846 resultados para male sterility


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The Bateson-Dobzhansky-Muller model posits that hybrid incompatibilities result from genetic changes that accumulate during population divergence. Indeed, much effort in recent years has been devoted to identifying genes associated with hybrid incompatibilities, often with limited success, suggesting that hybrid sterility and inviability are frequently caused by complex interactions between multiple loci and not by single or a small number of gene pairs. Our previous study showed that the nature of epistasis between sterility-conferring QTL in the Drosophila persimilis-D. pseudoobscura bogotana species pair is highly specific. Here, we further dissect one of the three QTL underlying hybrid male sterility between these species and provide evidence for multiple factors within this QTL. This result indicates that the number of loci thought to contribute to hybrid dysfunction may have been underestimated, and we discuss how linkage and complex epistasis may be characteristic of the genetics of hybrid incompatibilities. We further pinpoint the location of one locus that confers hybrid male sterility when homozygous, dubbed "mule-like", to roughly 250 kilobases.

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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)

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Pollen abortion occurs in virtually all species and often does not prejudice reproductive success. However, large numbers of abnormal pollen grains are characteristic of some groups. Among them is Miconia, in which partial and complete male sterility is often related to apomixis. In this study, we compared the morphology of pollen grains over several developmental stages in Miconia species with different rates of male sterility. Our aim was to improve the knowledge of mechanisms that lead to male sterility in this ecologically important tropical group. Routine techniques for microscopy were used to examine anthers in several developmental stages collected from the apomictic species Miconia albicans and M. stenostachya. Both species are completely male sterile since even the pollen grains with apparently normal cytoplasm were not able to develop a pollen tube. Meiosis is a rare event in M. albicans anthers and happens in an irregular way in M. stenostachya, leading to the pollen abortion. M. albicans has more severe abnormalities than M. stenostachya since even the microspores and pollen grain walls were affected. Moreover, in M. stenostachya, most mitosis occurring during microgametogenesis was also abnormal, leading to the formation of bicellular pollen grains with two similar cells, in addition to the formation of pollen grains of different sizes. Notably, abnormalities in both species did not reach the production of Ubisch bodies, suggesting little or no tapetum involvement in male sterility in these two species.

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Extracellular invertase mediates phloem unloading via an apoplastic pathway. The gene encoding isoenzyme Nin88 from tobacco was cloned and shown to be characterized by a specific spatial and temporal expression pattern. Tissue-specific antisense repression of Nin88 under control of the corresponding promoter in tobacco results in a block during early stages of pollen development, thus, causing male sterility. This result demonstrates a critical role of extracellular invertase in pollen development and strongly supports the essential function of extracellular sucrose cleavage for supplying carbohydrates to sink tissues via the apoplast. The specific interference with phloem unloading, the sugar status, and metabolic signaling during pollen formation will be a potentially valuable approach to induce male sterility in various crop species for hybrid seed production.

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In higher plants, dominant mitochondrial mutations are associated with pollen sterility. This phenomenon is known as cytoplasmic male sterility (CMS). It is thought that the disruption in pollen development is a consequence of mitochondrial dysfunction. To provide definitive evidence that expression of an abnormal mitochondrial gene can interrupt pollen development, a CMS-associated mitochondrial DNA sequence from common bean, orf239, was introduced into the tobacco nuclear genome. Several transformants containing the orf239 gene constructs, with or without a mitochondrial targeting sequence, exhibited a semi sterile or male-sterile phenotype. Expression of the gene fusions in transformed anthers was confirmed using RNA gel blotting, ELISA, and light and electron microscopic immunocytochemistry. Immunocytological analysis showed that the ORF239 protein could associate with the cell wall of aberrant developing microspores. This pattern of extracellular localization was earlier observed in the CMS common bean line containing orf239 in the mitochondrial genome. Results presented here demonstrate that ORF239 causes pollen disruption in transgenic tobacco plants and may do so without targeting of the protein to the mitochondrion.

