Cultivated sweetpotato [Ipomoea batatas (L.) Lam.] from the family Convolvulaceae is a hexaploid species with 2n = 6x = 90 and has been controversial regarding its nature as an autopolyploid arising within a species or an allopolyploid forming between species. Here, we developed oligonucleotide-based painting probes for two chromosomes of I. nil, a model diploid Ipomoea species. Using these probes, we revealed the pairing behavior of homoeologous chromosomes in I. batatas and its two possible polyploid ancestral species, tetraploid I. tabascana (2n = 4x = 60) and hexaploid I. trifida (2n = 6x = 90). Chromosome painting analysis revealed a high percentage of quadrivalent formation in zygotene-pachytene cells of I. tabascana, which supported that I. tabascana was an autotetraploid likely derived by doubling of structurally similar and homologous genomes rather than a hybrid between I. batatas and I. trifida (2x). A high frequency of hexavalent/bivalent and tetravalent pairing was observed in I. trifida (6x) and I. batatas. However, the percentage of hexavalent pairing in I. trifida (6x) was far higher than that in I. batatas. Thus, the present results tend to support that I. trifida (6x) is an autohexaploid, while I. batatas is more likely to be a segmental allohexaploid.
The phylogenetic relationships for Ipomoea species are incongruent in previous studies. Comparative karyotype analysis can provide valuable information for phylogenetic relationships among species. A reliable and efficient system for chromosome identification is the foundation for karyotype analysis. However, for the Ipomoea species, individual chromosomes were not identified in all previous reported karyotypes due to their small size, high number and similar morphology. Fluorescence in situ hybridization (FISH) using oligonucleotides (oligos) as probes is a new strategy for chromosome identification and karyotype analysis. Here, we developed the first set of oligo-based probes based on the reference genome of Ipomoea nil, a model species in the genus Ipomoea. In all, we developed four oligo-FISH probes. By a combined use of four oligo probes, sequential FISH analysis were conducted on the same metaphase cells with each round including two probes, which permitted simultaneous identification of all I. nil chromosomes and anchoring 15 pseudochromosomes to individual cytological chromosomes. Moreover, 45S and 5S rDNA were mapped to specific chromosomes. A karyotype based on individually identified chromosomes was established, which was the first FISH-based molecular cytogenetic karyotype of I. nil. Our study has created the basis for studying chromosome variation and evolution in genus Ipomoea by comparative karyotype analysis using this set of oligo probes.
In recent years, the purple-fleshed sweet potato has attracted more attention because of its high nutritional value. The cytogenetics of this crop is relatively unexplored, limiting our knowledge on its genetic diversity. Therefore, we conducted cytogenetic analysis of 76 purple-fleshed sweet potato cultivars to analyze the chromosome structure and distribution of 45S and 5S rDNA. We noted that only 62 cultivars had 90 chromosomes, and the others were aneuploid with 88, 89, 91, or 92 chromosomes. The number of 45S rDNA in the 76 cultivars varied from 16 to 21; these sites showed different signal sizes and intensities and were localized at the chromosomal termini or satellite. The number of 5S rDNA was relatively stable; 74 cultivars showed six sites located at the chromosomal sub-terminal or near the centromere. Only the 'Quanzishu 96' and 'Yuzixiang 10' showed seven and five 5S rDNA sites, respectively. Additionally, both parent cultivars of 'Quanzishu 96' showed 18 45S and six 5S rDNA sites. Overall, our results indicate a moderate diversity in the distribution pattern of rDNAs. Our findings provide comprehensive cytogenetic information for the identification of sweet potato chromosomes, which can be useful for developing a high-quality germplasm resource.
Background: The phylogenetic relationships for Ipomoeeae species are incongruence in previous studies. Comparative chromosome painting (CCP) can provide valuable information for phylogenetic relationships among species. Results: In this study, 31 Ipomoea species were analyzed by oligo-based chromosome painting (CP) technique to better understand their phylogenetic relationships. The results indicated that the distribution patterns of oligo probes in three species with 28 chromosomes were significantly different from the other species with 30 chromosomes. Therefore, we proposed that the difference of chromosome number should be foremost factor in determining the phylogenetic relationships among species and the previous division of two large clades in Ipomoeeae wasn’t supported. The division of smaller clades within the Astripomoeinae in Ipomoeeae was generally supported with a few exceptions, whereas the division of smaller clades within Argyreiinae wasn’t resolved by our CP results. In addition, species relationship for the species belonging to same smaller clade with same CP pattern was further resolved by physical mapping of the 5S and 45S rDNA using fluorescence in situ hybridization (FISH) technique. Conclusions: This study is the first phylogenetic analysis of Ipomoea species based on CP technique. Our results provide intuitive and reliable resolution of phylogenetic relationships for 31 Ipomoea species and demonstrate the validity of oligo-based CCP analysis in phylogenetic study.
Sweetpotato (Ipomoea batatas (L.) Lam.) is an important industrial and food crop. Both chilling and heat stress inhibits sweetpotato growth and development and then affects yield. However, the physiological and molecular mechanisms of sweetpotato response to chilling and heat stress is unclear. In this study, we investigated the effect of extreme temperature on sweetpotato physiological response, with a focus on oxidative stress and the potential microRNA (miRNA)-mediated molecular mechanism. Our results showed that both chilling and heat stress resulted in accumulation of reactive oxygen species (ROS), including H2O2 and O2 -, and caused oxidative stress in sweetpotato. This further affected the activities of oxidative stress-related enzymes and products, including SOD, POD, and MDA. Both chilling and heat stress inhibited POD activities but induced the enzyme activities of SOD and MDA. This suggests that sweetpotato cells initiated its own defense mechanism to handle extreme temperature-caused oxidative damage. Oxidative damage and repair are one mechanism that sweetpotato plants respond to extreme temperatures. Another potential mechanism is miRNA-mediated gene response. Chilling and heat stress altered the expression of stress-responsive miRNAs in sweetpotato seedlings. These miRNAs regulate sweetpotato response to extreme stress through targeting individual protein-coding genes.