Abstract
Abstract
Background
The Neacomys genus is predominantly found in the Amazon region, and belongs to the most diverse tribe of the Sigmodontinae subfamily (Rodentia, Cricetidae, Oryzomyini). The systematics of this genus and questions about its diversity and range have been investigated by morphological, molecular (Cytb and COI sequences) and karyotype analysis (classic cytogenetics and chromosome painting), which have revealed candidate species and new distribution areas. Here we analyzed four species of Neacomys by chromosome painting with Hylaeamys megacephalus (HME) whole-chromosome probes, and compared the results with two previously studied Neacomys species and with other taxa from Oryzomyini and Akodontini tribes that have been hybridized with HME probes. Maximum Parsimony (MP) analyses were performed with the PAUP and T.N.T. software packages, using a non-additive (unordered) multi-state character matrix, based on chromosomal morphology, number and syntenic blocks. We also compared the chromosomal phylogeny obtained in this study with molecular topologies (Cytb and COI) that included eastern Amazonian species of Neacomys, to define the phylogenetic relationships of these taxa.
Results
The comparative chromosome painting analysis of the seven karyotypes of the six species of Neacomys shows that their diversity is due to 17 fusion/fission events and one translocation, pericentric inversions in four syntenic blocks, and constitutive heterochromatin (CH) amplification/deletion of six syntenic autosomal blocks plus the X chromosome. The chromosomal phylogeny is consistent with the molecular relationships of species of Neacomys. We describe new karyotypes and expand the distribution area for species from eastern Amazonia and detect complex rearrangements by chromosome painting among the karyotypes.
Conclusions
Our phylogeny reflects the molecular relationships of the Akodontini and Oryzomyini taxa and supports the monophyly of Neacomys. This work presents new insights about the chromosomal evolution of this group, and we conclude that the karyotypic divergence is in accord with phylogenetic relationships.
Funder
Conselho Nacional de Desenvolvimento Científico e Tecnológico
Fundação Amazônia Paraense de Amparo à Pesquisa
Coordenação de Aperfeiçoamento de Pessoal de Nível Superior
Banco Nacional de Desenvolvimento Econômico e Social
Fundação de Amparo à Pesquisa do Estado de Mato Grosso
Publisher
Springer Science and Business Media LLC
Subject
Ecology, Evolution, Behavior and Systematics
Reference41 articles.
1. Baker RJ, Koop BF, Haiduk MW. Resolving systematic relationships with G-bands. A study of five genera of South American Cricetine rodents. Syst Zool. 1983;32:403–16.
2. Patton JL, Silva MN, Malcolm JR. Mammals of the Rio Juruá and the evolutionary and ecological diversification of Amazonia. Bul Am Mus Nat Hist. 2000;244:202–92.
3. Voss RS, Lunde DP, Simmons NB. The mammals of Paracou, French Guiana: a neotropical lowland rainforest fauna. Part 2. Nonvolant species. Bull Am Mus Nat Hist. 2000;263:236.
4. Redi CA, Zacharias H, Merani S, Oliveira-Miranda M, Aguilera M, et al. Genome sizes in afrotheria, xenarthra, euarchontoglires, and laurasiatheria. J Heredity. 2005.
https://doi.org/10.1093/jhered/esi080
.
5. da Silva WO, Pieczarka JC, Rossi RV, Schneider H, Sampaio I, Miranda CL, et al. Diversity and karyotypic evolution in the genus Neacomys (Rodentia, Sigmodontinae). Cytogenet Genome Res. 2015.
https://doi.org/10.1159/000441173
.
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