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Inbreeding depression is most pronounced for traits closely associated with fitness. The traditional explanation is that natural selection eliminates deleterious mutations with additive or dominant effects more effectively than recessive mutations, leading to directional dominance for traits subject to strong directional selection. Here we report the unexpected finding that, in the butterfly Bicyclus anynana, male sterility contributes disproportionately to inbreeding depression for fitness (complete sterility in about half the sons from brother-sister matings), while female fertility is insensitive to inbreeding. The contrast between the sexes for functionally equivalent traits is inconsistent with standard selection arguments, and suggests that trait-specific developmental properties and cryptic selection play crucial roles in shaping genetic architecture. There is evidence that spermatogenesis is less developmentally stable than oogenesis, though the unusually high male fertility load in B. anynana additionally suggests the operation of complex selection maintaining male sterility recessives. Analysis of the precise causes of inbreeding depression will be needed to generate a model that reliably explains variation in directional dominance and reconciles the gap between observed and expected genetic loads carried by populations. This challenging evolutionary puzzle should stimulate work on the occurrence and causes of sex differences in fertility load.

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RNA editing and cytoplasmic male sterility are two important phenomena in higher plant mitochondria. To determine whether correlations might exist between the two, RNA editing in different tissues of Sorghum bicolor was compared employing reverse transcription–PCR and subsequent sequence analysis. In etiolated shoots, RNA editing of transcripts of plant mitochondrial atp6, atp9, nad3, nad4, and rps12 genes was identical among fertile or cytoplasmic male sterile plants. We then established a protocol for mitochondrial RNA isolation from plant anthers and pollen to include in these studies. Whereas RNA editing of atp9, nad3, nad4, and rps12 transcripts in anthers was similar to etiolated shoots, mitochondrial atp6 RNA editing was strongly reduced in anthers of the A3Tx398 male sterile line of S. bicolor. atp6 transcripts of wheat and selected plastid transcripts in S. bicolor showed normal RNA editing, indicating that loss of atp6 RNA editing is specific for cytoplasmic male sterility S. bicolor mitochondria. Restoration of fertility in F1 and F2 lines correlated with an increase in RNA editing of atp6 transcripts. Our data suggest that loss of atp6 RNA editing contributes to or causes cytoplasmic male sterility in S. bicolor. Further analysis of the mechanism of cell type-specific loss of atp6 RNA editing activity may advance our understanding of the mechanism of RNA editing.

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We have previously shown that the expression of an unedited atp9 chimeric gene correlated with male-sterile phenotype in transgenic tobacco plant. To study the relationship between the expression of chimeric gene and the male-sterile trait, hemizygous and homozygous transgenic tobacco lines expressing the antisense atp9 RNA were constructed. The antisense producing plants were crossed with a homozygous male-sterile line, and the F1 progeny was analyzed. The offspring from crosses between homozygous lines produced only male-fertile plants, suggesting that the expression antisense atp9 RNA abolishes the effect of the unedited chimeric gene. In fact, the plants restored to male fertility showed a dramatic reduction of the unedited atp9 transcript levels, resulting in normal flower development and seed production. These results support our previous observation that the expression of unedited atp9 gene can induce male sterility.

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ICRISAT scientists, working with Indian programme counterparts, developed the world's first cytoplasmic-nuclear male sterility (CMS)-based commercial hybrid in a food legume, the pigeonpea [Cajanus cajan (L.) Millsp.]. The CMS, in combination with natural outcrossing of the crop, was used to develop viable hybrid breeding technology. Hybrid ICPH 2671 recorded 47% superiority for grain yield over the control variety ‘Maruti’ in multilocation on-station testing for 4 years. In the on-farm trials conducted in five Indian states, mean yield of this hybrid (1396 kg/ha) was 46.5% greater than that of the popular cv. ‘Maruti’ (953 kg/ha). Hybrid ICPH 2671 also exhibited high levels of resistance to Fusarium wilt and sterility mosaic diseases. The outstanding performance of this hybrid has led to its release for cultivation in India by both a private seed company (as ‘Pushkal’) and a public sector university (as ‘RV ICPH 2671’). Recent developments in hybrid breeding technology and high yield advantages realized in farmers' fields have given hope for a breakthrough in pigeonpea productivity.

