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Communication

Genetic Cause of Hybrid Lethality Observed in Reciprocal Interspecific Crosses between Nicotiana simulans and N. tabacum

1
Graduate School of Agriculture, Osaka Metropolitan University, Sakai 599-8531, Osaka, Japan
2
Education and Research Field, School of Agriculture, Osaka Metropolitan University, Sakai 599-8531, Osaka, Japan
3
Graduate School of Life and Environmental Sciences, Osaka Prefecture University, Sakai 599-8531, Osaka, Japan
4
School of Life and Environmental Sciences, Osaka Prefecture University, Sakai 599-8531, Osaka, Japan
5
School of Agriculture, Meiji University, Kawasaki 214-8571, Kanagawa, Japan
*
Author to whom correspondence should be addressed.
Int. J. Mol. Sci. 2024, 25(2), 1226; https://doi.org/10.3390/ijms25021226
Submission received: 22 December 2023 / Revised: 17 January 2024 / Accepted: 17 January 2024 / Published: 19 January 2024

Abstract

:
Hybrid lethality, a type of postzygotic reproductive isolation, is an obstacle to wide hybridization breeding. Here, we report the hybrid lethality that was observed in crosses between the cultivated tobacco, Nicotiana tabacum (section Nicotiana), and the wild tobacco species, Nicotiana simulans (section Suaveolentes). Reciprocal hybrid seedlings were inviable at 28 °C, and the lethality was characterized by browning of the hypocotyl and roots, suggesting that hybrid lethality is due to the interaction of nuclear genomes derived from each parental species, and not to a cytoplasmic effect. Hybrid lethality was temperature-sensitive and suppressed at 36 °C. However, when hybrid seedlings cultured at 36 °C were transferred to 28 °C, all of them showed hybrid lethality. After crossing between an N. tabacum monosomic line missing one copy of the Q chromosome and N. simulans, hybrid seedlings with or without the Q chromosome were inviable and viable, respectively. These results indicated that gene(s) on the Q chromosome are responsible for hybrid lethality and also suggested that N. simulans has the same allele at the Hybrid Lethality A1 (HLA1) locus responsible for hybrid lethality as other species in the section Suaveolentes. Haplotype analysis around the HLA1 locus suggested that there are at least six and two haplotypes containing Hla1-1 and hla1-2 alleles, respectively, in the section Suaveolentes.

1. Introduction

The wide hybridization between distant relatives enables the interspecific gene transfer from wild relatives into cultivated species. This method has been used for a long time and is an important tool to develop new cultivars in plant breeding [1,2,3]. However, wide hybridization breeding is often disturbed, because species are usually reproductively isolated from each other. Reproductive isolation is divided into premating, postmating–prezygotic, and postzygotic isolation barriers, and the latter two barriers are the main obstacles to wide hybridization breeding. A typical example of postmating–prezygotic barriers is the cross-incompatibility between pollen and pistils [4,5,6,7,8,9,10,11]. Postzygotic barriers include hybrid seed abortion [4,12,13,14,15,16,17,18,19,20,21,22,23,24,25,26,27,28,29,30,31,32,33,34,35,36], hybrid weaknesses [37,38,39,40,41,42,43,44,45,46,47], hybrid lethality [32,48,49,50,51,52,53,54,55,56,57,58,59,60] or necrosis [61,62,63,64,65,66,67,68,69,70,71], and hybrid sterility [72,73,74,75,76,77,78,79] in plants of the F1 generation, and hybrid breakdown is expressed as weaknesses, lethality, or sterility in plants of F2 or later generations [49,80,81,82,83,84,85,86,87,88,89]. Methods to overcome or bypass reproductive isolation are in demand for successful wide hybridization breeding [32].
The genus Nicotiana (Solanaceae) contains 90 species classified into 13 sections, which are predominantly distributed in the Americas and Australia [90,91]. Among Nicotiana species, cultivated tobacco, N. tabacum (2n = 48, SSTT), is an important cash crop. One of the main objectives of breeding programs of N. tabacum is to develop disease-resistant cultivars. For this purpose, wild species are useful as genetic resources, and several resistance genes, such as tobacco mosaic virus resistance gene N from N. glutinosa [92,93,94,95,96], and black shank resistance genes Php from N. plumbaginifolia and Phl from N. longiflora [97,98], have been introduced into N. tabacum by interspecific crossings. Another important usefulness of wild species is as a source of cytoplasmic male sterility in N. tabacum [99,100,101,102,103,104,105,106,107,108].
Australian wild species, N. simulans (2n = 40), which belongs to section Suaveolentes, is useful as a source of breeding material. This species is resistant to blue mold and powdery mildew [109,110] and is used as a source of cytoplasmic male sterile N. tabacum [111,112]. However, we revealed here that hybrid seedlings between N. simulans and N. tabacum showed hybrid lethality. To use the hybrid seedlings as the starting material for tobacco breeding, it is necessary to clarify the characteristics and underlying mechanism of hybrid lethality.
Section Suaveolentes consists of approx. 48 allotetraploid species, which are endemic to Australasia, and one allotetraploid species, N. africana, in Africa [91,113]. This section is monophyletic, and the species have chromosome numbers ranging from n = 15 to 24. After the appearance of a common ancestor at 5–6 Mya, extant species of section Suaveolentes are likely to have arisen through dysploid chromosome reduction [113,114,115,116,117].
Hybrid seedlings obtained from crosses between many Suaveolentes species and N. tabacum show hybrid lethality. Many of the hybrid lethality cases are caused by the epistatic interaction between the dominant allele Hla1-1 at the Hybrid Lethality A1 (HLA1) locus in Suaveolentes species and gene(s) on the N. tabacum Q chromosome, probably the dominant allele Hla2-1 at the HLA2 (synonym NtHL1) locus [56,118,119,120,121,122]. Hybrid lethality, which is called type II, is characterized by early symptoms experienced by hybrid seedlings: the browning of hypocotyl and roots. Another characteristic of type II hybrid lethality is temperature sensitivity; hybrid lethality is observed at 28 °C but suppressed at elevated temperatures ranging from 34 to 37 °C [56,121,123,124,125]. Several studies suggested that the disease resistance response is involved in type II hybrid lethality [126,127,128]. However, other hybrid lethality cases resulting from different gene combinations were also observed depending on the cross-combination [129,130]. Therefore, it is assumed that N. simulans has Hla1-1, but this needs to be verified.
A possible method to investigate whether N. simulans has the Hla1-1 allele is the complementation test by triple crosses between hybrids of N. simulans with Hla1-1 carriers and N. tabacum. However, this strategy would be hampered, because hybrids between Suaveolentes species are often sterile [120,131,132,133,134]. Alternatively, it is useful to characterize hybrid lethality by the phenotype and responsible chromosome. Thus, in the present study, we investigated phenotypic symptoms and the temperature sensitivity of hybrid lethality in crosses between N. simulans and N. tabacum. The N. tabacum chromosome responsible for hybrid lethality was identified by crossing experiments using an N. tabacum monosomic line for the Q chromosome. We then carried out haplotype analysis for the candidate region of the HLA1 locus using 13 Suaveolentes species including N. simulans to determine the region containing the locus.

2. Results

2.1. Type of Hybrid Lethality Observed in Reciprocal Hybrids

Hybrid seeds were obtained from reciprocal crosses between N. simulans and N. tabacum after conventional cross-pollination (Table 1). Although only a small number of N. tabacum flowers was pollinated with N. simulans, the N. tabacum flowers produced few capsules (16.7% of flowers pollinated) compared with the reciprocal cross (85% of flowers pollinated); five of six flowers of N. tabacum dropped approximately 7 days after pollination (DAP) when pollinated with N. simulans. The percentage of seed germination was also different depending on the cross-direction: 68.8% when N. simulans was used as the female parent and 2.5% when it was used as the male parent.
All 247 hybrid seedlings obtained from reciprocal crosses were inviable at 28 °C (Table 1, Figure 1A–I). Hybrid seedlings grew normally until about 3 days after germination (DAG), but their hypocotyls turned brown in a few days, followed by the browning of roots (Figure 1A–C). These symptoms were characteristics of type II hybrid lethality. Although the degree of seedling growth varied from seedling to seedling (Figure 1D–G), all the seedlings eventually died (Figure 1H,I). Type II hybrid lethality was observed in reciprocal crosses, suggesting that hybrid lethality is due to the interaction between nuclear genomes derived from each parental species, or perhaps more exactly, genes in each nuclear genome, and not to a cytoplasmic effect.

2.2. Effect of Elevated Temperature on Hybrid Lethality

Twenty-five hybrid seedlings from the cross N. simulans × N. tabacum were newly obtained from 35 seeds sown in vitro at 28 °C. These seedlings were cultured at 36 °C to investigate whether hybrid lethality is suppressed at elevated temperatures. Hybrid seedlings grew normally without lethal symptoms at 36 °C (Figure 1J,K). When the hybrid seedlings were transferred from 36 °C to 28 °C at 55 DAG, they showed type II lethality and died.

