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本文引用的文献

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ANTI-HERBIVORE PROTECTION BY MUTUALISTIC SPIDERS AND THE ROLE OF PLANT GLANDULAR TRICHOMES.互利共生蜘蛛的抗食草动物保护作用与植物腺毛的作用
Ecology. 2008 Nov;89(11):3105-3115. doi: 10.1890/08-0267.1.
2
Resource availability and the trichome defenses of tomato plants.资源可用性与番茄植株的毛状体防御
Oecologia. 1996 Apr;106(2):181-191. doi: 10.1007/BF00328597.
3
Activity of volatile compounds in glandular trichomes ofLycopersicon species against two insect herbivores.番茄属植物腺毛中挥发性化合物对两种鳞翅目昆虫取食的活性。
J Chem Ecol. 1987 Apr;13(4):837-50. doi: 10.1007/BF01020164.
4
Morphology and monoterpene biosynthetic capabilities of secretory cell clusters isolated from glandular trichomes of peppermint (Mentha piperita L.).从薄荷(Mentha piperita L.)的腺毛中分离的分泌细胞簇的形态和单萜生物合成能力。
Planta. 1992 Jul;187(4):445-54. doi: 10.1007/BF00199962.
5
Granule-bound starch synthase (GBSSI) gene phylogeny of wild tomatoes (Solanum L. section Lycopersicon [Mill.] Wettst. subsection Lycopersicon).野生番茄(茄属番茄亚属[茄科]番茄组)的颗粒结合型淀粉合成酶(GBSSI)基因系统发育
Am J Bot. 2001 Oct;88(10):1888-902.
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Incorporation of non-natural nucleotides into template-switching oligonucleotides reduces background and improves cDNA synthesis from very small RNA samples.将非天然核苷酸掺入模板转换寡核苷酸可降低背景并提高非常小的 RNA 样品的 cDNA 合成效率。
BMC Genomics. 2010 Jul 2;11:413. doi: 10.1186/1471-2164-11-413.
7
Distortion of trichome morphology by the hairless mutation of tomato affects leaf surface chemistry.番茄无毛突变对毛状体形态的扭曲影响叶片表面化学性质。
J Exp Bot. 2010 Feb;61(4):1053-64. doi: 10.1093/jxb/erp370. Epub 2009 Dec 16.
8
The Universal Protein Resource (UniProt) in 2010.2010 年的通用蛋白质资源(UniProt)。
Nucleic Acids Res. 2010 Jan;38(Database issue):D142-8. doi: 10.1093/nar/gkp846. Epub 2009 Oct 20.
9
Global characterization of Artemisia annua glandular trichome transcriptome using 454 pyrosequencing.利用454焦磷酸测序技术对黄花蒿腺毛转录组进行全面表征。
BMC Genomics. 2009 Oct 9;10:465. doi: 10.1186/1471-2164-10-465.
10
Multiple biochemical and morphological factors underlie the production of methylketones in tomato trichomes.多种生化和形态因素是番茄毛状体产生甲基酮的基础。
Plant Physiol. 2009 Dec;151(4):1952-64. doi: 10.1104/pp.109.146415. Epub 2009 Oct 2.

比较研究茄属植物腺毛类型的功能基因组。

Comparative functional genomic analysis of Solanum glandular trichome types.

机构信息

Bio5 Institute , University of Arizona, Tucson, Arizona 85721, USA.

出版信息

Plant Physiol. 2011 Jan;155(1):524-39. doi: 10.1104/pp.110.167114. Epub 2010 Nov 19.

DOI:10.1104/pp.110.167114
PMID:21098679
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3075747/
Abstract

Glandular trichomes play important roles in protecting plants from biotic attack by producing defensive compounds. We investigated the metabolic profiles and transcriptomes to characterize the differences between different glandular trichome types in several domesticated and wild Solanum species: Solanum lycopersicum (glandular trichome types 1, 6, and 7), Solanum habrochaites (types 1, 4, and 6), Solanum pennellii (types 4 and 6), Solanum arcanum (type 6), and Solanum pimpinellifolium (type 6). Substantial chemical differences in and between Solanum species and glandular trichome types are likely determined by the regulation of metabolism at several levels. Comparison of S. habrochaites type 1 and 4 glandular trichomes revealed few differences in chemical content or transcript abundance, leading to the conclusion that these two glandular trichome types are the same and differ perhaps only in stalk length. The observation that all of the other species examined here contain either type 1 or 4 trichomes (not both) supports the conclusion that these two trichome types are the same. Most differences in metabolites between type 1 and 4 glands on the one hand and type 6 glands on the other hand are quantitative but not qualitative. Several glandular trichome types express genes associated with photosynthesis and carbon fixation, indicating that some carbon destined for specialized metabolism is likely fixed within the trichome secretory cells. Finally, Solanum type 7 glandular trichomes do not appear to be involved in the biosynthesis and storage of specialized metabolites and thus likely serve another unknown function, perhaps as the site of the synthesis of protease inhibitors.

摘要

腺毛在产生防御化合物方面对植物免受生物攻击起着重要作用。我们研究了代谢谱和转录组,以表征几个栽培和野生茄属物种中不同腺毛类型之间的差异:番茄(腺毛类型 1、6 和 7)、Solanum habrochaites(类型 1、4 和 6)、Solanum pennellii(类型 4 和 6)、Solanum arcanum(类型 6)和 Solanum pimpinellifolium(类型 6)。茄属物种和腺毛类型之间的大量化学差异可能是由几个水平的代谢调控决定的。Solanum habrochaites 类型 1 和 4 腺毛的比较表明化学物质含量或转录丰度差异很小,导致这两种腺毛类型相同,可能只是在柄长上有所不同。观察到这里研究的所有其他物种都含有 1 型或 4 型腺毛(而不是两者都有),这支持了这两种腺毛类型相同的结论。一方面,1 型和 4 型腺毛与 6 型腺毛之间的代谢物差异大多数是数量上的,而不是质量上的。几种腺毛类型表达与光合作用和碳固定有关的基因,表明一些专门用于代谢的碳可能在毛状体分泌细胞内固定。最后,Solanum 7 型腺毛似乎不参与特殊代谢物的生物合成和储存,因此可能具有另一个未知的功能,也许是蛋白酶抑制剂合成的场所。