Literature DB >> 24260671

Localization of 18S ribosomal genes in suckermouth armoured catfishes Loricariidae (Teleostei, Siluriformes) with discussion on the Ag-NOR evolution.

Anderson Luis Alves1, Rafael Splendore de Borba, Allan Pierre Bonetti Pozzobon, Claudio Oliveira, Mauro Nirchio, Angel Granado, Fausto Foresti.   

Abstract

The family Loricariidae with about 690 species divided into six subfamilies, is one of the world's largest fish families. Cytogenetic studies conducted in the family showed that among 90 species analyzed the diploid number ranges from 2n=38 in Ancistrus sp. to 2n=96 in Hemipsilichthys gobio Luetken, 1874. In the present study, fluorescence in situ hybridization (FISH) was employed to determine the chromosomal localization of the 18S rDNA gene in four suckermouth armoured catfishes: Kronichthys lacerta (Nichols, 1919), Pareiorhaphis splendens (Bizerril, 1995), Liposarcus multiradiatus (Hancock, 1828) and Hypostomus prope plecostomus (Linnaeus, 1758). All species analyzed showed one chromosome pair with 18S rDNA sequences, as observed in the previous Ag-NORs analyses. The presence of size and numerical polymorphism was observed and discussed, with proposing a hypothesis of the Ag-NOR evolution in Loricariidae.

Entities:  

Keywords:  Fish cytogenetics; Loricariidae; fluorescent in situ hybridization

Year:  2012        PMID: 24260671      PMCID: PMC3833798          DOI: 10.3897/CompCytogen.v6i3.2667

Source DB:  PubMed          Journal:  Comp Cytogenet        ISSN: 1993-0771            Impact factor:   1.800


Introduction

Fishes of the family Loricariidae are found in almost all South and Central America, from Costa Rica to Argentina and represent one of the world’s largest fish families, with about 690 species described and about 300 undescribed (Reis et al. 2003). Recently this family has been divided into five subfamilies: Neoplecostominae, Hypoptopomatinae, Loricariinae, Hypostominae and a basal subfamily Delturinae (Armbruster 2004). About 100 Loricariidae species have been karyotyped so far (Oliveira and Gosztonyi 2000, Alves et al. 2006). The diploid chromosome number ranges from 2n=36 in Boulenger, 1899 (Giuliano-Caetano 1998) to 2n=96 in Luetken, 1874(Kavalco et al. 2004). Ribosomal RNA genes are organized in fishes and in other groups as multiple copies of a repeated unit that consists of a transcribed zone with coding regions for the 18S, 5.8S and 28S rRNA genes, separated by internal and external transcribed spacers and surrounded by non-transcribed spacer sequences. The 18S rDNA gene probes by fluorescent in situ hybridization (FISH) have provided coincident markers with silver nitrate impregnation (AG-NOR) in nucleolar organizer region (Ag-NOR) in fish chromosomes (Paintner et al. 2002, Porto-Foresti et al. 2002, Fontana et al. 2003, Kavalco et al. 2005). According to Foresti et al. (1981) the Ag-NORs with large size polymorphism and/or numeric polymorphism are frequent in Neotropical freshwater fishes. Thus, the detection of genes related with Ag-NORs is very important for the identification and characterization of these kinds of polymorphism (Wasko and Galetti Jr 2000). Ag-NORs size polymorphism is common in Loricariidae fishes, mainly in species with single Ag-NORs as in Hypoptopomatinae and Neoplecostominae, although, it can occur in species with multiple Ag-NORs as Hypostominae (Artoni and Bertollo 1996, Alves et al. 2003). In the present study the localization of 18S rDNA genes was identified in four species for the first time. The results were compared to already published data on Ag-NOR, with the main objective of better understanding the changes involving ribosomal genes involved with Ag-NORs in Loricariidae fishes.

Material and methods

Cytogenetic analyses were performed on chromosome preparations obtained from four species collected in rivers from Brazil and Venezuela: (Nichols 1919), (Bizerril 1995), (Hancock 1828) and prope plecostomus (Linnaeus 1758) (Table 1). The specimens were analyzed by taxonomists that provided the species identification. The fishes were deposited in the fish collection of Laboratório de Biologia e Genética de Peixes (LBP), UNESP, Botucatu, SP, Brazil and in the Laboratório de Ictiologia, Museu de Ciências e Tecnologia, PUCRS (MCP), Porto Alegre, Brazil.PageBreak
Table 1.

A summary of the cytogenetic data available on the family Loricariidae with chromosomal localization ribosomal genes. 2n= diploid number; M= metacentric; SM= submetacentric; ST= subtelocentric; A= acrocentric.