2.3. Involvement of the Q chromosome in Hybrid Lethality

To determine whether the Q chromosome of N. tabacum is responsible for hybrid lethality, monosomic analysis using N. tabacum monosomic plants missing one copy of the Q chromosome was carried out. The monosomic plants were used as maternal parents for crossing with N. simulans, because the transmission of the monosomic condition through pollen is very low in N. tabacum [135]. Firstly, we carried out conventional cross-pollination to obtain hybrid seeds. However, 30 pollinated flowers of N. tabacum monosomic plants dropped approximately 7 DAP. The ovaries and ovules of these flowers did not enlarge, suggesting that fertilization did not occur. To bypass the possible prezygotic barrier, test-tube fertilization and ovule culture were carried out. Fifteen placentas of monosomic plants were pollinated with N. simulans pollen, resulting in 341 enlarged ovules. After ovule culture, 50 hybrid seedlings were obtained and cultured at 36 °C to suppress hybrid lethality.
Thirty-six hybrid seedlings were assessed for the presence or absence of the Q chromosome using four Q-chromosome-specific sequence tagged site (STS) markers [118,136] (Table 2). All the markers were detected in 6 hybrid seedlings but not in 30 hybrid seedlings. When the hybrid seedlings were transferred from 36 °C to 28 °C, all seedlings possessing the Q chromosome died, whereas all seedlings lacking the Q chromosome survived without lethal symptoms.

2.4. Haplotype Analysis of the HLA1 Candidate Region

The Q chromosome was found to be responsible for type II hybrid lethality in crosses between N. simulans and N. tabacum as that in the cross between N. forsteri (synonym N. debneyi) and N. tabacum. Because N. simulans and N. forsteri are closely related species, both belonging to the monophyletic section Suaveolentes, N. simulans would have the Hla1-1 allele at the HLA1 locus, which was originally identified in N. forsteri [120]. This enabled us to investigate the candidate region of the HLA1 locus in Suaveolentes species by haplotype analysis.
The HLA1 locus was mapped between two cleaved amplified polymorphic sequence (CAPS) markers, Nb14-CAPS and NbRGH1-CAPS, using the F2 population derived from the cross N. forsteri × N. fragrans [137]. These markers were located in the Niben101Scf06736 scaffold in the N. benthamiana v1.0.1 genome [138]. In the present study, we developed three new CAPS markers showing polymorphism between N. forsteri and N. fragrans based on the scaffold (Supplemental Table S1). Genotypes of all the five markers in 13 Suaveolentes species were investigated (Table 3). Eight haplotypes were recognized in this region, although the exact haplotype of N. megalosiphon could not be determined, due to the heterozygosity. Haplotypes Hap1–6 were observed in species with the Hla1-1 allele, and Hap3 was the most common haplotype. In species with the hla1-2 allele, two haplotypes (Hap7 and Hap8) were observed. A linkage disequilibrium was observed between Nb49-CAPS and NbRGH1-CAPS, suggesting that the HLA1 locus is located in this region. However, the marker genotypes of Nb14-CAPS also matched well with the HLA1 genotypes.

3. Discussion

For breeding purposes, it is important to clarify the underlying mechanism of hybrid lethality. This allows us to consider whether to use existing methods or develop new methods to overcome hybrid lethality. Hybrid lethality, which is caused by the epistatic interaction of the Hla1-1 allele from Suaveolentes species and the Hla2-1 allele from N. tabacum, is characterized by its lethal symptoms observed as the browning of hypocotyl and roots as well as temperature sensitivity [56,121,123,124,125]. All these characteristics were observed in crosses between N. simulans and N. tabacum. Furthermore, as well as crosses between other Suaveolentes species and N. tabacum [56,118,119,121], the Q chromosome containing the HLA2 locus from N. tabacum was involved in hybrid lethality in crosses between N. simulans and N. tabacum. Altogether, these results indicated that N. simulans has the Hla1-1 allele.
Previous studies have suggested that the disease resistance response is related to the type II hybrid lethality caused by Hla1-1 and Hla2-1 alleles. The involvement of several disease-resistance-related genes has been reported in crosses of N. tabacum with N. gossei (Hla1-1) and N. suaveolens (Hla1-1) [125,126,128]. Features of programmed cell death, which are similar to the hypersensitive response, a type of programmed cell death associated with the plant defense response, were observed in crosses of N. tabacum with N. forsteri, N. gossei, and N. suaveolens [124,139,140]. Furthermore, the Hla2-1 allele in N. tabacum encodes a coiled-coil nucleotide-binding site-leucine-rich repeat (CC-NBS-LRR) protein, which might be involved in disease resistance. Considering that hybrid seedlings of the cross N. simulans × N. tabacum exhibited the same lethal symptoms and temperature sensitivity as those derived from crosses between other Suaveolentes species and N. tabacum, downstream factors of hybrid lethality triggered by Hla1-1 and Hla2-1 alleles would be conserved among N. simulans and other Suaveolentes species.
Although several methods to overcome hybrid lethality have been developed in the genus Nicotiana, their effectiveness varies depending on the type of hybrid lethality [123]. Therefore, the demonstration that N. simulans has the Hla1-1 allele has great significance for overcoming hybrid lethality in crosses with N. tabacum. Strong similarities in hybrid lethality suggest that several overcoming methods developed for other cross-combinations of Suaveolentes species and N. tabacum may be applicable to crosses between N. simulans and N. tabacum. Tissue cultures using cotyledons of hybrid seedlings before showing lethal symptoms are effective at overcoming hybrid lethality in crosses of N. tabacum with N. forsteri, N. rosulata, and N. suaveolens [141,142]. Viable hybrids can be also obtained by the application of cytokinin to hybrid seeds or seedlings in the cross N. suaveolens × N. tabacum [143,144]. In the cross N. gossei × N. tabacum, viable hybrids are obtained by using N. tabacum pollen irradiated with γ-rays or ion beams for the cross [145]. By using these methods, it would be possible to obtain viable hybrids from crosses between N. simulans and N. tabacum, which can be used as the starting material for breeding.
The HLA1 locus was mapped between markers Nb14-CAPS and NbRGH1-CAPS within a 21.7 cM genetic distance [137]. Considering that many Suaveolentes species have the Hla1-1 allele, these species might have the same haplotype in the candidate region of the HLA1 locus. Haplotype analysis in the present study suggested that the HLA1 locus is located in the region including Nb14-CAPS or the region including Nb49-CAPS and NbRGH1-CAPS. These results provide useful information for future positional cloning efforts. Elucidating the function of the HLA1 gene will contribute to understanding and overcoming hybrid lethality.

4. Materials and Methods

4.1. Plant Materials

Nicotiana tabacum (2n = 48, SSTT) ‘Red Russian’ was used as the parent for reciprocal crosses with N. simulans (2n = 40). We also used monosomic plants (2n = 47) for the Q chromosome of N. tabacum, which can be readily identified among F1 progeny obtained from the cross N. tabacum Haplo-Q (2n = 47; a monosomic line for the Q chromosome) × N. tabacum ‘Samsun NN’ using Q-chromosome-specific DNA markers [136]. For marker analysis of the HLA1 candidate region, we used 12 additional Suaveolentes species: N. africana, N. benthamiana, N. forsteri, N. excelsior, N. fragrans, N. goodspeedii, N. gossei, N. ingulba, N. maritima, N. megalosiphon, N. suaveolens, and N. velutina. All plants were cultivated in a greenhouse under natural day length, and fertigated at each watering with Otsuka-A nutrient solution (OAT Agrio Co., Tokyo, Japan).

4.2. Interspecific Crosses

Conventional crossing and sowing were carried out as follows: flowers of plants used as maternal parents were emasculated one day before anthesis and pollinated with the pollen of paternal parents. F1 seeds were sterilized with 5% sodium hypochlorite for 15 min. The sterilized seeds were sown in Petri dishes (90 mm diameter, 17 mm depth) containing 25 mL of 1/2 MS medium [146] supplemented with 1% sucrose and solidified with 0.2% Gelrite (pH 5.8), and then cultured at 28 °C under continuous illumination (approximately 150 µmol m−2 s−1). We investigated the number of capsules obtained after crosses and seed germination rates to evaluate the presence or absence of reproductive barriers.
Test-tube fertilization in combination with ovule culture was performed as previously described [147] to obtain hybrid seedlings between N. tabacum Q-chromosome monosomic plants (♀) and N. simulans (♂). Anthers of N. simulans plants were aseptically excised from still-closed flowers and stimulated to dehisce in an incubator held at 28 °C. Flowers of monosomic plants were emasculated one day before anthesis. On the next day, flowers of monosomic plants were collected and their corolla, sepals, and styles were removed. The ovaries were surface-sterilized with 70% ethanol for 30 s followed by a 5% sodium hypochlorite solution for 5 min. The ovary walls were peeled back to expose the placentas with intact ovules and the ovaries were then placed in Petri dishes (60 mm diameter, 17 mm depth) containing 8 mL of medium supplemented with 3% sucrose and solidified with 0.8% agar (pH 5.8). Pollen of N. simulans was spread on the surface of the placentas, which were then maintained at 28 °C under continuous illumination. Fertilized and enlarged ovules were excised from placentas 10 to 14 DAP and cultured in Petri dishes (60 mm diameter, 17 mm depth) containing 8 mL of 1/2 MS medium supplemented with 3% sucrose and solidified with 0.8% agar (pH 5.8) at 28 °C under continuous illumination.