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光敏核不育水稻农垦58S由晚粳农垦58突变形成。具有在适宜温度条件下,长日照诱导雄性不育、短日照诱导雄性可育的基本特性。光敏核不育水稻育性转换机理的阐明是两系法杂交稻技术的关键。 1.克隆光敏不育基因是研究光敏核不育水稻育性转换机理的一个重要方面,本文对通过反映农垦58S和农垦58遗传背景差异的蛋白质或受光周期调节的蛋白质实现克隆光敏不育基因的策略进行了可行性研究,得到以下结果: (1).利用双向电泳技术在光敏核不育水稻是58S叶片中发现一个不存在于农垦58的蛋白质,其分子量为59.8kDa,等电点pH为5.9(称为Pa),该蛋白的存在不受光照条件、发育时期的影响,反映出农垦58S与农垦58遗传背景的差异。 (2).Pa蛋白与农垦58S叶绿体P61蛋白具有相同的分子量、等电点和N-端氨基酸顺序,在不同品种水稻中具有相同的分布,因此它们很可能是同一个蛋白质分子。 (3).利用双向电泳技术发现P61(Pa)和P41蛋白不仅存在于光敏不育系中,也存在于常规可育粳稻中,与光敏不育性状没有平行关系。 (4).利用双向电脉技术发现10天14小时长日照能在农垦58S和农垦58中诱导一个分子量为36kDa、等电点pH为5.2的蛋白质(称为P_b),该蛋白的表达受光敏色素的调控。因此P61(Pa)、P41及P_b蛋白均与光敏不育性状无直接关系,推测克隆这些蛋白的基因无法直接获得光敏不育基因。 2.在育性转换光周期敏感期已经发现长日照使农垦58S叶绿体发育不良,但在苗期光周期敏感期内,目前尚不知长日照是否会有同样的效应。本文以光周期对农垦58S苗期叶绿体发育的影响为主要内容,研究了农垦58S苗期的光周期反应,得到以下结果: (1).农垦58S从5叶龄期至6叶龄期开始对光周期敏感,短日照开始能诱导茎尖分化幼穗。 (2).不同的光周期对农垦58S 4叶龄期新展叶片叶绿体发育的影响无明显差异,叶结体结构与功能均表现正常。 (3).不同的光周期对农垦58S 6叶龄期新展叶片叶绿体发育的影响有明显差异。与短日照相比,长日照引起农垦58S部分叶绿体发育不良,导致光化学活性减弱、超分子结构异常。长日光周期对农垦58S叶绿体发育的不良效应可能是光周期敏感期内存在的一种特殊现象。

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近年来作物杂种优势利用的研究取得了很大的进展,杂交种的应用带来了巨大的经济效益。作物杂种的生产通常借助于雄性不育系。但是某些植物雄性不育形成的分子机理尚未搞清,不育基因的结构与功能以及不育基因在表达过程中一系列的基因与蛋白质的相互作用有待揭晓。 显性雄性核不育小麦(太谷核不育小麦)是我国特有的显性雄性核不育无花粉型材料,其不育性是由显性单基因Ms2控制的。本论文以显性雄性核不育小麦不育株和可育株近基因系为材料,应用单向电泳(SDS-PAGE)和双向电泳(IEF/SDS-PAGE)方法,分析了不育株和可育株不同器官(种子、旗叶、幼穗及花药)的蛋白质组成。通过研究发现两者之间在蛋质组成上存在一些异同点。在胚乳和旗叶中,未发现不育株和可育株两者之间的蛋白质组成存在明显的差异。在外于减数分裂时期的幼穗和花药中,不育株和可育株之间蛋白质组成上有明显差异。与可育株相比,不育株缺少分子量分别为15.8kD、17kD、17.8kD、38kD、81.2kD的5个碱性蛋白质。另外,还发现不育株增加了一个16.2kD的低分子量酸性蛋白质。在某些特定分子量的蛋白质中,虽然两者都存在该蛋白质,但是在含量上有着明显的不同,可育株含量比不育株高。这些蛋白质组成的变化成为不育株的重要特征。本文首次报告了显性雄性核不育小麦不育株与近等基因系可育株不同器官中蛋白质组成的区别。本研究结果在蛋白质水平上证实了花器官是雄性败育基因表达的主要器官,Ms的表达具有较强的时间性和空间性。 本论文还对双向电泳方法进行了一些探讨。