Wu Ma’s research while affiliated with Hangzhou Normal University and other places

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Publications (2)


Growth and development of M. crassicauda under different humidity stress conditions. (A), (B) and (C) represent the survival rate of aphids in the first, second, and third generations, respectively. (D): developmental duration (in hours) of M. crassicauda in different generations. (E): number of offspring of M. crassicauda in different generations. Black, orange, and blue lines, columns, and boxes indicate treatments with 60%, 75%, and 90% relative humidity, respectively. The data are expressed as mean ± standard error. Kaplan–Meier survival curves were drawn using Prism software using the log rank test method (p < 0.05 level). Different letters indicate significant differences in aphids (Tukey test, p < 0.05 level).
Under long-term stable high-humidity stress, the trehalose content (A), glucose content (B), glycogen content (C), soluble trehalase enzyme activity (D), and membrane-bound trehalase enzyme activity (E) of different groups of M. crassicauda were measured. RH—relative humidity. The data are expressed as mean ± standard error from three independent measurements. Different letters indicate significant differences in the developmental period or reproductive capacity of aphids, and the differences are all intragenerational comparisons. Bars with different letters indicate significant differences (Tukey test, p < 0.05 level).
Relative expression levels of TRE1 (A–F) and TRE2 (G,H) genes under long-term stable high-humidity stress: TRE1, soluble trehalase; TRE2, membrane-bound trehalase. Expression levels were measured via quantitative real-time PCR, with 18S RNA as the internal control. Values are means ± standard error from three independent measurements. Different letters indicate significant differences according to Tukey’s test (p < 0.05).
Relative expression levels of TPS (A,B) and TPP (C) genes under long-term stable high-humidity stress. TPS—Trehalose-6-phosphate synthase; TPP—Trehalose-6-phosphate phosphatase. Expression levels were measured via quantitative real-time PCR, with 18S RNA as the internal control. Values are means ± standard error from three independent measurements. Different letters indicate significant differences according to Tukey’s test (p < 0.05).
Relative expression levels of trehalose-metabolism-related enzyme genes under 24 h emergency stress. TRE1 (A–F)—soluble trehalase; TRE2 (G,H)—membrane-bound trehalase; TPS (I,J)—Trehalose-6-phosphate synthase; TPP (K)—Trehalose-6-phosphate phosphatase. Expression levels were measured via quantitative real-time PCR, with 18S RNA as the internal control. Values are means ± standard error from three independent measurements. Different letters indicate significant differences according to Tukey’s test (p < 0.05).
The Participation of Trehalose Metabolism in Response to High-Humidity Stress in Megoura crassicauda (Hemiptera: Aphididae)
  • Article
  • Full-text available

December 2024

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8 Reads

Wu Ma

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Huiru Si

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Sijing Wan

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[...]

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Bin Tang

In the context of climate change, characterized by an increase in average precipitation, agricultural pests have demonstrated enhanced adaptability to high humidity and other challenging environmental conditions, thereby intensifying the need for effective prevention and control measures. Among these pests, Megoura crassicauda (Hemiptera: Aphididae) represents a significant threat to both crop yield and quality. The aim of this study was to investigate the physiological behavioral changes and the regulatory mechanisms of trehalose metabolism in M. crassicauda under conditions of high-humidity stress. Additionally, we sought to explore the survival strategies and water regulation mechanisms employed by this insect, with the goal of identifying new biological targets for its management. The findings indicated that, despite an increase in environmental humidity, there was no significant difference in the survival rate of M. crassicauda. However, a reduction in developmental duration and reproductive capacity was observed. Increased humidity correlated with elevated trehalose levels and decreased glycogen content. Notably, although the relative expression levels of trehalase (TRE) and Trehalose-6-phosphate synthase (TPS) were downregulated, Trehalose-6-phosphate phosphatase (TPP) expression was upregulated. These results suggest that high humidity environments significantly influence the growth, development, and trehalose metabolism of M. crassicauda. It appears that adaptations to high-humidity conditions in M. crassicauda are facilitated by modulations in the types and distribution of sugars within their bodies, achieved through alterations in the expression of genes associated with trehalose metabolism. In summary, the results of this study indicate that high humidity significantly affects the development and sugar metabolism of M. crassicauda. These changes may represent one of the potential mechanisms underlying its environmental adaptation and migration. This insight provides valuable assistance for predicting the occurrence and migration of the pest M. crassicauda.

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Regulation of Vicia faba L. Response and Its Effect on Megoura crassicauda Reproduction under Zinc Stress

June 2023

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121 Reads

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10 Citations

The heavy metal zinc (Zn) is known to be transmitted in the food chain; however, the effect of Zn stress on beans and herbivorous insects is largely unclear. This study aimed to investigate the resistance of broad bean plants to Zn stress and the consequent changes in their physiological and biochemical metabolism by simulating heavy metal pollution in soil. Simultaneously, the effects of aphid progeny treated with different Zn concentrations on the expression of carbohydrate and related genes were analyzed. The results showed that Zn had no effect on the germination rate of broad beans, but other effects mainly manifested as follows. (1) Chlorophyll content decreased. (2) The total soluble sugar and Zn content in stems and leaves increased with increasing Zn content. (3) The proline content first increased and then decreased with increasing Zn content. (4) The height of the seedlings indicates that low concentrations promote growth and high concentrations inhibit growth. In addition, only the first-generation fecundity decreased significantly when aphids fed on heavy metal broad beans. Continuous high Zn levels increase the trehalose content of aphid F1 and F2, while F3 decreases. These results can not only provide a theoretical basis for exploring the impact of soil heavy metal pollution on ecosystems but also preliminarily evaluate the possibility of broad beans as a means of pollution remediation.

Citations (1)


... It is speculated that this is because plant cells secrete a large amount of stress-protective substances to alleviate heavy metal damage . However, the accumulation of proline under Zn stress was not observed (Wan et al., 2023), and most reports on the role of proline are not consistent, highlighting the need for further study (Tanwir et al., 2021). ...

Reference:

Effect of Cd–Zn compound contamination on the physiological response of broad bean and aphids
Regulation of Vicia faba L. Response and Its Effect on Megoura crassicauda Reproduction under Zinc Stress