4.3. Cultivation of Hybrid Seedlings

Hybrid seedlings obtained from reciprocal crosses between N. simulans and N. tabacum by conventional crossing were cultured at 28 or 36 °C under continuous illumination. At 30 DAG, these seedlings were subcultured into flat-bottomed test tubes (30 mm diameter, 120 mm length) that contained 25 mL of 1/2 MS medium supplemented with 1% sucrose and solidified with 0.2% Gelrite (pH 5.8). Then, the seedlings were subcultured to fresh medium every three weeks. Seedlings cultured at 36 °C for 55 DAG were transferred to 28 °C under continuous illumination to investigate whether these seedlings showed hybrid lethality. Finally, seedlings cultured at 28 °C for 72 DAG and those cultured at 28 °C for 35 days after transfer from 36 °C (90 DAG) were transplanted to pots filled with a 3:1 (v/v) mixture of peat-moss (Super Cell-Top V; Sakata Seed Co., Yokohama, Japan) and vermiculite (Nittai Co., Osaka, Japan) and cultivated at 28 °C. Seedlings were fertigated at each watering with Otsuka-A nutrient solution (OAT Agrio Co., Tokyo, Japan).
Hybrid seedlings obtained from the cross between N. tabacum Q-chromosome monosomic plants and N. simulans by test-tube fertilization with ovule culture were transferred to flat-bottomed test tubes (30 mm diameter, 120 mm length) that contained 25 mL of 1/2 MS medium supplemented with 1% sucrose and solidified with 0.2% Gelrite (pH 5.8) immediately after germination and cultured at 36 °C under continuous illumination. The seedlings were subcultured to fresh medium every three weeks. After analyses using Q-chromosome-specific DNA markers, the seedlings were transferred to 28 °C under continuous illumination.

4.4. Detection of Q-Chromosome-Specific DNA Markers

Total DNA was extracted from the leaves of each plant from the cross between N. tabacum Q-chromosome monosomic plants and N. simulans using a cetyltrimethylammonium bromide (CTAB)-based method [148]. Four Q-chromosome-specific STS markers, QCS1, QCS2, QCS3, and QCS4 [118,136], were detected by conventional PCR as follows. Reaction mixtures consisted of 1× Standard Buffer (BioAcademia, Suita, Japan), 0.2 mM of each dNTP, 0.2 µM of each primer, 20 ng of template DNA, and 0.5 U of Taq DNA polymerase (BioAcademia) in a total volume of 20 µL. PCR amplification was performed using the TProfessional Basic Thermocycler (Biometra, Göttingen, Germany) programmed for 3 min at 94 °C for initial denaturation, followed by 35 cycles of 30 s at 94 °C, 30 s at 60 °C, and 30–90 s at 72 °C, with a final 5 min extension at 72 °C. PCR products were separated by electrophoresis in 1.5% agarose gels with TBE buffer and were then visualized by staining with ethidium bromide.

4.5. Marker Analysis for the HLA1 Candidate Region

Total DNA was extracted from the young leaves of each Nicotiana species using a CTAB-based method [148]. Two CAPS markers linked to HLA1, Nb14-CAPS and NbRGH1-CAPS, were detected as previously described [137]. In the HLA1 candidate region between these markers, three new CAPS markers, Nb45-CAPS, Nb48-CAPS, and Nb49-CAPS (Table S1), were developed based on the sequence of Niben101Scf06736 scaffold in the v1.0.1 draft genome sequence of N. benthamiana [138], and detected as in the previous study [137].

5. Conclusions

Reciprocal hybrid seedlings from crosses between N. simulans and N. tabacum exhibited type II hybrid lethality characterized by browning of the hypocotyl and roots, suggesting that hybrid lethality is due to the interaction of nuclear genomes derived from each parental species, and not to a cytoplasmic effect. Hybrid lethality was temperature-sensitive and suppressed at 36 °C. Furthermore, the Q chromosome containing the HLA2 locus from N. tabacum was revealed to be involved in hybrid lethality. Altogether, these results indicated that N. simulans has the Hla1-1 allele, the same allele at the HLA1 locus as many other species in the Nicotiana section Suaveolentes. Haplotype analysis around the HLA1 locus suggested that there are at least six and two haplotypes containing Hla1-1 and hla1-2 alleles, respectively, in the section Suaveolentes. Elucidating the function of the HLA1 gene through positional cloning efforts will contribute to understanding and overcoming hybrid lethality.

Supplementary Materials

The following supporting information can be downloaded at https://www.mdpi.com/article/10.3390/ijms25021226/s1.

Author Contributions

Conceptualization, T.T.; methodology, T.T.; validation, T.T. and S.N.; investigation, C.M., S.N., T.O. and T.I.; data curation, T.T.; writing—original draft preparation, T.T.; writing—review and editing, T.T.; visualization, T.T.; supervision, T.T. and W.M.; project administration, T.T. and W.M.; funding acquisition, T.T. All authors have read and agreed to the published version of the manuscript.

Funding

This research was partly supported by JSPS KAKENHI Grant Numbers JP20880024, JP25870627, JP17K15224, and JP20K05988 from the Japan Society for the Promotion of Science.

Institutional Review Board Statement

Not applicable.

Informed Consent Statement

Not applicable.

Data Availability Statement

The original contributions presented in the study are included in the article/supplementary material, further inquiries can be directed to the corresponding author.

Acknowledgments

We thank the Leaf Tobacco Research Center, Japan Tobacco Inc., Oyama, Japan, for providing seeds of cultivated and wild species of the genus Nicotiana, and Tomoaki Kubo, the Iwata Tobacco Experiment Station of Japan Tobacco Inc., for the gift of Haplo-Q.

Conflicts of Interest

The authors declare no conflicts of interest. The funders had no role in the design of the study; in the collection, analyses, or interpretation of data; in the writing of the manuscript; or in the decision to publish the results.

