Survival potential of the anhydrobiotic nematode Panagrolaimus superbus submitted to extreme abiotic stresses
Most organisms die when confronting extreme desiccation regimes, as observed in severe and prolonged droughts. However, some organisms are able to withstand such conditions by entering into a unique state of true suspended animation known as anhydrobiosis. Notably, anhydrobiosis also renders the...
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doaj-f639ef5698df44aab08ebbe5136249782020-11-25T03:52:15ZengUniversity of Modena and Reggio EmiliaInvertebrate Survival Journal1824-307X2017-04-01148593Survival potential of the anhydrobiotic nematode Panagrolaimus superbus submitted to extreme abiotic stressesTAJ de Souza0GJ de Carli1TC Pereira2Department of Genetics, FMRP, University of São Paulo, BrazilDepartment of Genetics, FMRP, University of São Paulo, BrazilDepartment of Genetics, FMRP, University of São Paulo, Brazil; Department of Biology, FFCLRP, University of São Paulo, BrazilMost organisms die when confronting extreme desiccation regimes, as observed in severe and prolonged droughts. However, some organisms are able to withstand such conditions by entering into a unique state of true suspended animation known as anhydrobiosis. Notably, anhydrobiosis also renders the organism tolerant to several other physical stresses such as extremes of temperature, pressure and radiation. Anhydrobiosis-based technologies are promising strategies to preserve crop plants as well as organs for transplant. In order to understand the relation between anhydrobiosis and tolerance to physical stresses, we submitted the anhydrobiotic nematode Panagrolaimus superbus to diverse abiotic stresses when alive (hydrated) and in anhydrobiosis (desiccated). Remarkably, our data revealed that hydrated P. superbus naturally displays considerable tolerance to ultra-low temperature (-196 °C), X-radiation (500 Gy) and ultracentrifugation (400,000xg) in the tested conditions. More importantly, anhydrobiosis enhances nematode tolerance to ultra-low and high temperatures (+100 °C), but not to X-radiation or ultracentrifugation. These findings may help explain the successful wide distribution of P. superbus on Earth, since extremes of temperature are the most common stresses confronted by this species. Finally, due to its intrinsic survival potential (hydrated or desiccated), our data evidence the potential of P. superbus as a model in astrobiology.http://www.isj.unimo.it/articoli/ISJ462.pdfanhydrobiosis; desiccation tolerance; X-radiation; extreme temperatures; ultracentrifugation |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
TAJ de Souza GJ de Carli TC Pereira |
spellingShingle |
TAJ de Souza GJ de Carli TC Pereira Survival potential of the anhydrobiotic nematode Panagrolaimus superbus submitted to extreme abiotic stresses Invertebrate Survival Journal anhydrobiosis; desiccation tolerance; X-radiation; extreme temperatures; ultracentrifugation |
author_facet |
TAJ de Souza GJ de Carli TC Pereira |
author_sort |
TAJ de Souza |
title |
Survival potential of the anhydrobiotic nematode Panagrolaimus superbus submitted to extreme abiotic stresses |
title_short |
Survival potential of the anhydrobiotic nematode Panagrolaimus superbus submitted to extreme abiotic stresses |
title_full |
Survival potential of the anhydrobiotic nematode Panagrolaimus superbus submitted to extreme abiotic stresses |
title_fullStr |
Survival potential of the anhydrobiotic nematode Panagrolaimus superbus submitted to extreme abiotic stresses |
title_full_unstemmed |
Survival potential of the anhydrobiotic nematode Panagrolaimus superbus submitted to extreme abiotic stresses |
title_sort |
survival potential of the anhydrobiotic nematode panagrolaimus superbus submitted to extreme abiotic stresses |
publisher |
University of Modena and Reggio Emilia |
series |
Invertebrate Survival Journal |
issn |
1824-307X |
publishDate |
2017-04-01 |
description |
Most organisms die when confronting extreme desiccation regimes, as observed in severe and
prolonged droughts. However, some organisms are able to withstand such conditions by entering into
a unique state of true suspended animation known as anhydrobiosis. Notably, anhydrobiosis also
renders the organism tolerant to several other physical stresses such as extremes of temperature,
pressure and radiation. Anhydrobiosis-based technologies are promising strategies to preserve crop
plants as well as organs for transplant. In order to understand the relation between anhydrobiosis and
tolerance to physical stresses, we submitted the anhydrobiotic nematode Panagrolaimus superbus to
diverse abiotic stresses when alive (hydrated) and in anhydrobiosis (desiccated). Remarkably, our
data revealed that hydrated P. superbus naturally displays considerable tolerance to ultra-low
temperature (-196 °C), X-radiation (500 Gy) and ultracentrifugation (400,000xg) in the tested
conditions. More importantly, anhydrobiosis enhances nematode tolerance to ultra-low and high
temperatures (+100 °C), but not to X-radiation or ultracentrifugation. These findings may help explain
the successful wide distribution of P. superbus on Earth, since extremes of temperature are the most
common stresses confronted by this species. Finally, due to its intrinsic survival potential (hydrated or
desiccated), our data evidence the potential of P. superbus as a model in astrobiology. |
topic |
anhydrobiosis; desiccation tolerance; X-radiation; extreme temperatures; ultracentrifugation |
url |
http://www.isj.unimo.it/articoli/ISJ462.pdf |
work_keys_str_mv |
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