翅嗡嗡声作为一种机制,用于产生车轴虫(半翅目:车轴虫科)的振动信号。

IF 2.9 1区 农林科学 Q1 ENTOMOLOGY
Insect Science Pub Date : 2024-10-01 Epub Date: 2024-01-24 DOI:10.1111/1744-7917.13322
Jernej Polajnar, Elizaveta Kvinikadze, Adam W Harley, Igor Malenovský
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引用次数: 0

摘要

蚜蝇(Psyllids),或称跳跃植虱(半翅目:Sternorrhyncha: Psylloidea),是一类小型植食性昆虫,包括全球农作物的一些重要害虫。木虱通过寄主植物传播的振动进行性交流,这种振动在配偶识别和定位方面起着重要作用。这些信号具有物种特异性,可用于帮助牛皮蝇分类和害虫防治。关于产生这些振动的机制,已经提出了几种假说,其中最受关注的是绞动,即前翅部和胸部之间的摩擦。我们利用激光测振仪和高速视频记录对欧洲梨木虱 Cacopsylla pyrisuga(Foerster,1848 年)的振动交流进行了研究,以直接观察与信号产生相关的运动。我们首次描述了该物种信号和信号发射的基本特征。根据使用点跟踪算法对视频记录进行的观察和分析,以及与激光测振仪记录的比较,我们认为C. pyrisuga雄虫主要通过翅膀嗡嗡声(即不涉及翅膀和胸部之间摩擦的颤动)产生振动。将观察到的信号特性与以前公布的数据进行比较,我们预测翅膀嗡嗡声是所有振动拟尾柱虫产生信号的主要机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Wing buzzing as a mechanism for generating vibrational signals in psyllids (Hemiptera: Psylloidea).

Wing buzzing as a mechanism for generating vibrational signals in psyllids (Hemiptera: Psylloidea).

Psyllids, or jumping plant lice (Hemiptera: Sternorrhyncha: Psylloidea), are a group of small phytophagous insects that include some important pests of crops worldwide. Sexual communication of psyllids occurs via vibrations transmitted through host plants, which play an important role in mate recognition and localization. The signals are species-specific and can be used to aid in psyllid taxonomy and pest control. Several hypotheses have been proposed for the mechanism that generates these vibrations, of which stridulation, that is, friction between parts of the forewing and thorax, has received the most attention. We have investigated vibrational communication in the European pear psyllid species Cacopsylla pyrisuga (Foerster, 1848) using laser vibrometry and high-speed video recording, to directly observe the movements associated with signal production. We describe for the first time the basic characteristics of the signals and signal emission of this species. Based on observations and analysis of the video recordings using a point-tracking algorithm, and their comparison with laser vibrometer recordings, we argue that males of C. pyrisuga produce the vibrations primarily by wing buzzing, that is, tremulation that does not involve friction between the wings and thorax. Comparing observed signal properties with previously published data, we predict that wing buzzing is the main mechanism of signal production in all vibrating psyllids.

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来源期刊
Insect Science
Insect Science 生物-昆虫学
CiteScore
7.80
自引率
5.00%
发文量
1379
审稿时长
6.0 months
期刊介绍: Insect Science is an English-language journal, which publishes original research articles dealing with all fields of research in into insects and other terrestrial arthropods. Papers in any of the following fields will be considered: ecology, behavior, biogeography, physiology, biochemistry, sociobiology, phylogeny, pest management, and exotic incursions. The emphasis of the journal is on the adaptation and evolutionary biology of insects from the molecular to the ecosystem level. Reviews, mini reviews and letters to the editor, book reviews, and information about academic activities of the society are also published.
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