SpeciesLocalityrDNA gene2NKaryotypic formulaeReference
Neoplecostominae
Kronichthys lacerta (Nichols, 1919)Marumbi River, Brazil18S5420M, 20SM, 14STPresent study
Pareiorhaphis splendens (Bizerril, 1995)Marumbi River, Brazil18S5420M, 20SM, 14STPresent study
Neoplecostomus microps Steindachner, 1877Paraiba do Sul River, Brazil18S5424M, 20SM, 10STKavalco et al. (2005)
Delturinae
* Hemipsilicthys gobio Luetken, 1874Paraiba do Sul River, Brazil18S9616M, 08SM, 72AKavalco et al. (2005)
Loricariinae
Harttia loricarifomes Steindachner, 1877Paraiba do Sul River, Brazil18S5616M, 22SM, 10ST, 8AKavalco et al. (2005)
Hypostominae
Liposarcus multiradiatus (Hancock, 1828)Orinoco River, Venezuela18S5222M, 18SM, 12STPresent study
Hypostomus affinis Steindachner, 1886Paraiba do Sul River, Brazil18S6614M, 14SM, 12ST, 26AKavalco et al. (2005)
Hypostomus prope plecostomus (Linnaeus, 1758)Orinoco River, Venezuela18S6812M, 16SM, 12ST, 24APresent study
A summary of the cytogenetic data available on the family Loricariidae with chromosomal localization ribosomal genes. 2n= diploid number; M= metacentric; SM= submetacentric; ST= subtelocentric; A= acrocentric. Chromosome preparations were obtained from kidney tissues using the technique described by Foresti et al. (1993) and were submitted to fluorescent in situ hybridization (FISH). Four probes employed in the Southern hybridizations techniques were used for FISH and they were labeled as follow: the double-strand probes (probes 1 and 4) were labeled by nick translation with biotin-14-dATP (Bionick labelling system-Gibco.BRL); the single-strand synthetic probes (probes 2 and 3) were labeled by random primer with biotin-14-dCTP (BioPrime DNA labeling system-Gibco.BRL). The metaphase chromosomes slides were incubated with RNAse (40 µg/ml) for 1.5 hour at 37°C. After the denaturation of chromosomal DNA in 70% formamide/2xSSC for 5 min at 70°C, 40µl of hybridization mixture (100ng of denatured probe, 50% formamide, 10mg/ml dextran sulfate, 2xSSC) was dropped on the slides and the hybridization was performed overnight at 37°C. Hybridization washes included 50% formamide in 2xSSC at 42°C and 2xSSC and 4xSSC at room temperature. Detection of hybridized probes was carried out with Avidin-FITC conjugate (Sigma) followed by two rounds of signal-amplification. After each step of amplification the slides were washed in a blocking buffer (1.26% NaHCO3, 0.018% sodium citrate, 0,0386% Triton/1% non-fat dried milk). Chromosomes were counterstained with Propidium Iodide, and the slides were mounted with Antifade (Vector).

Results and discussion

The karyotypes of the four species analyzed have been previously described in Alves (2005), Alves et al. (2005) and Alves et al. (2006), the diploid number and karyotype formulae with morphological classification in metacentric (m), submetacentric (sm) and subtelocentric (st) are presented in the Table 1. The results showed that had only one signal of 18S rDNA in interstitial position in the long arm of the chromosome pair 21 (st) (Figure 1a), coinciding with a single Ag-NORs pattern presented by Alves et al. (2005). Beside the numerical polymorphism in this specie, the large size polymorphism of the 18S rDNA loci suggests a duplication of this gene in the active Ag-NOR chromosome.
Figure 1.

Fluorescent in situ hybridization with 18S rDNA probe in (a) , (b) , (c) and (d) prope plecostomus. Arrows indicate rDNA sites in the chromosomes pairs, Ag-NORs chromosomes are presented in the box.

had two signal of 18S rDNA in interstitial position in the long arm of the chromosome pair 3 (m) (Figure 1b), coinciding with single Ag-NOR pattern presented by Alves et al. (2005). This species presented an evident variation in Ag-NORs size among homologous chromosomes that can be confirmed by the probe 18S rDNA. This structural polymorphism is common in the Loricariidae fishes (Artoni and Bertollo 1996, Alves et al. 2003, Alves et al. 2005). In two signal of 18S rDNA in subterminal position in the long arm of the chromosome pair 10 (m) were detected (Figure 1c), coinciding with single Ag-NORs pattern presented by Alves et al. (2006). In this species a small size polymorphism of 18S rDNA occurs, although, the possible duplication or rearrangement events are not evident. PageBreakWeak signals of 18S rDNA were presented in the prope plecostomus: two signals were observed in the short arm of the chromosome pair 16 (st) (Figure 1d). These signals are coincident with single Ag-NORs presented in this specie by Alves (2005). Different of the others species analyzed here, prope plecostomus does not presented size polymorphism of 18S rDNA, suggesting a conserved status of this character in this species. There are few studies related to the identification of Ag-NOR regions through the technique of hybridization with 18S rDNA probes in Loricariidae fishes, the most data available are on . The hybridization techniques with the fluorochromes DAPI and CMA3, were used to identified Ag-NOR regions of (Schubart, 1964) (Rubert et al. 2008) and prope wuchereri (Günther, 1864) (Bitencourt et al. 2011). Artoni and Bertollo (1999) already used Mithramycin A (DAPI/MM) technique for observation of this region in sp., sp. B and sp. F. In a recent paper Mendes-Neto et al. (2011) identified the Ag-NOR regions in (Ihering, 1905) through the technique of hybridization with 18S rDNA probes, in all these works the species analysed showed single Ag-NOR in there chromosomes. In conclusion, for Oliveira and Gosztonyi (2000) the condition of single Ag-NORs in subterminal position is the possible basal condition for the Siluriformes spPageBreakecies, and variations of this character were considered derived. In the present study all species analyzed presented single Ag-NORs, suggesting the maintenance of this basal condition. The size polymorphisms observed in most species analyzed, suggests that these polymorphisms occurred independently of the species systematic position. Fluorescent in situ hybridization with 18S rDNA probe in (a) , (b) , (c) and (d) prope plecostomus. Arrows indicate rDNA sites in the chromosomes pairs, Ag-NORs chromosomes are presented in the box.
  10 in total

