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本文引用的文献

1
Evidence for Extensive Overlap of Sporophytic and Gametophytic Gene Expression in Lycopersicon esculentum.在番茄中存在广泛的孢子体和配子体基因表达重叠的证据。
Science. 1981 Jul 24;213(4506):453-5. doi: 10.1126/science.213.4506.453.
2
Analysis of the Complexity and Diversity of mRNAs from Pollen and Shoots of Tradescantia.分析花粉和紫露草芽中 mRNA 的复杂性和多样性。
Plant Physiol. 1984 Jul;75(3):865-8. doi: 10.1104/pp.75.3.865.
3
Genetic Control of Root Hair Development in Arabidopsis thaliana.拟南芥根毛发育的遗传控制
Plant Cell. 1990 Mar;2(3):235-243. doi: 10.1105/tpc.2.3.235.
4
Preferential expression of an alpha-tubulin gene of Arabidopsis in pollen.拟南芥α-微管蛋白基因在花粉中的优先表达。
Plant Cell. 1992 May;4(5):557-71. doi: 10.1105/tpc.4.5.557.

拟南芥的一个突变体中花粉管和根毛的顶端生长受到破坏。

Pollen tube and root-hair tip growth is disrupted in a mutant of Arabidopsis thaliana.

作者信息

Schiefelbein J, Galway M, Masucci J, Ford S

机构信息

Department of Biology, University of Michigan, Ann Arbor 48109.

出版信息

Plant Physiol. 1993 Nov;103(3):979-85. doi: 10.1104/pp.103.3.979.

DOI:10.1104/pp.103.3.979
PMID:8022944
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC159072/
Abstract

The expansion of both root hairs and pollen tubes occurs by a process known as tip growth. In this report, an Arabidopsis thaliana mutant (tip1) is described that displays defects in both root-hair and pollen-tube growth. The root hairs of the tip1 mutant plants are shorter than those of the wild-type plants and branched at their base. The tip1 pollen-tube growth defect was identified by the aberrant segregation ratio of phenotypically normal to mutant seeds in siliques from self-pollinated, heterozygous plants. Homozygous mutant seeds are not randomly distributed in the siliques, comprising only 14.4% of the total seeds, 5.3% of the seeds from the bottom half, and 2.2% of the seeds from the bottom quarter of the heterozygous siliques. Studies of pollen-tube growth in vivo showed that mutant pollen tubes grow more slowly than wild-type pollen through the transmitting tissue of wild-type flowers. Cosegregation studies indicate that the root-hair and pollen-tube defects are caused by the same genetic lesion. Based on these findings, the TIP1 gene is likely to encode a product involved in a fundamental aspect of tip growth in plant cells.

摘要

根毛和花粉管的伸长都是通过一种称为顶端生长的过程实现的。在本报告中,描述了一种拟南芥突变体(tip1),其在根毛和花粉管生长方面均表现出缺陷。tip1突变体植株的根毛比野生型植株的根毛短,且在基部发生分支。通过自花授粉的杂合植株角果中表型正常种子与突变种子的异常分离比例,确定了tip1花粉管生长缺陷。纯合突变种子在角果中并非随机分布,仅占总种子数的14.4%,占下半部种子数的5.3%,占杂合角果底部四分之一种子数的2.2%。对体内花粉管生长的研究表明,突变花粉管在穿过野生型花朵的传递组织时,比野生型花粉生长得更慢。共分离研究表明,根毛和花粉管缺陷是由同一基因损伤引起的。基于这些发现,TIP1基因可能编码一种参与植物细胞顶端生长基本过程的产物。