Eneopterinae

Subfamily

422 recordings
2 trait measurements
2 references

Account

What the sources say about this taxon, as written.

behaviour · bio.acousti.ca

Several hypotheses were previously proposed about the evolution of acoustic devices and signals, using the phylogeny previously reconstructed with the morphological char- acters only (Robillard and Desutter-Grandcolas, 2004a,b,c). In molecular and combined analyses, the mute species Swezwilderia bryani and Paranisitra longipes are never sister clades; despite the unstable position of Swezwilderia, the hypothesis of multiple and independent losses of acoustic communication (Alexander, 1962; Otte, 1992) is corroborated here in Eneopterinae. These losses however appear as direct evolutionary events, involving no intermediate state between functional acoustic devices and their loss. These results thus partly invalidate previous hypotheses about the loss of acoustic communication in crickets, generally considered as a sequential, regressive process (Alexander, 1962; Otte, 1992). The analysis of the patterns of evolution of male fore-wing venation revealed that the diversiWcation of acoustic devices originates from two processes, a continuous and regular modification process, responsible for slight venation changes; and an irregular, more intense punctuated process, allowing the emergence of divergent venations in Lebinthini, Nisitrus, Salmanites and in the clade (Ponca–Ligypterus). Among these clades, Lebinthini, Nisitrus and (Ponca–Ligypterus) are clearly supported by molecular and/or combined analyses. As mentioned above, the monophyly of Salmanites is not clearly recovered by combined analysis, though it is unambiguous on morphological basis and in the separate analyses of 12S, 16S and cytb. All the clades characterised by massive changes of venation and supporting the punctuated evolution hypothesis are well supported by our results. Previous conclusions on the evo- lution of acoustic devices in Eneopterinae are thus corroborated. Concerning acoustic signals, a hypothesis of adaptive radiation for high-frequency calling in Lebinthini has been derived from the analysis of spectral characteristic of call- ing songs (Robillard and Desutter-Grandcolas, 2004b). This hypothesis is supported by our results: Lebinthini species are always grouped together, and even if Swezwilderia may jump into this clade, it would not invalidate the radia- tion hypothesis, because it is mute. Further analyses of spectral components of the calling song also revealed a case of convergence involving three diVerent ways to produce high frequencies (Robillard and Desutter-Grandcolas, submit.), which occur independently in Eneoptera guyanensis, Cardiodactylus and (Agnotecous– Lebinthus). The topologies obtained here support the inde- pendent origins of these acoustic novelties: despite its unstable position in the tree, Eneoptera is never the sister group of Lebinthini, and Cardiodactylus and (Agnotecous– Lebinthus) are most often monophyletic and sister clades, as in the morphological phylogeny.

this account at bio.acousti.ca

Acoustic traits

2 measurements across 2 traits. Each name links to its term in the audioBlast vocabulary.

Measurements

Every value behind the summaries above. Each links to its own record in the API, which carries the reference it was taken from.

TraitValueCallPartSexTemp.Source
Crepitation (Presence)AbsentMale; Femalebio.acousti.ca
Sound Production MethodElytral Stridulationbio.acousti.ca

Recordings

422 in audioBlast.

XC1092873 Agnotecous obscurus - calling song
120 s
Tony Robillard 2010-11-01 xeno-canto listen › record
XC1092872 Agnotecous obscurus - calling song
138 s
Tony Robillard 2010-11-01 xeno-canto listen › record
XC1092604 Agnotecous obscurus - calling song
119 s
Tony Robillard 2009-09-21 xeno-canto listen › record
XC1092445 Agnotecous obscurus - calling song
173 s
Tony Robillard 2010-12-11 xeno-canto listen › record
XC1092443 Agnotecous obscurus - calling song
137 s
Tony Robillard 2010-12-11 xeno-canto listen › record
XC1092440 Agnotecous obscurus - calling song
73 s
Tony Robillard 2010-12-11 xeno-canto listen › record
XC1092439 Agnotecous obscurus - calling song
70 s
Tony Robillard 2010-12-11 xeno-canto listen › record
XC1092417 Agnotecous obscurus - calling song
137 s
Tony Robillard 2010-12-11 xeno-canto listen › record
XC1092416 Agnotecous obscurus - calling song
79 s
Tony Robillard 2010-12-11 xeno-canto listen › record
XC1092414 Agnotecous obscurus - calling song
121 s
Tony Robillard 2010-12-11 xeno-canto listen › record
XC1092412 Agnotecous obscurus - calling song
118 s
Tony Robillard 2010-12-11 xeno-canto listen › record
XC1092601 Agnotecous obscurus - calling song
30 s
Tony Robillard 2008-05-18 xeno-canto listen › record

410 more in the audioBlast browser.

Browse

Counts are recordings at or below each taxon, so an empty branch shows as empty before you click it. A dash means the join view holds no column for that rank and cannot roll up to it.

References

Publications audioBlast links to this taxon.

Sources

The rows audioBlast holds for this taxon, each matched to the same Catalogue of Life node. Where a source classifies it differently, its own classification is kept.

SourceIts nameIts rankIts familyRecord
bio.acousti.caEneopterinaeSubfamilyGryllidaebio.acousti.ca/2367
iNaturalistEneopterinaeSubfamilyGryllidaeiNaturalist/523729

Machine-readable

Bioschemas is in the head of this page. The Darwin Core RDF lives at the API address below, which negotiates JSON-LD and Turtle.

Bioschemas Taxon, as embedded
{
  "@context": [
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    {
      "dwc": "http://rs.tdwg.org/dwc/terms/"
    }
  ],
  "@type": "Taxon",
  "@id": "https://browse.acousti.cloud/taxon/eneopterinae/",
  "name": "Eneopterinae",
  "taxonRank": "subfamily",
  "url": "https://browse.acousti.cloud/taxon/eneopterinae/",
  "sameAs": "https://api.audioblast.org/taxon/CoL/8NKVB",
  "parentTaxon": {
    "@type": "Taxon",
    "name": "Gryllidae",
    "taxonRank": "family",
    "url": "https://browse.acousti.cloud/taxon/gryllidae/"
  }
}