References

  1. Hajjar, R.; Hodgkin, T. The use of wild relatives in crop improvement: A survey of developments over the last 20 years. Euphytica 2007, 156, 1–13. [Google Scholar] [CrossRef]
  2. Kuligowska, K.; Lütken, H.; Müller, R. Towards development of new ornamental plants: Status and progress in wide hybridization. Planta 2016, 244, 1–17. [Google Scholar] [CrossRef]
  3. Crespo-Herrera, L.A.; Garkava-Gustavsson, L.; Åhman, I. A systematic review of rye (Secale cereale L.) as a source of resistance to pathogens and pests in wheat (Triticum aestivum L.). Hereditas 2017, 154, 14. [Google Scholar] [CrossRef] [PubMed]
  4. Baek, Y.S.; Royer, S.M.; Broz, A.K.; Covey, P.A.; López-Casado, G.; Nuñez, R.; Kear, P.J.; Bonierbale, M.; Orillo, M.; van der Knaap, E.; et al. Interspecific reproductive barriers between sympatric populations of wild tomato species (Solanum section Lycopersicon). Am. J. Bot. 2016, 103, 1964–1978. [Google Scholar] [CrossRef] [PubMed]
  5. Murfett, J.; Strabala, T.J.; Zurek, D.M.; Mou, B.; Beecher, B.; McClure, B.A. S RNase and interspecific pollen rejection in the genus Nicotiana: Multiple pollen-rejection pathways contribute to unilateral incompatibility between self-incompatible and self-compatible species. Plant Cell 1996, 8, 943–958. [Google Scholar] [CrossRef] [PubMed]
  6. Kuhl, J.C.; Havey, M.J.; Hanneman, R.E. A genetic study of unilateral incompatibility between diploid (1EBN) Mexican species Solanum pinnatisectum and S. cardiophyllum subsp. cardiophyllum. Sex. Plant Reprod. 2002, 14, 305–313. [Google Scholar] [CrossRef]
  7. Sanchez, A.M.; Mariani, C. Expression of the ACC synthase and ACC oxidase coding genes after self-pollination and incongruous pollination of tobacco pistils. Plant Mol. Biol. 2002, 48, 351–359. [Google Scholar] [CrossRef] [PubMed]
  8. Onus, A.N.; Pickersgill, B. Unilateral incompatibility in Capsicum (Solanaceae): Occurrence and taxonomic distribution. Ann. Bot. 2004, 94, 289–295. [Google Scholar] [CrossRef]
  9. Lee, C.B.; Page, L.E.; McClure, B.A.; Holtsford, T.P. Post-pollination hybridization barriers in Nicotiana section Alatae. Sex Plant Reprod. 2008, 21, 183–195. [Google Scholar] [CrossRef]
  10. Maune, J.F.; Camadro, E.L.; Erazzú, L.E. Cross-incompatibility and self-incompatibility: Unrelated phenomena in wild and cultivated potatoes? Botany 2018, 96, 33–45. [Google Scholar] [CrossRef]
  11. Wang, L.; Filatov, D.A. Mechanisms of prezygotic post-pollination reproductive barriers in plants. Front. Plant Sci. 2023, 14, 1230278. [Google Scholar] [CrossRef] [PubMed]
  12. Burkart-Waco, D.; Ngo, K.; Dilkes, B.; Josefsson, C.; Comai, L. Early disruption of maternal-zygotic interaction and activation of defense-like responses in Arabidopsis interspecific crosses. Plant Cell 2013, 25, 2037–2055. [Google Scholar] [CrossRef] [PubMed]
  13. Kirkbride, R.C.; Yu, H.H.; Nah, G.; Zhang, C.; Shi, X.; Chen, Z.J. An epigenetic role for disrupted paternal gene expression in postzygotic seed abortion in Arabidopsis interspecific hybrids. Mol. Plant 2015, 8, 1766–1775. [Google Scholar] [CrossRef] [PubMed]
  14. Rebernig, C.A.; Lafon-Placette, C.; Hatorangan, M.R.; Slotte, T.; Köhler, C. Non-reciprocal interspecies hybridization barriers in the Capsella genus are established in the endosperm. PLoS Genet. 2015, 11, e1005295. [Google Scholar] [CrossRef] [PubMed]
  15. Oneal, E.; Willis, J.H.; Franks, R.G. Disruption of endosperm development is a major cause of hybrid seed inviability between Mimulus guttatus and Mimulus nudatus. New Phytol. 2016, 210, 1107–1120. [Google Scholar] [CrossRef] [PubMed]
  16. Lafon-Placette, C.; Johannessen, I.M.; Hornslien, K.S.; Ali, M.F.; Bjerkan, K.N.; Bramsiepe, J.; Glockle, B.M.; Rebernig, C.A.; Brysting, A.K.; Grini, P.E.; et al. Endosperm-based hybridization barriers explain the pattern of gene flow between Arabidopsis lyrata and Arabidopsis arenosa in Central Europe. Proc. Natl. Acad. Sci. USA 2017, 114, E1027–E1035. [Google Scholar] [CrossRef] [PubMed]
  17. Tikhenko, N.; Poursarebani, N.; Rutten, T.; Schnurbusch, T.; Börner, A. Embryo lethality in wheat-rye hybrids: Dosage effect and deletion bin mapping of the responsible wheat locus. Biol. Plant. 2017, 61, 342–348. [Google Scholar] [CrossRef]
  18. Cremona, G.; Iovene, M.; Festa, G.; Conicella, C.; Parisi, M. Production of embryo rescued hybrids between the landrace “Friariello” (Capsicum annuum var. annuum) and C. baccatum var. pendulum: Phenotypic and cytological characterization. Euphytica 2018, 214, 129. [Google Scholar] [CrossRef]
  19. Lafon-Placette, C.; Hatorangan, M.R.; Steige, K.A.; Cornille, A.; Lascoux, M.; Slotte, T.; Köhler, C. Paternally expressed imprinted genes associate with hybridization barriers in Capsella. Nat. Plants 2018, 4, 352–357. [Google Scholar] [CrossRef]
  20. Roth, M.; Florez-Rueda, A.M.; Griesser, S.; Paris, M.; Städler, T. Incidence and developmental timing of endosperm failure in post-zygotic isolation between wild tomato lineages. Ann. Bot. 2018, 121, 107–118. [Google Scholar] [CrossRef]
  21. Tonosaki, K.; Sekine, D.; Ohnishi, T.; Ono, A.; Furuumi, H.; Kurata, N.; Kinoshita, T. Overcoming the species hybridization barrier by ploidy manipulation in the genus Oryza. Plant J. 2018, 93, 534–544. [Google Scholar] [CrossRef] [PubMed]
  22. Roth, M.; Florez-Rueda, A.M.; Städler, T. Differences in effective ploidy drive genome-wide endosperm expression polarization and seed failure in wild tomato hybrids. Genetics 2019, 212, 141–152. [Google Scholar] [CrossRef] [PubMed]
  23. Toyomoto, D.; Uemura, M.; Taura, S.; Sato, T.; Henry, R.; Ishikawa, R.; Ichitani, K. Segregation distortion observed in the progeny of crosses between Oryza sativa and O. meridionalis caused by abortion during seed development. Plants 2019, 8, 398. [Google Scholar] [CrossRef] [PubMed]
  24. Bjerkan, K.N.; Hornslien, K.S.; Johannessen, I.M.; Krabberød, A.K.; van Ekelenburg, Y.S.; Kalantarian, M.; Shirzadi, R.; Comai, L.; Brysting, A.K.; Bramsiepe, J.; et al. Genetic variation and temperature affects hybrid barriers during interspecific hybridization. Plant J. 2020, 101, 122–140. [Google Scholar] [CrossRef] [PubMed]
  25. Coughlan, J.M.; Wilson Brown, M.; Willis, J.H. Patterns of hybrid seed inviability in the Mimulus guttatus sp. complex reveal a potential role of parental conflict in reproductive isolation. Curr. Biol. 2020, 30, 83–93.e85. [Google Scholar] [CrossRef] [PubMed]
  26. Dziasek, K.; Simon, L.; Lafon-Placette, C.; Laenen, B.; Wärdig, C.; Santos-González, J.; Slotte, T.; Köhler, C. Hybrid seed incompatibility in Capsella is connected to chromatin condensation defects in the endosperm. PLoS Genet. 2021, 17, e1009370. [Google Scholar] [CrossRef] [PubMed]
  27. Florez-Rueda, A.M.; Fiscalini, F.; Roth, M.; Grossniklaus, U.; Städler, T. Endosperm and seed transcriptomes reveal possible roles for small RNA pathways in wild tomato hybrid seed failure. Genome Biol. Evol. 2021, 13, evab107. [Google Scholar] [CrossRef]
  28. Kinser, T.J.; Smith, R.D.; Lawrence, A.H.; Cooley, A.M.; Vallejo-Marín, M.; Conradi Smith, G.D.; Puzey, J.R. Endosperm-based incompatibilities in hybrid monkeyflowers. Plant Cell 2021, 33, 2235–2257. [Google Scholar] [CrossRef]
  29. Köhler, C.; Dziasek, K.; Del Toro-De León, G. Postzygotic reproductive isolation established in the endosperm: Mechanisms, drivers and relevance. Philos. Trans. R. Soc. Lond. B Biol. Sci. 2021, 376, 20200118. [Google Scholar] [CrossRef]
  30. Städler, T.; Florez-Rueda, A.M.; Roth, M. A revival of effective ploidy: The asymmetry of parental roles in endosperm-based hybridization barriers. Curr. Opin. Plant Biol. 2021, 61, 102015. [Google Scholar] [CrossRef]
  31. Huc, J.; Dziasek, K.; Pachamuthu, K.; Woh, T.; Kohler, C.; Borges, F. Bypassing reproductive barriers in hybrid seeds using chemically induced epimutagenesis. Plant Cell 2022, 34, 989–1001. [Google Scholar] [CrossRef] [PubMed]
