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Insect cross-tolerance to freezing and drought stress: role of metabolic rearrangement.
Hula, Petr; Moos, Martin; Des Marteaux, Lauren; Simek, Petr; Kostál, Vladimír.
Affiliation
  • Hula P; Biology Centre, Czech Academy of Sciences, Institute of Entomology, Ceské Budejovice, Czech Republic.
  • Moos M; Faculty of Science, University of South Bohemia, Ceské Budejovice, Czech Republic.
  • Des Marteaux L; Biology Centre, Czech Academy of Sciences, Institute of Entomology, Ceské Budejovice, Czech Republic.
  • Simek P; Biology Centre, Czech Academy of Sciences, Institute of Entomology, Ceské Budejovice, Czech Republic.
  • Kostál V; Biology Centre, Czech Academy of Sciences, Institute of Entomology, Ceské Budejovice, Czech Republic.
Proc Biol Sci ; 289(1976): 20220308, 2022 06 08.
Article in En | MEDLINE | ID: mdl-35673862
ABSTRACT
The accumulation of trehalose has been suggested as a mechanism underlying insect cross-tolerance to cold/freezing and drought. Here we show that exposing diapausing larvae of the drosophilid fly, Chymomyza costata to dry conditions significantly stimulates their freeze tolerance. It does not, however, improve their tolerance to desiccation, nor does it significantly affect trehalose concentrations. Next, we use metabolomics to compare the complex alterations to intermediary metabolism pathways in response to three environmental factors with different ecological meanings environmental drought (an environmental stressor causing mortality), decreasing ambient temperatures (an acclimation stimulus for improvement of cold hardiness), and short days (an environmental signal inducing diapause). We show that all three factors trigger qualitatively similar metabolic rearrangement and a similar phenotypic outcome-improved larval freeze tolerance. The similarities in metabolic response include (but are not restricted to) the accumulation of typical compatible solutes and the accumulation of energy-rich molecules (phosphagens). Based on these results, we suggest that transition to metabolic suppression (a state in which chemical energy demand is relatively low but need for stabilization of macromolecules is high) represents a common axis of metabolic pathway reorganization towards accumulation of non-toxic cytoprotective compounds, which in turn stimulates larval freeze tolerance.
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Full text: 1 Database: MEDLINE Main subject: Drosophilidae / Droughts Limits: Animals Language: En Year: 2022 Type: Article

Full text: 1 Database: MEDLINE Main subject: Drosophilidae / Droughts Limits: Animals Language: En Year: 2022 Type: Article