1.  Multiple Nors in Bryconamericus aff. exodon (Osteichthyes, Characidae, Tetragonopterinae).

Authors:  Tania Regina Paintner-Marques; Lucia Giuliano-Caetano; Ana Lúcia Dias
Journal:  Hereditas       Date:  2002       Impact factor: 3.271

2.  Comparative cytogenetic analysis of eleven species of subfamilies Neoplecostominae and Hypostominae (Siluriformes: Loricariidae).

Authors:  Anderson Luís Alves; Claudio Oliveira; Fausto Foresti
Journal:  Genetica       Date:  2005-07       Impact factor: 1.082

3.  Karyotypic relationships among the tribes of Hypostominae (Siluriformes: Loricariidae) with description of XO sex chromosome system in a Neotropical fish species.

Authors:  Anderson Luís Alves; Claudio Oliveira; Mauro Nirchio; Angel Granado; Fausto Foresti
Journal:  Genetica       Date:  2006 Sep-Nov       Impact factor: 1.082

4.  NORs inheritance analysis in crossings including individuals from two stocks of rainbow trout (Oncorhynchus mykiss).

Authors:  Fábio Porto-Foresti; Claudio Oliveira; Yara Aiko Tabata; Marcos Guilherme Rigolino; Fausto Foresti
Journal:  Hereditas       Date:  2002       Impact factor: 3.271

5.  Nature and distribution of constitutive heterochromatin in fishes, genus Hypostomus (Loricariidae).

Authors:  R F Artoni; L A Bertollo
Journal:  Genetica       Date:  1999       Impact factor: 1.082

6.  Karyotypic diversity and evolution of Loricariidae (Pisces, Siluriformes).

Authors:  K F Kavalco; R Pazza; L A C Bertollo; O Moreira-Filho
Journal:  Heredity (Edinb)       Date:  2005-02       Impact factor: 3.821

7.  Heterochromatin characterization of four fish species of the family Loricariidae (Siluriformes).

Authors:  Karine Frehner Kavalco; Rubens Pazza; Luiz Antonio Carlos Bertollo; Orlando Moreira-Filho
Journal:  Hereditas       Date:  2004       Impact factor: 3.271

8.  Chromosomal mapping of 18S-28S and 5S rRNA genes by two-colour fluorescent in situ hybridization in six sturgeon species.

Authors:  Francesco Fontana; Massimo Lanfredi; Leonardo Congiu; Marilena Leis; Milvia Chicca; Remigio Rossi
Journal:  Genome       Date:  2003-06       Impact factor: 2.166

9.  Polymorphic nature of nucleolus organizer regions in fishes.

Authors:  F Foresti; L F Almeida Toledo; S A Toledo
Journal:  Cytogenet Cell Genet       Date:  1981

10.  Description of karyotype in Hypostomus regani (Ihering, 1905) (Teleostei, oricariidae) from the Piumhi river in Brazil with comments on karyotype variation found in Hypostomus.

Authors:  Ernani de Oliveira Mendes-Neto; Marcelo Ricardo Vicari; Roberto Ferreira Artoni; Orlando Moreira-Filho
Journal:  Comp Cytogenet       Date:  2011-06-01       Impact factor: 1.800

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1.  Cytogenetic analysis of two locariid species (Teleostei, Siluriformes) from Iguatemi River (Parana River drainage) in Brazil.

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Journal:  Comp Cytogenet       Date:  2015-03-10       Impact factor: 1.800

2.  Physical mapping of the 5S and 18S rDNA in ten species of Hypostomus Lacépède 1803 (Siluriformes: Loricariidae): evolutionary tendencies in the genus.

Authors:  Vanessa Bueno; Paulo César Venere; Jocicléia Thums Konerat; Cláudio Henrique Zawadzki; Marcelo Ricardo Vicari; Vladimir Pavan Margarido
Journal:  ScientificWorldJournal       Date:  2014-10-27

3.  Studies in two allopatric populations of Hypostomus affinis (Steindachner, 1877): the role of mapping the ribosomal genes to understand the chromosome evolution of the group.

Authors:  Karina de Oliveira Brandão; Dinaíza Abadia Rocha-Reis; Caroline Garcia; Rubens Pazza; Lurdes Foresti de Almeida-Toledo; Karine Frehner Kavalco
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  3 in total

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