  32. He, H.; Shiragaki, K.; Tezuka, T. Understanding and overcoming hybrid lethality in seed and seedling stages as barriers to hybridization and gene flow. Front. Plant Sci. 2023, 14, 1219417. [Google Scholar] [CrossRef] [PubMed]
  33. He, H.; Sadahisa, K.; Yokoi, S.; Tezuka, T. Parental genome imbalance causes hybrid seed lethality as well as ovary abscission in interspecific and interploidy crosses in Nicotiana. Front. Plant Sci. 2022, 13, 899206. [Google Scholar] [CrossRef] [PubMed]
  34. Sandstedt, G.D.; Sweigart, A.L. Developmental evidence for parental conflict in driving Mimulus species barriers. New Phytol. 2022, 236, 1545–1557. [Google Scholar] [CrossRef] [PubMed]
  35. Xu, W.; Sato, H.; Bente, H.; Santos-González, J.; Köhler, C. Endosperm cellularization failure induces a dehydration stress response leading to embryo arrest. Plant Cell 2023, 35, 874–888. [Google Scholar] [CrossRef] [PubMed]
  36. Zumajo-Cardona, C.; Aguirre, M.; Castillo-Bravo, R.; Mizzotti, C.; Di Marzo, M.; Banfi, C.; Mendes, M.A.; Spillane, C.; Colombo, L.; Ezquer, I. Maternal control of triploid seed development by the TRANSPARENT TESTA 8 (TT8) transcription factor in Arabidopsis thaliana. Sci. Rep. 2023, 13, 1316. [Google Scholar] [CrossRef] [PubMed]
  37. Chu, Y.E.; Oka, H.I. The distribution and effects of genes causing F1 weakness in Oryza breviligulata and O. glaberrima. Genetics 1972, 70, 163–173. [Google Scholar] [CrossRef] [PubMed]
  38. Sato, Y.I.; Hayashi, K. Distribution of the complementary genes causing F1 weakness in the common rice and its wild relatives. I. L-2-a gene in Asian native cultivars. Jpn. J. Genet. 1983, 58, 411–418. [Google Scholar] [CrossRef]
  39. Gepts, P.; Bliss, F.A. F1 hybrid weakness in the common bean: Differential geographic origin suggets two gene pools in cultivated bean germplasm. J. Hered. 1985, 76, 447–450. [Google Scholar] [CrossRef]
  40. Reiber, J.M.; Neuman, D.S. Hybrid weakness in Phaseolus vulgaris. II. Disruption of root-shoot integration. J. Plant Growth Regul. 1999, 18, 107–112. [Google Scholar] [CrossRef]
  41. Hannah, M.A.; Krämer, K.M.; Geffroy, V.; Kopka, J.; Blair, M.W.; Erban, A.; Vallejos, C.E.; Heyer, A.G.; Sanders, F.E.; Millner, P.A.; et al. Hybrid weakness controlled by the dosage-dependent lethal (DL) gene system in common bean (Phaseolus vulgaris) is caused by a shoot-derived inhibitory signal leading to salicylic acid-associated root death. New Phytol. 2007, 176, 537–549. [Google Scholar] [CrossRef] [PubMed]
  42. Chen, C.; Chen, H.; Lin, Y.S.; Shen, J.B.; Shan, J.X.; Qi, P.; Shi, M.; Zhu, M.Z.; Huang, X.H.; Feng, Q.; et al. A two-locus interaction causes interspecific hybrid weakness in rice. Nat. Commun. 2014, 5, 3357. [Google Scholar] [CrossRef] [PubMed]
  43. Ichitani, K.; Taura, S.; Sato, M.; Kuboyama, T. Distribution of Hwc2-1, a causal gene of a hybrid weakness, in the World Rice Core collection and the Japanese Rice mini Core collection: Its implications for varietal differentiation and artificial selection. Breed. Sci. 2016, 66, 776–789. [Google Scholar] [CrossRef] [PubMed]
  44. Nadir, S.; Li, W.; Zhu, Q.; Khan, S.; Zhang, X.L.; Zhang, H.; Wei, Z.F.; Li, M.T.; Zhou, L.; Li, C.Y.; et al. A novel discovery of a long terminal repeat retrotransposon-induced hybrid weakness in rice. J. Exp. Bot. 2019, 70, 1197–1207. [Google Scholar] [CrossRef] [PubMed]
  45. Shiragaki, K.; Iizuka, T.; Ichitani, K.; Kuboyama, T.; Morikawa, T.; Oda, M.; Tezuka, T. HWA1-and HWA2-mediated hybrid weakness in rice involves cell death, reactive oxygen species accumulation, and disease resistance-related gene upregulation. Plants 2019, 8, 450. [Google Scholar] [CrossRef]
  46. Shiragaki, K.; Seko, S.; Yokoi, S.; Tezuka, T. Capsicum annuum with causal allele of hybrid weakness is prevalent in Asia. PLoS ONE 2022, 17, e0271091. [Google Scholar] [CrossRef] [PubMed]
  47. Li, Z.; Mao, C.; Wu, X.; Zhou, H.; Zhao, K.; Jiang, J.; Chen, S.; Fang, W.; Guan, Z.; Zhang, J.; et al. Hybrid weakness and continuous flowering caused by compound expression of FTLs in Chrysanthemum morifolium × Leucanthemum paludosum intergeneric hybridization. Front. Plant Sci. 2023, 14, 1120820. [Google Scholar] [CrossRef]
  48. Hollingshead, L. A lethal factor in Crepis effective only in an interspecific hybrid. Genetics 1930, 15, 114–140. [Google Scholar] [CrossRef]
  49. Oka, H.I. Phylogenetic differentiation of cultivated rice. XV. Complementary lethal genes in rice. Jpn. J. Genet. 1957, 32, 83–87. [Google Scholar] [CrossRef]
  50. Tsunewaki, K. Monosomic and conventional analyses in common wheat. III. Lethality. Jpn. J. Genet. 1960, 35, 71–75. [Google Scholar] [CrossRef]
  51. Nishikawa, K. Hybrid lethality in crosses between Emmer wheats and Aegilops squarrosa, II. Synthesized 6x wheatis employed as test varieties. Jpn. J. Genet. 1962, 37, 227–236. [Google Scholar] [CrossRef]
  52. Yamaguchi, H.; Tatara, A. Cell biological study on seedling lethality by complementary genes in barley. Jpn. J. Breed. 1974, 24, 25–30. [Google Scholar] [CrossRef]
  53. Lee, J.A. Genetics of D3 complementary lethality in Gossypium hirsutum and G. barbadense. J. Hered. 1981, 72, 299–300. [Google Scholar] [CrossRef]
  54. Inoue, E.; Sakuma, F.; Kasumi, M.; Hara, H.; Tsukihashi, T. Effect of high-temperature on suppression of the lethality exhibited in the intergeneric hybrid between Japanese pear (Pyrus pyrifolia Nakai) and apple (Malus × domestica Borkh.). Sci. Hortic. 2003, 98, 385–396. [Google Scholar] [CrossRef]
  55. Song, L.; Guo, W.; Zhang, T. Interaction of novel Dobzhansky-Muller type genes for the induction of hybrid lethality between Gossypium hirsutum and G. barbadense cv. Coastland R4-4. Theor. Appl. Genet. 2009, 119, 33–41. [Google Scholar] [CrossRef]
  56. Tezuka, T.; Kuboyama, T.; Matsuda, T.; Marubashi, W. Seven of eight species in Nicotiana section Suaveolentes have common factors leading to hybrid lethality in crosses with Nicotiana tabacum. Ann. Bot. 2010, 106, 267–276. [Google Scholar] [CrossRef]
  57. Hu, Y.; Xue, Y.; Liu, J.; Fang, Z.; Yang, L.; Zhang, Y.; Lv, H.; Liu, Y.; Li, Z.; Zhuang, M. Hybrid lethality caused by two complementary dominant genes in cabbage (Brassica oleracea L.). Mol. Breed. 2016, 36, 73. [Google Scholar] [CrossRef]
  58. Xiao, Z.; Hu, Y.; Zhang, X.; Xue, Y.; Fang, Z.; Yang, L.; Zhang, Y.; Liu, Y.; Li, Z.; Liu, X.; et al. Fine mapping and transcriptome analysis reveal candidate genes associated with hybrid lethality in cabbage (Brassica oleracea). Genes 2017, 8, 147. [Google Scholar] [CrossRef]
  59. Deng, J.; Fang, L.; Zhu, X.; Zhou, B.; Zhang, T. A CC-NBS-LRR gene induces hybrid lethality in cotton. J. Exp. Bot. 2019, 70, 5145–5156. [Google Scholar] [CrossRef]
  60. Xiao, Z.; Liu, X.; Fang, Z.; Yang, L.; Zhang, Y.; Wang, Y.; Zhuang, M.; Lv, H. Transcriptome and plant hormone analyses provide new insight into the molecular regulatory networks underlying hybrid lethality in cabbage (Brassica oleracea). Planta 2021, 253, 96. [Google Scholar] [CrossRef]
  61. Mori, N.; Tsunewaki, K. Distribution of the necrosis and chlorosis genes in two wild tetraploid wheats, Triticum dicoccoides and T. araraticum. Jpn. J. Genet. 1992, 67, 371–380. [Google Scholar] [CrossRef]
  62. Krüger, J.; Thomas, C.M.; Golstein, C.; Dixon, M.S.; Smoker, M.; Tang, S.; Mulder, L.; Jones, J.D.G. A tomato cysteine protease required for Cf-2-dependent disease resistance and suppression of autonecrosis. Science 2002, 296, 744–747. [Google Scholar] [CrossRef]
  63. Jeuken, M.J.W.; Zhang, N.W.; McHale, L.K.; Pelgrom, K.; den Boer, E.; Lindhout, P.; Michelmore, R.W.; Visser, R.G.F.; Niks, R.E. Rin4 causes hybrid necrosis and race-specific resistance in an interspecific lettuce hybrid. Plant Cell 2009, 21, 3368–3378. [Google Scholar] [CrossRef]
  64. Montanari, S.; Brewer, L.; Lamberts, R.; Velasco, R.; Malnoy, M.; Perchepied, L.; Guérif, P.; Durel, C.E.; Bus, V.G.M.; Gardiner, S.E.; et al. Genome mapping of postzygotic hybrid necrosis in an interspecific pear population. Hortic. Res. 2016, 3, 15064. [Google Scholar] [CrossRef]
