Insights into the evolution of self-compatibility in Lycopersicon from a study of stylar factors

Insights into the evolution of self-compatibility in Lycopersicon from a study of stylar factors
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DOI:
10.1046/j.1365-313x.2002.01275.x
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发表时间:
2002-04-01
期刊:
影响因子:
7.2
通讯作者:
Kowyama, Y
Kowyama, Y
中科院分区:
生物学1区
文献类型:
--
作者:
Kondo, K;Yamamoto, M;Kowyama, Y

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为了阐明番茄自交不亲和性丧失的分子基础,对7个自交亲和(SC)和3个自交不亲和(SI)类群的S-RNase和HT-蛋白进行了分析。没有或低花柱RNA酶活性是一个共同的特点,在大多数SC类群检查,在所有SI物种中发现的活动的统一高水平。S-RNase基因很可能在四个红果SC分类群中缺失(L. esculentum,L.番茄变种cerasiforme,L. pimpinellifolium和L. cheesmanii),因为S-RNase基因不能从基因组DNA扩增。然而,S-RNase基因可以从三个绿色果实SC类群的基因组中扩增。L. chmielewskii和L.多毛草f. glabratum显示转录物积累减少,可能反映了S-RNase基因5'侧翼区的变化。其余的绿果SC种,L。parviflorum在其基因组中具有功能性S-RNase基因,该基因在花柱中以高水平表达,这表明导致低S-RNase活性的遗传因素。总之,这些结果表明,在番茄多样化的过程中,S-RNase基因发生了几个独立的突变,S-RNase功能的丧失不太可能是自交不亲和性丧失的主要原因。我们还研究了在自交不亲和性中起作用的HT-B基因。HT-B成绩单显着减少,在所有的SC类群检查的风格。描述了一种情况下,突变导致减少转录的HT-B在祖先SI物种是中央的番茄自交不亲和性的损失。
To elucidate the molecular basis of loss of self-incompatibility in Lycopersicon , S-RNases and HT-proteins were analysed in seven self-compatible (SC) and three self-incompatible (SI) taxa. No or low stylar RNase activity was a common feature in most SC taxa examined, in contrast to the uniformly high levels of activity found in all SI species. The S-RNase gene is most likely deleted in the four red-fruited SC taxa (L. esculentum, L. esculentum var. cerasiforme, L. pimpinellifolium and L. cheesmanii ) because S-RNase genes could not be amplified from genomic DNA. S-RNase genes could, however, be amplified from the genomes of the three green-fruited SC taxa examined. L. chmielewskii and L. hirsutum f. glabratum show a decreased accumulation of transcripts, possibly reflecting changes in the 5' flanking regions of the S-RNase genes. The remaining green-fruited SC species, L. parviflorum , has a functional S-RNase gene in its genome that is expressed at high levels in the style, suggesting a genetic factor responsible for the low S-RNase activity. Together these results argue for several independent mutations in the S-RNase gene over the course of Lycopersicon diversification, and that loss of S-RNase function is unlikely to the primary cause of the loss of self-incompatibility. We also examined the HT-B genes that play a role in self-incompatibility. HT-B transcripts were markedly reduced in the styles of all the SC taxa examined. A scenario is described where a mutation causing reduced transcription of HT-B in an ancestral SI species was central to the loss of self-incompatibility in Lycopersicon.