Scientia Agricultura Sinica ›› 2026, Vol. 59 ›› Issue (15): 3340-3351.doi: 10.3864/j.issn.0578-1752.2026.15.008

• PLANT PROTECTION • Previous Articles     Next Articles

Sexual Dimorphism in Phototactic Behavior and Dynamic Transcriptional Regulation of Opsins in Myllocerinus aurolineatus

FU NanXia(), YUAN JinKang, LUO ZongXiu, LI ZhaoQun, BIAN Lei, XIU ChunLi, ZHOU Li, CHEN ZongMao, CAI XiaoMing()   

  1. Tea Research Institute, Chinese Academy of Agricultural Sciences/Key Laboratory of Biology, Genetics and Breeding of Special Economic Animals and Plants, Ministry of Agriculture and Rural Affairs, Hangzhou 310008
  • Received:2026-03-20 Accepted:2026-04-25 Online:2026-08-01 Published:2026-08-03
  • Contact: CAI XiaoMing

Abstract:

【Background】Phototaxis is widely utilized to monitor and control pest populations in agricultural practices. Tea weevil (Myllocerinus aurolineatus) is a server regional outbreak tea pest in Chinese tea plantations, and its control currently relies heavily on chemical pesticides. Previous studies have shown that adults of M. aurolineatus exhibit strong phototaxis at night.【Objective】To lay basis for developing light-based management strategies, this study clarified the effects of different light spectra on the phototactic behavior of male and female M. aurolineatus, and further revealed the regulatory effects of different light stimuli on the transcriptional expression of their opsin genes.【Method】Firstly, to reveal the phototactic characteristic of this pest, phototaxis of female and male adult M. aurolineatus to eight types of monochromatic light was tested through behavioral choice experiments. Subsequently, bioinformatic analysis was performed to identify opsin genes in M. aurolineatus, and a phylogenetic tree of identified opsins along with those from other insect species was constructed using the neighbor-joining method. Finally, the spatiotemporal expression profiles of opsin genes were examined across different developmental stages, under circadian rhythm, and various light stimuli using quantitative real-time PCR (RT-qPCR).【Result】Behavioral assays revealed that violet light elicited the highest attractiveness to males and was the second preferred wavelength for females, surpassed only by red light. In contrast, the blue light was the least attractive to both sexes. Moreover, the phototaxis rates of males to yellow, green and blue light were significantly higher than those of females. Bioinformatic analysis showed M. aurolineatus contains only two opsin genes, a long-wavelength-sensitive opsin (Ma-LW) and an ultraviolet-sensitive opsin (Ma-UV); no blue-light-sensitive opsin gene was detected, which was in accordance with the lowest phototactic rate to blue light observed in behavioral assays. Spatiotemporal expression profiling showed that both Ma-LW and Ma-UV were highly expressed in adults, with no significant difference throughout the light-dark cycle. Furthermore, dark adaptation up-regulated both Ma-LW and Ma-UV expression in M. aurolineatus adults, while subsequent short-term light stimuli (red, blue and violet) significantly reversed this up-regulation. Among these, red light exerted significantly stronger suppressive effect on Ma-LW expressional abundance than blue or violet light, while no significant difference in suppressive effect on Ma-UV expression was detected among the three lights.【Conclusion】Sexual dimorphism is evident in the phototactic behavior of adult M. aurolineatus, and exposure to different light spectra can down-regulate opsin gene transcription in dark-adapted M. aurolineatus, these findings contribute to the development of light-based M. aurolineatus management strategies.

Key words: tea weevil (Myllocerinus aurolineatus), phototaxis, spectral sensitivity, long-wavelength-sensitive opsin (Ma-LW), ultraviolet-sensitive opsin (Ma-UV)

Table 1

Spectral information of LEDs used to test the phototactic behavior of adult M. aurolineatus"

LED光源LED light 波长范围Wavelength range (nm)
红光Red light 620-625
橙光Orange light 600-610
黄光Yellow light 585-590
黄绿光Yellowish green light 569-574
绿光Green light 520-525
冰蓝光Icy blue light 480-485
蓝光Blue light 460-465
紫光Violet light 395-400

Fig. 1

Schematic diagram of the device for observing phototactic behavior"

Table 2

Primer sequences"

引物名称Primer name 序列Sequence (5'-3')
Ma-LW_F ATGTCTGTGATGGGAGATC
Ma-LW_R TTATGCTGCTGGTTTGTC
Ma-UV_F ATGAGTTTGCAAAACTGGAC
Ma-UV_R TTATGTAGCGACTGAAGGTG
Ma-LW_Fq TCACCAGAGATGTTGTCAGTCG
Ma-LW_Rq TTTTCGTGTGCAGCTACAGC
Ma-UV_Fq ATGGGTTTGCAACTGGACAC
Ma-UV_Rq ACGGCCTTGTTATGGTTGTG
EF1a_F ATTACTGGCACGTCTCAAGC
EF1a_R TCGCGTTTGCCCATTCTTTG
Actin_F AAACGAAAGGTTCCGTTGCC
Actin_R ACTGTGTTGGCGTACAAGTC

Fig. 2

Phototactic responses of M. aurolineatus adults to different LED lights In figure A, B, M. aurolineatus numbers in phototactic and photophobic chambers were analyzed with chi-square test for assessing deviation from random distribution (*** P<0.001), numbers in parentheses indicated the count of M. aurolineatus that made a choice and the total number tested, respectively; In figure C, data were mean±standard deviation (SD), the effects of wavelength, sex and their interaction on phototactic rates were analyzed using GLMM with binary distribution, followed by Holm’s sequential Bonferroni adjusted pairwise comparisons. Different uppercases (male) and lowercases (female) above columns indicated significant differences among wavelengths within the same sex (P<0.05). Asterisks denoted significant differences between sexes under the same wavelength (* P<0.05, *** P<0.001)"

Fig. 3

Phylogenetic relationship of M. aurolineatus opsins with other known insect opsins The tree was constructed using amino acid sequences with the neighbor-joining method. GenBank accession numbers were shown in parentheses. Bootstrap support values were provided at node"

Fig. 4

Expression pattern of M. aurolineatus opsin genes across developmental stages and diurnal rhythm Data were mean±SD (n=3). Different lowercases indicated significant differences of relative mRNA abundance of either Ma-LW or Ma-UV among development stages (P<0.05, one-way ANOVA, Tukey’s HSD test). Asterisks indicated significant differences of opsins between sexes at ZT0 and ZT16 (* P <0.05, Student’s T-test). ZT: zeitgeber time. The black-white rectangle bars indicated the light availability, white (light on, from ZT0 to ZT16), and black (light off, from ZT16 to ZT0)"

Fig. 5

Effects of different light stimulation on opsin gene expression in M. aurolineatus Data were mean±SD (n=3). Differences in relative abundance were analyzed by one-way ANOVA, followed by a Tukey’s HSD test. Different lowercases on the columns indicated significant differences (P<0.05)"

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