  65. Sakaguchi, K.; Nishijima, R.; Iehisa, J.C.; Takumi, S. Fine mapping and genetic association analysis of Net2, the causative D-genome locus of low temperature-induced hybrid necrosis in interspecific crosses between tetraploid wheat and Aegilops tauschii. Genetica 2016, 144, 523–533. [Google Scholar] [CrossRef]
  66. Świadek, M.; Proost, S.; Sieh, D.; Yu, J.; Todesco, M.; Jorzig, C.; Rodriguez Cubillos, A.E.; Plötner, B.; Nikoloski, Z.; Chae, E.; et al. Novel allelic variants in ACD6 cause hybrid necrosis in local collection of Arabidopsis thaliana. New Phytol. 2017, 213, 900–915. [Google Scholar] [CrossRef]
  67. Kuki, Y.; Ohno, R.; Yoshida, K.; Takumi, S. Heterologous expression of wheat WRKY transcription factor genes transcriptionally activated in hybrid necrosis strains alters abiotic and biotic stress tolerance in transgenic Arabidopsis. Plant Physiol. Biochem. 2020, 150, 71–79. [Google Scholar] [CrossRef]
  68. Barragan, A.C.; Collenberg, M.; Wang, J.; Lee, R.R.Q.; Cher, W.Y.; Rabanal, F.A.; Ashkenazy, H.; Weigel, D.; Chae, E. A truncated singleton NLR causes hybrid necrosis in Arabidopsis thaliana. Mol. Biol. Evol. 2021, 38, 557–574. [Google Scholar] [CrossRef]
  69. Jia, H.; Xue, S.; Lei, L.; Fan, M.; Peng, S.; Li, T.; Nagarajan, R.; Carver, B.; Ma, Z.; Deng, J.; et al. A semi-dominant NLR allele causes whole-seedling necrosis in wheat. Plant Physiol. 2021, 186, 483–496. [Google Scholar] [CrossRef]
  70. Zhang, M.; Lv, S.; Wang, Y.; Wang, S.; Chen, C.; Wang, C.; Wang, Y.; Zhang, H.; Ji, W. Fine mapping and distribution analysis of hybrid necrosis genes Ne1 and Ne2 in wheat in China. Theor. Appl. Genet. 2022, 135, 1177–1189. [Google Scholar] [CrossRef]
  71. Li, C.; Binaghi, M.; Pichon, V.; Cannarozzi, G.; Brandão de Freitas, L.; Hanemian, M.; Kuhlemeier, C. Tight genetic linkage of genes causing hybrid necrosis and pollinator isolation between young species. Nat. Plants 2023, 9, 420–432. [Google Scholar] [CrossRef] [PubMed]
  72. Mariam, A.L.; Zakri, A.H.; Mahani, M.C.; Normah, M.N. Interspecific hybridization of cultivated rice, Oryza sativa L. with the wild rice, O. minuta Presl. Theor. Appl. Genet. 1996, 93, 664–671. [Google Scholar] [CrossRef] [PubMed]
  73. Fu, X.; Lu, Y.; Liu, X.; Li, J.; Feng, J. Cytological mechanisms of interspecific incrossability and hybrid sterility between Oryza sativa L. and O. alta Swallen. Chi. Sci. Bull. 2007, 52, 755–765. [Google Scholar] [CrossRef]
  74. Yamagata, Y.; Yamamoto, E.; Aya, K.; Win, K.T.; Doi, K.; Sobrizal; Ito, T.; Kanamori, H.; Wu, J.; Matsumoto, T.; et al. Mitochondrial gene in the nuclear genome induces reproductive barrier in rice. Proc. Natl. Acad. Sci. USA 2010, 107, 1494–1499. [Google Scholar] [CrossRef] [PubMed]
  75. Yang, J.; Zhao, X.; Cheng, K.; Du, H.; Ouyang, Y.; Chen, J.; Qiu, S.; Huang, J.; Jiang, Y.; Jiang, L.; et al. A killer-protector system regulates both hybrid sterility and segregation distortion in rice. Science 2012, 337, 1336–1340. [Google Scholar] [CrossRef] [PubMed]
  76. Stathos, A.; Fishman, L. Chromosomal rearrangements directly cause underdominant F1 pollen sterility in Mimulus lewisii-Mimulus cardinalis hybrids. Evolution 2014, 68, 3109–3119. [Google Scholar] [CrossRef]
  77. Chetelat, R.T. Overcoming sterility and unilateral incompatibility of Solanum lycopersicum × S. sitiens hybrids. Euphytica 2016, 207, 319–330. [Google Scholar] [CrossRef]
  78. Koide, Y.; Ogino, A.; Yoshikawa, T.; Kitashima, Y.; Saito, N.; Kanaoka, Y.; Onishi, K.; Yoshitake, Y.; Tsukiyama, T.; Saito, H.; et al. Lineage-specific gene acquisition or loss is involved in interspecific hybrid sterility in rice. Proc. Natl. Acad. Sci. USA 2018, 115, E1955–E1962. [Google Scholar] [CrossRef]
  79. Li, J.; Zhou, J.; Zhang, Y.; Yang, Y.; Pu, Q.; Tao, D. New insights into the nature of interspecific hybrid sterility in rice. Front. Plant Sci. 2020, 11, 555572. [Google Scholar] [CrossRef]
  80. Jiang, W.; Chu, S.H.; Piao, R.; Chin, J.H.; Jin, Y.M.; Lee, J.; Qiao, Y.; Han, L.; Piao, Z.; Koh, H.J. Fine mapping and candidate gene analysis of hwh1 and hwh2, a set of complementary genes controlling hybrid breakdown in rice. Theor. Appl. Genet. 2008, 116, 1117–1127. [Google Scholar] [CrossRef]
  81. Miura, K.; Yamamoto, E.; Morinaka, Y.; Takashi, T.; Kitano, H.; Matsuoka, M.; Ashikari, M. The hybrid breakdown 1(t) locus induces interspecific hybrid breakdown between rice Oryza sativa cv. Koshihikari and its wild relative O. nivara. Breed. Sci. 2008, 58, 99–105. [Google Scholar] [CrossRef]
  82. Boutraa, T. Root and shoot abnormalities in F2 progeny of a cross between two cultivars of common bean (Phaseolus vulgaris L.) from different gene pools. Am. Eurasian J. Agron. 2009, 2, 117–123. [Google Scholar]
  83. Plötner, B.; Nurmi, M.; Fischer, A.; Watanabe, M.; Schneeberger, K.; Holm, S.; Vaid, N.; Schöttler, M.A.; Walther, D.; Hoefgen, R.; et al. Chlorosis caused by two recessively interacting genes reveals a role of RNA helicase in hybrid breakdown in Arabidopsis thaliana. Plant J. 2017, 91, 251–262. [Google Scholar] [CrossRef]
  84. Zuellig, M.P.; Sweigart, A.L. A two-locus hybrid incompatibility is widespread, polymorphic, and active in natural populations of Mimulus. Evolution 2018, 72, 2394–2405. [Google Scholar] [CrossRef] [PubMed]
  85. Zuellig, M.P.; Sweigart, A.L. Gene duplicates cause hybrid lethality between sympatric species of Mimulus. PLoS Genet. 2018, 14, e1007130. [Google Scholar] [CrossRef] [PubMed]
  86. Matsubara, K. How hybrid breakdown can be handled in rice crossbreeding? Front. Plant Sci. 2020, 11, 575412. [Google Scholar] [CrossRef] [PubMed]
  87. Munguambe, N.E.; Inoue, S.; Demeter, Z.; Yamagata, Y.; Yasui, H.; Zheng, S.H.; Fujita, D. Substitution mapping of a locus responsible for hybrid breakdown in populations derived from interspecific introgression line. Front. Plant Sci. 2021, 12, 633247. [Google Scholar] [CrossRef]
  88. Zhang, M.; Wei, H.; Liu, J.; Bian, Y.; Ma, Q.; Mao, G.; Wang, H.; Wu, A.; Zhang, J.; Chen, P.; et al. Non-functional GoFLA19s are responsible for the male sterility caused by hybrid breakdown in cotton (Gossypium spp.). Plant J. 2021, 107, 1198–1212. [Google Scholar] [CrossRef]
  89. Xu, P.; Xu, J.; Guo, Q.; Xu, Z.; Ji, W.; Yu, H.; Cai, J.; Zhao, L.; Zhao, J.; Liu, J.; et al. A recessive LRR-RLK gene causes hybrid breakdown in cotton. Theor. Appl. Genet. 2023, 136, 189. [Google Scholar] [CrossRef]
  90. Knapp, S.; Chase, M.W.; Clarkson, J.J. Nomenclatural changes and a new sectional classification in Nicotiana (Solanaceae). Taxon 2004, 53, 73–82. [Google Scholar] [CrossRef]
  91. Chase, M.W.; Christenhusz, M.J.M.; Palsson, R.L.; Fay, M.F.; Dodsworth, S.; Conran, J.G.; Cauz-Santos, L.A.; Nollet, F.; Samuel, R.; Paun, O. Species delimitation in Nicotiana sect. Suaveolentes (Solanaceae): Reciprocal illumination leads to recognition of many new species. Curtis’s Bot. Mag. 2021, 38, 266–286. [Google Scholar] [CrossRef]
  92. Holmes, F.O. Inheritance of resistance to tobacco-mosaic disease in tobacco. Phytopathology 1938, 28, 553–561. [Google Scholar]
  93. Gerstel, D.U. Inheritance in Nicotiana Tabacum. XIX. Identification of the Tabacum chromosome replaced by one from N. glutinosa in mosaic-resistant Holmes Samsoun tobacco. Genetics 1945, 30, 448–454. [Google Scholar] [CrossRef] [PubMed]
  94. Valleau, W.D. Breeding tobacco for disease resistance. Econ. Bot. 1952, 6, 69–102. [Google Scholar] [CrossRef]
  95. Clayton, E.E. The genetics and breeding progress in tobacco during the last 50 years. Agron. J. 1958, 50, 352–356. [Google Scholar] [CrossRef]
  96. Marathe, R.; Anandalakshmi, R.; Liu, Y.; Dinesh-Kumar, S.P. The tobacco mosaic virus resistance gene, N. Mol. Plant Pathol. 2002, 3, 167–172. [Google Scholar] [CrossRef] [PubMed]
