

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资金

  1. JSPS KAKENHI [JP19K07041, JP17H03620, JP21H05279]
  2. JST CREST [JPMJCR17N5]
  3. Nanotechnology Platform Program (Molecule and Material Synthesis) of the Ministry of Education, Culture, Sports, Science, and Technology (MEXT), Japan
  4. Yamagata Prefectural Government
  5. IMS-IIPA internship program
  6. ENSCP internship program
  7. Joint Research of the Exploratory Research Center on Life and Living Systems (ExCELLS) [18-207, 19-208, 19-501, 18-101]
  8. Instrument Center of IMS
  9. EM facility in NIPS
  10. Functional Genomics Facility of the NIBB Core Research Facilities

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The study found that the anhydrobiotic protein CAHS1 self-assembles to form a hydrogel and condensates under desiccation conditions, suggesting its crucial role in the desiccation tolerance of tardigrades.
Anhydrobiosis, one of the most extensively studied forms of cryptobiosis, is induced in certain organisms as a response to desiccation. Anhydrobiotic species has been hypothesized to produce substances that can protect their biological components and/or cell membranes without water. In extremotolerant tardigrades, highly hydrophilic and heat-soluble protein families, cytosolic abundant heat-soluble (CAHS) proteins, have been identified, which are postulated to be integral parts of the tardigrades' response to desiccation. In this study, to elucidate these protein functions, we performed in vitro and in vivo characterizations of the reversible self-assembling property of CAHS1 protein, a major isoform of CAHS proteins from Ramazzottius varieornatus, using a series of spectroscopic and microscopic techniques. We found that CAHS1 proteins homo-oligomerized via the C-terminal alpha-helical region and formed a hydrogel as their concentration increased. We also demonstrated that the overexpressed CAHS1 proteins formed condensates under desiccation-mimicking conditions. These data strongly suggested that, upon drying, the CAHS1 proteins form oligomers and eventually underwent sol-gel transition in tardigrade cytosols. Thus, it is proposed that the CAHS1 proteins form the cytosolic fibrous condensates, which presumably have variable mechanisms for the desiccation tolerance of tardigrades. These findings provide insights into molecular strategies of organisms to adapt to extreme environments.

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