Unveiling winter survival strategies: physiological and metabolic responses to cold stress of Monochamus saltuarius larvae during overwintering

Author:

Shi Fengming1ORCID,Xing Yu1,Niu Yiming1,Cheng Ling1,Xu Yabei1,Li Xinyu1,Ren Lili1,Zong Shixiang1,Tao Jing2

Affiliation:

1. State Key Laboratory to Efficient Production of Forest Resources Beijing Forestry University Beijing China

2. Beijing Key Laboratory for Forest Pest Control Beijing Forestry University Beijing China

Abstract

AbstractBACKGROUNDMonochamus saltuarius is a destructive trunk‐borer of pine forest and an effective dispersal vector for pinewood nematode (PWN), a causative agent of pine wilt disease (PWD), which leads to major ecological disasters. Cold winter temperatures determine insect survival and distribution. However, little is known about the cold tolerance and potential physiological mechanisms of M. saltuarius.RESULTSWe demonstrated that dead Pinus koraiensis trunks do not provide larvae with insulation. The M. saltuarius larvae are freeze‐tolerant species. Unlike most other freeze‐tolerant insects, they can actively freeze extracellular fluid at higher subzero temperatures by increasing their supercooling points. The main energy sources for larvae overwintering are glycogen and the mid‐late switch to lipid. The water balance showed a decrease in free and an increase in bound water of small magnitude. Cold stress promoted lipid peroxidation, thus activating the antioxidant system to prevent cold‐induced oxidative damage. We found eight main pathways linked to cold stress and 39 important metabolites, ten of which are cryoprotectants, including maltose, UDP‐glucose, d‐fructose 6P, galactinol, dulcitol, inositol, sorbitol, l‐methionine, sarcosine, and d‐proline. The M. saltuarius larvae engage in a dual respiration process involving both anaerobic and aerobic pathways when their bodily fluids freeze. Cysteine and methionine metabolism, as well as alanine, aspartate, and glutamate metabolism, are the most important pathways linked to antioxidation and energy production.CONCLUSIONSThe implications of our findings may help strengthen and supplement the management strategies for monitoring, quarantine, and control of this pest, thereby contributing to controlling the further spread of PWD. © 2024 Society of Chemical Industry.

Publisher

Wiley

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