  97. Johnson, E.S.; Wolff, M.F.; Wernsman, E.A.; Atchley, W.R.; Shew, H.D. Origin of the black shank resistance gene, Ph, in tobacco cultivar Coker 371-Gold. Plant Dis. 2002, 86, 1080–1084. [Google Scholar] [CrossRef] [PubMed]
  98. Bao, Y.; Ding, N.; Qin, Q.; Wu, X.; Martinez, N.; Miller, R.; Zaitlin, D.; Li, D.; Yang, S. Genetic mapping of the Ph gene conferring disease resistance to black shank in tobacco. Mol. Breed. 2019, 39, 122. [Google Scholar] [CrossRef]
  99. Clayton, E.E. Male sterile tobacco. J. Hered. 1950, 41, 171–175. [Google Scholar] [CrossRef]
  100. Sand, S.A. Genetic modification of cytoplasmic male sterility in tobacco. J. Hered. 1968, 59, 175–177. [Google Scholar] [CrossRef]
  101. Schweppenhauser, M.A.; Mann, T.J. Restoration of staminal fertility in Nicotiana by introgression. Can. J. Genet. Cytol. 1968, 10, 401–411. [Google Scholar] [CrossRef]
  102. Sand, S.A.; Christoff, G.T. Cytoplasmic-chromosomal interactions and altered differentiation in tobacco. J. Hered. 1973, 64, 24–30. [Google Scholar] [CrossRef]
  103. Burns, J.A.; Gerstel, D.U.; Sand, S.A. Cytoplasmic male sterility in Nicotiana, restoration of fertility, and the nucleolus. II. N. debneyi cytoplasm. Genetics 1978, 90, 151–159. [Google Scholar] [CrossRef] [PubMed]
  104. Kumashiro, T.; Kubo, T. Cytoplasm transfer of Nicotiana debneyi to N. tabacum by protoplast fusion. Jpn. J. Breed. 1986, 36, 39–48. [Google Scholar] [CrossRef]
  105. Kumashiro, T.; Asahi, T.; Komari, T. A new source of cytoplasmic male sterile tobacco obtained by fusion between Nicotiana tabacum and X-irradiated N. africana protoplasts. Plant Sci. 1988, 55, 247–254. [Google Scholar] [CrossRef]
  106. Nikova, V.M.; Zagorska, N.A. Overcoming hybrid incompatibility between Nicotiana africana Merxm. and N. tabacum and development of cytoplasmically male sterile tobacco forms. Plant Cell Tiss. Org. Cult. 1990, 23, 71–75. [Google Scholar] [CrossRef]
  107. Nikova, V.M.; Zagorska, N.A.; Pundeva, R.S. Development of four tobacco cytoplasmic male sterile sources using in vitro techniques. Plant Cell Tiss. Org. Cult. 1991, 27, 289–295. [Google Scholar] [CrossRef]
  108. Berbeć, A.; Doroszewska, T. The use of Nicotiana species in tobacco improvement. In The Tobacco Plant Genome; Ivanov, N.V., Sierro, N., Peitsch, M.C., Eds.; Springer International Publishing: Cham, Switzerland, 2020; pp. 101–146. [Google Scholar]
  109. Burk, L.G.; Heggestad, H.E. The genus Nicotiana: A source of resistance to diseases of cultivated tobacco. Econ. Bot. 1966, 20, 76–88. [Google Scholar] [CrossRef]
  110. Japan Tobacco Inc. The Genus Nicotiana Illustrated; Seibundo Shinkosha: Tokyo, Japan, 1994. [Google Scholar]
  111. Kubo, T. Studies on hybrid breeding by the use of cytoplasmic male sterility in flue-cured tobacco. Bull. Iwata Tob. Exp. Stn. 1985, 17, 69–138, (In Japanese with English summary). [Google Scholar] [CrossRef]
  112. Kubo, T. Male sterility in tobacco. Plant Tis. Cult. Lett. 1985, 2, 76–77. (In Japanese) [Google Scholar] [CrossRef]
  113. Chase, M.W.; Samuel, R.; Leitch, A.R.; Guignard, M.S.; Conran, J.G.; Nollet, F.; Fletcher, P.; Jakob, A.; Cauz-Santos, L.A.; Vignolle, G.; et al. Down, then up: Non-parallel genome size changes and a descending chromosome series in a recent radiation of the Australian allotetraploid plant species, Nicotiana section Suaveolentes (Solanaceae). Ann. Bot. 2023, 131, 123–142. [Google Scholar] [CrossRef] [PubMed]
  114. Goodspeed, T.; Thompson, M.C. Cytotaxonomy of Nicotiana. II. Bot. Rev. 1959, 25, 385–415. [Google Scholar] [CrossRef]
  115. Gopinath, D.; Krishnamurthy, K.; Krishnamurthy, A. Cytological studies on interspecific hybrids in Nicotiana involving a new Australian species, Nicotiana amplexicaulis. Can. J. Genet. Cytol. 1965, 7, 328–340. [Google Scholar] [CrossRef]
  116. Clarkson, J.J.; Dodsworth, S.; Chase, M.W. Time-calibrated phylogenetic trees establish a lag between polyploidisation and diversification in Nicotiana (Solanaceae). Plant Syst. Evol. 2017, 303, 1001–1012. [Google Scholar] [CrossRef]
  117. Schiavinato, M.; Marcet-Houben, M.; Dohm, J.C.; Gabaldón, T.; Himmelbauer, H. Parental origin of the allotetraploid tobacco Nicotiana benthamiana. Plant J. 2020, 102, 541–554. [Google Scholar] [CrossRef]
  118. Tezuka, T.; Marubashi, W. Hybrid lethality in interspecific hybrids between Nicotiana tabacum and N. suaveolens: Evidence that the Q chromosome causes hybrid lethality based on Q-chromosome-specific DNA markers. Theor. Appl. Genet. 2006, 112, 1172–1178. [Google Scholar] [CrossRef] [PubMed]
  119. Tezuka, T.; Kuboyama, T.; Matsuda, T.; Marubashi, W. Possible involvement of genes on the Q chromosome of Nicotiana tabacum in expression of hybrid lethality and programmed cell death during interspecific hybridization to Nicotiana debneyi. Planta 2007, 226, 753–764. [Google Scholar] [CrossRef]
  120. Iizuka, T.; Kuboyama, T.; Marubashi, W.; Oda, M.; Tezuka, T. Nicotiana debneyi has a single dominant gene causing hybrid lethality in crosses with N. tabacum. Euphytica 2012, 186, 321–328. [Google Scholar] [CrossRef]
  121. Tezuka, T.; Matsuo, C.; Iizuka, T.; Oda, M.; Marubashi, W. Identification of Nicotiana tabacum linkage group corresponding to the Q chromosome gene(s) involved in hybrid lethality. PLoS ONE 2012, 7, e37822. [Google Scholar] [CrossRef]
  122. Ma, J.; Hancock, W.G.; Nifong, J.M.; Kernodle, S.P.; Lewis, R.S. Identification and editing of a hybrid lethality gene expands the range of interspecific hybridization potential in Nicotiana. Theor. Appl. Genet. 2020, 133, 2915–2925. [Google Scholar] [CrossRef]
  123. Yamada, T.; Marubashi, W.; Niwa, M. Detection of four lethality types in interspecific crosses among Nicotiana species through the use of three rescue methods for lethality. Breed. Sci. 1999, 49, 203–210. [Google Scholar] [CrossRef]
  124. Yamada, T.; Marubashi, W.; Niwa, M. Apoptotic cell death induces temperature-sensitive lethality in hybrid seedlings and calli derived from the cross of Nicotiana suaveolens × N. tabacum. Planta 2000, 211, 614–622. [Google Scholar] [CrossRef]
  125. Mino, M.; Maekawa, K.; Ogawa, K.; Yamagishi, H.; Inoue, M. Cell death process during expression of hybrid lethality in interspecific F1 hybrid between Nicotiana gossei Domin and Nicotiana tabacum. Plant Physiol. 2002, 130, 1776–1787. [Google Scholar] [CrossRef] [PubMed]
  126. Masuda, Y.; Yamada, T.; Kuboyama, T.; Marubashi, W. Identification and characterization of genes involved in hybrid lethality in hybrid tobacco cells (Nicotiana suaveolens × N. tabacum) using suppression subtractive hybridization. Plant Cell Rep. 2007, 26, 1595–1604. [Google Scholar] [CrossRef] [PubMed]
  127. Mino, M.; Kubota, M.; Nogi, T.; Zhang, S.; Inoue, M. Hybrid lethality in interspecific F1 hybrid Nicotiana gossei × N. tabacum involves a MAP-kinases signalling cascade. Plant Biol. 2007, 9, 366–373. [Google Scholar] [CrossRef] [PubMed]
  128. Shiragaki, K.; Nakamura, R.; Nomura, S.; He, H.; Yamada, T.; Marubashi, W.; Oda, M.; Tezuka, T. Phenylalanine ammonia-lyase and phenolic compounds are related to hybrid lethality in the cross Nicotiana suaveolens × N. tabacum. Plant Biotechnol. 2020, 37, 327–333. [Google Scholar] [CrossRef]
  129. Tezuka, T.; Marubashi, W. Genes in S and T subgenomes are responsible for hybrid lethality in interspecific hybrids between Nicotiana tabacum and Nicotiana occidentalis. PLoS ONE 2012, 7, e36204. [Google Scholar] [CrossRef]
  130. Kawaguchi, K.; Ohya, Y.; Maekawa, M.; Iizuka, T.; Hasegawa, A.; Shiragaki, K.; He, H.; Oda, M.; Morikawa, T.; Yokoi, S.; et al. Two Nicotiana occidentalis accessions enable gene identification for Type II hybrid lethality by the cross to N. sylvestris. Sci. Rep. 2021, 11, 17093. [Google Scholar] [CrossRef]
  131. Gangadevi, T.; Rao, P.N. Cytogenetic study of an interspecific cross of Nicotiana debneyi × N. umbratica. Theor. Appl. Genet. 1982, 63, 177–181. [Google Scholar] [CrossRef]
  132. Gangadevi, T.; Rao, P.N.; KV, S. Morphological and cytological studies of interspecific hybrids in Nicotiona involving N. umbratica Burbidge. Cytologia 1987, 52, 475–486. [Google Scholar] [CrossRef]
  133. Gangadevi, T.; Rao, P.; Satyanarayana, K. Cytogenetic studies of some synthetic amphiploids of Nicotiana. J. Hered. 1988, 79, 119–122. [Google Scholar] [CrossRef]
  134. Tezuka, T.; Kitamura, N.; Yanase, M.; Morikawa, T. Evaluation of crossability between Nicotiana benthamiana and Nicotiana excelsior. Agronomy 2021, 11, 2583. [Google Scholar] [CrossRef]
  135. Olmo, H.P. Genetical studies of monosomic types of Nicotiana tabacum. Genetics 1935, 20, 286–300. [Google Scholar] [CrossRef] [PubMed]
  136. Tezuka, T.; Onosato, K.; Hijishita, S.; Marubashi, W. Development of Q-chromosome-specific DNA markers in tobacco and their use for identification of a tobacco monosomic line. Plant Cell Physiol. 2004, 45, 1863–1869. [Google Scholar] [CrossRef] [PubMed]
  137. Tezuka, T.; Kitamura, N.; Imagawa, S.; Hasegawa, A.; Shiragaki, K.; He, H.; Yanase, M.; Ogata, Y.; Morikawa, T.; Yokoi, S. Genetic mapping of the HLA1 locus causing hybrid lethality in Nicotiana interspecific hybrids. Plants 2021, 10, 2062. [Google Scholar] [CrossRef] [PubMed]
  138. Bombarely, A.; Rosli, H.G.; Vrebalov, J.; Moffett, P.; Mueller, L.A.; Martin, G.B. A draft genome sequence of Nicotiana benthamiana to enhance molecular plant-microbe biology research. Mol. Plant Microbe Interact. 2012, 25, 1523–1530. [Google Scholar] [CrossRef] [PubMed]
  139. Tezuka, T.; Marubashi, W. Genomic factors lead to programmed cell death during hybrid lethality in interspecific hybrids between Nicotiana tabacum and N. debneyi. SABRAO J. Breed. Genet. 2006, 38, 69–81. [Google Scholar]
  140. Mino, M.; Murata, N.; Date, S.; Inoue, M. Cell death in seedlings of the interspecific hybrid of Nicotiana gossei and N. tabacum; possible role of knob-like bodies formed on tonoplast in vacuolar-collapse-mediated cell death. Plant Cell Rep. 2007, 26, 407–419. [Google Scholar] [CrossRef]
  141. Lloyd, R. Tissue culture as a means of circumventing lethality in an interspecific Nicotiana hybrid. Tob. Sci. 1975, 19, 4–6. [Google Scholar]
  142. Ternovskii, M.F.; Shinkareva, I.K.; Lar’kina, N.I. Production of interspecific tobacco hybrids by the pollination of ovules in vitro. Sov. Genet. 1976, 12, 1209–1213. [Google Scholar]
  143. Inoue, E.; Marubashi, W.; Niwa, M. Simple method for overcoming the lethality observed in the hybrid between Nicotiana suaveolens and N. tabacum. Breed. Sci. 1994, 44, 333–336. [Google Scholar] [CrossRef]
  144. Inoue, E.; Marubashi, W.; Niwa, M. Improvement of the method for overcoming the hybrid lethality between Nicotiana suaveolens and N. tabacum by culture of F1 seeds in liquid media containing cytokisnins. Breed. Sci. 1997, 47, 211–216. [Google Scholar] [CrossRef]
  145. Kitamura, S.; Inoue, M.; Ohmido, N.; Fukui, K.; Tanaka, A. Chromosomal rearrangements in interspecific hybrids between Nicotiana gossei Domin and N. tabacum L., obtained by crossing with pollen exposed to helium ion beams or gamma-rays. Nucl. Instrum. Methods Phys. Res. B 2003, 206, 548–552. [Google Scholar] [CrossRef]
  146. Murashige, T.; Skoog, F. A revised medium for rapid growth and bio assays with tobacco tissue cultures. Physiol. Plant. 1962, 15, 473–497. [Google Scholar] [CrossRef]
  147. Tezuka, T.; Marubashi, W. Apoptotic cell death observed during the expression of hybrid lethality in interspecific hybrids between Nicotiana tabacum and N. suaveolens. Breed. Sci. 2004, 54, 59–66. [Google Scholar] [CrossRef]
  148. Murray, M.G.; Thompson, W.F. Rapid isolation of high molecular weight plant DNA. Nucleic Acids Res. 1980, 8, 4321–4325. [Google Scholar] [CrossRef]
Figure 1. Appearances of hybrid seedlings from the cross N. simulans × N. tabacum at 28 °C (AI) and 36 °C (J,K). (A) A 4 DAG hybrid seedling showing slight browning of hypocotyl. (B,C) A 33 DAG hybrid seedling photographed from the top (B) and bottom (C) of the Petri dish. The hypocotyl and base of roots turned brown. (DG) Different degree of plant growth observed in hybrid seedlings showing lethality at 60 DAG. (H,I) A hybrid seedling at 79 and 134 DAG (H,I, respectively) after acclimatization. (J,K) Totals of 30 and 47 DAG hybrid seedlings (J,K, respectively) showing normal plant growth by suppressing hybrid lethality at 36 °C. Scale bars = 1 (AC) or 10 mm (DK).
Figure 1. Appearances of hybrid seedlings from the cross N. simulans × N. tabacum at 28 °C (AI) and 36 °C (J,K). (A) A 4 DAG hybrid seedling showing slight browning of hypocotyl. (B,C) A 33 DAG hybrid seedling photographed from the top (B) and bottom (C) of the Petri dish. The hypocotyl and base of roots turned brown. (DG) Different degree of plant growth observed in hybrid seedlings showing lethality at 60 DAG. (H,I) A hybrid seedling at 79 and 134 DAG (H,I, respectively) after acclimatization. (J,K) Totals of 30 and 47 DAG hybrid seedlings (J,K, respectively) showing normal plant growth by suppressing hybrid lethality at 36 °C. Scale bars = 1 (AC) or 10 mm (DK).
Ijms 25 01226 g001
Table 1. Viability of reciprocal hybrids between N. simulans and N. tabacum at 28 °C.
Table 1. Viability of reciprocal hybrids between N. simulans and N. tabacum at 28 °C.
Cross Combination
(♀ × ♂)
No. of Flowers PollinatedNo. of Capsules ObtainedNo. of Seeds SownNo. of Hybrids ObtainedLethality Type 1
TotalViableInviable
N. simulans × N. tabacum20173522420242II
N. tabacum × N. simulans61199505II
1 Type II, browning of hypocotyl and roots.
Table 2. Relationship between the Q chromosome and hybrid lethality in crosses between N. tabacum and N. simulans.
Table 2. Relationship between the Q chromosome and hybrid lethality in crosses between N. tabacum and N. simulans.
Cross Combination (♀ × ♂)STS Markers 1No. of Hybrids
TotalViableInviable
(Haplo-Q × ‘Samsun NN’) × N. simulans+606
30300
1 ‘+’ indicates that Q-chromosome-specific STS markers were detected and ‘−’ indicates that they were not.
Table 3. Haplotypes identified in the HLA1 candidate region.
Table 3. Haplotypes identified in the HLA1 candidate region.
HaplotypeSpeciesAllele at the HLA1 LocusMarker
Nb14-CAPS
(150 kb) 1
Nb45-CAPS
(624 kb)
Nb48-CAPS
(725 kb)
Nb49-CAPS
(747 kb)
NbRGH1-CAPS
(832 kb) 3
Hap1N. forsteriHla1-1AA 2AAAAAAAA
Hap2N. ingulba, N. simulansHla1-1AAAABBAAAA
Hap3N. excelsior, N. goodspeedii, N. gossei, N. maritima, N. velutinaHla1-1AABBBBAAAA
Hap4N. suaveolensHla1-1AABBAAAA
Hap5N. megalosiphonHla1-1ABABAAAA
Hap6N. africanaHla1-1AABBCCAAB
Hap7N. benthamianahla1-2BBBBBBAAAA
Hap8N. fragranshla1-2BBBBBBBBB
1 Value in parenthesis indicates the approximate position of the marker in the Niben101Scf06736 scaffold in the v1.0.1 genome of N. benthamiana. 2A’ and ‘B’ indicate N. forsteri-type and N. fragrans-type alleles, respectively. ‘−’ indicates no detectable band. 3 This marker cannot discriminate between AB and BB genotypes [137].
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Tezuka, T.; Nagai, S.; Matsuo, C.; Okamori, T.; Iizuka, T.; Marubashi, W. Genetic Cause of Hybrid Lethality Observed in Reciprocal Interspecific Crosses between Nicotiana simulans and N. tabacum. Int. J. Mol. Sci. 2024, 25, 1226. https://doi.org/10.3390/ijms25021226

AMA Style

Tezuka T, Nagai S, Matsuo C, Okamori T, Iizuka T, Marubashi W. Genetic Cause of Hybrid Lethality Observed in Reciprocal Interspecific Crosses between Nicotiana simulans and N. tabacum. International Journal of Molecular Sciences. 2024; 25(2):1226. https://doi.org/10.3390/ijms25021226

Chicago/Turabian Style

Tezuka, Takahiro, Shota Nagai, Chihiro Matsuo, Toshiaki Okamori, Takahiro Iizuka, and Wataru Marubashi. 2024. "Genetic Cause of Hybrid Lethality Observed in Reciprocal Interspecific Crosses between Nicotiana simulans and N. tabacum" International Journal of Molecular Sciences 25, no. 2: 1226. https://doi.org/10.3390/ijms25021226

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